4 * Copyright (C) 1991, 1992 Linus Torvalds
8 * Some corrections by tytso.
11 /* [Feb 1997 T. Schoebel-Theuer] Complete rewrite of the pathname
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>
21 #include <linux/namei.h>
22 #include <linux/pagemap.h>
23 #include <linux/fsnotify.h>
24 #include <linux/personality.h>
25 #include <linux/security.h>
26 #include <linux/ima.h>
27 #include <linux/syscalls.h>
28 #include <linux/mount.h>
29 #include <linux/audit.h>
30 #include <linux/capability.h>
31 #include <linux/file.h>
32 #include <linux/fcntl.h>
33 #include <linux/device_cgroup.h>
34 #include <linux/fs_struct.h>
35 #include <linux/posix_acl.h>
36 #include <asm/uaccess.h>
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-existent 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 /* In order to reduce some races, while at the same time doing additional
112 * checking and hopefully speeding things up, we copy filenames to the
113 * kernel data space before using them..
115 * POSIX.1 2.4: an empty pathname is invalid (ENOENT).
116 * PATH_MAX includes the nul terminator --RR.
118 static int do_getname(const char __user
*filename
, char *page
)
121 unsigned long len
= PATH_MAX
;
123 if (!segment_eq(get_fs(), KERNEL_DS
)) {
124 if ((unsigned long) filename
>= TASK_SIZE
)
126 if (TASK_SIZE
- (unsigned long) filename
< PATH_MAX
)
127 len
= TASK_SIZE
- (unsigned long) filename
;
130 retval
= strncpy_from_user(page
, filename
, len
);
134 return -ENAMETOOLONG
;
140 static char *getname_flags(const char __user
*filename
, int flags
, int *empty
)
144 result
= ERR_PTR(-ENOMEM
);
147 int retval
= do_getname(filename
, tmp
);
151 if (retval
== -ENOENT
&& empty
)
153 if (retval
!= -ENOENT
|| !(flags
& LOOKUP_EMPTY
)) {
155 result
= ERR_PTR(retval
);
159 audit_getname(result
);
163 char *getname(const char __user
* filename
)
165 return getname_flags(filename
, 0, 0);
168 #ifdef CONFIG_AUDITSYSCALL
169 void putname(const char *name
)
171 if (unlikely(!audit_dummy_context()))
176 EXPORT_SYMBOL(putname
);
179 static int check_acl(struct inode
*inode
, int mask
)
181 #ifdef CONFIG_FS_POSIX_ACL
182 struct posix_acl
*acl
;
184 if (mask
& MAY_NOT_BLOCK
) {
185 acl
= get_cached_acl_rcu(inode
, ACL_TYPE_ACCESS
);
188 /* no ->get_acl() calls in RCU mode... */
189 if (acl
== ACL_NOT_CACHED
)
191 return posix_acl_permission(inode
, acl
, mask
& ~MAY_NOT_BLOCK
);
194 acl
= get_cached_acl(inode
, ACL_TYPE_ACCESS
);
197 * A filesystem can force a ACL callback by just never filling the
198 * ACL cache. But normally you'd fill the cache either at inode
199 * instantiation time, or on the first ->get_acl call.
201 * If the filesystem doesn't have a get_acl() function at all, we'll
202 * just create the negative cache entry.
204 if (acl
== ACL_NOT_CACHED
) {
205 if (inode
->i_op
->get_acl
) {
206 acl
= inode
->i_op
->get_acl(inode
, ACL_TYPE_ACCESS
);
210 set_cached_acl(inode
, ACL_TYPE_ACCESS
, NULL
);
216 int error
= posix_acl_permission(inode
, acl
, mask
);
217 posix_acl_release(acl
);
226 * This does basic POSIX ACL permission checking
228 static int acl_permission_check(struct inode
*inode
, int mask
)
230 unsigned int mode
= inode
->i_mode
;
232 mask
&= MAY_READ
| MAY_WRITE
| MAY_EXEC
| MAY_NOT_BLOCK
;
234 if (current_user_ns() != inode_userns(inode
))
237 if (likely(current_fsuid() == inode
->i_uid
))
240 if (IS_POSIXACL(inode
) && (mode
& S_IRWXG
)) {
241 int error
= check_acl(inode
, mask
);
242 if (error
!= -EAGAIN
)
246 if (in_group_p(inode
->i_gid
))
252 * If the DACs are ok we don't need any capability check.
254 if ((mask
& ~mode
& (MAY_READ
| MAY_WRITE
| MAY_EXEC
)) == 0)
260 * generic_permission - check for access rights on a Posix-like filesystem
261 * @inode: inode to check access rights for
262 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
264 * Used to check for read/write/execute permissions on a file.
265 * We use "fsuid" for this, letting us set arbitrary permissions
266 * for filesystem access without changing the "normal" uids which
267 * are used for other things.
269 * generic_permission is rcu-walk aware. It returns -ECHILD in case an rcu-walk
270 * request cannot be satisfied (eg. requires blocking or too much complexity).
271 * It would then be called again in ref-walk mode.
273 int generic_permission(struct inode
*inode
, int mask
)
278 * Do the basic POSIX ACL permission checks.
280 ret
= acl_permission_check(inode
, mask
);
284 if (S_ISDIR(inode
->i_mode
)) {
285 /* DACs are overridable for directories */
286 if (ns_capable(inode_userns(inode
), CAP_DAC_OVERRIDE
))
288 if (!(mask
& MAY_WRITE
))
289 if (ns_capable(inode_userns(inode
), CAP_DAC_READ_SEARCH
))
294 * Read/write DACs are always overridable.
295 * Executable DACs are overridable when there is
296 * at least one exec bit set.
298 if (!(mask
& MAY_EXEC
) || (inode
->i_mode
& S_IXUGO
))
299 if (ns_capable(inode_userns(inode
), CAP_DAC_OVERRIDE
))
303 * Searching includes executable on directories, else just read.
305 mask
&= MAY_READ
| MAY_WRITE
| MAY_EXEC
;
306 if (mask
== MAY_READ
)
307 if (ns_capable(inode_userns(inode
), CAP_DAC_READ_SEARCH
))
314 * We _really_ want to just do "generic_permission()" without
315 * even looking at the inode->i_op values. So we keep a cache
316 * flag in inode->i_opflags, that says "this has not special
317 * permission function, use the fast case".
319 static inline int do_inode_permission(struct inode
*inode
, int mask
)
321 if (unlikely(!(inode
->i_opflags
& IOP_FASTPERM
))) {
322 if (likely(inode
->i_op
->permission
))
323 return inode
->i_op
->permission(inode
, mask
);
325 /* This gets set once for the inode lifetime */
326 spin_lock(&inode
->i_lock
);
327 inode
->i_opflags
|= IOP_FASTPERM
;
328 spin_unlock(&inode
->i_lock
);
330 return generic_permission(inode
, mask
);
334 * inode_permission - check for access rights to a given inode
335 * @inode: inode to check permission on
336 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
338 * Used to check for read/write/execute permissions on an inode.
339 * We use "fsuid" for this, letting us set arbitrary permissions
340 * for filesystem access without changing the "normal" uids which
341 * are used for other things.
343 int inode_permission(struct inode
*inode
, int mask
)
347 if (unlikely(mask
& MAY_WRITE
)) {
348 umode_t mode
= inode
->i_mode
;
351 * Nobody gets write access to a read-only fs.
353 if (IS_RDONLY(inode
) &&
354 (S_ISREG(mode
) || S_ISDIR(mode
) || S_ISLNK(mode
)))
358 * Nobody gets write access to an immutable file.
360 if (IS_IMMUTABLE(inode
))
364 retval
= do_inode_permission(inode
, mask
);
368 retval
= devcgroup_inode_permission(inode
, mask
);
372 return security_inode_permission(inode
, mask
);
376 * path_get - get a reference to a path
377 * @path: path to get the reference to
379 * Given a path increment the reference count to the dentry and the vfsmount.
381 void path_get(struct path
*path
)
386 EXPORT_SYMBOL(path_get
);
389 * path_put - put a reference to a path
390 * @path: path to put the reference to
392 * Given a path decrement the reference count to the dentry and the vfsmount.
394 void path_put(struct path
*path
)
399 EXPORT_SYMBOL(path_put
);
402 * Path walking has 2 modes, rcu-walk and ref-walk (see
403 * Documentation/filesystems/path-lookup.txt). In situations when we can't
404 * continue in RCU mode, we attempt to drop out of rcu-walk mode and grab
405 * normal reference counts on dentries and vfsmounts to transition to rcu-walk
406 * mode. Refcounts are grabbed at the last known good point before rcu-walk
407 * got stuck, so ref-walk may continue from there. If this is not successful
408 * (eg. a seqcount has changed), then failure is returned and it's up to caller
409 * to restart the path walk from the beginning in ref-walk mode.
413 * unlazy_walk - try to switch to ref-walk mode.
414 * @nd: nameidata pathwalk data
415 * @dentry: child of nd->path.dentry or NULL
416 * Returns: 0 on success, -ECHILD on failure
418 * unlazy_walk attempts to legitimize the current nd->path, nd->root and dentry
419 * for ref-walk mode. @dentry must be a path found by a do_lookup call on
420 * @nd or NULL. Must be called from rcu-walk context.
422 static int unlazy_walk(struct nameidata
*nd
, struct dentry
*dentry
)
424 struct fs_struct
*fs
= current
->fs
;
425 struct dentry
*parent
= nd
->path
.dentry
;
428 BUG_ON(!(nd
->flags
& LOOKUP_RCU
));
429 if (nd
->root
.mnt
&& !(nd
->flags
& LOOKUP_ROOT
)) {
431 spin_lock(&fs
->lock
);
432 if (nd
->root
.mnt
!= fs
->root
.mnt
||
433 nd
->root
.dentry
!= fs
->root
.dentry
)
436 spin_lock(&parent
->d_lock
);
438 if (!__d_rcu_to_refcount(parent
, nd
->seq
))
440 BUG_ON(nd
->inode
!= parent
->d_inode
);
442 if (dentry
->d_parent
!= parent
)
444 spin_lock_nested(&dentry
->d_lock
, DENTRY_D_LOCK_NESTED
);
445 if (!__d_rcu_to_refcount(dentry
, nd
->seq
))
448 * If the sequence check on the child dentry passed, then
449 * the child has not been removed from its parent. This
450 * means the parent dentry must be valid and able to take
451 * a reference at this point.
453 BUG_ON(!IS_ROOT(dentry
) && dentry
->d_parent
!= parent
);
454 BUG_ON(!parent
->d_count
);
456 spin_unlock(&dentry
->d_lock
);
458 spin_unlock(&parent
->d_lock
);
461 spin_unlock(&fs
->lock
);
463 mntget(nd
->path
.mnt
);
466 br_read_unlock(vfsmount_lock
);
467 nd
->flags
&= ~LOOKUP_RCU
;
471 spin_unlock(&dentry
->d_lock
);
473 spin_unlock(&parent
->d_lock
);
476 spin_unlock(&fs
->lock
);
481 * release_open_intent - free up open intent resources
482 * @nd: pointer to nameidata
484 void release_open_intent(struct nameidata
*nd
)
486 struct file
*file
= nd
->intent
.open
.file
;
488 if (file
&& !IS_ERR(file
)) {
489 if (file
->f_path
.dentry
== NULL
)
496 static inline int d_revalidate(struct dentry
*dentry
, struct nameidata
*nd
)
498 return dentry
->d_op
->d_revalidate(dentry
, nd
);
502 * complete_walk - successful completion of path walk
503 * @nd: pointer nameidata
505 * If we had been in RCU mode, drop out of it and legitimize nd->path.
506 * Revalidate the final result, unless we'd already done that during
507 * the path walk or the filesystem doesn't ask for it. Return 0 on
508 * success, -error on failure. In case of failure caller does not
509 * need to drop nd->path.
511 static int complete_walk(struct nameidata
*nd
)
513 struct dentry
*dentry
= nd
->path
.dentry
;
516 if (nd
->flags
& LOOKUP_RCU
) {
517 nd
->flags
&= ~LOOKUP_RCU
;
518 if (!(nd
->flags
& LOOKUP_ROOT
))
520 spin_lock(&dentry
->d_lock
);
521 if (unlikely(!__d_rcu_to_refcount(dentry
, nd
->seq
))) {
522 spin_unlock(&dentry
->d_lock
);
524 br_read_unlock(vfsmount_lock
);
527 BUG_ON(nd
->inode
!= dentry
->d_inode
);
528 spin_unlock(&dentry
->d_lock
);
529 mntget(nd
->path
.mnt
);
531 br_read_unlock(vfsmount_lock
);
534 if (likely(!(nd
->flags
& LOOKUP_JUMPED
)))
537 if (likely(!(dentry
->d_flags
& DCACHE_OP_REVALIDATE
)))
540 if (likely(!(dentry
->d_sb
->s_type
->fs_flags
& FS_REVAL_DOT
)))
543 /* Note: we do not d_invalidate() */
544 status
= d_revalidate(dentry
, nd
);
555 static __always_inline
void set_root(struct nameidata
*nd
)
558 get_fs_root(current
->fs
, &nd
->root
);
561 static int link_path_walk(const char *, struct nameidata
*);
563 static __always_inline
void set_root_rcu(struct nameidata
*nd
)
566 struct fs_struct
*fs
= current
->fs
;
570 seq
= read_seqcount_begin(&fs
->seq
);
572 nd
->seq
= __read_seqcount_begin(&nd
->root
.dentry
->d_seq
);
573 } while (read_seqcount_retry(&fs
->seq
, seq
));
577 static __always_inline
int __vfs_follow_link(struct nameidata
*nd
, const char *link
)
589 nd
->flags
|= LOOKUP_JUMPED
;
591 nd
->inode
= nd
->path
.dentry
->d_inode
;
593 ret
= link_path_walk(link
, nd
);
597 return PTR_ERR(link
);
600 static void path_put_conditional(struct path
*path
, struct nameidata
*nd
)
603 if (path
->mnt
!= nd
->path
.mnt
)
607 static inline void path_to_nameidata(const struct path
*path
,
608 struct nameidata
*nd
)
610 if (!(nd
->flags
& LOOKUP_RCU
)) {
611 dput(nd
->path
.dentry
);
612 if (nd
->path
.mnt
!= path
->mnt
)
613 mntput(nd
->path
.mnt
);
615 nd
->path
.mnt
= path
->mnt
;
616 nd
->path
.dentry
= path
->dentry
;
619 static inline void put_link(struct nameidata
*nd
, struct path
*link
, void *cookie
)
621 struct inode
*inode
= link
->dentry
->d_inode
;
622 if (!IS_ERR(cookie
) && inode
->i_op
->put_link
)
623 inode
->i_op
->put_link(link
->dentry
, nd
, cookie
);
627 static __always_inline
int
628 follow_link(struct path
*link
, struct nameidata
*nd
, void **p
)
631 struct dentry
*dentry
= link
->dentry
;
633 BUG_ON(nd
->flags
& LOOKUP_RCU
);
635 if (link
->mnt
== nd
->path
.mnt
)
638 if (unlikely(current
->total_link_count
>= 40)) {
639 *p
= ERR_PTR(-ELOOP
); /* no ->put_link(), please */
644 current
->total_link_count
++;
646 touch_atime(link
->mnt
, dentry
);
647 nd_set_link(nd
, NULL
);
649 error
= security_inode_follow_link(link
->dentry
, nd
);
651 *p
= ERR_PTR(error
); /* no ->put_link(), please */
656 nd
->last_type
= LAST_BIND
;
657 *p
= dentry
->d_inode
->i_op
->follow_link(dentry
, nd
);
660 char *s
= nd_get_link(nd
);
663 error
= __vfs_follow_link(nd
, s
);
664 else if (nd
->last_type
== LAST_BIND
) {
665 nd
->flags
|= LOOKUP_JUMPED
;
666 nd
->inode
= nd
->path
.dentry
->d_inode
;
667 if (nd
->inode
->i_op
->follow_link
) {
668 /* stepped on a _really_ weird one */
677 static int follow_up_rcu(struct path
*path
)
679 struct vfsmount
*parent
;
680 struct dentry
*mountpoint
;
682 parent
= path
->mnt
->mnt_parent
;
683 if (parent
== path
->mnt
)
685 mountpoint
= path
->mnt
->mnt_mountpoint
;
686 path
->dentry
= mountpoint
;
691 int follow_up(struct path
*path
)
693 struct vfsmount
*parent
;
694 struct dentry
*mountpoint
;
696 br_read_lock(vfsmount_lock
);
697 parent
= path
->mnt
->mnt_parent
;
698 if (parent
== path
->mnt
) {
699 br_read_unlock(vfsmount_lock
);
703 mountpoint
= dget(path
->mnt
->mnt_mountpoint
);
704 br_read_unlock(vfsmount_lock
);
706 path
->dentry
= mountpoint
;
713 * Perform an automount
714 * - return -EISDIR to tell follow_managed() to stop and return the path we
717 static int follow_automount(struct path
*path
, unsigned flags
,
720 struct vfsmount
*mnt
;
723 if (!path
->dentry
->d_op
|| !path
->dentry
->d_op
->d_automount
)
726 /* We don't want to mount if someone's just doing a stat -
727 * unless they're stat'ing a directory and appended a '/' to
730 * We do, however, want to mount if someone wants to open or
731 * create a file of any type under the mountpoint, wants to
732 * traverse through the mountpoint or wants to open the
733 * mounted directory. Also, autofs may mark negative dentries
734 * as being automount points. These will need the attentions
735 * of the daemon to instantiate them before they can be used.
737 if (!(flags
& (LOOKUP_PARENT
| LOOKUP_DIRECTORY
|
738 LOOKUP_OPEN
| LOOKUP_CREATE
| LOOKUP_AUTOMOUNT
)) &&
739 path
->dentry
->d_inode
)
742 current
->total_link_count
++;
743 if (current
->total_link_count
>= 40)
746 mnt
= path
->dentry
->d_op
->d_automount(path
);
749 * The filesystem is allowed to return -EISDIR here to indicate
750 * it doesn't want to automount. For instance, autofs would do
751 * this so that its userspace daemon can mount on this dentry.
753 * However, we can only permit this if it's a terminal point in
754 * the path being looked up; if it wasn't then the remainder of
755 * the path is inaccessible and we should say so.
757 if (PTR_ERR(mnt
) == -EISDIR
&& (flags
& LOOKUP_PARENT
))
762 if (!mnt
) /* mount collision */
766 /* lock_mount() may release path->mnt on error */
770 err
= finish_automount(mnt
, path
);
774 /* Someone else made a mount here whilst we were busy */
779 path
->dentry
= dget(mnt
->mnt_root
);
788 * Handle a dentry that is managed in some way.
789 * - Flagged for transit management (autofs)
790 * - Flagged as mountpoint
791 * - Flagged as automount point
793 * This may only be called in refwalk mode.
795 * Serialization is taken care of in namespace.c
797 static int follow_managed(struct path
*path
, unsigned flags
)
799 struct vfsmount
*mnt
= path
->mnt
; /* held by caller, must be left alone */
801 bool need_mntput
= false;
804 /* Given that we're not holding a lock here, we retain the value in a
805 * local variable for each dentry as we look at it so that we don't see
806 * the components of that value change under us */
807 while (managed
= ACCESS_ONCE(path
->dentry
->d_flags
),
808 managed
&= DCACHE_MANAGED_DENTRY
,
809 unlikely(managed
!= 0)) {
810 /* Allow the filesystem to manage the transit without i_mutex
812 if (managed
& DCACHE_MANAGE_TRANSIT
) {
813 BUG_ON(!path
->dentry
->d_op
);
814 BUG_ON(!path
->dentry
->d_op
->d_manage
);
815 ret
= path
->dentry
->d_op
->d_manage(path
->dentry
, false);
820 /* Transit to a mounted filesystem. */
821 if (managed
& DCACHE_MOUNTED
) {
822 struct vfsmount
*mounted
= lookup_mnt(path
);
828 path
->dentry
= dget(mounted
->mnt_root
);
833 /* Something is mounted on this dentry in another
834 * namespace and/or whatever was mounted there in this
835 * namespace got unmounted before we managed to get the
839 /* Handle an automount point */
840 if (managed
& DCACHE_NEED_AUTOMOUNT
) {
841 ret
= follow_automount(path
, flags
, &need_mntput
);
847 /* We didn't change the current path point */
851 if (need_mntput
&& path
->mnt
== mnt
)
855 return ret
< 0 ? ret
: need_mntput
;
858 int follow_down_one(struct path
*path
)
860 struct vfsmount
*mounted
;
862 mounted
= lookup_mnt(path
);
867 path
->dentry
= dget(mounted
->mnt_root
);
873 static inline bool managed_dentry_might_block(struct dentry
*dentry
)
875 return (dentry
->d_flags
& DCACHE_MANAGE_TRANSIT
&&
876 dentry
->d_op
->d_manage(dentry
, true) < 0);
880 * Try to skip to top of mountpoint pile in rcuwalk mode. Fail if
881 * we meet a managed dentry that would need blocking.
883 static bool __follow_mount_rcu(struct nameidata
*nd
, struct path
*path
,
884 struct inode
**inode
)
887 struct vfsmount
*mounted
;
889 * Don't forget we might have a non-mountpoint managed dentry
890 * that wants to block transit.
892 if (unlikely(managed_dentry_might_block(path
->dentry
)))
895 if (!d_mountpoint(path
->dentry
))
898 mounted
= __lookup_mnt(path
->mnt
, path
->dentry
, 1);
902 path
->dentry
= mounted
->mnt_root
;
903 nd
->flags
|= LOOKUP_JUMPED
;
904 nd
->seq
= read_seqcount_begin(&path
->dentry
->d_seq
);
906 * Update the inode too. We don't need to re-check the
907 * dentry sequence number here after this d_inode read,
908 * because a mount-point is always pinned.
910 *inode
= path
->dentry
->d_inode
;
915 static void follow_mount_rcu(struct nameidata
*nd
)
917 while (d_mountpoint(nd
->path
.dentry
)) {
918 struct vfsmount
*mounted
;
919 mounted
= __lookup_mnt(nd
->path
.mnt
, nd
->path
.dentry
, 1);
922 nd
->path
.mnt
= mounted
;
923 nd
->path
.dentry
= mounted
->mnt_root
;
924 nd
->seq
= read_seqcount_begin(&nd
->path
.dentry
->d_seq
);
928 static int follow_dotdot_rcu(struct nameidata
*nd
)
933 if (nd
->path
.dentry
== nd
->root
.dentry
&&
934 nd
->path
.mnt
== nd
->root
.mnt
) {
937 if (nd
->path
.dentry
!= nd
->path
.mnt
->mnt_root
) {
938 struct dentry
*old
= nd
->path
.dentry
;
939 struct dentry
*parent
= old
->d_parent
;
942 seq
= read_seqcount_begin(&parent
->d_seq
);
943 if (read_seqcount_retry(&old
->d_seq
, nd
->seq
))
945 nd
->path
.dentry
= parent
;
949 if (!follow_up_rcu(&nd
->path
))
951 nd
->seq
= read_seqcount_begin(&nd
->path
.dentry
->d_seq
);
953 follow_mount_rcu(nd
);
954 nd
->inode
= nd
->path
.dentry
->d_inode
;
958 nd
->flags
&= ~LOOKUP_RCU
;
959 if (!(nd
->flags
& LOOKUP_ROOT
))
962 br_read_unlock(vfsmount_lock
);
967 * Follow down to the covering mount currently visible to userspace. At each
968 * point, the filesystem owning that dentry may be queried as to whether the
969 * caller is permitted to proceed or not.
971 int follow_down(struct path
*path
)
976 while (managed
= ACCESS_ONCE(path
->dentry
->d_flags
),
977 unlikely(managed
& DCACHE_MANAGED_DENTRY
)) {
978 /* Allow the filesystem to manage the transit without i_mutex
981 * We indicate to the filesystem if someone is trying to mount
982 * something here. This gives autofs the chance to deny anyone
983 * other than its daemon the right to mount on its
986 * The filesystem may sleep at this point.
988 if (managed
& DCACHE_MANAGE_TRANSIT
) {
989 BUG_ON(!path
->dentry
->d_op
);
990 BUG_ON(!path
->dentry
->d_op
->d_manage
);
991 ret
= path
->dentry
->d_op
->d_manage(
992 path
->dentry
, false);
994 return ret
== -EISDIR
? 0 : ret
;
997 /* Transit to a mounted filesystem. */
998 if (managed
& DCACHE_MOUNTED
) {
999 struct vfsmount
*mounted
= lookup_mnt(path
);
1004 path
->mnt
= mounted
;
1005 path
->dentry
= dget(mounted
->mnt_root
);
1009 /* Don't handle automount points here */
1016 * Skip to top of mountpoint pile in refwalk mode for follow_dotdot()
1018 static void follow_mount(struct path
*path
)
1020 while (d_mountpoint(path
->dentry
)) {
1021 struct vfsmount
*mounted
= lookup_mnt(path
);
1026 path
->mnt
= mounted
;
1027 path
->dentry
= dget(mounted
->mnt_root
);
1031 static void follow_dotdot(struct nameidata
*nd
)
1036 struct dentry
*old
= nd
->path
.dentry
;
1038 if (nd
->path
.dentry
== nd
->root
.dentry
&&
1039 nd
->path
.mnt
== nd
->root
.mnt
) {
1042 if (nd
->path
.dentry
!= nd
->path
.mnt
->mnt_root
) {
1043 /* rare case of legitimate dget_parent()... */
1044 nd
->path
.dentry
= dget_parent(nd
->path
.dentry
);
1048 if (!follow_up(&nd
->path
))
1051 follow_mount(&nd
->path
);
1052 nd
->inode
= nd
->path
.dentry
->d_inode
;
1056 * Allocate a dentry with name and parent, and perform a parent
1057 * directory ->lookup on it. Returns the new dentry, or ERR_PTR
1058 * on error. parent->d_inode->i_mutex must be held. d_lookup must
1059 * have verified that no child exists while under i_mutex.
1061 static struct dentry
*d_alloc_and_lookup(struct dentry
*parent
,
1062 struct qstr
*name
, struct nameidata
*nd
)
1064 struct inode
*inode
= parent
->d_inode
;
1065 struct dentry
*dentry
;
1068 /* Don't create child dentry for a dead directory. */
1069 if (unlikely(IS_DEADDIR(inode
)))
1070 return ERR_PTR(-ENOENT
);
1072 dentry
= d_alloc(parent
, name
);
1073 if (unlikely(!dentry
))
1074 return ERR_PTR(-ENOMEM
);
1076 old
= inode
->i_op
->lookup(inode
, dentry
, nd
);
1077 if (unlikely(old
)) {
1085 * We already have a dentry, but require a lookup to be performed on the parent
1086 * directory to fill in d_inode. Returns the new dentry, or ERR_PTR on error.
1087 * parent->d_inode->i_mutex must be held. d_lookup must have verified that no
1088 * child exists while under i_mutex.
1090 static struct dentry
*d_inode_lookup(struct dentry
*parent
, struct dentry
*dentry
,
1091 struct nameidata
*nd
)
1093 struct inode
*inode
= parent
->d_inode
;
1096 /* Don't create child dentry for a dead directory. */
1097 if (unlikely(IS_DEADDIR(inode
)))
1098 return ERR_PTR(-ENOENT
);
1100 old
= inode
->i_op
->lookup(inode
, dentry
, nd
);
1101 if (unlikely(old
)) {
1109 * It's more convoluted than I'd like it to be, but... it's still fairly
1110 * small and for now I'd prefer to have fast path as straight as possible.
1111 * It _is_ time-critical.
1113 static int do_lookup(struct nameidata
*nd
, struct qstr
*name
,
1114 struct path
*path
, struct inode
**inode
)
1116 struct vfsmount
*mnt
= nd
->path
.mnt
;
1117 struct dentry
*dentry
, *parent
= nd
->path
.dentry
;
1123 * Rename seqlock is not required here because in the off chance
1124 * of a false negative due to a concurrent rename, we're going to
1125 * do the non-racy lookup, below.
1127 if (nd
->flags
& LOOKUP_RCU
) {
1130 dentry
= __d_lookup_rcu(parent
, name
, &seq
, inode
);
1134 /* Memory barrier in read_seqcount_begin of child is enough */
1135 if (__read_seqcount_retry(&parent
->d_seq
, nd
->seq
))
1139 if (unlikely(dentry
->d_flags
& DCACHE_OP_REVALIDATE
)) {
1140 status
= d_revalidate(dentry
, nd
);
1141 if (unlikely(status
<= 0)) {
1142 if (status
!= -ECHILD
)
1147 if (unlikely(d_need_lookup(dentry
)))
1150 path
->dentry
= dentry
;
1151 if (unlikely(!__follow_mount_rcu(nd
, path
, inode
)))
1153 if (unlikely(path
->dentry
->d_flags
& DCACHE_NEED_AUTOMOUNT
))
1157 if (unlazy_walk(nd
, dentry
))
1160 dentry
= __d_lookup(parent
, name
);
1163 if (dentry
&& unlikely(d_need_lookup(dentry
))) {
1168 if (unlikely(!dentry
)) {
1169 struct inode
*dir
= parent
->d_inode
;
1170 BUG_ON(nd
->inode
!= dir
);
1172 mutex_lock(&dir
->i_mutex
);
1173 dentry
= d_lookup(parent
, name
);
1174 if (likely(!dentry
)) {
1175 dentry
= d_alloc_and_lookup(parent
, name
, nd
);
1176 if (IS_ERR(dentry
)) {
1177 mutex_unlock(&dir
->i_mutex
);
1178 return PTR_ERR(dentry
);
1183 } else if (unlikely(d_need_lookup(dentry
))) {
1184 dentry
= d_inode_lookup(parent
, dentry
, nd
);
1185 if (IS_ERR(dentry
)) {
1186 mutex_unlock(&dir
->i_mutex
);
1187 return PTR_ERR(dentry
);
1193 mutex_unlock(&dir
->i_mutex
);
1195 if (unlikely(dentry
->d_flags
& DCACHE_OP_REVALIDATE
) && need_reval
)
1196 status
= d_revalidate(dentry
, nd
);
1197 if (unlikely(status
<= 0)) {
1202 if (!d_invalidate(dentry
)) {
1211 path
->dentry
= dentry
;
1212 err
= follow_managed(path
, nd
->flags
);
1213 if (unlikely(err
< 0)) {
1214 path_put_conditional(path
, nd
);
1218 nd
->flags
|= LOOKUP_JUMPED
;
1219 *inode
= path
->dentry
->d_inode
;
1223 static inline int may_lookup(struct nameidata
*nd
)
1225 if (nd
->flags
& LOOKUP_RCU
) {
1226 int err
= inode_permission(nd
->inode
, MAY_EXEC
|MAY_NOT_BLOCK
);
1229 if (unlazy_walk(nd
, NULL
))
1232 return inode_permission(nd
->inode
, MAY_EXEC
);
1235 static inline int handle_dots(struct nameidata
*nd
, int type
)
1237 if (type
== LAST_DOTDOT
) {
1238 if (nd
->flags
& LOOKUP_RCU
) {
1239 if (follow_dotdot_rcu(nd
))
1247 static void terminate_walk(struct nameidata
*nd
)
1249 if (!(nd
->flags
& LOOKUP_RCU
)) {
1250 path_put(&nd
->path
);
1252 nd
->flags
&= ~LOOKUP_RCU
;
1253 if (!(nd
->flags
& LOOKUP_ROOT
))
1254 nd
->root
.mnt
= NULL
;
1256 br_read_unlock(vfsmount_lock
);
1261 * Do we need to follow links? We _really_ want to be able
1262 * to do this check without having to look at inode->i_op,
1263 * so we keep a cache of "no, this doesn't need follow_link"
1264 * for the common case.
1266 static inline int should_follow_link(struct inode
*inode
, int follow
)
1268 if (unlikely(!(inode
->i_opflags
& IOP_NOFOLLOW
))) {
1269 if (likely(inode
->i_op
->follow_link
))
1272 /* This gets set once for the inode lifetime */
1273 spin_lock(&inode
->i_lock
);
1274 inode
->i_opflags
|= IOP_NOFOLLOW
;
1275 spin_unlock(&inode
->i_lock
);
1280 static inline int walk_component(struct nameidata
*nd
, struct path
*path
,
1281 struct qstr
*name
, int type
, int follow
)
1283 struct inode
*inode
;
1286 * "." and ".." are special - ".." especially so because it has
1287 * to be able to know about the current root directory and
1288 * parent relationships.
1290 if (unlikely(type
!= LAST_NORM
))
1291 return handle_dots(nd
, type
);
1292 err
= do_lookup(nd
, name
, path
, &inode
);
1293 if (unlikely(err
)) {
1298 path_to_nameidata(path
, nd
);
1302 if (should_follow_link(inode
, follow
)) {
1303 if (nd
->flags
& LOOKUP_RCU
) {
1304 if (unlikely(unlazy_walk(nd
, path
->dentry
))) {
1309 BUG_ON(inode
!= path
->dentry
->d_inode
);
1312 path_to_nameidata(path
, nd
);
1318 * This limits recursive symlink follows to 8, while
1319 * limiting consecutive symlinks to 40.
1321 * Without that kind of total limit, nasty chains of consecutive
1322 * symlinks can cause almost arbitrarily long lookups.
1324 static inline int nested_symlink(struct path
*path
, struct nameidata
*nd
)
1328 if (unlikely(current
->link_count
>= MAX_NESTED_LINKS
)) {
1329 path_put_conditional(path
, nd
);
1330 path_put(&nd
->path
);
1333 BUG_ON(nd
->depth
>= MAX_NESTED_LINKS
);
1336 current
->link_count
++;
1339 struct path link
= *path
;
1342 res
= follow_link(&link
, nd
, &cookie
);
1344 res
= walk_component(nd
, path
, &nd
->last
,
1345 nd
->last_type
, LOOKUP_FOLLOW
);
1346 put_link(nd
, &link
, cookie
);
1349 current
->link_count
--;
1355 * We really don't want to look at inode->i_op->lookup
1356 * when we don't have to. So we keep a cache bit in
1357 * the inode ->i_opflags field that says "yes, we can
1358 * do lookup on this inode".
1360 static inline int can_lookup(struct inode
*inode
)
1362 if (likely(inode
->i_opflags
& IOP_LOOKUP
))
1364 if (likely(!inode
->i_op
->lookup
))
1367 /* We do this once for the lifetime of the inode */
1368 spin_lock(&inode
->i_lock
);
1369 inode
->i_opflags
|= IOP_LOOKUP
;
1370 spin_unlock(&inode
->i_lock
);
1376 * This is the basic name resolution function, turning a pathname into
1377 * the final dentry. We expect 'base' to be positive and a directory.
1379 * Returns 0 and nd will have valid dentry and mnt on success.
1380 * Returns error and drops reference to input namei data on failure.
1382 static int link_path_walk(const char *name
, struct nameidata
*nd
)
1392 /* At this point we know we have a real path component. */
1399 err
= may_lookup(nd
);
1404 c
= *(const unsigned char *)name
;
1406 hash
= init_name_hash();
1409 hash
= partial_name_hash(c
, hash
);
1410 c
= *(const unsigned char *)name
;
1411 } while (c
&& (c
!= '/'));
1412 this.len
= name
- (const char *) this.name
;
1413 this.hash
= end_name_hash(hash
);
1416 if (this.name
[0] == '.') switch (this.len
) {
1418 if (this.name
[1] == '.') {
1420 nd
->flags
|= LOOKUP_JUMPED
;
1426 if (likely(type
== LAST_NORM
)) {
1427 struct dentry
*parent
= nd
->path
.dentry
;
1428 nd
->flags
&= ~LOOKUP_JUMPED
;
1429 if (unlikely(parent
->d_flags
& DCACHE_OP_HASH
)) {
1430 err
= parent
->d_op
->d_hash(parent
, nd
->inode
,
1437 /* remove trailing slashes? */
1439 goto last_component
;
1440 while (*++name
== '/');
1442 goto last_component
;
1444 err
= walk_component(nd
, &next
, &this, type
, LOOKUP_FOLLOW
);
1449 err
= nested_symlink(&next
, nd
);
1453 if (can_lookup(nd
->inode
))
1457 /* here ends the main loop */
1461 nd
->last_type
= type
;
1468 static int path_init(int dfd
, const char *name
, unsigned int flags
,
1469 struct nameidata
*nd
, struct file
**fp
)
1475 nd
->last_type
= LAST_ROOT
; /* if there are only slashes... */
1476 nd
->flags
= flags
| LOOKUP_JUMPED
;
1478 if (flags
& LOOKUP_ROOT
) {
1479 struct inode
*inode
= nd
->root
.dentry
->d_inode
;
1481 if (!inode
->i_op
->lookup
)
1483 retval
= inode_permission(inode
, MAY_EXEC
);
1487 nd
->path
= nd
->root
;
1489 if (flags
& LOOKUP_RCU
) {
1490 br_read_lock(vfsmount_lock
);
1492 nd
->seq
= __read_seqcount_begin(&nd
->path
.dentry
->d_seq
);
1494 path_get(&nd
->path
);
1499 nd
->root
.mnt
= NULL
;
1502 if (flags
& LOOKUP_RCU
) {
1503 br_read_lock(vfsmount_lock
);
1508 path_get(&nd
->root
);
1510 nd
->path
= nd
->root
;
1511 } else if (dfd
== AT_FDCWD
) {
1512 if (flags
& LOOKUP_RCU
) {
1513 struct fs_struct
*fs
= current
->fs
;
1516 br_read_lock(vfsmount_lock
);
1520 seq
= read_seqcount_begin(&fs
->seq
);
1522 nd
->seq
= __read_seqcount_begin(&nd
->path
.dentry
->d_seq
);
1523 } while (read_seqcount_retry(&fs
->seq
, seq
));
1525 get_fs_pwd(current
->fs
, &nd
->path
);
1528 struct dentry
*dentry
;
1530 file
= fget_raw_light(dfd
, &fput_needed
);
1535 dentry
= file
->f_path
.dentry
;
1539 if (!S_ISDIR(dentry
->d_inode
->i_mode
))
1542 retval
= inode_permission(dentry
->d_inode
, MAY_EXEC
);
1547 nd
->path
= file
->f_path
;
1548 if (flags
& LOOKUP_RCU
) {
1551 nd
->seq
= __read_seqcount_begin(&nd
->path
.dentry
->d_seq
);
1552 br_read_lock(vfsmount_lock
);
1555 path_get(&file
->f_path
);
1556 fput_light(file
, fput_needed
);
1560 nd
->inode
= nd
->path
.dentry
->d_inode
;
1564 fput_light(file
, fput_needed
);
1569 static inline int lookup_last(struct nameidata
*nd
, struct path
*path
)
1571 if (nd
->last_type
== LAST_NORM
&& nd
->last
.name
[nd
->last
.len
])
1572 nd
->flags
|= LOOKUP_FOLLOW
| LOOKUP_DIRECTORY
;
1574 nd
->flags
&= ~LOOKUP_PARENT
;
1575 return walk_component(nd
, path
, &nd
->last
, nd
->last_type
,
1576 nd
->flags
& LOOKUP_FOLLOW
);
1579 /* Returns 0 and nd will be valid on success; Retuns error, otherwise. */
1580 static int path_lookupat(int dfd
, const char *name
,
1581 unsigned int flags
, struct nameidata
*nd
)
1583 struct file
*base
= NULL
;
1588 * Path walking is largely split up into 2 different synchronisation
1589 * schemes, rcu-walk and ref-walk (explained in
1590 * Documentation/filesystems/path-lookup.txt). These share much of the
1591 * path walk code, but some things particularly setup, cleanup, and
1592 * following mounts are sufficiently divergent that functions are
1593 * duplicated. Typically there is a function foo(), and its RCU
1594 * analogue, foo_rcu().
1596 * -ECHILD is the error number of choice (just to avoid clashes) that
1597 * is returned if some aspect of an rcu-walk fails. Such an error must
1598 * be handled by restarting a traditional ref-walk (which will always
1599 * be able to complete).
1601 err
= path_init(dfd
, name
, flags
| LOOKUP_PARENT
, nd
, &base
);
1606 current
->total_link_count
= 0;
1607 err
= link_path_walk(name
, nd
);
1609 if (!err
&& !(flags
& LOOKUP_PARENT
)) {
1610 err
= lookup_last(nd
, &path
);
1613 struct path link
= path
;
1614 nd
->flags
|= LOOKUP_PARENT
;
1615 err
= follow_link(&link
, nd
, &cookie
);
1617 err
= lookup_last(nd
, &path
);
1618 put_link(nd
, &link
, cookie
);
1623 err
= complete_walk(nd
);
1625 if (!err
&& nd
->flags
& LOOKUP_DIRECTORY
) {
1626 if (!nd
->inode
->i_op
->lookup
) {
1627 path_put(&nd
->path
);
1635 if (nd
->root
.mnt
&& !(nd
->flags
& LOOKUP_ROOT
)) {
1636 path_put(&nd
->root
);
1637 nd
->root
.mnt
= NULL
;
1642 static int do_path_lookup(int dfd
, const char *name
,
1643 unsigned int flags
, struct nameidata
*nd
)
1645 int retval
= path_lookupat(dfd
, name
, flags
| LOOKUP_RCU
, nd
);
1646 if (unlikely(retval
== -ECHILD
))
1647 retval
= path_lookupat(dfd
, name
, flags
, nd
);
1648 if (unlikely(retval
== -ESTALE
))
1649 retval
= path_lookupat(dfd
, name
, flags
| LOOKUP_REVAL
, nd
);
1651 if (likely(!retval
)) {
1652 if (unlikely(!audit_dummy_context())) {
1653 if (nd
->path
.dentry
&& nd
->inode
)
1654 audit_inode(name
, nd
->path
.dentry
);
1660 int kern_path_parent(const char *name
, struct nameidata
*nd
)
1662 return do_path_lookup(AT_FDCWD
, name
, LOOKUP_PARENT
, nd
);
1665 int kern_path(const char *name
, unsigned int flags
, struct path
*path
)
1667 struct nameidata nd
;
1668 int res
= do_path_lookup(AT_FDCWD
, name
, flags
, &nd
);
1675 * vfs_path_lookup - lookup a file path relative to a dentry-vfsmount pair
1676 * @dentry: pointer to dentry of the base directory
1677 * @mnt: pointer to vfs mount of the base directory
1678 * @name: pointer to file name
1679 * @flags: lookup flags
1680 * @path: pointer to struct path to fill
1682 int vfs_path_lookup(struct dentry
*dentry
, struct vfsmount
*mnt
,
1683 const char *name
, unsigned int flags
,
1686 struct nameidata nd
;
1688 nd
.root
.dentry
= dentry
;
1690 BUG_ON(flags
& LOOKUP_PARENT
);
1691 /* the first argument of do_path_lookup() is ignored with LOOKUP_ROOT */
1692 err
= do_path_lookup(AT_FDCWD
, name
, flags
| LOOKUP_ROOT
, &nd
);
1698 static struct dentry
*__lookup_hash(struct qstr
*name
,
1699 struct dentry
*base
, struct nameidata
*nd
)
1701 struct inode
*inode
= base
->d_inode
;
1702 struct dentry
*dentry
;
1705 err
= inode_permission(inode
, MAY_EXEC
);
1707 return ERR_PTR(err
);
1710 * Don't bother with __d_lookup: callers are for creat as
1711 * well as unlink, so a lot of the time it would cost
1714 dentry
= d_lookup(base
, name
);
1716 if (dentry
&& d_need_lookup(dentry
)) {
1718 * __lookup_hash is called with the parent dir's i_mutex already
1719 * held, so we are good to go here.
1721 dentry
= d_inode_lookup(base
, dentry
, nd
);
1726 if (dentry
&& (dentry
->d_flags
& DCACHE_OP_REVALIDATE
)) {
1727 int status
= d_revalidate(dentry
, nd
);
1728 if (unlikely(status
<= 0)) {
1730 * The dentry failed validation.
1731 * If d_revalidate returned 0 attempt to invalidate
1732 * the dentry otherwise d_revalidate is asking us
1733 * to return a fail status.
1737 return ERR_PTR(status
);
1738 } else if (!d_invalidate(dentry
)) {
1746 dentry
= d_alloc_and_lookup(base
, name
, nd
);
1752 * Restricted form of lookup. Doesn't follow links, single-component only,
1753 * needs parent already locked. Doesn't follow mounts.
1756 static struct dentry
*lookup_hash(struct nameidata
*nd
)
1758 return __lookup_hash(&nd
->last
, nd
->path
.dentry
, nd
);
1762 * lookup_one_len - filesystem helper to lookup single pathname component
1763 * @name: pathname component to lookup
1764 * @base: base directory to lookup from
1765 * @len: maximum length @len should be interpreted to
1767 * Note that this routine is purely a helper for filesystem usage and should
1768 * not be called by generic code. Also note that by using this function the
1769 * nameidata argument is passed to the filesystem methods and a filesystem
1770 * using this helper needs to be prepared for that.
1772 struct dentry
*lookup_one_len(const char *name
, struct dentry
*base
, int len
)
1778 WARN_ON_ONCE(!mutex_is_locked(&base
->d_inode
->i_mutex
));
1783 return ERR_PTR(-EACCES
);
1785 hash
= init_name_hash();
1787 c
= *(const unsigned char *)name
++;
1788 if (c
== '/' || c
== '\0')
1789 return ERR_PTR(-EACCES
);
1790 hash
= partial_name_hash(c
, hash
);
1792 this.hash
= end_name_hash(hash
);
1794 * See if the low-level filesystem might want
1795 * to use its own hash..
1797 if (base
->d_flags
& DCACHE_OP_HASH
) {
1798 int err
= base
->d_op
->d_hash(base
, base
->d_inode
, &this);
1800 return ERR_PTR(err
);
1803 return __lookup_hash(&this, base
, NULL
);
1806 int user_path_at_empty(int dfd
, const char __user
*name
, unsigned flags
,
1807 struct path
*path
, int *empty
)
1809 struct nameidata nd
;
1810 char *tmp
= getname_flags(name
, flags
, empty
);
1811 int err
= PTR_ERR(tmp
);
1814 BUG_ON(flags
& LOOKUP_PARENT
);
1816 err
= do_path_lookup(dfd
, tmp
, flags
, &nd
);
1824 int user_path_at(int dfd
, const char __user
*name
, unsigned flags
,
1827 return user_path_at_empty(dfd
, name
, flags
, path
, 0);
1830 static int user_path_parent(int dfd
, const char __user
*path
,
1831 struct nameidata
*nd
, char **name
)
1833 char *s
= getname(path
);
1839 error
= do_path_lookup(dfd
, s
, LOOKUP_PARENT
, nd
);
1849 * It's inline, so penalty for filesystems that don't use sticky bit is
1852 static inline int check_sticky(struct inode
*dir
, struct inode
*inode
)
1854 uid_t fsuid
= current_fsuid();
1856 if (!(dir
->i_mode
& S_ISVTX
))
1858 if (current_user_ns() != inode_userns(inode
))
1860 if (inode
->i_uid
== fsuid
)
1862 if (dir
->i_uid
== fsuid
)
1866 return !ns_capable(inode_userns(inode
), CAP_FOWNER
);
1870 * Check whether we can remove a link victim from directory dir, check
1871 * whether the type of victim is right.
1872 * 1. We can't do it if dir is read-only (done in permission())
1873 * 2. We should have write and exec permissions on dir
1874 * 3. We can't remove anything from append-only dir
1875 * 4. We can't do anything with immutable dir (done in permission())
1876 * 5. If the sticky bit on dir is set we should either
1877 * a. be owner of dir, or
1878 * b. be owner of victim, or
1879 * c. have CAP_FOWNER capability
1880 * 6. If the victim is append-only or immutable we can't do antyhing with
1881 * links pointing to it.
1882 * 7. If we were asked to remove a directory and victim isn't one - ENOTDIR.
1883 * 8. If we were asked to remove a non-directory and victim isn't one - EISDIR.
1884 * 9. We can't remove a root or mountpoint.
1885 * 10. We don't allow removal of NFS sillyrenamed files; it's handled by
1886 * nfs_async_unlink().
1888 static int may_delete(struct inode
*dir
,struct dentry
*victim
,int isdir
)
1892 if (!victim
->d_inode
)
1895 BUG_ON(victim
->d_parent
->d_inode
!= dir
);
1896 audit_inode_child(victim
, dir
);
1898 error
= inode_permission(dir
, MAY_WRITE
| MAY_EXEC
);
1903 if (check_sticky(dir
, victim
->d_inode
)||IS_APPEND(victim
->d_inode
)||
1904 IS_IMMUTABLE(victim
->d_inode
) || IS_SWAPFILE(victim
->d_inode
))
1907 if (!S_ISDIR(victim
->d_inode
->i_mode
))
1909 if (IS_ROOT(victim
))
1911 } else if (S_ISDIR(victim
->d_inode
->i_mode
))
1913 if (IS_DEADDIR(dir
))
1915 if (victim
->d_flags
& DCACHE_NFSFS_RENAMED
)
1920 /* Check whether we can create an object with dentry child in directory
1922 * 1. We can't do it if child already exists (open has special treatment for
1923 * this case, but since we are inlined it's OK)
1924 * 2. We can't do it if dir is read-only (done in permission())
1925 * 3. We should have write and exec permissions on dir
1926 * 4. We can't do it if dir is immutable (done in permission())
1928 static inline int may_create(struct inode
*dir
, struct dentry
*child
)
1932 if (IS_DEADDIR(dir
))
1934 return inode_permission(dir
, MAY_WRITE
| MAY_EXEC
);
1938 * p1 and p2 should be directories on the same fs.
1940 struct dentry
*lock_rename(struct dentry
*p1
, struct dentry
*p2
)
1945 mutex_lock_nested(&p1
->d_inode
->i_mutex
, I_MUTEX_PARENT
);
1949 mutex_lock(&p1
->d_inode
->i_sb
->s_vfs_rename_mutex
);
1951 p
= d_ancestor(p2
, p1
);
1953 mutex_lock_nested(&p2
->d_inode
->i_mutex
, I_MUTEX_PARENT
);
1954 mutex_lock_nested(&p1
->d_inode
->i_mutex
, I_MUTEX_CHILD
);
1958 p
= d_ancestor(p1
, p2
);
1960 mutex_lock_nested(&p1
->d_inode
->i_mutex
, I_MUTEX_PARENT
);
1961 mutex_lock_nested(&p2
->d_inode
->i_mutex
, I_MUTEX_CHILD
);
1965 mutex_lock_nested(&p1
->d_inode
->i_mutex
, I_MUTEX_PARENT
);
1966 mutex_lock_nested(&p2
->d_inode
->i_mutex
, I_MUTEX_CHILD
);
1970 void unlock_rename(struct dentry
*p1
, struct dentry
*p2
)
1972 mutex_unlock(&p1
->d_inode
->i_mutex
);
1974 mutex_unlock(&p2
->d_inode
->i_mutex
);
1975 mutex_unlock(&p1
->d_inode
->i_sb
->s_vfs_rename_mutex
);
1979 int vfs_create(struct inode
*dir
, struct dentry
*dentry
, int mode
,
1980 struct nameidata
*nd
)
1982 int error
= may_create(dir
, dentry
);
1987 if (!dir
->i_op
->create
)
1988 return -EACCES
; /* shouldn't it be ENOSYS? */
1991 error
= security_inode_create(dir
, dentry
, mode
);
1994 error
= dir
->i_op
->create(dir
, dentry
, mode
, nd
);
1996 fsnotify_create(dir
, dentry
);
2000 static int may_open(struct path
*path
, int acc_mode
, int flag
)
2002 struct dentry
*dentry
= path
->dentry
;
2003 struct inode
*inode
= dentry
->d_inode
;
2013 switch (inode
->i_mode
& S_IFMT
) {
2017 if (acc_mode
& MAY_WRITE
)
2022 if (path
->mnt
->mnt_flags
& MNT_NODEV
)
2031 error
= inode_permission(inode
, acc_mode
);
2036 * An append-only file must be opened in append mode for writing.
2038 if (IS_APPEND(inode
)) {
2039 if ((flag
& O_ACCMODE
) != O_RDONLY
&& !(flag
& O_APPEND
))
2045 /* O_NOATIME can only be set by the owner or superuser */
2046 if (flag
& O_NOATIME
&& !inode_owner_or_capable(inode
))
2050 * Ensure there are no outstanding leases on the file.
2052 return break_lease(inode
, flag
);
2055 static int handle_truncate(struct file
*filp
)
2057 struct path
*path
= &filp
->f_path
;
2058 struct inode
*inode
= path
->dentry
->d_inode
;
2059 int error
= get_write_access(inode
);
2063 * Refuse to truncate files with mandatory locks held on them.
2065 error
= locks_verify_locked(inode
);
2067 error
= security_path_truncate(path
);
2069 error
= do_truncate(path
->dentry
, 0,
2070 ATTR_MTIME
|ATTR_CTIME
|ATTR_OPEN
,
2073 put_write_access(inode
);
2077 static inline int open_to_namei_flags(int flag
)
2079 if ((flag
& O_ACCMODE
) == 3)
2085 * Handle the last step of open()
2087 static struct file
*do_last(struct nameidata
*nd
, struct path
*path
,
2088 const struct open_flags
*op
, const char *pathname
)
2090 struct dentry
*dir
= nd
->path
.dentry
;
2091 struct dentry
*dentry
;
2092 int open_flag
= op
->open_flag
;
2093 int will_truncate
= open_flag
& O_TRUNC
;
2095 int acc_mode
= op
->acc_mode
;
2099 nd
->flags
&= ~LOOKUP_PARENT
;
2100 nd
->flags
|= op
->intent
;
2102 switch (nd
->last_type
) {
2105 error
= handle_dots(nd
, nd
->last_type
);
2107 return ERR_PTR(error
);
2110 error
= complete_walk(nd
);
2112 return ERR_PTR(error
);
2113 audit_inode(pathname
, nd
->path
.dentry
);
2114 if (open_flag
& O_CREAT
) {
2120 error
= complete_walk(nd
);
2122 return ERR_PTR(error
);
2123 audit_inode(pathname
, dir
);
2127 if (!(open_flag
& O_CREAT
)) {
2129 if (nd
->last
.name
[nd
->last
.len
])
2130 nd
->flags
|= LOOKUP_FOLLOW
| LOOKUP_DIRECTORY
;
2131 if (open_flag
& O_PATH
&& !(nd
->flags
& LOOKUP_FOLLOW
))
2133 /* we _can_ be in RCU mode here */
2134 error
= walk_component(nd
, path
, &nd
->last
, LAST_NORM
,
2137 return ERR_PTR(error
);
2138 if (error
) /* symlink */
2141 error
= complete_walk(nd
);
2143 return ERR_PTR(-ECHILD
);
2146 if (nd
->flags
& LOOKUP_DIRECTORY
) {
2147 if (!nd
->inode
->i_op
->lookup
)
2150 audit_inode(pathname
, nd
->path
.dentry
);
2154 /* create side of things */
2156 * This will *only* deal with leaving RCU mode - LOOKUP_JUMPED has been
2157 * cleared when we got to the last component we are about to look up
2159 error
= complete_walk(nd
);
2161 return ERR_PTR(error
);
2163 audit_inode(pathname
, dir
);
2165 /* trailing slashes? */
2166 if (nd
->last
.name
[nd
->last
.len
])
2169 mutex_lock(&dir
->d_inode
->i_mutex
);
2171 dentry
= lookup_hash(nd
);
2172 error
= PTR_ERR(dentry
);
2173 if (IS_ERR(dentry
)) {
2174 mutex_unlock(&dir
->d_inode
->i_mutex
);
2178 path
->dentry
= dentry
;
2179 path
->mnt
= nd
->path
.mnt
;
2181 /* Negative dentry, just create the file */
2182 if (!dentry
->d_inode
) {
2183 int mode
= op
->mode
;
2184 if (!IS_POSIXACL(dir
->d_inode
))
2185 mode
&= ~current_umask();
2187 * This write is needed to ensure that a
2188 * rw->ro transition does not occur between
2189 * the time when the file is created and when
2190 * a permanent write count is taken through
2191 * the 'struct file' in nameidata_to_filp().
2193 error
= mnt_want_write(nd
->path
.mnt
);
2195 goto exit_mutex_unlock
;
2197 /* Don't check for write permission, don't truncate */
2198 open_flag
&= ~O_TRUNC
;
2200 acc_mode
= MAY_OPEN
;
2201 error
= security_path_mknod(&nd
->path
, dentry
, mode
, 0);
2203 goto exit_mutex_unlock
;
2204 error
= vfs_create(dir
->d_inode
, dentry
, mode
, nd
);
2206 goto exit_mutex_unlock
;
2207 mutex_unlock(&dir
->d_inode
->i_mutex
);
2208 dput(nd
->path
.dentry
);
2209 nd
->path
.dentry
= dentry
;
2214 * It already exists.
2216 mutex_unlock(&dir
->d_inode
->i_mutex
);
2217 audit_inode(pathname
, path
->dentry
);
2220 if (open_flag
& O_EXCL
)
2223 error
= follow_managed(path
, nd
->flags
);
2228 nd
->flags
|= LOOKUP_JUMPED
;
2231 if (!path
->dentry
->d_inode
)
2234 if (path
->dentry
->d_inode
->i_op
->follow_link
)
2237 path_to_nameidata(path
, nd
);
2238 nd
->inode
= path
->dentry
->d_inode
;
2239 /* Why this, you ask? _Now_ we might have grown LOOKUP_JUMPED... */
2240 error
= complete_walk(nd
);
2244 if (S_ISDIR(nd
->inode
->i_mode
))
2247 if (!S_ISREG(nd
->inode
->i_mode
))
2250 if (will_truncate
) {
2251 error
= mnt_want_write(nd
->path
.mnt
);
2257 error
= may_open(&nd
->path
, acc_mode
, open_flag
);
2260 filp
= nameidata_to_filp(nd
);
2261 if (!IS_ERR(filp
)) {
2262 error
= ima_file_check(filp
, op
->acc_mode
);
2265 filp
= ERR_PTR(error
);
2268 if (!IS_ERR(filp
)) {
2269 if (will_truncate
) {
2270 error
= handle_truncate(filp
);
2273 filp
= ERR_PTR(error
);
2279 mnt_drop_write(nd
->path
.mnt
);
2280 path_put(&nd
->path
);
2284 mutex_unlock(&dir
->d_inode
->i_mutex
);
2286 path_put_conditional(path
, nd
);
2288 filp
= ERR_PTR(error
);
2292 static struct file
*path_openat(int dfd
, const char *pathname
,
2293 struct nameidata
*nd
, const struct open_flags
*op
, int flags
)
2295 struct file
*base
= NULL
;
2300 filp
= get_empty_filp();
2302 return ERR_PTR(-ENFILE
);
2304 filp
->f_flags
= op
->open_flag
;
2305 nd
->intent
.open
.file
= filp
;
2306 nd
->intent
.open
.flags
= open_to_namei_flags(op
->open_flag
);
2307 nd
->intent
.open
.create_mode
= op
->mode
;
2309 error
= path_init(dfd
, pathname
, flags
| LOOKUP_PARENT
, nd
, &base
);
2310 if (unlikely(error
))
2313 current
->total_link_count
= 0;
2314 error
= link_path_walk(pathname
, nd
);
2315 if (unlikely(error
))
2318 filp
= do_last(nd
, &path
, op
, pathname
);
2319 while (unlikely(!filp
)) { /* trailing symlink */
2320 struct path link
= path
;
2322 if (!(nd
->flags
& LOOKUP_FOLLOW
)) {
2323 path_put_conditional(&path
, nd
);
2324 path_put(&nd
->path
);
2325 filp
= ERR_PTR(-ELOOP
);
2328 nd
->flags
|= LOOKUP_PARENT
;
2329 nd
->flags
&= ~(LOOKUP_OPEN
|LOOKUP_CREATE
|LOOKUP_EXCL
);
2330 error
= follow_link(&link
, nd
, &cookie
);
2331 if (unlikely(error
))
2332 filp
= ERR_PTR(error
);
2334 filp
= do_last(nd
, &path
, op
, pathname
);
2335 put_link(nd
, &link
, cookie
);
2338 if (nd
->root
.mnt
&& !(nd
->flags
& LOOKUP_ROOT
))
2339 path_put(&nd
->root
);
2342 release_open_intent(nd
);
2346 filp
= ERR_PTR(error
);
2350 struct file
*do_filp_open(int dfd
, const char *pathname
,
2351 const struct open_flags
*op
, int flags
)
2353 struct nameidata nd
;
2356 filp
= path_openat(dfd
, pathname
, &nd
, op
, flags
| LOOKUP_RCU
);
2357 if (unlikely(filp
== ERR_PTR(-ECHILD
)))
2358 filp
= path_openat(dfd
, pathname
, &nd
, op
, flags
);
2359 if (unlikely(filp
== ERR_PTR(-ESTALE
)))
2360 filp
= path_openat(dfd
, pathname
, &nd
, op
, flags
| LOOKUP_REVAL
);
2364 struct file
*do_file_open_root(struct dentry
*dentry
, struct vfsmount
*mnt
,
2365 const char *name
, const struct open_flags
*op
, int flags
)
2367 struct nameidata nd
;
2371 nd
.root
.dentry
= dentry
;
2373 flags
|= LOOKUP_ROOT
;
2375 if (dentry
->d_inode
->i_op
->follow_link
&& op
->intent
& LOOKUP_OPEN
)
2376 return ERR_PTR(-ELOOP
);
2378 file
= path_openat(-1, name
, &nd
, op
, flags
| LOOKUP_RCU
);
2379 if (unlikely(file
== ERR_PTR(-ECHILD
)))
2380 file
= path_openat(-1, name
, &nd
, op
, flags
);
2381 if (unlikely(file
== ERR_PTR(-ESTALE
)))
2382 file
= path_openat(-1, name
, &nd
, op
, flags
| LOOKUP_REVAL
);
2386 struct dentry
*kern_path_create(int dfd
, const char *pathname
, struct path
*path
, int is_dir
)
2388 struct dentry
*dentry
= ERR_PTR(-EEXIST
);
2389 struct nameidata nd
;
2390 int error
= do_path_lookup(dfd
, pathname
, LOOKUP_PARENT
, &nd
);
2392 return ERR_PTR(error
);
2395 * Yucky last component or no last component at all?
2396 * (foo/., foo/.., /////)
2398 if (nd
.last_type
!= LAST_NORM
)
2400 nd
.flags
&= ~LOOKUP_PARENT
;
2401 nd
.flags
|= LOOKUP_CREATE
| LOOKUP_EXCL
;
2402 nd
.intent
.open
.flags
= O_EXCL
;
2405 * Do the final lookup.
2407 mutex_lock_nested(&nd
.path
.dentry
->d_inode
->i_mutex
, I_MUTEX_PARENT
);
2408 dentry
= lookup_hash(&nd
);
2412 if (dentry
->d_inode
)
2415 * Special case - lookup gave negative, but... we had foo/bar/
2416 * From the vfs_mknod() POV we just have a negative dentry -
2417 * all is fine. Let's be bastards - you had / on the end, you've
2418 * been asking for (non-existent) directory. -ENOENT for you.
2420 if (unlikely(!is_dir
&& nd
.last
.name
[nd
.last
.len
])) {
2422 dentry
= ERR_PTR(-ENOENT
);
2429 dentry
= ERR_PTR(-EEXIST
);
2431 mutex_unlock(&nd
.path
.dentry
->d_inode
->i_mutex
);
2436 EXPORT_SYMBOL(kern_path_create
);
2438 struct dentry
*user_path_create(int dfd
, const char __user
*pathname
, struct path
*path
, int is_dir
)
2440 char *tmp
= getname(pathname
);
2443 return ERR_CAST(tmp
);
2444 res
= kern_path_create(dfd
, tmp
, path
, is_dir
);
2448 EXPORT_SYMBOL(user_path_create
);
2450 int vfs_mknod(struct inode
*dir
, struct dentry
*dentry
, int mode
, dev_t dev
)
2452 int error
= may_create(dir
, dentry
);
2457 if ((S_ISCHR(mode
) || S_ISBLK(mode
)) &&
2458 !ns_capable(inode_userns(dir
), CAP_MKNOD
))
2461 if (!dir
->i_op
->mknod
)
2464 error
= devcgroup_inode_mknod(mode
, dev
);
2468 error
= security_inode_mknod(dir
, dentry
, mode
, dev
);
2472 error
= dir
->i_op
->mknod(dir
, dentry
, mode
, dev
);
2474 fsnotify_create(dir
, dentry
);
2478 static int may_mknod(mode_t mode
)
2480 switch (mode
& S_IFMT
) {
2486 case 0: /* zero mode translates to S_IFREG */
2495 SYSCALL_DEFINE4(mknodat
, int, dfd
, const char __user
*, filename
, int, mode
,
2498 struct dentry
*dentry
;
2505 dentry
= user_path_create(dfd
, filename
, &path
, 0);
2507 return PTR_ERR(dentry
);
2509 if (!IS_POSIXACL(path
.dentry
->d_inode
))
2510 mode
&= ~current_umask();
2511 error
= may_mknod(mode
);
2514 error
= mnt_want_write(path
.mnt
);
2517 error
= security_path_mknod(&path
, dentry
, mode
, dev
);
2519 goto out_drop_write
;
2520 switch (mode
& S_IFMT
) {
2521 case 0: case S_IFREG
:
2522 error
= vfs_create(path
.dentry
->d_inode
,dentry
,mode
,NULL
);
2524 case S_IFCHR
: case S_IFBLK
:
2525 error
= vfs_mknod(path
.dentry
->d_inode
,dentry
,mode
,
2526 new_decode_dev(dev
));
2528 case S_IFIFO
: case S_IFSOCK
:
2529 error
= vfs_mknod(path
.dentry
->d_inode
,dentry
,mode
,0);
2533 mnt_drop_write(path
.mnt
);
2536 mutex_unlock(&path
.dentry
->d_inode
->i_mutex
);
2542 SYSCALL_DEFINE3(mknod
, const char __user
*, filename
, int, mode
, unsigned, dev
)
2544 return sys_mknodat(AT_FDCWD
, filename
, mode
, dev
);
2547 int vfs_mkdir(struct inode
*dir
, struct dentry
*dentry
, int mode
)
2549 int error
= may_create(dir
, dentry
);
2554 if (!dir
->i_op
->mkdir
)
2557 mode
&= (S_IRWXUGO
|S_ISVTX
);
2558 error
= security_inode_mkdir(dir
, dentry
, mode
);
2562 error
= dir
->i_op
->mkdir(dir
, dentry
, mode
);
2564 fsnotify_mkdir(dir
, dentry
);
2568 SYSCALL_DEFINE3(mkdirat
, int, dfd
, const char __user
*, pathname
, int, mode
)
2570 struct dentry
*dentry
;
2574 dentry
= user_path_create(dfd
, pathname
, &path
, 1);
2576 return PTR_ERR(dentry
);
2578 if (!IS_POSIXACL(path
.dentry
->d_inode
))
2579 mode
&= ~current_umask();
2580 error
= mnt_want_write(path
.mnt
);
2583 error
= security_path_mkdir(&path
, dentry
, mode
);
2585 goto out_drop_write
;
2586 error
= vfs_mkdir(path
.dentry
->d_inode
, dentry
, mode
);
2588 mnt_drop_write(path
.mnt
);
2591 mutex_unlock(&path
.dentry
->d_inode
->i_mutex
);
2596 SYSCALL_DEFINE2(mkdir
, const char __user
*, pathname
, int, mode
)
2598 return sys_mkdirat(AT_FDCWD
, pathname
, mode
);
2602 * The dentry_unhash() helper will try to drop the dentry early: we
2603 * should have a usage count of 2 if we're the only user of this
2604 * dentry, and if that is true (possibly after pruning the dcache),
2605 * then we drop the dentry now.
2607 * A low-level filesystem can, if it choses, legally
2610 * if (!d_unhashed(dentry))
2613 * if it cannot handle the case of removing a directory
2614 * that is still in use by something else..
2616 void dentry_unhash(struct dentry
*dentry
)
2618 shrink_dcache_parent(dentry
);
2619 spin_lock(&dentry
->d_lock
);
2620 if (dentry
->d_count
== 1)
2622 spin_unlock(&dentry
->d_lock
);
2625 int vfs_rmdir(struct inode
*dir
, struct dentry
*dentry
)
2627 int error
= may_delete(dir
, dentry
, 1);
2632 if (!dir
->i_op
->rmdir
)
2636 mutex_lock(&dentry
->d_inode
->i_mutex
);
2639 if (d_mountpoint(dentry
))
2642 error
= security_inode_rmdir(dir
, dentry
);
2646 shrink_dcache_parent(dentry
);
2647 error
= dir
->i_op
->rmdir(dir
, dentry
);
2651 dentry
->d_inode
->i_flags
|= S_DEAD
;
2655 mutex_unlock(&dentry
->d_inode
->i_mutex
);
2662 static long do_rmdir(int dfd
, const char __user
*pathname
)
2666 struct dentry
*dentry
;
2667 struct nameidata nd
;
2669 error
= user_path_parent(dfd
, pathname
, &nd
, &name
);
2673 switch(nd
.last_type
) {
2685 nd
.flags
&= ~LOOKUP_PARENT
;
2687 mutex_lock_nested(&nd
.path
.dentry
->d_inode
->i_mutex
, I_MUTEX_PARENT
);
2688 dentry
= lookup_hash(&nd
);
2689 error
= PTR_ERR(dentry
);
2692 if (!dentry
->d_inode
) {
2696 error
= mnt_want_write(nd
.path
.mnt
);
2699 error
= security_path_rmdir(&nd
.path
, dentry
);
2702 error
= vfs_rmdir(nd
.path
.dentry
->d_inode
, dentry
);
2704 mnt_drop_write(nd
.path
.mnt
);
2708 mutex_unlock(&nd
.path
.dentry
->d_inode
->i_mutex
);
2715 SYSCALL_DEFINE1(rmdir
, const char __user
*, pathname
)
2717 return do_rmdir(AT_FDCWD
, pathname
);
2720 int vfs_unlink(struct inode
*dir
, struct dentry
*dentry
)
2722 int error
= may_delete(dir
, dentry
, 0);
2727 if (!dir
->i_op
->unlink
)
2730 mutex_lock(&dentry
->d_inode
->i_mutex
);
2731 if (d_mountpoint(dentry
))
2734 error
= security_inode_unlink(dir
, dentry
);
2736 error
= dir
->i_op
->unlink(dir
, dentry
);
2741 mutex_unlock(&dentry
->d_inode
->i_mutex
);
2743 /* We don't d_delete() NFS sillyrenamed files--they still exist. */
2744 if (!error
&& !(dentry
->d_flags
& DCACHE_NFSFS_RENAMED
)) {
2745 fsnotify_link_count(dentry
->d_inode
);
2753 * Make sure that the actual truncation of the file will occur outside its
2754 * directory's i_mutex. Truncate can take a long time if there is a lot of
2755 * writeout happening, and we don't want to prevent access to the directory
2756 * while waiting on the I/O.
2758 static long do_unlinkat(int dfd
, const char __user
*pathname
)
2762 struct dentry
*dentry
;
2763 struct nameidata nd
;
2764 struct inode
*inode
= NULL
;
2766 error
= user_path_parent(dfd
, pathname
, &nd
, &name
);
2771 if (nd
.last_type
!= LAST_NORM
)
2774 nd
.flags
&= ~LOOKUP_PARENT
;
2776 mutex_lock_nested(&nd
.path
.dentry
->d_inode
->i_mutex
, I_MUTEX_PARENT
);
2777 dentry
= lookup_hash(&nd
);
2778 error
= PTR_ERR(dentry
);
2779 if (!IS_ERR(dentry
)) {
2780 /* Why not before? Because we want correct error value */
2781 if (nd
.last
.name
[nd
.last
.len
])
2783 inode
= dentry
->d_inode
;
2787 error
= mnt_want_write(nd
.path
.mnt
);
2790 error
= security_path_unlink(&nd
.path
, dentry
);
2793 error
= vfs_unlink(nd
.path
.dentry
->d_inode
, dentry
);
2795 mnt_drop_write(nd
.path
.mnt
);
2799 mutex_unlock(&nd
.path
.dentry
->d_inode
->i_mutex
);
2801 iput(inode
); /* truncate the inode here */
2808 error
= !dentry
->d_inode
? -ENOENT
:
2809 S_ISDIR(dentry
->d_inode
->i_mode
) ? -EISDIR
: -ENOTDIR
;
2813 SYSCALL_DEFINE3(unlinkat
, int, dfd
, const char __user
*, pathname
, int, flag
)
2815 if ((flag
& ~AT_REMOVEDIR
) != 0)
2818 if (flag
& AT_REMOVEDIR
)
2819 return do_rmdir(dfd
, pathname
);
2821 return do_unlinkat(dfd
, pathname
);
2824 SYSCALL_DEFINE1(unlink
, const char __user
*, pathname
)
2826 return do_unlinkat(AT_FDCWD
, pathname
);
2829 int vfs_symlink(struct inode
*dir
, struct dentry
*dentry
, const char *oldname
)
2831 int error
= may_create(dir
, dentry
);
2836 if (!dir
->i_op
->symlink
)
2839 error
= security_inode_symlink(dir
, dentry
, oldname
);
2843 error
= dir
->i_op
->symlink(dir
, dentry
, oldname
);
2845 fsnotify_create(dir
, dentry
);
2849 SYSCALL_DEFINE3(symlinkat
, const char __user
*, oldname
,
2850 int, newdfd
, const char __user
*, newname
)
2854 struct dentry
*dentry
;
2857 from
= getname(oldname
);
2859 return PTR_ERR(from
);
2861 dentry
= user_path_create(newdfd
, newname
, &path
, 0);
2862 error
= PTR_ERR(dentry
);
2866 error
= mnt_want_write(path
.mnt
);
2869 error
= security_path_symlink(&path
, dentry
, from
);
2871 goto out_drop_write
;
2872 error
= vfs_symlink(path
.dentry
->d_inode
, dentry
, from
);
2874 mnt_drop_write(path
.mnt
);
2877 mutex_unlock(&path
.dentry
->d_inode
->i_mutex
);
2884 SYSCALL_DEFINE2(symlink
, const char __user
*, oldname
, const char __user
*, newname
)
2886 return sys_symlinkat(oldname
, AT_FDCWD
, newname
);
2889 int vfs_link(struct dentry
*old_dentry
, struct inode
*dir
, struct dentry
*new_dentry
)
2891 struct inode
*inode
= old_dentry
->d_inode
;
2897 error
= may_create(dir
, new_dentry
);
2901 if (dir
->i_sb
!= inode
->i_sb
)
2905 * A link to an append-only or immutable file cannot be created.
2907 if (IS_APPEND(inode
) || IS_IMMUTABLE(inode
))
2909 if (!dir
->i_op
->link
)
2911 if (S_ISDIR(inode
->i_mode
))
2914 error
= security_inode_link(old_dentry
, dir
, new_dentry
);
2918 mutex_lock(&inode
->i_mutex
);
2919 /* Make sure we don't allow creating hardlink to an unlinked file */
2920 if (inode
->i_nlink
== 0)
2923 error
= dir
->i_op
->link(old_dentry
, dir
, new_dentry
);
2924 mutex_unlock(&inode
->i_mutex
);
2926 fsnotify_link(dir
, inode
, new_dentry
);
2931 * Hardlinks are often used in delicate situations. We avoid
2932 * security-related surprises by not following symlinks on the
2935 * We don't follow them on the oldname either to be compatible
2936 * with linux 2.0, and to avoid hard-linking to directories
2937 * and other special files. --ADM
2939 SYSCALL_DEFINE5(linkat
, int, olddfd
, const char __user
*, oldname
,
2940 int, newdfd
, const char __user
*, newname
, int, flags
)
2942 struct dentry
*new_dentry
;
2943 struct path old_path
, new_path
;
2947 if ((flags
& ~(AT_SYMLINK_FOLLOW
| AT_EMPTY_PATH
)) != 0)
2950 * To use null names we require CAP_DAC_READ_SEARCH
2951 * This ensures that not everyone will be able to create
2952 * handlink using the passed filedescriptor.
2954 if (flags
& AT_EMPTY_PATH
) {
2955 if (!capable(CAP_DAC_READ_SEARCH
))
2960 if (flags
& AT_SYMLINK_FOLLOW
)
2961 how
|= LOOKUP_FOLLOW
;
2963 error
= user_path_at(olddfd
, oldname
, how
, &old_path
);
2967 new_dentry
= user_path_create(newdfd
, newname
, &new_path
, 0);
2968 error
= PTR_ERR(new_dentry
);
2969 if (IS_ERR(new_dentry
))
2973 if (old_path
.mnt
!= new_path
.mnt
)
2975 error
= mnt_want_write(new_path
.mnt
);
2978 error
= security_path_link(old_path
.dentry
, &new_path
, new_dentry
);
2980 goto out_drop_write
;
2981 error
= vfs_link(old_path
.dentry
, new_path
.dentry
->d_inode
, new_dentry
);
2983 mnt_drop_write(new_path
.mnt
);
2986 mutex_unlock(&new_path
.dentry
->d_inode
->i_mutex
);
2987 path_put(&new_path
);
2989 path_put(&old_path
);
2994 SYSCALL_DEFINE2(link
, const char __user
*, oldname
, const char __user
*, newname
)
2996 return sys_linkat(AT_FDCWD
, oldname
, AT_FDCWD
, newname
, 0);
3000 * The worst of all namespace operations - renaming directory. "Perverted"
3001 * doesn't even start to describe it. Somebody in UCB had a heck of a trip...
3003 * a) we can get into loop creation. Check is done in is_subdir().
3004 * b) race potential - two innocent renames can create a loop together.
3005 * That's where 4.4 screws up. Current fix: serialization on
3006 * sb->s_vfs_rename_mutex. We might be more accurate, but that's another
3008 * c) we have to lock _three_ objects - parents and victim (if it exists).
3009 * And that - after we got ->i_mutex on parents (until then we don't know
3010 * whether the target exists). Solution: try to be smart with locking
3011 * order for inodes. We rely on the fact that tree topology may change
3012 * only under ->s_vfs_rename_mutex _and_ that parent of the object we
3013 * move will be locked. Thus we can rank directories by the tree
3014 * (ancestors first) and rank all non-directories after them.
3015 * That works since everybody except rename does "lock parent, lookup,
3016 * lock child" and rename is under ->s_vfs_rename_mutex.
3017 * HOWEVER, it relies on the assumption that any object with ->lookup()
3018 * has no more than 1 dentry. If "hybrid" objects will ever appear,
3019 * we'd better make sure that there's no link(2) for them.
3020 * d) conversion from fhandle to dentry may come in the wrong moment - when
3021 * we are removing the target. Solution: we will have to grab ->i_mutex
3022 * in the fhandle_to_dentry code. [FIXME - current nfsfh.c relies on
3023 * ->i_mutex on parents, which works but leads to some truly excessive
3026 static int vfs_rename_dir(struct inode
*old_dir
, struct dentry
*old_dentry
,
3027 struct inode
*new_dir
, struct dentry
*new_dentry
)
3030 struct inode
*target
= new_dentry
->d_inode
;
3033 * If we are going to change the parent - check write permissions,
3034 * we'll need to flip '..'.
3036 if (new_dir
!= old_dir
) {
3037 error
= inode_permission(old_dentry
->d_inode
, MAY_WRITE
);
3042 error
= security_inode_rename(old_dir
, old_dentry
, new_dir
, new_dentry
);
3048 mutex_lock(&target
->i_mutex
);
3051 if (d_mountpoint(old_dentry
) || d_mountpoint(new_dentry
))
3055 shrink_dcache_parent(new_dentry
);
3056 error
= old_dir
->i_op
->rename(old_dir
, old_dentry
, new_dir
, new_dentry
);
3061 target
->i_flags
|= S_DEAD
;
3062 dont_mount(new_dentry
);
3066 mutex_unlock(&target
->i_mutex
);
3069 if (!(old_dir
->i_sb
->s_type
->fs_flags
& FS_RENAME_DOES_D_MOVE
))
3070 d_move(old_dentry
,new_dentry
);
3074 static int vfs_rename_other(struct inode
*old_dir
, struct dentry
*old_dentry
,
3075 struct inode
*new_dir
, struct dentry
*new_dentry
)
3077 struct inode
*target
= new_dentry
->d_inode
;
3080 error
= security_inode_rename(old_dir
, old_dentry
, new_dir
, new_dentry
);
3086 mutex_lock(&target
->i_mutex
);
3089 if (d_mountpoint(old_dentry
)||d_mountpoint(new_dentry
))
3092 error
= old_dir
->i_op
->rename(old_dir
, old_dentry
, new_dir
, new_dentry
);
3097 dont_mount(new_dentry
);
3098 if (!(old_dir
->i_sb
->s_type
->fs_flags
& FS_RENAME_DOES_D_MOVE
))
3099 d_move(old_dentry
, new_dentry
);
3102 mutex_unlock(&target
->i_mutex
);
3107 int vfs_rename(struct inode
*old_dir
, struct dentry
*old_dentry
,
3108 struct inode
*new_dir
, struct dentry
*new_dentry
)
3111 int is_dir
= S_ISDIR(old_dentry
->d_inode
->i_mode
);
3112 const unsigned char *old_name
;
3114 if (old_dentry
->d_inode
== new_dentry
->d_inode
)
3117 error
= may_delete(old_dir
, old_dentry
, is_dir
);
3121 if (!new_dentry
->d_inode
)
3122 error
= may_create(new_dir
, new_dentry
);
3124 error
= may_delete(new_dir
, new_dentry
, is_dir
);
3128 if (!old_dir
->i_op
->rename
)
3131 old_name
= fsnotify_oldname_init(old_dentry
->d_name
.name
);
3134 error
= vfs_rename_dir(old_dir
,old_dentry
,new_dir
,new_dentry
);
3136 error
= vfs_rename_other(old_dir
,old_dentry
,new_dir
,new_dentry
);
3138 fsnotify_move(old_dir
, new_dir
, old_name
, is_dir
,
3139 new_dentry
->d_inode
, old_dentry
);
3140 fsnotify_oldname_free(old_name
);
3145 SYSCALL_DEFINE4(renameat
, int, olddfd
, const char __user
*, oldname
,
3146 int, newdfd
, const char __user
*, newname
)
3148 struct dentry
*old_dir
, *new_dir
;
3149 struct dentry
*old_dentry
, *new_dentry
;
3150 struct dentry
*trap
;
3151 struct nameidata oldnd
, newnd
;
3156 error
= user_path_parent(olddfd
, oldname
, &oldnd
, &from
);
3160 error
= user_path_parent(newdfd
, newname
, &newnd
, &to
);
3165 if (oldnd
.path
.mnt
!= newnd
.path
.mnt
)
3168 old_dir
= oldnd
.path
.dentry
;
3170 if (oldnd
.last_type
!= LAST_NORM
)
3173 new_dir
= newnd
.path
.dentry
;
3174 if (newnd
.last_type
!= LAST_NORM
)
3177 oldnd
.flags
&= ~LOOKUP_PARENT
;
3178 newnd
.flags
&= ~LOOKUP_PARENT
;
3179 newnd
.flags
|= LOOKUP_RENAME_TARGET
;
3181 trap
= lock_rename(new_dir
, old_dir
);
3183 old_dentry
= lookup_hash(&oldnd
);
3184 error
= PTR_ERR(old_dentry
);
3185 if (IS_ERR(old_dentry
))
3187 /* source must exist */
3189 if (!old_dentry
->d_inode
)
3191 /* unless the source is a directory trailing slashes give -ENOTDIR */
3192 if (!S_ISDIR(old_dentry
->d_inode
->i_mode
)) {
3194 if (oldnd
.last
.name
[oldnd
.last
.len
])
3196 if (newnd
.last
.name
[newnd
.last
.len
])
3199 /* source should not be ancestor of target */
3201 if (old_dentry
== trap
)
3203 new_dentry
= lookup_hash(&newnd
);
3204 error
= PTR_ERR(new_dentry
);
3205 if (IS_ERR(new_dentry
))
3207 /* target should not be an ancestor of source */
3209 if (new_dentry
== trap
)
3212 error
= mnt_want_write(oldnd
.path
.mnt
);
3215 error
= security_path_rename(&oldnd
.path
, old_dentry
,
3216 &newnd
.path
, new_dentry
);
3219 error
= vfs_rename(old_dir
->d_inode
, old_dentry
,
3220 new_dir
->d_inode
, new_dentry
);
3222 mnt_drop_write(oldnd
.path
.mnt
);
3228 unlock_rename(new_dir
, old_dir
);
3230 path_put(&newnd
.path
);
3233 path_put(&oldnd
.path
);
3239 SYSCALL_DEFINE2(rename
, const char __user
*, oldname
, const char __user
*, newname
)
3241 return sys_renameat(AT_FDCWD
, oldname
, AT_FDCWD
, newname
);
3244 int vfs_readlink(struct dentry
*dentry
, char __user
*buffer
, int buflen
, const char *link
)
3248 len
= PTR_ERR(link
);
3253 if (len
> (unsigned) buflen
)
3255 if (copy_to_user(buffer
, link
, len
))
3262 * A helper for ->readlink(). This should be used *ONLY* for symlinks that
3263 * have ->follow_link() touching nd only in nd_set_link(). Using (or not
3264 * using) it for any given inode is up to filesystem.
3266 int generic_readlink(struct dentry
*dentry
, char __user
*buffer
, int buflen
)
3268 struct nameidata nd
;
3273 cookie
= dentry
->d_inode
->i_op
->follow_link(dentry
, &nd
);
3275 return PTR_ERR(cookie
);
3277 res
= vfs_readlink(dentry
, buffer
, buflen
, nd_get_link(&nd
));
3278 if (dentry
->d_inode
->i_op
->put_link
)
3279 dentry
->d_inode
->i_op
->put_link(dentry
, &nd
, cookie
);
3283 int vfs_follow_link(struct nameidata
*nd
, const char *link
)
3285 return __vfs_follow_link(nd
, link
);
3288 /* get the link contents into pagecache */
3289 static char *page_getlink(struct dentry
* dentry
, struct page
**ppage
)
3293 struct address_space
*mapping
= dentry
->d_inode
->i_mapping
;
3294 page
= read_mapping_page(mapping
, 0, NULL
);
3299 nd_terminate_link(kaddr
, dentry
->d_inode
->i_size
, PAGE_SIZE
- 1);
3303 int page_readlink(struct dentry
*dentry
, char __user
*buffer
, int buflen
)
3305 struct page
*page
= NULL
;
3306 char *s
= page_getlink(dentry
, &page
);
3307 int res
= vfs_readlink(dentry
,buffer
,buflen
,s
);
3310 page_cache_release(page
);
3315 void *page_follow_link_light(struct dentry
*dentry
, struct nameidata
*nd
)
3317 struct page
*page
= NULL
;
3318 nd_set_link(nd
, page_getlink(dentry
, &page
));
3322 void page_put_link(struct dentry
*dentry
, struct nameidata
*nd
, void *cookie
)
3324 struct page
*page
= cookie
;
3328 page_cache_release(page
);
3333 * The nofs argument instructs pagecache_write_begin to pass AOP_FLAG_NOFS
3335 int __page_symlink(struct inode
*inode
, const char *symname
, int len
, int nofs
)
3337 struct address_space
*mapping
= inode
->i_mapping
;
3342 unsigned int flags
= AOP_FLAG_UNINTERRUPTIBLE
;
3344 flags
|= AOP_FLAG_NOFS
;
3347 err
= pagecache_write_begin(NULL
, mapping
, 0, len
-1,
3348 flags
, &page
, &fsdata
);
3352 kaddr
= kmap_atomic(page
, KM_USER0
);
3353 memcpy(kaddr
, symname
, len
-1);
3354 kunmap_atomic(kaddr
, KM_USER0
);
3356 err
= pagecache_write_end(NULL
, mapping
, 0, len
-1, len
-1,
3363 mark_inode_dirty(inode
);
3369 int page_symlink(struct inode
*inode
, const char *symname
, int len
)
3371 return __page_symlink(inode
, symname
, len
,
3372 !(mapping_gfp_mask(inode
->i_mapping
) & __GFP_FS
));
3375 const struct inode_operations page_symlink_inode_operations
= {
3376 .readlink
= generic_readlink
,
3377 .follow_link
= page_follow_link_light
,
3378 .put_link
= page_put_link
,
3381 EXPORT_SYMBOL(user_path_at
);
3382 EXPORT_SYMBOL(follow_down_one
);
3383 EXPORT_SYMBOL(follow_down
);
3384 EXPORT_SYMBOL(follow_up
);
3385 EXPORT_SYMBOL(get_write_access
); /* binfmt_aout */
3386 EXPORT_SYMBOL(getname
);
3387 EXPORT_SYMBOL(lock_rename
);
3388 EXPORT_SYMBOL(lookup_one_len
);
3389 EXPORT_SYMBOL(page_follow_link_light
);
3390 EXPORT_SYMBOL(page_put_link
);
3391 EXPORT_SYMBOL(page_readlink
);
3392 EXPORT_SYMBOL(__page_symlink
);
3393 EXPORT_SYMBOL(page_symlink
);
3394 EXPORT_SYMBOL(page_symlink_inode_operations
);
3395 EXPORT_SYMBOL(kern_path
);
3396 EXPORT_SYMBOL(vfs_path_lookup
);
3397 EXPORT_SYMBOL(inode_permission
);
3398 EXPORT_SYMBOL(unlock_rename
);
3399 EXPORT_SYMBOL(vfs_create
);
3400 EXPORT_SYMBOL(vfs_follow_link
);
3401 EXPORT_SYMBOL(vfs_link
);
3402 EXPORT_SYMBOL(vfs_mkdir
);
3403 EXPORT_SYMBOL(vfs_mknod
);
3404 EXPORT_SYMBOL(generic_permission
);
3405 EXPORT_SYMBOL(vfs_readlink
);
3406 EXPORT_SYMBOL(vfs_rename
);
3407 EXPORT_SYMBOL(vfs_rmdir
);
3408 EXPORT_SYMBOL(vfs_symlink
);
3409 EXPORT_SYMBOL(vfs_unlink
);
3410 EXPORT_SYMBOL(dentry_unhash
);
3411 EXPORT_SYMBOL(generic_readlink
);