namespace.c 84 KB

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  1. /*
  2. * linux/fs/namespace.c
  3. *
  4. * (C) Copyright Al Viro 2000, 2001
  5. * Released under GPL v2.
  6. *
  7. * Based on code from fs/super.c, copyright Linus Torvalds and others.
  8. * Heavily rewritten.
  9. */
  10. #include <linux/syscalls.h>
  11. #include <linux/export.h>
  12. #include <linux/capability.h>
  13. #include <linux/mnt_namespace.h>
  14. #include <linux/user_namespace.h>
  15. #include <linux/namei.h>
  16. #include <linux/security.h>
  17. #include <linux/cred.h>
  18. #include <linux/idr.h>
  19. #include <linux/init.h> /* init_rootfs */
  20. #include <linux/fs_struct.h> /* get_fs_root et.al. */
  21. #include <linux/fsnotify.h> /* fsnotify_vfsmount_delete */
  22. #include <linux/uaccess.h>
  23. #include <linux/proc_ns.h>
  24. #include <linux/magic.h>
  25. #include <linux/bootmem.h>
  26. #include <linux/task_work.h>
  27. #include <linux/sched/task.h>
  28. #include "pnode.h"
  29. #include "internal.h"
  30. /* Maximum number of mounts in a mount namespace */
  31. unsigned int sysctl_mount_max __read_mostly = 100000;
  32. static unsigned int m_hash_mask __read_mostly;
  33. static unsigned int m_hash_shift __read_mostly;
  34. static unsigned int mp_hash_mask __read_mostly;
  35. static unsigned int mp_hash_shift __read_mostly;
  36. static __initdata unsigned long mhash_entries;
  37. static int __init set_mhash_entries(char *str)
  38. {
  39. if (!str)
  40. return 0;
  41. mhash_entries = simple_strtoul(str, &str, 0);
  42. return 1;
  43. }
  44. __setup("mhash_entries=", set_mhash_entries);
  45. static __initdata unsigned long mphash_entries;
  46. static int __init set_mphash_entries(char *str)
  47. {
  48. if (!str)
  49. return 0;
  50. mphash_entries = simple_strtoul(str, &str, 0);
  51. return 1;
  52. }
  53. __setup("mphash_entries=", set_mphash_entries);
  54. static u64 event;
  55. static DEFINE_IDA(mnt_id_ida);
  56. static DEFINE_IDA(mnt_group_ida);
  57. static DEFINE_SPINLOCK(mnt_id_lock);
  58. static int mnt_id_start = 0;
  59. static int mnt_group_start = 1;
  60. static struct hlist_head *mount_hashtable __read_mostly;
  61. static struct hlist_head *mountpoint_hashtable __read_mostly;
  62. static struct kmem_cache *mnt_cache __read_mostly;
  63. static DECLARE_RWSEM(namespace_sem);
  64. /* /sys/fs */
  65. struct kobject *fs_kobj;
  66. EXPORT_SYMBOL_GPL(fs_kobj);
  67. /*
  68. * vfsmount lock may be taken for read to prevent changes to the
  69. * vfsmount hash, ie. during mountpoint lookups or walking back
  70. * up the tree.
  71. *
  72. * It should be taken for write in all cases where the vfsmount
  73. * tree or hash is modified or when a vfsmount structure is modified.
  74. */
  75. __cacheline_aligned_in_smp DEFINE_SEQLOCK(mount_lock);
  76. static inline struct hlist_head *m_hash(struct vfsmount *mnt, struct dentry *dentry)
  77. {
  78. unsigned long tmp = ((unsigned long)mnt / L1_CACHE_BYTES);
  79. tmp += ((unsigned long)dentry / L1_CACHE_BYTES);
  80. tmp = tmp + (tmp >> m_hash_shift);
  81. return &mount_hashtable[tmp & m_hash_mask];
  82. }
  83. static inline struct hlist_head *mp_hash(struct dentry *dentry)
  84. {
  85. unsigned long tmp = ((unsigned long)dentry / L1_CACHE_BYTES);
  86. tmp = tmp + (tmp >> mp_hash_shift);
  87. return &mountpoint_hashtable[tmp & mp_hash_mask];
  88. }
  89. static int mnt_alloc_id(struct mount *mnt)
  90. {
  91. int res;
  92. retry:
  93. ida_pre_get(&mnt_id_ida, GFP_KERNEL);
  94. spin_lock(&mnt_id_lock);
  95. res = ida_get_new_above(&mnt_id_ida, mnt_id_start, &mnt->mnt_id);
  96. if (!res)
  97. mnt_id_start = mnt->mnt_id + 1;
  98. spin_unlock(&mnt_id_lock);
  99. if (res == -EAGAIN)
  100. goto retry;
  101. return res;
  102. }
  103. static void mnt_free_id(struct mount *mnt)
  104. {
  105. int id = mnt->mnt_id;
  106. spin_lock(&mnt_id_lock);
  107. ida_remove(&mnt_id_ida, id);
  108. if (mnt_id_start > id)
  109. mnt_id_start = id;
  110. spin_unlock(&mnt_id_lock);
  111. }
  112. /*
  113. * Allocate a new peer group ID
  114. *
  115. * mnt_group_ida is protected by namespace_sem
  116. */
  117. static int mnt_alloc_group_id(struct mount *mnt)
  118. {
  119. int res;
  120. if (!ida_pre_get(&mnt_group_ida, GFP_KERNEL))
  121. return -ENOMEM;
  122. res = ida_get_new_above(&mnt_group_ida,
  123. mnt_group_start,
  124. &mnt->mnt_group_id);
  125. if (!res)
  126. mnt_group_start = mnt->mnt_group_id + 1;
  127. return res;
  128. }
  129. /*
  130. * Release a peer group ID
  131. */
  132. void mnt_release_group_id(struct mount *mnt)
  133. {
  134. int id = mnt->mnt_group_id;
  135. ida_remove(&mnt_group_ida, id);
  136. if (mnt_group_start > id)
  137. mnt_group_start = id;
  138. mnt->mnt_group_id = 0;
  139. }
  140. /*
  141. * vfsmount lock must be held for read
  142. */
  143. static inline void mnt_add_count(struct mount *mnt, int n)
  144. {
  145. #ifdef CONFIG_SMP
  146. this_cpu_add(mnt->mnt_pcp->mnt_count, n);
  147. #else
  148. preempt_disable();
  149. mnt->mnt_count += n;
  150. preempt_enable();
  151. #endif
  152. }
  153. /*
  154. * vfsmount lock must be held for write
  155. */
  156. unsigned int mnt_get_count(struct mount *mnt)
  157. {
  158. #ifdef CONFIG_SMP
  159. unsigned int count = 0;
  160. int cpu;
  161. for_each_possible_cpu(cpu) {
  162. count += per_cpu_ptr(mnt->mnt_pcp, cpu)->mnt_count;
  163. }
  164. return count;
  165. #else
  166. return mnt->mnt_count;
  167. #endif
  168. }
  169. static void drop_mountpoint(struct fs_pin *p)
  170. {
  171. struct mount *m = container_of(p, struct mount, mnt_umount);
  172. dput(m->mnt_ex_mountpoint);
  173. pin_remove(p);
  174. mntput(&m->mnt);
  175. }
  176. static struct mount *alloc_vfsmnt(const char *name)
  177. {
  178. struct mount *mnt = kmem_cache_zalloc(mnt_cache, GFP_KERNEL);
  179. if (mnt) {
  180. int err;
  181. err = mnt_alloc_id(mnt);
  182. if (err)
  183. goto out_free_cache;
  184. if (name) {
  185. mnt->mnt_devname = kstrdup_const(name, GFP_KERNEL);
  186. if (!mnt->mnt_devname)
  187. goto out_free_id;
  188. }
  189. #ifdef CONFIG_SMP
  190. mnt->mnt_pcp = alloc_percpu(struct mnt_pcp);
  191. if (!mnt->mnt_pcp)
  192. goto out_free_devname;
  193. this_cpu_add(mnt->mnt_pcp->mnt_count, 1);
  194. #else
  195. mnt->mnt_count = 1;
  196. mnt->mnt_writers = 0;
  197. #endif
  198. INIT_HLIST_NODE(&mnt->mnt_hash);
  199. INIT_LIST_HEAD(&mnt->mnt_child);
  200. INIT_LIST_HEAD(&mnt->mnt_mounts);
  201. INIT_LIST_HEAD(&mnt->mnt_list);
  202. INIT_LIST_HEAD(&mnt->mnt_expire);
  203. INIT_LIST_HEAD(&mnt->mnt_share);
  204. INIT_LIST_HEAD(&mnt->mnt_slave_list);
  205. INIT_LIST_HEAD(&mnt->mnt_slave);
  206. INIT_HLIST_NODE(&mnt->mnt_mp_list);
  207. INIT_LIST_HEAD(&mnt->mnt_umounting);
  208. init_fs_pin(&mnt->mnt_umount, drop_mountpoint);
  209. }
  210. return mnt;
  211. #ifdef CONFIG_SMP
  212. out_free_devname:
  213. kfree_const(mnt->mnt_devname);
  214. #endif
  215. out_free_id:
  216. mnt_free_id(mnt);
  217. out_free_cache:
  218. kmem_cache_free(mnt_cache, mnt);
  219. return NULL;
  220. }
  221. /*
  222. * Most r/o checks on a fs are for operations that take
  223. * discrete amounts of time, like a write() or unlink().
  224. * We must keep track of when those operations start
  225. * (for permission checks) and when they end, so that
  226. * we can determine when writes are able to occur to
  227. * a filesystem.
  228. */
  229. /*
  230. * __mnt_is_readonly: check whether a mount is read-only
  231. * @mnt: the mount to check for its write status
  232. *
  233. * This shouldn't be used directly ouside of the VFS.
  234. * It does not guarantee that the filesystem will stay
  235. * r/w, just that it is right *now*. This can not and
  236. * should not be used in place of IS_RDONLY(inode).
  237. * mnt_want/drop_write() will _keep_ the filesystem
  238. * r/w.
  239. */
  240. int __mnt_is_readonly(struct vfsmount *mnt)
  241. {
  242. if (mnt->mnt_flags & MNT_READONLY)
  243. return 1;
  244. if (sb_rdonly(mnt->mnt_sb))
  245. return 1;
  246. return 0;
  247. }
  248. EXPORT_SYMBOL_GPL(__mnt_is_readonly);
  249. static inline void mnt_inc_writers(struct mount *mnt)
  250. {
  251. #ifdef CONFIG_SMP
  252. this_cpu_inc(mnt->mnt_pcp->mnt_writers);
  253. #else
  254. mnt->mnt_writers++;
  255. #endif
  256. }
  257. static inline void mnt_dec_writers(struct mount *mnt)
  258. {
  259. #ifdef CONFIG_SMP
  260. this_cpu_dec(mnt->mnt_pcp->mnt_writers);
  261. #else
  262. mnt->mnt_writers--;
  263. #endif
  264. }
  265. static unsigned int mnt_get_writers(struct mount *mnt)
  266. {
  267. #ifdef CONFIG_SMP
  268. unsigned int count = 0;
  269. int cpu;
  270. for_each_possible_cpu(cpu) {
  271. count += per_cpu_ptr(mnt->mnt_pcp, cpu)->mnt_writers;
  272. }
  273. return count;
  274. #else
  275. return mnt->mnt_writers;
  276. #endif
  277. }
  278. static int mnt_is_readonly(struct vfsmount *mnt)
  279. {
  280. if (mnt->mnt_sb->s_readonly_remount)
  281. return 1;
  282. /* Order wrt setting s_flags/s_readonly_remount in do_remount() */
  283. smp_rmb();
  284. return __mnt_is_readonly(mnt);
  285. }
  286. /*
  287. * Most r/o & frozen checks on a fs are for operations that take discrete
  288. * amounts of time, like a write() or unlink(). We must keep track of when
  289. * those operations start (for permission checks) and when they end, so that we
  290. * can determine when writes are able to occur to a filesystem.
  291. */
  292. /**
  293. * __mnt_want_write - get write access to a mount without freeze protection
  294. * @m: the mount on which to take a write
  295. *
  296. * This tells the low-level filesystem that a write is about to be performed to
  297. * it, and makes sure that writes are allowed (mnt it read-write) before
  298. * returning success. This operation does not protect against filesystem being
  299. * frozen. When the write operation is finished, __mnt_drop_write() must be
  300. * called. This is effectively a refcount.
  301. */
  302. int __mnt_want_write(struct vfsmount *m)
  303. {
  304. struct mount *mnt = real_mount(m);
  305. int ret = 0;
  306. preempt_disable();
  307. mnt_inc_writers(mnt);
  308. /*
  309. * The store to mnt_inc_writers must be visible before we pass
  310. * MNT_WRITE_HOLD loop below, so that the slowpath can see our
  311. * incremented count after it has set MNT_WRITE_HOLD.
  312. */
  313. smp_mb();
  314. while (ACCESS_ONCE(mnt->mnt.mnt_flags) & MNT_WRITE_HOLD)
  315. cpu_relax();
  316. /*
  317. * After the slowpath clears MNT_WRITE_HOLD, mnt_is_readonly will
  318. * be set to match its requirements. So we must not load that until
  319. * MNT_WRITE_HOLD is cleared.
  320. */
  321. smp_rmb();
  322. if (mnt_is_readonly(m)) {
  323. mnt_dec_writers(mnt);
  324. ret = -EROFS;
  325. }
  326. preempt_enable();
  327. return ret;
  328. }
  329. /**
  330. * mnt_want_write - get write access to a mount
  331. * @m: the mount on which to take a write
  332. *
  333. * This tells the low-level filesystem that a write is about to be performed to
  334. * it, and makes sure that writes are allowed (mount is read-write, filesystem
  335. * is not frozen) before returning success. When the write operation is
  336. * finished, mnt_drop_write() must be called. This is effectively a refcount.
  337. */
  338. int mnt_want_write(struct vfsmount *m)
  339. {
  340. int ret;
  341. sb_start_write(m->mnt_sb);
  342. ret = __mnt_want_write(m);
  343. if (ret)
  344. sb_end_write(m->mnt_sb);
  345. return ret;
  346. }
  347. EXPORT_SYMBOL_GPL(mnt_want_write);
  348. /**
  349. * mnt_clone_write - get write access to a mount
  350. * @mnt: the mount on which to take a write
  351. *
  352. * This is effectively like mnt_want_write, except
  353. * it must only be used to take an extra write reference
  354. * on a mountpoint that we already know has a write reference
  355. * on it. This allows some optimisation.
  356. *
  357. * After finished, mnt_drop_write must be called as usual to
  358. * drop the reference.
  359. */
  360. int mnt_clone_write(struct vfsmount *mnt)
  361. {
  362. /* superblock may be r/o */
  363. if (__mnt_is_readonly(mnt))
  364. return -EROFS;
  365. preempt_disable();
  366. mnt_inc_writers(real_mount(mnt));
  367. preempt_enable();
  368. return 0;
  369. }
  370. EXPORT_SYMBOL_GPL(mnt_clone_write);
  371. /**
  372. * __mnt_want_write_file - get write access to a file's mount
  373. * @file: the file who's mount on which to take a write
  374. *
  375. * This is like __mnt_want_write, but it takes a file and can
  376. * do some optimisations if the file is open for write already
  377. */
  378. int __mnt_want_write_file(struct file *file)
  379. {
  380. if (!(file->f_mode & FMODE_WRITER))
  381. return __mnt_want_write(file->f_path.mnt);
  382. else
  383. return mnt_clone_write(file->f_path.mnt);
  384. }
  385. /**
  386. * mnt_want_write_file - get write access to a file's mount
  387. * @file: the file who's mount on which to take a write
  388. *
  389. * This is like mnt_want_write, but it takes a file and can
  390. * do some optimisations if the file is open for write already
  391. */
  392. int mnt_want_write_file(struct file *file)
  393. {
  394. int ret;
  395. sb_start_write(file->f_path.mnt->mnt_sb);
  396. ret = __mnt_want_write_file(file);
  397. if (ret)
  398. sb_end_write(file->f_path.mnt->mnt_sb);
  399. return ret;
  400. }
  401. EXPORT_SYMBOL_GPL(mnt_want_write_file);
  402. /**
  403. * __mnt_drop_write - give up write access to a mount
  404. * @mnt: the mount on which to give up write access
  405. *
  406. * Tells the low-level filesystem that we are done
  407. * performing writes to it. Must be matched with
  408. * __mnt_want_write() call above.
  409. */
  410. void __mnt_drop_write(struct vfsmount *mnt)
  411. {
  412. preempt_disable();
  413. mnt_dec_writers(real_mount(mnt));
  414. preempt_enable();
  415. }
  416. /**
  417. * mnt_drop_write - give up write access to a mount
  418. * @mnt: the mount on which to give up write access
  419. *
  420. * Tells the low-level filesystem that we are done performing writes to it and
  421. * also allows filesystem to be frozen again. Must be matched with
  422. * mnt_want_write() call above.
  423. */
  424. void mnt_drop_write(struct vfsmount *mnt)
  425. {
  426. __mnt_drop_write(mnt);
  427. sb_end_write(mnt->mnt_sb);
  428. }
  429. EXPORT_SYMBOL_GPL(mnt_drop_write);
  430. void __mnt_drop_write_file(struct file *file)
  431. {
  432. __mnt_drop_write(file->f_path.mnt);
  433. }
  434. void mnt_drop_write_file(struct file *file)
  435. {
  436. mnt_drop_write(file->f_path.mnt);
  437. }
  438. EXPORT_SYMBOL(mnt_drop_write_file);
  439. static int mnt_make_readonly(struct mount *mnt)
  440. {
  441. int ret = 0;
  442. lock_mount_hash();
  443. mnt->mnt.mnt_flags |= MNT_WRITE_HOLD;
  444. /*
  445. * After storing MNT_WRITE_HOLD, we'll read the counters. This store
  446. * should be visible before we do.
  447. */
  448. smp_mb();
  449. /*
  450. * With writers on hold, if this value is zero, then there are
  451. * definitely no active writers (although held writers may subsequently
  452. * increment the count, they'll have to wait, and decrement it after
  453. * seeing MNT_READONLY).
  454. *
  455. * It is OK to have counter incremented on one CPU and decremented on
  456. * another: the sum will add up correctly. The danger would be when we
  457. * sum up each counter, if we read a counter before it is incremented,
  458. * but then read another CPU's count which it has been subsequently
  459. * decremented from -- we would see more decrements than we should.
  460. * MNT_WRITE_HOLD protects against this scenario, because
  461. * mnt_want_write first increments count, then smp_mb, then spins on
  462. * MNT_WRITE_HOLD, so it can't be decremented by another CPU while
  463. * we're counting up here.
  464. */
  465. if (mnt_get_writers(mnt) > 0)
  466. ret = -EBUSY;
  467. else
  468. mnt->mnt.mnt_flags |= MNT_READONLY;
  469. /*
  470. * MNT_READONLY must become visible before ~MNT_WRITE_HOLD, so writers
  471. * that become unheld will see MNT_READONLY.
  472. */
  473. smp_wmb();
  474. mnt->mnt.mnt_flags &= ~MNT_WRITE_HOLD;
  475. unlock_mount_hash();
  476. return ret;
  477. }
  478. static void __mnt_unmake_readonly(struct mount *mnt)
  479. {
  480. lock_mount_hash();
  481. mnt->mnt.mnt_flags &= ~MNT_READONLY;
  482. unlock_mount_hash();
  483. }
  484. int sb_prepare_remount_readonly(struct super_block *sb)
  485. {
  486. struct mount *mnt;
  487. int err = 0;
  488. /* Racy optimization. Recheck the counter under MNT_WRITE_HOLD */
  489. if (atomic_long_read(&sb->s_remove_count))
  490. return -EBUSY;
  491. lock_mount_hash();
  492. list_for_each_entry(mnt, &sb->s_mounts, mnt_instance) {
  493. if (!(mnt->mnt.mnt_flags & MNT_READONLY)) {
  494. mnt->mnt.mnt_flags |= MNT_WRITE_HOLD;
  495. smp_mb();
  496. if (mnt_get_writers(mnt) > 0) {
  497. err = -EBUSY;
  498. break;
  499. }
  500. }
  501. }
  502. if (!err && atomic_long_read(&sb->s_remove_count))
  503. err = -EBUSY;
  504. if (!err) {
  505. sb->s_readonly_remount = 1;
  506. smp_wmb();
  507. }
  508. list_for_each_entry(mnt, &sb->s_mounts, mnt_instance) {
  509. if (mnt->mnt.mnt_flags & MNT_WRITE_HOLD)
  510. mnt->mnt.mnt_flags &= ~MNT_WRITE_HOLD;
  511. }
  512. unlock_mount_hash();
  513. return err;
  514. }
  515. static void free_vfsmnt(struct mount *mnt)
  516. {
  517. kfree_const(mnt->mnt_devname);
  518. #ifdef CONFIG_SMP
  519. free_percpu(mnt->mnt_pcp);
  520. #endif
  521. kmem_cache_free(mnt_cache, mnt);
  522. }
  523. static void delayed_free_vfsmnt(struct rcu_head *head)
  524. {
  525. free_vfsmnt(container_of(head, struct mount, mnt_rcu));
  526. }
  527. /* call under rcu_read_lock */
  528. int __legitimize_mnt(struct vfsmount *bastard, unsigned seq)
  529. {
  530. struct mount *mnt;
  531. if (read_seqretry(&mount_lock, seq))
  532. return 1;
  533. if (bastard == NULL)
  534. return 0;
  535. mnt = real_mount(bastard);
  536. mnt_add_count(mnt, 1);
  537. if (likely(!read_seqretry(&mount_lock, seq)))
  538. return 0;
  539. if (bastard->mnt_flags & MNT_SYNC_UMOUNT) {
  540. mnt_add_count(mnt, -1);
  541. return 1;
  542. }
  543. return -1;
  544. }
  545. /* call under rcu_read_lock */
  546. bool legitimize_mnt(struct vfsmount *bastard, unsigned seq)
  547. {
  548. int res = __legitimize_mnt(bastard, seq);
  549. if (likely(!res))
  550. return true;
  551. if (unlikely(res < 0)) {
  552. rcu_read_unlock();
  553. mntput(bastard);
  554. rcu_read_lock();
  555. }
  556. return false;
  557. }
  558. /*
  559. * find the first mount at @dentry on vfsmount @mnt.
  560. * call under rcu_read_lock()
  561. */
  562. struct mount *__lookup_mnt(struct vfsmount *mnt, struct dentry *dentry)
  563. {
  564. struct hlist_head *head = m_hash(mnt, dentry);
  565. struct mount *p;
  566. hlist_for_each_entry_rcu(p, head, mnt_hash)
  567. if (&p->mnt_parent->mnt == mnt && p->mnt_mountpoint == dentry)
  568. return p;
  569. return NULL;
  570. }
  571. /*
  572. * lookup_mnt - Return the first child mount mounted at path
  573. *
  574. * "First" means first mounted chronologically. If you create the
  575. * following mounts:
  576. *
  577. * mount /dev/sda1 /mnt
  578. * mount /dev/sda2 /mnt
  579. * mount /dev/sda3 /mnt
  580. *
  581. * Then lookup_mnt() on the base /mnt dentry in the root mount will
  582. * return successively the root dentry and vfsmount of /dev/sda1, then
  583. * /dev/sda2, then /dev/sda3, then NULL.
  584. *
  585. * lookup_mnt takes a reference to the found vfsmount.
  586. */
  587. struct vfsmount *lookup_mnt(const struct path *path)
  588. {
  589. struct mount *child_mnt;
  590. struct vfsmount *m;
  591. unsigned seq;
  592. rcu_read_lock();
  593. do {
  594. seq = read_seqbegin(&mount_lock);
  595. child_mnt = __lookup_mnt(path->mnt, path->dentry);
  596. m = child_mnt ? &child_mnt->mnt : NULL;
  597. } while (!legitimize_mnt(m, seq));
  598. rcu_read_unlock();
  599. return m;
  600. }
  601. /*
  602. * __is_local_mountpoint - Test to see if dentry is a mountpoint in the
  603. * current mount namespace.
  604. *
  605. * The common case is dentries are not mountpoints at all and that
  606. * test is handled inline. For the slow case when we are actually
  607. * dealing with a mountpoint of some kind, walk through all of the
  608. * mounts in the current mount namespace and test to see if the dentry
  609. * is a mountpoint.
  610. *
  611. * The mount_hashtable is not usable in the context because we
  612. * need to identify all mounts that may be in the current mount
  613. * namespace not just a mount that happens to have some specified
  614. * parent mount.
  615. */
  616. bool __is_local_mountpoint(struct dentry *dentry)
  617. {
  618. struct mnt_namespace *ns = current->nsproxy->mnt_ns;
  619. struct mount *mnt;
  620. bool is_covered = false;
  621. if (!d_mountpoint(dentry))
  622. goto out;
  623. down_read(&namespace_sem);
  624. list_for_each_entry(mnt, &ns->list, mnt_list) {
  625. is_covered = (mnt->mnt_mountpoint == dentry);
  626. if (is_covered)
  627. break;
  628. }
  629. up_read(&namespace_sem);
  630. out:
  631. return is_covered;
  632. }
  633. static struct mountpoint *lookup_mountpoint(struct dentry *dentry)
  634. {
  635. struct hlist_head *chain = mp_hash(dentry);
  636. struct mountpoint *mp;
  637. hlist_for_each_entry(mp, chain, m_hash) {
  638. if (mp->m_dentry == dentry) {
  639. /* might be worth a WARN_ON() */
  640. if (d_unlinked(dentry))
  641. return ERR_PTR(-ENOENT);
  642. mp->m_count++;
  643. return mp;
  644. }
  645. }
  646. return NULL;
  647. }
  648. static struct mountpoint *get_mountpoint(struct dentry *dentry)
  649. {
  650. struct mountpoint *mp, *new = NULL;
  651. int ret;
  652. if (d_mountpoint(dentry)) {
  653. mountpoint:
  654. read_seqlock_excl(&mount_lock);
  655. mp = lookup_mountpoint(dentry);
  656. read_sequnlock_excl(&mount_lock);
  657. if (mp)
  658. goto done;
  659. }
  660. if (!new)
  661. new = kmalloc(sizeof(struct mountpoint), GFP_KERNEL);
  662. if (!new)
  663. return ERR_PTR(-ENOMEM);
  664. /* Exactly one processes may set d_mounted */
  665. ret = d_set_mounted(dentry);
  666. /* Someone else set d_mounted? */
  667. if (ret == -EBUSY)
  668. goto mountpoint;
  669. /* The dentry is not available as a mountpoint? */
  670. mp = ERR_PTR(ret);
  671. if (ret)
  672. goto done;
  673. /* Add the new mountpoint to the hash table */
  674. read_seqlock_excl(&mount_lock);
  675. new->m_dentry = dentry;
  676. new->m_count = 1;
  677. hlist_add_head(&new->m_hash, mp_hash(dentry));
  678. INIT_HLIST_HEAD(&new->m_list);
  679. read_sequnlock_excl(&mount_lock);
  680. mp = new;
  681. new = NULL;
  682. done:
  683. kfree(new);
  684. return mp;
  685. }
  686. static void put_mountpoint(struct mountpoint *mp)
  687. {
  688. if (!--mp->m_count) {
  689. struct dentry *dentry = mp->m_dentry;
  690. BUG_ON(!hlist_empty(&mp->m_list));
  691. spin_lock(&dentry->d_lock);
  692. dentry->d_flags &= ~DCACHE_MOUNTED;
  693. spin_unlock(&dentry->d_lock);
  694. hlist_del(&mp->m_hash);
  695. kfree(mp);
  696. }
  697. }
  698. static inline int check_mnt(struct mount *mnt)
  699. {
  700. return mnt->mnt_ns == current->nsproxy->mnt_ns;
  701. }
  702. /*
  703. * vfsmount lock must be held for write
  704. */
  705. static void touch_mnt_namespace(struct mnt_namespace *ns)
  706. {
  707. if (ns) {
  708. ns->event = ++event;
  709. wake_up_interruptible(&ns->poll);
  710. }
  711. }
  712. /*
  713. * vfsmount lock must be held for write
  714. */
  715. static void __touch_mnt_namespace(struct mnt_namespace *ns)
  716. {
  717. if (ns && ns->event != event) {
  718. ns->event = event;
  719. wake_up_interruptible(&ns->poll);
  720. }
  721. }
  722. /*
  723. * vfsmount lock must be held for write
  724. */
  725. static void unhash_mnt(struct mount *mnt)
  726. {
  727. mnt->mnt_parent = mnt;
  728. mnt->mnt_mountpoint = mnt->mnt.mnt_root;
  729. list_del_init(&mnt->mnt_child);
  730. hlist_del_init_rcu(&mnt->mnt_hash);
  731. hlist_del_init(&mnt->mnt_mp_list);
  732. put_mountpoint(mnt->mnt_mp);
  733. mnt->mnt_mp = NULL;
  734. }
  735. /*
  736. * vfsmount lock must be held for write
  737. */
  738. static void detach_mnt(struct mount *mnt, struct path *old_path)
  739. {
  740. old_path->dentry = mnt->mnt_mountpoint;
  741. old_path->mnt = &mnt->mnt_parent->mnt;
  742. unhash_mnt(mnt);
  743. }
  744. /*
  745. * vfsmount lock must be held for write
  746. */
  747. static void umount_mnt(struct mount *mnt)
  748. {
  749. /* old mountpoint will be dropped when we can do that */
  750. mnt->mnt_ex_mountpoint = mnt->mnt_mountpoint;
  751. unhash_mnt(mnt);
  752. }
  753. /*
  754. * vfsmount lock must be held for write
  755. */
  756. void mnt_set_mountpoint(struct mount *mnt,
  757. struct mountpoint *mp,
  758. struct mount *child_mnt)
  759. {
  760. mp->m_count++;
  761. mnt_add_count(mnt, 1); /* essentially, that's mntget */
  762. child_mnt->mnt_mountpoint = dget(mp->m_dentry);
  763. child_mnt->mnt_parent = mnt;
  764. child_mnt->mnt_mp = mp;
  765. hlist_add_head(&child_mnt->mnt_mp_list, &mp->m_list);
  766. }
  767. static void __attach_mnt(struct mount *mnt, struct mount *parent)
  768. {
  769. hlist_add_head_rcu(&mnt->mnt_hash,
  770. m_hash(&parent->mnt, mnt->mnt_mountpoint));
  771. list_add_tail(&mnt->mnt_child, &parent->mnt_mounts);
  772. }
  773. /*
  774. * vfsmount lock must be held for write
  775. */
  776. static void attach_mnt(struct mount *mnt,
  777. struct mount *parent,
  778. struct mountpoint *mp)
  779. {
  780. mnt_set_mountpoint(parent, mp, mnt);
  781. __attach_mnt(mnt, parent);
  782. }
  783. void mnt_change_mountpoint(struct mount *parent, struct mountpoint *mp, struct mount *mnt)
  784. {
  785. struct mountpoint *old_mp = mnt->mnt_mp;
  786. struct dentry *old_mountpoint = mnt->mnt_mountpoint;
  787. struct mount *old_parent = mnt->mnt_parent;
  788. list_del_init(&mnt->mnt_child);
  789. hlist_del_init(&mnt->mnt_mp_list);
  790. hlist_del_init_rcu(&mnt->mnt_hash);
  791. attach_mnt(mnt, parent, mp);
  792. put_mountpoint(old_mp);
  793. /*
  794. * Safely avoid even the suggestion this code might sleep or
  795. * lock the mount hash by taking advantage of the knowledge that
  796. * mnt_change_mountpoint will not release the final reference
  797. * to a mountpoint.
  798. *
  799. * During mounting, the mount passed in as the parent mount will
  800. * continue to use the old mountpoint and during unmounting, the
  801. * old mountpoint will continue to exist until namespace_unlock,
  802. * which happens well after mnt_change_mountpoint.
  803. */
  804. spin_lock(&old_mountpoint->d_lock);
  805. old_mountpoint->d_lockref.count--;
  806. spin_unlock(&old_mountpoint->d_lock);
  807. mnt_add_count(old_parent, -1);
  808. }
  809. /*
  810. * vfsmount lock must be held for write
  811. */
  812. static void commit_tree(struct mount *mnt)
  813. {
  814. struct mount *parent = mnt->mnt_parent;
  815. struct mount *m;
  816. LIST_HEAD(head);
  817. struct mnt_namespace *n = parent->mnt_ns;
  818. BUG_ON(parent == mnt);
  819. list_add_tail(&head, &mnt->mnt_list);
  820. list_for_each_entry(m, &head, mnt_list)
  821. m->mnt_ns = n;
  822. list_splice(&head, n->list.prev);
  823. n->mounts += n->pending_mounts;
  824. n->pending_mounts = 0;
  825. __attach_mnt(mnt, parent);
  826. touch_mnt_namespace(n);
  827. }
  828. static struct mount *next_mnt(struct mount *p, struct mount *root)
  829. {
  830. struct list_head *next = p->mnt_mounts.next;
  831. if (next == &p->mnt_mounts) {
  832. while (1) {
  833. if (p == root)
  834. return NULL;
  835. next = p->mnt_child.next;
  836. if (next != &p->mnt_parent->mnt_mounts)
  837. break;
  838. p = p->mnt_parent;
  839. }
  840. }
  841. return list_entry(next, struct mount, mnt_child);
  842. }
  843. static struct mount *skip_mnt_tree(struct mount *p)
  844. {
  845. struct list_head *prev = p->mnt_mounts.prev;
  846. while (prev != &p->mnt_mounts) {
  847. p = list_entry(prev, struct mount, mnt_child);
  848. prev = p->mnt_mounts.prev;
  849. }
  850. return p;
  851. }
  852. struct vfsmount *
  853. vfs_kern_mount(struct file_system_type *type, int flags, const char *name, void *data)
  854. {
  855. struct mount *mnt;
  856. struct dentry *root;
  857. if (!type)
  858. return ERR_PTR(-ENODEV);
  859. mnt = alloc_vfsmnt(name);
  860. if (!mnt)
  861. return ERR_PTR(-ENOMEM);
  862. if (flags & MS_KERNMOUNT)
  863. mnt->mnt.mnt_flags = MNT_INTERNAL;
  864. root = mount_fs(type, flags, name, data);
  865. if (IS_ERR(root)) {
  866. mnt_free_id(mnt);
  867. free_vfsmnt(mnt);
  868. return ERR_CAST(root);
  869. }
  870. mnt->mnt.mnt_root = root;
  871. mnt->mnt.mnt_sb = root->d_sb;
  872. mnt->mnt_mountpoint = mnt->mnt.mnt_root;
  873. mnt->mnt_parent = mnt;
  874. lock_mount_hash();
  875. list_add_tail(&mnt->mnt_instance, &root->d_sb->s_mounts);
  876. unlock_mount_hash();
  877. return &mnt->mnt;
  878. }
  879. EXPORT_SYMBOL_GPL(vfs_kern_mount);
  880. struct vfsmount *
  881. vfs_submount(const struct dentry *mountpoint, struct file_system_type *type,
  882. const char *name, void *data)
  883. {
  884. /* Until it is worked out how to pass the user namespace
  885. * through from the parent mount to the submount don't support
  886. * unprivileged mounts with submounts.
  887. */
  888. if (mountpoint->d_sb->s_user_ns != &init_user_ns)
  889. return ERR_PTR(-EPERM);
  890. return vfs_kern_mount(type, MS_SUBMOUNT, name, data);
  891. }
  892. EXPORT_SYMBOL_GPL(vfs_submount);
  893. static struct mount *clone_mnt(struct mount *old, struct dentry *root,
  894. int flag)
  895. {
  896. struct super_block *sb = old->mnt.mnt_sb;
  897. struct mount *mnt;
  898. int err;
  899. mnt = alloc_vfsmnt(old->mnt_devname);
  900. if (!mnt)
  901. return ERR_PTR(-ENOMEM);
  902. if (flag & (CL_SLAVE | CL_PRIVATE | CL_SHARED_TO_SLAVE))
  903. mnt->mnt_group_id = 0; /* not a peer of original */
  904. else
  905. mnt->mnt_group_id = old->mnt_group_id;
  906. if ((flag & CL_MAKE_SHARED) && !mnt->mnt_group_id) {
  907. err = mnt_alloc_group_id(mnt);
  908. if (err)
  909. goto out_free;
  910. }
  911. mnt->mnt.mnt_flags = old->mnt.mnt_flags & ~(MNT_WRITE_HOLD|MNT_MARKED);
  912. /* Don't allow unprivileged users to change mount flags */
  913. if (flag & CL_UNPRIVILEGED) {
  914. mnt->mnt.mnt_flags |= MNT_LOCK_ATIME;
  915. if (mnt->mnt.mnt_flags & MNT_READONLY)
  916. mnt->mnt.mnt_flags |= MNT_LOCK_READONLY;
  917. if (mnt->mnt.mnt_flags & MNT_NODEV)
  918. mnt->mnt.mnt_flags |= MNT_LOCK_NODEV;
  919. if (mnt->mnt.mnt_flags & MNT_NOSUID)
  920. mnt->mnt.mnt_flags |= MNT_LOCK_NOSUID;
  921. if (mnt->mnt.mnt_flags & MNT_NOEXEC)
  922. mnt->mnt.mnt_flags |= MNT_LOCK_NOEXEC;
  923. }
  924. /* Don't allow unprivileged users to reveal what is under a mount */
  925. if ((flag & CL_UNPRIVILEGED) &&
  926. (!(flag & CL_EXPIRE) || list_empty(&old->mnt_expire)))
  927. mnt->mnt.mnt_flags |= MNT_LOCKED;
  928. atomic_inc(&sb->s_active);
  929. mnt->mnt.mnt_sb = sb;
  930. mnt->mnt.mnt_root = dget(root);
  931. mnt->mnt_mountpoint = mnt->mnt.mnt_root;
  932. mnt->mnt_parent = mnt;
  933. lock_mount_hash();
  934. list_add_tail(&mnt->mnt_instance, &sb->s_mounts);
  935. unlock_mount_hash();
  936. if ((flag & CL_SLAVE) ||
  937. ((flag & CL_SHARED_TO_SLAVE) && IS_MNT_SHARED(old))) {
  938. list_add(&mnt->mnt_slave, &old->mnt_slave_list);
  939. mnt->mnt_master = old;
  940. CLEAR_MNT_SHARED(mnt);
  941. } else if (!(flag & CL_PRIVATE)) {
  942. if ((flag & CL_MAKE_SHARED) || IS_MNT_SHARED(old))
  943. list_add(&mnt->mnt_share, &old->mnt_share);
  944. if (IS_MNT_SLAVE(old))
  945. list_add(&mnt->mnt_slave, &old->mnt_slave);
  946. mnt->mnt_master = old->mnt_master;
  947. } else {
  948. CLEAR_MNT_SHARED(mnt);
  949. }
  950. if (flag & CL_MAKE_SHARED)
  951. set_mnt_shared(mnt);
  952. /* stick the duplicate mount on the same expiry list
  953. * as the original if that was on one */
  954. if (flag & CL_EXPIRE) {
  955. if (!list_empty(&old->mnt_expire))
  956. list_add(&mnt->mnt_expire, &old->mnt_expire);
  957. }
  958. return mnt;
  959. out_free:
  960. mnt_free_id(mnt);
  961. free_vfsmnt(mnt);
  962. return ERR_PTR(err);
  963. }
  964. static void cleanup_mnt(struct mount *mnt)
  965. {
  966. /*
  967. * This probably indicates that somebody messed
  968. * up a mnt_want/drop_write() pair. If this
  969. * happens, the filesystem was probably unable
  970. * to make r/w->r/o transitions.
  971. */
  972. /*
  973. * The locking used to deal with mnt_count decrement provides barriers,
  974. * so mnt_get_writers() below is safe.
  975. */
  976. WARN_ON(mnt_get_writers(mnt));
  977. if (unlikely(mnt->mnt_pins.first))
  978. mnt_pin_kill(mnt);
  979. fsnotify_vfsmount_delete(&mnt->mnt);
  980. dput(mnt->mnt.mnt_root);
  981. deactivate_super(mnt->mnt.mnt_sb);
  982. mnt_free_id(mnt);
  983. call_rcu(&mnt->mnt_rcu, delayed_free_vfsmnt);
  984. }
  985. static void __cleanup_mnt(struct rcu_head *head)
  986. {
  987. cleanup_mnt(container_of(head, struct mount, mnt_rcu));
  988. }
  989. static LLIST_HEAD(delayed_mntput_list);
  990. static void delayed_mntput(struct work_struct *unused)
  991. {
  992. struct llist_node *node = llist_del_all(&delayed_mntput_list);
  993. struct llist_node *next;
  994. for (; node; node = next) {
  995. next = llist_next(node);
  996. cleanup_mnt(llist_entry(node, struct mount, mnt_llist));
  997. }
  998. }
  999. static DECLARE_DELAYED_WORK(delayed_mntput_work, delayed_mntput);
  1000. static void mntput_no_expire(struct mount *mnt)
  1001. {
  1002. rcu_read_lock();
  1003. mnt_add_count(mnt, -1);
  1004. if (likely(mnt->mnt_ns)) { /* shouldn't be the last one */
  1005. rcu_read_unlock();
  1006. return;
  1007. }
  1008. lock_mount_hash();
  1009. if (mnt_get_count(mnt)) {
  1010. rcu_read_unlock();
  1011. unlock_mount_hash();
  1012. return;
  1013. }
  1014. if (unlikely(mnt->mnt.mnt_flags & MNT_DOOMED)) {
  1015. rcu_read_unlock();
  1016. unlock_mount_hash();
  1017. return;
  1018. }
  1019. mnt->mnt.mnt_flags |= MNT_DOOMED;
  1020. rcu_read_unlock();
  1021. list_del(&mnt->mnt_instance);
  1022. if (unlikely(!list_empty(&mnt->mnt_mounts))) {
  1023. struct mount *p, *tmp;
  1024. list_for_each_entry_safe(p, tmp, &mnt->mnt_mounts, mnt_child) {
  1025. umount_mnt(p);
  1026. }
  1027. }
  1028. unlock_mount_hash();
  1029. if (likely(!(mnt->mnt.mnt_flags & MNT_INTERNAL))) {
  1030. struct task_struct *task = current;
  1031. if (likely(!(task->flags & PF_KTHREAD))) {
  1032. init_task_work(&mnt->mnt_rcu, __cleanup_mnt);
  1033. if (!task_work_add(task, &mnt->mnt_rcu, true))
  1034. return;
  1035. }
  1036. if (llist_add(&mnt->mnt_llist, &delayed_mntput_list))
  1037. schedule_delayed_work(&delayed_mntput_work, 1);
  1038. return;
  1039. }
  1040. cleanup_mnt(mnt);
  1041. }
  1042. void mntput(struct vfsmount *mnt)
  1043. {
  1044. if (mnt) {
  1045. struct mount *m = real_mount(mnt);
  1046. /* avoid cacheline pingpong, hope gcc doesn't get "smart" */
  1047. if (unlikely(m->mnt_expiry_mark))
  1048. m->mnt_expiry_mark = 0;
  1049. mntput_no_expire(m);
  1050. }
  1051. }
  1052. EXPORT_SYMBOL(mntput);
  1053. struct vfsmount *mntget(struct vfsmount *mnt)
  1054. {
  1055. if (mnt)
  1056. mnt_add_count(real_mount(mnt), 1);
  1057. return mnt;
  1058. }
  1059. EXPORT_SYMBOL(mntget);
  1060. /* path_is_mountpoint() - Check if path is a mount in the current
  1061. * namespace.
  1062. *
  1063. * d_mountpoint() can only be used reliably to establish if a dentry is
  1064. * not mounted in any namespace and that common case is handled inline.
  1065. * d_mountpoint() isn't aware of the possibility there may be multiple
  1066. * mounts using a given dentry in a different namespace. This function
  1067. * checks if the passed in path is a mountpoint rather than the dentry
  1068. * alone.
  1069. */
  1070. bool path_is_mountpoint(const struct path *path)
  1071. {
  1072. unsigned seq;
  1073. bool res;
  1074. if (!d_mountpoint(path->dentry))
  1075. return false;
  1076. rcu_read_lock();
  1077. do {
  1078. seq = read_seqbegin(&mount_lock);
  1079. res = __path_is_mountpoint(path);
  1080. } while (read_seqretry(&mount_lock, seq));
  1081. rcu_read_unlock();
  1082. return res;
  1083. }
  1084. EXPORT_SYMBOL(path_is_mountpoint);
  1085. struct vfsmount *mnt_clone_internal(const struct path *path)
  1086. {
  1087. struct mount *p;
  1088. p = clone_mnt(real_mount(path->mnt), path->dentry, CL_PRIVATE);
  1089. if (IS_ERR(p))
  1090. return ERR_CAST(p);
  1091. p->mnt.mnt_flags |= MNT_INTERNAL;
  1092. return &p->mnt;
  1093. }
  1094. #ifdef CONFIG_PROC_FS
  1095. /* iterator; we want it to have access to namespace_sem, thus here... */
  1096. static void *m_start(struct seq_file *m, loff_t *pos)
  1097. {
  1098. struct proc_mounts *p = m->private;
  1099. down_read(&namespace_sem);
  1100. if (p->cached_event == p->ns->event) {
  1101. void *v = p->cached_mount;
  1102. if (*pos == p->cached_index)
  1103. return v;
  1104. if (*pos == p->cached_index + 1) {
  1105. v = seq_list_next(v, &p->ns->list, &p->cached_index);
  1106. return p->cached_mount = v;
  1107. }
  1108. }
  1109. p->cached_event = p->ns->event;
  1110. p->cached_mount = seq_list_start(&p->ns->list, *pos);
  1111. p->cached_index = *pos;
  1112. return p->cached_mount;
  1113. }
  1114. static void *m_next(struct seq_file *m, void *v, loff_t *pos)
  1115. {
  1116. struct proc_mounts *p = m->private;
  1117. p->cached_mount = seq_list_next(v, &p->ns->list, pos);
  1118. p->cached_index = *pos;
  1119. return p->cached_mount;
  1120. }
  1121. static void m_stop(struct seq_file *m, void *v)
  1122. {
  1123. up_read(&namespace_sem);
  1124. }
  1125. static int m_show(struct seq_file *m, void *v)
  1126. {
  1127. struct proc_mounts *p = m->private;
  1128. struct mount *r = list_entry(v, struct mount, mnt_list);
  1129. return p->show(m, &r->mnt);
  1130. }
  1131. const struct seq_operations mounts_op = {
  1132. .start = m_start,
  1133. .next = m_next,
  1134. .stop = m_stop,
  1135. .show = m_show,
  1136. };
  1137. #endif /* CONFIG_PROC_FS */
  1138. /**
  1139. * may_umount_tree - check if a mount tree is busy
  1140. * @mnt: root of mount tree
  1141. *
  1142. * This is called to check if a tree of mounts has any
  1143. * open files, pwds, chroots or sub mounts that are
  1144. * busy.
  1145. */
  1146. int may_umount_tree(struct vfsmount *m)
  1147. {
  1148. struct mount *mnt = real_mount(m);
  1149. int actual_refs = 0;
  1150. int minimum_refs = 0;
  1151. struct mount *p;
  1152. BUG_ON(!m);
  1153. /* write lock needed for mnt_get_count */
  1154. lock_mount_hash();
  1155. for (p = mnt; p; p = next_mnt(p, mnt)) {
  1156. actual_refs += mnt_get_count(p);
  1157. minimum_refs += 2;
  1158. }
  1159. unlock_mount_hash();
  1160. if (actual_refs > minimum_refs)
  1161. return 0;
  1162. return 1;
  1163. }
  1164. EXPORT_SYMBOL(may_umount_tree);
  1165. /**
  1166. * may_umount - check if a mount point is busy
  1167. * @mnt: root of mount
  1168. *
  1169. * This is called to check if a mount point has any
  1170. * open files, pwds, chroots or sub mounts. If the
  1171. * mount has sub mounts this will return busy
  1172. * regardless of whether the sub mounts are busy.
  1173. *
  1174. * Doesn't take quota and stuff into account. IOW, in some cases it will
  1175. * give false negatives. The main reason why it's here is that we need
  1176. * a non-destructive way to look for easily umountable filesystems.
  1177. */
  1178. int may_umount(struct vfsmount *mnt)
  1179. {
  1180. int ret = 1;
  1181. down_read(&namespace_sem);
  1182. lock_mount_hash();
  1183. if (propagate_mount_busy(real_mount(mnt), 2))
  1184. ret = 0;
  1185. unlock_mount_hash();
  1186. up_read(&namespace_sem);
  1187. return ret;
  1188. }
  1189. EXPORT_SYMBOL(may_umount);
  1190. static HLIST_HEAD(unmounted); /* protected by namespace_sem */
  1191. static void namespace_unlock(void)
  1192. {
  1193. struct hlist_head head;
  1194. hlist_move_list(&unmounted, &head);
  1195. up_write(&namespace_sem);
  1196. if (likely(hlist_empty(&head)))
  1197. return;
  1198. synchronize_rcu();
  1199. group_pin_kill(&head);
  1200. }
  1201. static inline void namespace_lock(void)
  1202. {
  1203. down_write(&namespace_sem);
  1204. }
  1205. enum umount_tree_flags {
  1206. UMOUNT_SYNC = 1,
  1207. UMOUNT_PROPAGATE = 2,
  1208. UMOUNT_CONNECTED = 4,
  1209. };
  1210. static bool disconnect_mount(struct mount *mnt, enum umount_tree_flags how)
  1211. {
  1212. /* Leaving mounts connected is only valid for lazy umounts */
  1213. if (how & UMOUNT_SYNC)
  1214. return true;
  1215. /* A mount without a parent has nothing to be connected to */
  1216. if (!mnt_has_parent(mnt))
  1217. return true;
  1218. /* Because the reference counting rules change when mounts are
  1219. * unmounted and connected, umounted mounts may not be
  1220. * connected to mounted mounts.
  1221. */
  1222. if (!(mnt->mnt_parent->mnt.mnt_flags & MNT_UMOUNT))
  1223. return true;
  1224. /* Has it been requested that the mount remain connected? */
  1225. if (how & UMOUNT_CONNECTED)
  1226. return false;
  1227. /* Is the mount locked such that it needs to remain connected? */
  1228. if (IS_MNT_LOCKED(mnt))
  1229. return false;
  1230. /* By default disconnect the mount */
  1231. return true;
  1232. }
  1233. /*
  1234. * mount_lock must be held
  1235. * namespace_sem must be held for write
  1236. */
  1237. static void umount_tree(struct mount *mnt, enum umount_tree_flags how)
  1238. {
  1239. LIST_HEAD(tmp_list);
  1240. struct mount *p;
  1241. if (how & UMOUNT_PROPAGATE)
  1242. propagate_mount_unlock(mnt);
  1243. /* Gather the mounts to umount */
  1244. for (p = mnt; p; p = next_mnt(p, mnt)) {
  1245. p->mnt.mnt_flags |= MNT_UMOUNT;
  1246. list_move(&p->mnt_list, &tmp_list);
  1247. }
  1248. /* Hide the mounts from mnt_mounts */
  1249. list_for_each_entry(p, &tmp_list, mnt_list) {
  1250. list_del_init(&p->mnt_child);
  1251. }
  1252. /* Add propogated mounts to the tmp_list */
  1253. if (how & UMOUNT_PROPAGATE)
  1254. propagate_umount(&tmp_list);
  1255. while (!list_empty(&tmp_list)) {
  1256. struct mnt_namespace *ns;
  1257. bool disconnect;
  1258. p = list_first_entry(&tmp_list, struct mount, mnt_list);
  1259. list_del_init(&p->mnt_expire);
  1260. list_del_init(&p->mnt_list);
  1261. ns = p->mnt_ns;
  1262. if (ns) {
  1263. ns->mounts--;
  1264. __touch_mnt_namespace(ns);
  1265. }
  1266. p->mnt_ns = NULL;
  1267. if (how & UMOUNT_SYNC)
  1268. p->mnt.mnt_flags |= MNT_SYNC_UMOUNT;
  1269. disconnect = disconnect_mount(p, how);
  1270. pin_insert_group(&p->mnt_umount, &p->mnt_parent->mnt,
  1271. disconnect ? &unmounted : NULL);
  1272. if (mnt_has_parent(p)) {
  1273. mnt_add_count(p->mnt_parent, -1);
  1274. if (!disconnect) {
  1275. /* Don't forget about p */
  1276. list_add_tail(&p->mnt_child, &p->mnt_parent->mnt_mounts);
  1277. } else {
  1278. umount_mnt(p);
  1279. }
  1280. }
  1281. change_mnt_propagation(p, MS_PRIVATE);
  1282. }
  1283. }
  1284. static void shrink_submounts(struct mount *mnt);
  1285. static int do_umount(struct mount *mnt, int flags)
  1286. {
  1287. struct super_block *sb = mnt->mnt.mnt_sb;
  1288. int retval;
  1289. retval = security_sb_umount(&mnt->mnt, flags);
  1290. if (retval)
  1291. return retval;
  1292. /*
  1293. * Allow userspace to request a mountpoint be expired rather than
  1294. * unmounting unconditionally. Unmount only happens if:
  1295. * (1) the mark is already set (the mark is cleared by mntput())
  1296. * (2) the usage count == 1 [parent vfsmount] + 1 [sys_umount]
  1297. */
  1298. if (flags & MNT_EXPIRE) {
  1299. if (&mnt->mnt == current->fs->root.mnt ||
  1300. flags & (MNT_FORCE | MNT_DETACH))
  1301. return -EINVAL;
  1302. /*
  1303. * probably don't strictly need the lock here if we examined
  1304. * all race cases, but it's a slowpath.
  1305. */
  1306. lock_mount_hash();
  1307. if (mnt_get_count(mnt) != 2) {
  1308. unlock_mount_hash();
  1309. return -EBUSY;
  1310. }
  1311. unlock_mount_hash();
  1312. if (!xchg(&mnt->mnt_expiry_mark, 1))
  1313. return -EAGAIN;
  1314. }
  1315. /*
  1316. * If we may have to abort operations to get out of this
  1317. * mount, and they will themselves hold resources we must
  1318. * allow the fs to do things. In the Unix tradition of
  1319. * 'Gee thats tricky lets do it in userspace' the umount_begin
  1320. * might fail to complete on the first run through as other tasks
  1321. * must return, and the like. Thats for the mount program to worry
  1322. * about for the moment.
  1323. */
  1324. if (flags & MNT_FORCE && sb->s_op->umount_begin) {
  1325. sb->s_op->umount_begin(sb);
  1326. }
  1327. /*
  1328. * No sense to grab the lock for this test, but test itself looks
  1329. * somewhat bogus. Suggestions for better replacement?
  1330. * Ho-hum... In principle, we might treat that as umount + switch
  1331. * to rootfs. GC would eventually take care of the old vfsmount.
  1332. * Actually it makes sense, especially if rootfs would contain a
  1333. * /reboot - static binary that would close all descriptors and
  1334. * call reboot(9). Then init(8) could umount root and exec /reboot.
  1335. */
  1336. if (&mnt->mnt == current->fs->root.mnt && !(flags & MNT_DETACH)) {
  1337. /*
  1338. * Special case for "unmounting" root ...
  1339. * we just try to remount it readonly.
  1340. */
  1341. if (!capable(CAP_SYS_ADMIN))
  1342. return -EPERM;
  1343. down_write(&sb->s_umount);
  1344. if (!sb_rdonly(sb))
  1345. retval = do_remount_sb(sb, MS_RDONLY, NULL, 0);
  1346. up_write(&sb->s_umount);
  1347. return retval;
  1348. }
  1349. namespace_lock();
  1350. lock_mount_hash();
  1351. event++;
  1352. if (flags & MNT_DETACH) {
  1353. if (!list_empty(&mnt->mnt_list))
  1354. umount_tree(mnt, UMOUNT_PROPAGATE);
  1355. retval = 0;
  1356. } else {
  1357. shrink_submounts(mnt);
  1358. retval = -EBUSY;
  1359. if (!propagate_mount_busy(mnt, 2)) {
  1360. if (!list_empty(&mnt->mnt_list))
  1361. umount_tree(mnt, UMOUNT_PROPAGATE|UMOUNT_SYNC);
  1362. retval = 0;
  1363. }
  1364. }
  1365. unlock_mount_hash();
  1366. namespace_unlock();
  1367. return retval;
  1368. }
  1369. /*
  1370. * __detach_mounts - lazily unmount all mounts on the specified dentry
  1371. *
  1372. * During unlink, rmdir, and d_drop it is possible to loose the path
  1373. * to an existing mountpoint, and wind up leaking the mount.
  1374. * detach_mounts allows lazily unmounting those mounts instead of
  1375. * leaking them.
  1376. *
  1377. * The caller may hold dentry->d_inode->i_mutex.
  1378. */
  1379. void __detach_mounts(struct dentry *dentry)
  1380. {
  1381. struct mountpoint *mp;
  1382. struct mount *mnt;
  1383. namespace_lock();
  1384. lock_mount_hash();
  1385. mp = lookup_mountpoint(dentry);
  1386. if (IS_ERR_OR_NULL(mp))
  1387. goto out_unlock;
  1388. event++;
  1389. while (!hlist_empty(&mp->m_list)) {
  1390. mnt = hlist_entry(mp->m_list.first, struct mount, mnt_mp_list);
  1391. if (mnt->mnt.mnt_flags & MNT_UMOUNT) {
  1392. hlist_add_head(&mnt->mnt_umount.s_list, &unmounted);
  1393. umount_mnt(mnt);
  1394. }
  1395. else umount_tree(mnt, UMOUNT_CONNECTED);
  1396. }
  1397. put_mountpoint(mp);
  1398. out_unlock:
  1399. unlock_mount_hash();
  1400. namespace_unlock();
  1401. }
  1402. /*
  1403. * Is the caller allowed to modify his namespace?
  1404. */
  1405. static inline bool may_mount(void)
  1406. {
  1407. return ns_capable(current->nsproxy->mnt_ns->user_ns, CAP_SYS_ADMIN);
  1408. }
  1409. static inline bool may_mandlock(void)
  1410. {
  1411. #ifndef CONFIG_MANDATORY_FILE_LOCKING
  1412. return false;
  1413. #endif
  1414. return capable(CAP_SYS_ADMIN);
  1415. }
  1416. /*
  1417. * Now umount can handle mount points as well as block devices.
  1418. * This is important for filesystems which use unnamed block devices.
  1419. *
  1420. * We now support a flag for forced unmount like the other 'big iron'
  1421. * unixes. Our API is identical to OSF/1 to avoid making a mess of AMD
  1422. */
  1423. SYSCALL_DEFINE2(umount, char __user *, name, int, flags)
  1424. {
  1425. struct path path;
  1426. struct mount *mnt;
  1427. int retval;
  1428. int lookup_flags = 0;
  1429. if (flags & ~(MNT_FORCE | MNT_DETACH | MNT_EXPIRE | UMOUNT_NOFOLLOW))
  1430. return -EINVAL;
  1431. if (!may_mount())
  1432. return -EPERM;
  1433. if (!(flags & UMOUNT_NOFOLLOW))
  1434. lookup_flags |= LOOKUP_FOLLOW;
  1435. retval = user_path_mountpoint_at(AT_FDCWD, name, lookup_flags, &path);
  1436. if (retval)
  1437. goto out;
  1438. mnt = real_mount(path.mnt);
  1439. retval = -EINVAL;
  1440. if (path.dentry != path.mnt->mnt_root)
  1441. goto dput_and_out;
  1442. if (!check_mnt(mnt))
  1443. goto dput_and_out;
  1444. if (mnt->mnt.mnt_flags & MNT_LOCKED)
  1445. goto dput_and_out;
  1446. retval = -EPERM;
  1447. if (flags & MNT_FORCE && !capable(CAP_SYS_ADMIN))
  1448. goto dput_and_out;
  1449. retval = do_umount(mnt, flags);
  1450. dput_and_out:
  1451. /* we mustn't call path_put() as that would clear mnt_expiry_mark */
  1452. dput(path.dentry);
  1453. mntput_no_expire(mnt);
  1454. out:
  1455. return retval;
  1456. }
  1457. #ifdef __ARCH_WANT_SYS_OLDUMOUNT
  1458. /*
  1459. * The 2.0 compatible umount. No flags.
  1460. */
  1461. SYSCALL_DEFINE1(oldumount, char __user *, name)
  1462. {
  1463. return sys_umount(name, 0);
  1464. }
  1465. #endif
  1466. static bool is_mnt_ns_file(struct dentry *dentry)
  1467. {
  1468. /* Is this a proxy for a mount namespace? */
  1469. return dentry->d_op == &ns_dentry_operations &&
  1470. dentry->d_fsdata == &mntns_operations;
  1471. }
  1472. struct mnt_namespace *to_mnt_ns(struct ns_common *ns)
  1473. {
  1474. return container_of(ns, struct mnt_namespace, ns);
  1475. }
  1476. static bool mnt_ns_loop(struct dentry *dentry)
  1477. {
  1478. /* Could bind mounting the mount namespace inode cause a
  1479. * mount namespace loop?
  1480. */
  1481. struct mnt_namespace *mnt_ns;
  1482. if (!is_mnt_ns_file(dentry))
  1483. return false;
  1484. mnt_ns = to_mnt_ns(get_proc_ns(dentry->d_inode));
  1485. return current->nsproxy->mnt_ns->seq >= mnt_ns->seq;
  1486. }
  1487. struct mount *copy_tree(struct mount *mnt, struct dentry *dentry,
  1488. int flag)
  1489. {
  1490. struct mount *res, *p, *q, *r, *parent;
  1491. if (!(flag & CL_COPY_UNBINDABLE) && IS_MNT_UNBINDABLE(mnt))
  1492. return ERR_PTR(-EINVAL);
  1493. if (!(flag & CL_COPY_MNT_NS_FILE) && is_mnt_ns_file(dentry))
  1494. return ERR_PTR(-EINVAL);
  1495. res = q = clone_mnt(mnt, dentry, flag);
  1496. if (IS_ERR(q))
  1497. return q;
  1498. q->mnt_mountpoint = mnt->mnt_mountpoint;
  1499. p = mnt;
  1500. list_for_each_entry(r, &mnt->mnt_mounts, mnt_child) {
  1501. struct mount *s;
  1502. if (!is_subdir(r->mnt_mountpoint, dentry))
  1503. continue;
  1504. for (s = r; s; s = next_mnt(s, r)) {
  1505. if (!(flag & CL_COPY_UNBINDABLE) &&
  1506. IS_MNT_UNBINDABLE(s)) {
  1507. s = skip_mnt_tree(s);
  1508. continue;
  1509. }
  1510. if (!(flag & CL_COPY_MNT_NS_FILE) &&
  1511. is_mnt_ns_file(s->mnt.mnt_root)) {
  1512. s = skip_mnt_tree(s);
  1513. continue;
  1514. }
  1515. while (p != s->mnt_parent) {
  1516. p = p->mnt_parent;
  1517. q = q->mnt_parent;
  1518. }
  1519. p = s;
  1520. parent = q;
  1521. q = clone_mnt(p, p->mnt.mnt_root, flag);
  1522. if (IS_ERR(q))
  1523. goto out;
  1524. lock_mount_hash();
  1525. list_add_tail(&q->mnt_list, &res->mnt_list);
  1526. attach_mnt(q, parent, p->mnt_mp);
  1527. unlock_mount_hash();
  1528. }
  1529. }
  1530. return res;
  1531. out:
  1532. if (res) {
  1533. lock_mount_hash();
  1534. umount_tree(res, UMOUNT_SYNC);
  1535. unlock_mount_hash();
  1536. }
  1537. return q;
  1538. }
  1539. /* Caller should check returned pointer for errors */
  1540. struct vfsmount *collect_mounts(const struct path *path)
  1541. {
  1542. struct mount *tree;
  1543. namespace_lock();
  1544. if (!check_mnt(real_mount(path->mnt)))
  1545. tree = ERR_PTR(-EINVAL);
  1546. else
  1547. tree = copy_tree(real_mount(path->mnt), path->dentry,
  1548. CL_COPY_ALL | CL_PRIVATE);
  1549. namespace_unlock();
  1550. if (IS_ERR(tree))
  1551. return ERR_CAST(tree);
  1552. return &tree->mnt;
  1553. }
  1554. void drop_collected_mounts(struct vfsmount *mnt)
  1555. {
  1556. namespace_lock();
  1557. lock_mount_hash();
  1558. umount_tree(real_mount(mnt), UMOUNT_SYNC);
  1559. unlock_mount_hash();
  1560. namespace_unlock();
  1561. }
  1562. /**
  1563. * clone_private_mount - create a private clone of a path
  1564. *
  1565. * This creates a new vfsmount, which will be the clone of @path. The new will
  1566. * not be attached anywhere in the namespace and will be private (i.e. changes
  1567. * to the originating mount won't be propagated into this).
  1568. *
  1569. * Release with mntput().
  1570. */
  1571. struct vfsmount *clone_private_mount(const struct path *path)
  1572. {
  1573. struct mount *old_mnt = real_mount(path->mnt);
  1574. struct mount *new_mnt;
  1575. if (IS_MNT_UNBINDABLE(old_mnt))
  1576. return ERR_PTR(-EINVAL);
  1577. new_mnt = clone_mnt(old_mnt, path->dentry, CL_PRIVATE);
  1578. if (IS_ERR(new_mnt))
  1579. return ERR_CAST(new_mnt);
  1580. return &new_mnt->mnt;
  1581. }
  1582. EXPORT_SYMBOL_GPL(clone_private_mount);
  1583. int iterate_mounts(int (*f)(struct vfsmount *, void *), void *arg,
  1584. struct vfsmount *root)
  1585. {
  1586. struct mount *mnt;
  1587. int res = f(root, arg);
  1588. if (res)
  1589. return res;
  1590. list_for_each_entry(mnt, &real_mount(root)->mnt_list, mnt_list) {
  1591. res = f(&mnt->mnt, arg);
  1592. if (res)
  1593. return res;
  1594. }
  1595. return 0;
  1596. }
  1597. static void cleanup_group_ids(struct mount *mnt, struct mount *end)
  1598. {
  1599. struct mount *p;
  1600. for (p = mnt; p != end; p = next_mnt(p, mnt)) {
  1601. if (p->mnt_group_id && !IS_MNT_SHARED(p))
  1602. mnt_release_group_id(p);
  1603. }
  1604. }
  1605. static int invent_group_ids(struct mount *mnt, bool recurse)
  1606. {
  1607. struct mount *p;
  1608. for (p = mnt; p; p = recurse ? next_mnt(p, mnt) : NULL) {
  1609. if (!p->mnt_group_id && !IS_MNT_SHARED(p)) {
  1610. int err = mnt_alloc_group_id(p);
  1611. if (err) {
  1612. cleanup_group_ids(mnt, p);
  1613. return err;
  1614. }
  1615. }
  1616. }
  1617. return 0;
  1618. }
  1619. int count_mounts(struct mnt_namespace *ns, struct mount *mnt)
  1620. {
  1621. unsigned int max = READ_ONCE(sysctl_mount_max);
  1622. unsigned int mounts = 0, old, pending, sum;
  1623. struct mount *p;
  1624. for (p = mnt; p; p = next_mnt(p, mnt))
  1625. mounts++;
  1626. old = ns->mounts;
  1627. pending = ns->pending_mounts;
  1628. sum = old + pending;
  1629. if ((old > sum) ||
  1630. (pending > sum) ||
  1631. (max < sum) ||
  1632. (mounts > (max - sum)))
  1633. return -ENOSPC;
  1634. ns->pending_mounts = pending + mounts;
  1635. return 0;
  1636. }
  1637. /*
  1638. * @source_mnt : mount tree to be attached
  1639. * @nd : place the mount tree @source_mnt is attached
  1640. * @parent_nd : if non-null, detach the source_mnt from its parent and
  1641. * store the parent mount and mountpoint dentry.
  1642. * (done when source_mnt is moved)
  1643. *
  1644. * NOTE: in the table below explains the semantics when a source mount
  1645. * of a given type is attached to a destination mount of a given type.
  1646. * ---------------------------------------------------------------------------
  1647. * | BIND MOUNT OPERATION |
  1648. * |**************************************************************************
  1649. * | source-->| shared | private | slave | unbindable |
  1650. * | dest | | | | |
  1651. * | | | | | | |
  1652. * | v | | | | |
  1653. * |**************************************************************************
  1654. * | shared | shared (++) | shared (+) | shared(+++)| invalid |
  1655. * | | | | | |
  1656. * |non-shared| shared (+) | private | slave (*) | invalid |
  1657. * ***************************************************************************
  1658. * A bind operation clones the source mount and mounts the clone on the
  1659. * destination mount.
  1660. *
  1661. * (++) the cloned mount is propagated to all the mounts in the propagation
  1662. * tree of the destination mount and the cloned mount is added to
  1663. * the peer group of the source mount.
  1664. * (+) the cloned mount is created under the destination mount and is marked
  1665. * as shared. The cloned mount is added to the peer group of the source
  1666. * mount.
  1667. * (+++) the mount is propagated to all the mounts in the propagation tree
  1668. * of the destination mount and the cloned mount is made slave
  1669. * of the same master as that of the source mount. The cloned mount
  1670. * is marked as 'shared and slave'.
  1671. * (*) the cloned mount is made a slave of the same master as that of the
  1672. * source mount.
  1673. *
  1674. * ---------------------------------------------------------------------------
  1675. * | MOVE MOUNT OPERATION |
  1676. * |**************************************************************************
  1677. * | source-->| shared | private | slave | unbindable |
  1678. * | dest | | | | |
  1679. * | | | | | | |
  1680. * | v | | | | |
  1681. * |**************************************************************************
  1682. * | shared | shared (+) | shared (+) | shared(+++) | invalid |
  1683. * | | | | | |
  1684. * |non-shared| shared (+*) | private | slave (*) | unbindable |
  1685. * ***************************************************************************
  1686. *
  1687. * (+) the mount is moved to the destination. And is then propagated to
  1688. * all the mounts in the propagation tree of the destination mount.
  1689. * (+*) the mount is moved to the destination.
  1690. * (+++) the mount is moved to the destination and is then propagated to
  1691. * all the mounts belonging to the destination mount's propagation tree.
  1692. * the mount is marked as 'shared and slave'.
  1693. * (*) the mount continues to be a slave at the new location.
  1694. *
  1695. * if the source mount is a tree, the operations explained above is
  1696. * applied to each mount in the tree.
  1697. * Must be called without spinlocks held, since this function can sleep
  1698. * in allocations.
  1699. */
  1700. static int attach_recursive_mnt(struct mount *source_mnt,
  1701. struct mount *dest_mnt,
  1702. struct mountpoint *dest_mp,
  1703. struct path *parent_path)
  1704. {
  1705. HLIST_HEAD(tree_list);
  1706. struct mnt_namespace *ns = dest_mnt->mnt_ns;
  1707. struct mountpoint *smp;
  1708. struct mount *child, *p;
  1709. struct hlist_node *n;
  1710. int err;
  1711. /* Preallocate a mountpoint in case the new mounts need
  1712. * to be tucked under other mounts.
  1713. */
  1714. smp = get_mountpoint(source_mnt->mnt.mnt_root);
  1715. if (IS_ERR(smp))
  1716. return PTR_ERR(smp);
  1717. /* Is there space to add these mounts to the mount namespace? */
  1718. if (!parent_path) {
  1719. err = count_mounts(ns, source_mnt);
  1720. if (err)
  1721. goto out;
  1722. }
  1723. if (IS_MNT_SHARED(dest_mnt)) {
  1724. err = invent_group_ids(source_mnt, true);
  1725. if (err)
  1726. goto out;
  1727. err = propagate_mnt(dest_mnt, dest_mp, source_mnt, &tree_list);
  1728. lock_mount_hash();
  1729. if (err)
  1730. goto out_cleanup_ids;
  1731. for (p = source_mnt; p; p = next_mnt(p, source_mnt))
  1732. set_mnt_shared(p);
  1733. } else {
  1734. lock_mount_hash();
  1735. }
  1736. if (parent_path) {
  1737. detach_mnt(source_mnt, parent_path);
  1738. attach_mnt(source_mnt, dest_mnt, dest_mp);
  1739. touch_mnt_namespace(source_mnt->mnt_ns);
  1740. } else {
  1741. mnt_set_mountpoint(dest_mnt, dest_mp, source_mnt);
  1742. commit_tree(source_mnt);
  1743. }
  1744. hlist_for_each_entry_safe(child, n, &tree_list, mnt_hash) {
  1745. struct mount *q;
  1746. hlist_del_init(&child->mnt_hash);
  1747. q = __lookup_mnt(&child->mnt_parent->mnt,
  1748. child->mnt_mountpoint);
  1749. if (q)
  1750. mnt_change_mountpoint(child, smp, q);
  1751. commit_tree(child);
  1752. }
  1753. put_mountpoint(smp);
  1754. unlock_mount_hash();
  1755. return 0;
  1756. out_cleanup_ids:
  1757. while (!hlist_empty(&tree_list)) {
  1758. child = hlist_entry(tree_list.first, struct mount, mnt_hash);
  1759. child->mnt_parent->mnt_ns->pending_mounts = 0;
  1760. umount_tree(child, UMOUNT_SYNC);
  1761. }
  1762. unlock_mount_hash();
  1763. cleanup_group_ids(source_mnt, NULL);
  1764. out:
  1765. ns->pending_mounts = 0;
  1766. read_seqlock_excl(&mount_lock);
  1767. put_mountpoint(smp);
  1768. read_sequnlock_excl(&mount_lock);
  1769. return err;
  1770. }
  1771. static struct mountpoint *lock_mount(struct path *path)
  1772. {
  1773. struct vfsmount *mnt;
  1774. struct dentry *dentry = path->dentry;
  1775. retry:
  1776. inode_lock(dentry->d_inode);
  1777. if (unlikely(cant_mount(dentry))) {
  1778. inode_unlock(dentry->d_inode);
  1779. return ERR_PTR(-ENOENT);
  1780. }
  1781. namespace_lock();
  1782. mnt = lookup_mnt(path);
  1783. if (likely(!mnt)) {
  1784. struct mountpoint *mp = get_mountpoint(dentry);
  1785. if (IS_ERR(mp)) {
  1786. namespace_unlock();
  1787. inode_unlock(dentry->d_inode);
  1788. return mp;
  1789. }
  1790. return mp;
  1791. }
  1792. namespace_unlock();
  1793. inode_unlock(path->dentry->d_inode);
  1794. path_put(path);
  1795. path->mnt = mnt;
  1796. dentry = path->dentry = dget(mnt->mnt_root);
  1797. goto retry;
  1798. }
  1799. static void unlock_mount(struct mountpoint *where)
  1800. {
  1801. struct dentry *dentry = where->m_dentry;
  1802. read_seqlock_excl(&mount_lock);
  1803. put_mountpoint(where);
  1804. read_sequnlock_excl(&mount_lock);
  1805. namespace_unlock();
  1806. inode_unlock(dentry->d_inode);
  1807. }
  1808. static int graft_tree(struct mount *mnt, struct mount *p, struct mountpoint *mp)
  1809. {
  1810. if (mnt->mnt.mnt_sb->s_flags & MS_NOUSER)
  1811. return -EINVAL;
  1812. if (d_is_dir(mp->m_dentry) !=
  1813. d_is_dir(mnt->mnt.mnt_root))
  1814. return -ENOTDIR;
  1815. return attach_recursive_mnt(mnt, p, mp, NULL);
  1816. }
  1817. /*
  1818. * Sanity check the flags to change_mnt_propagation.
  1819. */
  1820. static int flags_to_propagation_type(int flags)
  1821. {
  1822. int type = flags & ~(MS_REC | MS_SILENT);
  1823. /* Fail if any non-propagation flags are set */
  1824. if (type & ~(MS_SHARED | MS_PRIVATE | MS_SLAVE | MS_UNBINDABLE))
  1825. return 0;
  1826. /* Only one propagation flag should be set */
  1827. if (!is_power_of_2(type))
  1828. return 0;
  1829. return type;
  1830. }
  1831. /*
  1832. * recursively change the type of the mountpoint.
  1833. */
  1834. static int do_change_type(struct path *path, int flag)
  1835. {
  1836. struct mount *m;
  1837. struct mount *mnt = real_mount(path->mnt);
  1838. int recurse = flag & MS_REC;
  1839. int type;
  1840. int err = 0;
  1841. if (path->dentry != path->mnt->mnt_root)
  1842. return -EINVAL;
  1843. type = flags_to_propagation_type(flag);
  1844. if (!type)
  1845. return -EINVAL;
  1846. namespace_lock();
  1847. if (type == MS_SHARED) {
  1848. err = invent_group_ids(mnt, recurse);
  1849. if (err)
  1850. goto out_unlock;
  1851. }
  1852. lock_mount_hash();
  1853. for (m = mnt; m; m = (recurse ? next_mnt(m, mnt) : NULL))
  1854. change_mnt_propagation(m, type);
  1855. unlock_mount_hash();
  1856. out_unlock:
  1857. namespace_unlock();
  1858. return err;
  1859. }
  1860. static bool has_locked_children(struct mount *mnt, struct dentry *dentry)
  1861. {
  1862. struct mount *child;
  1863. list_for_each_entry(child, &mnt->mnt_mounts, mnt_child) {
  1864. if (!is_subdir(child->mnt_mountpoint, dentry))
  1865. continue;
  1866. if (child->mnt.mnt_flags & MNT_LOCKED)
  1867. return true;
  1868. }
  1869. return false;
  1870. }
  1871. /*
  1872. * do loopback mount.
  1873. */
  1874. static int do_loopback(struct path *path, const char *old_name,
  1875. int recurse)
  1876. {
  1877. struct path old_path;
  1878. struct mount *mnt = NULL, *old, *parent;
  1879. struct mountpoint *mp;
  1880. int err;
  1881. if (!old_name || !*old_name)
  1882. return -EINVAL;
  1883. err = kern_path(old_name, LOOKUP_FOLLOW|LOOKUP_AUTOMOUNT, &old_path);
  1884. if (err)
  1885. return err;
  1886. err = -EINVAL;
  1887. if (mnt_ns_loop(old_path.dentry))
  1888. goto out;
  1889. mp = lock_mount(path);
  1890. err = PTR_ERR(mp);
  1891. if (IS_ERR(mp))
  1892. goto out;
  1893. old = real_mount(old_path.mnt);
  1894. parent = real_mount(path->mnt);
  1895. err = -EINVAL;
  1896. if (IS_MNT_UNBINDABLE(old))
  1897. goto out2;
  1898. if (!check_mnt(parent))
  1899. goto out2;
  1900. if (!check_mnt(old) && old_path.dentry->d_op != &ns_dentry_operations)
  1901. goto out2;
  1902. if (!recurse && has_locked_children(old, old_path.dentry))
  1903. goto out2;
  1904. if (recurse)
  1905. mnt = copy_tree(old, old_path.dentry, CL_COPY_MNT_NS_FILE);
  1906. else
  1907. mnt = clone_mnt(old, old_path.dentry, 0);
  1908. if (IS_ERR(mnt)) {
  1909. err = PTR_ERR(mnt);
  1910. goto out2;
  1911. }
  1912. mnt->mnt.mnt_flags &= ~MNT_LOCKED;
  1913. err = graft_tree(mnt, parent, mp);
  1914. if (err) {
  1915. lock_mount_hash();
  1916. umount_tree(mnt, UMOUNT_SYNC);
  1917. unlock_mount_hash();
  1918. }
  1919. out2:
  1920. unlock_mount(mp);
  1921. out:
  1922. path_put(&old_path);
  1923. return err;
  1924. }
  1925. static int change_mount_flags(struct vfsmount *mnt, int ms_flags)
  1926. {
  1927. int error = 0;
  1928. int readonly_request = 0;
  1929. if (ms_flags & MS_RDONLY)
  1930. readonly_request = 1;
  1931. if (readonly_request == __mnt_is_readonly(mnt))
  1932. return 0;
  1933. if (readonly_request)
  1934. error = mnt_make_readonly(real_mount(mnt));
  1935. else
  1936. __mnt_unmake_readonly(real_mount(mnt));
  1937. return error;
  1938. }
  1939. /*
  1940. * change filesystem flags. dir should be a physical root of filesystem.
  1941. * If you've mounted a non-root directory somewhere and want to do remount
  1942. * on it - tough luck.
  1943. */
  1944. static int do_remount(struct path *path, int flags, int mnt_flags,
  1945. void *data)
  1946. {
  1947. int err;
  1948. struct super_block *sb = path->mnt->mnt_sb;
  1949. struct mount *mnt = real_mount(path->mnt);
  1950. if (!check_mnt(mnt))
  1951. return -EINVAL;
  1952. if (path->dentry != path->mnt->mnt_root)
  1953. return -EINVAL;
  1954. /* Don't allow changing of locked mnt flags.
  1955. *
  1956. * No locks need to be held here while testing the various
  1957. * MNT_LOCK flags because those flags can never be cleared
  1958. * once they are set.
  1959. */
  1960. if ((mnt->mnt.mnt_flags & MNT_LOCK_READONLY) &&
  1961. !(mnt_flags & MNT_READONLY)) {
  1962. return -EPERM;
  1963. }
  1964. if ((mnt->mnt.mnt_flags & MNT_LOCK_NODEV) &&
  1965. !(mnt_flags & MNT_NODEV)) {
  1966. return -EPERM;
  1967. }
  1968. if ((mnt->mnt.mnt_flags & MNT_LOCK_NOSUID) &&
  1969. !(mnt_flags & MNT_NOSUID)) {
  1970. return -EPERM;
  1971. }
  1972. if ((mnt->mnt.mnt_flags & MNT_LOCK_NOEXEC) &&
  1973. !(mnt_flags & MNT_NOEXEC)) {
  1974. return -EPERM;
  1975. }
  1976. if ((mnt->mnt.mnt_flags & MNT_LOCK_ATIME) &&
  1977. ((mnt->mnt.mnt_flags & MNT_ATIME_MASK) != (mnt_flags & MNT_ATIME_MASK))) {
  1978. return -EPERM;
  1979. }
  1980. err = security_sb_remount(sb, data);
  1981. if (err)
  1982. return err;
  1983. down_write(&sb->s_umount);
  1984. if (flags & MS_BIND)
  1985. err = change_mount_flags(path->mnt, flags);
  1986. else if (!capable(CAP_SYS_ADMIN))
  1987. err = -EPERM;
  1988. else
  1989. err = do_remount_sb(sb, flags, data, 0);
  1990. if (!err) {
  1991. lock_mount_hash();
  1992. mnt_flags |= mnt->mnt.mnt_flags & ~MNT_USER_SETTABLE_MASK;
  1993. mnt->mnt.mnt_flags = mnt_flags;
  1994. touch_mnt_namespace(mnt->mnt_ns);
  1995. unlock_mount_hash();
  1996. }
  1997. up_write(&sb->s_umount);
  1998. return err;
  1999. }
  2000. static inline int tree_contains_unbindable(struct mount *mnt)
  2001. {
  2002. struct mount *p;
  2003. for (p = mnt; p; p = next_mnt(p, mnt)) {
  2004. if (IS_MNT_UNBINDABLE(p))
  2005. return 1;
  2006. }
  2007. return 0;
  2008. }
  2009. static int do_move_mount(struct path *path, const char *old_name)
  2010. {
  2011. struct path old_path, parent_path;
  2012. struct mount *p;
  2013. struct mount *old;
  2014. struct mountpoint *mp;
  2015. int err;
  2016. if (!old_name || !*old_name)
  2017. return -EINVAL;
  2018. err = kern_path(old_name, LOOKUP_FOLLOW, &old_path);
  2019. if (err)
  2020. return err;
  2021. mp = lock_mount(path);
  2022. err = PTR_ERR(mp);
  2023. if (IS_ERR(mp))
  2024. goto out;
  2025. old = real_mount(old_path.mnt);
  2026. p = real_mount(path->mnt);
  2027. err = -EINVAL;
  2028. if (!check_mnt(p) || !check_mnt(old))
  2029. goto out1;
  2030. if (old->mnt.mnt_flags & MNT_LOCKED)
  2031. goto out1;
  2032. err = -EINVAL;
  2033. if (old_path.dentry != old_path.mnt->mnt_root)
  2034. goto out1;
  2035. if (!mnt_has_parent(old))
  2036. goto out1;
  2037. if (d_is_dir(path->dentry) !=
  2038. d_is_dir(old_path.dentry))
  2039. goto out1;
  2040. /*
  2041. * Don't move a mount residing in a shared parent.
  2042. */
  2043. if (IS_MNT_SHARED(old->mnt_parent))
  2044. goto out1;
  2045. /*
  2046. * Don't move a mount tree containing unbindable mounts to a destination
  2047. * mount which is shared.
  2048. */
  2049. if (IS_MNT_SHARED(p) && tree_contains_unbindable(old))
  2050. goto out1;
  2051. err = -ELOOP;
  2052. for (; mnt_has_parent(p); p = p->mnt_parent)
  2053. if (p == old)
  2054. goto out1;
  2055. err = attach_recursive_mnt(old, real_mount(path->mnt), mp, &parent_path);
  2056. if (err)
  2057. goto out1;
  2058. /* if the mount is moved, it should no longer be expire
  2059. * automatically */
  2060. list_del_init(&old->mnt_expire);
  2061. out1:
  2062. unlock_mount(mp);
  2063. out:
  2064. if (!err)
  2065. path_put(&parent_path);
  2066. path_put(&old_path);
  2067. return err;
  2068. }
  2069. static struct vfsmount *fs_set_subtype(struct vfsmount *mnt, const char *fstype)
  2070. {
  2071. int err;
  2072. const char *subtype = strchr(fstype, '.');
  2073. if (subtype) {
  2074. subtype++;
  2075. err = -EINVAL;
  2076. if (!subtype[0])
  2077. goto err;
  2078. } else
  2079. subtype = "";
  2080. mnt->mnt_sb->s_subtype = kstrdup(subtype, GFP_KERNEL);
  2081. err = -ENOMEM;
  2082. if (!mnt->mnt_sb->s_subtype)
  2083. goto err;
  2084. return mnt;
  2085. err:
  2086. mntput(mnt);
  2087. return ERR_PTR(err);
  2088. }
  2089. /*
  2090. * add a mount into a namespace's mount tree
  2091. */
  2092. static int do_add_mount(struct mount *newmnt, struct path *path, int mnt_flags)
  2093. {
  2094. struct mountpoint *mp;
  2095. struct mount *parent;
  2096. int err;
  2097. mnt_flags &= ~MNT_INTERNAL_FLAGS;
  2098. mp = lock_mount(path);
  2099. if (IS_ERR(mp))
  2100. return PTR_ERR(mp);
  2101. parent = real_mount(path->mnt);
  2102. err = -EINVAL;
  2103. if (unlikely(!check_mnt(parent))) {
  2104. /* that's acceptable only for automounts done in private ns */
  2105. if (!(mnt_flags & MNT_SHRINKABLE))
  2106. goto unlock;
  2107. /* ... and for those we'd better have mountpoint still alive */
  2108. if (!parent->mnt_ns)
  2109. goto unlock;
  2110. }
  2111. /* Refuse the same filesystem on the same mount point */
  2112. err = -EBUSY;
  2113. if (path->mnt->mnt_sb == newmnt->mnt.mnt_sb &&
  2114. path->mnt->mnt_root == path->dentry)
  2115. goto unlock;
  2116. err = -EINVAL;
  2117. if (d_is_symlink(newmnt->mnt.mnt_root))
  2118. goto unlock;
  2119. newmnt->mnt.mnt_flags = mnt_flags;
  2120. err = graft_tree(newmnt, parent, mp);
  2121. unlock:
  2122. unlock_mount(mp);
  2123. return err;
  2124. }
  2125. static bool mount_too_revealing(struct vfsmount *mnt, int *new_mnt_flags);
  2126. /*
  2127. * create a new mount for userspace and request it to be added into the
  2128. * namespace's tree
  2129. */
  2130. static int do_new_mount(struct path *path, const char *fstype, int flags,
  2131. int mnt_flags, const char *name, void *data)
  2132. {
  2133. struct file_system_type *type;
  2134. struct vfsmount *mnt;
  2135. int err;
  2136. if (!fstype)
  2137. return -EINVAL;
  2138. type = get_fs_type(fstype);
  2139. if (!type)
  2140. return -ENODEV;
  2141. mnt = vfs_kern_mount(type, flags, name, data);
  2142. if (!IS_ERR(mnt) && (type->fs_flags & FS_HAS_SUBTYPE) &&
  2143. !mnt->mnt_sb->s_subtype)
  2144. mnt = fs_set_subtype(mnt, fstype);
  2145. put_filesystem(type);
  2146. if (IS_ERR(mnt))
  2147. return PTR_ERR(mnt);
  2148. if (mount_too_revealing(mnt, &mnt_flags)) {
  2149. mntput(mnt);
  2150. return -EPERM;
  2151. }
  2152. err = do_add_mount(real_mount(mnt), path, mnt_flags);
  2153. if (err)
  2154. mntput(mnt);
  2155. return err;
  2156. }
  2157. int finish_automount(struct vfsmount *m, struct path *path)
  2158. {
  2159. struct mount *mnt = real_mount(m);
  2160. int err;
  2161. /* The new mount record should have at least 2 refs to prevent it being
  2162. * expired before we get a chance to add it
  2163. */
  2164. BUG_ON(mnt_get_count(mnt) < 2);
  2165. if (m->mnt_sb == path->mnt->mnt_sb &&
  2166. m->mnt_root == path->dentry) {
  2167. err = -ELOOP;
  2168. goto fail;
  2169. }
  2170. err = do_add_mount(mnt, path, path->mnt->mnt_flags | MNT_SHRINKABLE);
  2171. if (!err)
  2172. return 0;
  2173. fail:
  2174. /* remove m from any expiration list it may be on */
  2175. if (!list_empty(&mnt->mnt_expire)) {
  2176. namespace_lock();
  2177. list_del_init(&mnt->mnt_expire);
  2178. namespace_unlock();
  2179. }
  2180. mntput(m);
  2181. mntput(m);
  2182. return err;
  2183. }
  2184. /**
  2185. * mnt_set_expiry - Put a mount on an expiration list
  2186. * @mnt: The mount to list.
  2187. * @expiry_list: The list to add the mount to.
  2188. */
  2189. void mnt_set_expiry(struct vfsmount *mnt, struct list_head *expiry_list)
  2190. {
  2191. namespace_lock();
  2192. list_add_tail(&real_mount(mnt)->mnt_expire, expiry_list);
  2193. namespace_unlock();
  2194. }
  2195. EXPORT_SYMBOL(mnt_set_expiry);
  2196. /*
  2197. * process a list of expirable mountpoints with the intent of discarding any
  2198. * mountpoints that aren't in use and haven't been touched since last we came
  2199. * here
  2200. */
  2201. void mark_mounts_for_expiry(struct list_head *mounts)
  2202. {
  2203. struct mount *mnt, *next;
  2204. LIST_HEAD(graveyard);
  2205. if (list_empty(mounts))
  2206. return;
  2207. namespace_lock();
  2208. lock_mount_hash();
  2209. /* extract from the expiration list every vfsmount that matches the
  2210. * following criteria:
  2211. * - only referenced by its parent vfsmount
  2212. * - still marked for expiry (marked on the last call here; marks are
  2213. * cleared by mntput())
  2214. */
  2215. list_for_each_entry_safe(mnt, next, mounts, mnt_expire) {
  2216. if (!xchg(&mnt->mnt_expiry_mark, 1) ||
  2217. propagate_mount_busy(mnt, 1))
  2218. continue;
  2219. list_move(&mnt->mnt_expire, &graveyard);
  2220. }
  2221. while (!list_empty(&graveyard)) {
  2222. mnt = list_first_entry(&graveyard, struct mount, mnt_expire);
  2223. touch_mnt_namespace(mnt->mnt_ns);
  2224. umount_tree(mnt, UMOUNT_PROPAGATE|UMOUNT_SYNC);
  2225. }
  2226. unlock_mount_hash();
  2227. namespace_unlock();
  2228. }
  2229. EXPORT_SYMBOL_GPL(mark_mounts_for_expiry);
  2230. /*
  2231. * Ripoff of 'select_parent()'
  2232. *
  2233. * search the list of submounts for a given mountpoint, and move any
  2234. * shrinkable submounts to the 'graveyard' list.
  2235. */
  2236. static int select_submounts(struct mount *parent, struct list_head *graveyard)
  2237. {
  2238. struct mount *this_parent = parent;
  2239. struct list_head *next;
  2240. int found = 0;
  2241. repeat:
  2242. next = this_parent->mnt_mounts.next;
  2243. resume:
  2244. while (next != &this_parent->mnt_mounts) {
  2245. struct list_head *tmp = next;
  2246. struct mount *mnt = list_entry(tmp, struct mount, mnt_child);
  2247. next = tmp->next;
  2248. if (!(mnt->mnt.mnt_flags & MNT_SHRINKABLE))
  2249. continue;
  2250. /*
  2251. * Descend a level if the d_mounts list is non-empty.
  2252. */
  2253. if (!list_empty(&mnt->mnt_mounts)) {
  2254. this_parent = mnt;
  2255. goto repeat;
  2256. }
  2257. if (!propagate_mount_busy(mnt, 1)) {
  2258. list_move_tail(&mnt->mnt_expire, graveyard);
  2259. found++;
  2260. }
  2261. }
  2262. /*
  2263. * All done at this level ... ascend and resume the search
  2264. */
  2265. if (this_parent != parent) {
  2266. next = this_parent->mnt_child.next;
  2267. this_parent = this_parent->mnt_parent;
  2268. goto resume;
  2269. }
  2270. return found;
  2271. }
  2272. /*
  2273. * process a list of expirable mountpoints with the intent of discarding any
  2274. * submounts of a specific parent mountpoint
  2275. *
  2276. * mount_lock must be held for write
  2277. */
  2278. static void shrink_submounts(struct mount *mnt)
  2279. {
  2280. LIST_HEAD(graveyard);
  2281. struct mount *m;
  2282. /* extract submounts of 'mountpoint' from the expiration list */
  2283. while (select_submounts(mnt, &graveyard)) {
  2284. while (!list_empty(&graveyard)) {
  2285. m = list_first_entry(&graveyard, struct mount,
  2286. mnt_expire);
  2287. touch_mnt_namespace(m->mnt_ns);
  2288. umount_tree(m, UMOUNT_PROPAGATE|UMOUNT_SYNC);
  2289. }
  2290. }
  2291. }
  2292. /*
  2293. * Some copy_from_user() implementations do not return the exact number of
  2294. * bytes remaining to copy on a fault. But copy_mount_options() requires that.
  2295. * Note that this function differs from copy_from_user() in that it will oops
  2296. * on bad values of `to', rather than returning a short copy.
  2297. */
  2298. static long exact_copy_from_user(void *to, const void __user * from,
  2299. unsigned long n)
  2300. {
  2301. char *t = to;
  2302. const char __user *f = from;
  2303. char c;
  2304. if (!access_ok(VERIFY_READ, from, n))
  2305. return n;
  2306. while (n) {
  2307. if (__get_user(c, f)) {
  2308. memset(t, 0, n);
  2309. break;
  2310. }
  2311. *t++ = c;
  2312. f++;
  2313. n--;
  2314. }
  2315. return n;
  2316. }
  2317. void *copy_mount_options(const void __user * data)
  2318. {
  2319. int i;
  2320. unsigned long size;
  2321. char *copy;
  2322. if (!data)
  2323. return NULL;
  2324. copy = kmalloc(PAGE_SIZE, GFP_KERNEL);
  2325. if (!copy)
  2326. return ERR_PTR(-ENOMEM);
  2327. /* We only care that *some* data at the address the user
  2328. * gave us is valid. Just in case, we'll zero
  2329. * the remainder of the page.
  2330. */
  2331. /* copy_from_user cannot cross TASK_SIZE ! */
  2332. size = TASK_SIZE - (unsigned long)data;
  2333. if (size > PAGE_SIZE)
  2334. size = PAGE_SIZE;
  2335. i = size - exact_copy_from_user(copy, data, size);
  2336. if (!i) {
  2337. kfree(copy);
  2338. return ERR_PTR(-EFAULT);
  2339. }
  2340. if (i != PAGE_SIZE)
  2341. memset(copy + i, 0, PAGE_SIZE - i);
  2342. return copy;
  2343. }
  2344. char *copy_mount_string(const void __user *data)
  2345. {
  2346. return data ? strndup_user(data, PAGE_SIZE) : NULL;
  2347. }
  2348. /*
  2349. * Flags is a 32-bit value that allows up to 31 non-fs dependent flags to
  2350. * be given to the mount() call (ie: read-only, no-dev, no-suid etc).
  2351. *
  2352. * data is a (void *) that can point to any structure up to
  2353. * PAGE_SIZE-1 bytes, which can contain arbitrary fs-dependent
  2354. * information (or be NULL).
  2355. *
  2356. * Pre-0.97 versions of mount() didn't have a flags word.
  2357. * When the flags word was introduced its top half was required
  2358. * to have the magic value 0xC0ED, and this remained so until 2.4.0-test9.
  2359. * Therefore, if this magic number is present, it carries no information
  2360. * and must be discarded.
  2361. */
  2362. long do_mount(const char *dev_name, const char __user *dir_name,
  2363. const char *type_page, unsigned long flags, void *data_page)
  2364. {
  2365. struct path path;
  2366. int retval = 0;
  2367. int mnt_flags = 0;
  2368. /* Discard magic */
  2369. if ((flags & MS_MGC_MSK) == MS_MGC_VAL)
  2370. flags &= ~MS_MGC_MSK;
  2371. /* Basic sanity checks */
  2372. if (data_page)
  2373. ((char *)data_page)[PAGE_SIZE - 1] = 0;
  2374. /* ... and get the mountpoint */
  2375. retval = user_path(dir_name, &path);
  2376. if (retval)
  2377. return retval;
  2378. retval = security_sb_mount(dev_name, &path,
  2379. type_page, flags, data_page);
  2380. if (!retval && !may_mount())
  2381. retval = -EPERM;
  2382. if (!retval && (flags & MS_MANDLOCK) && !may_mandlock())
  2383. retval = -EPERM;
  2384. if (retval)
  2385. goto dput_out;
  2386. /* Default to relatime unless overriden */
  2387. if (!(flags & MS_NOATIME))
  2388. mnt_flags |= MNT_RELATIME;
  2389. /* Separate the per-mountpoint flags */
  2390. if (flags & MS_NOSUID)
  2391. mnt_flags |= MNT_NOSUID;
  2392. if (flags & MS_NODEV)
  2393. mnt_flags |= MNT_NODEV;
  2394. if (flags & MS_NOEXEC)
  2395. mnt_flags |= MNT_NOEXEC;
  2396. if (flags & MS_NOATIME)
  2397. mnt_flags |= MNT_NOATIME;
  2398. if (flags & MS_NODIRATIME)
  2399. mnt_flags |= MNT_NODIRATIME;
  2400. if (flags & MS_STRICTATIME)
  2401. mnt_flags &= ~(MNT_RELATIME | MNT_NOATIME);
  2402. if (flags & MS_RDONLY)
  2403. mnt_flags |= MNT_READONLY;
  2404. /* The default atime for remount is preservation */
  2405. if ((flags & MS_REMOUNT) &&
  2406. ((flags & (MS_NOATIME | MS_NODIRATIME | MS_RELATIME |
  2407. MS_STRICTATIME)) == 0)) {
  2408. mnt_flags &= ~MNT_ATIME_MASK;
  2409. mnt_flags |= path.mnt->mnt_flags & MNT_ATIME_MASK;
  2410. }
  2411. flags &= ~(MS_NOSUID | MS_NOEXEC | MS_NODEV | MS_ACTIVE | MS_BORN |
  2412. MS_NOATIME | MS_NODIRATIME | MS_RELATIME| MS_KERNMOUNT |
  2413. MS_STRICTATIME | MS_NOREMOTELOCK | MS_SUBMOUNT);
  2414. if (flags & MS_REMOUNT)
  2415. retval = do_remount(&path, flags & ~MS_REMOUNT, mnt_flags,
  2416. data_page);
  2417. else if (flags & MS_BIND)
  2418. retval = do_loopback(&path, dev_name, flags & MS_REC);
  2419. else if (flags & (MS_SHARED | MS_PRIVATE | MS_SLAVE | MS_UNBINDABLE))
  2420. retval = do_change_type(&path, flags);
  2421. else if (flags & MS_MOVE)
  2422. retval = do_move_mount(&path, dev_name);
  2423. else
  2424. retval = do_new_mount(&path, type_page, flags, mnt_flags,
  2425. dev_name, data_page);
  2426. dput_out:
  2427. path_put(&path);
  2428. return retval;
  2429. }
  2430. static struct ucounts *inc_mnt_namespaces(struct user_namespace *ns)
  2431. {
  2432. return inc_ucount(ns, current_euid(), UCOUNT_MNT_NAMESPACES);
  2433. }
  2434. static void dec_mnt_namespaces(struct ucounts *ucounts)
  2435. {
  2436. dec_ucount(ucounts, UCOUNT_MNT_NAMESPACES);
  2437. }
  2438. static void free_mnt_ns(struct mnt_namespace *ns)
  2439. {
  2440. ns_free_inum(&ns->ns);
  2441. dec_mnt_namespaces(ns->ucounts);
  2442. put_user_ns(ns->user_ns);
  2443. kfree(ns);
  2444. }
  2445. /*
  2446. * Assign a sequence number so we can detect when we attempt to bind
  2447. * mount a reference to an older mount namespace into the current
  2448. * mount namespace, preventing reference counting loops. A 64bit
  2449. * number incrementing at 10Ghz will take 12,427 years to wrap which
  2450. * is effectively never, so we can ignore the possibility.
  2451. */
  2452. static atomic64_t mnt_ns_seq = ATOMIC64_INIT(1);
  2453. static struct mnt_namespace *alloc_mnt_ns(struct user_namespace *user_ns)
  2454. {
  2455. struct mnt_namespace *new_ns;
  2456. struct ucounts *ucounts;
  2457. int ret;
  2458. ucounts = inc_mnt_namespaces(user_ns);
  2459. if (!ucounts)
  2460. return ERR_PTR(-ENOSPC);
  2461. new_ns = kmalloc(sizeof(struct mnt_namespace), GFP_KERNEL);
  2462. if (!new_ns) {
  2463. dec_mnt_namespaces(ucounts);
  2464. return ERR_PTR(-ENOMEM);
  2465. }
  2466. ret = ns_alloc_inum(&new_ns->ns);
  2467. if (ret) {
  2468. kfree(new_ns);
  2469. dec_mnt_namespaces(ucounts);
  2470. return ERR_PTR(ret);
  2471. }
  2472. new_ns->ns.ops = &mntns_operations;
  2473. new_ns->seq = atomic64_add_return(1, &mnt_ns_seq);
  2474. atomic_set(&new_ns->count, 1);
  2475. new_ns->root = NULL;
  2476. INIT_LIST_HEAD(&new_ns->list);
  2477. init_waitqueue_head(&new_ns->poll);
  2478. new_ns->event = 0;
  2479. new_ns->user_ns = get_user_ns(user_ns);
  2480. new_ns->ucounts = ucounts;
  2481. new_ns->mounts = 0;
  2482. new_ns->pending_mounts = 0;
  2483. return new_ns;
  2484. }
  2485. __latent_entropy
  2486. struct mnt_namespace *copy_mnt_ns(unsigned long flags, struct mnt_namespace *ns,
  2487. struct user_namespace *user_ns, struct fs_struct *new_fs)
  2488. {
  2489. struct mnt_namespace *new_ns;
  2490. struct vfsmount *rootmnt = NULL, *pwdmnt = NULL;
  2491. struct mount *p, *q;
  2492. struct mount *old;
  2493. struct mount *new;
  2494. int copy_flags;
  2495. BUG_ON(!ns);
  2496. if (likely(!(flags & CLONE_NEWNS))) {
  2497. get_mnt_ns(ns);
  2498. return ns;
  2499. }
  2500. old = ns->root;
  2501. new_ns = alloc_mnt_ns(user_ns);
  2502. if (IS_ERR(new_ns))
  2503. return new_ns;
  2504. namespace_lock();
  2505. /* First pass: copy the tree topology */
  2506. copy_flags = CL_COPY_UNBINDABLE | CL_EXPIRE;
  2507. if (user_ns != ns->user_ns)
  2508. copy_flags |= CL_SHARED_TO_SLAVE | CL_UNPRIVILEGED;
  2509. new = copy_tree(old, old->mnt.mnt_root, copy_flags);
  2510. if (IS_ERR(new)) {
  2511. namespace_unlock();
  2512. free_mnt_ns(new_ns);
  2513. return ERR_CAST(new);
  2514. }
  2515. new_ns->root = new;
  2516. list_add_tail(&new_ns->list, &new->mnt_list);
  2517. /*
  2518. * Second pass: switch the tsk->fs->* elements and mark new vfsmounts
  2519. * as belonging to new namespace. We have already acquired a private
  2520. * fs_struct, so tsk->fs->lock is not needed.
  2521. */
  2522. p = old;
  2523. q = new;
  2524. while (p) {
  2525. q->mnt_ns = new_ns;
  2526. new_ns->mounts++;
  2527. if (new_fs) {
  2528. if (&p->mnt == new_fs->root.mnt) {
  2529. new_fs->root.mnt = mntget(&q->mnt);
  2530. rootmnt = &p->mnt;
  2531. }
  2532. if (&p->mnt == new_fs->pwd.mnt) {
  2533. new_fs->pwd.mnt = mntget(&q->mnt);
  2534. pwdmnt = &p->mnt;
  2535. }
  2536. }
  2537. p = next_mnt(p, old);
  2538. q = next_mnt(q, new);
  2539. if (!q)
  2540. break;
  2541. while (p->mnt.mnt_root != q->mnt.mnt_root)
  2542. p = next_mnt(p, old);
  2543. }
  2544. namespace_unlock();
  2545. if (rootmnt)
  2546. mntput(rootmnt);
  2547. if (pwdmnt)
  2548. mntput(pwdmnt);
  2549. return new_ns;
  2550. }
  2551. /**
  2552. * create_mnt_ns - creates a private namespace and adds a root filesystem
  2553. * @mnt: pointer to the new root filesystem mountpoint
  2554. */
  2555. static struct mnt_namespace *create_mnt_ns(struct vfsmount *m)
  2556. {
  2557. struct mnt_namespace *new_ns = alloc_mnt_ns(&init_user_ns);
  2558. if (!IS_ERR(new_ns)) {
  2559. struct mount *mnt = real_mount(m);
  2560. mnt->mnt_ns = new_ns;
  2561. new_ns->root = mnt;
  2562. new_ns->mounts++;
  2563. list_add(&mnt->mnt_list, &new_ns->list);
  2564. } else {
  2565. mntput(m);
  2566. }
  2567. return new_ns;
  2568. }
  2569. struct dentry *mount_subtree(struct vfsmount *mnt, const char *name)
  2570. {
  2571. struct mnt_namespace *ns;
  2572. struct super_block *s;
  2573. struct path path;
  2574. int err;
  2575. ns = create_mnt_ns(mnt);
  2576. if (IS_ERR(ns))
  2577. return ERR_CAST(ns);
  2578. err = vfs_path_lookup(mnt->mnt_root, mnt,
  2579. name, LOOKUP_FOLLOW|LOOKUP_AUTOMOUNT, &path);
  2580. put_mnt_ns(ns);
  2581. if (err)
  2582. return ERR_PTR(err);
  2583. /* trade a vfsmount reference for active sb one */
  2584. s = path.mnt->mnt_sb;
  2585. atomic_inc(&s->s_active);
  2586. mntput(path.mnt);
  2587. /* lock the sucker */
  2588. down_write(&s->s_umount);
  2589. /* ... and return the root of (sub)tree on it */
  2590. return path.dentry;
  2591. }
  2592. EXPORT_SYMBOL(mount_subtree);
  2593. SYSCALL_DEFINE5(mount, char __user *, dev_name, char __user *, dir_name,
  2594. char __user *, type, unsigned long, flags, void __user *, data)
  2595. {
  2596. int ret;
  2597. char *kernel_type;
  2598. char *kernel_dev;
  2599. void *options;
  2600. kernel_type = copy_mount_string(type);
  2601. ret = PTR_ERR(kernel_type);
  2602. if (IS_ERR(kernel_type))
  2603. goto out_type;
  2604. kernel_dev = copy_mount_string(dev_name);
  2605. ret = PTR_ERR(kernel_dev);
  2606. if (IS_ERR(kernel_dev))
  2607. goto out_dev;
  2608. options = copy_mount_options(data);
  2609. ret = PTR_ERR(options);
  2610. if (IS_ERR(options))
  2611. goto out_data;
  2612. ret = do_mount(kernel_dev, dir_name, kernel_type, flags, options);
  2613. kfree(options);
  2614. out_data:
  2615. kfree(kernel_dev);
  2616. out_dev:
  2617. kfree(kernel_type);
  2618. out_type:
  2619. return ret;
  2620. }
  2621. /*
  2622. * Return true if path is reachable from root
  2623. *
  2624. * namespace_sem or mount_lock is held
  2625. */
  2626. bool is_path_reachable(struct mount *mnt, struct dentry *dentry,
  2627. const struct path *root)
  2628. {
  2629. while (&mnt->mnt != root->mnt && mnt_has_parent(mnt)) {
  2630. dentry = mnt->mnt_mountpoint;
  2631. mnt = mnt->mnt_parent;
  2632. }
  2633. return &mnt->mnt == root->mnt && is_subdir(dentry, root->dentry);
  2634. }
  2635. bool path_is_under(const struct path *path1, const struct path *path2)
  2636. {
  2637. bool res;
  2638. read_seqlock_excl(&mount_lock);
  2639. res = is_path_reachable(real_mount(path1->mnt), path1->dentry, path2);
  2640. read_sequnlock_excl(&mount_lock);
  2641. return res;
  2642. }
  2643. EXPORT_SYMBOL(path_is_under);
  2644. /*
  2645. * pivot_root Semantics:
  2646. * Moves the root file system of the current process to the directory put_old,
  2647. * makes new_root as the new root file system of the current process, and sets
  2648. * root/cwd of all processes which had them on the current root to new_root.
  2649. *
  2650. * Restrictions:
  2651. * The new_root and put_old must be directories, and must not be on the
  2652. * same file system as the current process root. The put_old must be
  2653. * underneath new_root, i.e. adding a non-zero number of /.. to the string
  2654. * pointed to by put_old must yield the same directory as new_root. No other
  2655. * file system may be mounted on put_old. After all, new_root is a mountpoint.
  2656. *
  2657. * Also, the current root cannot be on the 'rootfs' (initial ramfs) filesystem.
  2658. * See Documentation/filesystems/ramfs-rootfs-initramfs.txt for alternatives
  2659. * in this situation.
  2660. *
  2661. * Notes:
  2662. * - we don't move root/cwd if they are not at the root (reason: if something
  2663. * cared enough to change them, it's probably wrong to force them elsewhere)
  2664. * - it's okay to pick a root that isn't the root of a file system, e.g.
  2665. * /nfs/my_root where /nfs is the mount point. It must be a mountpoint,
  2666. * though, so you may need to say mount --bind /nfs/my_root /nfs/my_root
  2667. * first.
  2668. */
  2669. SYSCALL_DEFINE2(pivot_root, const char __user *, new_root,
  2670. const char __user *, put_old)
  2671. {
  2672. struct path new, old, parent_path, root_parent, root;
  2673. struct mount *new_mnt, *root_mnt, *old_mnt;
  2674. struct mountpoint *old_mp, *root_mp;
  2675. int error;
  2676. if (!may_mount())
  2677. return -EPERM;
  2678. error = user_path_dir(new_root, &new);
  2679. if (error)
  2680. goto out0;
  2681. error = user_path_dir(put_old, &old);
  2682. if (error)
  2683. goto out1;
  2684. error = security_sb_pivotroot(&old, &new);
  2685. if (error)
  2686. goto out2;
  2687. get_fs_root(current->fs, &root);
  2688. old_mp = lock_mount(&old);
  2689. error = PTR_ERR(old_mp);
  2690. if (IS_ERR(old_mp))
  2691. goto out3;
  2692. error = -EINVAL;
  2693. new_mnt = real_mount(new.mnt);
  2694. root_mnt = real_mount(root.mnt);
  2695. old_mnt = real_mount(old.mnt);
  2696. if (IS_MNT_SHARED(old_mnt) ||
  2697. IS_MNT_SHARED(new_mnt->mnt_parent) ||
  2698. IS_MNT_SHARED(root_mnt->mnt_parent))
  2699. goto out4;
  2700. if (!check_mnt(root_mnt) || !check_mnt(new_mnt))
  2701. goto out4;
  2702. if (new_mnt->mnt.mnt_flags & MNT_LOCKED)
  2703. goto out4;
  2704. error = -ENOENT;
  2705. if (d_unlinked(new.dentry))
  2706. goto out4;
  2707. error = -EBUSY;
  2708. if (new_mnt == root_mnt || old_mnt == root_mnt)
  2709. goto out4; /* loop, on the same file system */
  2710. error = -EINVAL;
  2711. if (root.mnt->mnt_root != root.dentry)
  2712. goto out4; /* not a mountpoint */
  2713. if (!mnt_has_parent(root_mnt))
  2714. goto out4; /* not attached */
  2715. root_mp = root_mnt->mnt_mp;
  2716. if (new.mnt->mnt_root != new.dentry)
  2717. goto out4; /* not a mountpoint */
  2718. if (!mnt_has_parent(new_mnt))
  2719. goto out4; /* not attached */
  2720. /* make sure we can reach put_old from new_root */
  2721. if (!is_path_reachable(old_mnt, old.dentry, &new))
  2722. goto out4;
  2723. /* make certain new is below the root */
  2724. if (!is_path_reachable(new_mnt, new.dentry, &root))
  2725. goto out4;
  2726. root_mp->m_count++; /* pin it so it won't go away */
  2727. lock_mount_hash();
  2728. detach_mnt(new_mnt, &parent_path);
  2729. detach_mnt(root_mnt, &root_parent);
  2730. if (root_mnt->mnt.mnt_flags & MNT_LOCKED) {
  2731. new_mnt->mnt.mnt_flags |= MNT_LOCKED;
  2732. root_mnt->mnt.mnt_flags &= ~MNT_LOCKED;
  2733. }
  2734. /* mount old root on put_old */
  2735. attach_mnt(root_mnt, old_mnt, old_mp);
  2736. /* mount new_root on / */
  2737. attach_mnt(new_mnt, real_mount(root_parent.mnt), root_mp);
  2738. touch_mnt_namespace(current->nsproxy->mnt_ns);
  2739. /* A moved mount should not expire automatically */
  2740. list_del_init(&new_mnt->mnt_expire);
  2741. put_mountpoint(root_mp);
  2742. unlock_mount_hash();
  2743. chroot_fs_refs(&root, &new);
  2744. error = 0;
  2745. out4:
  2746. unlock_mount(old_mp);
  2747. if (!error) {
  2748. path_put(&root_parent);
  2749. path_put(&parent_path);
  2750. }
  2751. out3:
  2752. path_put(&root);
  2753. out2:
  2754. path_put(&old);
  2755. out1:
  2756. path_put(&new);
  2757. out0:
  2758. return error;
  2759. }
  2760. static void __init init_mount_tree(void)
  2761. {
  2762. struct vfsmount *mnt;
  2763. struct mnt_namespace *ns;
  2764. struct path root;
  2765. struct file_system_type *type;
  2766. type = get_fs_type("rootfs");
  2767. if (!type)
  2768. panic("Can't find rootfs type");
  2769. mnt = vfs_kern_mount(type, 0, "rootfs", NULL);
  2770. put_filesystem(type);
  2771. if (IS_ERR(mnt))
  2772. panic("Can't create rootfs");
  2773. ns = create_mnt_ns(mnt);
  2774. if (IS_ERR(ns))
  2775. panic("Can't allocate initial namespace");
  2776. init_task.nsproxy->mnt_ns = ns;
  2777. get_mnt_ns(ns);
  2778. root.mnt = mnt;
  2779. root.dentry = mnt->mnt_root;
  2780. mnt->mnt_flags |= MNT_LOCKED;
  2781. set_fs_pwd(current->fs, &root);
  2782. set_fs_root(current->fs, &root);
  2783. }
  2784. void __init mnt_init(void)
  2785. {
  2786. int err;
  2787. mnt_cache = kmem_cache_create("mnt_cache", sizeof(struct mount),
  2788. 0, SLAB_HWCACHE_ALIGN | SLAB_PANIC, NULL);
  2789. mount_hashtable = alloc_large_system_hash("Mount-cache",
  2790. sizeof(struct hlist_head),
  2791. mhash_entries, 19,
  2792. HASH_ZERO,
  2793. &m_hash_shift, &m_hash_mask, 0, 0);
  2794. mountpoint_hashtable = alloc_large_system_hash("Mountpoint-cache",
  2795. sizeof(struct hlist_head),
  2796. mphash_entries, 19,
  2797. HASH_ZERO,
  2798. &mp_hash_shift, &mp_hash_mask, 0, 0);
  2799. if (!mount_hashtable || !mountpoint_hashtable)
  2800. panic("Failed to allocate mount hash table\n");
  2801. kernfs_init();
  2802. err = sysfs_init();
  2803. if (err)
  2804. printk(KERN_WARNING "%s: sysfs_init error: %d\n",
  2805. __func__, err);
  2806. fs_kobj = kobject_create_and_add("fs", NULL);
  2807. if (!fs_kobj)
  2808. printk(KERN_WARNING "%s: kobj create error\n", __func__);
  2809. init_rootfs();
  2810. init_mount_tree();
  2811. }
  2812. void put_mnt_ns(struct mnt_namespace *ns)
  2813. {
  2814. if (!atomic_dec_and_test(&ns->count))
  2815. return;
  2816. drop_collected_mounts(&ns->root->mnt);
  2817. free_mnt_ns(ns);
  2818. }
  2819. struct vfsmount *kern_mount_data(struct file_system_type *type, void *data)
  2820. {
  2821. struct vfsmount *mnt;
  2822. mnt = vfs_kern_mount(type, MS_KERNMOUNT, type->name, data);
  2823. if (!IS_ERR(mnt)) {
  2824. /*
  2825. * it is a longterm mount, don't release mnt until
  2826. * we unmount before file sys is unregistered
  2827. */
  2828. real_mount(mnt)->mnt_ns = MNT_NS_INTERNAL;
  2829. }
  2830. return mnt;
  2831. }
  2832. EXPORT_SYMBOL_GPL(kern_mount_data);
  2833. void kern_unmount(struct vfsmount *mnt)
  2834. {
  2835. /* release long term mount so mount point can be released */
  2836. if (!IS_ERR_OR_NULL(mnt)) {
  2837. real_mount(mnt)->mnt_ns = NULL;
  2838. synchronize_rcu(); /* yecchhh... */
  2839. mntput(mnt);
  2840. }
  2841. }
  2842. EXPORT_SYMBOL(kern_unmount);
  2843. bool our_mnt(struct vfsmount *mnt)
  2844. {
  2845. return check_mnt(real_mount(mnt));
  2846. }
  2847. bool current_chrooted(void)
  2848. {
  2849. /* Does the current process have a non-standard root */
  2850. struct path ns_root;
  2851. struct path fs_root;
  2852. bool chrooted;
  2853. /* Find the namespace root */
  2854. ns_root.mnt = &current->nsproxy->mnt_ns->root->mnt;
  2855. ns_root.dentry = ns_root.mnt->mnt_root;
  2856. path_get(&ns_root);
  2857. while (d_mountpoint(ns_root.dentry) && follow_down_one(&ns_root))
  2858. ;
  2859. get_fs_root(current->fs, &fs_root);
  2860. chrooted = !path_equal(&fs_root, &ns_root);
  2861. path_put(&fs_root);
  2862. path_put(&ns_root);
  2863. return chrooted;
  2864. }
  2865. static bool mnt_already_visible(struct mnt_namespace *ns, struct vfsmount *new,
  2866. int *new_mnt_flags)
  2867. {
  2868. int new_flags = *new_mnt_flags;
  2869. struct mount *mnt;
  2870. bool visible = false;
  2871. down_read(&namespace_sem);
  2872. list_for_each_entry(mnt, &ns->list, mnt_list) {
  2873. struct mount *child;
  2874. int mnt_flags;
  2875. if (mnt->mnt.mnt_sb->s_type != new->mnt_sb->s_type)
  2876. continue;
  2877. /* This mount is not fully visible if it's root directory
  2878. * is not the root directory of the filesystem.
  2879. */
  2880. if (mnt->mnt.mnt_root != mnt->mnt.mnt_sb->s_root)
  2881. continue;
  2882. /* A local view of the mount flags */
  2883. mnt_flags = mnt->mnt.mnt_flags;
  2884. /* Don't miss readonly hidden in the superblock flags */
  2885. if (sb_rdonly(mnt->mnt.mnt_sb))
  2886. mnt_flags |= MNT_LOCK_READONLY;
  2887. /* Verify the mount flags are equal to or more permissive
  2888. * than the proposed new mount.
  2889. */
  2890. if ((mnt_flags & MNT_LOCK_READONLY) &&
  2891. !(new_flags & MNT_READONLY))
  2892. continue;
  2893. if ((mnt_flags & MNT_LOCK_ATIME) &&
  2894. ((mnt_flags & MNT_ATIME_MASK) != (new_flags & MNT_ATIME_MASK)))
  2895. continue;
  2896. /* This mount is not fully visible if there are any
  2897. * locked child mounts that cover anything except for
  2898. * empty directories.
  2899. */
  2900. list_for_each_entry(child, &mnt->mnt_mounts, mnt_child) {
  2901. struct inode *inode = child->mnt_mountpoint->d_inode;
  2902. /* Only worry about locked mounts */
  2903. if (!(child->mnt.mnt_flags & MNT_LOCKED))
  2904. continue;
  2905. /* Is the directory permanetly empty? */
  2906. if (!is_empty_dir_inode(inode))
  2907. goto next;
  2908. }
  2909. /* Preserve the locked attributes */
  2910. *new_mnt_flags |= mnt_flags & (MNT_LOCK_READONLY | \
  2911. MNT_LOCK_ATIME);
  2912. visible = true;
  2913. goto found;
  2914. next: ;
  2915. }
  2916. found:
  2917. up_read(&namespace_sem);
  2918. return visible;
  2919. }
  2920. static bool mount_too_revealing(struct vfsmount *mnt, int *new_mnt_flags)
  2921. {
  2922. const unsigned long required_iflags = SB_I_NOEXEC | SB_I_NODEV;
  2923. struct mnt_namespace *ns = current->nsproxy->mnt_ns;
  2924. unsigned long s_iflags;
  2925. if (ns->user_ns == &init_user_ns)
  2926. return false;
  2927. /* Can this filesystem be too revealing? */
  2928. s_iflags = mnt->mnt_sb->s_iflags;
  2929. if (!(s_iflags & SB_I_USERNS_VISIBLE))
  2930. return false;
  2931. if ((s_iflags & required_iflags) != required_iflags) {
  2932. WARN_ONCE(1, "Expected s_iflags to contain 0x%lx\n",
  2933. required_iflags);
  2934. return true;
  2935. }
  2936. return !mnt_already_visible(ns, mnt, new_mnt_flags);
  2937. }
  2938. bool mnt_may_suid(struct vfsmount *mnt)
  2939. {
  2940. /*
  2941. * Foreign mounts (accessed via fchdir or through /proc
  2942. * symlinks) are always treated as if they are nosuid. This
  2943. * prevents namespaces from trusting potentially unsafe
  2944. * suid/sgid bits, file caps, or security labels that originate
  2945. * in other namespaces.
  2946. */
  2947. return !(mnt->mnt_flags & MNT_NOSUID) && check_mnt(real_mount(mnt)) &&
  2948. current_in_userns(mnt->mnt_sb->s_user_ns);
  2949. }
  2950. static struct ns_common *mntns_get(struct task_struct *task)
  2951. {
  2952. struct ns_common *ns = NULL;
  2953. struct nsproxy *nsproxy;
  2954. task_lock(task);
  2955. nsproxy = task->nsproxy;
  2956. if (nsproxy) {
  2957. ns = &nsproxy->mnt_ns->ns;
  2958. get_mnt_ns(to_mnt_ns(ns));
  2959. }
  2960. task_unlock(task);
  2961. return ns;
  2962. }
  2963. static void mntns_put(struct ns_common *ns)
  2964. {
  2965. put_mnt_ns(to_mnt_ns(ns));
  2966. }
  2967. static int mntns_install(struct nsproxy *nsproxy, struct ns_common *ns)
  2968. {
  2969. struct fs_struct *fs = current->fs;
  2970. struct mnt_namespace *mnt_ns = to_mnt_ns(ns), *old_mnt_ns;
  2971. struct path root;
  2972. int err;
  2973. if (!ns_capable(mnt_ns->user_ns, CAP_SYS_ADMIN) ||
  2974. !ns_capable(current_user_ns(), CAP_SYS_CHROOT) ||
  2975. !ns_capable(current_user_ns(), CAP_SYS_ADMIN))
  2976. return -EPERM;
  2977. if (fs->users != 1)
  2978. return -EINVAL;
  2979. get_mnt_ns(mnt_ns);
  2980. old_mnt_ns = nsproxy->mnt_ns;
  2981. nsproxy->mnt_ns = mnt_ns;
  2982. /* Find the root */
  2983. err = vfs_path_lookup(mnt_ns->root->mnt.mnt_root, &mnt_ns->root->mnt,
  2984. "/", LOOKUP_DOWN, &root);
  2985. if (err) {
  2986. /* revert to old namespace */
  2987. nsproxy->mnt_ns = old_mnt_ns;
  2988. put_mnt_ns(mnt_ns);
  2989. return err;
  2990. }
  2991. put_mnt_ns(old_mnt_ns);
  2992. /* Update the pwd and root */
  2993. set_fs_pwd(fs, &root);
  2994. set_fs_root(fs, &root);
  2995. path_put(&root);
  2996. return 0;
  2997. }
  2998. static struct user_namespace *mntns_owner(struct ns_common *ns)
  2999. {
  3000. return to_mnt_ns(ns)->user_ns;
  3001. }
  3002. const struct proc_ns_operations mntns_operations = {
  3003. .name = "mnt",
  3004. .type = CLONE_NEWNS,
  3005. .get = mntns_get,
  3006. .put = mntns_put,
  3007. .install = mntns_install,
  3008. .owner = mntns_owner,
  3009. };