xref: /linux/fs/namespace.c (revision 4c9ca2fd7c402c8eab6e949899af04bc3c249b2b)
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 
11 #include <linux/syscalls.h>
12 #include <linux/export.h>
13 #include <linux/capability.h>
14 #include <linux/mnt_namespace.h>
15 #include <linux/user_namespace.h>
16 #include <linux/namei.h>
17 #include <linux/security.h>
18 #include <linux/cred.h>
19 #include <linux/idr.h>
20 #include <linux/init.h>		/* init_rootfs */
21 #include <linux/fs_struct.h>	/* get_fs_root et.al. */
22 #include <linux/fsnotify.h>	/* fsnotify_vfsmount_delete */
23 #include <linux/uaccess.h>
24 #include <linux/proc_ns.h>
25 #include <linux/magic.h>
26 #include <linux/bootmem.h>
27 #include <linux/task_work.h>
28 #include <linux/sched/task.h>
29 
30 #include "pnode.h"
31 #include "internal.h"
32 
33 /* Maximum number of mounts in a mount namespace */
34 unsigned int sysctl_mount_max __read_mostly = 100000;
35 
36 static unsigned int m_hash_mask __read_mostly;
37 static unsigned int m_hash_shift __read_mostly;
38 static unsigned int mp_hash_mask __read_mostly;
39 static unsigned int mp_hash_shift __read_mostly;
40 
41 static __initdata unsigned long mhash_entries;
42 static int __init set_mhash_entries(char *str)
43 {
44 	if (!str)
45 		return 0;
46 	mhash_entries = simple_strtoul(str, &str, 0);
47 	return 1;
48 }
49 __setup("mhash_entries=", set_mhash_entries);
50 
51 static __initdata unsigned long mphash_entries;
52 static int __init set_mphash_entries(char *str)
53 {
54 	if (!str)
55 		return 0;
56 	mphash_entries = simple_strtoul(str, &str, 0);
57 	return 1;
58 }
59 __setup("mphash_entries=", set_mphash_entries);
60 
61 static u64 event;
62 static DEFINE_IDA(mnt_id_ida);
63 static DEFINE_IDA(mnt_group_ida);
64 
65 static struct hlist_head *mount_hashtable __read_mostly;
66 static struct hlist_head *mountpoint_hashtable __read_mostly;
67 static struct kmem_cache *mnt_cache __read_mostly;
68 static DECLARE_RWSEM(namespace_sem);
69 
70 /* /sys/fs */
71 struct kobject *fs_kobj;
72 EXPORT_SYMBOL_GPL(fs_kobj);
73 
74 /*
75  * vfsmount lock may be taken for read to prevent changes to the
76  * vfsmount hash, ie. during mountpoint lookups or walking back
77  * up the tree.
78  *
79  * It should be taken for write in all cases where the vfsmount
80  * tree or hash is modified or when a vfsmount structure is modified.
81  */
82 __cacheline_aligned_in_smp DEFINE_SEQLOCK(mount_lock);
83 
84 static inline struct hlist_head *m_hash(struct vfsmount *mnt, struct dentry *dentry)
85 {
86 	unsigned long tmp = ((unsigned long)mnt / L1_CACHE_BYTES);
87 	tmp += ((unsigned long)dentry / L1_CACHE_BYTES);
88 	tmp = tmp + (tmp >> m_hash_shift);
89 	return &mount_hashtable[tmp & m_hash_mask];
90 }
91 
92 static inline struct hlist_head *mp_hash(struct dentry *dentry)
93 {
94 	unsigned long tmp = ((unsigned long)dentry / L1_CACHE_BYTES);
95 	tmp = tmp + (tmp >> mp_hash_shift);
96 	return &mountpoint_hashtable[tmp & mp_hash_mask];
97 }
98 
99 static int mnt_alloc_id(struct mount *mnt)
100 {
101 	int res = ida_alloc(&mnt_id_ida, GFP_KERNEL);
102 
103 	if (res < 0)
104 		return res;
105 	mnt->mnt_id = res;
106 	return 0;
107 }
108 
109 static void mnt_free_id(struct mount *mnt)
110 {
111 	ida_free(&mnt_id_ida, mnt->mnt_id);
112 }
113 
114 /*
115  * Allocate a new peer group ID
116  */
117 static int mnt_alloc_group_id(struct mount *mnt)
118 {
119 	int res = ida_alloc_min(&mnt_group_ida, 1, GFP_KERNEL);
120 
121 	if (res < 0)
122 		return res;
123 	mnt->mnt_group_id = res;
124 	return 0;
125 }
126 
127 /*
128  * Release a peer group ID
129  */
130 void mnt_release_group_id(struct mount *mnt)
131 {
132 	ida_free(&mnt_group_ida, mnt->mnt_group_id);
133 	mnt->mnt_group_id = 0;
134 }
135 
136 /*
137  * vfsmount lock must be held for read
138  */
139 static inline void mnt_add_count(struct mount *mnt, int n)
140 {
141 #ifdef CONFIG_SMP
142 	this_cpu_add(mnt->mnt_pcp->mnt_count, n);
143 #else
144 	preempt_disable();
145 	mnt->mnt_count += n;
146 	preempt_enable();
147 #endif
148 }
149 
150 /*
151  * vfsmount lock must be held for write
152  */
153 unsigned int mnt_get_count(struct mount *mnt)
154 {
155 #ifdef CONFIG_SMP
156 	unsigned int count = 0;
157 	int cpu;
158 
159 	for_each_possible_cpu(cpu) {
160 		count += per_cpu_ptr(mnt->mnt_pcp, cpu)->mnt_count;
161 	}
162 
163 	return count;
164 #else
165 	return mnt->mnt_count;
166 #endif
167 }
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 
177 static struct mount *alloc_vfsmnt(const char *name)
178 {
179 	struct mount *mnt = kmem_cache_zalloc(mnt_cache, GFP_KERNEL);
180 	if (mnt) {
181 		int err;
182 
183 		err = mnt_alloc_id(mnt);
184 		if (err)
185 			goto out_free_cache;
186 
187 		if (name) {
188 			mnt->mnt_devname = kstrdup_const(name, GFP_KERNEL);
189 			if (!mnt->mnt_devname)
190 				goto out_free_id;
191 		}
192 
193 #ifdef CONFIG_SMP
194 		mnt->mnt_pcp = alloc_percpu(struct mnt_pcp);
195 		if (!mnt->mnt_pcp)
196 			goto out_free_devname;
197 
198 		this_cpu_add(mnt->mnt_pcp->mnt_count, 1);
199 #else
200 		mnt->mnt_count = 1;
201 		mnt->mnt_writers = 0;
202 #endif
203 
204 		INIT_HLIST_NODE(&mnt->mnt_hash);
205 		INIT_LIST_HEAD(&mnt->mnt_child);
206 		INIT_LIST_HEAD(&mnt->mnt_mounts);
207 		INIT_LIST_HEAD(&mnt->mnt_list);
208 		INIT_LIST_HEAD(&mnt->mnt_expire);
209 		INIT_LIST_HEAD(&mnt->mnt_share);
210 		INIT_LIST_HEAD(&mnt->mnt_slave_list);
211 		INIT_LIST_HEAD(&mnt->mnt_slave);
212 		INIT_HLIST_NODE(&mnt->mnt_mp_list);
213 		INIT_LIST_HEAD(&mnt->mnt_umounting);
214 		init_fs_pin(&mnt->mnt_umount, drop_mountpoint);
215 	}
216 	return mnt;
217 
218 #ifdef CONFIG_SMP
219 out_free_devname:
220 	kfree_const(mnt->mnt_devname);
221 #endif
222 out_free_id:
223 	mnt_free_id(mnt);
224 out_free_cache:
225 	kmem_cache_free(mnt_cache, mnt);
226 	return NULL;
227 }
228 
229 /*
230  * Most r/o checks on a fs are for operations that take
231  * discrete amounts of time, like a write() or unlink().
232  * We must keep track of when those operations start
233  * (for permission checks) and when they end, so that
234  * we can determine when writes are able to occur to
235  * a filesystem.
236  */
237 /*
238  * __mnt_is_readonly: check whether a mount is read-only
239  * @mnt: the mount to check for its write status
240  *
241  * This shouldn't be used directly ouside of the VFS.
242  * It does not guarantee that the filesystem will stay
243  * r/w, just that it is right *now*.  This can not and
244  * should not be used in place of IS_RDONLY(inode).
245  * mnt_want/drop_write() will _keep_ the filesystem
246  * r/w.
247  */
248 int __mnt_is_readonly(struct vfsmount *mnt)
249 {
250 	if (mnt->mnt_flags & MNT_READONLY)
251 		return 1;
252 	if (sb_rdonly(mnt->mnt_sb))
253 		return 1;
254 	return 0;
255 }
256 EXPORT_SYMBOL_GPL(__mnt_is_readonly);
257 
258 static inline void mnt_inc_writers(struct mount *mnt)
259 {
260 #ifdef CONFIG_SMP
261 	this_cpu_inc(mnt->mnt_pcp->mnt_writers);
262 #else
263 	mnt->mnt_writers++;
264 #endif
265 }
266 
267 static inline void mnt_dec_writers(struct mount *mnt)
268 {
269 #ifdef CONFIG_SMP
270 	this_cpu_dec(mnt->mnt_pcp->mnt_writers);
271 #else
272 	mnt->mnt_writers--;
273 #endif
274 }
275 
276 static unsigned int mnt_get_writers(struct mount *mnt)
277 {
278 #ifdef CONFIG_SMP
279 	unsigned int count = 0;
280 	int cpu;
281 
282 	for_each_possible_cpu(cpu) {
283 		count += per_cpu_ptr(mnt->mnt_pcp, cpu)->mnt_writers;
284 	}
285 
286 	return count;
287 #else
288 	return mnt->mnt_writers;
289 #endif
290 }
291 
292 static int mnt_is_readonly(struct vfsmount *mnt)
293 {
294 	if (mnt->mnt_sb->s_readonly_remount)
295 		return 1;
296 	/* Order wrt setting s_flags/s_readonly_remount in do_remount() */
297 	smp_rmb();
298 	return __mnt_is_readonly(mnt);
299 }
300 
301 /*
302  * Most r/o & frozen checks on a fs are for operations that take discrete
303  * amounts of time, like a write() or unlink().  We must keep track of when
304  * those operations start (for permission checks) and when they end, so that we
305  * can determine when writes are able to occur to a filesystem.
306  */
307 /**
308  * __mnt_want_write - get write access to a mount without freeze protection
309  * @m: the mount on which to take a write
310  *
311  * This tells the low-level filesystem that a write is about to be performed to
312  * it, and makes sure that writes are allowed (mnt it read-write) before
313  * returning success. This operation does not protect against filesystem being
314  * frozen. When the write operation is finished, __mnt_drop_write() must be
315  * called. This is effectively a refcount.
316  */
317 int __mnt_want_write(struct vfsmount *m)
318 {
319 	struct mount *mnt = real_mount(m);
320 	int ret = 0;
321 
322 	preempt_disable();
323 	mnt_inc_writers(mnt);
324 	/*
325 	 * The store to mnt_inc_writers must be visible before we pass
326 	 * MNT_WRITE_HOLD loop below, so that the slowpath can see our
327 	 * incremented count after it has set MNT_WRITE_HOLD.
328 	 */
329 	smp_mb();
330 	while (READ_ONCE(mnt->mnt.mnt_flags) & MNT_WRITE_HOLD)
331 		cpu_relax();
332 	/*
333 	 * After the slowpath clears MNT_WRITE_HOLD, mnt_is_readonly will
334 	 * be set to match its requirements. So we must not load that until
335 	 * MNT_WRITE_HOLD is cleared.
336 	 */
337 	smp_rmb();
338 	if (mnt_is_readonly(m)) {
339 		mnt_dec_writers(mnt);
340 		ret = -EROFS;
341 	}
342 	preempt_enable();
343 
344 	return ret;
345 }
346 
347 /**
348  * mnt_want_write - get write access to a mount
349  * @m: the mount on which to take a write
350  *
351  * This tells the low-level filesystem that a write is about to be performed to
352  * it, and makes sure that writes are allowed (mount is read-write, filesystem
353  * is not frozen) before returning success.  When the write operation is
354  * finished, mnt_drop_write() must be called.  This is effectively a refcount.
355  */
356 int mnt_want_write(struct vfsmount *m)
357 {
358 	int ret;
359 
360 	sb_start_write(m->mnt_sb);
361 	ret = __mnt_want_write(m);
362 	if (ret)
363 		sb_end_write(m->mnt_sb);
364 	return ret;
365 }
366 EXPORT_SYMBOL_GPL(mnt_want_write);
367 
368 /**
369  * mnt_clone_write - get write access to a mount
370  * @mnt: the mount on which to take a write
371  *
372  * This is effectively like mnt_want_write, except
373  * it must only be used to take an extra write reference
374  * on a mountpoint that we already know has a write reference
375  * on it. This allows some optimisation.
376  *
377  * After finished, mnt_drop_write must be called as usual to
378  * drop the reference.
379  */
380 int mnt_clone_write(struct vfsmount *mnt)
381 {
382 	/* superblock may be r/o */
383 	if (__mnt_is_readonly(mnt))
384 		return -EROFS;
385 	preempt_disable();
386 	mnt_inc_writers(real_mount(mnt));
387 	preempt_enable();
388 	return 0;
389 }
390 EXPORT_SYMBOL_GPL(mnt_clone_write);
391 
392 /**
393  * __mnt_want_write_file - get write access to a file's mount
394  * @file: the file who's mount on which to take a write
395  *
396  * This is like __mnt_want_write, but it takes a file and can
397  * do some optimisations if the file is open for write already
398  */
399 int __mnt_want_write_file(struct file *file)
400 {
401 	if (!(file->f_mode & FMODE_WRITER))
402 		return __mnt_want_write(file->f_path.mnt);
403 	else
404 		return mnt_clone_write(file->f_path.mnt);
405 }
406 
407 /**
408  * mnt_want_write_file_path - get write access to a file's mount
409  * @file: the file who's mount on which to take a write
410  *
411  * This is like mnt_want_write, but it takes a file and can
412  * do some optimisations if the file is open for write already
413  *
414  * Called by the vfs for cases when we have an open file at hand, but will do an
415  * inode operation on it (important distinction for files opened on overlayfs,
416  * since the file operations will come from the real underlying file, while
417  * inode operations come from the overlay).
418  */
419 int mnt_want_write_file_path(struct file *file)
420 {
421 	int ret;
422 
423 	sb_start_write(file->f_path.mnt->mnt_sb);
424 	ret = __mnt_want_write_file(file);
425 	if (ret)
426 		sb_end_write(file->f_path.mnt->mnt_sb);
427 	return ret;
428 }
429 
430 static inline int may_write_real(struct file *file)
431 {
432 	struct dentry *dentry = file->f_path.dentry;
433 	struct dentry *upperdentry;
434 
435 	/* Writable file? */
436 	if (file->f_mode & FMODE_WRITER)
437 		return 0;
438 
439 	/* Not overlayfs? */
440 	if (likely(!(dentry->d_flags & DCACHE_OP_REAL)))
441 		return 0;
442 
443 	/* File refers to upper, writable layer? */
444 	upperdentry = d_real(dentry, NULL, 0, D_REAL_UPPER);
445 	if (upperdentry &&
446 	    (file_inode(file) == d_inode(upperdentry) ||
447 	     file_inode(file) == d_inode(dentry)))
448 		return 0;
449 
450 	/* Lower layer: can't write to real file, sorry... */
451 	return -EPERM;
452 }
453 
454 /**
455  * mnt_want_write_file - get write access to a file's mount
456  * @file: the file who's mount on which to take a write
457  *
458  * This is like mnt_want_write, but it takes a file and can
459  * do some optimisations if the file is open for write already
460  *
461  * Mostly called by filesystems from their ioctl operation before performing
462  * modification.  On overlayfs this needs to check if the file is on a read-only
463  * lower layer and deny access in that case.
464  */
465 int mnt_want_write_file(struct file *file)
466 {
467 	int ret;
468 
469 	ret = may_write_real(file);
470 	if (!ret) {
471 		sb_start_write(file_inode(file)->i_sb);
472 		ret = __mnt_want_write_file(file);
473 		if (ret)
474 			sb_end_write(file_inode(file)->i_sb);
475 	}
476 	return ret;
477 }
478 EXPORT_SYMBOL_GPL(mnt_want_write_file);
479 
480 /**
481  * __mnt_drop_write - give up write access to a mount
482  * @mnt: the mount on which to give up write access
483  *
484  * Tells the low-level filesystem that we are done
485  * performing writes to it.  Must be matched with
486  * __mnt_want_write() call above.
487  */
488 void __mnt_drop_write(struct vfsmount *mnt)
489 {
490 	preempt_disable();
491 	mnt_dec_writers(real_mount(mnt));
492 	preempt_enable();
493 }
494 
495 /**
496  * mnt_drop_write - give up write access to a mount
497  * @mnt: the mount on which to give up write access
498  *
499  * Tells the low-level filesystem that we are done performing writes to it and
500  * also allows filesystem to be frozen again.  Must be matched with
501  * mnt_want_write() call above.
502  */
503 void mnt_drop_write(struct vfsmount *mnt)
504 {
505 	__mnt_drop_write(mnt);
506 	sb_end_write(mnt->mnt_sb);
507 }
508 EXPORT_SYMBOL_GPL(mnt_drop_write);
509 
510 void __mnt_drop_write_file(struct file *file)
511 {
512 	__mnt_drop_write(file->f_path.mnt);
513 }
514 
515 void mnt_drop_write_file_path(struct file *file)
516 {
517 	mnt_drop_write(file->f_path.mnt);
518 }
519 
520 void mnt_drop_write_file(struct file *file)
521 {
522 	__mnt_drop_write(file->f_path.mnt);
523 	sb_end_write(file_inode(file)->i_sb);
524 }
525 EXPORT_SYMBOL(mnt_drop_write_file);
526 
527 static int mnt_make_readonly(struct mount *mnt)
528 {
529 	int ret = 0;
530 
531 	lock_mount_hash();
532 	mnt->mnt.mnt_flags |= MNT_WRITE_HOLD;
533 	/*
534 	 * After storing MNT_WRITE_HOLD, we'll read the counters. This store
535 	 * should be visible before we do.
536 	 */
537 	smp_mb();
538 
539 	/*
540 	 * With writers on hold, if this value is zero, then there are
541 	 * definitely no active writers (although held writers may subsequently
542 	 * increment the count, they'll have to wait, and decrement it after
543 	 * seeing MNT_READONLY).
544 	 *
545 	 * It is OK to have counter incremented on one CPU and decremented on
546 	 * another: the sum will add up correctly. The danger would be when we
547 	 * sum up each counter, if we read a counter before it is incremented,
548 	 * but then read another CPU's count which it has been subsequently
549 	 * decremented from -- we would see more decrements than we should.
550 	 * MNT_WRITE_HOLD protects against this scenario, because
551 	 * mnt_want_write first increments count, then smp_mb, then spins on
552 	 * MNT_WRITE_HOLD, so it can't be decremented by another CPU while
553 	 * we're counting up here.
554 	 */
555 	if (mnt_get_writers(mnt) > 0)
556 		ret = -EBUSY;
557 	else
558 		mnt->mnt.mnt_flags |= MNT_READONLY;
559 	/*
560 	 * MNT_READONLY must become visible before ~MNT_WRITE_HOLD, so writers
561 	 * that become unheld will see MNT_READONLY.
562 	 */
563 	smp_wmb();
564 	mnt->mnt.mnt_flags &= ~MNT_WRITE_HOLD;
565 	unlock_mount_hash();
566 	return ret;
567 }
568 
569 static void __mnt_unmake_readonly(struct mount *mnt)
570 {
571 	lock_mount_hash();
572 	mnt->mnt.mnt_flags &= ~MNT_READONLY;
573 	unlock_mount_hash();
574 }
575 
576 int sb_prepare_remount_readonly(struct super_block *sb)
577 {
578 	struct mount *mnt;
579 	int err = 0;
580 
581 	/* Racy optimization.  Recheck the counter under MNT_WRITE_HOLD */
582 	if (atomic_long_read(&sb->s_remove_count))
583 		return -EBUSY;
584 
585 	lock_mount_hash();
586 	list_for_each_entry(mnt, &sb->s_mounts, mnt_instance) {
587 		if (!(mnt->mnt.mnt_flags & MNT_READONLY)) {
588 			mnt->mnt.mnt_flags |= MNT_WRITE_HOLD;
589 			smp_mb();
590 			if (mnt_get_writers(mnt) > 0) {
591 				err = -EBUSY;
592 				break;
593 			}
594 		}
595 	}
596 	if (!err && atomic_long_read(&sb->s_remove_count))
597 		err = -EBUSY;
598 
599 	if (!err) {
600 		sb->s_readonly_remount = 1;
601 		smp_wmb();
602 	}
603 	list_for_each_entry(mnt, &sb->s_mounts, mnt_instance) {
604 		if (mnt->mnt.mnt_flags & MNT_WRITE_HOLD)
605 			mnt->mnt.mnt_flags &= ~MNT_WRITE_HOLD;
606 	}
607 	unlock_mount_hash();
608 
609 	return err;
610 }
611 
612 static void free_vfsmnt(struct mount *mnt)
613 {
614 	kfree_const(mnt->mnt_devname);
615 #ifdef CONFIG_SMP
616 	free_percpu(mnt->mnt_pcp);
617 #endif
618 	kmem_cache_free(mnt_cache, mnt);
619 }
620 
621 static void delayed_free_vfsmnt(struct rcu_head *head)
622 {
623 	free_vfsmnt(container_of(head, struct mount, mnt_rcu));
624 }
625 
626 /* call under rcu_read_lock */
627 int __legitimize_mnt(struct vfsmount *bastard, unsigned seq)
628 {
629 	struct mount *mnt;
630 	if (read_seqretry(&mount_lock, seq))
631 		return 1;
632 	if (bastard == NULL)
633 		return 0;
634 	mnt = real_mount(bastard);
635 	mnt_add_count(mnt, 1);
636 	smp_mb();			// see mntput_no_expire()
637 	if (likely(!read_seqretry(&mount_lock, seq)))
638 		return 0;
639 	if (bastard->mnt_flags & MNT_SYNC_UMOUNT) {
640 		mnt_add_count(mnt, -1);
641 		return 1;
642 	}
643 	lock_mount_hash();
644 	if (unlikely(bastard->mnt_flags & MNT_DOOMED)) {
645 		mnt_add_count(mnt, -1);
646 		unlock_mount_hash();
647 		return 1;
648 	}
649 	unlock_mount_hash();
650 	/* caller will mntput() */
651 	return -1;
652 }
653 
654 /* call under rcu_read_lock */
655 bool legitimize_mnt(struct vfsmount *bastard, unsigned seq)
656 {
657 	int res = __legitimize_mnt(bastard, seq);
658 	if (likely(!res))
659 		return true;
660 	if (unlikely(res < 0)) {
661 		rcu_read_unlock();
662 		mntput(bastard);
663 		rcu_read_lock();
664 	}
665 	return false;
666 }
667 
668 /*
669  * find the first mount at @dentry on vfsmount @mnt.
670  * call under rcu_read_lock()
671  */
672 struct mount *__lookup_mnt(struct vfsmount *mnt, struct dentry *dentry)
673 {
674 	struct hlist_head *head = m_hash(mnt, dentry);
675 	struct mount *p;
676 
677 	hlist_for_each_entry_rcu(p, head, mnt_hash)
678 		if (&p->mnt_parent->mnt == mnt && p->mnt_mountpoint == dentry)
679 			return p;
680 	return NULL;
681 }
682 
683 /*
684  * lookup_mnt - Return the first child mount mounted at path
685  *
686  * "First" means first mounted chronologically.  If you create the
687  * following mounts:
688  *
689  * mount /dev/sda1 /mnt
690  * mount /dev/sda2 /mnt
691  * mount /dev/sda3 /mnt
692  *
693  * Then lookup_mnt() on the base /mnt dentry in the root mount will
694  * return successively the root dentry and vfsmount of /dev/sda1, then
695  * /dev/sda2, then /dev/sda3, then NULL.
696  *
697  * lookup_mnt takes a reference to the found vfsmount.
698  */
699 struct vfsmount *lookup_mnt(const struct path *path)
700 {
701 	struct mount *child_mnt;
702 	struct vfsmount *m;
703 	unsigned seq;
704 
705 	rcu_read_lock();
706 	do {
707 		seq = read_seqbegin(&mount_lock);
708 		child_mnt = __lookup_mnt(path->mnt, path->dentry);
709 		m = child_mnt ? &child_mnt->mnt : NULL;
710 	} while (!legitimize_mnt(m, seq));
711 	rcu_read_unlock();
712 	return m;
713 }
714 
715 /*
716  * __is_local_mountpoint - Test to see if dentry is a mountpoint in the
717  *                         current mount namespace.
718  *
719  * The common case is dentries are not mountpoints at all and that
720  * test is handled inline.  For the slow case when we are actually
721  * dealing with a mountpoint of some kind, walk through all of the
722  * mounts in the current mount namespace and test to see if the dentry
723  * is a mountpoint.
724  *
725  * The mount_hashtable is not usable in the context because we
726  * need to identify all mounts that may be in the current mount
727  * namespace not just a mount that happens to have some specified
728  * parent mount.
729  */
730 bool __is_local_mountpoint(struct dentry *dentry)
731 {
732 	struct mnt_namespace *ns = current->nsproxy->mnt_ns;
733 	struct mount *mnt;
734 	bool is_covered = false;
735 
736 	if (!d_mountpoint(dentry))
737 		goto out;
738 
739 	down_read(&namespace_sem);
740 	list_for_each_entry(mnt, &ns->list, mnt_list) {
741 		is_covered = (mnt->mnt_mountpoint == dentry);
742 		if (is_covered)
743 			break;
744 	}
745 	up_read(&namespace_sem);
746 out:
747 	return is_covered;
748 }
749 
750 static struct mountpoint *lookup_mountpoint(struct dentry *dentry)
751 {
752 	struct hlist_head *chain = mp_hash(dentry);
753 	struct mountpoint *mp;
754 
755 	hlist_for_each_entry(mp, chain, m_hash) {
756 		if (mp->m_dentry == dentry) {
757 			/* might be worth a WARN_ON() */
758 			if (d_unlinked(dentry))
759 				return ERR_PTR(-ENOENT);
760 			mp->m_count++;
761 			return mp;
762 		}
763 	}
764 	return NULL;
765 }
766 
767 static struct mountpoint *get_mountpoint(struct dentry *dentry)
768 {
769 	struct mountpoint *mp, *new = NULL;
770 	int ret;
771 
772 	if (d_mountpoint(dentry)) {
773 mountpoint:
774 		read_seqlock_excl(&mount_lock);
775 		mp = lookup_mountpoint(dentry);
776 		read_sequnlock_excl(&mount_lock);
777 		if (mp)
778 			goto done;
779 	}
780 
781 	if (!new)
782 		new = kmalloc(sizeof(struct mountpoint), GFP_KERNEL);
783 	if (!new)
784 		return ERR_PTR(-ENOMEM);
785 
786 
787 	/* Exactly one processes may set d_mounted */
788 	ret = d_set_mounted(dentry);
789 
790 	/* Someone else set d_mounted? */
791 	if (ret == -EBUSY)
792 		goto mountpoint;
793 
794 	/* The dentry is not available as a mountpoint? */
795 	mp = ERR_PTR(ret);
796 	if (ret)
797 		goto done;
798 
799 	/* Add the new mountpoint to the hash table */
800 	read_seqlock_excl(&mount_lock);
801 	new->m_dentry = dentry;
802 	new->m_count = 1;
803 	hlist_add_head(&new->m_hash, mp_hash(dentry));
804 	INIT_HLIST_HEAD(&new->m_list);
805 	read_sequnlock_excl(&mount_lock);
806 
807 	mp = new;
808 	new = NULL;
809 done:
810 	kfree(new);
811 	return mp;
812 }
813 
814 static void put_mountpoint(struct mountpoint *mp)
815 {
816 	if (!--mp->m_count) {
817 		struct dentry *dentry = mp->m_dentry;
818 		BUG_ON(!hlist_empty(&mp->m_list));
819 		spin_lock(&dentry->d_lock);
820 		dentry->d_flags &= ~DCACHE_MOUNTED;
821 		spin_unlock(&dentry->d_lock);
822 		hlist_del(&mp->m_hash);
823 		kfree(mp);
824 	}
825 }
826 
827 static inline int check_mnt(struct mount *mnt)
828 {
829 	return mnt->mnt_ns == current->nsproxy->mnt_ns;
830 }
831 
832 /*
833  * vfsmount lock must be held for write
834  */
835 static void touch_mnt_namespace(struct mnt_namespace *ns)
836 {
837 	if (ns) {
838 		ns->event = ++event;
839 		wake_up_interruptible(&ns->poll);
840 	}
841 }
842 
843 /*
844  * vfsmount lock must be held for write
845  */
846 static void __touch_mnt_namespace(struct mnt_namespace *ns)
847 {
848 	if (ns && ns->event != event) {
849 		ns->event = event;
850 		wake_up_interruptible(&ns->poll);
851 	}
852 }
853 
854 /*
855  * vfsmount lock must be held for write
856  */
857 static void unhash_mnt(struct mount *mnt)
858 {
859 	mnt->mnt_parent = mnt;
860 	mnt->mnt_mountpoint = mnt->mnt.mnt_root;
861 	list_del_init(&mnt->mnt_child);
862 	hlist_del_init_rcu(&mnt->mnt_hash);
863 	hlist_del_init(&mnt->mnt_mp_list);
864 	put_mountpoint(mnt->mnt_mp);
865 	mnt->mnt_mp = NULL;
866 }
867 
868 /*
869  * vfsmount lock must be held for write
870  */
871 static void detach_mnt(struct mount *mnt, struct path *old_path)
872 {
873 	old_path->dentry = mnt->mnt_mountpoint;
874 	old_path->mnt = &mnt->mnt_parent->mnt;
875 	unhash_mnt(mnt);
876 }
877 
878 /*
879  * vfsmount lock must be held for write
880  */
881 static void umount_mnt(struct mount *mnt)
882 {
883 	/* old mountpoint will be dropped when we can do that */
884 	mnt->mnt_ex_mountpoint = mnt->mnt_mountpoint;
885 	unhash_mnt(mnt);
886 }
887 
888 /*
889  * vfsmount lock must be held for write
890  */
891 void mnt_set_mountpoint(struct mount *mnt,
892 			struct mountpoint *mp,
893 			struct mount *child_mnt)
894 {
895 	mp->m_count++;
896 	mnt_add_count(mnt, 1);	/* essentially, that's mntget */
897 	child_mnt->mnt_mountpoint = dget(mp->m_dentry);
898 	child_mnt->mnt_parent = mnt;
899 	child_mnt->mnt_mp = mp;
900 	hlist_add_head(&child_mnt->mnt_mp_list, &mp->m_list);
901 }
902 
903 static void __attach_mnt(struct mount *mnt, struct mount *parent)
904 {
905 	hlist_add_head_rcu(&mnt->mnt_hash,
906 			   m_hash(&parent->mnt, mnt->mnt_mountpoint));
907 	list_add_tail(&mnt->mnt_child, &parent->mnt_mounts);
908 }
909 
910 /*
911  * vfsmount lock must be held for write
912  */
913 static void attach_mnt(struct mount *mnt,
914 			struct mount *parent,
915 			struct mountpoint *mp)
916 {
917 	mnt_set_mountpoint(parent, mp, mnt);
918 	__attach_mnt(mnt, parent);
919 }
920 
921 void mnt_change_mountpoint(struct mount *parent, struct mountpoint *mp, struct mount *mnt)
922 {
923 	struct mountpoint *old_mp = mnt->mnt_mp;
924 	struct dentry *old_mountpoint = mnt->mnt_mountpoint;
925 	struct mount *old_parent = mnt->mnt_parent;
926 
927 	list_del_init(&mnt->mnt_child);
928 	hlist_del_init(&mnt->mnt_mp_list);
929 	hlist_del_init_rcu(&mnt->mnt_hash);
930 
931 	attach_mnt(mnt, parent, mp);
932 
933 	put_mountpoint(old_mp);
934 
935 	/*
936 	 * Safely avoid even the suggestion this code might sleep or
937 	 * lock the mount hash by taking advantage of the knowledge that
938 	 * mnt_change_mountpoint will not release the final reference
939 	 * to a mountpoint.
940 	 *
941 	 * During mounting, the mount passed in as the parent mount will
942 	 * continue to use the old mountpoint and during unmounting, the
943 	 * old mountpoint will continue to exist until namespace_unlock,
944 	 * which happens well after mnt_change_mountpoint.
945 	 */
946 	spin_lock(&old_mountpoint->d_lock);
947 	old_mountpoint->d_lockref.count--;
948 	spin_unlock(&old_mountpoint->d_lock);
949 
950 	mnt_add_count(old_parent, -1);
951 }
952 
953 /*
954  * vfsmount lock must be held for write
955  */
956 static void commit_tree(struct mount *mnt)
957 {
958 	struct mount *parent = mnt->mnt_parent;
959 	struct mount *m;
960 	LIST_HEAD(head);
961 	struct mnt_namespace *n = parent->mnt_ns;
962 
963 	BUG_ON(parent == mnt);
964 
965 	list_add_tail(&head, &mnt->mnt_list);
966 	list_for_each_entry(m, &head, mnt_list)
967 		m->mnt_ns = n;
968 
969 	list_splice(&head, n->list.prev);
970 
971 	n->mounts += n->pending_mounts;
972 	n->pending_mounts = 0;
973 
974 	__attach_mnt(mnt, parent);
975 	touch_mnt_namespace(n);
976 }
977 
978 static struct mount *next_mnt(struct mount *p, struct mount *root)
979 {
980 	struct list_head *next = p->mnt_mounts.next;
981 	if (next == &p->mnt_mounts) {
982 		while (1) {
983 			if (p == root)
984 				return NULL;
985 			next = p->mnt_child.next;
986 			if (next != &p->mnt_parent->mnt_mounts)
987 				break;
988 			p = p->mnt_parent;
989 		}
990 	}
991 	return list_entry(next, struct mount, mnt_child);
992 }
993 
994 static struct mount *skip_mnt_tree(struct mount *p)
995 {
996 	struct list_head *prev = p->mnt_mounts.prev;
997 	while (prev != &p->mnt_mounts) {
998 		p = list_entry(prev, struct mount, mnt_child);
999 		prev = p->mnt_mounts.prev;
1000 	}
1001 	return p;
1002 }
1003 
1004 struct vfsmount *
1005 vfs_kern_mount(struct file_system_type *type, int flags, const char *name, void *data)
1006 {
1007 	struct mount *mnt;
1008 	struct dentry *root;
1009 
1010 	if (!type)
1011 		return ERR_PTR(-ENODEV);
1012 
1013 	mnt = alloc_vfsmnt(name);
1014 	if (!mnt)
1015 		return ERR_PTR(-ENOMEM);
1016 
1017 	if (flags & SB_KERNMOUNT)
1018 		mnt->mnt.mnt_flags = MNT_INTERNAL;
1019 
1020 	root = mount_fs(type, flags, name, data);
1021 	if (IS_ERR(root)) {
1022 		mnt_free_id(mnt);
1023 		free_vfsmnt(mnt);
1024 		return ERR_CAST(root);
1025 	}
1026 
1027 	mnt->mnt.mnt_root = root;
1028 	mnt->mnt.mnt_sb = root->d_sb;
1029 	mnt->mnt_mountpoint = mnt->mnt.mnt_root;
1030 	mnt->mnt_parent = mnt;
1031 	lock_mount_hash();
1032 	list_add_tail(&mnt->mnt_instance, &root->d_sb->s_mounts);
1033 	unlock_mount_hash();
1034 	return &mnt->mnt;
1035 }
1036 EXPORT_SYMBOL_GPL(vfs_kern_mount);
1037 
1038 struct vfsmount *
1039 vfs_submount(const struct dentry *mountpoint, struct file_system_type *type,
1040 	     const char *name, void *data)
1041 {
1042 	/* Until it is worked out how to pass the user namespace
1043 	 * through from the parent mount to the submount don't support
1044 	 * unprivileged mounts with submounts.
1045 	 */
1046 	if (mountpoint->d_sb->s_user_ns != &init_user_ns)
1047 		return ERR_PTR(-EPERM);
1048 
1049 	return vfs_kern_mount(type, SB_SUBMOUNT, name, data);
1050 }
1051 EXPORT_SYMBOL_GPL(vfs_submount);
1052 
1053 static struct mount *clone_mnt(struct mount *old, struct dentry *root,
1054 					int flag)
1055 {
1056 	struct super_block *sb = old->mnt.mnt_sb;
1057 	struct mount *mnt;
1058 	int err;
1059 
1060 	mnt = alloc_vfsmnt(old->mnt_devname);
1061 	if (!mnt)
1062 		return ERR_PTR(-ENOMEM);
1063 
1064 	if (flag & (CL_SLAVE | CL_PRIVATE | CL_SHARED_TO_SLAVE))
1065 		mnt->mnt_group_id = 0; /* not a peer of original */
1066 	else
1067 		mnt->mnt_group_id = old->mnt_group_id;
1068 
1069 	if ((flag & CL_MAKE_SHARED) && !mnt->mnt_group_id) {
1070 		err = mnt_alloc_group_id(mnt);
1071 		if (err)
1072 			goto out_free;
1073 	}
1074 
1075 	mnt->mnt.mnt_flags = old->mnt.mnt_flags;
1076 	mnt->mnt.mnt_flags &= ~(MNT_WRITE_HOLD|MNT_MARKED|MNT_INTERNAL);
1077 	/* Don't allow unprivileged users to change mount flags */
1078 	if (flag & CL_UNPRIVILEGED) {
1079 		mnt->mnt.mnt_flags |= MNT_LOCK_ATIME;
1080 
1081 		if (mnt->mnt.mnt_flags & MNT_READONLY)
1082 			mnt->mnt.mnt_flags |= MNT_LOCK_READONLY;
1083 
1084 		if (mnt->mnt.mnt_flags & MNT_NODEV)
1085 			mnt->mnt.mnt_flags |= MNT_LOCK_NODEV;
1086 
1087 		if (mnt->mnt.mnt_flags & MNT_NOSUID)
1088 			mnt->mnt.mnt_flags |= MNT_LOCK_NOSUID;
1089 
1090 		if (mnt->mnt.mnt_flags & MNT_NOEXEC)
1091 			mnt->mnt.mnt_flags |= MNT_LOCK_NOEXEC;
1092 	}
1093 
1094 	/* Don't allow unprivileged users to reveal what is under a mount */
1095 	if ((flag & CL_UNPRIVILEGED) &&
1096 	    (!(flag & CL_EXPIRE) || list_empty(&old->mnt_expire)))
1097 		mnt->mnt.mnt_flags |= MNT_LOCKED;
1098 
1099 	atomic_inc(&sb->s_active);
1100 	mnt->mnt.mnt_sb = sb;
1101 	mnt->mnt.mnt_root = dget(root);
1102 	mnt->mnt_mountpoint = mnt->mnt.mnt_root;
1103 	mnt->mnt_parent = mnt;
1104 	lock_mount_hash();
1105 	list_add_tail(&mnt->mnt_instance, &sb->s_mounts);
1106 	unlock_mount_hash();
1107 
1108 	if ((flag & CL_SLAVE) ||
1109 	    ((flag & CL_SHARED_TO_SLAVE) && IS_MNT_SHARED(old))) {
1110 		list_add(&mnt->mnt_slave, &old->mnt_slave_list);
1111 		mnt->mnt_master = old;
1112 		CLEAR_MNT_SHARED(mnt);
1113 	} else if (!(flag & CL_PRIVATE)) {
1114 		if ((flag & CL_MAKE_SHARED) || IS_MNT_SHARED(old))
1115 			list_add(&mnt->mnt_share, &old->mnt_share);
1116 		if (IS_MNT_SLAVE(old))
1117 			list_add(&mnt->mnt_slave, &old->mnt_slave);
1118 		mnt->mnt_master = old->mnt_master;
1119 	} else {
1120 		CLEAR_MNT_SHARED(mnt);
1121 	}
1122 	if (flag & CL_MAKE_SHARED)
1123 		set_mnt_shared(mnt);
1124 
1125 	/* stick the duplicate mount on the same expiry list
1126 	 * as the original if that was on one */
1127 	if (flag & CL_EXPIRE) {
1128 		if (!list_empty(&old->mnt_expire))
1129 			list_add(&mnt->mnt_expire, &old->mnt_expire);
1130 	}
1131 
1132 	return mnt;
1133 
1134  out_free:
1135 	mnt_free_id(mnt);
1136 	free_vfsmnt(mnt);
1137 	return ERR_PTR(err);
1138 }
1139 
1140 static void cleanup_mnt(struct mount *mnt)
1141 {
1142 	/*
1143 	 * This probably indicates that somebody messed
1144 	 * up a mnt_want/drop_write() pair.  If this
1145 	 * happens, the filesystem was probably unable
1146 	 * to make r/w->r/o transitions.
1147 	 */
1148 	/*
1149 	 * The locking used to deal with mnt_count decrement provides barriers,
1150 	 * so mnt_get_writers() below is safe.
1151 	 */
1152 	WARN_ON(mnt_get_writers(mnt));
1153 	if (unlikely(mnt->mnt_pins.first))
1154 		mnt_pin_kill(mnt);
1155 	fsnotify_vfsmount_delete(&mnt->mnt);
1156 	dput(mnt->mnt.mnt_root);
1157 	deactivate_super(mnt->mnt.mnt_sb);
1158 	mnt_free_id(mnt);
1159 	call_rcu(&mnt->mnt_rcu, delayed_free_vfsmnt);
1160 }
1161 
1162 static void __cleanup_mnt(struct rcu_head *head)
1163 {
1164 	cleanup_mnt(container_of(head, struct mount, mnt_rcu));
1165 }
1166 
1167 static LLIST_HEAD(delayed_mntput_list);
1168 static void delayed_mntput(struct work_struct *unused)
1169 {
1170 	struct llist_node *node = llist_del_all(&delayed_mntput_list);
1171 	struct mount *m, *t;
1172 
1173 	llist_for_each_entry_safe(m, t, node, mnt_llist)
1174 		cleanup_mnt(m);
1175 }
1176 static DECLARE_DELAYED_WORK(delayed_mntput_work, delayed_mntput);
1177 
1178 static void mntput_no_expire(struct mount *mnt)
1179 {
1180 	rcu_read_lock();
1181 	if (likely(READ_ONCE(mnt->mnt_ns))) {
1182 		/*
1183 		 * Since we don't do lock_mount_hash() here,
1184 		 * ->mnt_ns can change under us.  However, if it's
1185 		 * non-NULL, then there's a reference that won't
1186 		 * be dropped until after an RCU delay done after
1187 		 * turning ->mnt_ns NULL.  So if we observe it
1188 		 * non-NULL under rcu_read_lock(), the reference
1189 		 * we are dropping is not the final one.
1190 		 */
1191 		mnt_add_count(mnt, -1);
1192 		rcu_read_unlock();
1193 		return;
1194 	}
1195 	lock_mount_hash();
1196 	/*
1197 	 * make sure that if __legitimize_mnt() has not seen us grab
1198 	 * mount_lock, we'll see their refcount increment here.
1199 	 */
1200 	smp_mb();
1201 	mnt_add_count(mnt, -1);
1202 	if (mnt_get_count(mnt)) {
1203 		rcu_read_unlock();
1204 		unlock_mount_hash();
1205 		return;
1206 	}
1207 	if (unlikely(mnt->mnt.mnt_flags & MNT_DOOMED)) {
1208 		rcu_read_unlock();
1209 		unlock_mount_hash();
1210 		return;
1211 	}
1212 	mnt->mnt.mnt_flags |= MNT_DOOMED;
1213 	rcu_read_unlock();
1214 
1215 	list_del(&mnt->mnt_instance);
1216 
1217 	if (unlikely(!list_empty(&mnt->mnt_mounts))) {
1218 		struct mount *p, *tmp;
1219 		list_for_each_entry_safe(p, tmp, &mnt->mnt_mounts,  mnt_child) {
1220 			umount_mnt(p);
1221 		}
1222 	}
1223 	unlock_mount_hash();
1224 
1225 	if (likely(!(mnt->mnt.mnt_flags & MNT_INTERNAL))) {
1226 		struct task_struct *task = current;
1227 		if (likely(!(task->flags & PF_KTHREAD))) {
1228 			init_task_work(&mnt->mnt_rcu, __cleanup_mnt);
1229 			if (!task_work_add(task, &mnt->mnt_rcu, true))
1230 				return;
1231 		}
1232 		if (llist_add(&mnt->mnt_llist, &delayed_mntput_list))
1233 			schedule_delayed_work(&delayed_mntput_work, 1);
1234 		return;
1235 	}
1236 	cleanup_mnt(mnt);
1237 }
1238 
1239 void mntput(struct vfsmount *mnt)
1240 {
1241 	if (mnt) {
1242 		struct mount *m = real_mount(mnt);
1243 		/* avoid cacheline pingpong, hope gcc doesn't get "smart" */
1244 		if (unlikely(m->mnt_expiry_mark))
1245 			m->mnt_expiry_mark = 0;
1246 		mntput_no_expire(m);
1247 	}
1248 }
1249 EXPORT_SYMBOL(mntput);
1250 
1251 struct vfsmount *mntget(struct vfsmount *mnt)
1252 {
1253 	if (mnt)
1254 		mnt_add_count(real_mount(mnt), 1);
1255 	return mnt;
1256 }
1257 EXPORT_SYMBOL(mntget);
1258 
1259 /* path_is_mountpoint() - Check if path is a mount in the current
1260  *                          namespace.
1261  *
1262  *  d_mountpoint() can only be used reliably to establish if a dentry is
1263  *  not mounted in any namespace and that common case is handled inline.
1264  *  d_mountpoint() isn't aware of the possibility there may be multiple
1265  *  mounts using a given dentry in a different namespace. This function
1266  *  checks if the passed in path is a mountpoint rather than the dentry
1267  *  alone.
1268  */
1269 bool path_is_mountpoint(const struct path *path)
1270 {
1271 	unsigned seq;
1272 	bool res;
1273 
1274 	if (!d_mountpoint(path->dentry))
1275 		return false;
1276 
1277 	rcu_read_lock();
1278 	do {
1279 		seq = read_seqbegin(&mount_lock);
1280 		res = __path_is_mountpoint(path);
1281 	} while (read_seqretry(&mount_lock, seq));
1282 	rcu_read_unlock();
1283 
1284 	return res;
1285 }
1286 EXPORT_SYMBOL(path_is_mountpoint);
1287 
1288 struct vfsmount *mnt_clone_internal(const struct path *path)
1289 {
1290 	struct mount *p;
1291 	p = clone_mnt(real_mount(path->mnt), path->dentry, CL_PRIVATE);
1292 	if (IS_ERR(p))
1293 		return ERR_CAST(p);
1294 	p->mnt.mnt_flags |= MNT_INTERNAL;
1295 	return &p->mnt;
1296 }
1297 
1298 #ifdef CONFIG_PROC_FS
1299 /* iterator; we want it to have access to namespace_sem, thus here... */
1300 static void *m_start(struct seq_file *m, loff_t *pos)
1301 {
1302 	struct proc_mounts *p = m->private;
1303 
1304 	down_read(&namespace_sem);
1305 	if (p->cached_event == p->ns->event) {
1306 		void *v = p->cached_mount;
1307 		if (*pos == p->cached_index)
1308 			return v;
1309 		if (*pos == p->cached_index + 1) {
1310 			v = seq_list_next(v, &p->ns->list, &p->cached_index);
1311 			return p->cached_mount = v;
1312 		}
1313 	}
1314 
1315 	p->cached_event = p->ns->event;
1316 	p->cached_mount = seq_list_start(&p->ns->list, *pos);
1317 	p->cached_index = *pos;
1318 	return p->cached_mount;
1319 }
1320 
1321 static void *m_next(struct seq_file *m, void *v, loff_t *pos)
1322 {
1323 	struct proc_mounts *p = m->private;
1324 
1325 	p->cached_mount = seq_list_next(v, &p->ns->list, pos);
1326 	p->cached_index = *pos;
1327 	return p->cached_mount;
1328 }
1329 
1330 static void m_stop(struct seq_file *m, void *v)
1331 {
1332 	up_read(&namespace_sem);
1333 }
1334 
1335 static int m_show(struct seq_file *m, void *v)
1336 {
1337 	struct proc_mounts *p = m->private;
1338 	struct mount *r = list_entry(v, struct mount, mnt_list);
1339 	return p->show(m, &r->mnt);
1340 }
1341 
1342 const struct seq_operations mounts_op = {
1343 	.start	= m_start,
1344 	.next	= m_next,
1345 	.stop	= m_stop,
1346 	.show	= m_show,
1347 };
1348 #endif  /* CONFIG_PROC_FS */
1349 
1350 /**
1351  * may_umount_tree - check if a mount tree is busy
1352  * @mnt: root of mount tree
1353  *
1354  * This is called to check if a tree of mounts has any
1355  * open files, pwds, chroots or sub mounts that are
1356  * busy.
1357  */
1358 int may_umount_tree(struct vfsmount *m)
1359 {
1360 	struct mount *mnt = real_mount(m);
1361 	int actual_refs = 0;
1362 	int minimum_refs = 0;
1363 	struct mount *p;
1364 	BUG_ON(!m);
1365 
1366 	/* write lock needed for mnt_get_count */
1367 	lock_mount_hash();
1368 	for (p = mnt; p; p = next_mnt(p, mnt)) {
1369 		actual_refs += mnt_get_count(p);
1370 		minimum_refs += 2;
1371 	}
1372 	unlock_mount_hash();
1373 
1374 	if (actual_refs > minimum_refs)
1375 		return 0;
1376 
1377 	return 1;
1378 }
1379 
1380 EXPORT_SYMBOL(may_umount_tree);
1381 
1382 /**
1383  * may_umount - check if a mount point is busy
1384  * @mnt: root of mount
1385  *
1386  * This is called to check if a mount point has any
1387  * open files, pwds, chroots or sub mounts. If the
1388  * mount has sub mounts this will return busy
1389  * regardless of whether the sub mounts are busy.
1390  *
1391  * Doesn't take quota and stuff into account. IOW, in some cases it will
1392  * give false negatives. The main reason why it's here is that we need
1393  * a non-destructive way to look for easily umountable filesystems.
1394  */
1395 int may_umount(struct vfsmount *mnt)
1396 {
1397 	int ret = 1;
1398 	down_read(&namespace_sem);
1399 	lock_mount_hash();
1400 	if (propagate_mount_busy(real_mount(mnt), 2))
1401 		ret = 0;
1402 	unlock_mount_hash();
1403 	up_read(&namespace_sem);
1404 	return ret;
1405 }
1406 
1407 EXPORT_SYMBOL(may_umount);
1408 
1409 static HLIST_HEAD(unmounted);	/* protected by namespace_sem */
1410 
1411 static void namespace_unlock(void)
1412 {
1413 	struct hlist_head head;
1414 
1415 	hlist_move_list(&unmounted, &head);
1416 
1417 	up_write(&namespace_sem);
1418 
1419 	if (likely(hlist_empty(&head)))
1420 		return;
1421 
1422 	synchronize_rcu();
1423 
1424 	group_pin_kill(&head);
1425 }
1426 
1427 static inline void namespace_lock(void)
1428 {
1429 	down_write(&namespace_sem);
1430 }
1431 
1432 enum umount_tree_flags {
1433 	UMOUNT_SYNC = 1,
1434 	UMOUNT_PROPAGATE = 2,
1435 	UMOUNT_CONNECTED = 4,
1436 };
1437 
1438 static bool disconnect_mount(struct mount *mnt, enum umount_tree_flags how)
1439 {
1440 	/* Leaving mounts connected is only valid for lazy umounts */
1441 	if (how & UMOUNT_SYNC)
1442 		return true;
1443 
1444 	/* A mount without a parent has nothing to be connected to */
1445 	if (!mnt_has_parent(mnt))
1446 		return true;
1447 
1448 	/* Because the reference counting rules change when mounts are
1449 	 * unmounted and connected, umounted mounts may not be
1450 	 * connected to mounted mounts.
1451 	 */
1452 	if (!(mnt->mnt_parent->mnt.mnt_flags & MNT_UMOUNT))
1453 		return true;
1454 
1455 	/* Has it been requested that the mount remain connected? */
1456 	if (how & UMOUNT_CONNECTED)
1457 		return false;
1458 
1459 	/* Is the mount locked such that it needs to remain connected? */
1460 	if (IS_MNT_LOCKED(mnt))
1461 		return false;
1462 
1463 	/* By default disconnect the mount */
1464 	return true;
1465 }
1466 
1467 /*
1468  * mount_lock must be held
1469  * namespace_sem must be held for write
1470  */
1471 static void umount_tree(struct mount *mnt, enum umount_tree_flags how)
1472 {
1473 	LIST_HEAD(tmp_list);
1474 	struct mount *p;
1475 
1476 	if (how & UMOUNT_PROPAGATE)
1477 		propagate_mount_unlock(mnt);
1478 
1479 	/* Gather the mounts to umount */
1480 	for (p = mnt; p; p = next_mnt(p, mnt)) {
1481 		p->mnt.mnt_flags |= MNT_UMOUNT;
1482 		list_move(&p->mnt_list, &tmp_list);
1483 	}
1484 
1485 	/* Hide the mounts from mnt_mounts */
1486 	list_for_each_entry(p, &tmp_list, mnt_list) {
1487 		list_del_init(&p->mnt_child);
1488 	}
1489 
1490 	/* Add propogated mounts to the tmp_list */
1491 	if (how & UMOUNT_PROPAGATE)
1492 		propagate_umount(&tmp_list);
1493 
1494 	while (!list_empty(&tmp_list)) {
1495 		struct mnt_namespace *ns;
1496 		bool disconnect;
1497 		p = list_first_entry(&tmp_list, struct mount, mnt_list);
1498 		list_del_init(&p->mnt_expire);
1499 		list_del_init(&p->mnt_list);
1500 		ns = p->mnt_ns;
1501 		if (ns) {
1502 			ns->mounts--;
1503 			__touch_mnt_namespace(ns);
1504 		}
1505 		p->mnt_ns = NULL;
1506 		if (how & UMOUNT_SYNC)
1507 			p->mnt.mnt_flags |= MNT_SYNC_UMOUNT;
1508 
1509 		disconnect = disconnect_mount(p, how);
1510 
1511 		pin_insert_group(&p->mnt_umount, &p->mnt_parent->mnt,
1512 				 disconnect ? &unmounted : NULL);
1513 		if (mnt_has_parent(p)) {
1514 			mnt_add_count(p->mnt_parent, -1);
1515 			if (!disconnect) {
1516 				/* Don't forget about p */
1517 				list_add_tail(&p->mnt_child, &p->mnt_parent->mnt_mounts);
1518 			} else {
1519 				umount_mnt(p);
1520 			}
1521 		}
1522 		change_mnt_propagation(p, MS_PRIVATE);
1523 	}
1524 }
1525 
1526 static void shrink_submounts(struct mount *mnt);
1527 
1528 static int do_umount(struct mount *mnt, int flags)
1529 {
1530 	struct super_block *sb = mnt->mnt.mnt_sb;
1531 	int retval;
1532 
1533 	retval = security_sb_umount(&mnt->mnt, flags);
1534 	if (retval)
1535 		return retval;
1536 
1537 	/*
1538 	 * Allow userspace to request a mountpoint be expired rather than
1539 	 * unmounting unconditionally. Unmount only happens if:
1540 	 *  (1) the mark is already set (the mark is cleared by mntput())
1541 	 *  (2) the usage count == 1 [parent vfsmount] + 1 [sys_umount]
1542 	 */
1543 	if (flags & MNT_EXPIRE) {
1544 		if (&mnt->mnt == current->fs->root.mnt ||
1545 		    flags & (MNT_FORCE | MNT_DETACH))
1546 			return -EINVAL;
1547 
1548 		/*
1549 		 * probably don't strictly need the lock here if we examined
1550 		 * all race cases, but it's a slowpath.
1551 		 */
1552 		lock_mount_hash();
1553 		if (mnt_get_count(mnt) != 2) {
1554 			unlock_mount_hash();
1555 			return -EBUSY;
1556 		}
1557 		unlock_mount_hash();
1558 
1559 		if (!xchg(&mnt->mnt_expiry_mark, 1))
1560 			return -EAGAIN;
1561 	}
1562 
1563 	/*
1564 	 * If we may have to abort operations to get out of this
1565 	 * mount, and they will themselves hold resources we must
1566 	 * allow the fs to do things. In the Unix tradition of
1567 	 * 'Gee thats tricky lets do it in userspace' the umount_begin
1568 	 * might fail to complete on the first run through as other tasks
1569 	 * must return, and the like. Thats for the mount program to worry
1570 	 * about for the moment.
1571 	 */
1572 
1573 	if (flags & MNT_FORCE && sb->s_op->umount_begin) {
1574 		sb->s_op->umount_begin(sb);
1575 	}
1576 
1577 	/*
1578 	 * No sense to grab the lock for this test, but test itself looks
1579 	 * somewhat bogus. Suggestions for better replacement?
1580 	 * Ho-hum... In principle, we might treat that as umount + switch
1581 	 * to rootfs. GC would eventually take care of the old vfsmount.
1582 	 * Actually it makes sense, especially if rootfs would contain a
1583 	 * /reboot - static binary that would close all descriptors and
1584 	 * call reboot(9). Then init(8) could umount root and exec /reboot.
1585 	 */
1586 	if (&mnt->mnt == current->fs->root.mnt && !(flags & MNT_DETACH)) {
1587 		/*
1588 		 * Special case for "unmounting" root ...
1589 		 * we just try to remount it readonly.
1590 		 */
1591 		if (!ns_capable(sb->s_user_ns, CAP_SYS_ADMIN))
1592 			return -EPERM;
1593 		down_write(&sb->s_umount);
1594 		if (!sb_rdonly(sb))
1595 			retval = do_remount_sb(sb, SB_RDONLY, NULL, 0);
1596 		up_write(&sb->s_umount);
1597 		return retval;
1598 	}
1599 
1600 	namespace_lock();
1601 	lock_mount_hash();
1602 	event++;
1603 
1604 	if (flags & MNT_DETACH) {
1605 		if (!list_empty(&mnt->mnt_list))
1606 			umount_tree(mnt, UMOUNT_PROPAGATE);
1607 		retval = 0;
1608 	} else {
1609 		shrink_submounts(mnt);
1610 		retval = -EBUSY;
1611 		if (!propagate_mount_busy(mnt, 2)) {
1612 			if (!list_empty(&mnt->mnt_list))
1613 				umount_tree(mnt, UMOUNT_PROPAGATE|UMOUNT_SYNC);
1614 			retval = 0;
1615 		}
1616 	}
1617 	unlock_mount_hash();
1618 	namespace_unlock();
1619 	return retval;
1620 }
1621 
1622 /*
1623  * __detach_mounts - lazily unmount all mounts on the specified dentry
1624  *
1625  * During unlink, rmdir, and d_drop it is possible to loose the path
1626  * to an existing mountpoint, and wind up leaking the mount.
1627  * detach_mounts allows lazily unmounting those mounts instead of
1628  * leaking them.
1629  *
1630  * The caller may hold dentry->d_inode->i_mutex.
1631  */
1632 void __detach_mounts(struct dentry *dentry)
1633 {
1634 	struct mountpoint *mp;
1635 	struct mount *mnt;
1636 
1637 	namespace_lock();
1638 	lock_mount_hash();
1639 	mp = lookup_mountpoint(dentry);
1640 	if (IS_ERR_OR_NULL(mp))
1641 		goto out_unlock;
1642 
1643 	event++;
1644 	while (!hlist_empty(&mp->m_list)) {
1645 		mnt = hlist_entry(mp->m_list.first, struct mount, mnt_mp_list);
1646 		if (mnt->mnt.mnt_flags & MNT_UMOUNT) {
1647 			hlist_add_head(&mnt->mnt_umount.s_list, &unmounted);
1648 			umount_mnt(mnt);
1649 		}
1650 		else umount_tree(mnt, UMOUNT_CONNECTED);
1651 	}
1652 	put_mountpoint(mp);
1653 out_unlock:
1654 	unlock_mount_hash();
1655 	namespace_unlock();
1656 }
1657 
1658 /*
1659  * Is the caller allowed to modify his namespace?
1660  */
1661 static inline bool may_mount(void)
1662 {
1663 	return ns_capable(current->nsproxy->mnt_ns->user_ns, CAP_SYS_ADMIN);
1664 }
1665 
1666 static inline bool may_mandlock(void)
1667 {
1668 #ifndef	CONFIG_MANDATORY_FILE_LOCKING
1669 	return false;
1670 #endif
1671 	return capable(CAP_SYS_ADMIN);
1672 }
1673 
1674 /*
1675  * Now umount can handle mount points as well as block devices.
1676  * This is important for filesystems which use unnamed block devices.
1677  *
1678  * We now support a flag for forced unmount like the other 'big iron'
1679  * unixes. Our API is identical to OSF/1 to avoid making a mess of AMD
1680  */
1681 
1682 int ksys_umount(char __user *name, int flags)
1683 {
1684 	struct path path;
1685 	struct mount *mnt;
1686 	int retval;
1687 	int lookup_flags = 0;
1688 
1689 	if (flags & ~(MNT_FORCE | MNT_DETACH | MNT_EXPIRE | UMOUNT_NOFOLLOW))
1690 		return -EINVAL;
1691 
1692 	if (!may_mount())
1693 		return -EPERM;
1694 
1695 	if (!(flags & UMOUNT_NOFOLLOW))
1696 		lookup_flags |= LOOKUP_FOLLOW;
1697 
1698 	retval = user_path_mountpoint_at(AT_FDCWD, name, lookup_flags, &path);
1699 	if (retval)
1700 		goto out;
1701 	mnt = real_mount(path.mnt);
1702 	retval = -EINVAL;
1703 	if (path.dentry != path.mnt->mnt_root)
1704 		goto dput_and_out;
1705 	if (!check_mnt(mnt))
1706 		goto dput_and_out;
1707 	if (mnt->mnt.mnt_flags & MNT_LOCKED)
1708 		goto dput_and_out;
1709 	retval = -EPERM;
1710 	if (flags & MNT_FORCE && !capable(CAP_SYS_ADMIN))
1711 		goto dput_and_out;
1712 
1713 	retval = do_umount(mnt, flags);
1714 dput_and_out:
1715 	/* we mustn't call path_put() as that would clear mnt_expiry_mark */
1716 	dput(path.dentry);
1717 	mntput_no_expire(mnt);
1718 out:
1719 	return retval;
1720 }
1721 
1722 SYSCALL_DEFINE2(umount, char __user *, name, int, flags)
1723 {
1724 	return ksys_umount(name, flags);
1725 }
1726 
1727 #ifdef __ARCH_WANT_SYS_OLDUMOUNT
1728 
1729 /*
1730  *	The 2.0 compatible umount. No flags.
1731  */
1732 SYSCALL_DEFINE1(oldumount, char __user *, name)
1733 {
1734 	return ksys_umount(name, 0);
1735 }
1736 
1737 #endif
1738 
1739 static bool is_mnt_ns_file(struct dentry *dentry)
1740 {
1741 	/* Is this a proxy for a mount namespace? */
1742 	return dentry->d_op == &ns_dentry_operations &&
1743 	       dentry->d_fsdata == &mntns_operations;
1744 }
1745 
1746 struct mnt_namespace *to_mnt_ns(struct ns_common *ns)
1747 {
1748 	return container_of(ns, struct mnt_namespace, ns);
1749 }
1750 
1751 static bool mnt_ns_loop(struct dentry *dentry)
1752 {
1753 	/* Could bind mounting the mount namespace inode cause a
1754 	 * mount namespace loop?
1755 	 */
1756 	struct mnt_namespace *mnt_ns;
1757 	if (!is_mnt_ns_file(dentry))
1758 		return false;
1759 
1760 	mnt_ns = to_mnt_ns(get_proc_ns(dentry->d_inode));
1761 	return current->nsproxy->mnt_ns->seq >= mnt_ns->seq;
1762 }
1763 
1764 struct mount *copy_tree(struct mount *mnt, struct dentry *dentry,
1765 					int flag)
1766 {
1767 	struct mount *res, *p, *q, *r, *parent;
1768 
1769 	if (!(flag & CL_COPY_UNBINDABLE) && IS_MNT_UNBINDABLE(mnt))
1770 		return ERR_PTR(-EINVAL);
1771 
1772 	if (!(flag & CL_COPY_MNT_NS_FILE) && is_mnt_ns_file(dentry))
1773 		return ERR_PTR(-EINVAL);
1774 
1775 	res = q = clone_mnt(mnt, dentry, flag);
1776 	if (IS_ERR(q))
1777 		return q;
1778 
1779 	q->mnt_mountpoint = mnt->mnt_mountpoint;
1780 
1781 	p = mnt;
1782 	list_for_each_entry(r, &mnt->mnt_mounts, mnt_child) {
1783 		struct mount *s;
1784 		if (!is_subdir(r->mnt_mountpoint, dentry))
1785 			continue;
1786 
1787 		for (s = r; s; s = next_mnt(s, r)) {
1788 			if (!(flag & CL_COPY_UNBINDABLE) &&
1789 			    IS_MNT_UNBINDABLE(s)) {
1790 				s = skip_mnt_tree(s);
1791 				continue;
1792 			}
1793 			if (!(flag & CL_COPY_MNT_NS_FILE) &&
1794 			    is_mnt_ns_file(s->mnt.mnt_root)) {
1795 				s = skip_mnt_tree(s);
1796 				continue;
1797 			}
1798 			while (p != s->mnt_parent) {
1799 				p = p->mnt_parent;
1800 				q = q->mnt_parent;
1801 			}
1802 			p = s;
1803 			parent = q;
1804 			q = clone_mnt(p, p->mnt.mnt_root, flag);
1805 			if (IS_ERR(q))
1806 				goto out;
1807 			lock_mount_hash();
1808 			list_add_tail(&q->mnt_list, &res->mnt_list);
1809 			attach_mnt(q, parent, p->mnt_mp);
1810 			unlock_mount_hash();
1811 		}
1812 	}
1813 	return res;
1814 out:
1815 	if (res) {
1816 		lock_mount_hash();
1817 		umount_tree(res, UMOUNT_SYNC);
1818 		unlock_mount_hash();
1819 	}
1820 	return q;
1821 }
1822 
1823 /* Caller should check returned pointer for errors */
1824 
1825 struct vfsmount *collect_mounts(const struct path *path)
1826 {
1827 	struct mount *tree;
1828 	namespace_lock();
1829 	if (!check_mnt(real_mount(path->mnt)))
1830 		tree = ERR_PTR(-EINVAL);
1831 	else
1832 		tree = copy_tree(real_mount(path->mnt), path->dentry,
1833 				 CL_COPY_ALL | CL_PRIVATE);
1834 	namespace_unlock();
1835 	if (IS_ERR(tree))
1836 		return ERR_CAST(tree);
1837 	return &tree->mnt;
1838 }
1839 
1840 void drop_collected_mounts(struct vfsmount *mnt)
1841 {
1842 	namespace_lock();
1843 	lock_mount_hash();
1844 	umount_tree(real_mount(mnt), UMOUNT_SYNC);
1845 	unlock_mount_hash();
1846 	namespace_unlock();
1847 }
1848 
1849 /**
1850  * clone_private_mount - create a private clone of a path
1851  *
1852  * This creates a new vfsmount, which will be the clone of @path.  The new will
1853  * not be attached anywhere in the namespace and will be private (i.e. changes
1854  * to the originating mount won't be propagated into this).
1855  *
1856  * Release with mntput().
1857  */
1858 struct vfsmount *clone_private_mount(const struct path *path)
1859 {
1860 	struct mount *old_mnt = real_mount(path->mnt);
1861 	struct mount *new_mnt;
1862 
1863 	if (IS_MNT_UNBINDABLE(old_mnt))
1864 		return ERR_PTR(-EINVAL);
1865 
1866 	new_mnt = clone_mnt(old_mnt, path->dentry, CL_PRIVATE);
1867 	if (IS_ERR(new_mnt))
1868 		return ERR_CAST(new_mnt);
1869 
1870 	return &new_mnt->mnt;
1871 }
1872 EXPORT_SYMBOL_GPL(clone_private_mount);
1873 
1874 int iterate_mounts(int (*f)(struct vfsmount *, void *), void *arg,
1875 		   struct vfsmount *root)
1876 {
1877 	struct mount *mnt;
1878 	int res = f(root, arg);
1879 	if (res)
1880 		return res;
1881 	list_for_each_entry(mnt, &real_mount(root)->mnt_list, mnt_list) {
1882 		res = f(&mnt->mnt, arg);
1883 		if (res)
1884 			return res;
1885 	}
1886 	return 0;
1887 }
1888 
1889 static void cleanup_group_ids(struct mount *mnt, struct mount *end)
1890 {
1891 	struct mount *p;
1892 
1893 	for (p = mnt; p != end; p = next_mnt(p, mnt)) {
1894 		if (p->mnt_group_id && !IS_MNT_SHARED(p))
1895 			mnt_release_group_id(p);
1896 	}
1897 }
1898 
1899 static int invent_group_ids(struct mount *mnt, bool recurse)
1900 {
1901 	struct mount *p;
1902 
1903 	for (p = mnt; p; p = recurse ? next_mnt(p, mnt) : NULL) {
1904 		if (!p->mnt_group_id && !IS_MNT_SHARED(p)) {
1905 			int err = mnt_alloc_group_id(p);
1906 			if (err) {
1907 				cleanup_group_ids(mnt, p);
1908 				return err;
1909 			}
1910 		}
1911 	}
1912 
1913 	return 0;
1914 }
1915 
1916 int count_mounts(struct mnt_namespace *ns, struct mount *mnt)
1917 {
1918 	unsigned int max = READ_ONCE(sysctl_mount_max);
1919 	unsigned int mounts = 0, old, pending, sum;
1920 	struct mount *p;
1921 
1922 	for (p = mnt; p; p = next_mnt(p, mnt))
1923 		mounts++;
1924 
1925 	old = ns->mounts;
1926 	pending = ns->pending_mounts;
1927 	sum = old + pending;
1928 	if ((old > sum) ||
1929 	    (pending > sum) ||
1930 	    (max < sum) ||
1931 	    (mounts > (max - sum)))
1932 		return -ENOSPC;
1933 
1934 	ns->pending_mounts = pending + mounts;
1935 	return 0;
1936 }
1937 
1938 /*
1939  *  @source_mnt : mount tree to be attached
1940  *  @nd         : place the mount tree @source_mnt is attached
1941  *  @parent_nd  : if non-null, detach the source_mnt from its parent and
1942  *  		   store the parent mount and mountpoint dentry.
1943  *  		   (done when source_mnt is moved)
1944  *
1945  *  NOTE: in the table below explains the semantics when a source mount
1946  *  of a given type is attached to a destination mount of a given type.
1947  * ---------------------------------------------------------------------------
1948  * |         BIND MOUNT OPERATION                                            |
1949  * |**************************************************************************
1950  * | source-->| shared        |       private  |       slave    | unbindable |
1951  * | dest     |               |                |                |            |
1952  * |   |      |               |                |                |            |
1953  * |   v      |               |                |                |            |
1954  * |**************************************************************************
1955  * |  shared  | shared (++)   |     shared (+) |     shared(+++)|  invalid   |
1956  * |          |               |                |                |            |
1957  * |non-shared| shared (+)    |      private   |      slave (*) |  invalid   |
1958  * ***************************************************************************
1959  * A bind operation clones the source mount and mounts the clone on the
1960  * destination mount.
1961  *
1962  * (++)  the cloned mount is propagated to all the mounts in the propagation
1963  * 	 tree of the destination mount and the cloned mount is added to
1964  * 	 the peer group of the source mount.
1965  * (+)   the cloned mount is created under the destination mount and is marked
1966  *       as shared. The cloned mount is added to the peer group of the source
1967  *       mount.
1968  * (+++) the mount is propagated to all the mounts in the propagation tree
1969  *       of the destination mount and the cloned mount is made slave
1970  *       of the same master as that of the source mount. The cloned mount
1971  *       is marked as 'shared and slave'.
1972  * (*)   the cloned mount is made a slave of the same master as that of the
1973  * 	 source mount.
1974  *
1975  * ---------------------------------------------------------------------------
1976  * |         		MOVE MOUNT OPERATION                                 |
1977  * |**************************************************************************
1978  * | source-->| shared        |       private  |       slave    | unbindable |
1979  * | dest     |               |                |                |            |
1980  * |   |      |               |                |                |            |
1981  * |   v      |               |                |                |            |
1982  * |**************************************************************************
1983  * |  shared  | shared (+)    |     shared (+) |    shared(+++) |  invalid   |
1984  * |          |               |                |                |            |
1985  * |non-shared| shared (+*)   |      private   |    slave (*)   | unbindable |
1986  * ***************************************************************************
1987  *
1988  * (+)  the mount is moved to the destination. And is then propagated to
1989  * 	all the mounts in the propagation tree of the destination mount.
1990  * (+*)  the mount is moved to the destination.
1991  * (+++)  the mount is moved to the destination and is then propagated to
1992  * 	all the mounts belonging to the destination mount's propagation tree.
1993  * 	the mount is marked as 'shared and slave'.
1994  * (*)	the mount continues to be a slave at the new location.
1995  *
1996  * if the source mount is a tree, the operations explained above is
1997  * applied to each mount in the tree.
1998  * Must be called without spinlocks held, since this function can sleep
1999  * in allocations.
2000  */
2001 static int attach_recursive_mnt(struct mount *source_mnt,
2002 			struct mount *dest_mnt,
2003 			struct mountpoint *dest_mp,
2004 			struct path *parent_path)
2005 {
2006 	HLIST_HEAD(tree_list);
2007 	struct mnt_namespace *ns = dest_mnt->mnt_ns;
2008 	struct mountpoint *smp;
2009 	struct mount *child, *p;
2010 	struct hlist_node *n;
2011 	int err;
2012 
2013 	/* Preallocate a mountpoint in case the new mounts need
2014 	 * to be tucked under other mounts.
2015 	 */
2016 	smp = get_mountpoint(source_mnt->mnt.mnt_root);
2017 	if (IS_ERR(smp))
2018 		return PTR_ERR(smp);
2019 
2020 	/* Is there space to add these mounts to the mount namespace? */
2021 	if (!parent_path) {
2022 		err = count_mounts(ns, source_mnt);
2023 		if (err)
2024 			goto out;
2025 	}
2026 
2027 	if (IS_MNT_SHARED(dest_mnt)) {
2028 		err = invent_group_ids(source_mnt, true);
2029 		if (err)
2030 			goto out;
2031 		err = propagate_mnt(dest_mnt, dest_mp, source_mnt, &tree_list);
2032 		lock_mount_hash();
2033 		if (err)
2034 			goto out_cleanup_ids;
2035 		for (p = source_mnt; p; p = next_mnt(p, source_mnt))
2036 			set_mnt_shared(p);
2037 	} else {
2038 		lock_mount_hash();
2039 	}
2040 	if (parent_path) {
2041 		detach_mnt(source_mnt, parent_path);
2042 		attach_mnt(source_mnt, dest_mnt, dest_mp);
2043 		touch_mnt_namespace(source_mnt->mnt_ns);
2044 	} else {
2045 		mnt_set_mountpoint(dest_mnt, dest_mp, source_mnt);
2046 		commit_tree(source_mnt);
2047 	}
2048 
2049 	hlist_for_each_entry_safe(child, n, &tree_list, mnt_hash) {
2050 		struct mount *q;
2051 		hlist_del_init(&child->mnt_hash);
2052 		q = __lookup_mnt(&child->mnt_parent->mnt,
2053 				 child->mnt_mountpoint);
2054 		if (q)
2055 			mnt_change_mountpoint(child, smp, q);
2056 		commit_tree(child);
2057 	}
2058 	put_mountpoint(smp);
2059 	unlock_mount_hash();
2060 
2061 	return 0;
2062 
2063  out_cleanup_ids:
2064 	while (!hlist_empty(&tree_list)) {
2065 		child = hlist_entry(tree_list.first, struct mount, mnt_hash);
2066 		child->mnt_parent->mnt_ns->pending_mounts = 0;
2067 		umount_tree(child, UMOUNT_SYNC);
2068 	}
2069 	unlock_mount_hash();
2070 	cleanup_group_ids(source_mnt, NULL);
2071  out:
2072 	ns->pending_mounts = 0;
2073 
2074 	read_seqlock_excl(&mount_lock);
2075 	put_mountpoint(smp);
2076 	read_sequnlock_excl(&mount_lock);
2077 
2078 	return err;
2079 }
2080 
2081 static struct mountpoint *lock_mount(struct path *path)
2082 {
2083 	struct vfsmount *mnt;
2084 	struct dentry *dentry = path->dentry;
2085 retry:
2086 	inode_lock(dentry->d_inode);
2087 	if (unlikely(cant_mount(dentry))) {
2088 		inode_unlock(dentry->d_inode);
2089 		return ERR_PTR(-ENOENT);
2090 	}
2091 	namespace_lock();
2092 	mnt = lookup_mnt(path);
2093 	if (likely(!mnt)) {
2094 		struct mountpoint *mp = get_mountpoint(dentry);
2095 		if (IS_ERR(mp)) {
2096 			namespace_unlock();
2097 			inode_unlock(dentry->d_inode);
2098 			return mp;
2099 		}
2100 		return mp;
2101 	}
2102 	namespace_unlock();
2103 	inode_unlock(path->dentry->d_inode);
2104 	path_put(path);
2105 	path->mnt = mnt;
2106 	dentry = path->dentry = dget(mnt->mnt_root);
2107 	goto retry;
2108 }
2109 
2110 static void unlock_mount(struct mountpoint *where)
2111 {
2112 	struct dentry *dentry = where->m_dentry;
2113 
2114 	read_seqlock_excl(&mount_lock);
2115 	put_mountpoint(where);
2116 	read_sequnlock_excl(&mount_lock);
2117 
2118 	namespace_unlock();
2119 	inode_unlock(dentry->d_inode);
2120 }
2121 
2122 static int graft_tree(struct mount *mnt, struct mount *p, struct mountpoint *mp)
2123 {
2124 	if (mnt->mnt.mnt_sb->s_flags & SB_NOUSER)
2125 		return -EINVAL;
2126 
2127 	if (d_is_dir(mp->m_dentry) !=
2128 	      d_is_dir(mnt->mnt.mnt_root))
2129 		return -ENOTDIR;
2130 
2131 	return attach_recursive_mnt(mnt, p, mp, NULL);
2132 }
2133 
2134 /*
2135  * Sanity check the flags to change_mnt_propagation.
2136  */
2137 
2138 static int flags_to_propagation_type(int ms_flags)
2139 {
2140 	int type = ms_flags & ~(MS_REC | MS_SILENT);
2141 
2142 	/* Fail if any non-propagation flags are set */
2143 	if (type & ~(MS_SHARED | MS_PRIVATE | MS_SLAVE | MS_UNBINDABLE))
2144 		return 0;
2145 	/* Only one propagation flag should be set */
2146 	if (!is_power_of_2(type))
2147 		return 0;
2148 	return type;
2149 }
2150 
2151 /*
2152  * recursively change the type of the mountpoint.
2153  */
2154 static int do_change_type(struct path *path, int ms_flags)
2155 {
2156 	struct mount *m;
2157 	struct mount *mnt = real_mount(path->mnt);
2158 	int recurse = ms_flags & MS_REC;
2159 	int type;
2160 	int err = 0;
2161 
2162 	if (path->dentry != path->mnt->mnt_root)
2163 		return -EINVAL;
2164 
2165 	type = flags_to_propagation_type(ms_flags);
2166 	if (!type)
2167 		return -EINVAL;
2168 
2169 	namespace_lock();
2170 	if (type == MS_SHARED) {
2171 		err = invent_group_ids(mnt, recurse);
2172 		if (err)
2173 			goto out_unlock;
2174 	}
2175 
2176 	lock_mount_hash();
2177 	for (m = mnt; m; m = (recurse ? next_mnt(m, mnt) : NULL))
2178 		change_mnt_propagation(m, type);
2179 	unlock_mount_hash();
2180 
2181  out_unlock:
2182 	namespace_unlock();
2183 	return err;
2184 }
2185 
2186 static bool has_locked_children(struct mount *mnt, struct dentry *dentry)
2187 {
2188 	struct mount *child;
2189 	list_for_each_entry(child, &mnt->mnt_mounts, mnt_child) {
2190 		if (!is_subdir(child->mnt_mountpoint, dentry))
2191 			continue;
2192 
2193 		if (child->mnt.mnt_flags & MNT_LOCKED)
2194 			return true;
2195 	}
2196 	return false;
2197 }
2198 
2199 /*
2200  * do loopback mount.
2201  */
2202 static int do_loopback(struct path *path, const char *old_name,
2203 				int recurse)
2204 {
2205 	struct path old_path;
2206 	struct mount *mnt = NULL, *old, *parent;
2207 	struct mountpoint *mp;
2208 	int err;
2209 	if (!old_name || !*old_name)
2210 		return -EINVAL;
2211 	err = kern_path(old_name, LOOKUP_FOLLOW|LOOKUP_AUTOMOUNT, &old_path);
2212 	if (err)
2213 		return err;
2214 
2215 	err = -EINVAL;
2216 	if (mnt_ns_loop(old_path.dentry))
2217 		goto out;
2218 
2219 	mp = lock_mount(path);
2220 	err = PTR_ERR(mp);
2221 	if (IS_ERR(mp))
2222 		goto out;
2223 
2224 	old = real_mount(old_path.mnt);
2225 	parent = real_mount(path->mnt);
2226 
2227 	err = -EINVAL;
2228 	if (IS_MNT_UNBINDABLE(old))
2229 		goto out2;
2230 
2231 	if (!check_mnt(parent))
2232 		goto out2;
2233 
2234 	if (!check_mnt(old) && old_path.dentry->d_op != &ns_dentry_operations)
2235 		goto out2;
2236 
2237 	if (!recurse && has_locked_children(old, old_path.dentry))
2238 		goto out2;
2239 
2240 	if (recurse)
2241 		mnt = copy_tree(old, old_path.dentry, CL_COPY_MNT_NS_FILE);
2242 	else
2243 		mnt = clone_mnt(old, old_path.dentry, 0);
2244 
2245 	if (IS_ERR(mnt)) {
2246 		err = PTR_ERR(mnt);
2247 		goto out2;
2248 	}
2249 
2250 	mnt->mnt.mnt_flags &= ~MNT_LOCKED;
2251 
2252 	err = graft_tree(mnt, parent, mp);
2253 	if (err) {
2254 		lock_mount_hash();
2255 		umount_tree(mnt, UMOUNT_SYNC);
2256 		unlock_mount_hash();
2257 	}
2258 out2:
2259 	unlock_mount(mp);
2260 out:
2261 	path_put(&old_path);
2262 	return err;
2263 }
2264 
2265 static int change_mount_flags(struct vfsmount *mnt, int ms_flags)
2266 {
2267 	int error = 0;
2268 	int readonly_request = 0;
2269 
2270 	if (ms_flags & MS_RDONLY)
2271 		readonly_request = 1;
2272 	if (readonly_request == __mnt_is_readonly(mnt))
2273 		return 0;
2274 
2275 	if (readonly_request)
2276 		error = mnt_make_readonly(real_mount(mnt));
2277 	else
2278 		__mnt_unmake_readonly(real_mount(mnt));
2279 	return error;
2280 }
2281 
2282 /*
2283  * change filesystem flags. dir should be a physical root of filesystem.
2284  * If you've mounted a non-root directory somewhere and want to do remount
2285  * on it - tough luck.
2286  */
2287 static int do_remount(struct path *path, int ms_flags, int sb_flags,
2288 		      int mnt_flags, void *data)
2289 {
2290 	int err;
2291 	struct super_block *sb = path->mnt->mnt_sb;
2292 	struct mount *mnt = real_mount(path->mnt);
2293 
2294 	if (!check_mnt(mnt))
2295 		return -EINVAL;
2296 
2297 	if (path->dentry != path->mnt->mnt_root)
2298 		return -EINVAL;
2299 
2300 	/* Don't allow changing of locked mnt flags.
2301 	 *
2302 	 * No locks need to be held here while testing the various
2303 	 * MNT_LOCK flags because those flags can never be cleared
2304 	 * once they are set.
2305 	 */
2306 	if ((mnt->mnt.mnt_flags & MNT_LOCK_READONLY) &&
2307 	    !(mnt_flags & MNT_READONLY)) {
2308 		return -EPERM;
2309 	}
2310 	if ((mnt->mnt.mnt_flags & MNT_LOCK_NODEV) &&
2311 	    !(mnt_flags & MNT_NODEV)) {
2312 		return -EPERM;
2313 	}
2314 	if ((mnt->mnt.mnt_flags & MNT_LOCK_NOSUID) &&
2315 	    !(mnt_flags & MNT_NOSUID)) {
2316 		return -EPERM;
2317 	}
2318 	if ((mnt->mnt.mnt_flags & MNT_LOCK_NOEXEC) &&
2319 	    !(mnt_flags & MNT_NOEXEC)) {
2320 		return -EPERM;
2321 	}
2322 	if ((mnt->mnt.mnt_flags & MNT_LOCK_ATIME) &&
2323 	    ((mnt->mnt.mnt_flags & MNT_ATIME_MASK) != (mnt_flags & MNT_ATIME_MASK))) {
2324 		return -EPERM;
2325 	}
2326 
2327 	err = security_sb_remount(sb, data);
2328 	if (err)
2329 		return err;
2330 
2331 	down_write(&sb->s_umount);
2332 	if (ms_flags & MS_BIND)
2333 		err = change_mount_flags(path->mnt, ms_flags);
2334 	else if (!ns_capable(sb->s_user_ns, CAP_SYS_ADMIN))
2335 		err = -EPERM;
2336 	else
2337 		err = do_remount_sb(sb, sb_flags, data, 0);
2338 	if (!err) {
2339 		lock_mount_hash();
2340 		mnt_flags |= mnt->mnt.mnt_flags & ~MNT_USER_SETTABLE_MASK;
2341 		mnt->mnt.mnt_flags = mnt_flags;
2342 		touch_mnt_namespace(mnt->mnt_ns);
2343 		unlock_mount_hash();
2344 	}
2345 	up_write(&sb->s_umount);
2346 	return err;
2347 }
2348 
2349 static inline int tree_contains_unbindable(struct mount *mnt)
2350 {
2351 	struct mount *p;
2352 	for (p = mnt; p; p = next_mnt(p, mnt)) {
2353 		if (IS_MNT_UNBINDABLE(p))
2354 			return 1;
2355 	}
2356 	return 0;
2357 }
2358 
2359 static int do_move_mount(struct path *path, const char *old_name)
2360 {
2361 	struct path old_path, parent_path;
2362 	struct mount *p;
2363 	struct mount *old;
2364 	struct mountpoint *mp;
2365 	int err;
2366 	if (!old_name || !*old_name)
2367 		return -EINVAL;
2368 	err = kern_path(old_name, LOOKUP_FOLLOW, &old_path);
2369 	if (err)
2370 		return err;
2371 
2372 	mp = lock_mount(path);
2373 	err = PTR_ERR(mp);
2374 	if (IS_ERR(mp))
2375 		goto out;
2376 
2377 	old = real_mount(old_path.mnt);
2378 	p = real_mount(path->mnt);
2379 
2380 	err = -EINVAL;
2381 	if (!check_mnt(p) || !check_mnt(old))
2382 		goto out1;
2383 
2384 	if (old->mnt.mnt_flags & MNT_LOCKED)
2385 		goto out1;
2386 
2387 	err = -EINVAL;
2388 	if (old_path.dentry != old_path.mnt->mnt_root)
2389 		goto out1;
2390 
2391 	if (!mnt_has_parent(old))
2392 		goto out1;
2393 
2394 	if (d_is_dir(path->dentry) !=
2395 	      d_is_dir(old_path.dentry))
2396 		goto out1;
2397 	/*
2398 	 * Don't move a mount residing in a shared parent.
2399 	 */
2400 	if (IS_MNT_SHARED(old->mnt_parent))
2401 		goto out1;
2402 	/*
2403 	 * Don't move a mount tree containing unbindable mounts to a destination
2404 	 * mount which is shared.
2405 	 */
2406 	if (IS_MNT_SHARED(p) && tree_contains_unbindable(old))
2407 		goto out1;
2408 	err = -ELOOP;
2409 	for (; mnt_has_parent(p); p = p->mnt_parent)
2410 		if (p == old)
2411 			goto out1;
2412 
2413 	err = attach_recursive_mnt(old, real_mount(path->mnt), mp, &parent_path);
2414 	if (err)
2415 		goto out1;
2416 
2417 	/* if the mount is moved, it should no longer be expire
2418 	 * automatically */
2419 	list_del_init(&old->mnt_expire);
2420 out1:
2421 	unlock_mount(mp);
2422 out:
2423 	if (!err)
2424 		path_put(&parent_path);
2425 	path_put(&old_path);
2426 	return err;
2427 }
2428 
2429 static struct vfsmount *fs_set_subtype(struct vfsmount *mnt, const char *fstype)
2430 {
2431 	int err;
2432 	const char *subtype = strchr(fstype, '.');
2433 	if (subtype) {
2434 		subtype++;
2435 		err = -EINVAL;
2436 		if (!subtype[0])
2437 			goto err;
2438 	} else
2439 		subtype = "";
2440 
2441 	mnt->mnt_sb->s_subtype = kstrdup(subtype, GFP_KERNEL);
2442 	err = -ENOMEM;
2443 	if (!mnt->mnt_sb->s_subtype)
2444 		goto err;
2445 	return mnt;
2446 
2447  err:
2448 	mntput(mnt);
2449 	return ERR_PTR(err);
2450 }
2451 
2452 /*
2453  * add a mount into a namespace's mount tree
2454  */
2455 static int do_add_mount(struct mount *newmnt, struct path *path, int mnt_flags)
2456 {
2457 	struct mountpoint *mp;
2458 	struct mount *parent;
2459 	int err;
2460 
2461 	mnt_flags &= ~MNT_INTERNAL_FLAGS;
2462 
2463 	mp = lock_mount(path);
2464 	if (IS_ERR(mp))
2465 		return PTR_ERR(mp);
2466 
2467 	parent = real_mount(path->mnt);
2468 	err = -EINVAL;
2469 	if (unlikely(!check_mnt(parent))) {
2470 		/* that's acceptable only for automounts done in private ns */
2471 		if (!(mnt_flags & MNT_SHRINKABLE))
2472 			goto unlock;
2473 		/* ... and for those we'd better have mountpoint still alive */
2474 		if (!parent->mnt_ns)
2475 			goto unlock;
2476 	}
2477 
2478 	/* Refuse the same filesystem on the same mount point */
2479 	err = -EBUSY;
2480 	if (path->mnt->mnt_sb == newmnt->mnt.mnt_sb &&
2481 	    path->mnt->mnt_root == path->dentry)
2482 		goto unlock;
2483 
2484 	err = -EINVAL;
2485 	if (d_is_symlink(newmnt->mnt.mnt_root))
2486 		goto unlock;
2487 
2488 	newmnt->mnt.mnt_flags = mnt_flags;
2489 	err = graft_tree(newmnt, parent, mp);
2490 
2491 unlock:
2492 	unlock_mount(mp);
2493 	return err;
2494 }
2495 
2496 static bool mount_too_revealing(struct vfsmount *mnt, int *new_mnt_flags);
2497 
2498 /*
2499  * create a new mount for userspace and request it to be added into the
2500  * namespace's tree
2501  */
2502 static int do_new_mount(struct path *path, const char *fstype, int sb_flags,
2503 			int mnt_flags, const char *name, void *data)
2504 {
2505 	struct file_system_type *type;
2506 	struct vfsmount *mnt;
2507 	int err;
2508 
2509 	if (!fstype)
2510 		return -EINVAL;
2511 
2512 	type = get_fs_type(fstype);
2513 	if (!type)
2514 		return -ENODEV;
2515 
2516 	mnt = vfs_kern_mount(type, sb_flags, name, data);
2517 	if (!IS_ERR(mnt) && (type->fs_flags & FS_HAS_SUBTYPE) &&
2518 	    !mnt->mnt_sb->s_subtype)
2519 		mnt = fs_set_subtype(mnt, fstype);
2520 
2521 	put_filesystem(type);
2522 	if (IS_ERR(mnt))
2523 		return PTR_ERR(mnt);
2524 
2525 	if (mount_too_revealing(mnt, &mnt_flags)) {
2526 		mntput(mnt);
2527 		return -EPERM;
2528 	}
2529 
2530 	err = do_add_mount(real_mount(mnt), path, mnt_flags);
2531 	if (err)
2532 		mntput(mnt);
2533 	return err;
2534 }
2535 
2536 int finish_automount(struct vfsmount *m, struct path *path)
2537 {
2538 	struct mount *mnt = real_mount(m);
2539 	int err;
2540 	/* The new mount record should have at least 2 refs to prevent it being
2541 	 * expired before we get a chance to add it
2542 	 */
2543 	BUG_ON(mnt_get_count(mnt) < 2);
2544 
2545 	if (m->mnt_sb == path->mnt->mnt_sb &&
2546 	    m->mnt_root == path->dentry) {
2547 		err = -ELOOP;
2548 		goto fail;
2549 	}
2550 
2551 	err = do_add_mount(mnt, path, path->mnt->mnt_flags | MNT_SHRINKABLE);
2552 	if (!err)
2553 		return 0;
2554 fail:
2555 	/* remove m from any expiration list it may be on */
2556 	if (!list_empty(&mnt->mnt_expire)) {
2557 		namespace_lock();
2558 		list_del_init(&mnt->mnt_expire);
2559 		namespace_unlock();
2560 	}
2561 	mntput(m);
2562 	mntput(m);
2563 	return err;
2564 }
2565 
2566 /**
2567  * mnt_set_expiry - Put a mount on an expiration list
2568  * @mnt: The mount to list.
2569  * @expiry_list: The list to add the mount to.
2570  */
2571 void mnt_set_expiry(struct vfsmount *mnt, struct list_head *expiry_list)
2572 {
2573 	namespace_lock();
2574 
2575 	list_add_tail(&real_mount(mnt)->mnt_expire, expiry_list);
2576 
2577 	namespace_unlock();
2578 }
2579 EXPORT_SYMBOL(mnt_set_expiry);
2580 
2581 /*
2582  * process a list of expirable mountpoints with the intent of discarding any
2583  * mountpoints that aren't in use and haven't been touched since last we came
2584  * here
2585  */
2586 void mark_mounts_for_expiry(struct list_head *mounts)
2587 {
2588 	struct mount *mnt, *next;
2589 	LIST_HEAD(graveyard);
2590 
2591 	if (list_empty(mounts))
2592 		return;
2593 
2594 	namespace_lock();
2595 	lock_mount_hash();
2596 
2597 	/* extract from the expiration list every vfsmount that matches the
2598 	 * following criteria:
2599 	 * - only referenced by its parent vfsmount
2600 	 * - still marked for expiry (marked on the last call here; marks are
2601 	 *   cleared by mntput())
2602 	 */
2603 	list_for_each_entry_safe(mnt, next, mounts, mnt_expire) {
2604 		if (!xchg(&mnt->mnt_expiry_mark, 1) ||
2605 			propagate_mount_busy(mnt, 1))
2606 			continue;
2607 		list_move(&mnt->mnt_expire, &graveyard);
2608 	}
2609 	while (!list_empty(&graveyard)) {
2610 		mnt = list_first_entry(&graveyard, struct mount, mnt_expire);
2611 		touch_mnt_namespace(mnt->mnt_ns);
2612 		umount_tree(mnt, UMOUNT_PROPAGATE|UMOUNT_SYNC);
2613 	}
2614 	unlock_mount_hash();
2615 	namespace_unlock();
2616 }
2617 
2618 EXPORT_SYMBOL_GPL(mark_mounts_for_expiry);
2619 
2620 /*
2621  * Ripoff of 'select_parent()'
2622  *
2623  * search the list of submounts for a given mountpoint, and move any
2624  * shrinkable submounts to the 'graveyard' list.
2625  */
2626 static int select_submounts(struct mount *parent, struct list_head *graveyard)
2627 {
2628 	struct mount *this_parent = parent;
2629 	struct list_head *next;
2630 	int found = 0;
2631 
2632 repeat:
2633 	next = this_parent->mnt_mounts.next;
2634 resume:
2635 	while (next != &this_parent->mnt_mounts) {
2636 		struct list_head *tmp = next;
2637 		struct mount *mnt = list_entry(tmp, struct mount, mnt_child);
2638 
2639 		next = tmp->next;
2640 		if (!(mnt->mnt.mnt_flags & MNT_SHRINKABLE))
2641 			continue;
2642 		/*
2643 		 * Descend a level if the d_mounts list is non-empty.
2644 		 */
2645 		if (!list_empty(&mnt->mnt_mounts)) {
2646 			this_parent = mnt;
2647 			goto repeat;
2648 		}
2649 
2650 		if (!propagate_mount_busy(mnt, 1)) {
2651 			list_move_tail(&mnt->mnt_expire, graveyard);
2652 			found++;
2653 		}
2654 	}
2655 	/*
2656 	 * All done at this level ... ascend and resume the search
2657 	 */
2658 	if (this_parent != parent) {
2659 		next = this_parent->mnt_child.next;
2660 		this_parent = this_parent->mnt_parent;
2661 		goto resume;
2662 	}
2663 	return found;
2664 }
2665 
2666 /*
2667  * process a list of expirable mountpoints with the intent of discarding any
2668  * submounts of a specific parent mountpoint
2669  *
2670  * mount_lock must be held for write
2671  */
2672 static void shrink_submounts(struct mount *mnt)
2673 {
2674 	LIST_HEAD(graveyard);
2675 	struct mount *m;
2676 
2677 	/* extract submounts of 'mountpoint' from the expiration list */
2678 	while (select_submounts(mnt, &graveyard)) {
2679 		while (!list_empty(&graveyard)) {
2680 			m = list_first_entry(&graveyard, struct mount,
2681 						mnt_expire);
2682 			touch_mnt_namespace(m->mnt_ns);
2683 			umount_tree(m, UMOUNT_PROPAGATE|UMOUNT_SYNC);
2684 		}
2685 	}
2686 }
2687 
2688 /*
2689  * Some copy_from_user() implementations do not return the exact number of
2690  * bytes remaining to copy on a fault.  But copy_mount_options() requires that.
2691  * Note that this function differs from copy_from_user() in that it will oops
2692  * on bad values of `to', rather than returning a short copy.
2693  */
2694 static long exact_copy_from_user(void *to, const void __user * from,
2695 				 unsigned long n)
2696 {
2697 	char *t = to;
2698 	const char __user *f = from;
2699 	char c;
2700 
2701 	if (!access_ok(VERIFY_READ, from, n))
2702 		return n;
2703 
2704 	while (n) {
2705 		if (__get_user(c, f)) {
2706 			memset(t, 0, n);
2707 			break;
2708 		}
2709 		*t++ = c;
2710 		f++;
2711 		n--;
2712 	}
2713 	return n;
2714 }
2715 
2716 void *copy_mount_options(const void __user * data)
2717 {
2718 	int i;
2719 	unsigned long size;
2720 	char *copy;
2721 
2722 	if (!data)
2723 		return NULL;
2724 
2725 	copy = kmalloc(PAGE_SIZE, GFP_KERNEL);
2726 	if (!copy)
2727 		return ERR_PTR(-ENOMEM);
2728 
2729 	/* We only care that *some* data at the address the user
2730 	 * gave us is valid.  Just in case, we'll zero
2731 	 * the remainder of the page.
2732 	 */
2733 	/* copy_from_user cannot cross TASK_SIZE ! */
2734 	size = TASK_SIZE - (unsigned long)data;
2735 	if (size > PAGE_SIZE)
2736 		size = PAGE_SIZE;
2737 
2738 	i = size - exact_copy_from_user(copy, data, size);
2739 	if (!i) {
2740 		kfree(copy);
2741 		return ERR_PTR(-EFAULT);
2742 	}
2743 	if (i != PAGE_SIZE)
2744 		memset(copy + i, 0, PAGE_SIZE - i);
2745 	return copy;
2746 }
2747 
2748 char *copy_mount_string(const void __user *data)
2749 {
2750 	return data ? strndup_user(data, PAGE_SIZE) : NULL;
2751 }
2752 
2753 /*
2754  * Flags is a 32-bit value that allows up to 31 non-fs dependent flags to
2755  * be given to the mount() call (ie: read-only, no-dev, no-suid etc).
2756  *
2757  * data is a (void *) that can point to any structure up to
2758  * PAGE_SIZE-1 bytes, which can contain arbitrary fs-dependent
2759  * information (or be NULL).
2760  *
2761  * Pre-0.97 versions of mount() didn't have a flags word.
2762  * When the flags word was introduced its top half was required
2763  * to have the magic value 0xC0ED, and this remained so until 2.4.0-test9.
2764  * Therefore, if this magic number is present, it carries no information
2765  * and must be discarded.
2766  */
2767 long do_mount(const char *dev_name, const char __user *dir_name,
2768 		const char *type_page, unsigned long flags, void *data_page)
2769 {
2770 	struct path path;
2771 	unsigned int mnt_flags = 0, sb_flags;
2772 	int retval = 0;
2773 
2774 	/* Discard magic */
2775 	if ((flags & MS_MGC_MSK) == MS_MGC_VAL)
2776 		flags &= ~MS_MGC_MSK;
2777 
2778 	/* Basic sanity checks */
2779 	if (data_page)
2780 		((char *)data_page)[PAGE_SIZE - 1] = 0;
2781 
2782 	if (flags & MS_NOUSER)
2783 		return -EINVAL;
2784 
2785 	/* ... and get the mountpoint */
2786 	retval = user_path(dir_name, &path);
2787 	if (retval)
2788 		return retval;
2789 
2790 	retval = security_sb_mount(dev_name, &path,
2791 				   type_page, flags, data_page);
2792 	if (!retval && !may_mount())
2793 		retval = -EPERM;
2794 	if (!retval && (flags & SB_MANDLOCK) && !may_mandlock())
2795 		retval = -EPERM;
2796 	if (retval)
2797 		goto dput_out;
2798 
2799 	/* Default to relatime unless overriden */
2800 	if (!(flags & MS_NOATIME))
2801 		mnt_flags |= MNT_RELATIME;
2802 
2803 	/* Separate the per-mountpoint flags */
2804 	if (flags & MS_NOSUID)
2805 		mnt_flags |= MNT_NOSUID;
2806 	if (flags & MS_NODEV)
2807 		mnt_flags |= MNT_NODEV;
2808 	if (flags & MS_NOEXEC)
2809 		mnt_flags |= MNT_NOEXEC;
2810 	if (flags & MS_NOATIME)
2811 		mnt_flags |= MNT_NOATIME;
2812 	if (flags & MS_NODIRATIME)
2813 		mnt_flags |= MNT_NODIRATIME;
2814 	if (flags & MS_STRICTATIME)
2815 		mnt_flags &= ~(MNT_RELATIME | MNT_NOATIME);
2816 	if (flags & MS_RDONLY)
2817 		mnt_flags |= MNT_READONLY;
2818 
2819 	/* The default atime for remount is preservation */
2820 	if ((flags & MS_REMOUNT) &&
2821 	    ((flags & (MS_NOATIME | MS_NODIRATIME | MS_RELATIME |
2822 		       MS_STRICTATIME)) == 0)) {
2823 		mnt_flags &= ~MNT_ATIME_MASK;
2824 		mnt_flags |= path.mnt->mnt_flags & MNT_ATIME_MASK;
2825 	}
2826 
2827 	sb_flags = flags & (SB_RDONLY |
2828 			    SB_SYNCHRONOUS |
2829 			    SB_MANDLOCK |
2830 			    SB_DIRSYNC |
2831 			    SB_SILENT |
2832 			    SB_POSIXACL |
2833 			    SB_LAZYTIME |
2834 			    SB_I_VERSION);
2835 
2836 	if (flags & MS_REMOUNT)
2837 		retval = do_remount(&path, flags, sb_flags, mnt_flags,
2838 				    data_page);
2839 	else if (flags & MS_BIND)
2840 		retval = do_loopback(&path, dev_name, flags & MS_REC);
2841 	else if (flags & (MS_SHARED | MS_PRIVATE | MS_SLAVE | MS_UNBINDABLE))
2842 		retval = do_change_type(&path, flags);
2843 	else if (flags & MS_MOVE)
2844 		retval = do_move_mount(&path, dev_name);
2845 	else
2846 		retval = do_new_mount(&path, type_page, sb_flags, mnt_flags,
2847 				      dev_name, data_page);
2848 dput_out:
2849 	path_put(&path);
2850 	return retval;
2851 }
2852 
2853 static struct ucounts *inc_mnt_namespaces(struct user_namespace *ns)
2854 {
2855 	return inc_ucount(ns, current_euid(), UCOUNT_MNT_NAMESPACES);
2856 }
2857 
2858 static void dec_mnt_namespaces(struct ucounts *ucounts)
2859 {
2860 	dec_ucount(ucounts, UCOUNT_MNT_NAMESPACES);
2861 }
2862 
2863 static void free_mnt_ns(struct mnt_namespace *ns)
2864 {
2865 	ns_free_inum(&ns->ns);
2866 	dec_mnt_namespaces(ns->ucounts);
2867 	put_user_ns(ns->user_ns);
2868 	kfree(ns);
2869 }
2870 
2871 /*
2872  * Assign a sequence number so we can detect when we attempt to bind
2873  * mount a reference to an older mount namespace into the current
2874  * mount namespace, preventing reference counting loops.  A 64bit
2875  * number incrementing at 10Ghz will take 12,427 years to wrap which
2876  * is effectively never, so we can ignore the possibility.
2877  */
2878 static atomic64_t mnt_ns_seq = ATOMIC64_INIT(1);
2879 
2880 static struct mnt_namespace *alloc_mnt_ns(struct user_namespace *user_ns)
2881 {
2882 	struct mnt_namespace *new_ns;
2883 	struct ucounts *ucounts;
2884 	int ret;
2885 
2886 	ucounts = inc_mnt_namespaces(user_ns);
2887 	if (!ucounts)
2888 		return ERR_PTR(-ENOSPC);
2889 
2890 	new_ns = kmalloc(sizeof(struct mnt_namespace), GFP_KERNEL);
2891 	if (!new_ns) {
2892 		dec_mnt_namespaces(ucounts);
2893 		return ERR_PTR(-ENOMEM);
2894 	}
2895 	ret = ns_alloc_inum(&new_ns->ns);
2896 	if (ret) {
2897 		kfree(new_ns);
2898 		dec_mnt_namespaces(ucounts);
2899 		return ERR_PTR(ret);
2900 	}
2901 	new_ns->ns.ops = &mntns_operations;
2902 	new_ns->seq = atomic64_add_return(1, &mnt_ns_seq);
2903 	atomic_set(&new_ns->count, 1);
2904 	new_ns->root = NULL;
2905 	INIT_LIST_HEAD(&new_ns->list);
2906 	init_waitqueue_head(&new_ns->poll);
2907 	new_ns->event = 0;
2908 	new_ns->user_ns = get_user_ns(user_ns);
2909 	new_ns->ucounts = ucounts;
2910 	new_ns->mounts = 0;
2911 	new_ns->pending_mounts = 0;
2912 	return new_ns;
2913 }
2914 
2915 __latent_entropy
2916 struct mnt_namespace *copy_mnt_ns(unsigned long flags, struct mnt_namespace *ns,
2917 		struct user_namespace *user_ns, struct fs_struct *new_fs)
2918 {
2919 	struct mnt_namespace *new_ns;
2920 	struct vfsmount *rootmnt = NULL, *pwdmnt = NULL;
2921 	struct mount *p, *q;
2922 	struct mount *old;
2923 	struct mount *new;
2924 	int copy_flags;
2925 
2926 	BUG_ON(!ns);
2927 
2928 	if (likely(!(flags & CLONE_NEWNS))) {
2929 		get_mnt_ns(ns);
2930 		return ns;
2931 	}
2932 
2933 	old = ns->root;
2934 
2935 	new_ns = alloc_mnt_ns(user_ns);
2936 	if (IS_ERR(new_ns))
2937 		return new_ns;
2938 
2939 	namespace_lock();
2940 	/* First pass: copy the tree topology */
2941 	copy_flags = CL_COPY_UNBINDABLE | CL_EXPIRE;
2942 	if (user_ns != ns->user_ns)
2943 		copy_flags |= CL_SHARED_TO_SLAVE | CL_UNPRIVILEGED;
2944 	new = copy_tree(old, old->mnt.mnt_root, copy_flags);
2945 	if (IS_ERR(new)) {
2946 		namespace_unlock();
2947 		free_mnt_ns(new_ns);
2948 		return ERR_CAST(new);
2949 	}
2950 	new_ns->root = new;
2951 	list_add_tail(&new_ns->list, &new->mnt_list);
2952 
2953 	/*
2954 	 * Second pass: switch the tsk->fs->* elements and mark new vfsmounts
2955 	 * as belonging to new namespace.  We have already acquired a private
2956 	 * fs_struct, so tsk->fs->lock is not needed.
2957 	 */
2958 	p = old;
2959 	q = new;
2960 	while (p) {
2961 		q->mnt_ns = new_ns;
2962 		new_ns->mounts++;
2963 		if (new_fs) {
2964 			if (&p->mnt == new_fs->root.mnt) {
2965 				new_fs->root.mnt = mntget(&q->mnt);
2966 				rootmnt = &p->mnt;
2967 			}
2968 			if (&p->mnt == new_fs->pwd.mnt) {
2969 				new_fs->pwd.mnt = mntget(&q->mnt);
2970 				pwdmnt = &p->mnt;
2971 			}
2972 		}
2973 		p = next_mnt(p, old);
2974 		q = next_mnt(q, new);
2975 		if (!q)
2976 			break;
2977 		while (p->mnt.mnt_root != q->mnt.mnt_root)
2978 			p = next_mnt(p, old);
2979 	}
2980 	namespace_unlock();
2981 
2982 	if (rootmnt)
2983 		mntput(rootmnt);
2984 	if (pwdmnt)
2985 		mntput(pwdmnt);
2986 
2987 	return new_ns;
2988 }
2989 
2990 /**
2991  * create_mnt_ns - creates a private namespace and adds a root filesystem
2992  * @mnt: pointer to the new root filesystem mountpoint
2993  */
2994 static struct mnt_namespace *create_mnt_ns(struct vfsmount *m)
2995 {
2996 	struct mnt_namespace *new_ns = alloc_mnt_ns(&init_user_ns);
2997 	if (!IS_ERR(new_ns)) {
2998 		struct mount *mnt = real_mount(m);
2999 		mnt->mnt_ns = new_ns;
3000 		new_ns->root = mnt;
3001 		new_ns->mounts++;
3002 		list_add(&mnt->mnt_list, &new_ns->list);
3003 	} else {
3004 		mntput(m);
3005 	}
3006 	return new_ns;
3007 }
3008 
3009 struct dentry *mount_subtree(struct vfsmount *mnt, const char *name)
3010 {
3011 	struct mnt_namespace *ns;
3012 	struct super_block *s;
3013 	struct path path;
3014 	int err;
3015 
3016 	ns = create_mnt_ns(mnt);
3017 	if (IS_ERR(ns))
3018 		return ERR_CAST(ns);
3019 
3020 	err = vfs_path_lookup(mnt->mnt_root, mnt,
3021 			name, LOOKUP_FOLLOW|LOOKUP_AUTOMOUNT, &path);
3022 
3023 	put_mnt_ns(ns);
3024 
3025 	if (err)
3026 		return ERR_PTR(err);
3027 
3028 	/* trade a vfsmount reference for active sb one */
3029 	s = path.mnt->mnt_sb;
3030 	atomic_inc(&s->s_active);
3031 	mntput(path.mnt);
3032 	/* lock the sucker */
3033 	down_write(&s->s_umount);
3034 	/* ... and return the root of (sub)tree on it */
3035 	return path.dentry;
3036 }
3037 EXPORT_SYMBOL(mount_subtree);
3038 
3039 int ksys_mount(char __user *dev_name, char __user *dir_name, char __user *type,
3040 	       unsigned long flags, void __user *data)
3041 {
3042 	int ret;
3043 	char *kernel_type;
3044 	char *kernel_dev;
3045 	void *options;
3046 
3047 	kernel_type = copy_mount_string(type);
3048 	ret = PTR_ERR(kernel_type);
3049 	if (IS_ERR(kernel_type))
3050 		goto out_type;
3051 
3052 	kernel_dev = copy_mount_string(dev_name);
3053 	ret = PTR_ERR(kernel_dev);
3054 	if (IS_ERR(kernel_dev))
3055 		goto out_dev;
3056 
3057 	options = copy_mount_options(data);
3058 	ret = PTR_ERR(options);
3059 	if (IS_ERR(options))
3060 		goto out_data;
3061 
3062 	ret = do_mount(kernel_dev, dir_name, kernel_type, flags, options);
3063 
3064 	kfree(options);
3065 out_data:
3066 	kfree(kernel_dev);
3067 out_dev:
3068 	kfree(kernel_type);
3069 out_type:
3070 	return ret;
3071 }
3072 
3073 SYSCALL_DEFINE5(mount, char __user *, dev_name, char __user *, dir_name,
3074 		char __user *, type, unsigned long, flags, void __user *, data)
3075 {
3076 	return ksys_mount(dev_name, dir_name, type, flags, data);
3077 }
3078 
3079 /*
3080  * Return true if path is reachable from root
3081  *
3082  * namespace_sem or mount_lock is held
3083  */
3084 bool is_path_reachable(struct mount *mnt, struct dentry *dentry,
3085 			 const struct path *root)
3086 {
3087 	while (&mnt->mnt != root->mnt && mnt_has_parent(mnt)) {
3088 		dentry = mnt->mnt_mountpoint;
3089 		mnt = mnt->mnt_parent;
3090 	}
3091 	return &mnt->mnt == root->mnt && is_subdir(dentry, root->dentry);
3092 }
3093 
3094 bool path_is_under(const struct path *path1, const struct path *path2)
3095 {
3096 	bool res;
3097 	read_seqlock_excl(&mount_lock);
3098 	res = is_path_reachable(real_mount(path1->mnt), path1->dentry, path2);
3099 	read_sequnlock_excl(&mount_lock);
3100 	return res;
3101 }
3102 EXPORT_SYMBOL(path_is_under);
3103 
3104 /*
3105  * pivot_root Semantics:
3106  * Moves the root file system of the current process to the directory put_old,
3107  * makes new_root as the new root file system of the current process, and sets
3108  * root/cwd of all processes which had them on the current root to new_root.
3109  *
3110  * Restrictions:
3111  * The new_root and put_old must be directories, and  must not be on the
3112  * same file  system as the current process root. The put_old  must  be
3113  * underneath new_root,  i.e. adding a non-zero number of /.. to the string
3114  * pointed to by put_old must yield the same directory as new_root. No other
3115  * file system may be mounted on put_old. After all, new_root is a mountpoint.
3116  *
3117  * Also, the current root cannot be on the 'rootfs' (initial ramfs) filesystem.
3118  * See Documentation/filesystems/ramfs-rootfs-initramfs.txt for alternatives
3119  * in this situation.
3120  *
3121  * Notes:
3122  *  - we don't move root/cwd if they are not at the root (reason: if something
3123  *    cared enough to change them, it's probably wrong to force them elsewhere)
3124  *  - it's okay to pick a root that isn't the root of a file system, e.g.
3125  *    /nfs/my_root where /nfs is the mount point. It must be a mountpoint,
3126  *    though, so you may need to say mount --bind /nfs/my_root /nfs/my_root
3127  *    first.
3128  */
3129 SYSCALL_DEFINE2(pivot_root, const char __user *, new_root,
3130 		const char __user *, put_old)
3131 {
3132 	struct path new, old, parent_path, root_parent, root;
3133 	struct mount *new_mnt, *root_mnt, *old_mnt;
3134 	struct mountpoint *old_mp, *root_mp;
3135 	int error;
3136 
3137 	if (!may_mount())
3138 		return -EPERM;
3139 
3140 	error = user_path_dir(new_root, &new);
3141 	if (error)
3142 		goto out0;
3143 
3144 	error = user_path_dir(put_old, &old);
3145 	if (error)
3146 		goto out1;
3147 
3148 	error = security_sb_pivotroot(&old, &new);
3149 	if (error)
3150 		goto out2;
3151 
3152 	get_fs_root(current->fs, &root);
3153 	old_mp = lock_mount(&old);
3154 	error = PTR_ERR(old_mp);
3155 	if (IS_ERR(old_mp))
3156 		goto out3;
3157 
3158 	error = -EINVAL;
3159 	new_mnt = real_mount(new.mnt);
3160 	root_mnt = real_mount(root.mnt);
3161 	old_mnt = real_mount(old.mnt);
3162 	if (IS_MNT_SHARED(old_mnt) ||
3163 		IS_MNT_SHARED(new_mnt->mnt_parent) ||
3164 		IS_MNT_SHARED(root_mnt->mnt_parent))
3165 		goto out4;
3166 	if (!check_mnt(root_mnt) || !check_mnt(new_mnt))
3167 		goto out4;
3168 	if (new_mnt->mnt.mnt_flags & MNT_LOCKED)
3169 		goto out4;
3170 	error = -ENOENT;
3171 	if (d_unlinked(new.dentry))
3172 		goto out4;
3173 	error = -EBUSY;
3174 	if (new_mnt == root_mnt || old_mnt == root_mnt)
3175 		goto out4; /* loop, on the same file system  */
3176 	error = -EINVAL;
3177 	if (root.mnt->mnt_root != root.dentry)
3178 		goto out4; /* not a mountpoint */
3179 	if (!mnt_has_parent(root_mnt))
3180 		goto out4; /* not attached */
3181 	root_mp = root_mnt->mnt_mp;
3182 	if (new.mnt->mnt_root != new.dentry)
3183 		goto out4; /* not a mountpoint */
3184 	if (!mnt_has_parent(new_mnt))
3185 		goto out4; /* not attached */
3186 	/* make sure we can reach put_old from new_root */
3187 	if (!is_path_reachable(old_mnt, old.dentry, &new))
3188 		goto out4;
3189 	/* make certain new is below the root */
3190 	if (!is_path_reachable(new_mnt, new.dentry, &root))
3191 		goto out4;
3192 	root_mp->m_count++; /* pin it so it won't go away */
3193 	lock_mount_hash();
3194 	detach_mnt(new_mnt, &parent_path);
3195 	detach_mnt(root_mnt, &root_parent);
3196 	if (root_mnt->mnt.mnt_flags & MNT_LOCKED) {
3197 		new_mnt->mnt.mnt_flags |= MNT_LOCKED;
3198 		root_mnt->mnt.mnt_flags &= ~MNT_LOCKED;
3199 	}
3200 	/* mount old root on put_old */
3201 	attach_mnt(root_mnt, old_mnt, old_mp);
3202 	/* mount new_root on / */
3203 	attach_mnt(new_mnt, real_mount(root_parent.mnt), root_mp);
3204 	touch_mnt_namespace(current->nsproxy->mnt_ns);
3205 	/* A moved mount should not expire automatically */
3206 	list_del_init(&new_mnt->mnt_expire);
3207 	put_mountpoint(root_mp);
3208 	unlock_mount_hash();
3209 	chroot_fs_refs(&root, &new);
3210 	error = 0;
3211 out4:
3212 	unlock_mount(old_mp);
3213 	if (!error) {
3214 		path_put(&root_parent);
3215 		path_put(&parent_path);
3216 	}
3217 out3:
3218 	path_put(&root);
3219 out2:
3220 	path_put(&old);
3221 out1:
3222 	path_put(&new);
3223 out0:
3224 	return error;
3225 }
3226 
3227 static void __init init_mount_tree(void)
3228 {
3229 	struct vfsmount *mnt;
3230 	struct mnt_namespace *ns;
3231 	struct path root;
3232 	struct file_system_type *type;
3233 
3234 	type = get_fs_type("rootfs");
3235 	if (!type)
3236 		panic("Can't find rootfs type");
3237 	mnt = vfs_kern_mount(type, 0, "rootfs", NULL);
3238 	put_filesystem(type);
3239 	if (IS_ERR(mnt))
3240 		panic("Can't create rootfs");
3241 
3242 	ns = create_mnt_ns(mnt);
3243 	if (IS_ERR(ns))
3244 		panic("Can't allocate initial namespace");
3245 
3246 	init_task.nsproxy->mnt_ns = ns;
3247 	get_mnt_ns(ns);
3248 
3249 	root.mnt = mnt;
3250 	root.dentry = mnt->mnt_root;
3251 	mnt->mnt_flags |= MNT_LOCKED;
3252 
3253 	set_fs_pwd(current->fs, &root);
3254 	set_fs_root(current->fs, &root);
3255 }
3256 
3257 void __init mnt_init(void)
3258 {
3259 	int err;
3260 
3261 	mnt_cache = kmem_cache_create("mnt_cache", sizeof(struct mount),
3262 			0, SLAB_HWCACHE_ALIGN | SLAB_PANIC, NULL);
3263 
3264 	mount_hashtable = alloc_large_system_hash("Mount-cache",
3265 				sizeof(struct hlist_head),
3266 				mhash_entries, 19,
3267 				HASH_ZERO,
3268 				&m_hash_shift, &m_hash_mask, 0, 0);
3269 	mountpoint_hashtable = alloc_large_system_hash("Mountpoint-cache",
3270 				sizeof(struct hlist_head),
3271 				mphash_entries, 19,
3272 				HASH_ZERO,
3273 				&mp_hash_shift, &mp_hash_mask, 0, 0);
3274 
3275 	if (!mount_hashtable || !mountpoint_hashtable)
3276 		panic("Failed to allocate mount hash table\n");
3277 
3278 	kernfs_init();
3279 
3280 	err = sysfs_init();
3281 	if (err)
3282 		printk(KERN_WARNING "%s: sysfs_init error: %d\n",
3283 			__func__, err);
3284 	fs_kobj = kobject_create_and_add("fs", NULL);
3285 	if (!fs_kobj)
3286 		printk(KERN_WARNING "%s: kobj create error\n", __func__);
3287 	init_rootfs();
3288 	init_mount_tree();
3289 }
3290 
3291 void put_mnt_ns(struct mnt_namespace *ns)
3292 {
3293 	if (!atomic_dec_and_test(&ns->count))
3294 		return;
3295 	drop_collected_mounts(&ns->root->mnt);
3296 	free_mnt_ns(ns);
3297 }
3298 
3299 struct vfsmount *kern_mount_data(struct file_system_type *type, void *data)
3300 {
3301 	struct vfsmount *mnt;
3302 	mnt = vfs_kern_mount(type, SB_KERNMOUNT, type->name, data);
3303 	if (!IS_ERR(mnt)) {
3304 		/*
3305 		 * it is a longterm mount, don't release mnt until
3306 		 * we unmount before file sys is unregistered
3307 		*/
3308 		real_mount(mnt)->mnt_ns = MNT_NS_INTERNAL;
3309 	}
3310 	return mnt;
3311 }
3312 EXPORT_SYMBOL_GPL(kern_mount_data);
3313 
3314 void kern_unmount(struct vfsmount *mnt)
3315 {
3316 	/* release long term mount so mount point can be released */
3317 	if (!IS_ERR_OR_NULL(mnt)) {
3318 		real_mount(mnt)->mnt_ns = NULL;
3319 		synchronize_rcu();	/* yecchhh... */
3320 		mntput(mnt);
3321 	}
3322 }
3323 EXPORT_SYMBOL(kern_unmount);
3324 
3325 bool our_mnt(struct vfsmount *mnt)
3326 {
3327 	return check_mnt(real_mount(mnt));
3328 }
3329 
3330 bool current_chrooted(void)
3331 {
3332 	/* Does the current process have a non-standard root */
3333 	struct path ns_root;
3334 	struct path fs_root;
3335 	bool chrooted;
3336 
3337 	/* Find the namespace root */
3338 	ns_root.mnt = &current->nsproxy->mnt_ns->root->mnt;
3339 	ns_root.dentry = ns_root.mnt->mnt_root;
3340 	path_get(&ns_root);
3341 	while (d_mountpoint(ns_root.dentry) && follow_down_one(&ns_root))
3342 		;
3343 
3344 	get_fs_root(current->fs, &fs_root);
3345 
3346 	chrooted = !path_equal(&fs_root, &ns_root);
3347 
3348 	path_put(&fs_root);
3349 	path_put(&ns_root);
3350 
3351 	return chrooted;
3352 }
3353 
3354 static bool mnt_already_visible(struct mnt_namespace *ns, struct vfsmount *new,
3355 				int *new_mnt_flags)
3356 {
3357 	int new_flags = *new_mnt_flags;
3358 	struct mount *mnt;
3359 	bool visible = false;
3360 
3361 	down_read(&namespace_sem);
3362 	list_for_each_entry(mnt, &ns->list, mnt_list) {
3363 		struct mount *child;
3364 		int mnt_flags;
3365 
3366 		if (mnt->mnt.mnt_sb->s_type != new->mnt_sb->s_type)
3367 			continue;
3368 
3369 		/* This mount is not fully visible if it's root directory
3370 		 * is not the root directory of the filesystem.
3371 		 */
3372 		if (mnt->mnt.mnt_root != mnt->mnt.mnt_sb->s_root)
3373 			continue;
3374 
3375 		/* A local view of the mount flags */
3376 		mnt_flags = mnt->mnt.mnt_flags;
3377 
3378 		/* Don't miss readonly hidden in the superblock flags */
3379 		if (sb_rdonly(mnt->mnt.mnt_sb))
3380 			mnt_flags |= MNT_LOCK_READONLY;
3381 
3382 		/* Verify the mount flags are equal to or more permissive
3383 		 * than the proposed new mount.
3384 		 */
3385 		if ((mnt_flags & MNT_LOCK_READONLY) &&
3386 		    !(new_flags & MNT_READONLY))
3387 			continue;
3388 		if ((mnt_flags & MNT_LOCK_ATIME) &&
3389 		    ((mnt_flags & MNT_ATIME_MASK) != (new_flags & MNT_ATIME_MASK)))
3390 			continue;
3391 
3392 		/* This mount is not fully visible if there are any
3393 		 * locked child mounts that cover anything except for
3394 		 * empty directories.
3395 		 */
3396 		list_for_each_entry(child, &mnt->mnt_mounts, mnt_child) {
3397 			struct inode *inode = child->mnt_mountpoint->d_inode;
3398 			/* Only worry about locked mounts */
3399 			if (!(child->mnt.mnt_flags & MNT_LOCKED))
3400 				continue;
3401 			/* Is the directory permanetly empty? */
3402 			if (!is_empty_dir_inode(inode))
3403 				goto next;
3404 		}
3405 		/* Preserve the locked attributes */
3406 		*new_mnt_flags |= mnt_flags & (MNT_LOCK_READONLY | \
3407 					       MNT_LOCK_ATIME);
3408 		visible = true;
3409 		goto found;
3410 	next:	;
3411 	}
3412 found:
3413 	up_read(&namespace_sem);
3414 	return visible;
3415 }
3416 
3417 static bool mount_too_revealing(struct vfsmount *mnt, int *new_mnt_flags)
3418 {
3419 	const unsigned long required_iflags = SB_I_NOEXEC | SB_I_NODEV;
3420 	struct mnt_namespace *ns = current->nsproxy->mnt_ns;
3421 	unsigned long s_iflags;
3422 
3423 	if (ns->user_ns == &init_user_ns)
3424 		return false;
3425 
3426 	/* Can this filesystem be too revealing? */
3427 	s_iflags = mnt->mnt_sb->s_iflags;
3428 	if (!(s_iflags & SB_I_USERNS_VISIBLE))
3429 		return false;
3430 
3431 	if ((s_iflags & required_iflags) != required_iflags) {
3432 		WARN_ONCE(1, "Expected s_iflags to contain 0x%lx\n",
3433 			  required_iflags);
3434 		return true;
3435 	}
3436 
3437 	return !mnt_already_visible(ns, mnt, new_mnt_flags);
3438 }
3439 
3440 bool mnt_may_suid(struct vfsmount *mnt)
3441 {
3442 	/*
3443 	 * Foreign mounts (accessed via fchdir or through /proc
3444 	 * symlinks) are always treated as if they are nosuid.  This
3445 	 * prevents namespaces from trusting potentially unsafe
3446 	 * suid/sgid bits, file caps, or security labels that originate
3447 	 * in other namespaces.
3448 	 */
3449 	return !(mnt->mnt_flags & MNT_NOSUID) && check_mnt(real_mount(mnt)) &&
3450 	       current_in_userns(mnt->mnt_sb->s_user_ns);
3451 }
3452 
3453 static struct ns_common *mntns_get(struct task_struct *task)
3454 {
3455 	struct ns_common *ns = NULL;
3456 	struct nsproxy *nsproxy;
3457 
3458 	task_lock(task);
3459 	nsproxy = task->nsproxy;
3460 	if (nsproxy) {
3461 		ns = &nsproxy->mnt_ns->ns;
3462 		get_mnt_ns(to_mnt_ns(ns));
3463 	}
3464 	task_unlock(task);
3465 
3466 	return ns;
3467 }
3468 
3469 static void mntns_put(struct ns_common *ns)
3470 {
3471 	put_mnt_ns(to_mnt_ns(ns));
3472 }
3473 
3474 static int mntns_install(struct nsproxy *nsproxy, struct ns_common *ns)
3475 {
3476 	struct fs_struct *fs = current->fs;
3477 	struct mnt_namespace *mnt_ns = to_mnt_ns(ns), *old_mnt_ns;
3478 	struct path root;
3479 	int err;
3480 
3481 	if (!ns_capable(mnt_ns->user_ns, CAP_SYS_ADMIN) ||
3482 	    !ns_capable(current_user_ns(), CAP_SYS_CHROOT) ||
3483 	    !ns_capable(current_user_ns(), CAP_SYS_ADMIN))
3484 		return -EPERM;
3485 
3486 	if (fs->users != 1)
3487 		return -EINVAL;
3488 
3489 	get_mnt_ns(mnt_ns);
3490 	old_mnt_ns = nsproxy->mnt_ns;
3491 	nsproxy->mnt_ns = mnt_ns;
3492 
3493 	/* Find the root */
3494 	err = vfs_path_lookup(mnt_ns->root->mnt.mnt_root, &mnt_ns->root->mnt,
3495 				"/", LOOKUP_DOWN, &root);
3496 	if (err) {
3497 		/* revert to old namespace */
3498 		nsproxy->mnt_ns = old_mnt_ns;
3499 		put_mnt_ns(mnt_ns);
3500 		return err;
3501 	}
3502 
3503 	put_mnt_ns(old_mnt_ns);
3504 
3505 	/* Update the pwd and root */
3506 	set_fs_pwd(fs, &root);
3507 	set_fs_root(fs, &root);
3508 
3509 	path_put(&root);
3510 	return 0;
3511 }
3512 
3513 static struct user_namespace *mntns_owner(struct ns_common *ns)
3514 {
3515 	return to_mnt_ns(ns)->user_ns;
3516 }
3517 
3518 const struct proc_ns_operations mntns_operations = {
3519 	.name		= "mnt",
3520 	.type		= CLONE_NEWNS,
3521 	.get		= mntns_get,
3522 	.put		= mntns_put,
3523 	.install	= mntns_install,
3524 	.owner		= mntns_owner,
3525 };
3526