io_uring: add support for IORING_OP_MKDIRAT
[linux-block.git] / fs / namei.c
CommitLineData
b2441318 1// SPDX-License-Identifier: GPL-2.0
1da177e4
LT
2/*
3 * linux/fs/namei.c
4 *
5 * Copyright (C) 1991, 1992 Linus Torvalds
6 */
7
8/*
9 * Some corrections by tytso.
10 */
11
12/* [Feb 1997 T. Schoebel-Theuer] Complete rewrite of the pathname
13 * lookup logic.
14 */
15/* [Feb-Apr 2000, AV] Rewrite to the new namespace architecture.
16 */
17
18#include <linux/init.h>
630d9c47 19#include <linux/export.h>
44696908 20#include <linux/kernel.h>
1da177e4
LT
21#include <linux/slab.h>
22#include <linux/fs.h>
23#include <linux/namei.h>
1da177e4 24#include <linux/pagemap.h>
0eeca283 25#include <linux/fsnotify.h>
1da177e4
LT
26#include <linux/personality.h>
27#include <linux/security.h>
6146f0d5 28#include <linux/ima.h>
1da177e4
LT
29#include <linux/syscalls.h>
30#include <linux/mount.h>
31#include <linux/audit.h>
16f7e0fe 32#include <linux/capability.h>
834f2a4a 33#include <linux/file.h>
5590ff0d 34#include <linux/fcntl.h>
08ce5f16 35#include <linux/device_cgroup.h>
5ad4e53b 36#include <linux/fs_struct.h>
e77819e5 37#include <linux/posix_acl.h>
99d263d4 38#include <linux/hash.h>
2a18da7a 39#include <linux/bitops.h>
aeaa4a79 40#include <linux/init_task.h>
7c0f6ba6 41#include <linux/uaccess.h>
1da177e4 42
e81e3f4d 43#include "internal.h"
c7105365 44#include "mount.h"
e81e3f4d 45
1da177e4
LT
46/* [Feb-1997 T. Schoebel-Theuer]
47 * Fundamental changes in the pathname lookup mechanisms (namei)
48 * were necessary because of omirr. The reason is that omirr needs
49 * to know the _real_ pathname, not the user-supplied one, in case
50 * of symlinks (and also when transname replacements occur).
51 *
52 * The new code replaces the old recursive symlink resolution with
53 * an iterative one (in case of non-nested symlink chains). It does
54 * this with calls to <fs>_follow_link().
55 * As a side effect, dir_namei(), _namei() and follow_link() are now
56 * replaced with a single function lookup_dentry() that can handle all
57 * the special cases of the former code.
58 *
59 * With the new dcache, the pathname is stored at each inode, at least as
60 * long as the refcount of the inode is positive. As a side effect, the
61 * size of the dcache depends on the inode cache and thus is dynamic.
62 *
63 * [29-Apr-1998 C. Scott Ananian] Updated above description of symlink
64 * resolution to correspond with current state of the code.
65 *
66 * Note that the symlink resolution is not *completely* iterative.
67 * There is still a significant amount of tail- and mid- recursion in
68 * the algorithm. Also, note that <fs>_readlink() is not used in
69 * lookup_dentry(): lookup_dentry() on the result of <fs>_readlink()
70 * may return different results than <fs>_follow_link(). Many virtual
71 * filesystems (including /proc) exhibit this behavior.
72 */
73
74/* [24-Feb-97 T. Schoebel-Theuer] Side effects caused by new implementation:
75 * New symlink semantics: when open() is called with flags O_CREAT | O_EXCL
76 * and the name already exists in form of a symlink, try to create the new
77 * name indicated by the symlink. The old code always complained that the
78 * name already exists, due to not following the symlink even if its target
79 * is nonexistent. The new semantics affects also mknod() and link() when
25985edc 80 * the name is a symlink pointing to a non-existent name.
1da177e4
LT
81 *
82 * I don't know which semantics is the right one, since I have no access
83 * to standards. But I found by trial that HP-UX 9.0 has the full "new"
84 * semantics implemented, while SunOS 4.1.1 and Solaris (SunOS 5.4) have the
85 * "old" one. Personally, I think the new semantics is much more logical.
86 * Note that "ln old new" where "new" is a symlink pointing to a non-existing
87 * file does succeed in both HP-UX and SunOs, but not in Solaris
88 * and in the old Linux semantics.
89 */
90
91/* [16-Dec-97 Kevin Buhr] For security reasons, we change some symlink
92 * semantics. See the comments in "open_namei" and "do_link" below.
93 *
94 * [10-Sep-98 Alan Modra] Another symlink change.
95 */
96
97/* [Feb-Apr 2000 AV] Complete rewrite. Rules for symlinks:
98 * inside the path - always follow.
99 * in the last component in creation/removal/renaming - never follow.
100 * if LOOKUP_FOLLOW passed - follow.
101 * if the pathname has trailing slashes - follow.
102 * otherwise - don't follow.
103 * (applied in that order).
104 *
105 * [Jun 2000 AV] Inconsistent behaviour of open() in case if flags==O_CREAT
106 * restored for 2.4. This is the last surviving part of old 4.2BSD bug.
107 * During the 2.4 we need to fix the userland stuff depending on it -
108 * hopefully we will be able to get rid of that wart in 2.5. So far only
109 * XEmacs seems to be relying on it...
110 */
111/*
112 * [Sep 2001 AV] Single-semaphore locking scheme (kudos to David Holland)
a11f3a05 113 * implemented. Let's see if raised priority of ->s_vfs_rename_mutex gives
1da177e4
LT
114 * any extra contention...
115 */
116
117/* In order to reduce some races, while at the same time doing additional
118 * checking and hopefully speeding things up, we copy filenames to the
119 * kernel data space before using them..
120 *
121 * POSIX.1 2.4: an empty pathname is invalid (ENOENT).
122 * PATH_MAX includes the nul terminator --RR.
123 */
91a27b2a 124
fd2f7cb5 125#define EMBEDDED_NAME_MAX (PATH_MAX - offsetof(struct filename, iname))
7950e385 126
51f39a1f 127struct filename *
91a27b2a
JL
128getname_flags(const char __user *filename, int flags, int *empty)
129{
94b5d262 130 struct filename *result;
7950e385 131 char *kname;
94b5d262 132 int len;
4043cde8 133
7ac86265
JL
134 result = audit_reusename(filename);
135 if (result)
136 return result;
137
7950e385 138 result = __getname();
3f9f0aa6 139 if (unlikely(!result))
4043cde8
EP
140 return ERR_PTR(-ENOMEM);
141
7950e385
JL
142 /*
143 * First, try to embed the struct filename inside the names_cache
144 * allocation
145 */
fd2f7cb5 146 kname = (char *)result->iname;
91a27b2a 147 result->name = kname;
7950e385 148
94b5d262 149 len = strncpy_from_user(kname, filename, EMBEDDED_NAME_MAX);
91a27b2a 150 if (unlikely(len < 0)) {
94b5d262
AV
151 __putname(result);
152 return ERR_PTR(len);
91a27b2a 153 }
3f9f0aa6 154
7950e385
JL
155 /*
156 * Uh-oh. We have a name that's approaching PATH_MAX. Allocate a
157 * separate struct filename so we can dedicate the entire
158 * names_cache allocation for the pathname, and re-do the copy from
159 * userland.
160 */
94b5d262 161 if (unlikely(len == EMBEDDED_NAME_MAX)) {
fd2f7cb5 162 const size_t size = offsetof(struct filename, iname[1]);
7950e385
JL
163 kname = (char *)result;
164
fd2f7cb5
AV
165 /*
166 * size is chosen that way we to guarantee that
167 * result->iname[0] is within the same object and that
168 * kname can't be equal to result->iname, no matter what.
169 */
170 result = kzalloc(size, GFP_KERNEL);
94b5d262
AV
171 if (unlikely(!result)) {
172 __putname(kname);
173 return ERR_PTR(-ENOMEM);
7950e385
JL
174 }
175 result->name = kname;
94b5d262
AV
176 len = strncpy_from_user(kname, filename, PATH_MAX);
177 if (unlikely(len < 0)) {
178 __putname(kname);
179 kfree(result);
180 return ERR_PTR(len);
181 }
182 if (unlikely(len == PATH_MAX)) {
183 __putname(kname);
184 kfree(result);
185 return ERR_PTR(-ENAMETOOLONG);
186 }
7950e385
JL
187 }
188
94b5d262 189 result->refcnt = 1;
3f9f0aa6
LT
190 /* The empty path is special. */
191 if (unlikely(!len)) {
192 if (empty)
4043cde8 193 *empty = 1;
94b5d262
AV
194 if (!(flags & LOOKUP_EMPTY)) {
195 putname(result);
196 return ERR_PTR(-ENOENT);
197 }
1da177e4 198 }
3f9f0aa6 199
7950e385 200 result->uptr = filename;
c4ad8f98 201 result->aname = NULL;
7950e385
JL
202 audit_getname(result);
203 return result;
1da177e4
LT
204}
205
8228e2c3
DK
206struct filename *
207getname_uflags(const char __user *filename, int uflags)
208{
209 int flags = (uflags & AT_EMPTY_PATH) ? LOOKUP_EMPTY : 0;
210
211 return getname_flags(filename, flags, NULL);
212}
213
91a27b2a
JL
214struct filename *
215getname(const char __user * filename)
f52e0c11 216{
f7493e5d 217 return getname_flags(filename, 0, NULL);
f52e0c11
AV
218}
219
c4ad8f98
LT
220struct filename *
221getname_kernel(const char * filename)
222{
223 struct filename *result;
08518549 224 int len = strlen(filename) + 1;
c4ad8f98
LT
225
226 result = __getname();
227 if (unlikely(!result))
228 return ERR_PTR(-ENOMEM);
229
08518549 230 if (len <= EMBEDDED_NAME_MAX) {
fd2f7cb5 231 result->name = (char *)result->iname;
08518549 232 } else if (len <= PATH_MAX) {
30ce4d19 233 const size_t size = offsetof(struct filename, iname[1]);
08518549
PM
234 struct filename *tmp;
235
30ce4d19 236 tmp = kmalloc(size, GFP_KERNEL);
08518549
PM
237 if (unlikely(!tmp)) {
238 __putname(result);
239 return ERR_PTR(-ENOMEM);
240 }
241 tmp->name = (char *)result;
08518549
PM
242 result = tmp;
243 } else {
244 __putname(result);
245 return ERR_PTR(-ENAMETOOLONG);
246 }
247 memcpy((char *)result->name, filename, len);
c4ad8f98
LT
248 result->uptr = NULL;
249 result->aname = NULL;
55422d0b 250 result->refcnt = 1;
fd3522fd 251 audit_getname(result);
c4ad8f98 252
c4ad8f98
LT
253 return result;
254}
255
91a27b2a 256void putname(struct filename *name)
1da177e4 257{
91ef658f
DK
258 if (IS_ERR_OR_NULL(name))
259 return;
260
55422d0b
PM
261 BUG_ON(name->refcnt <= 0);
262
263 if (--name->refcnt > 0)
264 return;
265
fd2f7cb5 266 if (name->name != name->iname) {
55422d0b
PM
267 __putname(name->name);
268 kfree(name);
269 } else
270 __putname(name);
1da177e4 271}
1da177e4 272
47291baa
CB
273/**
274 * check_acl - perform ACL permission checking
275 * @mnt_userns: user namespace of the mount the inode was found from
276 * @inode: inode to check permissions on
277 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC ...)
278 *
279 * This function performs the ACL permission checking. Since this function
280 * retrieve POSIX acls it needs to know whether it is called from a blocking or
281 * non-blocking context and thus cares about the MAY_NOT_BLOCK bit.
282 *
283 * If the inode has been found through an idmapped mount the user namespace of
284 * the vfsmount must be passed through @mnt_userns. This function will then take
285 * care to map the inode according to @mnt_userns before checking permissions.
286 * On non-idmapped mounts or if permission checking is to be performed on the
287 * raw inode simply passs init_user_ns.
288 */
289static int check_acl(struct user_namespace *mnt_userns,
290 struct inode *inode, int mask)
e77819e5 291{
84635d68 292#ifdef CONFIG_FS_POSIX_ACL
e77819e5
LT
293 struct posix_acl *acl;
294
e77819e5 295 if (mask & MAY_NOT_BLOCK) {
3567866b
AV
296 acl = get_cached_acl_rcu(inode, ACL_TYPE_ACCESS);
297 if (!acl)
e77819e5 298 return -EAGAIN;
3567866b 299 /* no ->get_acl() calls in RCU mode... */
b8a7a3a6 300 if (is_uncached_acl(acl))
3567866b 301 return -ECHILD;
47291baa 302 return posix_acl_permission(mnt_userns, inode, acl, mask);
e77819e5
LT
303 }
304
2982baa2
CH
305 acl = get_acl(inode, ACL_TYPE_ACCESS);
306 if (IS_ERR(acl))
307 return PTR_ERR(acl);
e77819e5 308 if (acl) {
47291baa 309 int error = posix_acl_permission(mnt_userns, inode, acl, mask);
e77819e5
LT
310 posix_acl_release(acl);
311 return error;
312 }
84635d68 313#endif
e77819e5
LT
314
315 return -EAGAIN;
316}
317
47291baa
CB
318/**
319 * acl_permission_check - perform basic UNIX permission checking
320 * @mnt_userns: user namespace of the mount the inode was found from
321 * @inode: inode to check permissions on
322 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC ...)
323 *
324 * This function performs the basic UNIX permission checking. Since this
325 * function may retrieve POSIX acls it needs to know whether it is called from a
326 * blocking or non-blocking context and thus cares about the MAY_NOT_BLOCK bit.
5fc475b7 327 *
47291baa
CB
328 * If the inode has been found through an idmapped mount the user namespace of
329 * the vfsmount must be passed through @mnt_userns. This function will then take
330 * care to map the inode according to @mnt_userns before checking permissions.
331 * On non-idmapped mounts or if permission checking is to be performed on the
332 * raw inode simply passs init_user_ns.
1da177e4 333 */
47291baa
CB
334static int acl_permission_check(struct user_namespace *mnt_userns,
335 struct inode *inode, int mask)
1da177e4 336{
26cf46be 337 unsigned int mode = inode->i_mode;
47291baa 338 kuid_t i_uid;
1da177e4 339
5fc475b7 340 /* Are we the owner? If so, ACL's don't matter */
47291baa
CB
341 i_uid = i_uid_into_mnt(mnt_userns, inode);
342 if (likely(uid_eq(current_fsuid(), i_uid))) {
5fc475b7 343 mask &= 7;
1da177e4 344 mode >>= 6;
5fc475b7
LT
345 return (mask & ~mode) ? -EACCES : 0;
346 }
1da177e4 347
5fc475b7
LT
348 /* Do we have ACL's? */
349 if (IS_POSIXACL(inode) && (mode & S_IRWXG)) {
47291baa 350 int error = check_acl(mnt_userns, inode, mask);
5fc475b7
LT
351 if (error != -EAGAIN)
352 return error;
1da177e4
LT
353 }
354
5fc475b7
LT
355 /* Only RWX matters for group/other mode bits */
356 mask &= 7;
357
1da177e4 358 /*
5fc475b7
LT
359 * Are the group permissions different from
360 * the other permissions in the bits we care
361 * about? Need to check group ownership if so.
1da177e4 362 */
5fc475b7 363 if (mask & (mode ^ (mode >> 3))) {
47291baa
CB
364 kgid_t kgid = i_gid_into_mnt(mnt_userns, inode);
365 if (in_group_p(kgid))
5fc475b7
LT
366 mode >>= 3;
367 }
368
369 /* Bits in 'mode' clear that we require? */
370 return (mask & ~mode) ? -EACCES : 0;
5909ccaa
LT
371}
372
373/**
b74c79e9 374 * generic_permission - check for access rights on a Posix-like filesystem
47291baa 375 * @mnt_userns: user namespace of the mount the inode was found from
5909ccaa 376 * @inode: inode to check access rights for
5fc475b7
LT
377 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC,
378 * %MAY_NOT_BLOCK ...)
5909ccaa
LT
379 *
380 * Used to check for read/write/execute permissions on a file.
381 * We use "fsuid" for this, letting us set arbitrary permissions
382 * for filesystem access without changing the "normal" uids which
b74c79e9
NP
383 * are used for other things.
384 *
385 * generic_permission is rcu-walk aware. It returns -ECHILD in case an rcu-walk
386 * request cannot be satisfied (eg. requires blocking or too much complexity).
387 * It would then be called again in ref-walk mode.
47291baa
CB
388 *
389 * If the inode has been found through an idmapped mount the user namespace of
390 * the vfsmount must be passed through @mnt_userns. This function will then take
391 * care to map the inode according to @mnt_userns before checking permissions.
392 * On non-idmapped mounts or if permission checking is to be performed on the
393 * raw inode simply passs init_user_ns.
5909ccaa 394 */
47291baa
CB
395int generic_permission(struct user_namespace *mnt_userns, struct inode *inode,
396 int mask)
5909ccaa
LT
397{
398 int ret;
399
400 /*
948409c7 401 * Do the basic permission checks.
5909ccaa 402 */
47291baa 403 ret = acl_permission_check(mnt_userns, inode, mask);
5909ccaa
LT
404 if (ret != -EACCES)
405 return ret;
1da177e4 406
d594e7ec
AV
407 if (S_ISDIR(inode->i_mode)) {
408 /* DACs are overridable for directories */
d594e7ec 409 if (!(mask & MAY_WRITE))
47291baa 410 if (capable_wrt_inode_uidgid(mnt_userns, inode,
23adbe12 411 CAP_DAC_READ_SEARCH))
d594e7ec 412 return 0;
47291baa 413 if (capable_wrt_inode_uidgid(mnt_userns, inode,
0558c1bf 414 CAP_DAC_OVERRIDE))
1da177e4 415 return 0;
2a4c2242
SS
416 return -EACCES;
417 }
1da177e4
LT
418
419 /*
420 * Searching includes executable on directories, else just read.
421 */
7ea66001 422 mask &= MAY_READ | MAY_WRITE | MAY_EXEC;
d594e7ec 423 if (mask == MAY_READ)
47291baa 424 if (capable_wrt_inode_uidgid(mnt_userns, inode,
0558c1bf 425 CAP_DAC_READ_SEARCH))
1da177e4 426 return 0;
2a4c2242
SS
427 /*
428 * Read/write DACs are always overridable.
429 * Executable DACs are overridable when there is
430 * at least one exec bit set.
431 */
432 if (!(mask & MAY_EXEC) || (inode->i_mode & S_IXUGO))
47291baa 433 if (capable_wrt_inode_uidgid(mnt_userns, inode,
0558c1bf 434 CAP_DAC_OVERRIDE))
2a4c2242 435 return 0;
1da177e4
LT
436
437 return -EACCES;
438}
4d359507 439EXPORT_SYMBOL(generic_permission);
1da177e4 440
47291baa
CB
441/**
442 * do_inode_permission - UNIX permission checking
443 * @mnt_userns: user namespace of the mount the inode was found from
444 * @inode: inode to check permissions on
445 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC ...)
446 *
3ddcd056
LT
447 * We _really_ want to just do "generic_permission()" without
448 * even looking at the inode->i_op values. So we keep a cache
449 * flag in inode->i_opflags, that says "this has not special
450 * permission function, use the fast case".
451 */
47291baa
CB
452static inline int do_inode_permission(struct user_namespace *mnt_userns,
453 struct inode *inode, int mask)
3ddcd056
LT
454{
455 if (unlikely(!(inode->i_opflags & IOP_FASTPERM))) {
456 if (likely(inode->i_op->permission))
549c7297 457 return inode->i_op->permission(mnt_userns, inode, mask);
3ddcd056
LT
458
459 /* This gets set once for the inode lifetime */
460 spin_lock(&inode->i_lock);
461 inode->i_opflags |= IOP_FASTPERM;
462 spin_unlock(&inode->i_lock);
463 }
47291baa 464 return generic_permission(mnt_userns, inode, mask);
3ddcd056
LT
465}
466
0bdaea90
DH
467/**
468 * sb_permission - Check superblock-level permissions
469 * @sb: Superblock of inode to check permission on
55852635 470 * @inode: Inode to check permission on
0bdaea90
DH
471 * @mask: Right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
472 *
473 * Separate out file-system wide checks from inode-specific permission checks.
474 */
475static int sb_permission(struct super_block *sb, struct inode *inode, int mask)
476{
477 if (unlikely(mask & MAY_WRITE)) {
478 umode_t mode = inode->i_mode;
479
480 /* Nobody gets write access to a read-only fs. */
bc98a42c 481 if (sb_rdonly(sb) && (S_ISREG(mode) || S_ISDIR(mode) || S_ISLNK(mode)))
0bdaea90
DH
482 return -EROFS;
483 }
484 return 0;
485}
486
487/**
488 * inode_permission - Check for access rights to a given inode
47291baa
CB
489 * @mnt_userns: User namespace of the mount the inode was found from
490 * @inode: Inode to check permission on
491 * @mask: Right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
0bdaea90
DH
492 *
493 * Check for read/write/execute permissions on an inode. We use fs[ug]id for
494 * this, letting us set arbitrary permissions for filesystem access without
495 * changing the "normal" UIDs which are used for other things.
496 *
497 * When checking for MAY_APPEND, MAY_WRITE must also be set in @mask.
498 */
47291baa
CB
499int inode_permission(struct user_namespace *mnt_userns,
500 struct inode *inode, int mask)
0bdaea90
DH
501{
502 int retval;
503
504 retval = sb_permission(inode->i_sb, inode, mask);
505 if (retval)
506 return retval;
4bfd054a
EB
507
508 if (unlikely(mask & MAY_WRITE)) {
509 /*
510 * Nobody gets write access to an immutable file.
511 */
512 if (IS_IMMUTABLE(inode))
513 return -EPERM;
514
515 /*
516 * Updating mtime will likely cause i_uid and i_gid to be
517 * written back improperly if their true value is unknown
518 * to the vfs.
519 */
ba73d987 520 if (HAS_UNMAPPED_ID(mnt_userns, inode))
4bfd054a
EB
521 return -EACCES;
522 }
523
47291baa 524 retval = do_inode_permission(mnt_userns, inode, mask);
4bfd054a
EB
525 if (retval)
526 return retval;
527
528 retval = devcgroup_inode_permission(inode, mask);
529 if (retval)
530 return retval;
531
532 return security_inode_permission(inode, mask);
0bdaea90 533}
4d359507 534EXPORT_SYMBOL(inode_permission);
0bdaea90 535
5dd784d0
JB
536/**
537 * path_get - get a reference to a path
538 * @path: path to get the reference to
539 *
540 * Given a path increment the reference count to the dentry and the vfsmount.
541 */
dcf787f3 542void path_get(const struct path *path)
5dd784d0
JB
543{
544 mntget(path->mnt);
545 dget(path->dentry);
546}
547EXPORT_SYMBOL(path_get);
548
1d957f9b
JB
549/**
550 * path_put - put a reference to a path
551 * @path: path to put the reference to
552 *
553 * Given a path decrement the reference count to the dentry and the vfsmount.
554 */
dcf787f3 555void path_put(const struct path *path)
1da177e4 556{
1d957f9b
JB
557 dput(path->dentry);
558 mntput(path->mnt);
1da177e4 559}
1d957f9b 560EXPORT_SYMBOL(path_put);
1da177e4 561
894bc8c4 562#define EMBEDDED_LEVELS 2
1f55a6ec
AV
563struct nameidata {
564 struct path path;
1cf2665b 565 struct qstr last;
1f55a6ec
AV
566 struct path root;
567 struct inode *inode; /* path.dentry.d_inode */
bcba1e7d 568 unsigned int flags, state;
ab87f9a5 569 unsigned seq, m_seq, r_seq;
1f55a6ec
AV
570 int last_type;
571 unsigned depth;
756daf26 572 int total_link_count;
697fc6ca
AV
573 struct saved {
574 struct path link;
fceef393 575 struct delayed_call done;
697fc6ca 576 const char *name;
0450b2d1 577 unsigned seq;
894bc8c4 578 } *stack, internal[EMBEDDED_LEVELS];
9883d185
AV
579 struct filename *name;
580 struct nameidata *saved;
581 unsigned root_seq;
582 int dfd;
0f705953
AV
583 kuid_t dir_uid;
584 umode_t dir_mode;
3859a271 585} __randomize_layout;
1f55a6ec 586
bcba1e7d
AV
587#define ND_ROOT_PRESET 1
588#define ND_ROOT_GRABBED 2
589#define ND_JUMPED 4
590
06422964 591static void __set_nameidata(struct nameidata *p, int dfd, struct filename *name)
894bc8c4 592{
756daf26
N
593 struct nameidata *old = current->nameidata;
594 p->stack = p->internal;
7962c7d1 595 p->depth = 0;
c8a53ee5
AV
596 p->dfd = dfd;
597 p->name = name;
7d01ef75
AV
598 p->path.mnt = NULL;
599 p->path.dentry = NULL;
756daf26 600 p->total_link_count = old ? old->total_link_count : 0;
9883d185 601 p->saved = old;
756daf26 602 current->nameidata = p;
894bc8c4
AV
603}
604
06422964
AV
605static inline void set_nameidata(struct nameidata *p, int dfd, struct filename *name,
606 const struct path *root)
607{
608 __set_nameidata(p, dfd, name);
609 p->state = 0;
610 if (unlikely(root)) {
611 p->state = ND_ROOT_PRESET;
612 p->root = *root;
613 }
614}
615
9883d185 616static void restore_nameidata(void)
894bc8c4 617{
9883d185 618 struct nameidata *now = current->nameidata, *old = now->saved;
756daf26
N
619
620 current->nameidata = old;
621 if (old)
622 old->total_link_count = now->total_link_count;
e1a63bbc 623 if (now->stack != now->internal)
756daf26 624 kfree(now->stack);
894bc8c4
AV
625}
626
60ef60c7 627static bool nd_alloc_stack(struct nameidata *nd)
894bc8c4 628{
bc40aee0
AV
629 struct saved *p;
630
60ef60c7
AV
631 p= kmalloc_array(MAXSYMLINKS, sizeof(struct saved),
632 nd->flags & LOOKUP_RCU ? GFP_ATOMIC : GFP_KERNEL);
633 if (unlikely(!p))
634 return false;
894bc8c4
AV
635 memcpy(p, nd->internal, sizeof(nd->internal));
636 nd->stack = p;
60ef60c7 637 return true;
894bc8c4
AV
638}
639
397d425d 640/**
6b03f7ed 641 * path_connected - Verify that a dentry is below mnt.mnt_root
397d425d
EB
642 *
643 * Rename can sometimes move a file or directory outside of a bind
644 * mount, path_connected allows those cases to be detected.
645 */
6b03f7ed 646static bool path_connected(struct vfsmount *mnt, struct dentry *dentry)
397d425d 647{
95dd7758 648 struct super_block *sb = mnt->mnt_sb;
397d425d 649
402dd2cf
CH
650 /* Bind mounts can have disconnected paths */
651 if (mnt->mnt_root == sb->s_root)
397d425d
EB
652 return true;
653
6b03f7ed 654 return is_subdir(dentry, mnt->mnt_root);
397d425d
EB
655}
656
7973387a
AV
657static void drop_links(struct nameidata *nd)
658{
659 int i = nd->depth;
660 while (i--) {
661 struct saved *last = nd->stack + i;
fceef393
AV
662 do_delayed_call(&last->done);
663 clear_delayed_call(&last->done);
7973387a
AV
664 }
665}
666
667static void terminate_walk(struct nameidata *nd)
668{
669 drop_links(nd);
670 if (!(nd->flags & LOOKUP_RCU)) {
671 int i;
672 path_put(&nd->path);
673 for (i = 0; i < nd->depth; i++)
674 path_put(&nd->stack[i].link);
bcba1e7d 675 if (nd->state & ND_ROOT_GRABBED) {
102b8af2 676 path_put(&nd->root);
bcba1e7d 677 nd->state &= ~ND_ROOT_GRABBED;
102b8af2 678 }
7973387a
AV
679 } else {
680 nd->flags &= ~LOOKUP_RCU;
7973387a
AV
681 rcu_read_unlock();
682 }
683 nd->depth = 0;
7d01ef75
AV
684 nd->path.mnt = NULL;
685 nd->path.dentry = NULL;
7973387a
AV
686}
687
688/* path_put is needed afterwards regardless of success or failure */
2aa38470 689static bool __legitimize_path(struct path *path, unsigned seq, unsigned mseq)
7973387a 690{
2aa38470 691 int res = __legitimize_mnt(path->mnt, mseq);
7973387a
AV
692 if (unlikely(res)) {
693 if (res > 0)
694 path->mnt = NULL;
695 path->dentry = NULL;
696 return false;
697 }
698 if (unlikely(!lockref_get_not_dead(&path->dentry->d_lockref))) {
699 path->dentry = NULL;
700 return false;
701 }
702 return !read_seqcount_retry(&path->dentry->d_seq, seq);
703}
704
2aa38470
AV
705static inline bool legitimize_path(struct nameidata *nd,
706 struct path *path, unsigned seq)
707{
5bd73286 708 return __legitimize_path(path, seq, nd->m_seq);
2aa38470
AV
709}
710
7973387a
AV
711static bool legitimize_links(struct nameidata *nd)
712{
713 int i;
eacd9aa8
AV
714 if (unlikely(nd->flags & LOOKUP_CACHED)) {
715 drop_links(nd);
716 nd->depth = 0;
717 return false;
718 }
7973387a
AV
719 for (i = 0; i < nd->depth; i++) {
720 struct saved *last = nd->stack + i;
721 if (unlikely(!legitimize_path(nd, &last->link, last->seq))) {
722 drop_links(nd);
723 nd->depth = i + 1;
724 return false;
725 }
726 }
727 return true;
728}
729
ee594bff
AV
730static bool legitimize_root(struct nameidata *nd)
731{
adb21d2b
AS
732 /*
733 * For scoped-lookups (where nd->root has been zeroed), we need to
734 * restart the whole lookup from scratch -- because set_root() is wrong
735 * for these lookups (nd->dfd is the root, not the filesystem root).
736 */
737 if (!nd->root.mnt && (nd->flags & LOOKUP_IS_SCOPED))
738 return false;
739 /* Nothing to do if nd->root is zero or is managed by the VFS user. */
bcba1e7d 740 if (!nd->root.mnt || (nd->state & ND_ROOT_PRESET))
ee594bff 741 return true;
bcba1e7d 742 nd->state |= ND_ROOT_GRABBED;
ee594bff
AV
743 return legitimize_path(nd, &nd->root, nd->root_seq);
744}
745
19660af7 746/*
31e6b01f 747 * Path walking has 2 modes, rcu-walk and ref-walk (see
19660af7
AV
748 * Documentation/filesystems/path-lookup.txt). In situations when we can't
749 * continue in RCU mode, we attempt to drop out of rcu-walk mode and grab
57e3715c 750 * normal reference counts on dentries and vfsmounts to transition to ref-walk
19660af7
AV
751 * mode. Refcounts are grabbed at the last known good point before rcu-walk
752 * got stuck, so ref-walk may continue from there. If this is not successful
753 * (eg. a seqcount has changed), then failure is returned and it's up to caller
754 * to restart the path walk from the beginning in ref-walk mode.
31e6b01f 755 */
31e6b01f
NP
756
757/**
e36cffed 758 * try_to_unlazy - try to switch to ref-walk mode.
19660af7 759 * @nd: nameidata pathwalk data
e36cffed 760 * Returns: true on success, false on failure
31e6b01f 761 *
e36cffed 762 * try_to_unlazy attempts to legitimize the current nd->path and nd->root
4675ac39
AV
763 * for ref-walk mode.
764 * Must be called from rcu-walk context.
e36cffed 765 * Nothing should touch nameidata between try_to_unlazy() failure and
7973387a 766 * terminate_walk().
31e6b01f 767 */
e36cffed 768static bool try_to_unlazy(struct nameidata *nd)
31e6b01f 769{
31e6b01f
NP
770 struct dentry *parent = nd->path.dentry;
771
772 BUG_ON(!(nd->flags & LOOKUP_RCU));
e5c832d5 773
4675ac39
AV
774 nd->flags &= ~LOOKUP_RCU;
775 if (unlikely(!legitimize_links(nd)))
4675ac39 776 goto out1;
84a2bd39
AV
777 if (unlikely(!legitimize_path(nd, &nd->path, nd->seq)))
778 goto out;
ee594bff
AV
779 if (unlikely(!legitimize_root(nd)))
780 goto out;
4675ac39
AV
781 rcu_read_unlock();
782 BUG_ON(nd->inode != parent->d_inode);
e36cffed 783 return true;
4675ac39 784
84a2bd39 785out1:
4675ac39
AV
786 nd->path.mnt = NULL;
787 nd->path.dentry = NULL;
4675ac39
AV
788out:
789 rcu_read_unlock();
e36cffed 790 return false;
4675ac39
AV
791}
792
793/**
ae66db45 794 * try_to_unlazy_next - try to switch to ref-walk mode.
4675ac39 795 * @nd: nameidata pathwalk data
ae66db45
AV
796 * @dentry: next dentry to step into
797 * @seq: seq number to check @dentry against
798 * Returns: true on success, false on failure
4675ac39 799 *
ae66db45
AV
800 * Similar to to try_to_unlazy(), but here we have the next dentry already
801 * picked by rcu-walk and want to legitimize that in addition to the current
802 * nd->path and nd->root for ref-walk mode. Must be called from rcu-walk context.
803 * Nothing should touch nameidata between try_to_unlazy_next() failure and
4675ac39
AV
804 * terminate_walk().
805 */
ae66db45 806static bool try_to_unlazy_next(struct nameidata *nd, struct dentry *dentry, unsigned seq)
4675ac39
AV
807{
808 BUG_ON(!(nd->flags & LOOKUP_RCU));
809
e5c832d5 810 nd->flags &= ~LOOKUP_RCU;
7973387a
AV
811 if (unlikely(!legitimize_links(nd)))
812 goto out2;
813 if (unlikely(!legitimize_mnt(nd->path.mnt, nd->m_seq)))
814 goto out2;
4675ac39 815 if (unlikely(!lockref_get_not_dead(&nd->path.dentry->d_lockref)))
7973387a 816 goto out1;
48a066e7 817
15570086 818 /*
4675ac39
AV
819 * We need to move both the parent and the dentry from the RCU domain
820 * to be properly refcounted. And the sequence number in the dentry
821 * validates *both* dentry counters, since we checked the sequence
822 * number of the parent after we got the child sequence number. So we
823 * know the parent must still be valid if the child sequence number is
15570086 824 */
4675ac39
AV
825 if (unlikely(!lockref_get_not_dead(&dentry->d_lockref)))
826 goto out;
84a2bd39
AV
827 if (unlikely(read_seqcount_retry(&dentry->d_seq, seq)))
828 goto out_dput;
e5c832d5
LT
829 /*
830 * Sequence counts matched. Now make sure that the root is
831 * still valid and get it if required.
832 */
84a2bd39
AV
833 if (unlikely(!legitimize_root(nd)))
834 goto out_dput;
8b61e74f 835 rcu_read_unlock();
ae66db45 836 return true;
19660af7 837
7973387a
AV
838out2:
839 nd->path.mnt = NULL;
840out1:
841 nd->path.dentry = NULL;
e5c832d5 842out:
8b61e74f 843 rcu_read_unlock();
ae66db45 844 return false;
84a2bd39
AV
845out_dput:
846 rcu_read_unlock();
847 dput(dentry);
ae66db45 848 return false;
31e6b01f
NP
849}
850
4ce16ef3 851static inline int d_revalidate(struct dentry *dentry, unsigned int flags)
34286d66 852{
a89f8337
AV
853 if (unlikely(dentry->d_flags & DCACHE_OP_REVALIDATE))
854 return dentry->d_op->d_revalidate(dentry, flags);
855 else
856 return 1;
34286d66
NP
857}
858
9f1fafee
AV
859/**
860 * complete_walk - successful completion of path walk
861 * @nd: pointer nameidata
39159de2 862 *
9f1fafee
AV
863 * If we had been in RCU mode, drop out of it and legitimize nd->path.
864 * Revalidate the final result, unless we'd already done that during
865 * the path walk or the filesystem doesn't ask for it. Return 0 on
866 * success, -error on failure. In case of failure caller does not
867 * need to drop nd->path.
39159de2 868 */
9f1fafee 869static int complete_walk(struct nameidata *nd)
39159de2 870{
16c2cd71 871 struct dentry *dentry = nd->path.dentry;
39159de2 872 int status;
39159de2 873
9f1fafee 874 if (nd->flags & LOOKUP_RCU) {
adb21d2b
AS
875 /*
876 * We don't want to zero nd->root for scoped-lookups or
877 * externally-managed nd->root.
878 */
bcba1e7d
AV
879 if (!(nd->state & ND_ROOT_PRESET))
880 if (!(nd->flags & LOOKUP_IS_SCOPED))
881 nd->root.mnt = NULL;
6c6ec2b0 882 nd->flags &= ~LOOKUP_CACHED;
e36cffed 883 if (!try_to_unlazy(nd))
9f1fafee 884 return -ECHILD;
9f1fafee
AV
885 }
886
adb21d2b
AS
887 if (unlikely(nd->flags & LOOKUP_IS_SCOPED)) {
888 /*
889 * While the guarantee of LOOKUP_IS_SCOPED is (roughly) "don't
890 * ever step outside the root during lookup" and should already
891 * be guaranteed by the rest of namei, we want to avoid a namei
892 * BUG resulting in userspace being given a path that was not
893 * scoped within the root at some point during the lookup.
894 *
895 * So, do a final sanity-check to make sure that in the
896 * worst-case scenario (a complete bypass of LOOKUP_IS_SCOPED)
897 * we won't silently return an fd completely outside of the
898 * requested root to userspace.
899 *
900 * Userspace could move the path outside the root after this
901 * check, but as discussed elsewhere this is not a concern (the
902 * resolved file was inside the root at some point).
903 */
904 if (!path_is_under(&nd->path, &nd->root))
905 return -EXDEV;
906 }
907
bcba1e7d 908 if (likely(!(nd->state & ND_JUMPED)))
16c2cd71
AV
909 return 0;
910
ecf3d1f1 911 if (likely(!(dentry->d_flags & DCACHE_OP_WEAK_REVALIDATE)))
39159de2
JL
912 return 0;
913
ecf3d1f1 914 status = dentry->d_op->d_weak_revalidate(dentry, nd->flags);
39159de2
JL
915 if (status > 0)
916 return 0;
917
16c2cd71 918 if (!status)
39159de2 919 status = -ESTALE;
16c2cd71 920
39159de2
JL
921 return status;
922}
923
740a1678 924static int set_root(struct nameidata *nd)
31e6b01f 925{
7bd88377 926 struct fs_struct *fs = current->fs;
c28cc364 927
adb21d2b
AS
928 /*
929 * Jumping to the real root in a scoped-lookup is a BUG in namei, but we
930 * still have to ensure it doesn't happen because it will cause a breakout
931 * from the dirfd.
932 */
933 if (WARN_ON(nd->flags & LOOKUP_IS_SCOPED))
934 return -ENOTRECOVERABLE;
935
9e6697e2
AV
936 if (nd->flags & LOOKUP_RCU) {
937 unsigned seq;
938
939 do {
940 seq = read_seqcount_begin(&fs->seq);
941 nd->root = fs->root;
942 nd->root_seq = __read_seqcount_begin(&nd->root.dentry->d_seq);
943 } while (read_seqcount_retry(&fs->seq, seq));
944 } else {
945 get_fs_root(fs, &nd->root);
bcba1e7d 946 nd->state |= ND_ROOT_GRABBED;
9e6697e2 947 }
740a1678 948 return 0;
31e6b01f
NP
949}
950
248fb5b9
AV
951static int nd_jump_root(struct nameidata *nd)
952{
adb21d2b
AS
953 if (unlikely(nd->flags & LOOKUP_BENEATH))
954 return -EXDEV;
72ba2929
AS
955 if (unlikely(nd->flags & LOOKUP_NO_XDEV)) {
956 /* Absolute path arguments to path_init() are allowed. */
957 if (nd->path.mnt != NULL && nd->path.mnt != nd->root.mnt)
958 return -EXDEV;
959 }
740a1678
AS
960 if (!nd->root.mnt) {
961 int error = set_root(nd);
962 if (error)
963 return error;
964 }
248fb5b9
AV
965 if (nd->flags & LOOKUP_RCU) {
966 struct dentry *d;
967 nd->path = nd->root;
968 d = nd->path.dentry;
969 nd->inode = d->d_inode;
970 nd->seq = nd->root_seq;
971 if (unlikely(read_seqcount_retry(&d->d_seq, nd->seq)))
972 return -ECHILD;
973 } else {
974 path_put(&nd->path);
975 nd->path = nd->root;
976 path_get(&nd->path);
977 nd->inode = nd->path.dentry->d_inode;
978 }
bcba1e7d 979 nd->state |= ND_JUMPED;
248fb5b9
AV
980 return 0;
981}
982
b5fb63c1 983/*
6b255391 984 * Helper to directly jump to a known parsed path from ->get_link,
b5fb63c1
CH
985 * caller must have taken a reference to path beforehand.
986 */
1bc82070 987int nd_jump_link(struct path *path)
b5fb63c1 988{
4b99d499 989 int error = -ELOOP;
6e77137b 990 struct nameidata *nd = current->nameidata;
b5fb63c1 991
4b99d499
AS
992 if (unlikely(nd->flags & LOOKUP_NO_MAGICLINKS))
993 goto err;
994
72ba2929
AS
995 error = -EXDEV;
996 if (unlikely(nd->flags & LOOKUP_NO_XDEV)) {
997 if (nd->path.mnt != path->mnt)
998 goto err;
999 }
adb21d2b
AS
1000 /* Not currently safe for scoped-lookups. */
1001 if (unlikely(nd->flags & LOOKUP_IS_SCOPED))
1002 goto err;
72ba2929 1003
4b99d499 1004 path_put(&nd->path);
b5fb63c1
CH
1005 nd->path = *path;
1006 nd->inode = nd->path.dentry->d_inode;
bcba1e7d 1007 nd->state |= ND_JUMPED;
1bc82070 1008 return 0;
4b99d499
AS
1009
1010err:
1011 path_put(path);
1012 return error;
b5fb63c1
CH
1013}
1014
b9ff4429 1015static inline void put_link(struct nameidata *nd)
574197e0 1016{
21c3003d 1017 struct saved *last = nd->stack + --nd->depth;
fceef393 1018 do_delayed_call(&last->done);
6548fae2
AV
1019 if (!(nd->flags & LOOKUP_RCU))
1020 path_put(&last->link);
574197e0
AV
1021}
1022
561ec64a
LT
1023int sysctl_protected_symlinks __read_mostly = 0;
1024int sysctl_protected_hardlinks __read_mostly = 0;
30aba665
SM
1025int sysctl_protected_fifos __read_mostly;
1026int sysctl_protected_regular __read_mostly;
800179c9
KC
1027
1028/**
1029 * may_follow_link - Check symlink following for unsafe situations
55852635 1030 * @nd: nameidata pathwalk data
800179c9
KC
1031 *
1032 * In the case of the sysctl_protected_symlinks sysctl being enabled,
1033 * CAP_DAC_OVERRIDE needs to be specifically ignored if the symlink is
1034 * in a sticky world-writable directory. This is to protect privileged
1035 * processes from failing races against path names that may change out
1036 * from under them by way of other users creating malicious symlinks.
1037 * It will permit symlinks to be followed only when outside a sticky
1038 * world-writable directory, or when the uid of the symlink and follower
1039 * match, or when the directory owner matches the symlink's owner.
1040 *
1041 * Returns 0 if following the symlink is allowed, -ve on error.
1042 */
ad6cc4c3 1043static inline int may_follow_link(struct nameidata *nd, const struct inode *inode)
800179c9 1044{
ba73d987
CB
1045 struct user_namespace *mnt_userns;
1046 kuid_t i_uid;
1047
800179c9
KC
1048 if (!sysctl_protected_symlinks)
1049 return 0;
1050
ba73d987
CB
1051 mnt_userns = mnt_user_ns(nd->path.mnt);
1052 i_uid = i_uid_into_mnt(mnt_userns, inode);
800179c9 1053 /* Allowed if owner and follower match. */
ba73d987 1054 if (uid_eq(current_cred()->fsuid, i_uid))
800179c9
KC
1055 return 0;
1056
1057 /* Allowed if parent directory not sticky and world-writable. */
0f705953 1058 if ((nd->dir_mode & (S_ISVTX|S_IWOTH)) != (S_ISVTX|S_IWOTH))
800179c9
KC
1059 return 0;
1060
1061 /* Allowed if parent directory and link owner match. */
ba73d987 1062 if (uid_valid(nd->dir_uid) && uid_eq(nd->dir_uid, i_uid))
800179c9
KC
1063 return 0;
1064
31956502
AV
1065 if (nd->flags & LOOKUP_RCU)
1066 return -ECHILD;
1067
ea841baf 1068 audit_inode(nd->name, nd->stack[0].link.dentry, 0);
245d7369 1069 audit_log_path_denied(AUDIT_ANOM_LINK, "follow_link");
800179c9
KC
1070 return -EACCES;
1071}
1072
1073/**
1074 * safe_hardlink_source - Check for safe hardlink conditions
ba73d987 1075 * @mnt_userns: user namespace of the mount the inode was found from
800179c9
KC
1076 * @inode: the source inode to hardlink from
1077 *
1078 * Return false if at least one of the following conditions:
1079 * - inode is not a regular file
1080 * - inode is setuid
1081 * - inode is setgid and group-exec
1082 * - access failure for read and write
1083 *
1084 * Otherwise returns true.
1085 */
ba73d987
CB
1086static bool safe_hardlink_source(struct user_namespace *mnt_userns,
1087 struct inode *inode)
800179c9
KC
1088{
1089 umode_t mode = inode->i_mode;
1090
1091 /* Special files should not get pinned to the filesystem. */
1092 if (!S_ISREG(mode))
1093 return false;
1094
1095 /* Setuid files should not get pinned to the filesystem. */
1096 if (mode & S_ISUID)
1097 return false;
1098
1099 /* Executable setgid files should not get pinned to the filesystem. */
1100 if ((mode & (S_ISGID | S_IXGRP)) == (S_ISGID | S_IXGRP))
1101 return false;
1102
1103 /* Hardlinking to unreadable or unwritable sources is dangerous. */
ba73d987 1104 if (inode_permission(mnt_userns, inode, MAY_READ | MAY_WRITE))
800179c9
KC
1105 return false;
1106
1107 return true;
1108}
1109
1110/**
1111 * may_linkat - Check permissions for creating a hardlink
ba73d987 1112 * @mnt_userns: user namespace of the mount the inode was found from
800179c9
KC
1113 * @link: the source to hardlink from
1114 *
1115 * Block hardlink when all of:
1116 * - sysctl_protected_hardlinks enabled
1117 * - fsuid does not match inode
1118 * - hardlink source is unsafe (see safe_hardlink_source() above)
f2ca3796 1119 * - not CAP_FOWNER in a namespace with the inode owner uid mapped
800179c9 1120 *
ba73d987
CB
1121 * If the inode has been found through an idmapped mount the user namespace of
1122 * the vfsmount must be passed through @mnt_userns. This function will then take
1123 * care to map the inode according to @mnt_userns before checking permissions.
1124 * On non-idmapped mounts or if permission checking is to be performed on the
1125 * raw inode simply passs init_user_ns.
1126 *
800179c9
KC
1127 * Returns 0 if successful, -ve on error.
1128 */
ba73d987 1129int may_linkat(struct user_namespace *mnt_userns, struct path *link)
800179c9 1130{
593d1ce8
EB
1131 struct inode *inode = link->dentry->d_inode;
1132
1133 /* Inode writeback is not safe when the uid or gid are invalid. */
ba73d987
CB
1134 if (!uid_valid(i_uid_into_mnt(mnt_userns, inode)) ||
1135 !gid_valid(i_gid_into_mnt(mnt_userns, inode)))
593d1ce8 1136 return -EOVERFLOW;
800179c9
KC
1137
1138 if (!sysctl_protected_hardlinks)
1139 return 0;
1140
800179c9
KC
1141 /* Source inode owner (or CAP_FOWNER) can hardlink all they like,
1142 * otherwise, it must be a safe source.
1143 */
ba73d987
CB
1144 if (safe_hardlink_source(mnt_userns, inode) ||
1145 inode_owner_or_capable(mnt_userns, inode))
800179c9
KC
1146 return 0;
1147
245d7369 1148 audit_log_path_denied(AUDIT_ANOM_LINK, "linkat");
800179c9
KC
1149 return -EPERM;
1150}
1151
30aba665
SM
1152/**
1153 * may_create_in_sticky - Check whether an O_CREAT open in a sticky directory
1154 * should be allowed, or not, on files that already
1155 * exist.
ba73d987 1156 * @mnt_userns: user namespace of the mount the inode was found from
2111c3c0 1157 * @nd: nameidata pathwalk data
30aba665
SM
1158 * @inode: the inode of the file to open
1159 *
1160 * Block an O_CREAT open of a FIFO (or a regular file) when:
1161 * - sysctl_protected_fifos (or sysctl_protected_regular) is enabled
1162 * - the file already exists
1163 * - we are in a sticky directory
1164 * - we don't own the file
1165 * - the owner of the directory doesn't own the file
1166 * - the directory is world writable
1167 * If the sysctl_protected_fifos (or sysctl_protected_regular) is set to 2
1168 * the directory doesn't have to be world writable: being group writable will
1169 * be enough.
1170 *
ba73d987
CB
1171 * If the inode has been found through an idmapped mount the user namespace of
1172 * the vfsmount must be passed through @mnt_userns. This function will then take
1173 * care to map the inode according to @mnt_userns before checking permissions.
1174 * On non-idmapped mounts or if permission checking is to be performed on the
1175 * raw inode simply passs init_user_ns.
1176 *
30aba665
SM
1177 * Returns 0 if the open is allowed, -ve on error.
1178 */
ba73d987
CB
1179static int may_create_in_sticky(struct user_namespace *mnt_userns,
1180 struct nameidata *nd, struct inode *const inode)
30aba665 1181{
ba73d987
CB
1182 umode_t dir_mode = nd->dir_mode;
1183 kuid_t dir_uid = nd->dir_uid;
1184
30aba665
SM
1185 if ((!sysctl_protected_fifos && S_ISFIFO(inode->i_mode)) ||
1186 (!sysctl_protected_regular && S_ISREG(inode->i_mode)) ||
d0cb5018 1187 likely(!(dir_mode & S_ISVTX)) ||
ba73d987
CB
1188 uid_eq(i_uid_into_mnt(mnt_userns, inode), dir_uid) ||
1189 uid_eq(current_fsuid(), i_uid_into_mnt(mnt_userns, inode)))
30aba665
SM
1190 return 0;
1191
d0cb5018
AV
1192 if (likely(dir_mode & 0002) ||
1193 (dir_mode & 0020 &&
30aba665
SM
1194 ((sysctl_protected_fifos >= 2 && S_ISFIFO(inode->i_mode)) ||
1195 (sysctl_protected_regular >= 2 && S_ISREG(inode->i_mode))))) {
245d7369
KC
1196 const char *operation = S_ISFIFO(inode->i_mode) ?
1197 "sticky_create_fifo" :
1198 "sticky_create_regular";
1199 audit_log_path_denied(AUDIT_ANOM_CREAT, operation);
30aba665
SM
1200 return -EACCES;
1201 }
1202 return 0;
1203}
1204
f015f126
DH
1205/*
1206 * follow_up - Find the mountpoint of path's vfsmount
1207 *
1208 * Given a path, find the mountpoint of its source file system.
1209 * Replace @path with the path of the mountpoint in the parent mount.
1210 * Up is towards /.
1211 *
1212 * Return 1 if we went up a level and 0 if we were already at the
1213 * root.
1214 */
bab77ebf 1215int follow_up(struct path *path)
1da177e4 1216{
0714a533
AV
1217 struct mount *mnt = real_mount(path->mnt);
1218 struct mount *parent;
1da177e4 1219 struct dentry *mountpoint;
99b7db7b 1220
48a066e7 1221 read_seqlock_excl(&mount_lock);
0714a533 1222 parent = mnt->mnt_parent;
3c0a6163 1223 if (parent == mnt) {
48a066e7 1224 read_sequnlock_excl(&mount_lock);
1da177e4
LT
1225 return 0;
1226 }
0714a533 1227 mntget(&parent->mnt);
a73324da 1228 mountpoint = dget(mnt->mnt_mountpoint);
48a066e7 1229 read_sequnlock_excl(&mount_lock);
bab77ebf
AV
1230 dput(path->dentry);
1231 path->dentry = mountpoint;
1232 mntput(path->mnt);
0714a533 1233 path->mnt = &parent->mnt;
1da177e4
LT
1234 return 1;
1235}
4d359507 1236EXPORT_SYMBOL(follow_up);
1da177e4 1237
7ef482fa
AV
1238static bool choose_mountpoint_rcu(struct mount *m, const struct path *root,
1239 struct path *path, unsigned *seqp)
1240{
1241 while (mnt_has_parent(m)) {
1242 struct dentry *mountpoint = m->mnt_mountpoint;
1243
1244 m = m->mnt_parent;
1245 if (unlikely(root->dentry == mountpoint &&
1246 root->mnt == &m->mnt))
1247 break;
1248 if (mountpoint != m->mnt.mnt_root) {
1249 path->mnt = &m->mnt;
1250 path->dentry = mountpoint;
1251 *seqp = read_seqcount_begin(&mountpoint->d_seq);
1252 return true;
1253 }
1254 }
1255 return false;
1256}
1257
2aa38470
AV
1258static bool choose_mountpoint(struct mount *m, const struct path *root,
1259 struct path *path)
1260{
1261 bool found;
1262
1263 rcu_read_lock();
1264 while (1) {
1265 unsigned seq, mseq = read_seqbegin(&mount_lock);
1266
1267 found = choose_mountpoint_rcu(m, root, path, &seq);
1268 if (unlikely(!found)) {
1269 if (!read_seqretry(&mount_lock, mseq))
1270 break;
1271 } else {
1272 if (likely(__legitimize_path(path, seq, mseq)))
1273 break;
1274 rcu_read_unlock();
1275 path_put(path);
1276 rcu_read_lock();
1277 }
1278 }
1279 rcu_read_unlock();
1280 return found;
1281}
1282
b5c84bf6 1283/*
9875cf80
DH
1284 * Perform an automount
1285 * - return -EISDIR to tell follow_managed() to stop and return the path we
1286 * were called with.
1da177e4 1287 */
1c9f5e06 1288static int follow_automount(struct path *path, int *count, unsigned lookup_flags)
31e6b01f 1289{
25e195aa 1290 struct dentry *dentry = path->dentry;
9875cf80 1291
0ec26fd0
MS
1292 /* We don't want to mount if someone's just doing a stat -
1293 * unless they're stat'ing a directory and appended a '/' to
1294 * the name.
1295 *
1296 * We do, however, want to mount if someone wants to open or
1297 * create a file of any type under the mountpoint, wants to
1298 * traverse through the mountpoint or wants to open the
1299 * mounted directory. Also, autofs may mark negative dentries
1300 * as being automount points. These will need the attentions
1301 * of the daemon to instantiate them before they can be used.
9875cf80 1302 */
1c9f5e06 1303 if (!(lookup_flags & (LOOKUP_PARENT | LOOKUP_DIRECTORY |
5d38f049 1304 LOOKUP_OPEN | LOOKUP_CREATE | LOOKUP_AUTOMOUNT)) &&
25e195aa 1305 dentry->d_inode)
5d38f049 1306 return -EISDIR;
0ec26fd0 1307
1c9f5e06 1308 if (count && (*count)++ >= MAXSYMLINKS)
9875cf80
DH
1309 return -ELOOP;
1310
25e195aa 1311 return finish_automount(dentry->d_op->d_automount(path), path);
463ffb2e
AV
1312}
1313
9875cf80 1314/*
9deed3eb
AV
1315 * mount traversal - out-of-line part. One note on ->d_flags accesses -
1316 * dentries are pinned but not locked here, so negative dentry can go
1317 * positive right under us. Use of smp_load_acquire() provides a barrier
1318 * sufficient for ->d_inode and ->d_flags consistency.
9875cf80 1319 */
9deed3eb
AV
1320static int __traverse_mounts(struct path *path, unsigned flags, bool *jumped,
1321 int *count, unsigned lookup_flags)
1da177e4 1322{
9deed3eb 1323 struct vfsmount *mnt = path->mnt;
9875cf80 1324 bool need_mntput = false;
8aef1884 1325 int ret = 0;
9875cf80 1326
9deed3eb 1327 while (flags & DCACHE_MANAGED_DENTRY) {
cc53ce53
DH
1328 /* Allow the filesystem to manage the transit without i_mutex
1329 * being held. */
d41efb52 1330 if (flags & DCACHE_MANAGE_TRANSIT) {
fb5f51c7 1331 ret = path->dentry->d_op->d_manage(path, false);
508c8772 1332 flags = smp_load_acquire(&path->dentry->d_flags);
cc53ce53 1333 if (ret < 0)
8aef1884 1334 break;
cc53ce53
DH
1335 }
1336
9deed3eb 1337 if (flags & DCACHE_MOUNTED) { // something's mounted on it..
9875cf80 1338 struct vfsmount *mounted = lookup_mnt(path);
9deed3eb 1339 if (mounted) { // ... in our namespace
9875cf80
DH
1340 dput(path->dentry);
1341 if (need_mntput)
1342 mntput(path->mnt);
1343 path->mnt = mounted;
1344 path->dentry = dget(mounted->mnt_root);
9deed3eb
AV
1345 // here we know it's positive
1346 flags = path->dentry->d_flags;
9875cf80
DH
1347 need_mntput = true;
1348 continue;
1349 }
9875cf80
DH
1350 }
1351
9deed3eb
AV
1352 if (!(flags & DCACHE_NEED_AUTOMOUNT))
1353 break;
9875cf80 1354
9deed3eb
AV
1355 // uncovered automount point
1356 ret = follow_automount(path, count, lookup_flags);
1357 flags = smp_load_acquire(&path->dentry->d_flags);
1358 if (ret < 0)
1359 break;
1da177e4 1360 }
8aef1884 1361
9deed3eb
AV
1362 if (ret == -EISDIR)
1363 ret = 0;
1364 // possible if you race with several mount --move
1365 if (need_mntput && path->mnt == mnt)
1366 mntput(path->mnt);
1367 if (!ret && unlikely(d_flags_negative(flags)))
d41efb52 1368 ret = -ENOENT;
9deed3eb 1369 *jumped = need_mntput;
8402752e 1370 return ret;
1da177e4
LT
1371}
1372
9deed3eb
AV
1373static inline int traverse_mounts(struct path *path, bool *jumped,
1374 int *count, unsigned lookup_flags)
1375{
1376 unsigned flags = smp_load_acquire(&path->dentry->d_flags);
1377
1378 /* fastpath */
1379 if (likely(!(flags & DCACHE_MANAGED_DENTRY))) {
1380 *jumped = false;
1381 if (unlikely(d_flags_negative(flags)))
1382 return -ENOENT;
1383 return 0;
1384 }
1385 return __traverse_mounts(path, flags, jumped, count, lookup_flags);
1386}
1387
cc53ce53 1388int follow_down_one(struct path *path)
1da177e4
LT
1389{
1390 struct vfsmount *mounted;
1391
1c755af4 1392 mounted = lookup_mnt(path);
1da177e4 1393 if (mounted) {
9393bd07
AV
1394 dput(path->dentry);
1395 mntput(path->mnt);
1396 path->mnt = mounted;
1397 path->dentry = dget(mounted->mnt_root);
1da177e4
LT
1398 return 1;
1399 }
1400 return 0;
1401}
4d359507 1402EXPORT_SYMBOL(follow_down_one);
1da177e4 1403
9deed3eb
AV
1404/*
1405 * Follow down to the covering mount currently visible to userspace. At each
1406 * point, the filesystem owning that dentry may be queried as to whether the
1407 * caller is permitted to proceed or not.
1408 */
1409int follow_down(struct path *path)
1410{
1411 struct vfsmount *mnt = path->mnt;
1412 bool jumped;
1413 int ret = traverse_mounts(path, &jumped, NULL, 0);
1414
1415 if (path->mnt != mnt)
1416 mntput(mnt);
1417 return ret;
1418}
1419EXPORT_SYMBOL(follow_down);
1420
9875cf80 1421/*
287548e4
AV
1422 * Try to skip to top of mountpoint pile in rcuwalk mode. Fail if
1423 * we meet a managed dentry that would need blocking.
9875cf80
DH
1424 */
1425static bool __follow_mount_rcu(struct nameidata *nd, struct path *path,
254cf582 1426 struct inode **inode, unsigned *seqp)
9875cf80 1427{
ea936aeb
AV
1428 struct dentry *dentry = path->dentry;
1429 unsigned int flags = dentry->d_flags;
1430
1431 if (likely(!(flags & DCACHE_MANAGED_DENTRY)))
1432 return true;
1433
1434 if (unlikely(nd->flags & LOOKUP_NO_XDEV))
1435 return false;
1436
62a7375e 1437 for (;;) {
62a7375e
IK
1438 /*
1439 * Don't forget we might have a non-mountpoint managed dentry
1440 * that wants to block transit.
1441 */
ea936aeb
AV
1442 if (unlikely(flags & DCACHE_MANAGE_TRANSIT)) {
1443 int res = dentry->d_op->d_manage(path, true);
1444 if (res)
1445 return res == -EISDIR;
1446 flags = dentry->d_flags;
b8faf035 1447 }
62a7375e 1448
ea936aeb
AV
1449 if (flags & DCACHE_MOUNTED) {
1450 struct mount *mounted = __lookup_mnt(path->mnt, dentry);
1451 if (mounted) {
1452 path->mnt = &mounted->mnt;
1453 dentry = path->dentry = mounted->mnt.mnt_root;
bcba1e7d 1454 nd->state |= ND_JUMPED;
ea936aeb
AV
1455 *seqp = read_seqcount_begin(&dentry->d_seq);
1456 *inode = dentry->d_inode;
1457 /*
1458 * We don't need to re-check ->d_seq after this
1459 * ->d_inode read - there will be an RCU delay
1460 * between mount hash removal and ->mnt_root
1461 * becoming unpinned.
1462 */
1463 flags = dentry->d_flags;
1464 continue;
1465 }
1466 if (read_seqretry(&mount_lock, nd->m_seq))
1467 return false;
1468 }
1469 return !(flags & DCACHE_NEED_AUTOMOUNT);
9875cf80 1470 }
287548e4
AV
1471}
1472
db3c9ade
AV
1473static inline int handle_mounts(struct nameidata *nd, struct dentry *dentry,
1474 struct path *path, struct inode **inode,
1475 unsigned int *seqp)
bd7c4b50 1476{
9deed3eb 1477 bool jumped;
db3c9ade 1478 int ret;
bd7c4b50 1479
db3c9ade
AV
1480 path->mnt = nd->path.mnt;
1481 path->dentry = dentry;
c153007b
AV
1482 if (nd->flags & LOOKUP_RCU) {
1483 unsigned int seq = *seqp;
1484 if (unlikely(!*inode))
1485 return -ENOENT;
1486 if (likely(__follow_mount_rcu(nd, path, inode, seqp)))
9deed3eb 1487 return 0;
ae66db45 1488 if (!try_to_unlazy_next(nd, dentry, seq))
c153007b
AV
1489 return -ECHILD;
1490 // *path might've been clobbered by __follow_mount_rcu()
1491 path->mnt = nd->path.mnt;
1492 path->dentry = dentry;
1493 }
9deed3eb
AV
1494 ret = traverse_mounts(path, &jumped, &nd->total_link_count, nd->flags);
1495 if (jumped) {
1496 if (unlikely(nd->flags & LOOKUP_NO_XDEV))
1497 ret = -EXDEV;
1498 else
bcba1e7d 1499 nd->state |= ND_JUMPED;
9deed3eb
AV
1500 }
1501 if (unlikely(ret)) {
1502 dput(path->dentry);
1503 if (path->mnt != nd->path.mnt)
1504 mntput(path->mnt);
1505 } else {
bd7c4b50
AV
1506 *inode = d_backing_inode(path->dentry);
1507 *seqp = 0; /* out of RCU mode, so the value doesn't matter */
1508 }
1509 return ret;
1510}
1511
baa03890 1512/*
f4fdace9
OD
1513 * This looks up the name in dcache and possibly revalidates the found dentry.
1514 * NULL is returned if the dentry does not exist in the cache.
baa03890 1515 */
e3c13928
AV
1516static struct dentry *lookup_dcache(const struct qstr *name,
1517 struct dentry *dir,
6c51e513 1518 unsigned int flags)
baa03890 1519{
a89f8337 1520 struct dentry *dentry = d_lookup(dir, name);
bad61189 1521 if (dentry) {
a89f8337
AV
1522 int error = d_revalidate(dentry, flags);
1523 if (unlikely(error <= 0)) {
1524 if (!error)
1525 d_invalidate(dentry);
1526 dput(dentry);
1527 return ERR_PTR(error);
bad61189
MS
1528 }
1529 }
baa03890
NP
1530 return dentry;
1531}
1532
44396f4b 1533/*
a03ece5f
AV
1534 * Parent directory has inode locked exclusive. This is one
1535 * and only case when ->lookup() gets called on non in-lookup
1536 * dentries - as the matter of fact, this only gets called
1537 * when directory is guaranteed to have no in-lookup children
1538 * at all.
44396f4b 1539 */
e3c13928 1540static struct dentry *__lookup_hash(const struct qstr *name,
72bd866a 1541 struct dentry *base, unsigned int flags)
a3255546 1542{
6c51e513 1543 struct dentry *dentry = lookup_dcache(name, base, flags);
a03ece5f
AV
1544 struct dentry *old;
1545 struct inode *dir = base->d_inode;
a3255546 1546
6c51e513 1547 if (dentry)
bad61189 1548 return dentry;
a3255546 1549
a03ece5f
AV
1550 /* Don't create child dentry for a dead directory. */
1551 if (unlikely(IS_DEADDIR(dir)))
1552 return ERR_PTR(-ENOENT);
1553
6c51e513
AV
1554 dentry = d_alloc(base, name);
1555 if (unlikely(!dentry))
1556 return ERR_PTR(-ENOMEM);
1557
a03ece5f
AV
1558 old = dir->i_op->lookup(dir, dentry, flags);
1559 if (unlikely(old)) {
1560 dput(dentry);
1561 dentry = old;
1562 }
1563 return dentry;
a3255546
AV
1564}
1565
20e34357
AV
1566static struct dentry *lookup_fast(struct nameidata *nd,
1567 struct inode **inode,
1568 unsigned *seqp)
1da177e4 1569{
31e6b01f 1570 struct dentry *dentry, *parent = nd->path.dentry;
5a18fff2 1571 int status = 1;
9875cf80 1572
b04f784e
NP
1573 /*
1574 * Rename seqlock is not required here because in the off chance
5d0f49c1
AV
1575 * of a false negative due to a concurrent rename, the caller is
1576 * going to fall back to non-racy lookup.
b04f784e 1577 */
31e6b01f
NP
1578 if (nd->flags & LOOKUP_RCU) {
1579 unsigned seq;
da53be12 1580 dentry = __d_lookup_rcu(parent, &nd->last, &seq);
5d0f49c1 1581 if (unlikely(!dentry)) {
e36cffed 1582 if (!try_to_unlazy(nd))
20e34357
AV
1583 return ERR_PTR(-ECHILD);
1584 return NULL;
5d0f49c1 1585 }
5a18fff2 1586
12f8ad4b
LT
1587 /*
1588 * This sequence count validates that the inode matches
1589 * the dentry name information from lookup.
1590 */
63afdfc7 1591 *inode = d_backing_inode(dentry);
5d0f49c1 1592 if (unlikely(read_seqcount_retry(&dentry->d_seq, seq)))
20e34357 1593 return ERR_PTR(-ECHILD);
12f8ad4b
LT
1594
1595 /*
1596 * This sequence count validates that the parent had no
1597 * changes while we did the lookup of the dentry above.
1598 *
1599 * The memory barrier in read_seqcount_begin of child is
1600 * enough, we can use __read_seqcount_retry here.
1601 */
5d0f49c1 1602 if (unlikely(__read_seqcount_retry(&parent->d_seq, nd->seq)))
20e34357 1603 return ERR_PTR(-ECHILD);
5a18fff2 1604
254cf582 1605 *seqp = seq;
a89f8337 1606 status = d_revalidate(dentry, nd->flags);
c153007b 1607 if (likely(status > 0))
20e34357 1608 return dentry;
ae66db45 1609 if (!try_to_unlazy_next(nd, dentry, seq))
20e34357 1610 return ERR_PTR(-ECHILD);
26ddb45e 1611 if (status == -ECHILD)
209a7fb2
AV
1612 /* we'd been told to redo it in non-rcu mode */
1613 status = d_revalidate(dentry, nd->flags);
5a18fff2 1614 } else {
e97cdc87 1615 dentry = __d_lookup(parent, &nd->last);
5d0f49c1 1616 if (unlikely(!dentry))
20e34357 1617 return NULL;
a89f8337 1618 status = d_revalidate(dentry, nd->flags);
9875cf80 1619 }
5a18fff2 1620 if (unlikely(status <= 0)) {
e9742b53 1621 if (!status)
5d0f49c1 1622 d_invalidate(dentry);
5542aa2f 1623 dput(dentry);
20e34357 1624 return ERR_PTR(status);
24643087 1625 }
20e34357 1626 return dentry;
697f514d
MS
1627}
1628
1629/* Fast lookup failed, do it the slow way */
88d8331a
AV
1630static struct dentry *__lookup_slow(const struct qstr *name,
1631 struct dentry *dir,
1632 unsigned int flags)
697f514d 1633{
88d8331a 1634 struct dentry *dentry, *old;
1936386e 1635 struct inode *inode = dir->d_inode;
d9171b93 1636 DECLARE_WAIT_QUEUE_HEAD_ONSTACK(wq);
1936386e 1637
1936386e 1638 /* Don't go there if it's already dead */
94bdd655 1639 if (unlikely(IS_DEADDIR(inode)))
88d8331a 1640 return ERR_PTR(-ENOENT);
94bdd655 1641again:
d9171b93 1642 dentry = d_alloc_parallel(dir, name, &wq);
94bdd655 1643 if (IS_ERR(dentry))
88d8331a 1644 return dentry;
94bdd655 1645 if (unlikely(!d_in_lookup(dentry))) {
c64cd6e3
AV
1646 int error = d_revalidate(dentry, flags);
1647 if (unlikely(error <= 0)) {
1648 if (!error) {
1649 d_invalidate(dentry);
949a852e 1650 dput(dentry);
c64cd6e3 1651 goto again;
949a852e 1652 }
c64cd6e3
AV
1653 dput(dentry);
1654 dentry = ERR_PTR(error);
949a852e 1655 }
94bdd655
AV
1656 } else {
1657 old = inode->i_op->lookup(inode, dentry, flags);
1658 d_lookup_done(dentry);
1659 if (unlikely(old)) {
1660 dput(dentry);
1661 dentry = old;
949a852e
AV
1662 }
1663 }
e3c13928 1664 return dentry;
1da177e4
LT
1665}
1666
88d8331a
AV
1667static struct dentry *lookup_slow(const struct qstr *name,
1668 struct dentry *dir,
1669 unsigned int flags)
1670{
1671 struct inode *inode = dir->d_inode;
1672 struct dentry *res;
1673 inode_lock_shared(inode);
1674 res = __lookup_slow(name, dir, flags);
1675 inode_unlock_shared(inode);
1676 return res;
1677}
1678
ba73d987
CB
1679static inline int may_lookup(struct user_namespace *mnt_userns,
1680 struct nameidata *nd)
52094c8a
AV
1681{
1682 if (nd->flags & LOOKUP_RCU) {
7d6beb71 1683 int err = inode_permission(mnt_userns, nd->inode, MAY_EXEC|MAY_NOT_BLOCK);
e36cffed 1684 if (err != -ECHILD || !try_to_unlazy(nd))
52094c8a 1685 return err;
52094c8a 1686 }
ba73d987 1687 return inode_permission(mnt_userns, nd->inode, MAY_EXEC);
52094c8a
AV
1688}
1689
49055906
AV
1690static int reserve_stack(struct nameidata *nd, struct path *link, unsigned seq)
1691{
49055906
AV
1692 if (unlikely(nd->total_link_count++ >= MAXSYMLINKS))
1693 return -ELOOP;
4542576b
AV
1694
1695 if (likely(nd->depth != EMBEDDED_LEVELS))
1696 return 0;
1697 if (likely(nd->stack != nd->internal))
1698 return 0;
60ef60c7 1699 if (likely(nd_alloc_stack(nd)))
49055906 1700 return 0;
60ef60c7
AV
1701
1702 if (nd->flags & LOOKUP_RCU) {
1703 // we need to grab link before we do unlazy. And we can't skip
1704 // unlazy even if we fail to grab the link - cleanup needs it
49055906 1705 bool grabbed_link = legitimize_path(nd, link, seq);
60ef60c7 1706
e36cffed 1707 if (!try_to_unlazy(nd) != 0 || !grabbed_link)
60ef60c7
AV
1708 return -ECHILD;
1709
1710 if (nd_alloc_stack(nd))
1711 return 0;
49055906 1712 }
60ef60c7 1713 return -ENOMEM;
49055906
AV
1714}
1715
b1a81972
AV
1716enum {WALK_TRAILING = 1, WALK_MORE = 2, WALK_NOFOLLOW = 4};
1717
06708adb 1718static const char *pick_link(struct nameidata *nd, struct path *link,
b1a81972 1719 struct inode *inode, unsigned seq, int flags)
d63ff28f 1720{
1cf2665b 1721 struct saved *last;
ad6cc4c3 1722 const char *res;
49055906 1723 int error = reserve_stack(nd, link, seq);
ad6cc4c3 1724
626de996 1725 if (unlikely(error)) {
49055906 1726 if (!(nd->flags & LOOKUP_RCU))
bc40aee0 1727 path_put(link);
49055906 1728 return ERR_PTR(error);
626de996 1729 }
ab104923 1730 last = nd->stack + nd->depth++;
1cf2665b 1731 last->link = *link;
fceef393 1732 clear_delayed_call(&last->done);
0450b2d1 1733 last->seq = seq;
ad6cc4c3 1734
b1a81972 1735 if (flags & WALK_TRAILING) {
ad6cc4c3
AV
1736 error = may_follow_link(nd, inode);
1737 if (unlikely(error))
1738 return ERR_PTR(error);
1739 }
1740
dab741e0
MN
1741 if (unlikely(nd->flags & LOOKUP_NO_SYMLINKS) ||
1742 unlikely(link->mnt->mnt_flags & MNT_NOSYMFOLLOW))
ad6cc4c3
AV
1743 return ERR_PTR(-ELOOP);
1744
1745 if (!(nd->flags & LOOKUP_RCU)) {
1746 touch_atime(&last->link);
1747 cond_resched();
1748 } else if (atime_needs_update(&last->link, inode)) {
e36cffed 1749 if (!try_to_unlazy(nd))
ad6cc4c3
AV
1750 return ERR_PTR(-ECHILD);
1751 touch_atime(&last->link);
1752 }
1753
1754 error = security_inode_follow_link(link->dentry, inode,
1755 nd->flags & LOOKUP_RCU);
1756 if (unlikely(error))
1757 return ERR_PTR(error);
1758
ad6cc4c3
AV
1759 res = READ_ONCE(inode->i_link);
1760 if (!res) {
1761 const char * (*get)(struct dentry *, struct inode *,
1762 struct delayed_call *);
1763 get = inode->i_op->get_link;
1764 if (nd->flags & LOOKUP_RCU) {
1765 res = get(NULL, inode, &last->done);
e36cffed 1766 if (res == ERR_PTR(-ECHILD) && try_to_unlazy(nd))
ad6cc4c3 1767 res = get(link->dentry, inode, &last->done);
ad6cc4c3
AV
1768 } else {
1769 res = get(link->dentry, inode, &last->done);
1770 }
1771 if (!res)
1772 goto all_done;
1773 if (IS_ERR(res))
1774 return res;
1775 }
1776 if (*res == '/') {
1777 error = nd_jump_root(nd);
1778 if (unlikely(error))
1779 return ERR_PTR(error);
1780 while (unlikely(*++res == '/'))
1781 ;
1782 }
1783 if (*res)
1784 return res;
1785all_done: // pure jump
1786 put_link(nd);
1787 return NULL;
d63ff28f
AV
1788}
1789
3ddcd056
LT
1790/*
1791 * Do we need to follow links? We _really_ want to be able
1792 * to do this check without having to look at inode->i_op,
1793 * so we keep a cache of "no, this doesn't need follow_link"
1794 * for the common case.
1795 */
b0417d2c 1796static const char *step_into(struct nameidata *nd, int flags,
cbae4d12 1797 struct dentry *dentry, struct inode *inode, unsigned seq)
3ddcd056 1798{
cbae4d12
AV
1799 struct path path;
1800 int err = handle_mounts(nd, dentry, &path, &inode, &seq);
1801
1802 if (err < 0)
b0417d2c 1803 return ERR_PTR(err);
cbae4d12 1804 if (likely(!d_is_symlink(path.dentry)) ||
8c4efe22 1805 ((flags & WALK_TRAILING) && !(nd->flags & LOOKUP_FOLLOW)) ||
aca2903e 1806 (flags & WALK_NOFOLLOW)) {
8f64fb1c 1807 /* not a symlink or should not follow */
c99687a0
AV
1808 if (!(nd->flags & LOOKUP_RCU)) {
1809 dput(nd->path.dentry);
1810 if (nd->path.mnt != path.mnt)
1811 mntput(nd->path.mnt);
1812 }
1813 nd->path = path;
8f64fb1c
AV
1814 nd->inode = inode;
1815 nd->seq = seq;
b0417d2c 1816 return NULL;
8f64fb1c 1817 }
a7f77542 1818 if (nd->flags & LOOKUP_RCU) {
84f0cd9e 1819 /* make sure that d_is_symlink above matches inode */
cbae4d12 1820 if (read_seqcount_retry(&path.dentry->d_seq, seq))
b0417d2c 1821 return ERR_PTR(-ECHILD);
84f0cd9e
AV
1822 } else {
1823 if (path.mnt == nd->path.mnt)
1824 mntget(path.mnt);
a7f77542 1825 }
b1a81972 1826 return pick_link(nd, &path, inode, seq, flags);
3ddcd056
LT
1827}
1828
c2df1968
AV
1829static struct dentry *follow_dotdot_rcu(struct nameidata *nd,
1830 struct inode **inodep,
1831 unsigned *seqp)
957dd41d 1832{
12487f30 1833 struct dentry *parent, *old;
957dd41d 1834
12487f30
AV
1835 if (path_equal(&nd->path, &nd->root))
1836 goto in_root;
1837 if (unlikely(nd->path.dentry == nd->path.mnt->mnt_root)) {
7ef482fa 1838 struct path path;
efe772d6 1839 unsigned seq;
7ef482fa
AV
1840 if (!choose_mountpoint_rcu(real_mount(nd->path.mnt),
1841 &nd->root, &path, &seq))
1842 goto in_root;
efe772d6
AV
1843 if (unlikely(nd->flags & LOOKUP_NO_XDEV))
1844 return ERR_PTR(-ECHILD);
1845 nd->path = path;
1846 nd->inode = path.dentry->d_inode;
1847 nd->seq = seq;
1848 if (unlikely(read_seqretry(&mount_lock, nd->m_seq)))
1849 return ERR_PTR(-ECHILD);
1850 /* we know that mountpoint was pinned */
957dd41d 1851 }
12487f30
AV
1852 old = nd->path.dentry;
1853 parent = old->d_parent;
1854 *inodep = parent->d_inode;
1855 *seqp = read_seqcount_begin(&parent->d_seq);
1856 if (unlikely(read_seqcount_retry(&old->d_seq, nd->seq)))
1857 return ERR_PTR(-ECHILD);
1858 if (unlikely(!path_connected(nd->path.mnt, parent)))
1859 return ERR_PTR(-ECHILD);
1860 return parent;
1861in_root:
efe772d6
AV
1862 if (unlikely(read_seqretry(&mount_lock, nd->m_seq)))
1863 return ERR_PTR(-ECHILD);
c2df1968
AV
1864 if (unlikely(nd->flags & LOOKUP_BENEATH))
1865 return ERR_PTR(-ECHILD);
1866 return NULL;
957dd41d
AV
1867}
1868
c2df1968
AV
1869static struct dentry *follow_dotdot(struct nameidata *nd,
1870 struct inode **inodep,
1871 unsigned *seqp)
957dd41d 1872{
12487f30
AV
1873 struct dentry *parent;
1874
1875 if (path_equal(&nd->path, &nd->root))
1876 goto in_root;
1877 if (unlikely(nd->path.dentry == nd->path.mnt->mnt_root)) {
2aa38470
AV
1878 struct path path;
1879
1880 if (!choose_mountpoint(real_mount(nd->path.mnt),
1881 &nd->root, &path))
1882 goto in_root;
165200d6
AV
1883 path_put(&nd->path);
1884 nd->path = path;
2aa38470 1885 nd->inode = path.dentry->d_inode;
165200d6
AV
1886 if (unlikely(nd->flags & LOOKUP_NO_XDEV))
1887 return ERR_PTR(-EXDEV);
957dd41d 1888 }
12487f30
AV
1889 /* rare case of legitimate dget_parent()... */
1890 parent = dget_parent(nd->path.dentry);
1891 if (unlikely(!path_connected(nd->path.mnt, parent))) {
1892 dput(parent);
1893 return ERR_PTR(-ENOENT);
1894 }
1895 *seqp = 0;
1896 *inodep = parent->d_inode;
1897 return parent;
1898
1899in_root:
c2df1968
AV
1900 if (unlikely(nd->flags & LOOKUP_BENEATH))
1901 return ERR_PTR(-EXDEV);
1902 dget(nd->path.dentry);
1903 return NULL;
957dd41d
AV
1904}
1905
7521f22b 1906static const char *handle_dots(struct nameidata *nd, int type)
957dd41d
AV
1907{
1908 if (type == LAST_DOTDOT) {
7521f22b 1909 const char *error = NULL;
c2df1968
AV
1910 struct dentry *parent;
1911 struct inode *inode;
1912 unsigned seq;
957dd41d
AV
1913
1914 if (!nd->root.mnt) {
7521f22b 1915 error = ERR_PTR(set_root(nd));
957dd41d
AV
1916 if (error)
1917 return error;
1918 }
1919 if (nd->flags & LOOKUP_RCU)
c2df1968 1920 parent = follow_dotdot_rcu(nd, &inode, &seq);
957dd41d 1921 else
c2df1968
AV
1922 parent = follow_dotdot(nd, &inode, &seq);
1923 if (IS_ERR(parent))
1924 return ERR_CAST(parent);
1925 if (unlikely(!parent))
1926 error = step_into(nd, WALK_NOFOLLOW,
1927 nd->path.dentry, nd->inode, nd->seq);
1928 else
1929 error = step_into(nd, WALK_NOFOLLOW,
1930 parent, inode, seq);
1931 if (unlikely(error))
957dd41d
AV
1932 return error;
1933
1934 if (unlikely(nd->flags & LOOKUP_IS_SCOPED)) {
1935 /*
1936 * If there was a racing rename or mount along our
1937 * path, then we can't be sure that ".." hasn't jumped
1938 * above nd->root (and so userspace should retry or use
1939 * some fallback).
1940 */
1941 smp_rmb();
1942 if (unlikely(__read_seqcount_retry(&mount_lock.seqcount, nd->m_seq)))
7521f22b 1943 return ERR_PTR(-EAGAIN);
957dd41d 1944 if (unlikely(__read_seqcount_retry(&rename_lock.seqcount, nd->r_seq)))
7521f22b 1945 return ERR_PTR(-EAGAIN);
957dd41d
AV
1946 }
1947 }
7521f22b 1948 return NULL;
957dd41d
AV
1949}
1950
92d27016 1951static const char *walk_component(struct nameidata *nd, int flags)
ce57dfc1 1952{
db3c9ade 1953 struct dentry *dentry;
ce57dfc1 1954 struct inode *inode;
254cf582 1955 unsigned seq;
ce57dfc1
AV
1956 /*
1957 * "." and ".." are special - ".." especially so because it has
1958 * to be able to know about the current root directory and
1959 * parent relationships.
1960 */
4693a547 1961 if (unlikely(nd->last_type != LAST_NORM)) {
1c4ff1a8 1962 if (!(flags & WALK_MORE) && nd->depth)
4693a547 1963 put_link(nd);
7521f22b 1964 return handle_dots(nd, nd->last_type);
4693a547 1965 }
20e34357
AV
1966 dentry = lookup_fast(nd, &inode, &seq);
1967 if (IS_ERR(dentry))
92d27016 1968 return ERR_CAST(dentry);
20e34357 1969 if (unlikely(!dentry)) {
db3c9ade
AV
1970 dentry = lookup_slow(&nd->last, nd->path.dentry, nd->flags);
1971 if (IS_ERR(dentry))
92d27016 1972 return ERR_CAST(dentry);
ce57dfc1 1973 }
56676ec3
AV
1974 if (!(flags & WALK_MORE) && nd->depth)
1975 put_link(nd);
b0417d2c 1976 return step_into(nd, flags, dentry, inode, seq);
ce57dfc1
AV
1977}
1978
bfcfaa77
LT
1979/*
1980 * We can do the critical dentry name comparison and hashing
1981 * operations one word at a time, but we are limited to:
1982 *
1983 * - Architectures with fast unaligned word accesses. We could
1984 * do a "get_unaligned()" if this helps and is sufficiently
1985 * fast.
1986 *
bfcfaa77
LT
1987 * - non-CONFIG_DEBUG_PAGEALLOC configurations (so that we
1988 * do not trap on the (extremely unlikely) case of a page
1989 * crossing operation.
1990 *
1991 * - Furthermore, we need an efficient 64-bit compile for the
1992 * 64-bit case in order to generate the "number of bytes in
1993 * the final mask". Again, that could be replaced with a
1994 * efficient population count instruction or similar.
1995 */
1996#ifdef CONFIG_DCACHE_WORD_ACCESS
1997
f68e556e 1998#include <asm/word-at-a-time.h>
bfcfaa77 1999
468a9428 2000#ifdef HASH_MIX
bfcfaa77 2001
468a9428 2002/* Architecture provides HASH_MIX and fold_hash() in <asm/hash.h> */
bfcfaa77 2003
468a9428 2004#elif defined(CONFIG_64BIT)
0fed3ac8 2005/*
2a18da7a
GS
2006 * Register pressure in the mixing function is an issue, particularly
2007 * on 32-bit x86, but almost any function requires one state value and
2008 * one temporary. Instead, use a function designed for two state values
2009 * and no temporaries.
2010 *
2011 * This function cannot create a collision in only two iterations, so
2012 * we have two iterations to achieve avalanche. In those two iterations,
2013 * we have six layers of mixing, which is enough to spread one bit's
2014 * influence out to 2^6 = 64 state bits.
2015 *
2016 * Rotate constants are scored by considering either 64 one-bit input
2017 * deltas or 64*63/2 = 2016 two-bit input deltas, and finding the
2018 * probability of that delta causing a change to each of the 128 output
2019 * bits, using a sample of random initial states.
2020 *
2021 * The Shannon entropy of the computed probabilities is then summed
2022 * to produce a score. Ideally, any input change has a 50% chance of
2023 * toggling any given output bit.
2024 *
2025 * Mixing scores (in bits) for (12,45):
2026 * Input delta: 1-bit 2-bit
2027 * 1 round: 713.3 42542.6
2028 * 2 rounds: 2753.7 140389.8
2029 * 3 rounds: 5954.1 233458.2
2030 * 4 rounds: 7862.6 256672.2
2031 * Perfect: 8192 258048
2032 * (64*128) (64*63/2 * 128)
0fed3ac8 2033 */
2a18da7a
GS
2034#define HASH_MIX(x, y, a) \
2035 ( x ^= (a), \
2036 y ^= x, x = rol64(x,12),\
2037 x += y, y = rol64(y,45),\
2038 y *= 9 )
bfcfaa77 2039
0fed3ac8 2040/*
2a18da7a
GS
2041 * Fold two longs into one 32-bit hash value. This must be fast, but
2042 * latency isn't quite as critical, as there is a fair bit of additional
2043 * work done before the hash value is used.
0fed3ac8 2044 */
2a18da7a 2045static inline unsigned int fold_hash(unsigned long x, unsigned long y)
0fed3ac8 2046{
2a18da7a
GS
2047 y ^= x * GOLDEN_RATIO_64;
2048 y *= GOLDEN_RATIO_64;
2049 return y >> 32;
0fed3ac8
GS
2050}
2051
bfcfaa77
LT
2052#else /* 32-bit case */
2053
2a18da7a
GS
2054/*
2055 * Mixing scores (in bits) for (7,20):
2056 * Input delta: 1-bit 2-bit
2057 * 1 round: 330.3 9201.6
2058 * 2 rounds: 1246.4 25475.4
2059 * 3 rounds: 1907.1 31295.1
2060 * 4 rounds: 2042.3 31718.6
2061 * Perfect: 2048 31744
2062 * (32*64) (32*31/2 * 64)
2063 */
2064#define HASH_MIX(x, y, a) \
2065 ( x ^= (a), \
2066 y ^= x, x = rol32(x, 7),\
2067 x += y, y = rol32(y,20),\
2068 y *= 9 )
bfcfaa77 2069
2a18da7a 2070static inline unsigned int fold_hash(unsigned long x, unsigned long y)
0fed3ac8 2071{
2a18da7a
GS
2072 /* Use arch-optimized multiply if one exists */
2073 return __hash_32(y ^ __hash_32(x));
0fed3ac8
GS
2074}
2075
bfcfaa77
LT
2076#endif
2077
2a18da7a
GS
2078/*
2079 * Return the hash of a string of known length. This is carfully
2080 * designed to match hash_name(), which is the more critical function.
2081 * In particular, we must end by hashing a final word containing 0..7
2082 * payload bytes, to match the way that hash_name() iterates until it
2083 * finds the delimiter after the name.
2084 */
8387ff25 2085unsigned int full_name_hash(const void *salt, const char *name, unsigned int len)
bfcfaa77 2086{
8387ff25 2087 unsigned long a, x = 0, y = (unsigned long)salt;
bfcfaa77
LT
2088
2089 for (;;) {
fcfd2fbf
GS
2090 if (!len)
2091 goto done;
e419b4cc 2092 a = load_unaligned_zeropad(name);
bfcfaa77
LT
2093 if (len < sizeof(unsigned long))
2094 break;
2a18da7a 2095 HASH_MIX(x, y, a);
bfcfaa77
LT
2096 name += sizeof(unsigned long);
2097 len -= sizeof(unsigned long);
bfcfaa77 2098 }
2a18da7a 2099 x ^= a & bytemask_from_count(len);
bfcfaa77 2100done:
2a18da7a 2101 return fold_hash(x, y);
bfcfaa77
LT
2102}
2103EXPORT_SYMBOL(full_name_hash);
2104
fcfd2fbf 2105/* Return the "hash_len" (hash and length) of a null-terminated string */
8387ff25 2106u64 hashlen_string(const void *salt, const char *name)
fcfd2fbf 2107{
8387ff25
LT
2108 unsigned long a = 0, x = 0, y = (unsigned long)salt;
2109 unsigned long adata, mask, len;
fcfd2fbf
GS
2110 const struct word_at_a_time constants = WORD_AT_A_TIME_CONSTANTS;
2111
8387ff25
LT
2112 len = 0;
2113 goto inside;
2114
fcfd2fbf 2115 do {
2a18da7a 2116 HASH_MIX(x, y, a);
fcfd2fbf 2117 len += sizeof(unsigned long);
8387ff25 2118inside:
fcfd2fbf
GS
2119 a = load_unaligned_zeropad(name+len);
2120 } while (!has_zero(a, &adata, &constants));
2121
2122 adata = prep_zero_mask(a, adata, &constants);
2123 mask = create_zero_mask(adata);
2a18da7a 2124 x ^= a & zero_bytemask(mask);
fcfd2fbf 2125
2a18da7a 2126 return hashlen_create(fold_hash(x, y), len + find_zero(mask));
fcfd2fbf
GS
2127}
2128EXPORT_SYMBOL(hashlen_string);
2129
bfcfaa77
LT
2130/*
2131 * Calculate the length and hash of the path component, and
d6bb3e90 2132 * return the "hash_len" as the result.
bfcfaa77 2133 */
8387ff25 2134static inline u64 hash_name(const void *salt, const char *name)
bfcfaa77 2135{
8387ff25
LT
2136 unsigned long a = 0, b, x = 0, y = (unsigned long)salt;
2137 unsigned long adata, bdata, mask, len;
36126f8f 2138 const struct word_at_a_time constants = WORD_AT_A_TIME_CONSTANTS;
bfcfaa77 2139
8387ff25
LT
2140 len = 0;
2141 goto inside;
2142
bfcfaa77 2143 do {
2a18da7a 2144 HASH_MIX(x, y, a);
bfcfaa77 2145 len += sizeof(unsigned long);
8387ff25 2146inside:
e419b4cc 2147 a = load_unaligned_zeropad(name+len);
36126f8f
LT
2148 b = a ^ REPEAT_BYTE('/');
2149 } while (!(has_zero(a, &adata, &constants) | has_zero(b, &bdata, &constants)));
2150
2151 adata = prep_zero_mask(a, adata, &constants);
2152 bdata = prep_zero_mask(b, bdata, &constants);
36126f8f 2153 mask = create_zero_mask(adata | bdata);
2a18da7a 2154 x ^= a & zero_bytemask(mask);
36126f8f 2155
2a18da7a 2156 return hashlen_create(fold_hash(x, y), len + find_zero(mask));
bfcfaa77
LT
2157}
2158
2a18da7a 2159#else /* !CONFIG_DCACHE_WORD_ACCESS: Slow, byte-at-a-time version */
bfcfaa77 2160
fcfd2fbf 2161/* Return the hash of a string of known length */
8387ff25 2162unsigned int full_name_hash(const void *salt, const char *name, unsigned int len)
0145acc2 2163{
8387ff25 2164 unsigned long hash = init_name_hash(salt);
0145acc2 2165 while (len--)
fcfd2fbf 2166 hash = partial_name_hash((unsigned char)*name++, hash);
0145acc2
LT
2167 return end_name_hash(hash);
2168}
ae942ae7 2169EXPORT_SYMBOL(full_name_hash);
0145acc2 2170
fcfd2fbf 2171/* Return the "hash_len" (hash and length) of a null-terminated string */
8387ff25 2172u64 hashlen_string(const void *salt, const char *name)
fcfd2fbf 2173{
8387ff25 2174 unsigned long hash = init_name_hash(salt);
fcfd2fbf
GS
2175 unsigned long len = 0, c;
2176
2177 c = (unsigned char)*name;
e0ab7af9 2178 while (c) {
fcfd2fbf
GS
2179 len++;
2180 hash = partial_name_hash(c, hash);
2181 c = (unsigned char)name[len];
e0ab7af9 2182 }
fcfd2fbf
GS
2183 return hashlen_create(end_name_hash(hash), len);
2184}
f2a031b6 2185EXPORT_SYMBOL(hashlen_string);
fcfd2fbf 2186
200e9ef7
LT
2187/*
2188 * We know there's a real path component here of at least
2189 * one character.
2190 */
8387ff25 2191static inline u64 hash_name(const void *salt, const char *name)
200e9ef7 2192{
8387ff25 2193 unsigned long hash = init_name_hash(salt);
200e9ef7
LT
2194 unsigned long len = 0, c;
2195
2196 c = (unsigned char)*name;
2197 do {
2198 len++;
2199 hash = partial_name_hash(c, hash);
2200 c = (unsigned char)name[len];
2201 } while (c && c != '/');
d6bb3e90 2202 return hashlen_create(end_name_hash(hash), len);
200e9ef7
LT
2203}
2204
bfcfaa77
LT
2205#endif
2206
1da177e4
LT
2207/*
2208 * Name resolution.
ea3834d9
PM
2209 * This is the basic name resolution function, turning a pathname into
2210 * the final dentry. We expect 'base' to be positive and a directory.
1da177e4 2211 *
ea3834d9
PM
2212 * Returns 0 and nd will have valid dentry and mnt on success.
2213 * Returns error and drops reference to input namei data on failure.
1da177e4 2214 */
6de88d72 2215static int link_path_walk(const char *name, struct nameidata *nd)
1da177e4 2216{
d8d4611a 2217 int depth = 0; // depth <= nd->depth
1da177e4 2218 int err;
32cd7468 2219
b4c03536 2220 nd->last_type = LAST_ROOT;
c108837e 2221 nd->flags |= LOOKUP_PARENT;
9b5858e9
AV
2222 if (IS_ERR(name))
2223 return PTR_ERR(name);
1da177e4
LT
2224 while (*name=='/')
2225 name++;
1a97d899
AV
2226 if (!*name) {
2227 nd->dir_mode = 0; // short-circuit the 'hardening' idiocy
9e18f10a 2228 return 0;
1a97d899 2229 }
1da177e4 2230
1da177e4
LT
2231 /* At this point we know we have a real path component. */
2232 for(;;) {
549c7297 2233 struct user_namespace *mnt_userns;
92d27016 2234 const char *link;
d6bb3e90 2235 u64 hash_len;
fe479a58 2236 int type;
1da177e4 2237
549c7297
CB
2238 mnt_userns = mnt_user_ns(nd->path.mnt);
2239 err = may_lookup(mnt_userns, nd);
2a18da7a 2240 if (err)
3595e234 2241 return err;
1da177e4 2242
8387ff25 2243 hash_len = hash_name(nd->path.dentry, name);
1da177e4 2244
fe479a58 2245 type = LAST_NORM;
d6bb3e90 2246 if (name[0] == '.') switch (hashlen_len(hash_len)) {
fe479a58 2247 case 2:
200e9ef7 2248 if (name[1] == '.') {
fe479a58 2249 type = LAST_DOTDOT;
bcba1e7d 2250 nd->state |= ND_JUMPED;
16c2cd71 2251 }
fe479a58
AV
2252 break;
2253 case 1:
2254 type = LAST_DOT;
2255 }
5a202bcd
AV
2256 if (likely(type == LAST_NORM)) {
2257 struct dentry *parent = nd->path.dentry;
bcba1e7d 2258 nd->state &= ~ND_JUMPED;
5a202bcd 2259 if (unlikely(parent->d_flags & DCACHE_OP_HASH)) {
a060dc50 2260 struct qstr this = { { .hash_len = hash_len }, .name = name };
da53be12 2261 err = parent->d_op->d_hash(parent, &this);
5a202bcd 2262 if (err < 0)
3595e234 2263 return err;
d6bb3e90
LT
2264 hash_len = this.hash_len;
2265 name = this.name;
5a202bcd
AV
2266 }
2267 }
fe479a58 2268
d6bb3e90
LT
2269 nd->last.hash_len = hash_len;
2270 nd->last.name = name;
5f4a6a69
AV
2271 nd->last_type = type;
2272
d6bb3e90
LT
2273 name += hashlen_len(hash_len);
2274 if (!*name)
bdf6cbf1 2275 goto OK;
200e9ef7
LT
2276 /*
2277 * If it wasn't NUL, we know it was '/'. Skip that
2278 * slash, and continue until no more slashes.
2279 */
2280 do {
d6bb3e90
LT
2281 name++;
2282 } while (unlikely(*name == '/'));
8620c238
AV
2283 if (unlikely(!*name)) {
2284OK:
d8d4611a 2285 /* pathname or trailing symlink, done */
c108837e 2286 if (!depth) {
549c7297 2287 nd->dir_uid = i_uid_into_mnt(mnt_userns, nd->inode);
0f705953 2288 nd->dir_mode = nd->inode->i_mode;
c108837e 2289 nd->flags &= ~LOOKUP_PARENT;
8620c238 2290 return 0;
c108837e 2291 }
8620c238 2292 /* last component of nested symlink */
d8d4611a 2293 name = nd->stack[--depth].name;
8c4efe22 2294 link = walk_component(nd, 0);
1c4ff1a8
AV
2295 } else {
2296 /* not the last component */
8c4efe22 2297 link = walk_component(nd, WALK_MORE);
8620c238 2298 }
92d27016
AV
2299 if (unlikely(link)) {
2300 if (IS_ERR(link))
2301 return PTR_ERR(link);
2302 /* a symlink to follow */
d8d4611a 2303 nd->stack[depth++].name = name;
92d27016
AV
2304 name = link;
2305 continue;
31e6b01f 2306 }
97242f99
AV
2307 if (unlikely(!d_can_lookup(nd->path.dentry))) {
2308 if (nd->flags & LOOKUP_RCU) {
e36cffed 2309 if (!try_to_unlazy(nd))
97242f99
AV
2310 return -ECHILD;
2311 }
3595e234 2312 return -ENOTDIR;
97242f99 2313 }
1da177e4 2314 }
1da177e4
LT
2315}
2316
edc2b1da 2317/* must be paired with terminate_walk() */
c8a53ee5 2318static const char *path_init(struct nameidata *nd, unsigned flags)
31e6b01f 2319{
740a1678 2320 int error;
c8a53ee5 2321 const char *s = nd->name->name;
31e6b01f 2322
6c6ec2b0
JA
2323 /* LOOKUP_CACHED requires RCU, ask caller to retry */
2324 if ((flags & (LOOKUP_RCU | LOOKUP_CACHED)) == LOOKUP_CACHED)
2325 return ERR_PTR(-EAGAIN);
2326
c0eb027e
LT
2327 if (!*s)
2328 flags &= ~LOOKUP_RCU;
edc2b1da
AV
2329 if (flags & LOOKUP_RCU)
2330 rcu_read_lock();
c0eb027e 2331
bcba1e7d
AV
2332 nd->flags = flags;
2333 nd->state |= ND_JUMPED;
ab87f9a5
AS
2334
2335 nd->m_seq = __read_seqcount_begin(&mount_lock.seqcount);
2336 nd->r_seq = __read_seqcount_begin(&rename_lock.seqcount);
2337 smp_rmb();
2338
bcba1e7d 2339 if (nd->state & ND_ROOT_PRESET) {
b18825a7
DH
2340 struct dentry *root = nd->root.dentry;
2341 struct inode *inode = root->d_inode;
93893862
AV
2342 if (*s && unlikely(!d_can_lookup(root)))
2343 return ERR_PTR(-ENOTDIR);
5b6ca027
AV
2344 nd->path = nd->root;
2345 nd->inode = inode;
2346 if (flags & LOOKUP_RCU) {
ab87f9a5 2347 nd->seq = read_seqcount_begin(&nd->path.dentry->d_seq);
8f47a016 2348 nd->root_seq = nd->seq;
5b6ca027
AV
2349 } else {
2350 path_get(&nd->path);
2351 }
368ee9ba 2352 return s;
5b6ca027
AV
2353 }
2354
31e6b01f 2355 nd->root.mnt = NULL;
31e6b01f 2356
8db52c7e
AS
2357 /* Absolute pathname -- fetch the root (LOOKUP_IN_ROOT uses nd->dfd). */
2358 if (*s == '/' && !(flags & LOOKUP_IN_ROOT)) {
740a1678
AS
2359 error = nd_jump_root(nd);
2360 if (unlikely(error))
2361 return ERR_PTR(error);
2362 return s;
8db52c7e
AS
2363 }
2364
2365 /* Relative pathname -- get the starting-point it is relative to. */
2366 if (nd->dfd == AT_FDCWD) {
e41f7d4e
AV
2367 if (flags & LOOKUP_RCU) {
2368 struct fs_struct *fs = current->fs;
2369 unsigned seq;
31e6b01f 2370
e41f7d4e
AV
2371 do {
2372 seq = read_seqcount_begin(&fs->seq);
2373 nd->path = fs->pwd;
ef55d917 2374 nd->inode = nd->path.dentry->d_inode;
e41f7d4e
AV
2375 nd->seq = __read_seqcount_begin(&nd->path.dentry->d_seq);
2376 } while (read_seqcount_retry(&fs->seq, seq));
2377 } else {
2378 get_fs_pwd(current->fs, &nd->path);
ef55d917 2379 nd->inode = nd->path.dentry->d_inode;
e41f7d4e 2380 }
31e6b01f 2381 } else {
582aa64a 2382 /* Caller must check execute permissions on the starting path component */
c8a53ee5 2383 struct fd f = fdget_raw(nd->dfd);
31e6b01f
NP
2384 struct dentry *dentry;
2385
2903ff01 2386 if (!f.file)
368ee9ba 2387 return ERR_PTR(-EBADF);
31e6b01f 2388
2903ff01 2389 dentry = f.file->f_path.dentry;
31e6b01f 2390
edc2b1da
AV
2391 if (*s && unlikely(!d_can_lookup(dentry))) {
2392 fdput(f);
2393 return ERR_PTR(-ENOTDIR);
f52e0c11 2394 }
31e6b01f 2395
2903ff01 2396 nd->path = f.file->f_path;
e41f7d4e 2397 if (flags & LOOKUP_RCU) {
34a26b99
AV
2398 nd->inode = nd->path.dentry->d_inode;
2399 nd->seq = read_seqcount_begin(&nd->path.dentry->d_seq);
e41f7d4e 2400 } else {
2903ff01 2401 path_get(&nd->path);
34a26b99 2402 nd->inode = nd->path.dentry->d_inode;
e41f7d4e 2403 }
34a26b99 2404 fdput(f);
31e6b01f 2405 }
8db52c7e 2406
adb21d2b
AS
2407 /* For scoped-lookups we need to set the root to the dirfd as well. */
2408 if (flags & LOOKUP_IS_SCOPED) {
2409 nd->root = nd->path;
2410 if (flags & LOOKUP_RCU) {
2411 nd->root_seq = nd->seq;
2412 } else {
2413 path_get(&nd->root);
bcba1e7d 2414 nd->state |= ND_ROOT_GRABBED;
adb21d2b
AS
2415 }
2416 }
2417 return s;
9b4a9b14
AV
2418}
2419
1ccac622 2420static inline const char *lookup_last(struct nameidata *nd)
bd92d7fe
AV
2421{
2422 if (nd->last_type == LAST_NORM && nd->last.name[nd->last.len])
2423 nd->flags |= LOOKUP_FOLLOW | LOOKUP_DIRECTORY;
2424
c108837e 2425 return walk_component(nd, WALK_TRAILING);
bd92d7fe
AV
2426}
2427
4f757f3c
AV
2428static int handle_lookup_down(struct nameidata *nd)
2429{
c153007b 2430 if (!(nd->flags & LOOKUP_RCU))
db3c9ade 2431 dget(nd->path.dentry);
b0417d2c
AV
2432 return PTR_ERR(step_into(nd, WALK_NOFOLLOW,
2433 nd->path.dentry, nd->inode, nd->seq));
4f757f3c
AV
2434}
2435
9b4a9b14 2436/* Returns 0 and nd will be valid on success; Retuns error, otherwise. */
c8a53ee5 2437static int path_lookupat(struct nameidata *nd, unsigned flags, struct path *path)
9b4a9b14 2438{
c8a53ee5 2439 const char *s = path_init(nd, flags);
bd92d7fe 2440 int err;
31e6b01f 2441
9b5858e9 2442 if (unlikely(flags & LOOKUP_DOWN) && !IS_ERR(s)) {
4f757f3c 2443 err = handle_lookup_down(nd);
5f336e72
AV
2444 if (unlikely(err < 0))
2445 s = ERR_PTR(err);
4f757f3c
AV
2446 }
2447
1ccac622
AV
2448 while (!(err = link_path_walk(s, nd)) &&
2449 (s = lookup_last(nd)) != NULL)
2450 ;
4f0ed93f
AV
2451 if (!err && unlikely(nd->flags & LOOKUP_MOUNTPOINT)) {
2452 err = handle_lookup_down(nd);
bcba1e7d 2453 nd->state &= ~ND_JUMPED; // no d_weak_revalidate(), please...
4f0ed93f 2454 }
9f1fafee
AV
2455 if (!err)
2456 err = complete_walk(nd);
bd92d7fe 2457
deb106c6
AV
2458 if (!err && nd->flags & LOOKUP_DIRECTORY)
2459 if (!d_can_lookup(nd->path.dentry))
bd23a539 2460 err = -ENOTDIR;
625b6d10
AV
2461 if (!err) {
2462 *path = nd->path;
2463 nd->path.mnt = NULL;
2464 nd->path.dentry = NULL;
2465 }
2466 terminate_walk(nd);
bd92d7fe 2467 return err;
ee0827cd 2468}
31e6b01f 2469
020250f3 2470static int __filename_lookup(int dfd, struct filename *name, unsigned flags,
31d921c7 2471 struct path *path, struct path *root)
ee0827cd 2472{
894bc8c4 2473 int retval;
9883d185 2474 struct nameidata nd;
abc9f5be
AV
2475 if (IS_ERR(name))
2476 return PTR_ERR(name);
06422964 2477 set_nameidata(&nd, dfd, name, root);
c8a53ee5 2478 retval = path_lookupat(&nd, flags | LOOKUP_RCU, path);
ee0827cd 2479 if (unlikely(retval == -ECHILD))
c8a53ee5 2480 retval = path_lookupat(&nd, flags, path);
ee0827cd 2481 if (unlikely(retval == -ESTALE))
c8a53ee5 2482 retval = path_lookupat(&nd, flags | LOOKUP_REVAL, path);
31e6b01f 2483
f78570dd 2484 if (likely(!retval))
161aff1d
AV
2485 audit_inode(name, path->dentry,
2486 flags & LOOKUP_MOUNTPOINT ? AUDIT_INODE_NOEVAL : 0);
9883d185 2487 restore_nameidata();
020250f3
DK
2488 return retval;
2489}
2490
2491int filename_lookup(int dfd, struct filename *name, unsigned flags,
2492 struct path *path, struct path *root)
2493{
2494 int retval = __filename_lookup(dfd, name, flags, path, root);
2495
e4bd1c1a 2496 putname(name);
170aa3d0 2497 return retval;
1da177e4
LT
2498}
2499
8bcb77fa 2500/* Returns 0 and nd will be valid on success; Retuns error, otherwise. */
c8a53ee5 2501static int path_parentat(struct nameidata *nd, unsigned flags,
391172c4 2502 struct path *parent)
8bcb77fa 2503{
c8a53ee5 2504 const char *s = path_init(nd, flags);
9b5858e9 2505 int err = link_path_walk(s, nd);
8bcb77fa
AV
2506 if (!err)
2507 err = complete_walk(nd);
391172c4
AV
2508 if (!err) {
2509 *parent = nd->path;
2510 nd->path.mnt = NULL;
2511 nd->path.dentry = NULL;
2512 }
2513 terminate_walk(nd);
8bcb77fa
AV
2514 return err;
2515}
2516
0ee50b47 2517static int __filename_parentat(int dfd, struct filename *name,
391172c4
AV
2518 unsigned int flags, struct path *parent,
2519 struct qstr *last, int *type)
8bcb77fa
AV
2520{
2521 int retval;
9883d185 2522 struct nameidata nd;
8bcb77fa 2523
5c31b6ce 2524 if (IS_ERR(name))
0ee50b47 2525 return PTR_ERR(name);
06422964 2526 set_nameidata(&nd, dfd, name, NULL);
c8a53ee5 2527 retval = path_parentat(&nd, flags | LOOKUP_RCU, parent);
8bcb77fa 2528 if (unlikely(retval == -ECHILD))
c8a53ee5 2529 retval = path_parentat(&nd, flags, parent);
8bcb77fa 2530 if (unlikely(retval == -ESTALE))
c8a53ee5 2531 retval = path_parentat(&nd, flags | LOOKUP_REVAL, parent);
391172c4
AV
2532 if (likely(!retval)) {
2533 *last = nd.last;
2534 *type = nd.last_type;
c9b07eab 2535 audit_inode(name, parent->dentry, AUDIT_INODE_PARENT);
391172c4 2536 }
9883d185 2537 restore_nameidata();
0ee50b47
DK
2538 return retval;
2539}
2540
2541static int filename_parentat(int dfd, struct filename *name,
2542 unsigned int flags, struct path *parent,
2543 struct qstr *last, int *type)
2544{
2545 int retval = __filename_parentat(dfd, name, flags, parent, last, type);
2546
2547 putname(name);
2548 return retval;
8bcb77fa
AV
2549}
2550
79714f72
AV
2551/* does lookup, returns the object with parent locked */
2552struct dentry *kern_path_locked(const char *name, struct path *path)
5590ff0d 2553{
5c31b6ce 2554 struct dentry *d;
391172c4 2555 struct qstr last;
0ee50b47 2556 int type, error;
51689104 2557
0ee50b47 2558 error = filename_parentat(AT_FDCWD, getname_kernel(name), 0, path,
5c31b6ce 2559 &last, &type);
0ee50b47
DK
2560 if (error)
2561 return ERR_PTR(error);
5c31b6ce 2562 if (unlikely(type != LAST_NORM)) {
391172c4 2563 path_put(path);
5c31b6ce 2564 return ERR_PTR(-EINVAL);
79714f72 2565 }
5955102c 2566 inode_lock_nested(path->dentry->d_inode, I_MUTEX_PARENT);
391172c4 2567 d = __lookup_hash(&last, path->dentry, 0);
79714f72 2568 if (IS_ERR(d)) {
5955102c 2569 inode_unlock(path->dentry->d_inode);
391172c4 2570 path_put(path);
79714f72 2571 }
79714f72 2572 return d;
5590ff0d
UD
2573}
2574
d1811465
AV
2575int kern_path(const char *name, unsigned int flags, struct path *path)
2576{
abc9f5be
AV
2577 return filename_lookup(AT_FDCWD, getname_kernel(name),
2578 flags, path, NULL);
d1811465 2579}
4d359507 2580EXPORT_SYMBOL(kern_path);
d1811465 2581
16f18200
JJS
2582/**
2583 * vfs_path_lookup - lookup a file path relative to a dentry-vfsmount pair
2584 * @dentry: pointer to dentry of the base directory
2585 * @mnt: pointer to vfs mount of the base directory
2586 * @name: pointer to file name
2587 * @flags: lookup flags
e0a01249 2588 * @path: pointer to struct path to fill
16f18200
JJS
2589 */
2590int vfs_path_lookup(struct dentry *dentry, struct vfsmount *mnt,
2591 const char *name, unsigned int flags,
e0a01249 2592 struct path *path)
16f18200 2593{
9ad1aaa6 2594 struct path root = {.mnt = mnt, .dentry = dentry};
9ad1aaa6 2595 /* the first argument of filename_lookup() is ignored with root */
abc9f5be
AV
2596 return filename_lookup(AT_FDCWD, getname_kernel(name),
2597 flags , path, &root);
16f18200 2598}
4d359507 2599EXPORT_SYMBOL(vfs_path_lookup);
16f18200 2600
3c95f0dc
AV
2601static int lookup_one_len_common(const char *name, struct dentry *base,
2602 int len, struct qstr *this)
057f6c01 2603{
3c95f0dc
AV
2604 this->name = name;
2605 this->len = len;
2606 this->hash = full_name_hash(base, name, len);
6a96ba54 2607 if (!len)
3c95f0dc 2608 return -EACCES;
6a96ba54 2609
21d8a15a
AV
2610 if (unlikely(name[0] == '.')) {
2611 if (len < 2 || (len == 2 && name[1] == '.'))
3c95f0dc 2612 return -EACCES;
21d8a15a
AV
2613 }
2614
6a96ba54 2615 while (len--) {
3c95f0dc 2616 unsigned int c = *(const unsigned char *)name++;
6a96ba54 2617 if (c == '/' || c == '\0')
3c95f0dc 2618 return -EACCES;
6a96ba54 2619 }
5a202bcd
AV
2620 /*
2621 * See if the low-level filesystem might want
2622 * to use its own hash..
2623 */
2624 if (base->d_flags & DCACHE_OP_HASH) {
3c95f0dc 2625 int err = base->d_op->d_hash(base, this);
5a202bcd 2626 if (err < 0)
3c95f0dc 2627 return err;
5a202bcd 2628 }
eead1911 2629
47291baa 2630 return inode_permission(&init_user_ns, base->d_inode, MAY_EXEC);
3c95f0dc
AV
2631}
2632
0da0b7fd
DH
2633/**
2634 * try_lookup_one_len - filesystem helper to lookup single pathname component
2635 * @name: pathname component to lookup
2636 * @base: base directory to lookup from
2637 * @len: maximum length @len should be interpreted to
2638 *
2639 * Look up a dentry by name in the dcache, returning NULL if it does not
2640 * currently exist. The function does not try to create a dentry.
2641 *
2642 * Note that this routine is purely a helper for filesystem usage and should
2643 * not be called by generic code.
2644 *
2645 * The caller must hold base->i_mutex.
2646 */
2647struct dentry *try_lookup_one_len(const char *name, struct dentry *base, int len)
2648{
2649 struct qstr this;
2650 int err;
2651
2652 WARN_ON_ONCE(!inode_is_locked(base->d_inode));
2653
2654 err = lookup_one_len_common(name, base, len, &this);
2655 if (err)
2656 return ERR_PTR(err);
2657
2658 return lookup_dcache(&this, base, 0);
2659}
2660EXPORT_SYMBOL(try_lookup_one_len);
2661
3c95f0dc
AV
2662/**
2663 * lookup_one_len - filesystem helper to lookup single pathname component
2664 * @name: pathname component to lookup
2665 * @base: base directory to lookup from
2666 * @len: maximum length @len should be interpreted to
2667 *
2668 * Note that this routine is purely a helper for filesystem usage and should
2669 * not be called by generic code.
2670 *
2671 * The caller must hold base->i_mutex.
2672 */
2673struct dentry *lookup_one_len(const char *name, struct dentry *base, int len)
2674{
8613a209 2675 struct dentry *dentry;
3c95f0dc
AV
2676 struct qstr this;
2677 int err;
2678
2679 WARN_ON_ONCE(!inode_is_locked(base->d_inode));
2680
2681 err = lookup_one_len_common(name, base, len, &this);
cda309de
MS
2682 if (err)
2683 return ERR_PTR(err);
2684
8613a209
AV
2685 dentry = lookup_dcache(&this, base, 0);
2686 return dentry ? dentry : __lookup_slow(&this, base, 0);
057f6c01 2687}
4d359507 2688EXPORT_SYMBOL(lookup_one_len);
057f6c01 2689
bbddca8e
N
2690/**
2691 * lookup_one_len_unlocked - filesystem helper to lookup single pathname component
2692 * @name: pathname component to lookup
2693 * @base: base directory to lookup from
2694 * @len: maximum length @len should be interpreted to
2695 *
2696 * Note that this routine is purely a helper for filesystem usage and should
2697 * not be called by generic code.
2698 *
2699 * Unlike lookup_one_len, it should be called without the parent
2700 * i_mutex held, and will take the i_mutex itself if necessary.
2701 */
2702struct dentry *lookup_one_len_unlocked(const char *name,
2703 struct dentry *base, int len)
2704{
2705 struct qstr this;
bbddca8e 2706 int err;
20d00ee8 2707 struct dentry *ret;
bbddca8e 2708
3c95f0dc 2709 err = lookup_one_len_common(name, base, len, &this);
bbddca8e
N
2710 if (err)
2711 return ERR_PTR(err);
2712
20d00ee8
LT
2713 ret = lookup_dcache(&this, base, 0);
2714 if (!ret)
2715 ret = lookup_slow(&this, base, 0);
2716 return ret;
bbddca8e
N
2717}
2718EXPORT_SYMBOL(lookup_one_len_unlocked);
2719
6c2d4798
AV
2720/*
2721 * Like lookup_one_len_unlocked(), except that it yields ERR_PTR(-ENOENT)
2722 * on negatives. Returns known positive or ERR_PTR(); that's what
2723 * most of the users want. Note that pinned negative with unlocked parent
2724 * _can_ become positive at any time, so callers of lookup_one_len_unlocked()
2725 * need to be very careful; pinned positives have ->d_inode stable, so
2726 * this one avoids such problems.
2727 */
2728struct dentry *lookup_positive_unlocked(const char *name,
2729 struct dentry *base, int len)
2730{
2731 struct dentry *ret = lookup_one_len_unlocked(name, base, len);
2fa6b1e0 2732 if (!IS_ERR(ret) && d_flags_negative(smp_load_acquire(&ret->d_flags))) {
6c2d4798
AV
2733 dput(ret);
2734 ret = ERR_PTR(-ENOENT);
2735 }
2736 return ret;
2737}
2738EXPORT_SYMBOL(lookup_positive_unlocked);
2739
eedf265a
EB
2740#ifdef CONFIG_UNIX98_PTYS
2741int path_pts(struct path *path)
2742{
2743 /* Find something mounted on "pts" in the same directory as
2744 * the input path.
2745 */
a6a7eb76
AV
2746 struct dentry *parent = dget_parent(path->dentry);
2747 struct dentry *child;
19f6028a 2748 struct qstr this = QSTR_INIT("pts", 3);
eedf265a 2749
a6a7eb76
AV
2750 if (unlikely(!path_connected(path->mnt, parent))) {
2751 dput(parent);
63b27720 2752 return -ENOENT;
a6a7eb76 2753 }
63b27720
AV
2754 dput(path->dentry);
2755 path->dentry = parent;
eedf265a
EB
2756 child = d_hash_and_lookup(parent, &this);
2757 if (!child)
2758 return -ENOENT;
2759
2760 path->dentry = child;
2761 dput(parent);
19f6028a 2762 follow_down(path);
eedf265a
EB
2763 return 0;
2764}
2765#endif
2766
1fa1e7f6
AW
2767int user_path_at_empty(int dfd, const char __user *name, unsigned flags,
2768 struct path *path, int *empty)
1da177e4 2769{
abc9f5be
AV
2770 return filename_lookup(dfd, getname_flags(name, flags, empty),
2771 flags, path, NULL);
1da177e4 2772}
b853a161 2773EXPORT_SYMBOL(user_path_at_empty);
1fa1e7f6 2774
ba73d987
CB
2775int __check_sticky(struct user_namespace *mnt_userns, struct inode *dir,
2776 struct inode *inode)
1da177e4 2777{
8e96e3b7 2778 kuid_t fsuid = current_fsuid();
da9592ed 2779
ba73d987 2780 if (uid_eq(i_uid_into_mnt(mnt_userns, inode), fsuid))
1da177e4 2781 return 0;
ba73d987 2782 if (uid_eq(i_uid_into_mnt(mnt_userns, dir), fsuid))
1da177e4 2783 return 0;
ba73d987 2784 return !capable_wrt_inode_uidgid(mnt_userns, inode, CAP_FOWNER);
1da177e4 2785}
cbdf35bc 2786EXPORT_SYMBOL(__check_sticky);
1da177e4
LT
2787
2788/*
2789 * Check whether we can remove a link victim from directory dir, check
2790 * whether the type of victim is right.
2791 * 1. We can't do it if dir is read-only (done in permission())
2792 * 2. We should have write and exec permissions on dir
2793 * 3. We can't remove anything from append-only dir
2794 * 4. We can't do anything with immutable dir (done in permission())
2795 * 5. If the sticky bit on dir is set we should either
2796 * a. be owner of dir, or
2797 * b. be owner of victim, or
2798 * c. have CAP_FOWNER capability
2799 * 6. If the victim is append-only or immutable we can't do antyhing with
2800 * links pointing to it.
0bd23d09
EB
2801 * 7. If the victim has an unknown uid or gid we can't change the inode.
2802 * 8. If we were asked to remove a directory and victim isn't one - ENOTDIR.
2803 * 9. If we were asked to remove a non-directory and victim isn't one - EISDIR.
2804 * 10. We can't remove a root or mountpoint.
2805 * 11. We don't allow removal of NFS sillyrenamed files; it's handled by
1da177e4
LT
2806 * nfs_async_unlink().
2807 */
ba73d987
CB
2808static int may_delete(struct user_namespace *mnt_userns, struct inode *dir,
2809 struct dentry *victim, bool isdir)
1da177e4 2810{
63afdfc7 2811 struct inode *inode = d_backing_inode(victim);
1da177e4
LT
2812 int error;
2813
b18825a7 2814 if (d_is_negative(victim))
1da177e4 2815 return -ENOENT;
b18825a7 2816 BUG_ON(!inode);
1da177e4
LT
2817
2818 BUG_ON(victim->d_parent->d_inode != dir);
593d1ce8
EB
2819
2820 /* Inode writeback is not safe when the uid or gid are invalid. */
ba73d987
CB
2821 if (!uid_valid(i_uid_into_mnt(mnt_userns, inode)) ||
2822 !gid_valid(i_gid_into_mnt(mnt_userns, inode)))
593d1ce8
EB
2823 return -EOVERFLOW;
2824
4fa6b5ec 2825 audit_inode_child(dir, victim, AUDIT_TYPE_CHILD_DELETE);
1da177e4 2826
ba73d987 2827 error = inode_permission(mnt_userns, dir, MAY_WRITE | MAY_EXEC);
1da177e4
LT
2828 if (error)
2829 return error;
2830 if (IS_APPEND(dir))
2831 return -EPERM;
b18825a7 2832
ba73d987
CB
2833 if (check_sticky(mnt_userns, dir, inode) || IS_APPEND(inode) ||
2834 IS_IMMUTABLE(inode) || IS_SWAPFILE(inode) ||
2835 HAS_UNMAPPED_ID(mnt_userns, inode))
1da177e4
LT
2836 return -EPERM;
2837 if (isdir) {
44b1d530 2838 if (!d_is_dir(victim))
1da177e4
LT
2839 return -ENOTDIR;
2840 if (IS_ROOT(victim))
2841 return -EBUSY;
44b1d530 2842 } else if (d_is_dir(victim))
1da177e4
LT
2843 return -EISDIR;
2844 if (IS_DEADDIR(dir))
2845 return -ENOENT;
2846 if (victim->d_flags & DCACHE_NFSFS_RENAMED)
2847 return -EBUSY;
2848 return 0;
2849}
2850
2851/* Check whether we can create an object with dentry child in directory
2852 * dir.
2853 * 1. We can't do it if child already exists (open has special treatment for
2854 * this case, but since we are inlined it's OK)
2855 * 2. We can't do it if dir is read-only (done in permission())
036d5236
EB
2856 * 3. We can't do it if the fs can't represent the fsuid or fsgid.
2857 * 4. We should have write and exec permissions on dir
2858 * 5. We can't do it if dir is immutable (done in permission())
1da177e4 2859 */
ba73d987
CB
2860static inline int may_create(struct user_namespace *mnt_userns,
2861 struct inode *dir, struct dentry *child)
1da177e4 2862{
14e972b4 2863 audit_inode_child(dir, child, AUDIT_TYPE_CHILD_CREATE);
1da177e4
LT
2864 if (child->d_inode)
2865 return -EEXIST;
2866 if (IS_DEADDIR(dir))
2867 return -ENOENT;
8e538913 2868 if (!fsuidgid_has_mapping(dir->i_sb, mnt_userns))
036d5236 2869 return -EOVERFLOW;
8e538913 2870
ba73d987 2871 return inode_permission(mnt_userns, dir, MAY_WRITE | MAY_EXEC);
1da177e4
LT
2872}
2873
1da177e4
LT
2874/*
2875 * p1 and p2 should be directories on the same fs.
2876 */
2877struct dentry *lock_rename(struct dentry *p1, struct dentry *p2)
2878{
2879 struct dentry *p;
2880
2881 if (p1 == p2) {
5955102c 2882 inode_lock_nested(p1->d_inode, I_MUTEX_PARENT);
1da177e4
LT
2883 return NULL;
2884 }
2885
fc64005c 2886 mutex_lock(&p1->d_sb->s_vfs_rename_mutex);
1da177e4 2887
e2761a11
OH
2888 p = d_ancestor(p2, p1);
2889 if (p) {
5955102c
AV
2890 inode_lock_nested(p2->d_inode, I_MUTEX_PARENT);
2891 inode_lock_nested(p1->d_inode, I_MUTEX_CHILD);
e2761a11 2892 return p;
1da177e4
LT
2893 }
2894
e2761a11
OH
2895 p = d_ancestor(p1, p2);
2896 if (p) {
5955102c
AV
2897 inode_lock_nested(p1->d_inode, I_MUTEX_PARENT);
2898 inode_lock_nested(p2->d_inode, I_MUTEX_CHILD);
e2761a11 2899 return p;
1da177e4
LT
2900 }
2901
5955102c
AV
2902 inode_lock_nested(p1->d_inode, I_MUTEX_PARENT);
2903 inode_lock_nested(p2->d_inode, I_MUTEX_PARENT2);
1da177e4
LT
2904 return NULL;
2905}
4d359507 2906EXPORT_SYMBOL(lock_rename);
1da177e4
LT
2907
2908void unlock_rename(struct dentry *p1, struct dentry *p2)
2909{
5955102c 2910 inode_unlock(p1->d_inode);
1da177e4 2911 if (p1 != p2) {
5955102c 2912 inode_unlock(p2->d_inode);
fc64005c 2913 mutex_unlock(&p1->d_sb->s_vfs_rename_mutex);
1da177e4
LT
2914 }
2915}
4d359507 2916EXPORT_SYMBOL(unlock_rename);
1da177e4 2917
6521f891
CB
2918/**
2919 * vfs_create - create new file
2920 * @mnt_userns: user namespace of the mount the inode was found from
2921 * @dir: inode of @dentry
2922 * @dentry: pointer to dentry of the base directory
2923 * @mode: mode of the new file
2924 * @want_excl: whether the file must not yet exist
2925 *
2926 * Create a new file.
2927 *
2928 * If the inode has been found through an idmapped mount the user namespace of
2929 * the vfsmount must be passed through @mnt_userns. This function will then take
2930 * care to map the inode according to @mnt_userns before checking permissions.
2931 * On non-idmapped mounts or if permission checking is to be performed on the
2932 * raw inode simply passs init_user_ns.
2933 */
2934int vfs_create(struct user_namespace *mnt_userns, struct inode *dir,
2935 struct dentry *dentry, umode_t mode, bool want_excl)
1da177e4 2936{
6521f891 2937 int error = may_create(mnt_userns, dir, dentry);
1da177e4
LT
2938 if (error)
2939 return error;
2940
acfa4380 2941 if (!dir->i_op->create)
1da177e4
LT
2942 return -EACCES; /* shouldn't it be ENOSYS? */
2943 mode &= S_IALLUGO;
2944 mode |= S_IFREG;
2945 error = security_inode_create(dir, dentry, mode);
2946 if (error)
2947 return error;
549c7297 2948 error = dir->i_op->create(mnt_userns, dir, dentry, mode, want_excl);
a74574aa 2949 if (!error)
f38aa942 2950 fsnotify_create(dir, dentry);
1da177e4
LT
2951 return error;
2952}
4d359507 2953EXPORT_SYMBOL(vfs_create);
1da177e4 2954
8e6c848e
AV
2955int vfs_mkobj(struct dentry *dentry, umode_t mode,
2956 int (*f)(struct dentry *, umode_t, void *),
2957 void *arg)
2958{
2959 struct inode *dir = dentry->d_parent->d_inode;
ba73d987 2960 int error = may_create(&init_user_ns, dir, dentry);
8e6c848e
AV
2961 if (error)
2962 return error;
2963
2964 mode &= S_IALLUGO;
2965 mode |= S_IFREG;
2966 error = security_inode_create(dir, dentry, mode);
2967 if (error)
2968 return error;
2969 error = f(dentry, mode, arg);
2970 if (!error)
2971 fsnotify_create(dir, dentry);
2972 return error;
2973}
2974EXPORT_SYMBOL(vfs_mkobj);
2975
a2982cc9
EB
2976bool may_open_dev(const struct path *path)
2977{
2978 return !(path->mnt->mnt_flags & MNT_NODEV) &&
2979 !(path->mnt->mnt_sb->s_iflags & SB_I_NODEV);
2980}
2981
ba73d987
CB
2982static int may_open(struct user_namespace *mnt_userns, const struct path *path,
2983 int acc_mode, int flag)
1da177e4 2984{
3fb64190 2985 struct dentry *dentry = path->dentry;
1da177e4
LT
2986 struct inode *inode = dentry->d_inode;
2987 int error;
2988
2989 if (!inode)
2990 return -ENOENT;
2991
c8fe8f30
CH
2992 switch (inode->i_mode & S_IFMT) {
2993 case S_IFLNK:
1da177e4 2994 return -ELOOP;
c8fe8f30 2995 case S_IFDIR:
fc4177be 2996 if (acc_mode & MAY_WRITE)
c8fe8f30 2997 return -EISDIR;
fc4177be
KC
2998 if (acc_mode & MAY_EXEC)
2999 return -EACCES;
c8fe8f30
CH
3000 break;
3001 case S_IFBLK:
3002 case S_IFCHR:
a2982cc9 3003 if (!may_open_dev(path))
1da177e4 3004 return -EACCES;
633fb6ac 3005 fallthrough;
c8fe8f30
CH
3006 case S_IFIFO:
3007 case S_IFSOCK:
633fb6ac
KC
3008 if (acc_mode & MAY_EXEC)
3009 return -EACCES;
1da177e4 3010 flag &= ~O_TRUNC;
c8fe8f30 3011 break;
0fd338b2
KC
3012 case S_IFREG:
3013 if ((acc_mode & MAY_EXEC) && path_noexec(path))
3014 return -EACCES;
3015 break;
4a3fd211 3016 }
b41572e9 3017
ba73d987 3018 error = inode_permission(mnt_userns, inode, MAY_OPEN | acc_mode);
b41572e9
DH
3019 if (error)
3020 return error;
6146f0d5 3021
1da177e4
LT
3022 /*
3023 * An append-only file must be opened in append mode for writing.
3024 */
3025 if (IS_APPEND(inode)) {
8737c930 3026 if ((flag & O_ACCMODE) != O_RDONLY && !(flag & O_APPEND))
7715b521 3027 return -EPERM;
1da177e4 3028 if (flag & O_TRUNC)
7715b521 3029 return -EPERM;
1da177e4
LT
3030 }
3031
3032 /* O_NOATIME can only be set by the owner or superuser */
ba73d987 3033 if (flag & O_NOATIME && !inode_owner_or_capable(mnt_userns, inode))
7715b521 3034 return -EPERM;
1da177e4 3035
f3c7691e 3036 return 0;
7715b521 3037}
1da177e4 3038
549c7297 3039static int handle_truncate(struct user_namespace *mnt_userns, struct file *filp)
7715b521 3040{
f0bb5aaf 3041 const struct path *path = &filp->f_path;
7715b521
AV
3042 struct inode *inode = path->dentry->d_inode;
3043 int error = get_write_access(inode);
3044 if (error)
3045 return error;
3046 /*
3047 * Refuse to truncate files with mandatory locks held on them.
3048 */
d7a06983 3049 error = locks_verify_locked(filp);
7715b521 3050 if (!error)
ea0d3ab2 3051 error = security_path_truncate(path);
7715b521 3052 if (!error) {
549c7297 3053 error = do_truncate(mnt_userns, path->dentry, 0,
7715b521 3054 ATTR_MTIME|ATTR_CTIME|ATTR_OPEN,
e1181ee6 3055 filp);
7715b521
AV
3056 }
3057 put_write_access(inode);
acd0c935 3058 return error;
1da177e4
LT
3059}
3060
d57999e1
DH
3061static inline int open_to_namei_flags(int flag)
3062{
8a5e929d
AV
3063 if ((flag & O_ACCMODE) == 3)
3064 flag--;
d57999e1
DH
3065 return flag;
3066}
3067
ba73d987
CB
3068static int may_o_create(struct user_namespace *mnt_userns,
3069 const struct path *dir, struct dentry *dentry,
3070 umode_t mode)
d18e9008
MS
3071{
3072 int error = security_path_mknod(dir, dentry, mode, 0);
3073 if (error)
3074 return error;
3075
8e538913 3076 if (!fsuidgid_has_mapping(dir->dentry->d_sb, mnt_userns))
1328c727
SF
3077 return -EOVERFLOW;
3078
ba73d987 3079 error = inode_permission(mnt_userns, dir->dentry->d_inode,
47291baa 3080 MAY_WRITE | MAY_EXEC);
d18e9008
MS
3081 if (error)
3082 return error;
3083
3084 return security_inode_create(dir->dentry->d_inode, dentry, mode);
3085}
3086
1acf0af9
DH
3087/*
3088 * Attempt to atomically look up, create and open a file from a negative
3089 * dentry.
3090 *
3091 * Returns 0 if successful. The file will have been created and attached to
3092 * @file by the filesystem calling finish_open().
3093 *
00a07c15
AV
3094 * If the file was looked up only or didn't need creating, FMODE_OPENED won't
3095 * be set. The caller will need to perform the open themselves. @path will
3096 * have been updated to point to the new dentry. This may be negative.
1acf0af9
DH
3097 *
3098 * Returns an error code otherwise.
3099 */
239eb983
AV
3100static struct dentry *atomic_open(struct nameidata *nd, struct dentry *dentry,
3101 struct file *file,
239eb983 3102 int open_flag, umode_t mode)
d18e9008 3103{
384f26e2 3104 struct dentry *const DENTRY_NOT_SET = (void *) -1UL;
d18e9008 3105 struct inode *dir = nd->path.dentry->d_inode;
d18e9008 3106 int error;
d18e9008 3107
d18e9008
MS
3108 if (nd->flags & LOOKUP_DIRECTORY)
3109 open_flag |= O_DIRECTORY;
3110
30d90494
AV
3111 file->f_path.dentry = DENTRY_NOT_SET;
3112 file->f_path.mnt = nd->path.mnt;
0fb1ea09 3113 error = dir->i_op->atomic_open(dir, dentry, file,
44907d79 3114 open_to_namei_flags(open_flag), mode);
6fbd0714 3115 d_lookup_done(dentry);
384f26e2 3116 if (!error) {
64e1ac4d 3117 if (file->f_mode & FMODE_OPENED) {
6fb968cd
AV
3118 if (unlikely(dentry != file->f_path.dentry)) {
3119 dput(dentry);
3120 dentry = dget(file->f_path.dentry);
3121 }
64e1ac4d 3122 } else if (WARN_ON(file->f_path.dentry == DENTRY_NOT_SET)) {
2675a4eb 3123 error = -EIO;
03da633a 3124 } else {
384f26e2
AV
3125 if (file->f_path.dentry) {
3126 dput(dentry);
3127 dentry = file->f_path.dentry;
03da633a 3128 }
239eb983 3129 if (unlikely(d_is_negative(dentry)))
a01e718f 3130 error = -ENOENT;
62b2ce96 3131 }
d18e9008 3132 }
239eb983
AV
3133 if (error) {
3134 dput(dentry);
3135 dentry = ERR_PTR(error);
3136 }
3137 return dentry;
d18e9008
MS
3138}
3139
d58ffd35 3140/*
1acf0af9 3141 * Look up and maybe create and open the last component.
d58ffd35 3142 *
00a07c15 3143 * Must be called with parent locked (exclusive in O_CREAT case).
1acf0af9 3144 *
00a07c15
AV
3145 * Returns 0 on success, that is, if
3146 * the file was successfully atomically created (if necessary) and opened, or
3147 * the file was not completely opened at this time, though lookups and
3148 * creations were performed.
3149 * These case are distinguished by presence of FMODE_OPENED on file->f_mode.
3150 * In the latter case dentry returned in @path might be negative if O_CREAT
3151 * hadn't been specified.
1acf0af9 3152 *
00a07c15 3153 * An error code is returned on failure.
d58ffd35 3154 */
da5ebf5a
AV
3155static struct dentry *lookup_open(struct nameidata *nd, struct file *file,
3156 const struct open_flags *op,
3157 bool got_write)
d58ffd35 3158{
549c7297 3159 struct user_namespace *mnt_userns;
d58ffd35 3160 struct dentry *dir = nd->path.dentry;
54ef4872 3161 struct inode *dir_inode = dir->d_inode;
1643b43f 3162 int open_flag = op->open_flag;
d58ffd35 3163 struct dentry *dentry;
1643b43f 3164 int error, create_error = 0;
1643b43f 3165 umode_t mode = op->mode;
6fbd0714 3166 DECLARE_WAIT_QUEUE_HEAD_ONSTACK(wq);
d58ffd35 3167
ce8644fc 3168 if (unlikely(IS_DEADDIR(dir_inode)))
da5ebf5a 3169 return ERR_PTR(-ENOENT);
d58ffd35 3170
73a09dd9 3171 file->f_mode &= ~FMODE_CREATED;
6fbd0714
AV
3172 dentry = d_lookup(dir, &nd->last);
3173 for (;;) {
3174 if (!dentry) {
3175 dentry = d_alloc_parallel(dir, &nd->last, &wq);
3176 if (IS_ERR(dentry))
da5ebf5a 3177 return dentry;
6fbd0714
AV
3178 }
3179 if (d_in_lookup(dentry))
3180 break;
d58ffd35 3181
6fbd0714
AV
3182 error = d_revalidate(dentry, nd->flags);
3183 if (likely(error > 0))
3184 break;
3185 if (error)
3186 goto out_dput;
3187 d_invalidate(dentry);
3188 dput(dentry);
3189 dentry = NULL;
3190 }
3191 if (dentry->d_inode) {
6c51e513 3192 /* Cached positive dentry: will open in f_op->open */
da5ebf5a 3193 return dentry;
6c51e513 3194 }
d18e9008 3195
1643b43f
AV
3196 /*
3197 * Checking write permission is tricky, bacuse we don't know if we are
3198 * going to actually need it: O_CREAT opens should work as long as the
3199 * file exists. But checking existence breaks atomicity. The trick is
3200 * to check access and if not granted clear O_CREAT from the flags.
3201 *
3202 * Another problem is returing the "right" error value (e.g. for an
3203 * O_EXCL open we want to return EEXIST not EROFS).
3204 */
99a4a90c
AV
3205 if (unlikely(!got_write))
3206 open_flag &= ~O_TRUNC;
549c7297 3207 mnt_userns = mnt_user_ns(nd->path.mnt);
1643b43f 3208 if (open_flag & O_CREAT) {
99a4a90c
AV
3209 if (open_flag & O_EXCL)
3210 open_flag &= ~O_TRUNC;
1643b43f
AV
3211 if (!IS_POSIXACL(dir->d_inode))
3212 mode &= ~current_umask();
99a4a90c 3213 if (likely(got_write))
549c7297 3214 create_error = may_o_create(mnt_userns, &nd->path,
ba73d987 3215 dentry, mode);
99a4a90c
AV
3216 else
3217 create_error = -EROFS;
d18e9008 3218 }
99a4a90c
AV
3219 if (create_error)
3220 open_flag &= ~O_CREAT;
6ac08709 3221 if (dir_inode->i_op->atomic_open) {
d489cf9a 3222 dentry = atomic_open(nd, dentry, file, open_flag, mode);
da5ebf5a
AV
3223 if (unlikely(create_error) && dentry == ERR_PTR(-ENOENT))
3224 dentry = ERR_PTR(create_error);
3225 return dentry;
d18e9008 3226 }
54ef4872 3227
6fbd0714 3228 if (d_in_lookup(dentry)) {
12fa5e24
AV
3229 struct dentry *res = dir_inode->i_op->lookup(dir_inode, dentry,
3230 nd->flags);
6fbd0714 3231 d_lookup_done(dentry);
12fa5e24
AV
3232 if (unlikely(res)) {
3233 if (IS_ERR(res)) {
3234 error = PTR_ERR(res);
3235 goto out_dput;
3236 }
3237 dput(dentry);
3238 dentry = res;
3239 }
54ef4872
MS
3240 }
3241
d58ffd35 3242 /* Negative dentry, just create the file */
1643b43f 3243 if (!dentry->d_inode && (open_flag & O_CREAT)) {
73a09dd9 3244 file->f_mode |= FMODE_CREATED;
ce8644fc 3245 audit_inode_child(dir_inode, dentry, AUDIT_TYPE_CHILD_CREATE);
ce8644fc
AV
3246 if (!dir_inode->i_op->create) {
3247 error = -EACCES;
d58ffd35 3248 goto out_dput;
ce8644fc 3249 }
549c7297
CB
3250
3251 error = dir_inode->i_op->create(mnt_userns, dir_inode, dentry,
3252 mode, open_flag & O_EXCL);
d58ffd35
MS
3253 if (error)
3254 goto out_dput;
3255 }
1643b43f
AV
3256 if (unlikely(create_error) && !dentry->d_inode) {
3257 error = create_error;
3258 goto out_dput;
d58ffd35 3259 }
da5ebf5a 3260 return dentry;
d58ffd35
MS
3261
3262out_dput:
3263 dput(dentry);
da5ebf5a 3264 return ERR_PTR(error);
d58ffd35
MS
3265}
3266
c981a482 3267static const char *open_last_lookups(struct nameidata *nd,
3ec2eef1 3268 struct file *file, const struct open_flags *op)
fb1cc555 3269{
a1e28038 3270 struct dentry *dir = nd->path.dentry;
ca344a89 3271 int open_flag = op->open_flag;
64894cf8 3272 bool got_write = false;
254cf582 3273 unsigned seq;
a1eb3315 3274 struct inode *inode;
da5ebf5a 3275 struct dentry *dentry;
b0417d2c 3276 const char *res;
1f36f774 3277
c3e380b0
AV
3278 nd->flags |= op->intent;
3279
bc77daa7 3280 if (nd->last_type != LAST_NORM) {
56676ec3
AV
3281 if (nd->depth)
3282 put_link(nd);
ff326a32 3283 return handle_dots(nd, nd->last_type);
1f36f774 3284 }
67ee3ad2 3285
ca344a89 3286 if (!(open_flag & O_CREAT)) {
fe2d35ff
AV
3287 if (nd->last.name[nd->last.len])
3288 nd->flags |= LOOKUP_FOLLOW | LOOKUP_DIRECTORY;
3289 /* we _can_ be in RCU mode here */
20e34357
AV
3290 dentry = lookup_fast(nd, &inode, &seq);
3291 if (IS_ERR(dentry))
1ccac622 3292 return ERR_CAST(dentry);
20e34357 3293 if (likely(dentry))
71574865
MS
3294 goto finish_lookup;
3295
6583fe22 3296 BUG_ON(nd->flags & LOOKUP_RCU);
b6183df7
MS
3297 } else {
3298 /* create side of things */
72287417 3299 if (nd->flags & LOOKUP_RCU) {
e36cffed
JA
3300 if (!try_to_unlazy(nd))
3301 return ERR_PTR(-ECHILD);
72287417 3302 }
c9b07eab 3303 audit_inode(nd->name, dir, AUDIT_INODE_PARENT);
b6183df7 3304 /* trailing slashes? */
deb106c6 3305 if (unlikely(nd->last.name[nd->last.len]))
1ccac622 3306 return ERR_PTR(-EISDIR);
b6183df7 3307 }
a2c36b45 3308
9cf843e3 3309 if (open_flag & (O_CREAT | O_TRUNC | O_WRONLY | O_RDWR)) {
e36cffed 3310 got_write = !mnt_want_write(nd->path.mnt);
64894cf8
AV
3311 /*
3312 * do _not_ fail yet - we might not need that or fail with
3313 * a different error; let lookup_open() decide; we'll be
3314 * dropping this one anyway.
3315 */
3316 }
9cf843e3
AV
3317 if (open_flag & O_CREAT)
3318 inode_lock(dir->d_inode);
3319 else
3320 inode_lock_shared(dir->d_inode);
da5ebf5a 3321 dentry = lookup_open(nd, file, op, got_write);
f7bb959d
AV
3322 if (!IS_ERR(dentry) && (file->f_mode & FMODE_CREATED))
3323 fsnotify_create(dir->d_inode, dentry);
9cf843e3
AV
3324 if (open_flag & O_CREAT)
3325 inode_unlock(dir->d_inode);
3326 else
3327 inode_unlock_shared(dir->d_inode);
a1e28038 3328
c981a482 3329 if (got_write)
59e96e65 3330 mnt_drop_write(nd->path.mnt);
d18e9008 3331
59e96e65
AV
3332 if (IS_ERR(dentry))
3333 return ERR_CAST(dentry);
3334
973d4b73 3335 if (file->f_mode & (FMODE_OPENED | FMODE_CREATED)) {
e73cabff
AV
3336 dput(nd->path.dentry);
3337 nd->path.dentry = dentry;
c981a482 3338 return NULL;
fb1cc555
AV
3339 }
3340
20e34357 3341finish_lookup:
56676ec3
AV
3342 if (nd->depth)
3343 put_link(nd);
8c4efe22 3344 res = step_into(nd, WALK_TRAILING, dentry, inode, seq);
ff326a32 3345 if (unlikely(res))
b0417d2c 3346 nd->flags &= ~(LOOKUP_OPEN|LOOKUP_CREATE|LOOKUP_EXCL);
ff326a32 3347 return res;
c981a482
AV
3348}
3349
3350/*
3351 * Handle the last step of open()
3352 */
c5971b8c 3353static int do_open(struct nameidata *nd,
c981a482
AV
3354 struct file *file, const struct open_flags *op)
3355{
549c7297 3356 struct user_namespace *mnt_userns;
c981a482
AV
3357 int open_flag = op->open_flag;
3358 bool do_truncate;
3359 int acc_mode;
c981a482
AV
3360 int error;
3361
ff326a32
AV
3362 if (!(file->f_mode & (FMODE_OPENED | FMODE_CREATED))) {
3363 error = complete_walk(nd);
3364 if (error)
3365 return error;
3366 }
973d4b73
AV
3367 if (!(file->f_mode & FMODE_CREATED))
3368 audit_inode(nd->name, nd->path.dentry, 0);
549c7297 3369 mnt_userns = mnt_user_ns(nd->path.mnt);
30aba665 3370 if (open_flag & O_CREAT) {
b94e0b32
AV
3371 if ((open_flag & O_EXCL) && !(file->f_mode & FMODE_CREATED))
3372 return -EEXIST;
30aba665 3373 if (d_is_dir(nd->path.dentry))
c5971b8c 3374 return -EISDIR;
549c7297 3375 error = may_create_in_sticky(mnt_userns, nd,
30aba665
SM
3376 d_backing_inode(nd->path.dentry));
3377 if (unlikely(error))
c5971b8c 3378 return error;
30aba665 3379 }
44b1d530 3380 if ((nd->flags & LOOKUP_DIRECTORY) && !d_can_lookup(nd->path.dentry))
c5971b8c 3381 return -ENOTDIR;
6c0d46c4 3382
8795e7d4
AV
3383 do_truncate = false;
3384 acc_mode = op->acc_mode;
5a2d3edd
AV
3385 if (file->f_mode & FMODE_CREATED) {
3386 /* Don't check for write permission, don't truncate */
3387 open_flag &= ~O_TRUNC;
5a2d3edd 3388 acc_mode = 0;
8795e7d4 3389 } else if (d_is_reg(nd->path.dentry) && open_flag & O_TRUNC) {
0f9d1a10
AV
3390 error = mnt_want_write(nd->path.mnt);
3391 if (error)
c5971b8c 3392 return error;
8795e7d4 3393 do_truncate = true;
0f9d1a10 3394 }
549c7297 3395 error = may_open(mnt_userns, &nd->path, acc_mode, open_flag);
8795e7d4 3396 if (!error && !(file->f_mode & FMODE_OPENED))
3ad5615a 3397 error = vfs_open(&nd->path, file);
8795e7d4
AV
3398 if (!error)
3399 error = ima_file_check(file, op->acc_mode);
3400 if (!error && do_truncate)
549c7297 3401 error = handle_truncate(mnt_userns, file);
c80567c8
AV
3402 if (unlikely(error > 0)) {
3403 WARN_ON(1);
3404 error = -EINVAL;
3405 }
8795e7d4 3406 if (do_truncate)
0f9d1a10 3407 mnt_drop_write(nd->path.mnt);
c5971b8c 3408 return error;
fb1cc555
AV
3409}
3410
6521f891
CB
3411/**
3412 * vfs_tmpfile - create tmpfile
3413 * @mnt_userns: user namespace of the mount the inode was found from
3414 * @dentry: pointer to dentry of the base directory
3415 * @mode: mode of the new tmpfile
2111c3c0 3416 * @open_flag: flags
6521f891
CB
3417 *
3418 * Create a temporary file.
3419 *
3420 * If the inode has been found through an idmapped mount the user namespace of
3421 * the vfsmount must be passed through @mnt_userns. This function will then take
3422 * care to map the inode according to @mnt_userns before checking permissions.
3423 * On non-idmapped mounts or if permission checking is to be performed on the
3424 * raw inode simply passs init_user_ns.
3425 */
3426struct dentry *vfs_tmpfile(struct user_namespace *mnt_userns,
3427 struct dentry *dentry, umode_t mode, int open_flag)
af7bd4dc 3428{
af7bd4dc
AG
3429 struct dentry *child = NULL;
3430 struct inode *dir = dentry->d_inode;
3431 struct inode *inode;
3432 int error;
3433
3434 /* we want directory to be writable */
6521f891 3435 error = inode_permission(mnt_userns, dir, MAY_WRITE | MAY_EXEC);
af7bd4dc
AG
3436 if (error)
3437 goto out_err;
3438 error = -EOPNOTSUPP;
3439 if (!dir->i_op->tmpfile)
3440 goto out_err;
3441 error = -ENOMEM;
cdf01226 3442 child = d_alloc(dentry, &slash_name);
af7bd4dc
AG
3443 if (unlikely(!child))
3444 goto out_err;
549c7297 3445 error = dir->i_op->tmpfile(mnt_userns, dir, child, mode);
af7bd4dc
AG
3446 if (error)
3447 goto out_err;
3448 error = -ENOENT;
3449 inode = child->d_inode;
3450 if (unlikely(!inode))
3451 goto out_err;
3452 if (!(open_flag & O_EXCL)) {
3453 spin_lock(&inode->i_lock);
3454 inode->i_state |= I_LINKABLE;
3455 spin_unlock(&inode->i_lock);
3456 }
a2d2329e 3457 ima_post_create_tmpfile(mnt_userns, inode);
af7bd4dc
AG
3458 return child;
3459
3460out_err:
3461 dput(child);
3462 return ERR_PTR(error);
3463}
3464EXPORT_SYMBOL(vfs_tmpfile);
3465
c8a53ee5 3466static int do_tmpfile(struct nameidata *nd, unsigned flags,
60545d0d 3467 const struct open_flags *op,
3ec2eef1 3468 struct file *file)
60545d0d 3469{
6521f891 3470 struct user_namespace *mnt_userns;
625b6d10 3471 struct dentry *child;
625b6d10 3472 struct path path;
c8a53ee5 3473 int error = path_lookupat(nd, flags | LOOKUP_DIRECTORY, &path);
60545d0d
AV
3474 if (unlikely(error))
3475 return error;
625b6d10 3476 error = mnt_want_write(path.mnt);
60545d0d
AV
3477 if (unlikely(error))
3478 goto out;
6521f891
CB
3479 mnt_userns = mnt_user_ns(path.mnt);
3480 child = vfs_tmpfile(mnt_userns, path.dentry, op->mode, op->open_flag);
af7bd4dc 3481 error = PTR_ERR(child);
684e73be 3482 if (IS_ERR(child))
60545d0d 3483 goto out2;
625b6d10
AV
3484 dput(path.dentry);
3485 path.dentry = child;
c8a53ee5 3486 audit_inode(nd->name, child, 0);
69a91c23 3487 /* Don't check for other permissions, the inode was just created */
549c7297 3488 error = may_open(mnt_userns, &path, 0, op->open_flag);
1e8f44f1
AV
3489 if (!error)
3490 error = vfs_open(&path, file);
60545d0d 3491out2:
625b6d10 3492 mnt_drop_write(path.mnt);
60545d0d 3493out:
625b6d10 3494 path_put(&path);
60545d0d
AV
3495 return error;
3496}
3497
6ac08709
AV
3498static int do_o_path(struct nameidata *nd, unsigned flags, struct file *file)
3499{
3500 struct path path;
3501 int error = path_lookupat(nd, flags, &path);
3502 if (!error) {
3503 audit_inode(nd->name, path.dentry, 0);
ae2bb293 3504 error = vfs_open(&path, file);
6ac08709
AV
3505 path_put(&path);
3506 }
3507 return error;
3508}
3509
c8a53ee5
AV
3510static struct file *path_openat(struct nameidata *nd,
3511 const struct open_flags *op, unsigned flags)
1da177e4 3512{
30d90494 3513 struct file *file;
13aab428 3514 int error;
31e6b01f 3515
ea73ea72 3516 file = alloc_empty_file(op->open_flag, current_cred());
1afc99be
AV
3517 if (IS_ERR(file))
3518 return file;
31e6b01f 3519
bb458c64 3520 if (unlikely(file->f_flags & __O_TMPFILE)) {
3ec2eef1 3521 error = do_tmpfile(nd, flags, op, file);
5f336e72 3522 } else if (unlikely(file->f_flags & O_PATH)) {
6ac08709 3523 error = do_o_path(nd, flags, file);
5f336e72
AV
3524 } else {
3525 const char *s = path_init(nd, flags);
3526 while (!(error = link_path_walk(s, nd)) &&
c5971b8c 3527 (s = open_last_lookups(nd, file, op)) != NULL)
1ccac622 3528 ;
c5971b8c
AV
3529 if (!error)
3530 error = do_open(nd, file, op);
5f336e72 3531 terminate_walk(nd);
806b681c 3532 }
7c1c01ec 3533 if (likely(!error)) {
aad888f8 3534 if (likely(file->f_mode & FMODE_OPENED))
7c1c01ec
AV
3535 return file;
3536 WARN_ON(1);
3537 error = -EINVAL;
16b1c1cd 3538 }
7c1c01ec
AV
3539 fput(file);
3540 if (error == -EOPENSTALE) {
3541 if (flags & LOOKUP_RCU)
3542 error = -ECHILD;
3543 else
3544 error = -ESTALE;
2675a4eb 3545 }
7c1c01ec 3546 return ERR_PTR(error);
1da177e4
LT
3547}
3548
669abf4e 3549struct file *do_filp_open(int dfd, struct filename *pathname,
f9652e10 3550 const struct open_flags *op)
13aab428 3551{
9883d185 3552 struct nameidata nd;
f9652e10 3553 int flags = op->lookup_flags;
13aab428
AV
3554 struct file *filp;
3555
06422964 3556 set_nameidata(&nd, dfd, pathname, NULL);
c8a53ee5 3557 filp = path_openat(&nd, op, flags | LOOKUP_RCU);
13aab428 3558 if (unlikely(filp == ERR_PTR(-ECHILD)))
c8a53ee5 3559 filp = path_openat(&nd, op, flags);
13aab428 3560 if (unlikely(filp == ERR_PTR(-ESTALE)))
c8a53ee5 3561 filp = path_openat(&nd, op, flags | LOOKUP_REVAL);
9883d185 3562 restore_nameidata();
13aab428
AV
3563 return filp;
3564}
3565
ffb37ca3 3566struct file *do_file_open_root(const struct path *root,
f9652e10 3567 const char *name, const struct open_flags *op)
73d049a4 3568{
9883d185 3569 struct nameidata nd;
73d049a4 3570 struct file *file;
51689104 3571 struct filename *filename;
bcba1e7d 3572 int flags = op->lookup_flags;
73d049a4 3573
ffb37ca3 3574 if (d_is_symlink(root->dentry) && op->intent & LOOKUP_OPEN)
73d049a4
AV
3575 return ERR_PTR(-ELOOP);
3576
51689104 3577 filename = getname_kernel(name);
a1c83681 3578 if (IS_ERR(filename))
51689104
PM
3579 return ERR_CAST(filename);
3580
06422964 3581 set_nameidata(&nd, -1, filename, root);
c8a53ee5 3582 file = path_openat(&nd, op, flags | LOOKUP_RCU);
73d049a4 3583 if (unlikely(file == ERR_PTR(-ECHILD)))
c8a53ee5 3584 file = path_openat(&nd, op, flags);
73d049a4 3585 if (unlikely(file == ERR_PTR(-ESTALE)))
c8a53ee5 3586 file = path_openat(&nd, op, flags | LOOKUP_REVAL);
9883d185 3587 restore_nameidata();
51689104 3588 putname(filename);
73d049a4
AV
3589 return file;
3590}
3591
584d3226 3592static struct dentry *__filename_create(int dfd, struct filename *name,
1ac12b4b 3593 struct path *path, unsigned int lookup_flags)
1da177e4 3594{
c663e5d8 3595 struct dentry *dentry = ERR_PTR(-EEXIST);
391172c4
AV
3596 struct qstr last;
3597 int type;
c30dabfe 3598 int err2;
1ac12b4b
JL
3599 int error;
3600 bool is_dir = (lookup_flags & LOOKUP_DIRECTORY);
3601
3602 /*
3603 * Note that only LOOKUP_REVAL and LOOKUP_DIRECTORY matter here. Any
3604 * other flags passed in are ignored!
3605 */
3606 lookup_flags &= LOOKUP_REVAL;
3607
584d3226 3608 error = __filename_parentat(dfd, name, lookup_flags, path, &last, &type);
0ee50b47
DK
3609 if (error)
3610 return ERR_PTR(error);
1da177e4 3611
c663e5d8
CH
3612 /*
3613 * Yucky last component or no last component at all?
3614 * (foo/., foo/.., /////)
3615 */
5c31b6ce 3616 if (unlikely(type != LAST_NORM))
ed75e95d 3617 goto out;
c663e5d8 3618
c30dabfe 3619 /* don't fail immediately if it's r/o, at least try to report other errors */
391172c4 3620 err2 = mnt_want_write(path->mnt);
c663e5d8
CH
3621 /*
3622 * Do the final lookup.
3623 */
391172c4 3624 lookup_flags |= LOOKUP_CREATE | LOOKUP_EXCL;
5955102c 3625 inode_lock_nested(path->dentry->d_inode, I_MUTEX_PARENT);
391172c4 3626 dentry = __lookup_hash(&last, path->dentry, lookup_flags);
1da177e4 3627 if (IS_ERR(dentry))
a8104a9f 3628 goto unlock;
c663e5d8 3629
a8104a9f 3630 error = -EEXIST;
b18825a7 3631 if (d_is_positive(dentry))
a8104a9f 3632 goto fail;
b18825a7 3633
c663e5d8
CH
3634 /*
3635 * Special case - lookup gave negative, but... we had foo/bar/
3636 * From the vfs_mknod() POV we just have a negative dentry -
3637 * all is fine. Let's be bastards - you had / on the end, you've
3638 * been asking for (non-existent) directory. -ENOENT for you.
3639 */
391172c4 3640 if (unlikely(!is_dir && last.name[last.len])) {
a8104a9f 3641 error = -ENOENT;
ed75e95d 3642 goto fail;
e9baf6e5 3643 }
c30dabfe
JK
3644 if (unlikely(err2)) {
3645 error = err2;
a8104a9f 3646 goto fail;
c30dabfe 3647 }
1da177e4 3648 return dentry;
1da177e4 3649fail:
a8104a9f
AV
3650 dput(dentry);
3651 dentry = ERR_PTR(error);
3652unlock:
5955102c 3653 inode_unlock(path->dentry->d_inode);
c30dabfe 3654 if (!err2)
391172c4 3655 mnt_drop_write(path->mnt);
ed75e95d 3656out:
391172c4 3657 path_put(path);
1da177e4
LT
3658 return dentry;
3659}
fa14a0b8 3660
584d3226
DK
3661static inline struct dentry *filename_create(int dfd, struct filename *name,
3662 struct path *path, unsigned int lookup_flags)
3663{
3664 struct dentry *res = __filename_create(dfd, name, path, lookup_flags);
3665
3666 putname(name);
3667 return res;
3668}
3669
fa14a0b8
AV
3670struct dentry *kern_path_create(int dfd, const char *pathname,
3671 struct path *path, unsigned int lookup_flags)
3672{
181c37b6
AV
3673 return filename_create(dfd, getname_kernel(pathname),
3674 path, lookup_flags);
fa14a0b8 3675}
dae6ad8f
AV
3676EXPORT_SYMBOL(kern_path_create);
3677
921a1650
AV
3678void done_path_create(struct path *path, struct dentry *dentry)
3679{
3680 dput(dentry);
5955102c 3681 inode_unlock(path->dentry->d_inode);
a8104a9f 3682 mnt_drop_write(path->mnt);
921a1650
AV
3683 path_put(path);
3684}
3685EXPORT_SYMBOL(done_path_create);
3686
520ae687 3687inline struct dentry *user_path_create(int dfd, const char __user *pathname,
1ac12b4b 3688 struct path *path, unsigned int lookup_flags)
dae6ad8f 3689{
181c37b6 3690 return filename_create(dfd, getname(pathname), path, lookup_flags);
dae6ad8f
AV
3691}
3692EXPORT_SYMBOL(user_path_create);
3693
6521f891
CB
3694/**
3695 * vfs_mknod - create device node or file
3696 * @mnt_userns: user namespace of the mount the inode was found from
3697 * @dir: inode of @dentry
3698 * @dentry: pointer to dentry of the base directory
3699 * @mode: mode of the new device node or file
3700 * @dev: device number of device to create
3701 *
3702 * Create a device node or file.
3703 *
3704 * If the inode has been found through an idmapped mount the user namespace of
3705 * the vfsmount must be passed through @mnt_userns. This function will then take
3706 * care to map the inode according to @mnt_userns before checking permissions.
3707 * On non-idmapped mounts or if permission checking is to be performed on the
3708 * raw inode simply passs init_user_ns.
3709 */
3710int vfs_mknod(struct user_namespace *mnt_userns, struct inode *dir,
3711 struct dentry *dentry, umode_t mode, dev_t dev)
1da177e4 3712{
a3c751a5 3713 bool is_whiteout = S_ISCHR(mode) && dev == WHITEOUT_DEV;
6521f891 3714 int error = may_create(mnt_userns, dir, dentry);
1da177e4
LT
3715
3716 if (error)
3717 return error;
3718
a3c751a5
MS
3719 if ((S_ISCHR(mode) || S_ISBLK(mode)) && !is_whiteout &&
3720 !capable(CAP_MKNOD))
1da177e4
LT
3721 return -EPERM;
3722
acfa4380 3723 if (!dir->i_op->mknod)
1da177e4
LT
3724 return -EPERM;
3725
08ce5f16
SH
3726 error = devcgroup_inode_mknod(mode, dev);
3727 if (error)
3728 return error;
3729
1da177e4
LT
3730 error = security_inode_mknod(dir, dentry, mode, dev);
3731 if (error)
3732 return error;
3733
549c7297 3734 error = dir->i_op->mknod(mnt_userns, dir, dentry, mode, dev);
a74574aa 3735 if (!error)
f38aa942 3736 fsnotify_create(dir, dentry);
1da177e4
LT
3737 return error;
3738}
4d359507 3739EXPORT_SYMBOL(vfs_mknod);
1da177e4 3740
f69aac00 3741static int may_mknod(umode_t mode)
463c3197
DH
3742{
3743 switch (mode & S_IFMT) {
3744 case S_IFREG:
3745 case S_IFCHR:
3746 case S_IFBLK:
3747 case S_IFIFO:
3748 case S_IFSOCK:
3749 case 0: /* zero mode translates to S_IFREG */
3750 return 0;
3751 case S_IFDIR:
3752 return -EPERM;
3753 default:
3754 return -EINVAL;
3755 }
3756}
3757
45f30dab 3758static int do_mknodat(int dfd, struct filename *name, umode_t mode,
87c4e192 3759 unsigned int dev)
1da177e4 3760{
6521f891 3761 struct user_namespace *mnt_userns;
2ad94ae6 3762 struct dentry *dentry;
dae6ad8f
AV
3763 struct path path;
3764 int error;
972567f1 3765 unsigned int lookup_flags = 0;
1da177e4 3766
8e4bfca1
AV
3767 error = may_mknod(mode);
3768 if (error)
7797251b 3769 goto out1;
972567f1 3770retry:
7797251b
DK
3771 dentry = __filename_create(dfd, name, &path, lookup_flags);
3772 error = PTR_ERR(dentry);
dae6ad8f 3773 if (IS_ERR(dentry))
7797251b 3774 goto out1;
2ad94ae6 3775
dae6ad8f 3776 if (!IS_POSIXACL(path.dentry->d_inode))
ce3b0f8d 3777 mode &= ~current_umask();
dae6ad8f 3778 error = security_path_mknod(&path, dentry, mode, dev);
be6d3e56 3779 if (error)
7797251b 3780 goto out2;
6521f891
CB
3781
3782 mnt_userns = mnt_user_ns(path.mnt);
463c3197 3783 switch (mode & S_IFMT) {
1da177e4 3784 case 0: case S_IFREG:
6521f891
CB
3785 error = vfs_create(mnt_userns, path.dentry->d_inode,
3786 dentry, mode, true);
05d1a717 3787 if (!error)
a2d2329e 3788 ima_post_path_mknod(mnt_userns, dentry);
1da177e4
LT
3789 break;
3790 case S_IFCHR: case S_IFBLK:
6521f891
CB
3791 error = vfs_mknod(mnt_userns, path.dentry->d_inode,
3792 dentry, mode, new_decode_dev(dev));
1da177e4
LT
3793 break;
3794 case S_IFIFO: case S_IFSOCK:
6521f891
CB
3795 error = vfs_mknod(mnt_userns, path.dentry->d_inode,
3796 dentry, mode, 0);
1da177e4 3797 break;
1da177e4 3798 }
7797251b 3799out2:
921a1650 3800 done_path_create(&path, dentry);
972567f1
JL
3801 if (retry_estale(error, lookup_flags)) {
3802 lookup_flags |= LOOKUP_REVAL;
3803 goto retry;
3804 }
7797251b
DK
3805out1:
3806 putname(name);
1da177e4
LT
3807 return error;
3808}
3809
87c4e192
DB
3810SYSCALL_DEFINE4(mknodat, int, dfd, const char __user *, filename, umode_t, mode,
3811 unsigned int, dev)
3812{
7797251b 3813 return do_mknodat(dfd, getname(filename), mode, dev);
87c4e192
DB
3814}
3815
8208a22b 3816SYSCALL_DEFINE3(mknod, const char __user *, filename, umode_t, mode, unsigned, dev)
5590ff0d 3817{
7797251b 3818 return do_mknodat(AT_FDCWD, getname(filename), mode, dev);
5590ff0d
UD
3819}
3820
6521f891
CB
3821/**
3822 * vfs_mkdir - create directory
3823 * @mnt_userns: user namespace of the mount the inode was found from
3824 * @dir: inode of @dentry
3825 * @dentry: pointer to dentry of the base directory
3826 * @mode: mode of the new directory
3827 *
3828 * Create a directory.
3829 *
3830 * If the inode has been found through an idmapped mount the user namespace of
3831 * the vfsmount must be passed through @mnt_userns. This function will then take
3832 * care to map the inode according to @mnt_userns before checking permissions.
3833 * On non-idmapped mounts or if permission checking is to be performed on the
3834 * raw inode simply passs init_user_ns.
3835 */
3836int vfs_mkdir(struct user_namespace *mnt_userns, struct inode *dir,
3837 struct dentry *dentry, umode_t mode)
1da177e4 3838{
6521f891 3839 int error = may_create(mnt_userns, dir, dentry);
8de52778 3840 unsigned max_links = dir->i_sb->s_max_links;
1da177e4
LT
3841
3842 if (error)
3843 return error;
3844
acfa4380 3845 if (!dir->i_op->mkdir)
1da177e4
LT
3846 return -EPERM;
3847
3848 mode &= (S_IRWXUGO|S_ISVTX);
3849 error = security_inode_mkdir(dir, dentry, mode);
3850 if (error)
3851 return error;
3852
8de52778
AV
3853 if (max_links && dir->i_nlink >= max_links)
3854 return -EMLINK;
3855
549c7297 3856 error = dir->i_op->mkdir(mnt_userns, dir, dentry, mode);
a74574aa 3857 if (!error)
f38aa942 3858 fsnotify_mkdir(dir, dentry);
1da177e4
LT
3859 return error;
3860}
4d359507 3861EXPORT_SYMBOL(vfs_mkdir);
1da177e4 3862
45f30dab 3863int do_mkdirat(int dfd, struct filename *name, umode_t mode)
1da177e4 3864{
6902d925 3865 struct dentry *dentry;
dae6ad8f
AV
3866 struct path path;
3867 int error;
b76d8b82 3868 unsigned int lookup_flags = LOOKUP_DIRECTORY;
1da177e4 3869
b76d8b82 3870retry:
584d3226
DK
3871 dentry = __filename_create(dfd, name, &path, lookup_flags);
3872 error = PTR_ERR(dentry);
6902d925 3873 if (IS_ERR(dentry))
584d3226 3874 goto out_putname;
1da177e4 3875
dae6ad8f 3876 if (!IS_POSIXACL(path.dentry->d_inode))
ce3b0f8d 3877 mode &= ~current_umask();
dae6ad8f 3878 error = security_path_mkdir(&path, dentry, mode);
6521f891
CB
3879 if (!error) {
3880 struct user_namespace *mnt_userns;
3881 mnt_userns = mnt_user_ns(path.mnt);
549c7297
CB
3882 error = vfs_mkdir(mnt_userns, path.dentry->d_inode, dentry,
3883 mode);
6521f891 3884 }
921a1650 3885 done_path_create(&path, dentry);
b76d8b82
JL
3886 if (retry_estale(error, lookup_flags)) {
3887 lookup_flags |= LOOKUP_REVAL;
3888 goto retry;
3889 }
584d3226
DK
3890out_putname:
3891 putname(name);
1da177e4
LT
3892 return error;
3893}
3894
0101db7a
DB
3895SYSCALL_DEFINE3(mkdirat, int, dfd, const char __user *, pathname, umode_t, mode)
3896{
584d3226 3897 return do_mkdirat(dfd, getname(pathname), mode);
0101db7a
DB
3898}
3899
a218d0fd 3900SYSCALL_DEFINE2(mkdir, const char __user *, pathname, umode_t, mode)
5590ff0d 3901{
584d3226 3902 return do_mkdirat(AT_FDCWD, getname(pathname), mode);
5590ff0d
UD
3903}
3904
6521f891
CB
3905/**
3906 * vfs_rmdir - remove directory
3907 * @mnt_userns: user namespace of the mount the inode was found from
3908 * @dir: inode of @dentry
3909 * @dentry: pointer to dentry of the base directory
3910 *
3911 * Remove a directory.
3912 *
3913 * If the inode has been found through an idmapped mount the user namespace of
3914 * the vfsmount must be passed through @mnt_userns. This function will then take
3915 * care to map the inode according to @mnt_userns before checking permissions.
3916 * On non-idmapped mounts or if permission checking is to be performed on the
3917 * raw inode simply passs init_user_ns.
3918 */
3919int vfs_rmdir(struct user_namespace *mnt_userns, struct inode *dir,
3920 struct dentry *dentry)
1da177e4 3921{
6521f891 3922 int error = may_delete(mnt_userns, dir, dentry, 1);
1da177e4
LT
3923
3924 if (error)
3925 return error;
3926
acfa4380 3927 if (!dir->i_op->rmdir)
1da177e4
LT
3928 return -EPERM;
3929
1d2ef590 3930 dget(dentry);
5955102c 3931 inode_lock(dentry->d_inode);
912dbc15
SW
3932
3933 error = -EBUSY;
7af1364f 3934 if (is_local_mountpoint(dentry))
912dbc15
SW
3935 goto out;
3936
3937 error = security_inode_rmdir(dir, dentry);
3938 if (error)
3939 goto out;
3940
3941 error = dir->i_op->rmdir(dir, dentry);
3942 if (error)
3943 goto out;
3944
8767712f 3945 shrink_dcache_parent(dentry);
912dbc15
SW
3946 dentry->d_inode->i_flags |= S_DEAD;
3947 dont_mount(dentry);
8ed936b5 3948 detach_mounts(dentry);
116b9731 3949 fsnotify_rmdir(dir, dentry);
912dbc15
SW
3950
3951out:
5955102c 3952 inode_unlock(dentry->d_inode);
1d2ef590 3953 dput(dentry);
912dbc15 3954 if (!error)
1da177e4 3955 d_delete(dentry);
1da177e4
LT
3956 return error;
3957}
4d359507 3958EXPORT_SYMBOL(vfs_rmdir);
1da177e4 3959
45f30dab 3960int do_rmdir(int dfd, struct filename *name)
1da177e4 3961{
6521f891 3962 struct user_namespace *mnt_userns;
0ee50b47 3963 int error;
1da177e4 3964 struct dentry *dentry;
f5beed75
AV
3965 struct path path;
3966 struct qstr last;
3967 int type;
c6ee9206
JL
3968 unsigned int lookup_flags = 0;
3969retry:
0ee50b47
DK
3970 error = __filename_parentat(dfd, name, lookup_flags, &path, &last, &type);
3971 if (error)
3972 goto exit1;
1da177e4 3973
f5beed75 3974 switch (type) {
0612d9fb
OH
3975 case LAST_DOTDOT:
3976 error = -ENOTEMPTY;
0ee50b47 3977 goto exit2;
0612d9fb
OH
3978 case LAST_DOT:
3979 error = -EINVAL;
0ee50b47 3980 goto exit2;
0612d9fb
OH
3981 case LAST_ROOT:
3982 error = -EBUSY;
0ee50b47 3983 goto exit2;
1da177e4 3984 }
0612d9fb 3985
f5beed75 3986 error = mnt_want_write(path.mnt);
c30dabfe 3987 if (error)
0ee50b47 3988 goto exit2;
0612d9fb 3989
5955102c 3990 inode_lock_nested(path.dentry->d_inode, I_MUTEX_PARENT);
f5beed75 3991 dentry = __lookup_hash(&last, path.dentry, lookup_flags);
1da177e4 3992 error = PTR_ERR(dentry);
6902d925 3993 if (IS_ERR(dentry))
0ee50b47 3994 goto exit3;
e6bc45d6
TT
3995 if (!dentry->d_inode) {
3996 error = -ENOENT;
0ee50b47 3997 goto exit4;
e6bc45d6 3998 }
f5beed75 3999 error = security_path_rmdir(&path, dentry);
be6d3e56 4000 if (error)
0ee50b47 4001 goto exit4;
6521f891
CB
4002 mnt_userns = mnt_user_ns(path.mnt);
4003 error = vfs_rmdir(mnt_userns, path.dentry->d_inode, dentry);
0ee50b47 4004exit4:
6902d925 4005 dput(dentry);
0ee50b47 4006exit3:
5955102c 4007 inode_unlock(path.dentry->d_inode);
f5beed75 4008 mnt_drop_write(path.mnt);
0ee50b47 4009exit2:
f5beed75 4010 path_put(&path);
c6ee9206
JL
4011 if (retry_estale(error, lookup_flags)) {
4012 lookup_flags |= LOOKUP_REVAL;
4013 goto retry;
4014 }
0ee50b47 4015exit1:
24fb33d4 4016 putname(name);
1da177e4
LT
4017 return error;
4018}
4019
3cdad428 4020SYSCALL_DEFINE1(rmdir, const char __user *, pathname)
5590ff0d 4021{
e24ab0ef 4022 return do_rmdir(AT_FDCWD, getname(pathname));
5590ff0d
UD
4023}
4024
b21996e3
BF
4025/**
4026 * vfs_unlink - unlink a filesystem object
6521f891 4027 * @mnt_userns: user namespace of the mount the inode was found from
b21996e3
BF
4028 * @dir: parent directory
4029 * @dentry: victim
4030 * @delegated_inode: returns victim inode, if the inode is delegated.
4031 *
4032 * The caller must hold dir->i_mutex.
4033 *
4034 * If vfs_unlink discovers a delegation, it will return -EWOULDBLOCK and
4035 * return a reference to the inode in delegated_inode. The caller
4036 * should then break the delegation on that inode and retry. Because
4037 * breaking a delegation may take a long time, the caller should drop
4038 * dir->i_mutex before doing so.
4039 *
4040 * Alternatively, a caller may pass NULL for delegated_inode. This may
4041 * be appropriate for callers that expect the underlying filesystem not
4042 * to be NFS exported.
6521f891
CB
4043 *
4044 * If the inode has been found through an idmapped mount the user namespace of
4045 * the vfsmount must be passed through @mnt_userns. This function will then take
4046 * care to map the inode according to @mnt_userns before checking permissions.
4047 * On non-idmapped mounts or if permission checking is to be performed on the
4048 * raw inode simply passs init_user_ns.
b21996e3 4049 */
6521f891
CB
4050int vfs_unlink(struct user_namespace *mnt_userns, struct inode *dir,
4051 struct dentry *dentry, struct inode **delegated_inode)
1da177e4 4052{
9accbb97 4053 struct inode *target = dentry->d_inode;
6521f891 4054 int error = may_delete(mnt_userns, dir, dentry, 0);
1da177e4
LT
4055
4056 if (error)
4057 return error;
4058
acfa4380 4059 if (!dir->i_op->unlink)
1da177e4
LT
4060 return -EPERM;
4061
5955102c 4062 inode_lock(target);
8ed936b5 4063 if (is_local_mountpoint(dentry))
1da177e4
LT
4064 error = -EBUSY;
4065 else {
4066 error = security_inode_unlink(dir, dentry);
bec1052e 4067 if (!error) {
5a14696c
BF
4068 error = try_break_deleg(target, delegated_inode);
4069 if (error)
b21996e3 4070 goto out;
1da177e4 4071 error = dir->i_op->unlink(dir, dentry);
8ed936b5 4072 if (!error) {
d83c49f3 4073 dont_mount(dentry);
8ed936b5 4074 detach_mounts(dentry);
116b9731 4075 fsnotify_unlink(dir, dentry);
8ed936b5 4076 }
bec1052e 4077 }
1da177e4 4078 }
b21996e3 4079out:
5955102c 4080 inode_unlock(target);
1da177e4
LT
4081
4082 /* We don't d_delete() NFS sillyrenamed files--they still exist. */
4083 if (!error && !(dentry->d_flags & DCACHE_NFSFS_RENAMED)) {
9accbb97 4084 fsnotify_link_count(target);
e234f35c 4085 d_delete(dentry);
1da177e4 4086 }
0eeca283 4087
1da177e4
LT
4088 return error;
4089}
4d359507 4090EXPORT_SYMBOL(vfs_unlink);
1da177e4
LT
4091
4092/*
4093 * Make sure that the actual truncation of the file will occur outside its
1b1dcc1b 4094 * directory's i_mutex. Truncate can take a long time if there is a lot of
1da177e4
LT
4095 * writeout happening, and we don't want to prevent access to the directory
4096 * while waiting on the I/O.
4097 */
45f30dab 4098int do_unlinkat(int dfd, struct filename *name)
1da177e4 4099{
2ad94ae6 4100 int error;
1da177e4 4101 struct dentry *dentry;
f5beed75
AV
4102 struct path path;
4103 struct qstr last;
4104 int type;
1da177e4 4105 struct inode *inode = NULL;
b21996e3 4106 struct inode *delegated_inode = NULL;
5d18f813
JL
4107 unsigned int lookup_flags = 0;
4108retry:
0ee50b47
DK
4109 error = __filename_parentat(dfd, name, lookup_flags, &path, &last, &type);
4110 if (error)
4111 goto exit1;
2ad94ae6 4112
1da177e4 4113 error = -EISDIR;
f5beed75 4114 if (type != LAST_NORM)
0ee50b47 4115 goto exit2;
0612d9fb 4116
f5beed75 4117 error = mnt_want_write(path.mnt);
c30dabfe 4118 if (error)
0ee50b47 4119 goto exit2;
b21996e3 4120retry_deleg:
5955102c 4121 inode_lock_nested(path.dentry->d_inode, I_MUTEX_PARENT);
f5beed75 4122 dentry = __lookup_hash(&last, path.dentry, lookup_flags);
1da177e4
LT
4123 error = PTR_ERR(dentry);
4124 if (!IS_ERR(dentry)) {
6521f891
CB
4125 struct user_namespace *mnt_userns;
4126
1da177e4 4127 /* Why not before? Because we want correct error value */
f5beed75 4128 if (last.name[last.len])
50338b88 4129 goto slashes;
1da177e4 4130 inode = dentry->d_inode;
b18825a7 4131 if (d_is_negative(dentry))
e6bc45d6
TT
4132 goto slashes;
4133 ihold(inode);
f5beed75 4134 error = security_path_unlink(&path, dentry);
be6d3e56 4135 if (error)
0ee50b47 4136 goto exit3;
6521f891 4137 mnt_userns = mnt_user_ns(path.mnt);
549c7297
CB
4138 error = vfs_unlink(mnt_userns, path.dentry->d_inode, dentry,
4139 &delegated_inode);
0ee50b47 4140exit3:
1da177e4
LT
4141 dput(dentry);
4142 }
5955102c 4143 inode_unlock(path.dentry->d_inode);
1da177e4
LT
4144 if (inode)
4145 iput(inode); /* truncate the inode here */
b21996e3
BF
4146 inode = NULL;
4147 if (delegated_inode) {
5a14696c 4148 error = break_deleg_wait(&delegated_inode);
b21996e3
BF
4149 if (!error)
4150 goto retry_deleg;
4151 }
f5beed75 4152 mnt_drop_write(path.mnt);
0ee50b47 4153exit2:
f5beed75 4154 path_put(&path);
5d18f813
JL
4155 if (retry_estale(error, lookup_flags)) {
4156 lookup_flags |= LOOKUP_REVAL;
4157 inode = NULL;
4158 goto retry;
4159 }
0ee50b47 4160exit1:
da2f1362 4161 putname(name);
1da177e4
LT
4162 return error;
4163
4164slashes:
b18825a7
DH
4165 if (d_is_negative(dentry))
4166 error = -ENOENT;
44b1d530 4167 else if (d_is_dir(dentry))
b18825a7
DH
4168 error = -EISDIR;
4169 else
4170 error = -ENOTDIR;
0ee50b47 4171 goto exit3;
1da177e4
LT
4172}
4173
2e4d0924 4174SYSCALL_DEFINE3(unlinkat, int, dfd, const char __user *, pathname, int, flag)
5590ff0d
UD
4175{
4176 if ((flag & ~AT_REMOVEDIR) != 0)
4177 return -EINVAL;
4178
4179 if (flag & AT_REMOVEDIR)
e24ab0ef 4180 return do_rmdir(dfd, getname(pathname));
da2f1362 4181 return do_unlinkat(dfd, getname(pathname));
5590ff0d
UD
4182}
4183
3480b257 4184SYSCALL_DEFINE1(unlink, const char __user *, pathname)
5590ff0d 4185{
da2f1362 4186 return do_unlinkat(AT_FDCWD, getname(pathname));
5590ff0d
UD
4187}
4188
6521f891
CB
4189/**
4190 * vfs_symlink - create symlink
4191 * @mnt_userns: user namespace of the mount the inode was found from
4192 * @dir: inode of @dentry
4193 * @dentry: pointer to dentry of the base directory
4194 * @oldname: name of the file to link to
4195 *
4196 * Create a symlink.
4197 *
4198 * If the inode has been found through an idmapped mount the user namespace of
4199 * the vfsmount must be passed through @mnt_userns. This function will then take
4200 * care to map the inode according to @mnt_userns before checking permissions.
4201 * On non-idmapped mounts or if permission checking is to be performed on the
4202 * raw inode simply passs init_user_ns.
4203 */
4204int vfs_symlink(struct user_namespace *mnt_userns, struct inode *dir,
4205 struct dentry *dentry, const char *oldname)
1da177e4 4206{
6521f891 4207 int error = may_create(mnt_userns, dir, dentry);
1da177e4
LT
4208
4209 if (error)
4210 return error;
4211
acfa4380 4212 if (!dir->i_op->symlink)
1da177e4
LT
4213 return -EPERM;
4214
4215 error = security_inode_symlink(dir, dentry, oldname);
4216 if (error)
4217 return error;
4218
549c7297 4219 error = dir->i_op->symlink(mnt_userns, dir, dentry, oldname);
a74574aa 4220 if (!error)
f38aa942 4221 fsnotify_create(dir, dentry);
1da177e4
LT
4222 return error;
4223}
4d359507 4224EXPORT_SYMBOL(vfs_symlink);
1da177e4 4225
45f30dab 4226static int do_symlinkat(struct filename *from, int newdfd,
da2d0ced 4227 struct filename *to)
1da177e4 4228{
2ad94ae6 4229 int error;
6902d925 4230 struct dentry *dentry;
dae6ad8f 4231 struct path path;
f46d3567 4232 unsigned int lookup_flags = 0;
1da177e4 4233
da2d0ced
DK
4234 if (IS_ERR(from)) {
4235 error = PTR_ERR(from);
4236 goto out_putnames;
4237 }
f46d3567 4238retry:
da2d0ced 4239 dentry = __filename_create(newdfd, to, &path, lookup_flags);
6902d925
DH
4240 error = PTR_ERR(dentry);
4241 if (IS_ERR(dentry))
da2d0ced 4242 goto out_putnames;
6902d925 4243
91a27b2a 4244 error = security_path_symlink(&path, dentry, from->name);
6521f891
CB
4245 if (!error) {
4246 struct user_namespace *mnt_userns;
4247
4248 mnt_userns = mnt_user_ns(path.mnt);
4249 error = vfs_symlink(mnt_userns, path.dentry->d_inode, dentry,
4250 from->name);
4251 }
921a1650 4252 done_path_create(&path, dentry);
f46d3567
JL
4253 if (retry_estale(error, lookup_flags)) {
4254 lookup_flags |= LOOKUP_REVAL;
4255 goto retry;
4256 }
da2d0ced
DK
4257out_putnames:
4258 putname(to);
1da177e4
LT
4259 putname(from);
4260 return error;
4261}
4262
b724e846
DB
4263SYSCALL_DEFINE3(symlinkat, const char __user *, oldname,
4264 int, newdfd, const char __user *, newname)
4265{
da2d0ced 4266 return do_symlinkat(getname(oldname), newdfd, getname(newname));
b724e846
DB
4267}
4268
3480b257 4269SYSCALL_DEFINE2(symlink, const char __user *, oldname, const char __user *, newname)
5590ff0d 4270{
da2d0ced 4271 return do_symlinkat(getname(oldname), AT_FDCWD, getname(newname));
5590ff0d
UD
4272}
4273
146a8595
BF
4274/**
4275 * vfs_link - create a new link
4276 * @old_dentry: object to be linked
6521f891 4277 * @mnt_userns: the user namespace of the mount
146a8595
BF
4278 * @dir: new parent
4279 * @new_dentry: where to create the new link
4280 * @delegated_inode: returns inode needing a delegation break
4281 *
4282 * The caller must hold dir->i_mutex
4283 *
4284 * If vfs_link discovers a delegation on the to-be-linked file in need
4285 * of breaking, it will return -EWOULDBLOCK and return a reference to the
4286 * inode in delegated_inode. The caller should then break the delegation
4287 * and retry. Because breaking a delegation may take a long time, the
4288 * caller should drop the i_mutex before doing so.
4289 *
4290 * Alternatively, a caller may pass NULL for delegated_inode. This may
4291 * be appropriate for callers that expect the underlying filesystem not
4292 * to be NFS exported.
6521f891
CB
4293 *
4294 * If the inode has been found through an idmapped mount the user namespace of
4295 * the vfsmount must be passed through @mnt_userns. This function will then take
4296 * care to map the inode according to @mnt_userns before checking permissions.
4297 * On non-idmapped mounts or if permission checking is to be performed on the
4298 * raw inode simply passs init_user_ns.
146a8595 4299 */
6521f891
CB
4300int vfs_link(struct dentry *old_dentry, struct user_namespace *mnt_userns,
4301 struct inode *dir, struct dentry *new_dentry,
4302 struct inode **delegated_inode)
1da177e4
LT
4303{
4304 struct inode *inode = old_dentry->d_inode;
8de52778 4305 unsigned max_links = dir->i_sb->s_max_links;
1da177e4
LT
4306 int error;
4307
4308 if (!inode)
4309 return -ENOENT;
4310
6521f891 4311 error = may_create(mnt_userns, dir, new_dentry);
1da177e4
LT
4312 if (error)
4313 return error;
4314
4315 if (dir->i_sb != inode->i_sb)
4316 return -EXDEV;
4317
4318 /*
4319 * A link to an append-only or immutable file cannot be created.
4320 */
4321 if (IS_APPEND(inode) || IS_IMMUTABLE(inode))
4322 return -EPERM;
0bd23d09
EB
4323 /*
4324 * Updating the link count will likely cause i_uid and i_gid to
4325 * be writen back improperly if their true value is unknown to
4326 * the vfs.
4327 */
6521f891 4328 if (HAS_UNMAPPED_ID(mnt_userns, inode))
0bd23d09 4329 return -EPERM;
acfa4380 4330 if (!dir->i_op->link)
1da177e4 4331 return -EPERM;
7e79eedb 4332 if (S_ISDIR(inode->i_mode))
1da177e4
LT
4333 return -EPERM;
4334
4335 error = security_inode_link(old_dentry, dir, new_dentry);
4336 if (error)
4337 return error;
4338
5955102c 4339 inode_lock(inode);
aae8a97d 4340 /* Make sure we don't allow creating hardlink to an unlinked file */
f4e0c30c 4341 if (inode->i_nlink == 0 && !(inode->i_state & I_LINKABLE))
aae8a97d 4342 error = -ENOENT;
8de52778
AV
4343 else if (max_links && inode->i_nlink >= max_links)
4344 error = -EMLINK;
146a8595
BF
4345 else {
4346 error = try_break_deleg(inode, delegated_inode);
4347 if (!error)
4348 error = dir->i_op->link(old_dentry, dir, new_dentry);
4349 }
f4e0c30c
AV
4350
4351 if (!error && (inode->i_state & I_LINKABLE)) {
4352 spin_lock(&inode->i_lock);
4353 inode->i_state &= ~I_LINKABLE;
4354 spin_unlock(&inode->i_lock);
4355 }
5955102c 4356 inode_unlock(inode);
e31e14ec 4357 if (!error)
7e79eedb 4358 fsnotify_link(dir, inode, new_dentry);
1da177e4
LT
4359 return error;
4360}
4d359507 4361EXPORT_SYMBOL(vfs_link);
1da177e4
LT
4362
4363/*
4364 * Hardlinks are often used in delicate situations. We avoid
4365 * security-related surprises by not following symlinks on the
4366 * newname. --KAB
4367 *
4368 * We don't follow them on the oldname either to be compatible
4369 * with linux 2.0, and to avoid hard-linking to directories
4370 * and other special files. --ADM
4371 */
020250f3
DK
4372static int do_linkat(int olddfd, struct filename *old, int newdfd,
4373 struct filename *new, int flags)
1da177e4 4374{
6521f891 4375 struct user_namespace *mnt_userns;
1da177e4 4376 struct dentry *new_dentry;
dae6ad8f 4377 struct path old_path, new_path;
146a8595 4378 struct inode *delegated_inode = NULL;
11a7b371 4379 int how = 0;
1da177e4 4380 int error;
1da177e4 4381
020250f3
DK
4382 if ((flags & ~(AT_SYMLINK_FOLLOW | AT_EMPTY_PATH)) != 0) {
4383 error = -EINVAL;
4384 goto out_putnames;
4385 }
11a7b371 4386 /*
f0cc6ffb
LT
4387 * To use null names we require CAP_DAC_READ_SEARCH
4388 * This ensures that not everyone will be able to create
4389 * handlink using the passed filedescriptor.
11a7b371 4390 */
020250f3
DK
4391 if (flags & AT_EMPTY_PATH && !capable(CAP_DAC_READ_SEARCH)) {
4392 error = -ENOENT;
4393 goto out_putnames;
f0cc6ffb 4394 }
11a7b371
AK
4395
4396 if (flags & AT_SYMLINK_FOLLOW)
4397 how |= LOOKUP_FOLLOW;
442e31ca 4398retry:
020250f3 4399 error = __filename_lookup(olddfd, old, how, &old_path, NULL);
1da177e4 4400 if (error)
020250f3 4401 goto out_putnames;
2ad94ae6 4402
020250f3 4403 new_dentry = __filename_create(newdfd, new, &new_path,
442e31ca 4404 (how & LOOKUP_REVAL));
1da177e4 4405 error = PTR_ERR(new_dentry);
6902d925 4406 if (IS_ERR(new_dentry))
020250f3 4407 goto out_putpath;
dae6ad8f
AV
4408
4409 error = -EXDEV;
4410 if (old_path.mnt != new_path.mnt)
4411 goto out_dput;
549c7297
CB
4412 mnt_userns = mnt_user_ns(new_path.mnt);
4413 error = may_linkat(mnt_userns, &old_path);
800179c9
KC
4414 if (unlikely(error))
4415 goto out_dput;
dae6ad8f 4416 error = security_path_link(old_path.dentry, &new_path, new_dentry);
be6d3e56 4417 if (error)
a8104a9f 4418 goto out_dput;
6521f891
CB
4419 error = vfs_link(old_path.dentry, mnt_userns, new_path.dentry->d_inode,
4420 new_dentry, &delegated_inode);
75c3f29d 4421out_dput:
921a1650 4422 done_path_create(&new_path, new_dentry);
146a8595
BF
4423 if (delegated_inode) {
4424 error = break_deleg_wait(&delegated_inode);
d22e6338
OD
4425 if (!error) {
4426 path_put(&old_path);
146a8595 4427 goto retry;
d22e6338 4428 }
146a8595 4429 }
442e31ca 4430 if (retry_estale(error, how)) {
d22e6338 4431 path_put(&old_path);
442e31ca
JL
4432 how |= LOOKUP_REVAL;
4433 goto retry;
4434 }
020250f3 4435out_putpath:
2d8f3038 4436 path_put(&old_path);
020250f3
DK
4437out_putnames:
4438 putname(old);
4439 putname(new);
1da177e4
LT
4440
4441 return error;
4442}
4443
46ea89eb
DB
4444SYSCALL_DEFINE5(linkat, int, olddfd, const char __user *, oldname,
4445 int, newdfd, const char __user *, newname, int, flags)
4446{
020250f3
DK
4447 return do_linkat(olddfd, getname_uflags(oldname, flags),
4448 newdfd, getname(newname), flags);
46ea89eb
DB
4449}
4450
3480b257 4451SYSCALL_DEFINE2(link, const char __user *, oldname, const char __user *, newname)
5590ff0d 4452{
020250f3 4453 return do_linkat(AT_FDCWD, getname(oldname), AT_FDCWD, getname(newname), 0);
5590ff0d
UD
4454}
4455
bc27027a
MS
4456/**
4457 * vfs_rename - rename a filesystem object
2111c3c0 4458 * @rd: pointer to &struct renamedata info
bc27027a
MS
4459 *
4460 * The caller must hold multiple mutexes--see lock_rename()).
4461 *
4462 * If vfs_rename discovers a delegation in need of breaking at either
4463 * the source or destination, it will return -EWOULDBLOCK and return a
4464 * reference to the inode in delegated_inode. The caller should then
4465 * break the delegation and retry. Because breaking a delegation may
4466 * take a long time, the caller should drop all locks before doing
4467 * so.
4468 *
4469 * Alternatively, a caller may pass NULL for delegated_inode. This may
4470 * be appropriate for callers that expect the underlying filesystem not
4471 * to be NFS exported.
4472 *
1da177e4
LT
4473 * The worst of all namespace operations - renaming directory. "Perverted"
4474 * doesn't even start to describe it. Somebody in UCB had a heck of a trip...
4475 * Problems:
0117d427 4476 *
d03b29a2 4477 * a) we can get into loop creation.
1da177e4
LT
4478 * b) race potential - two innocent renames can create a loop together.
4479 * That's where 4.4 screws up. Current fix: serialization on
a11f3a05 4480 * sb->s_vfs_rename_mutex. We might be more accurate, but that's another
1da177e4 4481 * story.
6cedba89
BF
4482 * c) we have to lock _four_ objects - parents and victim (if it exists),
4483 * and source (if it is not a directory).
1b1dcc1b 4484 * And that - after we got ->i_mutex on parents (until then we don't know
1da177e4
LT
4485 * whether the target exists). Solution: try to be smart with locking
4486 * order for inodes. We rely on the fact that tree topology may change
a11f3a05 4487 * only under ->s_vfs_rename_mutex _and_ that parent of the object we
1da177e4
LT
4488 * move will be locked. Thus we can rank directories by the tree
4489 * (ancestors first) and rank all non-directories after them.
4490 * That works since everybody except rename does "lock parent, lookup,
a11f3a05 4491 * lock child" and rename is under ->s_vfs_rename_mutex.
1da177e4
LT
4492 * HOWEVER, it relies on the assumption that any object with ->lookup()
4493 * has no more than 1 dentry. If "hybrid" objects will ever appear,
4494 * we'd better make sure that there's no link(2) for them.
e4eaac06 4495 * d) conversion from fhandle to dentry may come in the wrong moment - when
1b1dcc1b 4496 * we are removing the target. Solution: we will have to grab ->i_mutex
1da177e4 4497 * in the fhandle_to_dentry code. [FIXME - current nfsfh.c relies on
c41b20e7 4498 * ->i_mutex on parents, which works but leads to some truly excessive
1da177e4
LT
4499 * locking].
4500 */
9fe61450 4501int vfs_rename(struct renamedata *rd)
1da177e4 4502{
bc27027a 4503 int error;
9fe61450
CB
4504 struct inode *old_dir = rd->old_dir, *new_dir = rd->new_dir;
4505 struct dentry *old_dentry = rd->old_dentry;
4506 struct dentry *new_dentry = rd->new_dentry;
4507 struct inode **delegated_inode = rd->delegated_inode;
4508 unsigned int flags = rd->flags;
bc27027a 4509 bool is_dir = d_is_dir(old_dentry);
bc27027a 4510 struct inode *source = old_dentry->d_inode;
9055cba7 4511 struct inode *target = new_dentry->d_inode;
da1ce067
MS
4512 bool new_is_dir = false;
4513 unsigned max_links = new_dir->i_sb->s_max_links;
49d31c2f 4514 struct name_snapshot old_name;
bc27027a 4515
8d3e2936 4516 if (source == target)
bc27027a
MS
4517 return 0;
4518
6521f891 4519 error = may_delete(rd->old_mnt_userns, old_dir, old_dentry, is_dir);
bc27027a
MS
4520 if (error)
4521 return error;
4522
da1ce067 4523 if (!target) {
6521f891 4524 error = may_create(rd->new_mnt_userns, new_dir, new_dentry);
da1ce067
MS
4525 } else {
4526 new_is_dir = d_is_dir(new_dentry);
4527
4528 if (!(flags & RENAME_EXCHANGE))
6521f891
CB
4529 error = may_delete(rd->new_mnt_userns, new_dir,
4530 new_dentry, is_dir);
da1ce067 4531 else
6521f891
CB
4532 error = may_delete(rd->new_mnt_userns, new_dir,
4533 new_dentry, new_is_dir);
da1ce067 4534 }
bc27027a
MS
4535 if (error)
4536 return error;
4537
2773bf00 4538 if (!old_dir->i_op->rename)
bc27027a 4539 return -EPERM;
1da177e4
LT
4540
4541 /*
4542 * If we are going to change the parent - check write permissions,
4543 * we'll need to flip '..'.
4544 */
da1ce067
MS
4545 if (new_dir != old_dir) {
4546 if (is_dir) {
6521f891 4547 error = inode_permission(rd->old_mnt_userns, source,
47291baa 4548 MAY_WRITE);
da1ce067
MS
4549 if (error)
4550 return error;
4551 }
4552 if ((flags & RENAME_EXCHANGE) && new_is_dir) {
6521f891 4553 error = inode_permission(rd->new_mnt_userns, target,
47291baa 4554 MAY_WRITE);
da1ce067
MS
4555 if (error)
4556 return error;
4557 }
1da177e4
LT
4558 }
4559
0b3974eb
MS
4560 error = security_inode_rename(old_dir, old_dentry, new_dir, new_dentry,
4561 flags);
1da177e4
LT
4562 if (error)
4563 return error;
4564
49d31c2f 4565 take_dentry_name_snapshot(&old_name, old_dentry);
1d2ef590 4566 dget(new_dentry);
da1ce067 4567 if (!is_dir || (flags & RENAME_EXCHANGE))
bc27027a
MS
4568 lock_two_nondirectories(source, target);
4569 else if (target)
5955102c 4570 inode_lock(target);
9055cba7
SW
4571
4572 error = -EBUSY;
7af1364f 4573 if (is_local_mountpoint(old_dentry) || is_local_mountpoint(new_dentry))
9055cba7
SW
4574 goto out;
4575
da1ce067 4576 if (max_links && new_dir != old_dir) {
bc27027a 4577 error = -EMLINK;
da1ce067 4578 if (is_dir && !new_is_dir && new_dir->i_nlink >= max_links)
bc27027a 4579 goto out;
da1ce067
MS
4580 if ((flags & RENAME_EXCHANGE) && !is_dir && new_is_dir &&
4581 old_dir->i_nlink >= max_links)
4582 goto out;
4583 }
da1ce067 4584 if (!is_dir) {
bc27027a 4585 error = try_break_deleg(source, delegated_inode);
8e6d782c
BF
4586 if (error)
4587 goto out;
da1ce067
MS
4588 }
4589 if (target && !new_is_dir) {
4590 error = try_break_deleg(target, delegated_inode);
4591 if (error)
4592 goto out;
8e6d782c 4593 }
549c7297
CB
4594 error = old_dir->i_op->rename(rd->new_mnt_userns, old_dir, old_dentry,
4595 new_dir, new_dentry, flags);
51892bbb
SW
4596 if (error)
4597 goto out;
4598
da1ce067 4599 if (!(flags & RENAME_EXCHANGE) && target) {
8767712f
AV
4600 if (is_dir) {
4601 shrink_dcache_parent(new_dentry);
bc27027a 4602 target->i_flags |= S_DEAD;
8767712f 4603 }
51892bbb 4604 dont_mount(new_dentry);
8ed936b5 4605 detach_mounts(new_dentry);
bc27027a 4606 }
da1ce067
MS
4607 if (!(old_dir->i_sb->s_type->fs_flags & FS_RENAME_DOES_D_MOVE)) {
4608 if (!(flags & RENAME_EXCHANGE))
4609 d_move(old_dentry, new_dentry);
4610 else
4611 d_exchange(old_dentry, new_dentry);
4612 }
51892bbb 4613out:
da1ce067 4614 if (!is_dir || (flags & RENAME_EXCHANGE))
bc27027a
MS
4615 unlock_two_nondirectories(source, target);
4616 else if (target)
5955102c 4617 inode_unlock(target);
1da177e4 4618 dput(new_dentry);
da1ce067 4619 if (!error) {
f4ec3a3d 4620 fsnotify_move(old_dir, new_dir, &old_name.name, is_dir,
da1ce067
MS
4621 !(flags & RENAME_EXCHANGE) ? target : NULL, old_dentry);
4622 if (flags & RENAME_EXCHANGE) {
f4ec3a3d 4623 fsnotify_move(new_dir, old_dir, &old_dentry->d_name,
da1ce067
MS
4624 new_is_dir, NULL, new_dentry);
4625 }
4626 }
49d31c2f 4627 release_dentry_name_snapshot(&old_name);
0eeca283 4628
1da177e4
LT
4629 return error;
4630}
4d359507 4631EXPORT_SYMBOL(vfs_rename);
1da177e4 4632
e886663c
JA
4633int do_renameat2(int olddfd, struct filename *from, int newdfd,
4634 struct filename *to, unsigned int flags)
1da177e4 4635{
9fe61450 4636 struct renamedata rd;
2ad94ae6
AV
4637 struct dentry *old_dentry, *new_dentry;
4638 struct dentry *trap;
f5beed75
AV
4639 struct path old_path, new_path;
4640 struct qstr old_last, new_last;
4641 int old_type, new_type;
8e6d782c 4642 struct inode *delegated_inode = NULL;
f5beed75 4643 unsigned int lookup_flags = 0, target_flags = LOOKUP_RENAME_TARGET;
c6a94284 4644 bool should_retry = false;
e886663c 4645 int error = -EINVAL;
520c8b16 4646
0d7a8555 4647 if (flags & ~(RENAME_NOREPLACE | RENAME_EXCHANGE | RENAME_WHITEOUT))
0ee50b47 4648 goto put_names;
da1ce067 4649
0d7a8555
MS
4650 if ((flags & (RENAME_NOREPLACE | RENAME_WHITEOUT)) &&
4651 (flags & RENAME_EXCHANGE))
0ee50b47 4652 goto put_names;
520c8b16 4653
f5beed75
AV
4654 if (flags & RENAME_EXCHANGE)
4655 target_flags = 0;
4656
c6a94284 4657retry:
0ee50b47 4658 error = __filename_parentat(olddfd, from, lookup_flags, &old_path,
e886663c 4659 &old_last, &old_type);
0ee50b47
DK
4660 if (error)
4661 goto put_names;
1da177e4 4662
0ee50b47 4663 error = __filename_parentat(newdfd, to, lookup_flags, &new_path, &new_last,
e886663c 4664 &new_type);
0ee50b47 4665 if (error)
1da177e4
LT
4666 goto exit1;
4667
4668 error = -EXDEV;
f5beed75 4669 if (old_path.mnt != new_path.mnt)
1da177e4
LT
4670 goto exit2;
4671
1da177e4 4672 error = -EBUSY;
f5beed75 4673 if (old_type != LAST_NORM)
1da177e4
LT
4674 goto exit2;
4675
0a7c3937
MS
4676 if (flags & RENAME_NOREPLACE)
4677 error = -EEXIST;
f5beed75 4678 if (new_type != LAST_NORM)
1da177e4
LT
4679 goto exit2;
4680
f5beed75 4681 error = mnt_want_write(old_path.mnt);
c30dabfe
JK
4682 if (error)
4683 goto exit2;
4684
8e6d782c 4685retry_deleg:
f5beed75 4686 trap = lock_rename(new_path.dentry, old_path.dentry);
1da177e4 4687
f5beed75 4688 old_dentry = __lookup_hash(&old_last, old_path.dentry, lookup_flags);
1da177e4
LT
4689 error = PTR_ERR(old_dentry);
4690 if (IS_ERR(old_dentry))
4691 goto exit3;
4692 /* source must exist */
4693 error = -ENOENT;
b18825a7 4694 if (d_is_negative(old_dentry))
1da177e4 4695 goto exit4;
f5beed75 4696 new_dentry = __lookup_hash(&new_last, new_path.dentry, lookup_flags | target_flags);
0a7c3937
MS
4697 error = PTR_ERR(new_dentry);
4698 if (IS_ERR(new_dentry))
4699 goto exit4;
4700 error = -EEXIST;
4701 if ((flags & RENAME_NOREPLACE) && d_is_positive(new_dentry))
4702 goto exit5;
da1ce067
MS
4703 if (flags & RENAME_EXCHANGE) {
4704 error = -ENOENT;
4705 if (d_is_negative(new_dentry))
4706 goto exit5;
4707
4708 if (!d_is_dir(new_dentry)) {
4709 error = -ENOTDIR;
f5beed75 4710 if (new_last.name[new_last.len])
da1ce067
MS
4711 goto exit5;
4712 }
4713 }
1da177e4 4714 /* unless the source is a directory trailing slashes give -ENOTDIR */
44b1d530 4715 if (!d_is_dir(old_dentry)) {
1da177e4 4716 error = -ENOTDIR;
f5beed75 4717 if (old_last.name[old_last.len])
0a7c3937 4718 goto exit5;
f5beed75 4719 if (!(flags & RENAME_EXCHANGE) && new_last.name[new_last.len])
0a7c3937 4720 goto exit5;
1da177e4
LT
4721 }
4722 /* source should not be ancestor of target */
4723 error = -EINVAL;
4724 if (old_dentry == trap)
0a7c3937 4725 goto exit5;
1da177e4 4726 /* target should not be an ancestor of source */
da1ce067
MS
4727 if (!(flags & RENAME_EXCHANGE))
4728 error = -ENOTEMPTY;
1da177e4
LT
4729 if (new_dentry == trap)
4730 goto exit5;
4731
f5beed75
AV
4732 error = security_path_rename(&old_path, old_dentry,
4733 &new_path, new_dentry, flags);
be6d3e56 4734 if (error)
c30dabfe 4735 goto exit5;
9fe61450
CB
4736
4737 rd.old_dir = old_path.dentry->d_inode;
4738 rd.old_dentry = old_dentry;
6521f891 4739 rd.old_mnt_userns = mnt_user_ns(old_path.mnt);
9fe61450
CB
4740 rd.new_dir = new_path.dentry->d_inode;
4741 rd.new_dentry = new_dentry;
6521f891 4742 rd.new_mnt_userns = mnt_user_ns(new_path.mnt);
9fe61450
CB
4743 rd.delegated_inode = &delegated_inode;
4744 rd.flags = flags;
4745 error = vfs_rename(&rd);
1da177e4
LT
4746exit5:
4747 dput(new_dentry);
4748exit4:
4749 dput(old_dentry);
4750exit3:
f5beed75 4751 unlock_rename(new_path.dentry, old_path.dentry);
8e6d782c
BF
4752 if (delegated_inode) {
4753 error = break_deleg_wait(&delegated_inode);
4754 if (!error)
4755 goto retry_deleg;
4756 }
f5beed75 4757 mnt_drop_write(old_path.mnt);
1da177e4 4758exit2:
c6a94284
JL
4759 if (retry_estale(error, lookup_flags))
4760 should_retry = true;
f5beed75 4761 path_put(&new_path);
1da177e4 4762exit1:
f5beed75 4763 path_put(&old_path);
c6a94284
JL
4764 if (should_retry) {
4765 should_retry = false;
4766 lookup_flags |= LOOKUP_REVAL;
4767 goto retry;
4768 }
0ee50b47 4769put_names:
91ef658f 4770 putname(from);
91ef658f 4771 putname(to);
1da177e4
LT
4772 return error;
4773}
4774
ee81feb6
DB
4775SYSCALL_DEFINE5(renameat2, int, olddfd, const char __user *, oldname,
4776 int, newdfd, const char __user *, newname, unsigned int, flags)
4777{
e886663c
JA
4778 return do_renameat2(olddfd, getname(oldname), newdfd, getname(newname),
4779 flags);
ee81feb6
DB
4780}
4781
520c8b16
MS
4782SYSCALL_DEFINE4(renameat, int, olddfd, const char __user *, oldname,
4783 int, newdfd, const char __user *, newname)
4784{
e886663c
JA
4785 return do_renameat2(olddfd, getname(oldname), newdfd, getname(newname),
4786 0);
520c8b16
MS
4787}
4788
a26eab24 4789SYSCALL_DEFINE2(rename, const char __user *, oldname, const char __user *, newname)
5590ff0d 4790{
e886663c
JA
4791 return do_renameat2(AT_FDCWD, getname(oldname), AT_FDCWD,
4792 getname(newname), 0);
5590ff0d
UD
4793}
4794
5d826c84 4795int readlink_copy(char __user *buffer, int buflen, const char *link)
1da177e4 4796{
5d826c84 4797 int len = PTR_ERR(link);
1da177e4
LT
4798 if (IS_ERR(link))
4799 goto out;
4800
4801 len = strlen(link);
4802 if (len > (unsigned) buflen)
4803 len = buflen;
4804 if (copy_to_user(buffer, link, len))
4805 len = -EFAULT;
4806out:
4807 return len;
4808}
4809
fd4a0edf
MS
4810/**
4811 * vfs_readlink - copy symlink body into userspace buffer
4812 * @dentry: dentry on which to get symbolic link
4813 * @buffer: user memory pointer
4814 * @buflen: size of buffer
4815 *
4816 * Does not touch atime. That's up to the caller if necessary
4817 *
4818 * Does not call security hook.
4819 */
4820int vfs_readlink(struct dentry *dentry, char __user *buffer, int buflen)
4821{
4822 struct inode *inode = d_inode(dentry);
f2df5da6
AV
4823 DEFINE_DELAYED_CALL(done);
4824 const char *link;
4825 int res;
fd4a0edf 4826
76fca90e
MS
4827 if (unlikely(!(inode->i_opflags & IOP_DEFAULT_READLINK))) {
4828 if (unlikely(inode->i_op->readlink))
4829 return inode->i_op->readlink(dentry, buffer, buflen);
4830
4831 if (!d_is_symlink(dentry))
4832 return -EINVAL;
4833
4834 spin_lock(&inode->i_lock);
4835 inode->i_opflags |= IOP_DEFAULT_READLINK;
4836 spin_unlock(&inode->i_lock);
4837 }
fd4a0edf 4838
4c4f7c19 4839 link = READ_ONCE(inode->i_link);
f2df5da6
AV
4840 if (!link) {
4841 link = inode->i_op->get_link(dentry, inode, &done);
4842 if (IS_ERR(link))
4843 return PTR_ERR(link);
4844 }
4845 res = readlink_copy(buffer, buflen, link);
4846 do_delayed_call(&done);
4847 return res;
fd4a0edf
MS
4848}
4849EXPORT_SYMBOL(vfs_readlink);
1da177e4 4850
d60874cd
MS
4851/**
4852 * vfs_get_link - get symlink body
4853 * @dentry: dentry on which to get symbolic link
4854 * @done: caller needs to free returned data with this
4855 *
4856 * Calls security hook and i_op->get_link() on the supplied inode.
4857 *
4858 * It does not touch atime. That's up to the caller if necessary.
4859 *
4860 * Does not work on "special" symlinks like /proc/$$/fd/N
4861 */
4862const char *vfs_get_link(struct dentry *dentry, struct delayed_call *done)
4863{
4864 const char *res = ERR_PTR(-EINVAL);
4865 struct inode *inode = d_inode(dentry);
4866
4867 if (d_is_symlink(dentry)) {
4868 res = ERR_PTR(security_inode_readlink(dentry));
4869 if (!res)
4870 res = inode->i_op->get_link(dentry, inode, done);
4871 }
4872 return res;
4873}
4874EXPORT_SYMBOL(vfs_get_link);
4875
1da177e4 4876/* get the link contents into pagecache */
6b255391 4877const char *page_get_link(struct dentry *dentry, struct inode *inode,
fceef393 4878 struct delayed_call *callback)
1da177e4 4879{
ebd09abb
DG
4880 char *kaddr;
4881 struct page *page;
6b255391
AV
4882 struct address_space *mapping = inode->i_mapping;
4883
d3883d4f
AV
4884 if (!dentry) {
4885 page = find_get_page(mapping, 0);
4886 if (!page)
4887 return ERR_PTR(-ECHILD);
4888 if (!PageUptodate(page)) {
4889 put_page(page);
4890 return ERR_PTR(-ECHILD);
4891 }
4892 } else {
4893 page = read_mapping_page(mapping, 0, NULL);
4894 if (IS_ERR(page))
4895 return (char*)page;
4896 }
fceef393 4897 set_delayed_call(callback, page_put_link, page);
21fc61c7
AV
4898 BUG_ON(mapping_gfp_mask(mapping) & __GFP_HIGHMEM);
4899 kaddr = page_address(page);
6b255391 4900 nd_terminate_link(kaddr, inode->i_size, PAGE_SIZE - 1);
ebd09abb 4901 return kaddr;
1da177e4
LT
4902}
4903
6b255391 4904EXPORT_SYMBOL(page_get_link);
1da177e4 4905
fceef393 4906void page_put_link(void *arg)
1da177e4 4907{
fceef393 4908 put_page(arg);
1da177e4 4909}
4d359507 4910EXPORT_SYMBOL(page_put_link);
1da177e4 4911
aa80deab
AV
4912int page_readlink(struct dentry *dentry, char __user *buffer, int buflen)
4913{
fceef393 4914 DEFINE_DELAYED_CALL(done);
6b255391
AV
4915 int res = readlink_copy(buffer, buflen,
4916 page_get_link(dentry, d_inode(dentry),
fceef393
AV
4917 &done));
4918 do_delayed_call(&done);
aa80deab
AV
4919 return res;
4920}
4921EXPORT_SYMBOL(page_readlink);
4922
54566b2c
NP
4923/*
4924 * The nofs argument instructs pagecache_write_begin to pass AOP_FLAG_NOFS
4925 */
4926int __page_symlink(struct inode *inode, const char *symname, int len, int nofs)
1da177e4
LT
4927{
4928 struct address_space *mapping = inode->i_mapping;
0adb25d2 4929 struct page *page;
afddba49 4930 void *fsdata;
beb497ab 4931 int err;
c718a975 4932 unsigned int flags = 0;
54566b2c
NP
4933 if (nofs)
4934 flags |= AOP_FLAG_NOFS;
1da177e4 4935
7e53cac4 4936retry:
afddba49 4937 err = pagecache_write_begin(NULL, mapping, 0, len-1,
54566b2c 4938 flags, &page, &fsdata);
1da177e4 4939 if (err)
afddba49
NP
4940 goto fail;
4941
21fc61c7 4942 memcpy(page_address(page), symname, len-1);
afddba49
NP
4943
4944 err = pagecache_write_end(NULL, mapping, 0, len-1, len-1,
4945 page, fsdata);
1da177e4
LT
4946 if (err < 0)
4947 goto fail;
afddba49
NP
4948 if (err < len-1)
4949 goto retry;
4950
1da177e4
LT
4951 mark_inode_dirty(inode);
4952 return 0;
1da177e4
LT
4953fail:
4954 return err;
4955}
4d359507 4956EXPORT_SYMBOL(__page_symlink);
1da177e4 4957
0adb25d2
KK
4958int page_symlink(struct inode *inode, const char *symname, int len)
4959{
4960 return __page_symlink(inode, symname, len,
c62d2555 4961 !mapping_gfp_constraint(inode->i_mapping, __GFP_FS));
0adb25d2 4962}
4d359507 4963EXPORT_SYMBOL(page_symlink);
0adb25d2 4964
92e1d5be 4965const struct inode_operations page_symlink_inode_operations = {
6b255391 4966 .get_link = page_get_link,
1da177e4 4967};
1da177e4 4968EXPORT_SYMBOL(page_symlink_inode_operations);