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1 /*
2  *  linux/fs/namei.c
3  *
4  *  Copyright (C) 1991, 1992  Linus Torvalds
5  */
6
7 /*
8  * Some corrections by tytso.
9  */
10
11 /* [Feb 1997 T. Schoebel-Theuer] Complete rewrite of the pathname
12  * lookup logic.
13  */
14 /* [Feb-Apr 2000, AV] Rewrite to the new namespace architecture.
15  */
16
17 #include <linux/init.h>
18 #include <linux/export.h>
19 #include <linux/kernel.h>
20 #include <linux/slab.h>
21 #include <linux/fs.h>
22 #include <linux/namei.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 <linux/posix_acl.h>
37 #include <linux/hash.h>
38 #include <asm/uaccess.h>
39
40 #include "internal.h"
41 #include "mount.h"
42
43 /* [Feb-1997 T. Schoebel-Theuer]
44  * Fundamental changes in the pathname lookup mechanisms (namei)
45  * were necessary because of omirr.  The reason is that omirr needs
46  * to know the _real_ pathname, not the user-supplied one, in case
47  * of symlinks (and also when transname replacements occur).
48  *
49  * The new code replaces the old recursive symlink resolution with
50  * an iterative one (in case of non-nested symlink chains).  It does
51  * this with calls to <fs>_follow_link().
52  * As a side effect, dir_namei(), _namei() and follow_link() are now 
53  * replaced with a single function lookup_dentry() that can handle all 
54  * the special cases of the former code.
55  *
56  * With the new dcache, the pathname is stored at each inode, at least as
57  * long as the refcount of the inode is positive.  As a side effect, the
58  * size of the dcache depends on the inode cache and thus is dynamic.
59  *
60  * [29-Apr-1998 C. Scott Ananian] Updated above description of symlink
61  * resolution to correspond with current state of the code.
62  *
63  * Note that the symlink resolution is not *completely* iterative.
64  * There is still a significant amount of tail- and mid- recursion in
65  * the algorithm.  Also, note that <fs>_readlink() is not used in
66  * lookup_dentry(): lookup_dentry() on the result of <fs>_readlink()
67  * may return different results than <fs>_follow_link().  Many virtual
68  * filesystems (including /proc) exhibit this behavior.
69  */
70
71 /* [24-Feb-97 T. Schoebel-Theuer] Side effects caused by new implementation:
72  * New symlink semantics: when open() is called with flags O_CREAT | O_EXCL
73  * and the name already exists in form of a symlink, try to create the new
74  * name indicated by the symlink. The old code always complained that the
75  * name already exists, due to not following the symlink even if its target
76  * is nonexistent.  The new semantics affects also mknod() and link() when
77  * the name is a symlink pointing to a non-existent name.
78  *
79  * I don't know which semantics is the right one, since I have no access
80  * to standards. But I found by trial that HP-UX 9.0 has the full "new"
81  * semantics implemented, while SunOS 4.1.1 and Solaris (SunOS 5.4) have the
82  * "old" one. Personally, I think the new semantics is much more logical.
83  * Note that "ln old new" where "new" is a symlink pointing to a non-existing
84  * file does succeed in both HP-UX and SunOs, but not in Solaris
85  * and in the old Linux semantics.
86  */
87
88 /* [16-Dec-97 Kevin Buhr] For security reasons, we change some symlink
89  * semantics.  See the comments in "open_namei" and "do_link" below.
90  *
91  * [10-Sep-98 Alan Modra] Another symlink change.
92  */
93
94 /* [Feb-Apr 2000 AV] Complete rewrite. Rules for symlinks:
95  *      inside the path - always follow.
96  *      in the last component in creation/removal/renaming - never follow.
97  *      if LOOKUP_FOLLOW passed - follow.
98  *      if the pathname has trailing slashes - follow.
99  *      otherwise - don't follow.
100  * (applied in that order).
101  *
102  * [Jun 2000 AV] Inconsistent behaviour of open() in case if flags==O_CREAT
103  * restored for 2.4. This is the last surviving part of old 4.2BSD bug.
104  * During the 2.4 we need to fix the userland stuff depending on it -
105  * hopefully we will be able to get rid of that wart in 2.5. So far only
106  * XEmacs seems to be relying on it...
107  */
108 /*
109  * [Sep 2001 AV] Single-semaphore locking scheme (kudos to David Holland)
110  * implemented.  Let's see if raised priority of ->s_vfs_rename_mutex gives
111  * any extra contention...
112  */
113
114 /* In order to reduce some races, while at the same time doing additional
115  * checking and hopefully speeding things up, we copy filenames to the
116  * kernel data space before using them..
117  *
118  * POSIX.1 2.4: an empty pathname is invalid (ENOENT).
119  * PATH_MAX includes the nul terminator --RR.
120  */
121
122 #define EMBEDDED_NAME_MAX       (PATH_MAX - offsetof(struct filename, iname))
123
124 struct filename *
125 getname_flags(const char __user *filename, int flags, int *empty)
126 {
127         struct filename *result;
128         char *kname;
129         int len;
130
131         result = audit_reusename(filename);
132         if (result)
133                 return result;
134
135         result = __getname();
136         if (unlikely(!result))
137                 return ERR_PTR(-ENOMEM);
138
139         /*
140          * First, try to embed the struct filename inside the names_cache
141          * allocation
142          */
143         kname = (char *)result->iname;
144         result->name = kname;
145
146         len = strncpy_from_user(kname, filename, EMBEDDED_NAME_MAX);
147         if (unlikely(len < 0)) {
148                 __putname(result);
149                 return ERR_PTR(len);
150         }
151
152         /*
153          * Uh-oh. We have a name that's approaching PATH_MAX. Allocate a
154          * separate struct filename so we can dedicate the entire
155          * names_cache allocation for the pathname, and re-do the copy from
156          * userland.
157          */
158         if (unlikely(len == EMBEDDED_NAME_MAX)) {
159                 const size_t size = offsetof(struct filename, iname[1]);
160                 kname = (char *)result;
161
162                 /*
163                  * size is chosen that way we to guarantee that
164                  * result->iname[0] is within the same object and that
165                  * kname can't be equal to result->iname, no matter what.
166                  */
167                 result = kzalloc(size, GFP_KERNEL);
168                 if (unlikely(!result)) {
169                         __putname(kname);
170                         return ERR_PTR(-ENOMEM);
171                 }
172                 result->name = kname;
173                 len = strncpy_from_user(kname, filename, PATH_MAX);
174                 if (unlikely(len < 0)) {
175                         __putname(kname);
176                         kfree(result);
177                         return ERR_PTR(len);
178                 }
179                 if (unlikely(len == PATH_MAX)) {
180                         __putname(kname);
181                         kfree(result);
182                         return ERR_PTR(-ENAMETOOLONG);
183                 }
184         }
185
186         result->refcnt = 1;
187         /* The empty path is special. */
188         if (unlikely(!len)) {
189                 if (empty)
190                         *empty = 1;
191                 if (!(flags & LOOKUP_EMPTY)) {
192                         putname(result);
193                         return ERR_PTR(-ENOENT);
194                 }
195         }
196
197         result->uptr = filename;
198         result->aname = NULL;
199         audit_getname(result);
200         return result;
201 }
202
203 struct filename *
204 getname(const char __user * filename)
205 {
206         return getname_flags(filename, 0, NULL);
207 }
208
209 struct filename *
210 getname_kernel(const char * filename)
211 {
212         struct filename *result;
213         int len = strlen(filename) + 1;
214
215         result = __getname();
216         if (unlikely(!result))
217                 return ERR_PTR(-ENOMEM);
218
219         if (len <= EMBEDDED_NAME_MAX) {
220                 result->name = (char *)result->iname;
221         } else if (len <= PATH_MAX) {
222                 struct filename *tmp;
223
224                 tmp = kmalloc(sizeof(*tmp), GFP_KERNEL);
225                 if (unlikely(!tmp)) {
226                         __putname(result);
227                         return ERR_PTR(-ENOMEM);
228                 }
229                 tmp->name = (char *)result;
230                 result = tmp;
231         } else {
232                 __putname(result);
233                 return ERR_PTR(-ENAMETOOLONG);
234         }
235         memcpy((char *)result->name, filename, len);
236         result->uptr = NULL;
237         result->aname = NULL;
238         result->refcnt = 1;
239         audit_getname(result);
240
241         return result;
242 }
243
244 void putname(struct filename *name)
245 {
246         BUG_ON(name->refcnt <= 0);
247
248         if (--name->refcnt > 0)
249                 return;
250
251         if (name->name != name->iname) {
252                 __putname(name->name);
253                 kfree(name);
254         } else
255                 __putname(name);
256 }
257
258 static int check_acl(struct inode *inode, int mask)
259 {
260 #ifdef CONFIG_FS_POSIX_ACL
261         struct posix_acl *acl;
262
263         if (mask & MAY_NOT_BLOCK) {
264                 acl = get_cached_acl_rcu(inode, ACL_TYPE_ACCESS);
265                 if (!acl)
266                         return -EAGAIN;
267                 /* no ->get_acl() calls in RCU mode... */
268                 if (acl == ACL_NOT_CACHED)
269                         return -ECHILD;
270                 return posix_acl_permission(inode, acl, mask & ~MAY_NOT_BLOCK);
271         }
272
273         acl = get_acl(inode, ACL_TYPE_ACCESS);
274         if (IS_ERR(acl))
275                 return PTR_ERR(acl);
276         if (acl) {
277                 int error = posix_acl_permission(inode, acl, mask);
278                 posix_acl_release(acl);
279                 return error;
280         }
281 #endif
282
283         return -EAGAIN;
284 }
285
286 /*
287  * This does the basic permission checking
288  */
289 static int acl_permission_check(struct inode *inode, int mask)
290 {
291         unsigned int mode = inode->i_mode;
292
293         if (likely(uid_eq(current_fsuid(), inode->i_uid)))
294                 mode >>= 6;
295         else {
296                 if (IS_POSIXACL(inode) && (mode & S_IRWXG)) {
297                         int error = check_acl(inode, mask);
298                         if (error != -EAGAIN)
299                                 return error;
300                 }
301
302                 if (in_group_p(inode->i_gid))
303                         mode >>= 3;
304         }
305
306         /*
307          * If the DACs are ok we don't need any capability check.
308          */
309         if ((mask & ~mode & (MAY_READ | MAY_WRITE | MAY_EXEC)) == 0)
310                 return 0;
311         return -EACCES;
312 }
313
314 /**
315  * generic_permission -  check for access rights on a Posix-like filesystem
316  * @inode:      inode to check access rights for
317  * @mask:       right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC, ...)
318  *
319  * Used to check for read/write/execute permissions on a file.
320  * We use "fsuid" for this, letting us set arbitrary permissions
321  * for filesystem access without changing the "normal" uids which
322  * are used for other things.
323  *
324  * generic_permission is rcu-walk aware. It returns -ECHILD in case an rcu-walk
325  * request cannot be satisfied (eg. requires blocking or too much complexity).
326  * It would then be called again in ref-walk mode.
327  */
328 int generic_permission(struct inode *inode, int mask)
329 {
330         int ret;
331
332         /*
333          * Do the basic permission checks.
334          */
335         ret = acl_permission_check(inode, mask);
336         if (ret != -EACCES)
337                 return ret;
338
339         if (S_ISDIR(inode->i_mode)) {
340                 /* DACs are overridable for directories */
341                 if (capable_wrt_inode_uidgid(inode, CAP_DAC_OVERRIDE))
342                         return 0;
343                 if (!(mask & MAY_WRITE))
344                         if (capable_wrt_inode_uidgid(inode,
345                                                      CAP_DAC_READ_SEARCH))
346                                 return 0;
347                 return -EACCES;
348         }
349         /*
350          * Read/write DACs are always overridable.
351          * Executable DACs are overridable when there is
352          * at least one exec bit set.
353          */
354         if (!(mask & MAY_EXEC) || (inode->i_mode & S_IXUGO))
355                 if (capable_wrt_inode_uidgid(inode, CAP_DAC_OVERRIDE))
356                         return 0;
357
358         /*
359          * Searching includes executable on directories, else just read.
360          */
361         mask &= MAY_READ | MAY_WRITE | MAY_EXEC;
362         if (mask == MAY_READ)
363                 if (capable_wrt_inode_uidgid(inode, CAP_DAC_READ_SEARCH))
364                         return 0;
365
366         return -EACCES;
367 }
368 EXPORT_SYMBOL(generic_permission);
369
370 /*
371  * We _really_ want to just do "generic_permission()" without
372  * even looking at the inode->i_op values. So we keep a cache
373  * flag in inode->i_opflags, that says "this has not special
374  * permission function, use the fast case".
375  */
376 static inline int do_inode_permission(struct inode *inode, int mask)
377 {
378         if (unlikely(!(inode->i_opflags & IOP_FASTPERM))) {
379                 if (likely(inode->i_op->permission))
380                         return inode->i_op->permission(inode, mask);
381
382                 /* This gets set once for the inode lifetime */
383                 spin_lock(&inode->i_lock);
384                 inode->i_opflags |= IOP_FASTPERM;
385                 spin_unlock(&inode->i_lock);
386         }
387         return generic_permission(inode, mask);
388 }
389
390 /**
391  * __inode_permission - Check for access rights to a given inode
392  * @inode: Inode to check permission on
393  * @mask: Right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
394  *
395  * Check for read/write/execute permissions on an inode.
396  *
397  * When checking for MAY_APPEND, MAY_WRITE must also be set in @mask.
398  *
399  * This does not check for a read-only file system.  You probably want
400  * inode_permission().
401  */
402 int __inode_permission(struct inode *inode, int mask)
403 {
404         int retval;
405
406         if (unlikely(mask & MAY_WRITE)) {
407                 /*
408                  * Nobody gets write access to an immutable file.
409                  */
410                 if (IS_IMMUTABLE(inode))
411                         return -EACCES;
412         }
413
414         retval = do_inode_permission(inode, mask);
415         if (retval)
416                 return retval;
417
418         retval = devcgroup_inode_permission(inode, mask);
419         if (retval)
420                 return retval;
421
422         return security_inode_permission(inode, mask);
423 }
424 EXPORT_SYMBOL(__inode_permission);
425
426 /**
427  * sb_permission - Check superblock-level permissions
428  * @sb: Superblock of inode to check permission on
429  * @inode: Inode to check permission on
430  * @mask: Right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
431  *
432  * Separate out file-system wide checks from inode-specific permission checks.
433  */
434 static int sb_permission(struct super_block *sb, struct inode *inode, int mask)
435 {
436         if (unlikely(mask & MAY_WRITE)) {
437                 umode_t mode = inode->i_mode;
438
439                 /* Nobody gets write access to a read-only fs. */
440                 if ((sb->s_flags & MS_RDONLY) &&
441                     (S_ISREG(mode) || S_ISDIR(mode) || S_ISLNK(mode)))
442                         return -EROFS;
443         }
444         return 0;
445 }
446
447 /**
448  * inode_permission - Check for access rights to a given inode
449  * @inode: Inode to check permission on
450  * @mask: Right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
451  *
452  * Check for read/write/execute permissions on an inode.  We use fs[ug]id for
453  * this, letting us set arbitrary permissions for filesystem access without
454  * changing the "normal" UIDs which are used for other things.
455  *
456  * When checking for MAY_APPEND, MAY_WRITE must also be set in @mask.
457  */
458 int inode_permission(struct inode *inode, int mask)
459 {
460         int retval;
461
462         retval = sb_permission(inode->i_sb, inode, mask);
463         if (retval)
464                 return retval;
465         return __inode_permission(inode, mask);
466 }
467 EXPORT_SYMBOL(inode_permission);
468
469 /**
470  * path_get - get a reference to a path
471  * @path: path to get the reference to
472  *
473  * Given a path increment the reference count to the dentry and the vfsmount.
474  */
475 void path_get(const struct path *path)
476 {
477         mntget(path->mnt);
478         dget(path->dentry);
479 }
480 EXPORT_SYMBOL(path_get);
481
482 /**
483  * path_put - put a reference to a path
484  * @path: path to put the reference to
485  *
486  * Given a path decrement the reference count to the dentry and the vfsmount.
487  */
488 void path_put(const struct path *path)
489 {
490         dput(path->dentry);
491         mntput(path->mnt);
492 }
493 EXPORT_SYMBOL(path_put);
494
495 #define EMBEDDED_LEVELS 2
496 struct nameidata {
497         struct path     path;
498         struct qstr     last;
499         struct path     root;
500         struct inode    *inode; /* path.dentry.d_inode */
501         unsigned int    flags;
502         unsigned        seq, m_seq;
503         int             last_type;
504         unsigned        depth;
505         int             total_link_count;
506         struct saved {
507                 struct path link;
508                 struct delayed_call done;
509                 const char *name;
510                 unsigned seq;
511         } *stack, internal[EMBEDDED_LEVELS];
512         struct filename *name;
513         struct nameidata *saved;
514         struct inode    *link_inode;
515         unsigned        root_seq;
516         int             dfd;
517 };
518
519 static void set_nameidata(struct nameidata *p, int dfd, struct filename *name)
520 {
521         struct nameidata *old = current->nameidata;
522         p->stack = p->internal;
523         p->dfd = dfd;
524         p->name = name;
525         p->total_link_count = old ? old->total_link_count : 0;
526         p->saved = old;
527         current->nameidata = p;
528 }
529
530 static void restore_nameidata(void)
531 {
532         struct nameidata *now = current->nameidata, *old = now->saved;
533
534         current->nameidata = old;
535         if (old)
536                 old->total_link_count = now->total_link_count;
537         if (now->stack != now->internal)
538                 kfree(now->stack);
539 }
540
541 static int __nd_alloc_stack(struct nameidata *nd)
542 {
543         struct saved *p;
544
545         if (nd->flags & LOOKUP_RCU) {
546                 p= kmalloc(MAXSYMLINKS * sizeof(struct saved),
547                                   GFP_ATOMIC);
548                 if (unlikely(!p))
549                         return -ECHILD;
550         } else {
551                 p= kmalloc(MAXSYMLINKS * sizeof(struct saved),
552                                   GFP_KERNEL);
553                 if (unlikely(!p))
554                         return -ENOMEM;
555         }
556         memcpy(p, nd->internal, sizeof(nd->internal));
557         nd->stack = p;
558         return 0;
559 }
560
561 /**
562  * path_connected - Verify that a path->dentry is below path->mnt.mnt_root
563  * @path: nameidate to verify
564  *
565  * Rename can sometimes move a file or directory outside of a bind
566  * mount, path_connected allows those cases to be detected.
567  */
568 static bool path_connected(const struct path *path)
569 {
570         struct vfsmount *mnt = path->mnt;
571
572         /* Only bind mounts can have disconnected paths */
573         if (mnt->mnt_root == mnt->mnt_sb->s_root)
574                 return true;
575
576         return is_subdir(path->dentry, mnt->mnt_root);
577 }
578
579 static inline int nd_alloc_stack(struct nameidata *nd)
580 {
581         if (likely(nd->depth != EMBEDDED_LEVELS))
582                 return 0;
583         if (likely(nd->stack != nd->internal))
584                 return 0;
585         return __nd_alloc_stack(nd);
586 }
587
588 static void drop_links(struct nameidata *nd)
589 {
590         int i = nd->depth;
591         while (i--) {
592                 struct saved *last = nd->stack + i;
593                 do_delayed_call(&last->done);
594                 clear_delayed_call(&last->done);
595         }
596 }
597
598 static void terminate_walk(struct nameidata *nd)
599 {
600         drop_links(nd);
601         if (!(nd->flags & LOOKUP_RCU)) {
602                 int i;
603                 path_put(&nd->path);
604                 for (i = 0; i < nd->depth; i++)
605                         path_put(&nd->stack[i].link);
606                 if (nd->root.mnt && !(nd->flags & LOOKUP_ROOT)) {
607                         path_put(&nd->root);
608                         nd->root.mnt = NULL;
609                 }
610         } else {
611                 nd->flags &= ~LOOKUP_RCU;
612                 if (!(nd->flags & LOOKUP_ROOT))
613                         nd->root.mnt = NULL;
614                 rcu_read_unlock();
615         }
616         nd->depth = 0;
617 }
618
619 /* path_put is needed afterwards regardless of success or failure */
620 static bool legitimize_path(struct nameidata *nd,
621                             struct path *path, unsigned seq)
622 {
623         int res = __legitimize_mnt(path->mnt, nd->m_seq);
624         if (unlikely(res)) {
625                 if (res > 0)
626                         path->mnt = NULL;
627                 path->dentry = NULL;
628                 return false;
629         }
630         if (unlikely(!lockref_get_not_dead(&path->dentry->d_lockref))) {
631                 path->dentry = NULL;
632                 return false;
633         }
634         return !read_seqcount_retry(&path->dentry->d_seq, seq);
635 }
636
637 static bool legitimize_links(struct nameidata *nd)
638 {
639         int i;
640         for (i = 0; i < nd->depth; i++) {
641                 struct saved *last = nd->stack + i;
642                 if (unlikely(!legitimize_path(nd, &last->link, last->seq))) {
643                         drop_links(nd);
644                         nd->depth = i + 1;
645                         return false;
646                 }
647         }
648         return true;
649 }
650
651 /*
652  * Path walking has 2 modes, rcu-walk and ref-walk (see
653  * Documentation/filesystems/path-lookup.txt).  In situations when we can't
654  * continue in RCU mode, we attempt to drop out of rcu-walk mode and grab
655  * normal reference counts on dentries and vfsmounts to transition to ref-walk
656  * mode.  Refcounts are grabbed at the last known good point before rcu-walk
657  * got stuck, so ref-walk may continue from there. If this is not successful
658  * (eg. a seqcount has changed), then failure is returned and it's up to caller
659  * to restart the path walk from the beginning in ref-walk mode.
660  */
661
662 /**
663  * unlazy_walk - try to switch to ref-walk mode.
664  * @nd: nameidata pathwalk data
665  * @dentry: child of nd->path.dentry or NULL
666  * @seq: seq number to check dentry against
667  * Returns: 0 on success, -ECHILD on failure
668  *
669  * unlazy_walk attempts to legitimize the current nd->path, nd->root and dentry
670  * for ref-walk mode.  @dentry must be a path found by a do_lookup call on
671  * @nd or NULL.  Must be called from rcu-walk context.
672  * Nothing should touch nameidata between unlazy_walk() failure and
673  * terminate_walk().
674  */
675 static int unlazy_walk(struct nameidata *nd, struct dentry *dentry, unsigned seq)
676 {
677         struct dentry *parent = nd->path.dentry;
678
679         BUG_ON(!(nd->flags & LOOKUP_RCU));
680
681         nd->flags &= ~LOOKUP_RCU;
682         if (unlikely(!legitimize_links(nd)))
683                 goto out2;
684         if (unlikely(!legitimize_mnt(nd->path.mnt, nd->m_seq)))
685                 goto out2;
686         if (unlikely(!lockref_get_not_dead(&parent->d_lockref)))
687                 goto out1;
688
689         /*
690          * For a negative lookup, the lookup sequence point is the parents
691          * sequence point, and it only needs to revalidate the parent dentry.
692          *
693          * For a positive lookup, we need to move both the parent and the
694          * dentry from the RCU domain to be properly refcounted. And the
695          * sequence number in the dentry validates *both* dentry counters,
696          * since we checked the sequence number of the parent after we got
697          * the child sequence number. So we know the parent must still
698          * be valid if the child sequence number is still valid.
699          */
700         if (!dentry) {
701                 if (read_seqcount_retry(&parent->d_seq, nd->seq))
702                         goto out;
703                 BUG_ON(nd->inode != parent->d_inode);
704         } else {
705                 if (!lockref_get_not_dead(&dentry->d_lockref))
706                         goto out;
707                 if (read_seqcount_retry(&dentry->d_seq, seq))
708                         goto drop_dentry;
709         }
710
711         /*
712          * Sequence counts matched. Now make sure that the root is
713          * still valid and get it if required.
714          */
715         if (nd->root.mnt && !(nd->flags & LOOKUP_ROOT)) {
716                 if (unlikely(!legitimize_path(nd, &nd->root, nd->root_seq))) {
717                         rcu_read_unlock();
718                         dput(dentry);
719                         return -ECHILD;
720                 }
721         }
722
723         rcu_read_unlock();
724         return 0;
725
726 drop_dentry:
727         rcu_read_unlock();
728         dput(dentry);
729         goto drop_root_mnt;
730 out2:
731         nd->path.mnt = NULL;
732 out1:
733         nd->path.dentry = NULL;
734 out:
735         rcu_read_unlock();
736 drop_root_mnt:
737         if (!(nd->flags & LOOKUP_ROOT))
738                 nd->root.mnt = NULL;
739         return -ECHILD;
740 }
741
742 static int unlazy_link(struct nameidata *nd, struct path *link, unsigned seq)
743 {
744         if (unlikely(!legitimize_path(nd, link, seq))) {
745                 drop_links(nd);
746                 nd->depth = 0;
747                 nd->flags &= ~LOOKUP_RCU;
748                 nd->path.mnt = NULL;
749                 nd->path.dentry = NULL;
750                 if (!(nd->flags & LOOKUP_ROOT))
751                         nd->root.mnt = NULL;
752                 rcu_read_unlock();
753         } else if (likely(unlazy_walk(nd, NULL, 0)) == 0) {
754                 return 0;
755         }
756         path_put(link);
757         return -ECHILD;
758 }
759
760 static inline int d_revalidate(struct dentry *dentry, unsigned int flags)
761 {
762         return dentry->d_op->d_revalidate(dentry, flags);
763 }
764
765 /**
766  * complete_walk - successful completion of path walk
767  * @nd:  pointer nameidata
768  *
769  * If we had been in RCU mode, drop out of it and legitimize nd->path.
770  * Revalidate the final result, unless we'd already done that during
771  * the path walk or the filesystem doesn't ask for it.  Return 0 on
772  * success, -error on failure.  In case of failure caller does not
773  * need to drop nd->path.
774  */
775 static int complete_walk(struct nameidata *nd)
776 {
777         struct dentry *dentry = nd->path.dentry;
778         int status;
779
780         if (nd->flags & LOOKUP_RCU) {
781                 if (!(nd->flags & LOOKUP_ROOT))
782                         nd->root.mnt = NULL;
783                 if (unlikely(unlazy_walk(nd, NULL, 0)))
784                         return -ECHILD;
785         }
786
787         if (likely(!(nd->flags & LOOKUP_JUMPED)))
788                 return 0;
789
790         if (likely(!(dentry->d_flags & DCACHE_OP_WEAK_REVALIDATE)))
791                 return 0;
792
793         status = dentry->d_op->d_weak_revalidate(dentry, nd->flags);
794         if (status > 0)
795                 return 0;
796
797         if (!status)
798                 status = -ESTALE;
799
800         return status;
801 }
802
803 static void set_root(struct nameidata *nd)
804 {
805         struct fs_struct *fs = current->fs;
806
807         if (nd->flags & LOOKUP_RCU) {
808                 unsigned seq;
809
810                 do {
811                         seq = read_seqcount_begin(&fs->seq);
812                         nd->root = fs->root;
813                         nd->root_seq = __read_seqcount_begin(&nd->root.dentry->d_seq);
814                 } while (read_seqcount_retry(&fs->seq, seq));
815         } else {
816                 get_fs_root(fs, &nd->root);
817         }
818 }
819
820 static void path_put_conditional(struct path *path, struct nameidata *nd)
821 {
822         dput(path->dentry);
823         if (path->mnt != nd->path.mnt)
824                 mntput(path->mnt);
825 }
826
827 static inline void path_to_nameidata(const struct path *path,
828                                         struct nameidata *nd)
829 {
830         if (!(nd->flags & LOOKUP_RCU)) {
831                 dput(nd->path.dentry);
832                 if (nd->path.mnt != path->mnt)
833                         mntput(nd->path.mnt);
834         }
835         nd->path.mnt = path->mnt;
836         nd->path.dentry = path->dentry;
837 }
838
839 static int nd_jump_root(struct nameidata *nd)
840 {
841         if (nd->flags & LOOKUP_RCU) {
842                 struct dentry *d;
843                 nd->path = nd->root;
844                 d = nd->path.dentry;
845                 nd->inode = d->d_inode;
846                 nd->seq = nd->root_seq;
847                 if (unlikely(read_seqcount_retry(&d->d_seq, nd->seq)))
848                         return -ECHILD;
849         } else {
850                 path_put(&nd->path);
851                 nd->path = nd->root;
852                 path_get(&nd->path);
853                 nd->inode = nd->path.dentry->d_inode;
854         }
855         nd->flags |= LOOKUP_JUMPED;
856         return 0;
857 }
858
859 /*
860  * Helper to directly jump to a known parsed path from ->get_link,
861  * caller must have taken a reference to path beforehand.
862  */
863 void nd_jump_link(struct path *path)
864 {
865         struct nameidata *nd = current->nameidata;
866         path_put(&nd->path);
867
868         nd->path = *path;
869         nd->inode = nd->path.dentry->d_inode;
870         nd->flags |= LOOKUP_JUMPED;
871 }
872
873 static inline void put_link(struct nameidata *nd)
874 {
875         struct saved *last = nd->stack + --nd->depth;
876         do_delayed_call(&last->done);
877         if (!(nd->flags & LOOKUP_RCU))
878                 path_put(&last->link);
879 }
880
881 int sysctl_protected_symlinks __read_mostly = 0;
882 int sysctl_protected_hardlinks __read_mostly = 0;
883
884 /**
885  * may_follow_link - Check symlink following for unsafe situations
886  * @nd: nameidata pathwalk data
887  *
888  * In the case of the sysctl_protected_symlinks sysctl being enabled,
889  * CAP_DAC_OVERRIDE needs to be specifically ignored if the symlink is
890  * in a sticky world-writable directory. This is to protect privileged
891  * processes from failing races against path names that may change out
892  * from under them by way of other users creating malicious symlinks.
893  * It will permit symlinks to be followed only when outside a sticky
894  * world-writable directory, or when the uid of the symlink and follower
895  * match, or when the directory owner matches the symlink's owner.
896  *
897  * Returns 0 if following the symlink is allowed, -ve on error.
898  */
899 static inline int may_follow_link(struct nameidata *nd)
900 {
901         const struct inode *inode;
902         const struct inode *parent;
903
904         if (!sysctl_protected_symlinks)
905                 return 0;
906
907         /* Allowed if owner and follower match. */
908         inode = nd->link_inode;
909         if (uid_eq(current_cred()->fsuid, inode->i_uid))
910                 return 0;
911
912         /* Allowed if parent directory not sticky and world-writable. */
913         parent = nd->inode;
914         if ((parent->i_mode & (S_ISVTX|S_IWOTH)) != (S_ISVTX|S_IWOTH))
915                 return 0;
916
917         /* Allowed if parent directory and link owner match. */
918         if (uid_eq(parent->i_uid, inode->i_uid))
919                 return 0;
920
921         if (nd->flags & LOOKUP_RCU)
922                 return -ECHILD;
923
924         audit_log_link_denied("follow_link", &nd->stack[0].link);
925         return -EACCES;
926 }
927
928 /**
929  * safe_hardlink_source - Check for safe hardlink conditions
930  * @inode: the source inode to hardlink from
931  *
932  * Return false if at least one of the following conditions:
933  *    - inode is not a regular file
934  *    - inode is setuid
935  *    - inode is setgid and group-exec
936  *    - access failure for read and write
937  *
938  * Otherwise returns true.
939  */
940 static bool safe_hardlink_source(struct inode *inode)
941 {
942         umode_t mode = inode->i_mode;
943
944         /* Special files should not get pinned to the filesystem. */
945         if (!S_ISREG(mode))
946                 return false;
947
948         /* Setuid files should not get pinned to the filesystem. */
949         if (mode & S_ISUID)
950                 return false;
951
952         /* Executable setgid files should not get pinned to the filesystem. */
953         if ((mode & (S_ISGID | S_IXGRP)) == (S_ISGID | S_IXGRP))
954                 return false;
955
956         /* Hardlinking to unreadable or unwritable sources is dangerous. */
957         if (inode_permission(inode, MAY_READ | MAY_WRITE))
958                 return false;
959
960         return true;
961 }
962
963 /**
964  * may_linkat - Check permissions for creating a hardlink
965  * @link: the source to hardlink from
966  *
967  * Block hardlink when all of:
968  *  - sysctl_protected_hardlinks enabled
969  *  - fsuid does not match inode
970  *  - hardlink source is unsafe (see safe_hardlink_source() above)
971  *  - not CAP_FOWNER in a namespace with the inode owner uid mapped
972  *
973  * Returns 0 if successful, -ve on error.
974  */
975 static int may_linkat(struct path *link)
976 {
977         struct inode *inode;
978
979         if (!sysctl_protected_hardlinks)
980                 return 0;
981
982         inode = link->dentry->d_inode;
983
984         /* Source inode owner (or CAP_FOWNER) can hardlink all they like,
985          * otherwise, it must be a safe source.
986          */
987         if (inode_owner_or_capable(inode) || safe_hardlink_source(inode))
988                 return 0;
989
990         audit_log_link_denied("linkat", link);
991         return -EPERM;
992 }
993
994 static __always_inline
995 const char *get_link(struct nameidata *nd)
996 {
997         struct saved *last = nd->stack + nd->depth - 1;
998         struct dentry *dentry = last->link.dentry;
999         struct inode *inode = nd->link_inode;
1000         int error;
1001         const char *res;
1002
1003         if (!(nd->flags & LOOKUP_RCU)) {
1004                 touch_atime(&last->link);
1005                 cond_resched();
1006         } else if (atime_needs_update(&last->link, inode)) {
1007                 if (unlikely(unlazy_walk(nd, NULL, 0)))
1008                         return ERR_PTR(-ECHILD);
1009                 touch_atime(&last->link);
1010         }
1011
1012         error = security_inode_follow_link(dentry, inode,
1013                                            nd->flags & LOOKUP_RCU);
1014         if (unlikely(error))
1015                 return ERR_PTR(error);
1016
1017         nd->last_type = LAST_BIND;
1018         res = inode->i_link;
1019         if (!res) {
1020                 const char * (*get)(struct dentry *, struct inode *,
1021                                 struct delayed_call *);
1022                 get = inode->i_op->get_link;
1023                 if (nd->flags & LOOKUP_RCU) {
1024                         res = get(NULL, inode, &last->done);
1025                         if (res == ERR_PTR(-ECHILD)) {
1026                                 if (unlikely(unlazy_walk(nd, NULL, 0)))
1027                                         return ERR_PTR(-ECHILD);
1028                                 res = get(dentry, inode, &last->done);
1029                         }
1030                 } else {
1031                         res = get(dentry, inode, &last->done);
1032                 }
1033                 if (IS_ERR_OR_NULL(res))
1034                         return res;
1035         }
1036         if (*res == '/') {
1037                 if (!nd->root.mnt)
1038                         set_root(nd);
1039                 if (unlikely(nd_jump_root(nd)))
1040                         return ERR_PTR(-ECHILD);
1041                 while (unlikely(*++res == '/'))
1042                         ;
1043         }
1044         if (!*res)
1045                 res = NULL;
1046         return res;
1047 }
1048
1049 /*
1050  * follow_up - Find the mountpoint of path's vfsmount
1051  *
1052  * Given a path, find the mountpoint of its source file system.
1053  * Replace @path with the path of the mountpoint in the parent mount.
1054  * Up is towards /.
1055  *
1056  * Return 1 if we went up a level and 0 if we were already at the
1057  * root.
1058  */
1059 int follow_up(struct path *path)
1060 {
1061         struct mount *mnt = real_mount(path->mnt);
1062         struct mount *parent;
1063         struct dentry *mountpoint;
1064
1065         read_seqlock_excl(&mount_lock);
1066         parent = mnt->mnt_parent;
1067         if (parent == mnt) {
1068                 read_sequnlock_excl(&mount_lock);
1069                 return 0;
1070         }
1071         mntget(&parent->mnt);
1072         mountpoint = dget(mnt->mnt_mountpoint);
1073         read_sequnlock_excl(&mount_lock);
1074         dput(path->dentry);
1075         path->dentry = mountpoint;
1076         mntput(path->mnt);
1077         path->mnt = &parent->mnt;
1078         return 1;
1079 }
1080 EXPORT_SYMBOL(follow_up);
1081
1082 /*
1083  * Perform an automount
1084  * - return -EISDIR to tell follow_managed() to stop and return the path we
1085  *   were called with.
1086  */
1087 static int follow_automount(struct path *path, struct nameidata *nd,
1088                             bool *need_mntput)
1089 {
1090         struct vfsmount *mnt;
1091         int err;
1092
1093         if (!path->dentry->d_op || !path->dentry->d_op->d_automount)
1094                 return -EREMOTE;
1095
1096         /* We don't want to mount if someone's just doing a stat -
1097          * unless they're stat'ing a directory and appended a '/' to
1098          * the name.
1099          *
1100          * We do, however, want to mount if someone wants to open or
1101          * create a file of any type under the mountpoint, wants to
1102          * traverse through the mountpoint or wants to open the
1103          * mounted directory.  Also, autofs may mark negative dentries
1104          * as being automount points.  These will need the attentions
1105          * of the daemon to instantiate them before they can be used.
1106          */
1107         if (!(nd->flags & (LOOKUP_PARENT | LOOKUP_DIRECTORY |
1108                            LOOKUP_OPEN | LOOKUP_CREATE | LOOKUP_AUTOMOUNT)) &&
1109             path->dentry->d_inode)
1110                 return -EISDIR;
1111
1112         nd->total_link_count++;
1113         if (nd->total_link_count >= 40)
1114                 return -ELOOP;
1115
1116         mnt = path->dentry->d_op->d_automount(path);
1117         if (IS_ERR(mnt)) {
1118                 /*
1119                  * The filesystem is allowed to return -EISDIR here to indicate
1120                  * it doesn't want to automount.  For instance, autofs would do
1121                  * this so that its userspace daemon can mount on this dentry.
1122                  *
1123                  * However, we can only permit this if it's a terminal point in
1124                  * the path being looked up; if it wasn't then the remainder of
1125                  * the path is inaccessible and we should say so.
1126                  */
1127                 if (PTR_ERR(mnt) == -EISDIR && (nd->flags & LOOKUP_PARENT))
1128                         return -EREMOTE;
1129                 return PTR_ERR(mnt);
1130         }
1131
1132         if (!mnt) /* mount collision */
1133                 return 0;
1134
1135         if (!*need_mntput) {
1136                 /* lock_mount() may release path->mnt on error */
1137                 mntget(path->mnt);
1138                 *need_mntput = true;
1139         }
1140         err = finish_automount(mnt, path);
1141
1142         switch (err) {
1143         case -EBUSY:
1144                 /* Someone else made a mount here whilst we were busy */
1145                 return 0;
1146         case 0:
1147                 path_put(path);
1148                 path->mnt = mnt;
1149                 path->dentry = dget(mnt->mnt_root);
1150                 return 0;
1151         default:
1152                 return err;
1153         }
1154
1155 }
1156
1157 /*
1158  * Handle a dentry that is managed in some way.
1159  * - Flagged for transit management (autofs)
1160  * - Flagged as mountpoint
1161  * - Flagged as automount point
1162  *
1163  * This may only be called in refwalk mode.
1164  *
1165  * Serialization is taken care of in namespace.c
1166  */
1167 static int follow_managed(struct path *path, struct nameidata *nd)
1168 {
1169         struct vfsmount *mnt = path->mnt; /* held by caller, must be left alone */
1170         unsigned managed;
1171         bool need_mntput = false;
1172         int ret = 0;
1173
1174         /* Given that we're not holding a lock here, we retain the value in a
1175          * local variable for each dentry as we look at it so that we don't see
1176          * the components of that value change under us */
1177         while (managed = ACCESS_ONCE(path->dentry->d_flags),
1178                managed &= DCACHE_MANAGED_DENTRY,
1179                unlikely(managed != 0)) {
1180                 /* Allow the filesystem to manage the transit without i_mutex
1181                  * being held. */
1182                 if (managed & DCACHE_MANAGE_TRANSIT) {
1183                         BUG_ON(!path->dentry->d_op);
1184                         BUG_ON(!path->dentry->d_op->d_manage);
1185                         ret = path->dentry->d_op->d_manage(path->dentry, false);
1186                         if (ret < 0)
1187                                 break;
1188                 }
1189
1190                 /* Transit to a mounted filesystem. */
1191                 if (managed & DCACHE_MOUNTED) {
1192                         struct vfsmount *mounted = lookup_mnt(path);
1193                         if (mounted) {
1194                                 dput(path->dentry);
1195                                 if (need_mntput)
1196                                         mntput(path->mnt);
1197                                 path->mnt = mounted;
1198                                 path->dentry = dget(mounted->mnt_root);
1199                                 need_mntput = true;
1200                                 continue;
1201                         }
1202
1203                         /* Something is mounted on this dentry in another
1204                          * namespace and/or whatever was mounted there in this
1205                          * namespace got unmounted before lookup_mnt() could
1206                          * get it */
1207                 }
1208
1209                 /* Handle an automount point */
1210                 if (managed & DCACHE_NEED_AUTOMOUNT) {
1211                         ret = follow_automount(path, nd, &need_mntput);
1212                         if (ret < 0)
1213                                 break;
1214                         continue;
1215                 }
1216
1217                 /* We didn't change the current path point */
1218                 break;
1219         }
1220
1221         if (need_mntput && path->mnt == mnt)
1222                 mntput(path->mnt);
1223         if (ret == -EISDIR || !ret)
1224                 ret = 1;
1225         if (need_mntput)
1226                 nd->flags |= LOOKUP_JUMPED;
1227         if (unlikely(ret < 0))
1228                 path_put_conditional(path, nd);
1229         return ret;
1230 }
1231
1232 int follow_down_one(struct path *path)
1233 {
1234         struct vfsmount *mounted;
1235
1236         mounted = lookup_mnt(path);
1237         if (mounted) {
1238                 dput(path->dentry);
1239                 mntput(path->mnt);
1240                 path->mnt = mounted;
1241                 path->dentry = dget(mounted->mnt_root);
1242                 return 1;
1243         }
1244         return 0;
1245 }
1246 EXPORT_SYMBOL(follow_down_one);
1247
1248 static inline int managed_dentry_rcu(struct dentry *dentry)
1249 {
1250         return (dentry->d_flags & DCACHE_MANAGE_TRANSIT) ?
1251                 dentry->d_op->d_manage(dentry, true) : 0;
1252 }
1253
1254 /*
1255  * Try to skip to top of mountpoint pile in rcuwalk mode.  Fail if
1256  * we meet a managed dentry that would need blocking.
1257  */
1258 static bool __follow_mount_rcu(struct nameidata *nd, struct path *path,
1259                                struct inode **inode, unsigned *seqp)
1260 {
1261         for (;;) {
1262                 struct mount *mounted;
1263                 /*
1264                  * Don't forget we might have a non-mountpoint managed dentry
1265                  * that wants to block transit.
1266                  */
1267                 switch (managed_dentry_rcu(path->dentry)) {
1268                 case -ECHILD:
1269                 default:
1270                         return false;
1271                 case -EISDIR:
1272                         return true;
1273                 case 0:
1274                         break;
1275                 }
1276
1277                 if (!d_mountpoint(path->dentry))
1278                         return !(path->dentry->d_flags & DCACHE_NEED_AUTOMOUNT);
1279
1280                 mounted = __lookup_mnt(path->mnt, path->dentry);
1281                 if (!mounted)
1282                         break;
1283                 path->mnt = &mounted->mnt;
1284                 path->dentry = mounted->mnt.mnt_root;
1285                 nd->flags |= LOOKUP_JUMPED;
1286                 *seqp = read_seqcount_begin(&path->dentry->d_seq);
1287                 /*
1288                  * Update the inode too. We don't need to re-check the
1289                  * dentry sequence number here after this d_inode read,
1290                  * because a mount-point is always pinned.
1291                  */
1292                 *inode = path->dentry->d_inode;
1293         }
1294         return !read_seqretry(&mount_lock, nd->m_seq) &&
1295                 !(path->dentry->d_flags & DCACHE_NEED_AUTOMOUNT);
1296 }
1297
1298 static int follow_dotdot_rcu(struct nameidata *nd)
1299 {
1300         struct inode *inode = nd->inode;
1301
1302         while (1) {
1303                 if (path_equal(&nd->path, &nd->root))
1304                         break;
1305                 if (nd->path.dentry != nd->path.mnt->mnt_root) {
1306                         struct dentry *old = nd->path.dentry;
1307                         struct dentry *parent = old->d_parent;
1308                         unsigned seq;
1309
1310                         inode = parent->d_inode;
1311                         seq = read_seqcount_begin(&parent->d_seq);
1312                         if (unlikely(read_seqcount_retry(&old->d_seq, nd->seq)))
1313                                 return -ECHILD;
1314                         nd->path.dentry = parent;
1315                         nd->seq = seq;
1316                         if (unlikely(!path_connected(&nd->path)))
1317                                 return -ENOENT;
1318                         break;
1319                 } else {
1320                         struct mount *mnt = real_mount(nd->path.mnt);
1321                         struct mount *mparent = mnt->mnt_parent;
1322                         struct dentry *mountpoint = mnt->mnt_mountpoint;
1323                         struct inode *inode2 = mountpoint->d_inode;
1324                         unsigned seq = read_seqcount_begin(&mountpoint->d_seq);
1325                         if (unlikely(read_seqretry(&mount_lock, nd->m_seq)))
1326                                 return -ECHILD;
1327                         if (&mparent->mnt == nd->path.mnt)
1328                                 break;
1329                         /* we know that mountpoint was pinned */
1330                         nd->path.dentry = mountpoint;
1331                         nd->path.mnt = &mparent->mnt;
1332                         inode = inode2;
1333                         nd->seq = seq;
1334                 }
1335         }
1336         while (unlikely(d_mountpoint(nd->path.dentry))) {
1337                 struct mount *mounted;
1338                 mounted = __lookup_mnt(nd->path.mnt, nd->path.dentry);
1339                 if (unlikely(read_seqretry(&mount_lock, nd->m_seq)))
1340                         return -ECHILD;
1341                 if (!mounted)
1342                         break;
1343                 nd->path.mnt = &mounted->mnt;
1344                 nd->path.dentry = mounted->mnt.mnt_root;
1345                 inode = nd->path.dentry->d_inode;
1346                 nd->seq = read_seqcount_begin(&nd->path.dentry->d_seq);
1347         }
1348         nd->inode = inode;
1349         return 0;
1350 }
1351
1352 /*
1353  * Follow down to the covering mount currently visible to userspace.  At each
1354  * point, the filesystem owning that dentry may be queried as to whether the
1355  * caller is permitted to proceed or not.
1356  */
1357 int follow_down(struct path *path)
1358 {
1359         unsigned managed;
1360         int ret;
1361
1362         while (managed = ACCESS_ONCE(path->dentry->d_flags),
1363                unlikely(managed & DCACHE_MANAGED_DENTRY)) {
1364                 /* Allow the filesystem to manage the transit without i_mutex
1365                  * being held.
1366                  *
1367                  * We indicate to the filesystem if someone is trying to mount
1368                  * something here.  This gives autofs the chance to deny anyone
1369                  * other than its daemon the right to mount on its
1370                  * superstructure.
1371                  *
1372                  * The filesystem may sleep at this point.
1373                  */
1374                 if (managed & DCACHE_MANAGE_TRANSIT) {
1375                         BUG_ON(!path->dentry->d_op);
1376                         BUG_ON(!path->dentry->d_op->d_manage);
1377                         ret = path->dentry->d_op->d_manage(
1378                                 path->dentry, false);
1379                         if (ret < 0)
1380                                 return ret == -EISDIR ? 0 : ret;
1381                 }
1382
1383                 /* Transit to a mounted filesystem. */
1384                 if (managed & DCACHE_MOUNTED) {
1385                         struct vfsmount *mounted = lookup_mnt(path);
1386                         if (!mounted)
1387                                 break;
1388                         dput(path->dentry);
1389                         mntput(path->mnt);
1390                         path->mnt = mounted;
1391                         path->dentry = dget(mounted->mnt_root);
1392                         continue;
1393                 }
1394
1395                 /* Don't handle automount points here */
1396                 break;
1397         }
1398         return 0;
1399 }
1400 EXPORT_SYMBOL(follow_down);
1401
1402 /*
1403  * Skip to top of mountpoint pile in refwalk mode for follow_dotdot()
1404  */
1405 static void follow_mount(struct path *path)
1406 {
1407         while (d_mountpoint(path->dentry)) {
1408                 struct vfsmount *mounted = lookup_mnt(path);
1409                 if (!mounted)
1410                         break;
1411                 dput(path->dentry);
1412                 mntput(path->mnt);
1413                 path->mnt = mounted;
1414                 path->dentry = dget(mounted->mnt_root);
1415         }
1416 }
1417
1418 static int follow_dotdot(struct nameidata *nd)
1419 {
1420         while(1) {
1421                 struct dentry *old = nd->path.dentry;
1422
1423                 if (nd->path.dentry == nd->root.dentry &&
1424                     nd->path.mnt == nd->root.mnt) {
1425                         break;
1426                 }
1427                 if (nd->path.dentry != nd->path.mnt->mnt_root) {
1428                         /* rare case of legitimate dget_parent()... */
1429                         nd->path.dentry = dget_parent(nd->path.dentry);
1430                         dput(old);
1431                         if (unlikely(!path_connected(&nd->path)))
1432                                 return -ENOENT;
1433                         break;
1434                 }
1435                 if (!follow_up(&nd->path))
1436                         break;
1437         }
1438         follow_mount(&nd->path);
1439         nd->inode = nd->path.dentry->d_inode;
1440         return 0;
1441 }
1442
1443 /*
1444  * This looks up the name in dcache, possibly revalidates the old dentry and
1445  * allocates a new one if not found or not valid.  In the need_lookup argument
1446  * returns whether i_op->lookup is necessary.
1447  */
1448 static struct dentry *lookup_dcache(const struct qstr *name,
1449                                     struct dentry *dir,
1450                                     unsigned int flags)
1451 {
1452         struct dentry *dentry;
1453         int error;
1454
1455         dentry = d_lookup(dir, name);
1456         if (dentry) {
1457                 if (dentry->d_flags & DCACHE_OP_REVALIDATE) {
1458                         error = d_revalidate(dentry, flags);
1459                         if (unlikely(error <= 0)) {
1460                                 if (!error)
1461                                         d_invalidate(dentry);
1462                                 dput(dentry);
1463                                 return ERR_PTR(error);
1464                         }
1465                 }
1466         }
1467         return dentry;
1468 }
1469
1470 /*
1471  * Call i_op->lookup on the dentry.  The dentry must be negative and
1472  * unhashed.
1473  *
1474  * dir->d_inode->i_mutex must be held
1475  */
1476 static struct dentry *lookup_real(struct inode *dir, struct dentry *dentry,
1477                                   unsigned int flags)
1478 {
1479         struct dentry *old;
1480
1481         /* Don't create child dentry for a dead directory. */
1482         if (unlikely(IS_DEADDIR(dir))) {
1483                 dput(dentry);
1484                 return ERR_PTR(-ENOENT);
1485         }
1486
1487         old = dir->i_op->lookup(dir, dentry, flags);
1488         if (unlikely(old)) {
1489                 dput(dentry);
1490                 dentry = old;
1491         }
1492         return dentry;
1493 }
1494
1495 static struct dentry *__lookup_hash(const struct qstr *name,
1496                 struct dentry *base, unsigned int flags)
1497 {
1498         struct dentry *dentry = lookup_dcache(name, base, flags);
1499
1500         if (dentry)
1501                 return dentry;
1502
1503         dentry = d_alloc(base, name);
1504         if (unlikely(!dentry))
1505                 return ERR_PTR(-ENOMEM);
1506
1507         return lookup_real(base->d_inode, dentry, flags);
1508 }
1509
1510 static int lookup_fast(struct nameidata *nd,
1511                        struct path *path, struct inode **inode,
1512                        unsigned *seqp)
1513 {
1514         struct vfsmount *mnt = nd->path.mnt;
1515         struct dentry *dentry, *parent = nd->path.dentry;
1516         int status = 1;
1517         int err;
1518
1519         /*
1520          * Rename seqlock is not required here because in the off chance
1521          * of a false negative due to a concurrent rename, the caller is
1522          * going to fall back to non-racy lookup.
1523          */
1524         if (nd->flags & LOOKUP_RCU) {
1525                 unsigned seq;
1526                 bool negative;
1527                 dentry = __d_lookup_rcu(parent, &nd->last, &seq);
1528                 if (unlikely(!dentry)) {
1529                         if (unlazy_walk(nd, NULL, 0))
1530                                 return -ECHILD;
1531                         return 0;
1532                 }
1533
1534                 /*
1535                  * This sequence count validates that the inode matches
1536                  * the dentry name information from lookup.
1537                  */
1538                 *inode = d_backing_inode(dentry);
1539                 negative = d_is_negative(dentry);
1540                 if (unlikely(read_seqcount_retry(&dentry->d_seq, seq)))
1541                         return -ECHILD;
1542
1543                 /*
1544                  * This sequence count validates that the parent had no
1545                  * changes while we did the lookup of the dentry above.
1546                  *
1547                  * The memory barrier in read_seqcount_begin of child is
1548                  *  enough, we can use __read_seqcount_retry here.
1549                  */
1550                 if (unlikely(__read_seqcount_retry(&parent->d_seq, nd->seq)))
1551                         return -ECHILD;
1552
1553                 *seqp = seq;
1554                 if (unlikely(dentry->d_flags & DCACHE_OP_REVALIDATE))
1555                         status = d_revalidate(dentry, nd->flags);
1556                 if (unlikely(status <= 0)) {
1557                         if (unlazy_walk(nd, dentry, seq))
1558                                 return -ECHILD;
1559                         if (status == -ECHILD)
1560                                 status = d_revalidate(dentry, nd->flags);
1561                 } else {
1562                         /*
1563                          * Note: do negative dentry check after revalidation in
1564                          * case that drops it.
1565                          */
1566                         if (unlikely(negative))
1567                                 return -ENOENT;
1568                         path->mnt = mnt;
1569                         path->dentry = dentry;
1570                         if (likely(__follow_mount_rcu(nd, path, inode, seqp)))
1571                                 return 1;
1572                         if (unlazy_walk(nd, dentry, seq))
1573                                 return -ECHILD;
1574                 }
1575         } else {
1576                 dentry = __d_lookup(parent, &nd->last);
1577                 if (unlikely(!dentry))
1578                         return 0;
1579                 if (unlikely(dentry->d_flags & DCACHE_OP_REVALIDATE))
1580                         status = d_revalidate(dentry, nd->flags);
1581         }
1582         if (unlikely(status <= 0)) {
1583                 if (!status)
1584                         d_invalidate(dentry);
1585                 dput(dentry);
1586                 return status;
1587         }
1588         if (unlikely(d_is_negative(dentry))) {
1589                 dput(dentry);
1590                 return -ENOENT;
1591         }
1592
1593         path->mnt = mnt;
1594         path->dentry = dentry;
1595         err = follow_managed(path, nd);
1596         if (likely(err > 0))
1597                 *inode = d_backing_inode(path->dentry);
1598         return err;
1599 }
1600
1601 /* Fast lookup failed, do it the slow way */
1602 static struct dentry *lookup_slow(const struct qstr *name,
1603                                   struct dentry *dir,
1604                                   unsigned int flags)
1605 {
1606         struct dentry *dentry;
1607         inode_lock(dir->d_inode);
1608         dentry = d_lookup(dir, name);
1609         if (unlikely(dentry)) {
1610                 if ((dentry->d_flags & DCACHE_OP_REVALIDATE) &&
1611                     !(flags & LOOKUP_NO_REVAL)) {
1612                         int error = d_revalidate(dentry, flags);
1613                         if (unlikely(error <= 0)) {
1614                                 if (!error)
1615                                         d_invalidate(dentry);
1616                                 dput(dentry);
1617                                 dentry = ERR_PTR(error);
1618                         }
1619                 }
1620                 if (dentry) {
1621                         inode_unlock(dir->d_inode);
1622                         return dentry;
1623                 }
1624         }
1625         dentry = d_alloc(dir, name);
1626         if (unlikely(!dentry)) {
1627                 inode_unlock(dir->d_inode);
1628                 return ERR_PTR(-ENOMEM);
1629         }
1630         dentry = lookup_real(dir->d_inode, dentry, flags);
1631         inode_unlock(dir->d_inode);
1632         return dentry;
1633 }
1634
1635 static inline int may_lookup(struct nameidata *nd)
1636 {
1637         if (nd->flags & LOOKUP_RCU) {
1638                 int err = inode_permission(nd->inode, MAY_EXEC|MAY_NOT_BLOCK);
1639                 if (err != -ECHILD)
1640                         return err;
1641                 if (unlazy_walk(nd, NULL, 0))
1642                         return -ECHILD;
1643         }
1644         return inode_permission(nd->inode, MAY_EXEC);
1645 }
1646
1647 static inline int handle_dots(struct nameidata *nd, int type)
1648 {
1649         if (type == LAST_DOTDOT) {
1650                 if (!nd->root.mnt)
1651                         set_root(nd);
1652                 if (nd->flags & LOOKUP_RCU) {
1653                         return follow_dotdot_rcu(nd);
1654                 } else
1655                         return follow_dotdot(nd);
1656         }
1657         return 0;
1658 }
1659
1660 static int pick_link(struct nameidata *nd, struct path *link,
1661                      struct inode *inode, unsigned seq)
1662 {
1663         int error;
1664         struct saved *last;
1665         if (unlikely(nd->total_link_count++ >= MAXSYMLINKS)) {
1666                 path_to_nameidata(link, nd);
1667                 return -ELOOP;
1668         }
1669         if (!(nd->flags & LOOKUP_RCU)) {
1670                 if (link->mnt == nd->path.mnt)
1671                         mntget(link->mnt);
1672         }
1673         error = nd_alloc_stack(nd);
1674         if (unlikely(error)) {
1675                 if (error == -ECHILD) {
1676                         if (unlikely(unlazy_link(nd, link, seq)))
1677                                 return -ECHILD;
1678                         error = nd_alloc_stack(nd);
1679                 }
1680                 if (error) {
1681                         path_put(link);
1682                         return error;
1683                 }
1684         }
1685
1686         last = nd->stack + nd->depth++;
1687         last->link = *link;
1688         clear_delayed_call(&last->done);
1689         nd->link_inode = inode;
1690         last->seq = seq;
1691         return 1;
1692 }
1693
1694 /*
1695  * Do we need to follow links? We _really_ want to be able
1696  * to do this check without having to look at inode->i_op,
1697  * so we keep a cache of "no, this doesn't need follow_link"
1698  * for the common case.
1699  */
1700 static inline int should_follow_link(struct nameidata *nd, struct path *link,
1701                                      int follow,
1702                                      struct inode *inode, unsigned seq)
1703 {
1704         if (likely(!d_is_symlink(link->dentry)))
1705                 return 0;
1706         if (!follow)
1707                 return 0;
1708         /* make sure that d_is_symlink above matches inode */
1709         if (nd->flags & LOOKUP_RCU) {
1710                 if (read_seqcount_retry(&link->dentry->d_seq, seq))
1711                         return -ECHILD;
1712         }
1713         return pick_link(nd, link, inode, seq);
1714 }
1715
1716 enum {WALK_GET = 1, WALK_PUT = 2};
1717
1718 static int walk_component(struct nameidata *nd, int flags)
1719 {
1720         struct path path;
1721         struct inode *inode;
1722         unsigned seq;
1723         int err;
1724         /*
1725          * "." and ".." are special - ".." especially so because it has
1726          * to be able to know about the current root directory and
1727          * parent relationships.
1728          */
1729         if (unlikely(nd->last_type != LAST_NORM)) {
1730                 err = handle_dots(nd, nd->last_type);
1731                 if (flags & WALK_PUT)
1732                         put_link(nd);
1733                 return err;
1734         }
1735         err = lookup_fast(nd, &path, &inode, &seq);
1736         if (unlikely(err <= 0)) {
1737                 if (err < 0)
1738                         return err;
1739                 path.dentry = lookup_slow(&nd->last, nd->path.dentry,
1740                                           nd->flags);
1741                 if (IS_ERR(path.dentry))
1742                         return PTR_ERR(path.dentry);
1743
1744                 path.mnt = nd->path.mnt;
1745                 err = follow_managed(&path, nd);
1746                 if (unlikely(err < 0))
1747                         return err;
1748
1749                 if (unlikely(d_is_negative(path.dentry))) {
1750                         path_to_nameidata(&path, nd);
1751                         return -ENOENT;
1752                 }
1753
1754                 seq = 0;        /* we are already out of RCU mode */
1755                 inode = d_backing_inode(path.dentry);
1756         }
1757
1758         if (flags & WALK_PUT)
1759                 put_link(nd);
1760         err = should_follow_link(nd, &path, flags & WALK_GET, inode, seq);
1761         if (unlikely(err))
1762                 return err;
1763         path_to_nameidata(&path, nd);
1764         nd->inode = inode;
1765         nd->seq = seq;
1766         return 0;
1767 }
1768
1769 /*
1770  * We can do the critical dentry name comparison and hashing
1771  * operations one word at a time, but we are limited to:
1772  *
1773  * - Architectures with fast unaligned word accesses. We could
1774  *   do a "get_unaligned()" if this helps and is sufficiently
1775  *   fast.
1776  *
1777  * - non-CONFIG_DEBUG_PAGEALLOC configurations (so that we
1778  *   do not trap on the (extremely unlikely) case of a page
1779  *   crossing operation.
1780  *
1781  * - Furthermore, we need an efficient 64-bit compile for the
1782  *   64-bit case in order to generate the "number of bytes in
1783  *   the final mask". Again, that could be replaced with a
1784  *   efficient population count instruction or similar.
1785  */
1786 #ifdef CONFIG_DCACHE_WORD_ACCESS
1787
1788 #include <asm/word-at-a-time.h>
1789
1790 #ifdef CONFIG_64BIT
1791
1792 static inline unsigned int fold_hash(unsigned long hash)
1793 {
1794         return hash_64(hash, 32);
1795 }
1796
1797 /*
1798  * This is George Marsaglia's XORSHIFT generator.
1799  * It implements a maximum-period LFSR in only a few
1800  * instructions.  It also has the property (required
1801  * by hash_name()) that mix_hash(0) = 0.
1802  */
1803 static inline unsigned long mix_hash(unsigned long hash)
1804 {
1805         hash ^= hash << 13;
1806         hash ^= hash >> 7;
1807         hash ^= hash << 17;
1808         return hash;
1809 }
1810
1811 #else   /* 32-bit case */
1812
1813 #define fold_hash(x) (x)
1814
1815 static inline unsigned long mix_hash(unsigned long hash)
1816 {
1817         hash ^= hash << 13;
1818         hash ^= hash >> 17;
1819         hash ^= hash << 5;
1820         return hash;
1821 }
1822
1823 #endif
1824
1825 /* Return the hash of a string of known length */
1826 unsigned int full_name_hash(const char *name, unsigned int len)
1827 {
1828         unsigned long a, hash = 0;
1829
1830         for (;;) {
1831                 if (!len)
1832                         goto done;
1833                 a = load_unaligned_zeropad(name);
1834                 if (len < sizeof(unsigned long))
1835                         break;
1836                 hash = mix_hash(hash + a);
1837                 name += sizeof(unsigned long);
1838                 len -= sizeof(unsigned long);
1839         }
1840         hash += a & bytemask_from_count(len);
1841 done:
1842         return fold_hash(hash);
1843 }
1844 EXPORT_SYMBOL(full_name_hash);
1845
1846 /* Return the "hash_len" (hash and length) of a null-terminated string */
1847 u64 hashlen_string(const char *name)
1848 {
1849         unsigned long a, adata, mask, hash, len;
1850         const struct word_at_a_time constants = WORD_AT_A_TIME_CONSTANTS;
1851
1852         hash = a = 0;
1853         len = -sizeof(unsigned long);
1854         do {
1855                 hash = mix_hash(hash + a);
1856                 len += sizeof(unsigned long);
1857                 a = load_unaligned_zeropad(name+len);
1858         } while (!has_zero(a, &adata, &constants));
1859
1860         adata = prep_zero_mask(a, adata, &constants);
1861         mask = create_zero_mask(adata);
1862         hash += a & zero_bytemask(mask);
1863         len += find_zero(mask);
1864
1865         return hashlen_create(fold_hash(hash), len);
1866 }
1867 EXPORT_SYMBOL(hashlen_string);
1868
1869 /*
1870  * Calculate the length and hash of the path component, and
1871  * return the "hash_len" as the result.
1872  */
1873 static inline u64 hash_name(const char *name)
1874 {
1875         unsigned long a, b, adata, bdata, mask, hash, len;
1876         const struct word_at_a_time constants = WORD_AT_A_TIME_CONSTANTS;
1877
1878         hash = a = 0;
1879         len = -sizeof(unsigned long);
1880         do {
1881                 hash = mix_hash(hash + a);
1882                 len += sizeof(unsigned long);
1883                 a = load_unaligned_zeropad(name+len);
1884                 b = a ^ REPEAT_BYTE('/');
1885         } while (!(has_zero(a, &adata, &constants) | has_zero(b, &bdata, &constants)));
1886
1887         adata = prep_zero_mask(a, adata, &constants);
1888         bdata = prep_zero_mask(b, bdata, &constants);
1889
1890         mask = create_zero_mask(adata | bdata);
1891
1892         hash += a & zero_bytemask(mask);
1893         len += find_zero(mask);
1894         return hashlen_create(fold_hash(hash), len);
1895 }
1896
1897 #else
1898
1899 /* Return the hash of a string of known length */
1900 unsigned int full_name_hash(const char *name, unsigned int len)
1901 {
1902         unsigned long hash = init_name_hash();
1903         while (len--)
1904                 hash = partial_name_hash((unsigned char)*name++, hash);
1905         return end_name_hash(hash);
1906 }
1907 EXPORT_SYMBOL(full_name_hash);
1908
1909 /* Return the "hash_len" (hash and length) of a null-terminated string */
1910 u64 hash_string(const char *name)
1911 {
1912         unsigned long hash = init_name_hash();
1913         unsigned long len = 0, c;
1914
1915         c = (unsigned char)*name;
1916         do {
1917                 len++;
1918                 hash = partial_name_hash(c, hash);
1919                 c = (unsigned char)name[len];
1920         } while (c);
1921         return hashlen_create(end_name_hash(hash), len);
1922 }
1923 EXPORT_SYMBOL(hash_string);
1924
1925 /*
1926  * We know there's a real path component here of at least
1927  * one character.
1928  */
1929 static inline u64 hash_name(const char *name)
1930 {
1931         unsigned long hash = init_name_hash();
1932         unsigned long len = 0, c;
1933
1934         c = (unsigned char)*name;
1935         do {
1936                 len++;
1937                 hash = partial_name_hash(c, hash);
1938                 c = (unsigned char)name[len];
1939         } while (c && c != '/');
1940         return hashlen_create(end_name_hash(hash), len);
1941 }
1942
1943 #endif
1944
1945 /*
1946  * Name resolution.
1947  * This is the basic name resolution function, turning a pathname into
1948  * the final dentry. We expect 'base' to be positive and a directory.
1949  *
1950  * Returns 0 and nd will have valid dentry and mnt on success.
1951  * Returns error and drops reference to input namei data on failure.
1952  */
1953 static int link_path_walk(const char *name, struct nameidata *nd)
1954 {
1955         int err;
1956
1957         while (*name=='/')
1958                 name++;
1959         if (!*name)
1960                 return 0;
1961
1962         /* At this point we know we have a real path component. */
1963         for(;;) {
1964                 u64 hash_len;
1965                 int type;
1966
1967                 err = may_lookup(nd);
1968                 if (err)
1969                         return err;
1970
1971                 hash_len = hash_name(name);
1972
1973                 type = LAST_NORM;
1974                 if (name[0] == '.') switch (hashlen_len(hash_len)) {
1975                         case 2:
1976                                 if (name[1] == '.') {
1977                                         type = LAST_DOTDOT;
1978                                         nd->flags |= LOOKUP_JUMPED;
1979                                 }
1980                                 break;
1981                         case 1:
1982                                 type = LAST_DOT;
1983                 }
1984                 if (likely(type == LAST_NORM)) {
1985                         struct dentry *parent = nd->path.dentry;
1986                         nd->flags &= ~LOOKUP_JUMPED;
1987                         if (unlikely(parent->d_flags & DCACHE_OP_HASH)) {
1988                                 struct qstr this = { { .hash_len = hash_len }, .name = name };
1989                                 err = parent->d_op->d_hash(parent, &this);
1990                                 if (err < 0)
1991                                         return err;
1992                                 hash_len = this.hash_len;
1993                                 name = this.name;
1994                         }
1995                 }
1996
1997                 nd->last.hash_len = hash_len;
1998                 nd->last.name = name;
1999                 nd->last_type = type;
2000
2001                 name += hashlen_len(hash_len);
2002                 if (!*name)
2003                         goto OK;
2004                 /*
2005                  * If it wasn't NUL, we know it was '/'. Skip that
2006                  * slash, and continue until no more slashes.
2007                  */
2008                 do {
2009                         name++;
2010                 } while (unlikely(*name == '/'));
2011                 if (unlikely(!*name)) {
2012 OK:
2013                         /* pathname body, done */
2014                         if (!nd->depth)
2015                                 return 0;
2016                         name = nd->stack[nd->depth - 1].name;
2017                         /* trailing symlink, done */
2018                         if (!name)
2019                                 return 0;
2020                         /* last component of nested symlink */
2021                         err = walk_component(nd, WALK_GET | WALK_PUT);
2022                 } else {
2023                         err = walk_component(nd, WALK_GET);
2024                 }
2025                 if (err < 0)
2026                         return err;
2027
2028                 if (err) {
2029                         const char *s = get_link(nd);
2030
2031                         if (IS_ERR(s))
2032                                 return PTR_ERR(s);
2033                         err = 0;
2034                         if (unlikely(!s)) {
2035                                 /* jumped */
2036                                 put_link(nd);
2037                         } else {
2038                                 nd->stack[nd->depth - 1].name = name;
2039                                 name = s;
2040                                 continue;
2041                         }
2042                 }
2043                 if (unlikely(!d_can_lookup(nd->path.dentry))) {
2044                         if (nd->flags & LOOKUP_RCU) {
2045                                 if (unlazy_walk(nd, NULL, 0))
2046                                         return -ECHILD;
2047                         }
2048                         return -ENOTDIR;
2049                 }
2050         }
2051 }
2052
2053 static const char *path_init(struct nameidata *nd, unsigned flags)
2054 {
2055         int retval = 0;
2056         const char *s = nd->name->name;
2057
2058         nd->last_type = LAST_ROOT; /* if there are only slashes... */
2059         nd->flags = flags | LOOKUP_JUMPED | LOOKUP_PARENT;
2060         nd->depth = 0;
2061         if (flags & LOOKUP_ROOT) {
2062                 struct dentry *root = nd->root.dentry;
2063                 struct inode *inode = root->d_inode;
2064                 if (*s) {
2065                         if (!d_can_lookup(root))
2066                                 return ERR_PTR(-ENOTDIR);
2067                         retval = inode_permission(inode, MAY_EXEC);
2068                         if (retval)
2069                                 return ERR_PTR(retval);
2070                 }
2071                 nd->path = nd->root;
2072                 nd->inode = inode;
2073                 if (flags & LOOKUP_RCU) {
2074                         rcu_read_lock();
2075                         nd->seq = __read_seqcount_begin(&nd->path.dentry->d_seq);
2076                         nd->root_seq = nd->seq;
2077                         nd->m_seq = read_seqbegin(&mount_lock);
2078                 } else {
2079                         path_get(&nd->path);
2080                 }
2081                 return s;
2082         }
2083
2084         nd->root.mnt = NULL;
2085         nd->path.mnt = NULL;
2086         nd->path.dentry = NULL;
2087
2088         nd->m_seq = read_seqbegin(&mount_lock);
2089         if (*s == '/') {
2090                 if (flags & LOOKUP_RCU)
2091                         rcu_read_lock();
2092                 set_root(nd);
2093                 if (likely(!nd_jump_root(nd)))
2094                         return s;
2095                 nd->root.mnt = NULL;
2096                 rcu_read_unlock();
2097                 return ERR_PTR(-ECHILD);
2098         } else if (nd->dfd == AT_FDCWD) {
2099                 if (flags & LOOKUP_RCU) {
2100                         struct fs_struct *fs = current->fs;
2101                         unsigned seq;
2102
2103                         rcu_read_lock();
2104
2105                         do {
2106                                 seq = read_seqcount_begin(&fs->seq);
2107                                 nd->path = fs->pwd;
2108                                 nd->inode = nd->path.dentry->d_inode;
2109                                 nd->seq = __read_seqcount_begin(&nd->path.dentry->d_seq);
2110                         } while (read_seqcount_retry(&fs->seq, seq));
2111                 } else {
2112                         get_fs_pwd(current->fs, &nd->path);
2113                         nd->inode = nd->path.dentry->d_inode;
2114                 }
2115                 return s;
2116         } else {
2117                 /* Caller must check execute permissions on the starting path component */
2118                 struct fd f = fdget_raw(nd->dfd);
2119                 struct dentry *dentry;
2120
2121                 if (!f.file)
2122                         return ERR_PTR(-EBADF);
2123
2124                 dentry = f.file->f_path.dentry;
2125
2126                 if (*s) {
2127                         if (!d_can_lookup(dentry)) {
2128                                 fdput(f);
2129                                 return ERR_PTR(-ENOTDIR);
2130                         }
2131                 }
2132
2133                 nd->path = f.file->f_path;
2134                 if (flags & LOOKUP_RCU) {
2135                         rcu_read_lock();
2136                         nd->inode = nd->path.dentry->d_inode;
2137                         nd->seq = read_seqcount_begin(&nd->path.dentry->d_seq);
2138                 } else {
2139                         path_get(&nd->path);
2140                         nd->inode = nd->path.dentry->d_inode;
2141                 }
2142                 fdput(f);
2143                 return s;
2144         }
2145 }
2146
2147 static const char *trailing_symlink(struct nameidata *nd)
2148 {
2149         const char *s;
2150         int error = may_follow_link(nd);
2151         if (unlikely(error))
2152                 return ERR_PTR(error);
2153         nd->flags |= LOOKUP_PARENT;
2154         nd->stack[0].name = NULL;
2155         s = get_link(nd);
2156         return s ? s : "";
2157 }
2158
2159 static inline int lookup_last(struct nameidata *nd)
2160 {
2161         if (nd->last_type == LAST_NORM && nd->last.name[nd->last.len])
2162                 nd->flags |= LOOKUP_FOLLOW | LOOKUP_DIRECTORY;
2163
2164         nd->flags &= ~LOOKUP_PARENT;
2165         return walk_component(nd,
2166                         nd->flags & LOOKUP_FOLLOW
2167                                 ? nd->depth
2168                                         ? WALK_PUT | WALK_GET
2169                                         : WALK_GET
2170                                 : 0);
2171 }
2172
2173 /* Returns 0 and nd will be valid on success; Retuns error, otherwise. */
2174 static int path_lookupat(struct nameidata *nd, unsigned flags, struct path *path)
2175 {
2176         const char *s = path_init(nd, flags);
2177         int err;
2178
2179         if (IS_ERR(s))
2180                 return PTR_ERR(s);
2181         while (!(err = link_path_walk(s, nd))
2182                 && ((err = lookup_last(nd)) > 0)) {
2183                 s = trailing_symlink(nd);
2184                 if (IS_ERR(s)) {
2185                         err = PTR_ERR(s);
2186                         break;
2187                 }
2188         }
2189         if (!err)
2190                 err = complete_walk(nd);
2191
2192         if (!err && nd->flags & LOOKUP_DIRECTORY)
2193                 if (!d_can_lookup(nd->path.dentry))
2194                         err = -ENOTDIR;
2195         if (!err) {
2196                 *path = nd->path;
2197                 nd->path.mnt = NULL;
2198                 nd->path.dentry = NULL;
2199         }
2200         terminate_walk(nd);
2201         return err;
2202 }
2203
2204 static int filename_lookup(int dfd, struct filename *name, unsigned flags,
2205                            struct path *path, struct path *root)
2206 {
2207         int retval;
2208         struct nameidata nd;
2209         if (IS_ERR(name))
2210                 return PTR_ERR(name);
2211         if (unlikely(root)) {
2212                 nd.root = *root;
2213                 flags |= LOOKUP_ROOT;
2214         }
2215         set_nameidata(&nd, dfd, name);
2216         retval = path_lookupat(&nd, flags | LOOKUP_RCU, path);
2217         if (unlikely(retval == -ECHILD))
2218                 retval = path_lookupat(&nd, flags, path);
2219         if (unlikely(retval == -ESTALE))
2220                 retval = path_lookupat(&nd, flags | LOOKUP_REVAL, path);
2221
2222         if (likely(!retval))
2223                 audit_inode(name, path->dentry, flags & LOOKUP_PARENT);
2224         restore_nameidata();
2225         putname(name);
2226         return retval;
2227 }
2228
2229 /* Returns 0 and nd will be valid on success; Retuns error, otherwise. */
2230 static int path_parentat(struct nameidata *nd, unsigned flags,
2231                                 struct path *parent)
2232 {
2233         const char *s = path_init(nd, flags);
2234         int err;
2235         if (IS_ERR(s))
2236                 return PTR_ERR(s);
2237         err = link_path_walk(s, nd);
2238         if (!err)
2239                 err = complete_walk(nd);
2240         if (!err) {
2241                 *parent = nd->path;
2242                 nd->path.mnt = NULL;
2243                 nd->path.dentry = NULL;
2244         }
2245         terminate_walk(nd);
2246         return err;
2247 }
2248
2249 static struct filename *filename_parentat(int dfd, struct filename *name,
2250                                 unsigned int flags, struct path *parent,
2251                                 struct qstr *last, int *type)
2252 {
2253         int retval;
2254         struct nameidata nd;
2255
2256         if (IS_ERR(name))
2257                 return name;
2258         set_nameidata(&nd, dfd, name);
2259         retval = path_parentat(&nd, flags | LOOKUP_RCU, parent);
2260         if (unlikely(retval == -ECHILD))
2261                 retval = path_parentat(&nd, flags, parent);
2262         if (unlikely(retval == -ESTALE))
2263                 retval = path_parentat(&nd, flags | LOOKUP_REVAL, parent);
2264         if (likely(!retval)) {
2265                 *last = nd.last;
2266                 *type = nd.last_type;
2267                 audit_inode(name, parent->dentry, LOOKUP_PARENT);
2268         } else {
2269                 putname(name);
2270                 name = ERR_PTR(retval);
2271         }
2272         restore_nameidata();
2273         return name;
2274 }
2275
2276 /* does lookup, returns the object with parent locked */
2277 struct dentry *kern_path_locked(const char *name, struct path *path)
2278 {
2279         struct filename *filename;
2280         struct dentry *d;
2281         struct qstr last;
2282         int type;
2283
2284         filename = filename_parentat(AT_FDCWD, getname_kernel(name), 0, path,
2285                                     &last, &type);
2286         if (IS_ERR(filename))
2287                 return ERR_CAST(filename);
2288         if (unlikely(type != LAST_NORM)) {
2289                 path_put(path);
2290                 putname(filename);
2291                 return ERR_PTR(-EINVAL);
2292         }
2293         inode_lock_nested(path->dentry->d_inode, I_MUTEX_PARENT);
2294         d = __lookup_hash(&last, path->dentry, 0);
2295         if (IS_ERR(d)) {
2296                 inode_unlock(path->dentry->d_inode);
2297                 path_put(path);
2298         }
2299         putname(filename);
2300         return d;
2301 }
2302
2303 int kern_path(const char *name, unsigned int flags, struct path *path)
2304 {
2305         return filename_lookup(AT_FDCWD, getname_kernel(name),
2306                                flags, path, NULL);
2307 }
2308 EXPORT_SYMBOL(kern_path);
2309
2310 /**
2311  * vfs_path_lookup - lookup a file path relative to a dentry-vfsmount pair
2312  * @dentry:  pointer to dentry of the base directory
2313  * @mnt: pointer to vfs mount of the base directory
2314  * @name: pointer to file name
2315  * @flags: lookup flags
2316  * @path: pointer to struct path to fill
2317  */
2318 int vfs_path_lookup(struct dentry *dentry, struct vfsmount *mnt,
2319                     const char *name, unsigned int flags,
2320                     struct path *path)
2321 {
2322         struct path root = {.mnt = mnt, .dentry = dentry};
2323         /* the first argument of filename_lookup() is ignored with root */
2324         return filename_lookup(AT_FDCWD, getname_kernel(name),
2325                                flags , path, &root);
2326 }
2327 EXPORT_SYMBOL(vfs_path_lookup);
2328
2329 /**
2330  * lookup_hash - lookup single pathname component on already hashed name
2331  * @name:       name and hash to lookup
2332  * @base:       base directory to lookup from
2333  *
2334  * The name must have been verified and hashed (see lookup_one_len()).  Using
2335  * this after just full_name_hash() is unsafe.
2336  *
2337  * This function also doesn't check for search permission on base directory.
2338  *
2339  * Use lookup_one_len_unlocked() instead, unless you really know what you are
2340  * doing.
2341  *
2342  * Do not hold i_mutex; this helper takes i_mutex if necessary.
2343  */
2344 struct dentry *lookup_hash(const struct qstr *name, struct dentry *base)
2345 {
2346         struct dentry *ret;
2347
2348         ret = lookup_dcache(name, base, 0);
2349         if (!ret)
2350                 ret = lookup_slow(name, base, 0);
2351
2352         return ret;
2353 }
2354 EXPORT_SYMBOL(lookup_hash);
2355
2356 /**
2357  * lookup_one_len - filesystem helper to lookup single pathname component
2358  * @name:       pathname component to lookup
2359  * @base:       base directory to lookup from
2360  * @len:        maximum length @len should be interpreted to
2361  *
2362  * Note that this routine is purely a helper for filesystem usage and should
2363  * not be called by generic code.
2364  *
2365  * The caller must hold base->i_mutex.
2366  */
2367 struct dentry *lookup_one_len(const char *name, struct dentry *base, int len)
2368 {
2369         struct qstr this;
2370         unsigned int c;
2371         int err;
2372
2373         WARN_ON_ONCE(!inode_is_locked(base->d_inode));
2374
2375         this.name = name;
2376         this.len = len;
2377         this.hash = full_name_hash(name, len);
2378         if (!len)
2379                 return ERR_PTR(-EACCES);
2380
2381         if (unlikely(name[0] == '.')) {
2382                 if (len < 2 || (len == 2 && name[1] == '.'))
2383                         return ERR_PTR(-EACCES);
2384         }
2385
2386         while (len--) {
2387                 c = *(const unsigned char *)name++;
2388                 if (c == '/' || c == '\0')
2389                         return ERR_PTR(-EACCES);
2390         }
2391         /*
2392          * See if the low-level filesystem might want
2393          * to use its own hash..
2394          */
2395         if (base->d_flags & DCACHE_OP_HASH) {
2396                 int err = base->d_op->d_hash(base, &this);
2397                 if (err < 0)
2398                         return ERR_PTR(err);
2399         }
2400
2401         err = inode_permission(base->d_inode, MAY_EXEC);
2402         if (err)
2403                 return ERR_PTR(err);
2404
2405         return __lookup_hash(&this, base, 0);
2406 }
2407 EXPORT_SYMBOL(lookup_one_len);
2408
2409 /**
2410  * lookup_one_len_unlocked - filesystem helper to lookup single pathname component
2411  * @name:       pathname component to lookup
2412  * @base:       base directory to lookup from
2413  * @len:        maximum length @len should be interpreted to
2414  *
2415  * Note that this routine is purely a helper for filesystem usage and should
2416  * not be called by generic code.
2417  *
2418  * Unlike lookup_one_len, it should be called without the parent
2419  * i_mutex held, and will take the i_mutex itself if necessary.
2420  */
2421 struct dentry *lookup_one_len_unlocked(const char *name,
2422                                        struct dentry *base, int len)
2423 {
2424         struct qstr this;
2425         unsigned int c;
2426         int err;
2427
2428         this.name = name;
2429         this.len = len;
2430         this.hash = full_name_hash(name, len);
2431         if (!len)
2432                 return ERR_PTR(-EACCES);
2433
2434         if (unlikely(name[0] == '.')) {
2435                 if (len < 2 || (len == 2 && name[1] == '.'))
2436                         return ERR_PTR(-EACCES);
2437         }
2438
2439         while (len--) {
2440                 c = *(const unsigned char *)name++;
2441                 if (c == '/' || c == '\0')
2442                         return ERR_PTR(-EACCES);
2443         }
2444         /*
2445          * See if the low-level filesystem might want
2446          * to use its own hash..
2447          */
2448         if (base->d_flags & DCACHE_OP_HASH) {
2449                 int err = base->d_op->d_hash(base, &this);
2450                 if (err < 0)
2451                         return ERR_PTR(err);
2452         }
2453
2454         err = inode_permission(base->d_inode, MAY_EXEC);
2455         if (err)
2456                 return ERR_PTR(err);
2457
2458         return lookup_hash(&this, base);
2459 }
2460 EXPORT_SYMBOL(lookup_one_len_unlocked);
2461
2462 int user_path_at_empty(int dfd, const char __user *name, unsigned flags,
2463                  struct path *path, int *empty)
2464 {
2465         return filename_lookup(dfd, getname_flags(name, flags, empty),
2466                                flags, path, NULL);
2467 }
2468 EXPORT_SYMBOL(user_path_at_empty);
2469
2470 /*
2471  * NB: most callers don't do anything directly with the reference to the
2472  *     to struct filename, but the nd->last pointer points into the name string
2473  *     allocated by getname. So we must hold the reference to it until all
2474  *     path-walking is complete.
2475  */
2476 static inline struct filename *
2477 user_path_parent(int dfd, const char __user *path,
2478                  struct path *parent,
2479                  struct qstr *last,
2480                  int *type,
2481                  unsigned int flags)
2482 {
2483         /* only LOOKUP_REVAL is allowed in extra flags */
2484         return filename_parentat(dfd, getname(path), flags & LOOKUP_REVAL,
2485                                  parent, last, type);
2486 }
2487
2488 /**
2489  * mountpoint_last - look up last component for umount
2490  * @nd:   pathwalk nameidata - currently pointing at parent directory of "last"
2491  * @path: pointer to container for result
2492  *
2493  * This is a special lookup_last function just for umount. In this case, we
2494  * need to resolve the path without doing any revalidation.
2495  *
2496  * The nameidata should be the result of doing a LOOKUP_PARENT pathwalk. Since
2497  * mountpoints are always pinned in the dcache, their ancestors are too. Thus,
2498  * in almost all cases, this lookup will be served out of the dcache. The only
2499  * cases where it won't are if nd->last refers to a symlink or the path is
2500  * bogus and it doesn't exist.
2501  *
2502  * Returns:
2503  * -error: if there was an error during lookup. This includes -ENOENT if the
2504  *         lookup found a negative dentry. The nd->path reference will also be
2505  *         put in this case.
2506  *
2507  * 0:      if we successfully resolved nd->path and found it to not to be a
2508  *         symlink that needs to be followed. "path" will also be populated.
2509  *         The nd->path reference will also be put.
2510  *
2511  * 1:      if we successfully resolved nd->last and found it to be a symlink
2512  *         that needs to be followed. "path" will be populated with the path
2513  *         to the link, and nd->path will *not* be put.
2514  */
2515 static int
2516 mountpoint_last(struct nameidata *nd, struct path *path)
2517 {
2518         int error = 0;
2519         struct dentry *dentry;
2520         struct dentry *dir = nd->path.dentry;
2521
2522         /* If we're in rcuwalk, drop out of it to handle last component */
2523         if (nd->flags & LOOKUP_RCU) {
2524                 if (unlazy_walk(nd, NULL, 0))
2525                         return -ECHILD;
2526         }
2527
2528         nd->flags &= ~LOOKUP_PARENT;
2529
2530         if (unlikely(nd->last_type != LAST_NORM)) {
2531                 error = handle_dots(nd, nd->last_type);
2532                 if (error)
2533                         return error;
2534                 dentry = dget(nd->path.dentry);
2535         } else {
2536                 dentry = d_lookup(dir, &nd->last);
2537                 if (!dentry) {
2538                         /*
2539                          * No cached dentry. Mounted dentries are pinned in the
2540                          * cache, so that means that this dentry is probably
2541                          * a symlink or the path doesn't actually point
2542                          * to a mounted dentry.
2543                          */
2544                         dentry = lookup_slow(&nd->last, dir,
2545                                              nd->flags | LOOKUP_NO_REVAL);
2546                         if (IS_ERR(dentry))
2547                                 return PTR_ERR(dentry);
2548                 }
2549         }
2550         if (d_is_negative(dentry)) {
2551                 dput(dentry);
2552                 return -ENOENT;
2553         }
2554         if (nd->depth)
2555                 put_link(nd);
2556         path->dentry = dentry;
2557         path->mnt = nd->path.mnt;
2558         error = should_follow_link(nd, path, nd->flags & LOOKUP_FOLLOW,
2559                                    d_backing_inode(dentry), 0);
2560         if (unlikely(error))
2561                 return error;
2562         mntget(path->mnt);
2563         follow_mount(path);
2564         return 0;
2565 }
2566
2567 /**
2568  * path_mountpoint - look up a path to be umounted
2569  * @nd:         lookup context
2570  * @flags:      lookup flags
2571  * @path:       pointer to container for result
2572  *
2573  * Look up the given name, but don't attempt to revalidate the last component.
2574  * Returns 0 and "path" will be valid on success; Returns error otherwise.
2575  */
2576 static int
2577 path_mountpoint(struct nameidata *nd, unsigned flags, struct path *path)
2578 {
2579         const char *s = path_init(nd, flags);
2580         int err;
2581         if (IS_ERR(s))
2582                 return PTR_ERR(s);
2583         while (!(err = link_path_walk(s, nd)) &&
2584                 (err = mountpoint_last(nd, path)) > 0) {
2585                 s = trailing_symlink(nd);
2586                 if (IS_ERR(s)) {
2587                         err = PTR_ERR(s);
2588                         break;
2589                 }
2590         }
2591         terminate_walk(nd);
2592         return err;
2593 }
2594
2595 static int
2596 filename_mountpoint(int dfd, struct filename *name, struct path *path,
2597                         unsigned int flags)
2598 {
2599         struct nameidata nd;
2600         int error;
2601         if (IS_ERR(name))
2602                 return PTR_ERR(name);
2603         set_nameidata(&nd, dfd, name);
2604         error = path_mountpoint(&nd, flags | LOOKUP_RCU, path);
2605         if (unlikely(error == -ECHILD))
2606                 error = path_mountpoint(&nd, flags, path);
2607         if (unlikely(error == -ESTALE))
2608                 error = path_mountpoint(&nd, flags | LOOKUP_REVAL, path);
2609         if (likely(!error))
2610                 audit_inode(name, path->dentry, 0);
2611         restore_nameidata();
2612         putname(name);
2613         return error;
2614 }
2615
2616 /**
2617  * user_path_mountpoint_at - lookup a path from userland in order to umount it
2618  * @dfd:        directory file descriptor
2619  * @name:       pathname from userland
2620  * @flags:      lookup flags
2621  * @path:       pointer to container to hold result
2622  *
2623  * A umount is a special case for path walking. We're not actually interested
2624  * in the inode in this situation, and ESTALE errors can be a problem. We
2625  * simply want track down the dentry and vfsmount attached at the mountpoint
2626  * and avoid revalidating the last component.
2627  *
2628  * Returns 0 and populates "path" on success.
2629  */
2630 int
2631 user_path_mountpoint_at(int dfd, const char __user *name, unsigned int flags,
2632                         struct path *path)
2633 {
2634         return filename_mountpoint(dfd, getname(name), path, flags);
2635 }
2636
2637 int
2638 kern_path_mountpoint(int dfd, const char *name, struct path *path,
2639                         unsigned int flags)
2640 {
2641         return filename_mountpoint(dfd, getname_kernel(name), path, flags);
2642 }
2643 EXPORT_SYMBOL(kern_path_mountpoint);
2644
2645 int __check_sticky(struct inode *dir, struct inode *inode)
2646 {
2647         kuid_t fsuid = current_fsuid();
2648
2649         if (uid_eq(inode->i_uid, fsuid))
2650                 return 0;
2651         if (uid_eq(dir->i_uid, fsuid))
2652                 return 0;
2653         return !capable_wrt_inode_uidgid(inode, CAP_FOWNER);
2654 }
2655 EXPORT_SYMBOL(__check_sticky);
2656
2657 /*
2658  *      Check whether we can remove a link victim from directory dir, check
2659  *  whether the type of victim is right.
2660  *  1. We can't do it if dir is read-only (done in permission())
2661  *  2. We should have write and exec permissions on dir
2662  *  3. We can't remove anything from append-only dir
2663  *  4. We can't do anything with immutable dir (done in permission())
2664  *  5. If the sticky bit on dir is set we should either
2665  *      a. be owner of dir, or
2666  *      b. be owner of victim, or
2667  *      c. have CAP_FOWNER capability
2668  *  6. If the victim is append-only or immutable we can't do antyhing with
2669  *     links pointing to it.
2670  *  7. If we were asked to remove a directory and victim isn't one - ENOTDIR.
2671  *  8. If we were asked to remove a non-directory and victim isn't one - EISDIR.
2672  *  9. We can't remove a root or mountpoint.
2673  * 10. We don't allow removal of NFS sillyrenamed files; it's handled by
2674  *     nfs_async_unlink().
2675  */
2676 static int may_delete(struct inode *dir, struct dentry *victim, bool isdir)
2677 {
2678         struct inode *inode = d_backing_inode(victim);
2679         int error;
2680
2681         if (d_is_negative(victim))
2682                 return -ENOENT;
2683         BUG_ON(!inode);
2684
2685         BUG_ON(victim->d_parent->d_inode != dir);
2686         audit_inode_child(dir, victim, AUDIT_TYPE_CHILD_DELETE);
2687
2688         error = inode_permission(dir, MAY_WRITE | MAY_EXEC);
2689         if (error)
2690                 return error;
2691         if (IS_APPEND(dir))
2692                 return -EPERM;
2693
2694         if (check_sticky(dir, inode) || IS_APPEND(inode) ||
2695             IS_IMMUTABLE(inode) || IS_SWAPFILE(inode))
2696                 return -EPERM;
2697         if (isdir) {
2698                 if (!d_is_dir(victim))
2699                         return -ENOTDIR;
2700                 if (IS_ROOT(victim))
2701                         return -EBUSY;
2702         } else if (d_is_dir(victim))
2703                 return -EISDIR;
2704         if (IS_DEADDIR(dir))
2705                 return -ENOENT;
2706         if (victim->d_flags & DCACHE_NFSFS_RENAMED)
2707                 return -EBUSY;
2708         return 0;
2709 }
2710
2711 /*      Check whether we can create an object with dentry child in directory
2712  *  dir.
2713  *  1. We can't do it if child already exists (open has special treatment for
2714  *     this case, but since we are inlined it's OK)
2715  *  2. We can't do it if dir is read-only (done in permission())
2716  *  3. We should have write and exec permissions on dir
2717  *  4. We can't do it if dir is immutable (done in permission())
2718  */
2719 static inline int may_create(struct inode *dir, struct dentry *child)
2720 {
2721         audit_inode_child(dir, child, AUDIT_TYPE_CHILD_CREATE);
2722         if (child->d_inode)
2723                 return -EEXIST;
2724         if (IS_DEADDIR(dir))
2725                 return -ENOENT;
2726         return inode_permission(dir, MAY_WRITE | MAY_EXEC);
2727 }
2728
2729 /*
2730  * p1 and p2 should be directories on the same fs.
2731  */
2732 struct dentry *lock_rename(struct dentry *p1, struct dentry *p2)
2733 {
2734         struct dentry *p;
2735
2736         if (p1 == p2) {
2737                 inode_lock_nested(p1->d_inode, I_MUTEX_PARENT);
2738                 return NULL;
2739         }
2740
2741         mutex_lock(&p1->d_inode->i_sb->s_vfs_rename_mutex);
2742
2743         p = d_ancestor(p2, p1);
2744         if (p) {
2745                 inode_lock_nested(p2->d_inode, I_MUTEX_PARENT);
2746                 inode_lock_nested(p1->d_inode, I_MUTEX_CHILD);
2747                 return p;
2748         }
2749
2750         p = d_ancestor(p1, p2);
2751         if (p) {
2752                 inode_lock_nested(p1->d_inode, I_MUTEX_PARENT);
2753                 inode_lock_nested(p2->d_inode, I_MUTEX_CHILD);
2754                 return p;
2755         }
2756
2757         inode_lock_nested(p1->d_inode, I_MUTEX_PARENT);
2758         inode_lock_nested(p2->d_inode, I_MUTEX_PARENT2);
2759         return NULL;
2760 }
2761 EXPORT_SYMBOL(lock_rename);
2762
2763 void unlock_rename(struct dentry *p1, struct dentry *p2)
2764 {
2765         inode_unlock(p1->d_inode);
2766         if (p1 != p2) {
2767                 inode_unlock(p2->d_inode);
2768                 mutex_unlock(&p1->d_inode->i_sb->s_vfs_rename_mutex);
2769         }
2770 }
2771 EXPORT_SYMBOL(unlock_rename);
2772
2773 int vfs_create(struct inode *dir, struct dentry *dentry, umode_t mode,
2774                 bool want_excl)
2775 {
2776         int error = may_create(dir, dentry);
2777         if (error)
2778                 return error;
2779
2780         if (!dir->i_op->create)
2781                 return -EACCES; /* shouldn't it be ENOSYS? */
2782         mode &= S_IALLUGO;
2783         mode |= S_IFREG;
2784         error = security_inode_create(dir, dentry, mode);
2785         if (error)
2786                 return error;
2787         error = dir->i_op->create(dir, dentry, mode, want_excl);
2788         if (!error)
2789                 fsnotify_create(dir, dentry);
2790         return error;
2791 }
2792 EXPORT_SYMBOL(vfs_create);
2793
2794 static int may_open(struct path *path, int acc_mode, int flag)
2795 {
2796         struct dentry *dentry = path->dentry;
2797         struct inode *inode = dentry->d_inode;
2798         int error;
2799
2800         if (!inode)
2801                 return -ENOENT;
2802
2803         switch (inode->i_mode & S_IFMT) {
2804         case S_IFLNK:
2805                 return -ELOOP;
2806         case S_IFDIR:
2807                 if (acc_mode & MAY_WRITE)
2808                         return -EISDIR;
2809                 break;
2810         case S_IFBLK:
2811         case S_IFCHR:
2812                 if (path->mnt->mnt_flags & MNT_NODEV)
2813                         return -EACCES;
2814                 /*FALLTHRU*/
2815         case S_IFIFO:
2816         case S_IFSOCK:
2817                 flag &= ~O_TRUNC;
2818                 break;
2819         }
2820
2821         error = inode_permission(inode, MAY_OPEN | acc_mode);
2822         if (error)
2823                 return error;
2824
2825         /*
2826          * An append-only file must be opened in append mode for writing.
2827          */
2828         if (IS_APPEND(inode)) {
2829                 if  ((flag & O_ACCMODE) != O_RDONLY && !(flag & O_APPEND))
2830                         return -EPERM;
2831                 if (flag & O_TRUNC)
2832                         return -EPERM;
2833         }
2834
2835         /* O_NOATIME can only be set by the owner or superuser */
2836         if (flag & O_NOATIME && !inode_owner_or_capable(inode))
2837                 return -EPERM;
2838
2839         return 0;
2840 }
2841
2842 static int handle_truncate(struct file *filp)
2843 {
2844         struct path *path = &filp->f_path;
2845         struct inode *inode = path->dentry->d_inode;
2846         int error = get_write_access(inode);
2847         if (error)
2848                 return error;
2849         /*
2850          * Refuse to truncate files with mandatory locks held on them.
2851          */
2852         error = locks_verify_locked(filp);
2853         if (!error)
2854                 error = security_path_truncate(path);
2855         if (!error) {
2856                 error = do_truncate(path->dentry, 0,
2857                                     ATTR_MTIME|ATTR_CTIME|ATTR_OPEN,
2858                                     filp);
2859         }
2860         put_write_access(inode);
2861         return error;
2862 }
2863
2864 static inline int open_to_namei_flags(int flag)
2865 {
2866         if ((flag & O_ACCMODE) == 3)
2867                 flag--;
2868         return flag;
2869 }
2870
2871 static int may_o_create(struct path *dir, struct dentry *dentry, umode_t mode)
2872 {
2873         int error = security_path_mknod(dir, dentry, mode, 0);
2874         if (error)
2875                 return error;
2876
2877         error = inode_permission(dir->dentry->d_inode, MAY_WRITE | MAY_EXEC);
2878         if (error)
2879                 return error;
2880
2881         return security_inode_create(dir->dentry->d_inode, dentry, mode);
2882 }
2883
2884 /*
2885  * Attempt to atomically look up, create and open a file from a negative
2886  * dentry.
2887  *
2888  * Returns 0 if successful.  The file will have been created and attached to
2889  * @file by the filesystem calling finish_open().
2890  *
2891  * Returns 1 if the file was looked up only or didn't need creating.  The
2892  * caller will need to perform the open themselves.  @path will have been
2893  * updated to point to the new dentry.  This may be negative.
2894  *
2895  * Returns an error code otherwise.
2896  */
2897 static int atomic_open(struct nameidata *nd, struct dentry *dentry,
2898                         struct path *path, struct file *file,
2899                         const struct open_flags *op,
2900                         bool got_write, bool need_lookup,
2901                         int *opened)
2902 {
2903         struct inode *dir =  nd->path.dentry->d_inode;
2904         unsigned open_flag = open_to_namei_flags(op->open_flag);
2905         umode_t mode;
2906         int error;
2907         int acc_mode;
2908         int create_error = 0;
2909         struct dentry *const DENTRY_NOT_SET = (void *) -1UL;
2910         bool excl;
2911
2912         BUG_ON(dentry->d_inode);
2913
2914         /* Don't create child dentry for a dead directory. */
2915         if (unlikely(IS_DEADDIR(dir))) {
2916                 error = -ENOENT;
2917                 goto out;
2918         }
2919
2920         mode = op->mode;
2921         if ((open_flag & O_CREAT) && !IS_POSIXACL(dir))
2922                 mode &= ~current_umask();
2923
2924         excl = (open_flag & (O_EXCL | O_CREAT)) == (O_EXCL | O_CREAT);
2925         if (excl)
2926                 open_flag &= ~O_TRUNC;
2927
2928         /*
2929          * Checking write permission is tricky, bacuse we don't know if we are
2930          * going to actually need it: O_CREAT opens should work as long as the
2931          * file exists.  But checking existence breaks atomicity.  The trick is
2932          * to check access and if not granted clear O_CREAT from the flags.
2933          *
2934          * Another problem is returing the "right" error value (e.g. for an
2935          * O_EXCL open we want to return EEXIST not EROFS).
2936          */
2937         if (((open_flag & (O_CREAT | O_TRUNC)) ||
2938             (open_flag & O_ACCMODE) != O_RDONLY) && unlikely(!got_write)) {
2939                 if (!(open_flag & O_CREAT)) {
2940                         /*
2941                          * No O_CREATE -> atomicity not a requirement -> fall
2942                          * back to lookup + open
2943                          */
2944                         goto no_open;
2945                 } else if (open_flag & (O_EXCL | O_TRUNC)) {
2946                         /* Fall back and fail with the right error */
2947                         create_error = -EROFS;
2948                         goto no_open;
2949                 } else {
2950                         /* No side effects, safe to clear O_CREAT */
2951                         create_error = -EROFS;
2952                         open_flag &= ~O_CREAT;
2953                 }
2954         }
2955
2956         if (open_flag & O_CREAT) {
2957                 error = may_o_create(&nd->path, dentry, mode);
2958                 if (error) {
2959                         create_error = error;
2960                         if (open_flag & O_EXCL)
2961                                 goto no_open;
2962                         open_flag &= ~O_CREAT;
2963                 }
2964         }
2965
2966         if (nd->flags & LOOKUP_DIRECTORY)
2967                 open_flag |= O_DIRECTORY;
2968
2969         file->f_path.dentry = DENTRY_NOT_SET;
2970         file->f_path.mnt = nd->path.mnt;
2971         error = dir->i_op->atomic_open(dir, dentry, file, open_flag, mode,
2972                                       opened);
2973         if (error < 0) {
2974                 if (create_error && error == -ENOENT)
2975                         error = create_error;
2976                 goto out;
2977         }
2978
2979         if (error) {    /* returned 1, that is */
2980                 if (WARN_ON(file->f_path.dentry == DENTRY_NOT_SET)) {
2981                         error = -EIO;
2982                         goto out;
2983                 }
2984                 if (file->f_path.dentry) {
2985                         dput(dentry);
2986                         dentry = file->f_path.dentry;
2987                 }
2988                 if (*opened & FILE_CREATED)
2989                         fsnotify_create(dir, dentry);
2990                 if (!dentry->d_inode) {
2991                         WARN_ON(*opened & FILE_CREATED);
2992                         if (create_error) {
2993                                 error = create_error;
2994                                 goto out;
2995                         }
2996                 } else {
2997                         if (excl && !(*opened & FILE_CREATED)) {
2998                                 error = -EEXIST;
2999                                 goto out;
3000                         }
3001                 }
3002                 goto looked_up;
3003         }
3004
3005         /*
3006          * We didn't have the inode before the open, so check open permission
3007          * here.
3008          */
3009         acc_mode = op->acc_mode;
3010         if (*opened & FILE_CREATED) {
3011                 WARN_ON(!(open_flag & O_CREAT));
3012                 fsnotify_create(dir, dentry);
3013                 acc_mode = 0;
3014         }
3015         error = may_open(&file->f_path, acc_mode, open_flag);
3016         if (error)
3017                 fput(file);
3018
3019 out:
3020         dput(dentry);
3021         return error;
3022
3023 no_open:
3024         if (need_lookup) {
3025                 dentry = lookup_real(dir, dentry, nd->flags);
3026                 if (IS_ERR(dentry))
3027                         return PTR_ERR(dentry);
3028         }
3029         if (create_error && !dentry->d_inode) {
3030                 error = create_error;
3031                 goto out;
3032         }
3033 looked_up:
3034         path->dentry = dentry;
3035         path->mnt = nd->path.mnt;
3036         return 1;
3037 }
3038
3039 /*
3040  * Look up and maybe create and open the last component.
3041  *
3042  * Must be called with i_mutex held on parent.
3043  *
3044  * Returns 0 if the file was successfully atomically created (if necessary) and
3045  * opened.  In this case the file will be returned attached to @file.
3046  *
3047  * Returns 1 if the file was not completely opened at this time, though lookups
3048  * and creations will have been performed and the dentry returned in @path will
3049  * be positive upon return if O_CREAT was specified.  If O_CREAT wasn't
3050  * specified then a negative dentry may be returned.
3051  *
3052  * An error code is returned otherwise.
3053  *
3054  * FILE_CREATE will be set in @*opened if the dentry was created and will be
3055  * cleared otherwise prior to returning.
3056  */
3057 static int lookup_open(struct nameidata *nd, struct path *path,
3058                         struct file *file,
3059                         const struct open_flags *op,
3060                         bool got_write, int *opened)
3061 {
3062         struct dentry *dir = nd->path.dentry;
3063         struct inode *dir_inode = dir->d_inode;
3064         struct dentry *dentry;
3065         int error;
3066         bool need_lookup = false;
3067
3068         *opened &= ~FILE_CREATED;
3069         dentry = lookup_dcache(&nd->last, dir, nd->flags);
3070         if (IS_ERR(dentry))
3071                 return PTR_ERR(dentry);
3072
3073         if (!dentry) {
3074                 dentry = d_alloc(dir, &nd->last);
3075                 if (unlikely(!dentry))
3076                         return -ENOMEM;
3077                 need_lookup = true;
3078         } else if (dentry->d_inode) {
3079                 /* Cached positive dentry: will open in f_op->open */
3080                 goto out_no_open;
3081         }
3082
3083         if ((nd->flags & LOOKUP_OPEN) && dir_inode->i_op->atomic_open) {
3084                 return atomic_open(nd, dentry, path, file, op, got_write,
3085                                    need_lookup, opened);
3086         }
3087
3088         if (need_lookup) {
3089                 BUG_ON(dentry->d_inode);
3090
3091                 dentry = lookup_real(dir_inode, dentry, nd->flags);
3092                 if (IS_ERR(dentry))
3093                         return PTR_ERR(dentry);
3094         }
3095
3096         /* Negative dentry, just create the file */
3097         if (!dentry->d_inode && (op->open_flag & O_CREAT)) {
3098                 umode_t mode = op->mode;
3099                 if (!IS_POSIXACL(dir->d_inode))
3100                         mode &= ~current_umask();
3101                 /*
3102                  * This write is needed to ensure that a
3103                  * rw->ro transition does not occur between
3104                  * the time when the file is created and when
3105                  * a permanent write count is taken through
3106                  * the 'struct file' in finish_open().
3107                  */
3108                 if (!got_write) {
3109                         error = -EROFS;
3110                         goto out_dput;
3111                 }
3112                 *opened |= FILE_CREATED;
3113                 error = security_path_mknod(&nd->path, dentry, mode, 0);
3114                 if (error)
3115                         goto out_dput;
3116                 error = vfs_create(dir->d_inode, dentry, mode,
3117                                    nd->flags & LOOKUP_EXCL);
3118                 if (error)
3119                         goto out_dput;
3120         }
3121 out_no_open:
3122         path->dentry = dentry;
3123         path->mnt = nd->path.mnt;
3124         return 1;
3125
3126 out_dput:
3127         dput(dentry);
3128         return error;
3129 }
3130
3131 /*
3132  * Handle the last step of open()
3133  */
3134 static int do_last(struct nameidata *nd,
3135                    struct file *file, const struct open_flags *op,
3136                    int *opened)
3137 {
3138         struct dentry *dir = nd->path.dentry;
3139         int open_flag = op->open_flag;
3140         bool will_truncate = (open_flag & O_TRUNC) != 0;
3141         bool got_write = false;
3142         int acc_mode = op->acc_mode;
3143         unsigned seq;
3144         struct inode *inode;
3145         struct path save_parent = { .dentry = NULL, .mnt = NULL };
3146         struct path path;
3147         bool retried = false;
3148         int error;
3149
3150         nd->flags &= ~LOOKUP_PARENT;
3151         nd->flags |= op->intent;
3152
3153         if (nd->last_type != LAST_NORM) {
3154                 error = handle_dots(nd, nd->last_type);
3155                 if (unlikely(error))
3156                         return error;
3157                 goto finish_open;
3158         }
3159
3160         if (!(open_flag & O_CREAT)) {
3161                 if (nd->last.name[nd->last.len])
3162                         nd->flags |= LOOKUP_FOLLOW | LOOKUP_DIRECTORY;
3163                 /* we _can_ be in RCU mode here */
3164                 error = lookup_fast(nd, &path, &inode, &seq);
3165                 if (likely(error > 0))
3166                         goto finish_lookup;
3167
3168                 if (error < 0)
3169                         return error;
3170
3171                 BUG_ON(nd->inode != dir->d_inode);
3172                 BUG_ON(nd->flags & LOOKUP_RCU);
3173         } else {
3174                 /* create side of things */
3175                 /*
3176                  * This will *only* deal with leaving RCU mode - LOOKUP_JUMPED
3177                  * has been cleared when we got to the last component we are
3178                  * about to look up
3179                  */
3180                 error = complete_walk(nd);
3181                 if (error)
3182                         return error;
3183
3184                 audit_inode(nd->name, dir, LOOKUP_PARENT);
3185                 /* trailing slashes? */
3186                 if (unlikely(nd->last.name[nd->last.len]))
3187                         return -EISDIR;
3188         }
3189
3190 retry_lookup:
3191         if (op->open_flag & (O_CREAT | O_TRUNC | O_WRONLY | O_RDWR)) {
3192                 error = mnt_want_write(nd->path.mnt);
3193                 if (!error)
3194                         got_write = true;
3195                 /*
3196                  * do _not_ fail yet - we might not need that or fail with
3197                  * a different error; let lookup_open() decide; we'll be
3198                  * dropping this one anyway.
3199                  */
3200         }
3201         inode_lock(dir->d_inode);
3202         error = lookup_open(nd, &path, file, op, got_write, opened);
3203         inode_unlock(dir->d_inode);
3204
3205         if (error <= 0) {
3206                 if (error)
3207                         goto out;
3208
3209                 if ((*opened & FILE_CREATED) ||
3210                     !S_ISREG(file_inode(file)->i_mode))
3211                         will_truncate = false;
3212
3213                 audit_inode(nd->name, file->f_path.dentry, 0);
3214                 goto opened;
3215         }
3216
3217         if (*opened & FILE_CREATED) {
3218                 /* Don't check for write permission, don't truncate */
3219                 open_flag &= ~O_TRUNC;
3220                 will_truncate = false;
3221                 acc_mode = 0;
3222                 path_to_nameidata(&path, nd);
3223                 goto finish_open_created;
3224         }
3225
3226         /*
3227          * If atomic_open() acquired write access it is dropped now due to
3228          * possible mount and symlink following (this might be optimized away if
3229          * necessary...)
3230          */
3231         if (got_write) {
3232                 mnt_drop_write(nd->path.mnt);
3233                 got_write = false;
3234         }
3235
3236         if (unlikely(d_is_negative(path.dentry))) {
3237                 path_to_nameidata(&path, nd);
3238                 return -ENOENT;
3239         }
3240
3241         /*
3242          * create/update audit record if it already exists.
3243          */
3244         audit_inode(nd->name, path.dentry, 0);
3245
3246         if (unlikely((open_flag & (O_EXCL | O_CREAT)) == (O_EXCL | O_CREAT))) {
3247                 path_to_nameidata(&path, nd);
3248                 return -EEXIST;
3249         }
3250
3251         error = follow_managed(&path, nd);
3252         if (unlikely(error < 0))
3253                 return error;
3254
3255         seq = 0;        /* out of RCU mode, so the value doesn't matter */
3256         inode = d_backing_inode(path.dentry);
3257 finish_lookup:
3258         if (nd->depth)
3259                 put_link(nd);
3260         error = should_follow_link(nd, &path, nd->flags & LOOKUP_FOLLOW,
3261                                    inode, seq);
3262         if (unlikely(error))
3263                 return error;
3264
3265         if ((nd->flags & LOOKUP_RCU) || nd->path.mnt != path.mnt) {
3266                 path_to_nameidata(&path, nd);
3267         } else {
3268                 save_parent.dentry = nd->path.dentry;
3269                 save_parent.mnt = mntget(path.mnt);
3270                 nd->path.dentry = path.dentry;
3271
3272         }
3273         nd->inode = inode;
3274         nd->seq = seq;
3275         /* Why this, you ask?  _Now_ we might have grown LOOKUP_JUMPED... */
3276 finish_open:
3277         error = complete_walk(nd);
3278         if (error) {
3279                 path_put(&save_parent);
3280                 return error;
3281         }
3282         audit_inode(nd->name, nd->path.dentry, 0);
3283         if (unlikely(d_is_symlink(nd->path.dentry)) && !(open_flag & O_PATH)) {
3284                 error = -ELOOP;
3285                 goto out;
3286         }
3287         error = -EISDIR;
3288         if ((open_flag & O_CREAT) && d_is_dir(nd->path.dentry))
3289                 goto out;
3290         error = -ENOTDIR;
3291         if ((nd->flags & LOOKUP_DIRECTORY) && !d_can_lookup(nd->path.dentry))
3292                 goto out;
3293         if (!d_is_reg(nd->path.dentry))
3294                 will_truncate = false;
3295
3296         if (will_truncate) {
3297                 error = mnt_want_write(nd->path.mnt);
3298                 if (error)
3299                         goto out;
3300                 got_write = true;
3301         }
3302 finish_open_created:
3303         if (likely(!(open_flag & O_PATH))) {
3304                 error = may_open(&nd->path, acc_mode, open_flag);
3305                 if (error)
3306                         goto out;
3307         }
3308         BUG_ON(*opened & FILE_OPENED); /* once it's opened, it's opened */
3309         error = vfs_open(&nd->path, file, current_cred());
3310         if (!error) {
3311                 *opened |= FILE_OPENED;
3312         } else {
3313                 if (error == -EOPENSTALE)
3314                         goto stale_open;
3315                 goto out;
3316         }
3317 opened:
3318         error = open_check_o_direct(file);
3319         if (error)
3320                 goto exit_fput;
3321         error = ima_file_check(file, op->acc_mode, *opened);
3322         if (error)
3323                 goto exit_fput;
3324
3325         if (will_truncate) {
3326                 error = handle_truncate(file);
3327                 if (error)
3328                         goto exit_fput;
3329         }
3330 out:
3331         if (unlikely(error > 0)) {
3332                 WARN_ON(1);
3333                 error = -EINVAL;
3334         }
3335         if (got_write)
3336                 mnt_drop_write(nd->path.mnt);
3337         path_put(&save_parent);
3338         return error;
3339
3340 exit_fput:
3341         fput(file);
3342         goto out;
3343
3344 stale_open:
3345         /* If no saved parent or already retried then can't retry */
3346         if (!save_parent.dentry || retried)
3347                 goto out;
3348
3349         BUG_ON(save_parent.dentry != dir);
3350         path_put(&nd->path);
3351         nd->path = save_parent;
3352         nd->inode = dir->d_inode;
3353         save_parent.mnt = NULL;
3354         save_parent.dentry = NULL;
3355         if (got_write) {
3356                 mnt_drop_write(nd->path.mnt);
3357                 got_write = false;
3358         }
3359         retried = true;
3360         goto retry_lookup;
3361 }
3362
3363 static int do_tmpfile(struct nameidata *nd, unsigned flags,
3364                 const struct open_flags *op,
3365                 struct file *file, int *opened)
3366 {
3367         static const struct qstr name = QSTR_INIT("/", 1);
3368         struct dentry *child;
3369         struct inode *dir;
3370         struct path path;
3371         int error = path_lookupat(nd, flags | LOOKUP_DIRECTORY, &path);
3372         if (unlikely(error))
3373                 return error;
3374         error = mnt_want_write(path.mnt);
3375         if (unlikely(error))
3376                 goto out;
3377         dir = path.dentry->d_inode;
3378         /* we want directory to be writable */
3379         error = inode_permission(dir, MAY_WRITE | MAY_EXEC);
3380         if (error)
3381                 goto out2;
3382         if (!dir->i_op->tmpfile) {
3383                 error = -EOPNOTSUPP;
3384                 goto out2;
3385         }
3386         child = d_alloc(path.dentry, &name);
3387         if (unlikely(!child)) {
3388                 error = -ENOMEM;
3389                 goto out2;
3390         }
3391         dput(path.dentry);
3392         path.dentry = child;
3393         error = dir->i_op->tmpfile(dir, child, op->mode);
3394         if (error)
3395                 goto out2;
3396         audit_inode(nd->name, child, 0);
3397         /* Don't check for other permissions, the inode was just created */
3398         error = may_open(&path, 0, op->open_flag);
3399         if (error)
3400                 goto out2;
3401         file->f_path.mnt = path.mnt;
3402         error = finish_open(file, child, NULL, opened);
3403         if (error)
3404                 goto out2;
3405         error = open_check_o_direct(file);
3406         if (error) {
3407                 fput(file);
3408         } else if (!(op->open_flag & O_EXCL)) {
3409                 struct inode *inode = file_inode(file);
3410                 spin_lock(&inode->i_lock);
3411                 inode->i_state |= I_LINKABLE;
3412                 spin_unlock(&inode->i_lock);
3413         }
3414 out2:
3415         mnt_drop_write(path.mnt);
3416 out:
3417         path_put(&path);
3418         return error;
3419 }
3420
3421 static struct file *path_openat(struct nameidata *nd,
3422                         const struct open_flags *op, unsigned flags)
3423 {
3424         const char *s;
3425         struct file *file;
3426         int opened = 0;
3427         int error;
3428
3429         file = get_empty_filp();
3430         if (IS_ERR(file))
3431                 return file;
3432
3433         file->f_flags = op->open_flag;
3434
3435         if (unlikely(file->f_flags & __O_TMPFILE)) {
3436                 error = do_tmpfile(nd, flags, op, file, &opened);
3437                 goto out2;
3438         }
3439
3440         s = path_init(nd, flags);
3441         if (IS_ERR(s)) {
3442                 put_filp(file);
3443                 return ERR_CAST(s);
3444         }
3445         while (!(error = link_path_walk(s, nd)) &&
3446                 (error = do_last(nd, file, op, &opened)) > 0) {
3447                 nd->flags &= ~(LOOKUP_OPEN|LOOKUP_CREATE|LOOKUP_EXCL);
3448                 s = trailing_symlink(nd);
3449                 if (IS_ERR(s)) {
3450                         error = PTR_ERR(s);
3451                         break;
3452                 }
3453         }
3454         terminate_walk(nd);
3455 out2:
3456         if (!(opened & FILE_OPENED)) {
3457                 BUG_ON(!error);
3458                 put_filp(file);
3459         }
3460         if (unlikely(error)) {
3461                 if (error == -EOPENSTALE) {
3462                         if (flags & LOOKUP_RCU)
3463                                 error = -ECHILD;
3464                         else
3465                                 error = -ESTALE;
3466                 }
3467                 file = ERR_PTR(error);
3468         }
3469         return file;
3470 }
3471
3472 struct file *do_filp_open(int dfd, struct filename *pathname,
3473                 const struct open_flags *op)
3474 {
3475         struct nameidata nd;
3476         int flags = op->lookup_flags;
3477         struct file *filp;
3478
3479         set_nameidata(&nd, dfd, pathname);
3480         filp = path_openat(&nd, op, flags | LOOKUP_RCU);
3481         if (unlikely(filp == ERR_PTR(-ECHILD)))
3482                 filp = path_openat(&nd, op, flags);
3483         if (unlikely(filp == ERR_PTR(-ESTALE)))
3484                 filp = path_openat(&nd, op, flags | LOOKUP_REVAL);
3485         restore_nameidata();
3486         return filp;
3487 }
3488
3489 struct file *do_file_open_root(struct dentry *dentry, struct vfsmount *mnt,
3490                 const char *name, const struct open_flags *op)
3491 {
3492         struct nameidata nd;
3493         struct file *file;
3494         struct filename *filename;
3495         int flags = op->lookup_flags | LOOKUP_ROOT;
3496
3497         nd.root.mnt = mnt;
3498         nd.root.dentry = dentry;
3499
3500         if (d_is_symlink(dentry) && op->intent & LOOKUP_OPEN)
3501                 return ERR_PTR(-ELOOP);
3502
3503         filename = getname_kernel(name);
3504         if (IS_ERR(filename))
3505                 return ERR_CAST(filename);
3506
3507         set_nameidata(&nd, -1, filename);
3508         file = path_openat(&nd, op, flags | LOOKUP_RCU);
3509         if (unlikely(file == ERR_PTR(-ECHILD)))
3510                 file = path_openat(&nd, op, flags);
3511         if (unlikely(file == ERR_PTR(-ESTALE)))
3512                 file = path_openat(&nd, op, flags | LOOKUP_REVAL);
3513         restore_nameidata();
3514         putname(filename);
3515         return file;
3516 }
3517
3518 static struct dentry *filename_create(int dfd, struct filename *name,
3519                                 struct path *path, unsigned int lookup_flags)
3520 {
3521         struct dentry *dentry = ERR_PTR(-EEXIST);
3522         struct qstr last;
3523         int type;
3524         int err2;
3525         int error;
3526         bool is_dir = (lookup_flags & LOOKUP_DIRECTORY);
3527
3528         /*
3529          * Note that only LOOKUP_REVAL and LOOKUP_DIRECTORY matter here. Any
3530          * other flags passed in are ignored!
3531          */
3532         lookup_flags &= LOOKUP_REVAL;
3533
3534         name = filename_parentat(dfd, name, lookup_flags, path, &last, &type);
3535         if (IS_ERR(name))
3536                 return ERR_CAST(name);
3537
3538         /*
3539          * Yucky last component or no last component at all?
3540          * (foo/., foo/.., /////)
3541          */
3542         if (unlikely(type != LAST_NORM))
3543                 goto out;
3544
3545         /* don't fail immediately if it's r/o, at least try to report other errors */
3546         err2 = mnt_want_write(path->mnt);
3547         /*
3548          * Do the final lookup.
3549          */
3550         lookup_flags |= LOOKUP_CREATE | LOOKUP_EXCL;
3551         inode_lock_nested(path->dentry->d_inode, I_MUTEX_PARENT);
3552         dentry = __lookup_hash(&last, path->dentry, lookup_flags);
3553         if (IS_ERR(dentry))
3554                 goto unlock;
3555
3556         error = -EEXIST;
3557         if (d_is_positive(dentry))
3558                 goto fail;
3559
3560         /*
3561          * Special case - lookup gave negative, but... we had foo/bar/
3562          * From the vfs_mknod() POV we just have a negative dentry -
3563          * all is fine. Let's be bastards - you had / on the end, you've
3564          * been asking for (non-existent) directory. -ENOENT for you.
3565          */
3566         if (unlikely(!is_dir && last.name[last.len])) {
3567                 error = -ENOENT;
3568                 goto fail;
3569         }
3570         if (unlikely(err2)) {
3571                 error = err2;
3572                 goto fail;
3573         }
3574         putname(name);
3575         return dentry;
3576 fail:
3577         dput(dentry);
3578         dentry = ERR_PTR(error);
3579 unlock:
3580         inode_unlock(path->dentry->d_inode);
3581         if (!err2)
3582                 mnt_drop_write(path->mnt);
3583 out:
3584         path_put(path);
3585         putname(name);
3586         return dentry;
3587 }
3588
3589 struct dentry *kern_path_create(int dfd, const char *pathname,
3590                                 struct path *path, unsigned int lookup_flags)
3591 {
3592         return filename_create(dfd, getname_kernel(pathname),
3593                                 path, lookup_flags);
3594 }
3595 EXPORT_SYMBOL(kern_path_create);
3596
3597 void done_path_create(struct path *path, struct dentry *dentry)
3598 {
3599         dput(dentry);
3600         inode_unlock(path->dentry->d_inode);
3601         mnt_drop_write(path->mnt);
3602         path_put(path);
3603 }
3604 EXPORT_SYMBOL(done_path_create);
3605
3606 inline struct dentry *user_path_create(int dfd, const char __user *pathname,
3607                                 struct path *path, unsigned int lookup_flags)
3608 {
3609         return filename_create(dfd, getname(pathname), path, lookup_flags);
3610 }
3611 EXPORT_SYMBOL(user_path_create);
3612
3613 int vfs_mknod(struct inode *dir, struct dentry *dentry, umode_t mode, dev_t dev)
3614 {
3615         int error = may_create(dir, dentry);
3616
3617         if (error)
3618                 return error;
3619
3620         if ((S_ISCHR(mode) || S_ISBLK(mode)) && !capable(CAP_MKNOD))
3621                 return -EPERM;
3622
3623         if (!dir->i_op->mknod)
3624                 return -EPERM;
3625
3626         error = devcgroup_inode_mknod(mode, dev);
3627         if (error)
3628                 return error;
3629
3630         error = security_inode_mknod(dir, dentry, mode, dev);
3631         if (error)
3632                 return error;
3633
3634         error = dir->i_op->mknod(dir, dentry, mode, dev);
3635         if (!error)
3636                 fsnotify_create(dir, dentry);
3637         return error;
3638 }
3639 EXPORT_SYMBOL(vfs_mknod);
3640
3641 static int may_mknod(umode_t mode)
3642 {
3643         switch (mode & S_IFMT) {
3644         case S_IFREG:
3645         case S_IFCHR:
3646         case S_IFBLK:
3647         case S_IFIFO:
3648         case S_IFSOCK:
3649         case 0: /* zero mode translates to S_IFREG */
3650                 return 0;
3651         case S_IFDIR:
3652                 return -EPERM;
3653         default:
3654                 return -EINVAL;
3655         }
3656 }
3657
3658 SYSCALL_DEFINE4(mknodat, int, dfd, const char __user *, filename, umode_t, mode,
3659                 unsigned, dev)
3660 {
3661         struct dentry *dentry;
3662         struct path path;
3663         int error;
3664         unsigned int lookup_flags = 0;
3665
3666         error = may_mknod(mode);
3667         if (error)
3668                 return error;
3669 retry:
3670         dentry = user_path_create(dfd, filename, &path, lookup_flags);
3671         if (IS_ERR(dentry))
3672                 return PTR_ERR(dentry);
3673
3674         if (!IS_POSIXACL(path.dentry->d_inode))
3675                 mode &= ~current_umask();
3676         error = security_path_mknod(&path, dentry, mode, dev);
3677         if (error)
3678                 goto out;
3679         switch (mode & S_IFMT) {
3680                 case 0: case S_IFREG:
3681                         error = vfs_create(path.dentry->d_inode,dentry,mode,true);
3682                         break;
3683                 case S_IFCHR: case S_IFBLK:
3684                         error = vfs_mknod(path.dentry->d_inode,dentry,mode,
3685                                         new_decode_dev(dev));
3686                         break;
3687                 case S_IFIFO: case S_IFSOCK:
3688                         error = vfs_mknod(path.dentry->d_inode,dentry,mode,0);
3689                         break;
3690         }
3691 out:
3692         done_path_create(&path, dentry);
3693         if (retry_estale(error, lookup_flags)) {
3694                 lookup_flags |= LOOKUP_REVAL;
3695                 goto retry;
3696         }
3697         return error;
3698 }
3699
3700 SYSCALL_DEFINE3(mknod, const char __user *, filename, umode_t, mode, unsigned, dev)
3701 {
3702         return sys_mknodat(AT_FDCWD, filename, mode, dev);
3703 }
3704
3705 int vfs_mkdir(struct inode *dir, struct dentry *dentry, umode_t mode)
3706 {
3707         int error = may_create(dir, dentry);
3708         unsigned max_links = dir->i_sb->s_max_links;
3709
3710         if (error)
3711                 return error;
3712
3713         if (!dir->i_op->mkdir)
3714                 return -EPERM;
3715
3716         mode &= (S_IRWXUGO|S_ISVTX);
3717         error = security_inode_mkdir(dir, dentry, mode);
3718         if (error)
3719                 return error;
3720
3721         if (max_links && dir->i_nlink >= max_links)
3722                 return -EMLINK;
3723
3724         error = dir->i_op->mkdir(dir, dentry, mode);
3725         if (!error)
3726                 fsnotify_mkdir(dir, dentry);
3727         return error;
3728 }
3729 EXPORT_SYMBOL(vfs_mkdir);
3730
3731 SYSCALL_DEFINE3(mkdirat, int, dfd, const char __user *, pathname, umode_t, mode)
3732 {
3733         struct dentry *dentry;
3734         struct path path;
3735         int error;
3736         unsigned int lookup_flags = LOOKUP_DIRECTORY;
3737
3738 retry:
3739         dentry = user_path_create(dfd, pathname, &path, lookup_flags);
3740         if (IS_ERR(dentry))
3741                 return PTR_ERR(dentry);
3742
3743         if (!IS_POSIXACL(path.dentry->d_inode))
3744                 mode &= ~current_umask();
3745         error = security_path_mkdir(&path, dentry, mode);
3746         if (!error)
3747                 error = vfs_mkdir(path.dentry->d_inode, dentry, mode);
3748         done_path_create(&path, dentry);
3749         if (retry_estale(error, lookup_flags)) {
3750                 lookup_flags |= LOOKUP_REVAL;
3751                 goto retry;
3752         }
3753         return error;
3754 }
3755
3756 SYSCALL_DEFINE2(mkdir, const char __user *, pathname, umode_t, mode)
3757 {
3758         return sys_mkdirat(AT_FDCWD, pathname, mode);
3759 }
3760
3761 int vfs_rmdir(struct inode *dir, struct dentry *dentry)
3762 {
3763         int error = may_delete(dir, dentry, 1);
3764
3765         if (error)
3766                 return error;
3767
3768         if (!dir->i_op->rmdir)
3769                 return -EPERM;
3770
3771         dget(dentry);
3772         inode_lock(dentry->d_inode);
3773
3774         error = -EBUSY;
3775         if (is_local_mountpoint(dentry))
3776                 goto out;
3777
3778         error = security_inode_rmdir(dir, dentry);
3779         if (error)
3780                 goto out;
3781
3782         shrink_dcache_parent(dentry);
3783         error = dir->i_op->rmdir(dir, dentry);
3784         if (error)
3785                 goto out;
3786
3787         dentry->d_inode->i_flags |= S_DEAD;
3788         dont_mount(dentry);
3789         detach_mounts(dentry);
3790
3791 out:
3792         inode_unlock(dentry->d_inode);
3793         dput(dentry);
3794         if (!error)
3795                 d_delete(dentry);
3796         return error;
3797 }
3798 EXPORT_SYMBOL(vfs_rmdir);
3799
3800 static long do_rmdir(int dfd, const char __user *pathname)
3801 {
3802         int error = 0;
3803         struct filename *name;
3804         struct dentry *dentry;
3805         struct path path;
3806         struct qstr last;
3807         int type;
3808         unsigned int lookup_flags = 0;
3809 retry:
3810         name = user_path_parent(dfd, pathname,
3811                                 &path, &last, &type, lookup_flags);
3812         if (IS_ERR(name))
3813                 return PTR_ERR(name);
3814
3815         switch (type) {
3816         case LAST_DOTDOT:
3817                 error = -ENOTEMPTY;
3818                 goto exit1;
3819         case LAST_DOT:
3820                 error = -EINVAL;
3821                 goto exit1;
3822         case LAST_ROOT:
3823                 error = -EBUSY;
3824                 goto exit1;
3825         }
3826
3827         error = mnt_want_write(path.mnt);
3828         if (error)
3829                 goto exit1;
3830
3831         inode_lock_nested(path.dentry->d_inode, I_MUTEX_PARENT);
3832         dentry = __lookup_hash(&last, path.dentry, lookup_flags);
3833         error = PTR_ERR(dentry);
3834         if (IS_ERR(dentry))
3835                 goto exit2;
3836         if (!dentry->d_inode) {
3837                 error = -ENOENT;
3838                 goto exit3;
3839         }
3840         error = security_path_rmdir(&path, dentry);
3841         if (error)
3842                 goto exit3;
3843         error = vfs_rmdir(path.dentry->d_inode, dentry);
3844 exit3:
3845         dput(dentry);
3846 exit2:
3847         inode_unlock(path.dentry->d_inode);
3848         mnt_drop_write(path.mnt);
3849 exit1:
3850         path_put(&path);
3851         putname(name);
3852         if (retry_estale(error, lookup_flags)) {
3853                 lookup_flags |= LOOKUP_REVAL;
3854                 goto retry;
3855         }
3856         return error;
3857 }
3858
3859 SYSCALL_DEFINE1(rmdir, const char __user *, pathname)
3860 {
3861         return do_rmdir(AT_FDCWD, pathname);
3862 }
3863
3864 /**
3865  * vfs_unlink - unlink a filesystem object
3866  * @dir:        parent directory
3867  * @dentry:     victim
3868  * @delegated_inode: returns victim inode, if the inode is delegated.
3869  *
3870  * The caller must hold dir->i_mutex.
3871  *
3872  * If vfs_unlink discovers a delegation, it will return -EWOULDBLOCK and
3873  * return a reference to the inode in delegated_inode.  The caller
3874  * should then break the delegation on that inode and retry.  Because
3875  * breaking a delegation may take a long time, the caller should drop
3876  * dir->i_mutex before doing so.
3877  *
3878  * Alternatively, a caller may pass NULL for delegated_inode.  This may
3879  * be appropriate for callers that expect the underlying filesystem not
3880  * to be NFS exported.
3881  */
3882 int vfs_unlink(struct inode *dir, struct dentry *dentry, struct inode **delegated_inode)
3883 {
3884         struct inode *target = dentry->d_inode;
3885         int error = may_delete(dir, dentry, 0);
3886
3887         if (error)
3888                 return error;
3889
3890         if (!dir->i_op->unlink)
3891                 return -EPERM;
3892
3893         inode_lock(target);
3894         if (is_local_mountpoint(dentry))
3895                 error = -EBUSY;
3896         else {
3897                 error = security_inode_unlink(dir, dentry);
3898                 if (!error) {
3899                         error = try_break_deleg(target, delegated_inode);
3900                         if (error)
3901                                 goto out;
3902                         error = dir->i_op->unlink(dir, dentry);
3903                         if (!error) {
3904                                 dont_mount(dentry);
3905                                 detach_mounts(dentry);
3906                         }
3907                 }
3908         }
3909 out:
3910         inode_unlock(target);
3911
3912         /* We don't d_delete() NFS sillyrenamed files--they still exist. */
3913         if (!error && !(dentry->d_flags & DCACHE_NFSFS_RENAMED)) {
3914                 fsnotify_link_count(target);
3915                 d_delete(dentry);
3916         }
3917
3918         return error;
3919 }
3920 EXPORT_SYMBOL(vfs_unlink);
3921
3922 /*
3923  * Make sure that the actual truncation of the file will occur outside its
3924  * directory's i_mutex.  Truncate can take a long time if there is a lot of
3925  * writeout happening, and we don't want to prevent access to the directory
3926  * while waiting on the I/O.
3927  */
3928 static long do_unlinkat(int dfd, const char __user *pathname)
3929 {
3930         int error;
3931         struct filename *name;
3932         struct dentry *dentry;
3933         struct path path;
3934         struct qstr last;
3935         int type;
3936         struct inode *inode = NULL;
3937         struct inode *delegated_inode = NULL;
3938         unsigned int lookup_flags = 0;
3939 retry:
3940         name = user_path_parent(dfd, pathname,
3941                                 &path, &last, &type, lookup_flags);
3942         if (IS_ERR(name))
3943                 return PTR_ERR(name);
3944
3945         error = -EISDIR;
3946         if (type != LAST_NORM)
3947                 goto exit1;
3948
3949         error = mnt_want_write(path.mnt);
3950         if (error)
3951                 goto exit1;
3952 retry_deleg:
3953         inode_lock_nested(path.dentry->d_inode, I_MUTEX_PARENT);
3954         dentry = __lookup_hash(&last, path.dentry, lookup_flags);
3955         error = PTR_ERR(dentry);
3956         if (!IS_ERR(dentry)) {
3957                 /* Why not before? Because we want correct error value */
3958                 if (last.name[last.len])
3959                         goto slashes;
3960                 inode = dentry->d_inode;
3961                 if (d_is_negative(dentry))
3962                         goto slashes;
3963                 ihold(inode);
3964                 error = security_path_unlink(&path, dentry);
3965                 if (error)
3966                         goto exit2;
3967                 error = vfs_unlink(path.dentry->d_inode, dentry, &delegated_inode);
3968 exit2:
3969                 dput(dentry);
3970         }
3971         inode_unlock(path.dentry->d_inode);
3972         if (inode)
3973                 iput(inode);    /* truncate the inode here */
3974         inode = NULL;
3975         if (delegated_inode) {
3976                 error = break_deleg_wait(&delegated_inode);
3977                 if (!error)
3978                         goto retry_deleg;
3979         }
3980         mnt_drop_write(path.mnt);
3981 exit1:
3982         path_put(&path);
3983         putname(name);
3984         if (retry_estale(error, lookup_flags)) {
3985                 lookup_flags |= LOOKUP_REVAL;
3986                 inode = NULL;
3987                 goto retry;
3988         }
3989         return error;
3990
3991 slashes:
3992         if (d_is_negative(dentry))
3993                 error = -ENOENT;
3994         else if (d_is_dir(dentry))
3995                 error = -EISDIR;
3996         else
3997                 error = -ENOTDIR;
3998         goto exit2;
3999 }
4000
4001 SYSCALL_DEFINE3(unlinkat, int, dfd, const char __user *, pathname, int, flag)
4002 {
4003         if ((flag & ~AT_REMOVEDIR) != 0)
4004                 return -EINVAL;
4005
4006         if (flag & AT_REMOVEDIR)
4007                 return do_rmdir(dfd, pathname);
4008
4009         return do_unlinkat(dfd, pathname);
4010 }
4011
4012 SYSCALL_DEFINE1(unlink, const char __user *, pathname)
4013 {
4014         return do_unlinkat(AT_FDCWD, pathname);
4015 }
4016
4017 int vfs_symlink(struct inode *dir, struct dentry *dentry, const char *oldname)
4018 {
4019         int error = may_create(dir, dentry);
4020
4021         if (error)
4022                 return error;
4023
4024         if (!dir->i_op->symlink)
4025                 return -EPERM;
4026
4027         error = security_inode_symlink(dir, dentry, oldname);
4028         if (error)
4029                 return error;
4030
4031         error = dir->i_op->symlink(dir, dentry, oldname);
4032         if (!error)
4033                 fsnotify_create(dir, dentry);
4034         return error;
4035 }
4036 EXPORT_SYMBOL(vfs_symlink);
4037
4038 SYSCALL_DEFINE3(symlinkat, const char __user *, oldname,
4039                 int, newdfd, const char __user *, newname)
4040 {
4041         int error;
4042         struct filename *from;
4043         struct dentry *dentry;
4044         struct path path;
4045         unsigned int lookup_flags = 0;
4046
4047         from = getname(oldname);
4048         if (IS_ERR(from))
4049                 return PTR_ERR(from);
4050 retry:
4051         dentry = user_path_create(newdfd, newname, &path, lookup_flags);
4052         error = PTR_ERR(dentry);
4053         if (IS_ERR(dentry))
4054                 goto out_putname;
4055
4056         error = security_path_symlink(&path, dentry, from->name);
4057         if (!error)
4058                 error = vfs_symlink(path.dentry->d_inode, dentry, from->name);
4059         done_path_create(&path, dentry);
4060         if (retry_estale(error, lookup_flags)) {
4061                 lookup_flags |= LOOKUP_REVAL;
4062                 goto retry;
4063         }
4064 out_putname:
4065         putname(from);
4066         return error;
4067 }
4068
4069 SYSCALL_DEFINE2(symlink, const char __user *, oldname, const char __user *, newname)
4070 {
4071         return sys_symlinkat(oldname, AT_FDCWD, newname);
4072 }
4073
4074 /**
4075  * vfs_link - create a new link
4076  * @old_dentry: object to be linked
4077  * @dir:        new parent
4078  * @new_dentry: where to create the new link
4079  * @delegated_inode: returns inode needing a delegation break
4080  *
4081  * The caller must hold dir->i_mutex
4082  *
4083  * If vfs_link discovers a delegation on the to-be-linked file in need
4084  * of breaking, it will return -EWOULDBLOCK and return a reference to the
4085  * inode in delegated_inode.  The caller should then break the delegation
4086  * and retry.  Because breaking a delegation may take a long time, the
4087  * caller should drop the i_mutex before doing so.
4088  *
4089  * Alternatively, a caller may pass NULL for delegated_inode.  This may
4090  * be appropriate for callers that expect the underlying filesystem not
4091  * to be NFS exported.
4092  */
4093 int vfs_link(struct dentry *old_dentry, struct inode *dir, struct dentry *new_dentry, struct inode **delegated_inode)
4094 {
4095         struct inode *inode = old_dentry->d_inode;
4096         unsigned max_links = dir->i_sb->s_max_links;
4097         int error;
4098
4099         if (!inode)
4100                 return -ENOENT;
4101
4102         error = may_create(dir, new_dentry);
4103         if (error)
4104                 return error;
4105
4106         if (dir->i_sb != inode->i_sb)
4107                 return -EXDEV;
4108
4109         /*
4110          * A link to an append-only or immutable file cannot be created.
4111          */
4112         if (IS_APPEND(inode) || IS_IMMUTABLE(inode))
4113                 return -EPERM;
4114         if (!dir->i_op->link)
4115                 return -EPERM;
4116         if (S_ISDIR(inode->i_mode))
4117                 return -EPERM;
4118
4119         error = security_inode_link(old_dentry, dir, new_dentry);
4120         if (error)
4121                 return error;
4122
4123         inode_lock(inode);
4124         /* Make sure we don't allow creating hardlink to an unlinked file */
4125         if (inode->i_nlink == 0 && !(inode->i_state & I_LINKABLE))
4126                 error =  -ENOENT;
4127         else if (max_links && inode->i_nlink >= max_links)
4128                 error = -EMLINK;
4129         else {
4130                 error = try_break_deleg(inode, delegated_inode);
4131                 if (!error)
4132                         error = dir->i_op->link(old_dentry, dir, new_dentry);
4133         }
4134
4135         if (!error && (inode->i_state & I_LINKABLE)) {
4136                 spin_lock(&inode->i_lock);
4137                 inode->i_state &= ~I_LINKABLE;
4138                 spin_unlock(&inode->i_lock);
4139         }
4140         inode_unlock(inode);
4141         if (!error)
4142                 fsnotify_link(dir, inode, new_dentry);
4143         return error;
4144 }
4145 EXPORT_SYMBOL(vfs_link);
4146
4147 /*
4148  * Hardlinks are often used in delicate situations.  We avoid
4149  * security-related surprises by not following symlinks on the
4150  * newname.  --KAB
4151  *
4152  * We don't follow them on the oldname either to be compatible
4153  * with linux 2.0, and to avoid hard-linking to directories
4154  * and other special files.  --ADM
4155  */
4156 SYSCALL_DEFINE5(linkat, int, olddfd, const char __user *, oldname,
4157                 int, newdfd, const char __user *, newname, int, flags)
4158 {
4159         struct dentry *new_dentry;
4160         struct path old_path, new_path;
4161         struct inode *delegated_inode = NULL;
4162         int how = 0;
4163         int error;
4164
4165         if ((flags & ~(AT_SYMLINK_FOLLOW | AT_EMPTY_PATH)) != 0)
4166                 return -EINVAL;
4167         /*
4168          * To use null names we require CAP_DAC_READ_SEARCH
4169          * This ensures that not everyone will be able to create
4170          * handlink using the passed filedescriptor.
4171          */
4172         if (flags & AT_EMPTY_PATH) {
4173                 if (!capable(CAP_DAC_READ_SEARCH))
4174                         return -ENOENT;
4175                 how = LOOKUP_EMPTY;
4176         }
4177
4178         if (flags & AT_SYMLINK_FOLLOW)
4179                 how |= LOOKUP_FOLLOW;
4180 retry:
4181         error = user_path_at(olddfd, oldname, how, &old_path);
4182         if (error)
4183                 return error;
4184
4185         new_dentry = user_path_create(newdfd, newname, &new_path,
4186                                         (how & LOOKUP_REVAL));
4187         error = PTR_ERR(new_dentry);
4188         if (IS_ERR(new_dentry))
4189                 goto out;
4190
4191         error = -EXDEV;
4192         if (old_path.mnt != new_path.mnt)
4193                 goto out_dput;
4194         error = may_linkat(&old_path);
4195         if (unlikely(error))
4196                 goto out_dput;
4197         error = security_path_link(old_path.dentry, &new_path, new_dentry);
4198         if (error)
4199                 goto out_dput;
4200         error = vfs_link(old_path.dentry, new_path.dentry->d_inode, new_dentry, &delegated_inode);
4201 out_dput:
4202         done_path_create(&new_path, new_dentry);
4203         if (delegated_inode) {
4204                 error = break_deleg_wait(&delegated_inode);
4205                 if (!error) {
4206                         path_put(&old_path);
4207                         goto retry;
4208                 }
4209         }
4210         if (retry_estale(error, how)) {
4211                 path_put(&old_path);
4212                 how |= LOOKUP_REVAL;
4213                 goto retry;
4214         }
4215 out:
4216         path_put(&old_path);
4217
4218         return error;
4219 }
4220
4221 SYSCALL_DEFINE2(link, const char __user *, oldname, const char __user *, newname)
4222 {
4223         return sys_linkat(AT_FDCWD, oldname, AT_FDCWD, newname, 0);
4224 }
4225
4226 /**
4227  * vfs_rename - rename a filesystem object
4228  * @old_dir:    parent of source
4229  * @old_dentry: source
4230  * @new_dir:    parent of destination
4231  * @new_dentry: destination
4232  * @delegated_inode: returns an inode needing a delegation break
4233  * @flags:      rename flags
4234  *
4235  * The caller must hold multiple mutexes--see lock_rename()).
4236  *
4237  * If vfs_rename discovers a delegation in need of breaking at either
4238  * the source or destination, it will return -EWOULDBLOCK and return a
4239  * reference to the inode in delegated_inode.  The caller should then
4240  * break the delegation and retry.  Because breaking a delegation may
4241  * take a long time, the caller should drop all locks before doing
4242  * so.
4243  *
4244  * Alternatively, a caller may pass NULL for delegated_inode.  This may
4245  * be appropriate for callers that expect the underlying filesystem not
4246  * to be NFS exported.
4247  *
4248  * The worst of all namespace operations - renaming directory. "Perverted"
4249  * doesn't even start to describe it. Somebody in UCB had a heck of a trip...
4250  * Problems:
4251  *      a) we can get into loop creation.
4252  *      b) race potential - two innocent renames can create a loop together.
4253  *         That's where 4.4 screws up. Current fix: serialization on
4254  *         sb->s_vfs_rename_mutex. We might be more accurate, but that's another
4255  *         story.
4256  *      c) we have to lock _four_ objects - parents and victim (if it exists),
4257  *         and source (if it is not a directory).
4258  *         And that - after we got ->i_mutex on parents (until then we don't know
4259  *         whether the target exists).  Solution: try to be smart with locking
4260  *         order for inodes.  We rely on the fact that tree topology may change
4261  *         only under ->s_vfs_rename_mutex _and_ that parent of the object we
4262  *         move will be locked.  Thus we can rank directories by the tree
4263  *         (ancestors first) and rank all non-directories after them.
4264  *         That works since everybody except rename does "lock parent, lookup,
4265  *         lock child" and rename is under ->s_vfs_rename_mutex.
4266  *         HOWEVER, it relies on the assumption that any object with ->lookup()
4267  *         has no more than 1 dentry.  If "hybrid" objects will ever appear,
4268  *         we'd better make sure that there's no link(2) for them.
4269  *      d) conversion from fhandle to dentry may come in the wrong moment - when
4270  *         we are removing the target. Solution: we will have to grab ->i_mutex
4271  *         in the fhandle_to_dentry code. [FIXME - current nfsfh.c relies on
4272  *         ->i_mutex on parents, which works but leads to some truly excessive
4273  *         locking].
4274  */
4275 int vfs_rename(struct inode *old_dir, struct dentry *old_dentry,
4276                struct inode *new_dir, struct dentry *new_dentry,
4277                struct inode **delegated_inode, unsigned int flags)
4278 {
4279         int error;
4280         bool is_dir = d_is_dir(old_dentry);
4281         const unsigned char *old_name;
4282         struct inode *source = old_dentry->d_inode;
4283         struct inode *target = new_dentry->d_inode;
4284         bool new_is_dir = false;
4285         unsigned max_links = new_dir->i_sb->s_max_links;
4286
4287         /*
4288          * Check source == target.
4289          * On overlayfs need to look at underlying inodes.
4290          */
4291         if (vfs_select_inode(old_dentry, 0) == vfs_select_inode(new_dentry, 0))
4292                 return 0;
4293
4294         error = may_delete(old_dir, old_dentry, is_dir);
4295         if (error)
4296                 return error;
4297
4298         if (!target) {
4299                 error = may_create(new_dir, new_dentry);
4300         } else {
4301                 new_is_dir = d_is_dir(new_dentry);
4302
4303                 if (!(flags & RENAME_EXCHANGE))
4304                         error = may_delete(new_dir, new_dentry, is_dir);
4305                 else
4306                         error = may_delete(new_dir, new_dentry, new_is_dir);
4307         }
4308         if (error)
4309                 return error;
4310
4311         if (!old_dir->i_op->rename && !old_dir->i_op->rename2)
4312                 return -EPERM;
4313
4314         if (flags && !old_dir->i_op->rename2)
4315                 return -EINVAL;
4316
4317         /*
4318          * If we are going to change the parent - check write permissions,
4319          * we'll need to flip '..'.
4320          */
4321         if (new_dir != old_dir) {
4322                 if (is_dir) {
4323                         error = inode_permission(source, MAY_WRITE);
4324                         if (error)
4325                                 return error;
4326                 }
4327                 if ((flags & RENAME_EXCHANGE) && new_is_dir) {
4328                         error = inode_permission(target, MAY_WRITE);
4329                         if (error)
4330                                 return error;
4331                 }
4332         }
4333
4334         error = security_inode_rename(old_dir, old_dentry, new_dir, new_dentry,
4335                                       flags);
4336         if (error)
4337                 return error;
4338
4339         old_name = fsnotify_oldname_init(old_dentry->d_name.name);
4340         dget(new_dentry);
4341         if (!is_dir || (flags & RENAME_EXCHANGE))
4342                 lock_two_nondirectories(source, target);
4343         else if (target)
4344                 inode_lock(target);
4345
4346         error = -EBUSY;
4347         if (is_local_mountpoint(old_dentry) || is_local_mountpoint(new_dentry))
4348                 goto out;
4349
4350         if (max_links && new_dir != old_dir) {
4351                 error = -EMLINK;
4352                 if (is_dir && !new_is_dir && new_dir->i_nlink >= max_links)
4353                         goto out;
4354                 if ((flags & RENAME_EXCHANGE) && !is_dir && new_is_dir &&
4355                     old_dir->i_nlink >= max_links)
4356                         goto out;
4357         }
4358         if (is_dir && !(flags & RENAME_EXCHANGE) && target)
4359                 shrink_dcache_parent(new_dentry);
4360         if (!is_dir) {
4361                 error = try_break_deleg(source, delegated_inode);
4362                 if (error)
4363                         goto out;
4364         }
4365         if (target && !new_is_dir) {
4366                 error = try_break_deleg(target, delegated_inode);
4367                 if (error)
4368                         goto out;
4369         }
4370         if (!old_dir->i_op->rename2) {
4371                 error = old_dir->i_op->rename(old_dir, old_dentry,
4372                                               new_dir, new_dentry);
4373         } else {
4374                 WARN_ON(old_dir->i_op->rename != NULL);
4375                 error = old_dir->i_op->rename2(old_dir, old_dentry,
4376                                                new_dir, new_dentry, flags);
4377         }
4378         if (error)
4379                 goto out;
4380
4381         if (!(flags & RENAME_EXCHANGE) && target) {
4382                 if (is_dir)
4383                         target->i_flags |= S_DEAD;
4384                 dont_mount(new_dentry);
4385                 detach_mounts(new_dentry);
4386         }
4387         if (!(old_dir->i_sb->s_type->fs_flags & FS_RENAME_DOES_D_MOVE)) {
4388                 if (!(flags & RENAME_EXCHANGE))
4389                         d_move(old_dentry, new_dentry);
4390                 else
4391                         d_exchange(old_dentry, new_dentry);
4392         }
4393 out:
4394         if (!is_dir || (flags & RENAME_EXCHANGE))
4395                 unlock_two_nondirectories(source, target);
4396         else if (target)
4397                 inode_unlock(target);
4398         dput(new_dentry);
4399         if (!error) {
4400                 fsnotify_move(old_dir, new_dir, old_name, is_dir,
4401                               !(flags & RENAME_EXCHANGE) ? target : NULL, old_dentry);
4402                 if (flags & RENAME_EXCHANGE) {
4403                         fsnotify_move(new_dir, old_dir, old_dentry->d_name.name,
4404                                       new_is_dir, NULL, new_dentry);
4405                 }
4406         }
4407         fsnotify_oldname_free(old_name);
4408
4409         return error;
4410 }
4411 EXPORT_SYMBOL(vfs_rename);
4412
4413 SYSCALL_DEFINE5(renameat2, int, olddfd, const char __user *, oldname,
4414                 int, newdfd, const char __user *, newname, unsigned int, flags)
4415 {
4416         struct dentry *old_dentry, *new_dentry;
4417         struct dentry *trap;
4418         struct path old_path, new_path;
4419         struct qstr old_last, new_last;
4420         int old_type, new_type;
4421         struct inode *delegated_inode = NULL;
4422         struct filename *from;
4423         struct filename *to;
4424         unsigned int lookup_flags = 0, target_flags = LOOKUP_RENAME_TARGET;
4425         bool should_retry = false;
4426         int error;
4427
4428         if (flags & ~(RENAME_NOREPLACE | RENAME_EXCHANGE | RENAME_WHITEOUT))
4429                 return -EINVAL;
4430
4431         if ((flags & (RENAME_NOREPLACE | RENAME_WHITEOUT)) &&
4432             (flags & RENAME_EXCHANGE))
4433                 return -EINVAL;
4434
4435         if ((flags & RENAME_WHITEOUT) && !capable(CAP_MKNOD))
4436                 return -EPERM;
4437
4438         if (flags & RENAME_EXCHANGE)
4439                 target_flags = 0;
4440
4441 retry:
4442         from = user_path_parent(olddfd, oldname,
4443                                 &old_path, &old_last, &old_type, lookup_flags);
4444         if (IS_ERR(from)) {
4445                 error = PTR_ERR(from);
4446                 goto exit;
4447         }
4448
4449         to = user_path_parent(newdfd, newname,
4450                                 &new_path, &new_last, &new_type, lookup_flags);
4451         if (IS_ERR(to)) {
4452                 error = PTR_ERR(to);
4453                 goto exit1;
4454         }
4455
4456         error = -EXDEV;
4457         if (old_path.mnt != new_path.mnt)
4458                 goto exit2;
4459
4460         error = -EBUSY;
4461         if (old_type != LAST_NORM)
4462                 goto exit2;
4463
4464         if (flags & RENAME_NOREPLACE)
4465                 error = -EEXIST;
4466         if (new_type != LAST_NORM)
4467                 goto exit2;
4468
4469         error = mnt_want_write(old_path.mnt);
4470         if (error)
4471                 goto exit2;
4472
4473 retry_deleg:
4474         trap = lock_rename(new_path.dentry, old_path.dentry);
4475
4476         old_dentry = __lookup_hash(&old_last, old_path.dentry, lookup_flags);
4477         error = PTR_ERR(old_dentry);
4478         if (IS_ERR(old_dentry))
4479                 goto exit3;
4480         /* source must exist */
4481         error = -ENOENT;
4482         if (d_is_negative(old_dentry))
4483                 goto exit4;
4484         new_dentry = __lookup_hash(&new_last, new_path.dentry, lookup_flags | target_flags);
4485         error = PTR_ERR(new_dentry);
4486         if (IS_ERR(new_dentry))
4487                 goto exit4;
4488         error = -EEXIST;
4489         if ((flags & RENAME_NOREPLACE) && d_is_positive(new_dentry))
4490                 goto exit5;
4491         if (flags & RENAME_EXCHANGE) {
4492                 error = -ENOENT;
4493                 if (d_is_negative(new_dentry))
4494                         goto exit5;
4495
4496                 if (!d_is_dir(new_dentry)) {
4497                         error = -ENOTDIR;
4498                         if (new_last.name[new_last.len])
4499                                 goto exit5;
4500                 }
4501         }
4502         /* unless the source is a directory trailing slashes give -ENOTDIR */
4503         if (!d_is_dir(old_dentry)) {
4504                 error = -ENOTDIR;
4505                 if (old_last.name[old_last.len])
4506                         goto exit5;
4507                 if (!(flags & RENAME_EXCHANGE) && new_last.name[new_last.len])
4508                         goto exit5;
4509         }
4510         /* source should not be ancestor of target */
4511         error = -EINVAL;
4512         if (old_dentry == trap)
4513                 goto exit5;
4514         /* target should not be an ancestor of source */
4515         if (!(flags & RENAME_EXCHANGE))
4516                 error = -ENOTEMPTY;
4517         if (new_dentry == trap)
4518                 goto exit5;
4519
4520         error = security_path_rename(&old_path, old_dentry,
4521                                      &new_path, new_dentry, flags);
4522         if (error)
4523                 goto exit5;
4524         error = vfs_rename(old_path.dentry->d_inode, old_dentry,
4525                            new_path.dentry->d_inode, new_dentry,
4526                            &delegated_inode, flags);
4527 exit5:
4528         dput(new_dentry);
4529 exit4:
4530         dput(old_dentry);
4531 exit3:
4532         unlock_rename(new_path.dentry, old_path.dentry);
4533         if (delegated_inode) {
4534                 error = break_deleg_wait(&delegated_inode);
4535                 if (!error)
4536                         goto retry_deleg;
4537         }
4538         mnt_drop_write(old_path.mnt);
4539 exit2:
4540         if (retry_estale(error, lookup_flags))
4541                 should_retry = true;
4542         path_put(&new_path);
4543         putname(to);
4544 exit1:
4545         path_put(&old_path);
4546         putname(from);
4547         if (should_retry) {
4548                 should_retry = false;
4549                 lookup_flags |= LOOKUP_REVAL;
4550                 goto retry;
4551         }
4552 exit:
4553         return error;
4554 }
4555
4556 SYSCALL_DEFINE4(renameat, int, olddfd, const char __user *, oldname,
4557                 int, newdfd, const char __user *, newname)
4558 {
4559         return sys_renameat2(olddfd, oldname, newdfd, newname, 0);
4560 }
4561
4562 SYSCALL_DEFINE2(rename, const char __user *, oldname, const char __user *, newname)
4563 {
4564         return sys_renameat2(AT_FDCWD, oldname, AT_FDCWD, newname, 0);
4565 }
4566
4567 int vfs_whiteout(struct inode *dir, struct dentry *dentry)
4568 {
4569         int error = may_create(dir, dentry);
4570         if (error)
4571                 return error;
4572
4573         if (!dir->i_op->mknod)
4574                 return -EPERM;
4575
4576         return dir->i_op->mknod(dir, dentry,
4577                                 S_IFCHR | WHITEOUT_MODE, WHITEOUT_DEV);
4578 }
4579 EXPORT_SYMBOL(vfs_whiteout);
4580
4581 int readlink_copy(char __user *buffer, int buflen, const char *link)
4582 {
4583         int len = PTR_ERR(link);
4584         if (IS_ERR(link))
4585                 goto out;
4586
4587         len = strlen(link);
4588         if (len > (unsigned) buflen)
4589                 len = buflen;
4590         if (copy_to_user(buffer, link, len))
4591                 len = -EFAULT;
4592 out:
4593         return len;
4594 }
4595 EXPORT_SYMBOL(readlink_copy);
4596
4597 /*
4598  * A helper for ->readlink().  This should be used *ONLY* for symlinks that
4599  * have ->get_link() not calling nd_jump_link().  Using (or not using) it
4600  * for any given inode is up to filesystem.
4601  */
4602 int generic_readlink(struct dentry *dentry, char __user *buffer, int buflen)
4603 {
4604         DEFINE_DELAYED_CALL(done);
4605         struct inode *inode = d_inode(dentry);
4606         const char *link = inode->i_link;
4607         int res;
4608
4609         if (!link) {
4610                 link = inode->i_op->get_link(dentry, inode, &done);
4611                 if (IS_ERR(link))
4612                         return PTR_ERR(link);
4613         }
4614         res = readlink_copy(buffer, buflen, link);
4615         do_delayed_call(&done);
4616         return res;
4617 }
4618 EXPORT_SYMBOL(generic_readlink);
4619
4620 /* get the link contents into pagecache */
4621 const char *page_get_link(struct dentry *dentry, struct inode *inode,
4622                           struct delayed_call *callback)
4623 {
4624         char *kaddr;
4625         struct page *page;
4626         struct address_space *mapping = inode->i_mapping;
4627
4628         if (!dentry) {
4629                 page = find_get_page(mapping, 0);
4630                 if (!page)
4631                         return ERR_PTR(-ECHILD);
4632                 if (!PageUptodate(page)) {
4633                         put_page(page);
4634                         return ERR_PTR(-ECHILD);
4635                 }
4636         } else {
4637                 page = read_mapping_page(mapping, 0, NULL);
4638                 if (IS_ERR(page))
4639                         return (char*)page;
4640         }
4641         set_delayed_call(callback, page_put_link, page);
4642         BUG_ON(mapping_gfp_mask(mapping) & __GFP_HIGHMEM);
4643         kaddr = page_address(page);
4644         nd_terminate_link(kaddr, inode->i_size, PAGE_SIZE - 1);
4645         return kaddr;
4646 }
4647
4648 EXPORT_SYMBOL(page_get_link);
4649
4650 void page_put_link(void *arg)
4651 {
4652         put_page(arg);
4653 }
4654 EXPORT_SYMBOL(page_put_link);
4655
4656 int page_readlink(struct dentry *dentry, char __user *buffer, int buflen)
4657 {
4658         DEFINE_DELAYED_CALL(done);
4659         int res = readlink_copy(buffer, buflen,
4660                                 page_get_link(dentry, d_inode(dentry),
4661                                               &done));
4662         do_delayed_call(&done);
4663         return res;
4664 }
4665 EXPORT_SYMBOL(page_readlink);
4666
4667 /*
4668  * The nofs argument instructs pagecache_write_begin to pass AOP_FLAG_NOFS
4669  */
4670 int __page_symlink(struct inode *inode, const char *symname, int len, int nofs)
4671 {
4672         struct address_space *mapping = inode->i_mapping;
4673         struct page *page;
4674         void *fsdata;
4675         int err;
4676         unsigned int flags = AOP_FLAG_UNINTERRUPTIBLE;
4677         if (nofs)
4678                 flags |= AOP_FLAG_NOFS;
4679
4680 retry:
4681         err = pagecache_write_begin(NULL, mapping, 0, len-1,
4682                                 flags, &page, &fsdata);
4683         if (err)
4684                 goto fail;
4685
4686         memcpy(page_address(page), symname, len-1);
4687
4688         err = pagecache_write_end(NULL, mapping, 0, len-1, len-1,
4689                                                         page, fsdata);
4690         if (err < 0)
4691                 goto fail;
4692         if (err < len-1)
4693                 goto retry;
4694
4695         mark_inode_dirty(inode);
4696         return 0;
4697 fail:
4698         return err;
4699 }
4700 EXPORT_SYMBOL(__page_symlink);
4701
4702 int page_symlink(struct inode *inode, const char *symname, int len)
4703 {
4704         return __page_symlink(inode, symname, len,
4705                         !mapping_gfp_constraint(inode->i_mapping, __GFP_FS));
4706 }
4707 EXPORT_SYMBOL(page_symlink);
4708
4709 const struct inode_operations page_symlink_inode_operations = {
4710         .readlink       = generic_readlink,
4711         .get_link       = page_get_link,
4712 };
4713 EXPORT_SYMBOL(page_symlink_inode_operations);