1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * linux/fs/super.c
4 *
5 * Copyright (C) 1991, 1992 Linus Torvalds
6 *
7 * super.c contains code to handle: - mount structures
8 * - super-block tables
9 * - filesystem drivers list
10 * - mount system call
11 * - umount system call
12 * - ustat system call
13 *
14 * GK 2/5/95 - Changed to support mounting the root fs via NFS
15 *
16 * Added kerneld support: Jacques Gelinas and Bjorn Ekwall
17 * Added change_root: Werner Almesberger & Hans Lermen, Feb '96
18 * Added options to /proc/mounts:
19 * Torbjörn Lindh (torbjorn.lindh@gopta.se), April 14, 1996.
20 * Added devfs support: Richard Gooch <rgooch@atnf.csiro.au>, 13-JAN-1998
21 * Heavily rewritten for 'one fs - one tree' dcache architecture. AV, Mar 2000
22 */
23
24 #include <linux/export.h>
25 #include <linux/slab.h>
26 #include <linux/blkdev.h>
27 #include <linux/memcontrol.h>
28 #include <linux/rhashtable.h>
29 #include <linux/mount.h>
30 #include <linux/security.h>
31 #include <linux/writeback.h> /* for the emergency remount stuff */
32 #include <linux/idr.h>
33 #include <linux/mutex.h>
34 #include <linux/backing-dev.h>
35 #include <linux/rculist_bl.h>
36 #include <linux/fscrypt.h>
37 #include <linux/fsnotify.h>
38 #include <linux/lockdep.h>
39 #include <linux/user_namespace.h>
40 #include <linux/fs_context.h>
41 #include <linux/fserror.h>
42 #include <uapi/linux/mount.h>
43 #include "internal.h"
44
45 static int thaw_super_locked(struct super_block *sb, enum freeze_holder who,
46 const void *freeze_owner);
47
48 static LIST_HEAD(super_blocks);
49 static DEFINE_SPINLOCK(sb_lock);
50
51 static char *sb_writers_name[SB_FREEZE_LEVELS] = {
52 "sb_writers",
53 "sb_pagefaults",
54 "sb_internal",
55 };
56
__super_lock(struct super_block * sb,bool excl)57 static inline void __super_lock(struct super_block *sb, bool excl)
58 {
59 if (excl)
60 down_write(&sb->s_umount);
61 else
62 down_read(&sb->s_umount);
63 }
64
super_unlock(struct super_block * sb,bool excl)65 static inline void super_unlock(struct super_block *sb, bool excl)
66 {
67 if (excl)
68 up_write(&sb->s_umount);
69 else
70 up_read(&sb->s_umount);
71 }
72
__super_lock_excl(struct super_block * sb)73 static inline void __super_lock_excl(struct super_block *sb)
74 {
75 __super_lock(sb, true);
76 }
77
super_unlock_excl(struct super_block * sb)78 static inline void super_unlock_excl(struct super_block *sb)
79 {
80 super_unlock(sb, true);
81 }
82
super_unlock_shared(struct super_block * sb)83 static inline void super_unlock_shared(struct super_block *sb)
84 {
85 super_unlock(sb, false);
86 }
87
super_flags(const struct super_block * sb,unsigned int flags)88 static bool super_flags(const struct super_block *sb, unsigned int flags)
89 {
90 /*
91 * Pairs with smp_store_release() in super_wake() and ensures
92 * that we see @flags after we're woken.
93 */
94 return smp_load_acquire(&sb->s_flags) & flags;
95 }
96
97 /**
98 * super_lock - wait for superblock to become ready and lock it
99 * @sb: superblock to wait for
100 * @excl: whether exclusive access is required
101 *
102 * If the superblock has neither passed through vfs_get_tree() or
103 * generic_shutdown_super() yet wait for it to happen. Either superblock
104 * creation will succeed and SB_BORN is set by vfs_get_tree() or we're
105 * woken and we'll see SB_DYING.
106 *
107 * The caller must have acquired a temporary reference on @sb->s_passive.
108 *
109 * Return: The function returns true if SB_BORN was set and with
110 * s_umount held. The function returns false if SB_DYING was
111 * set and without s_umount held.
112 */
super_lock(struct super_block * sb,bool excl)113 static __must_check bool super_lock(struct super_block *sb, bool excl)
114 {
115 lockdep_assert_not_held(&sb->s_umount);
116
117 /* wait until the superblock is ready or dying */
118 wait_var_event(&sb->s_flags, super_flags(sb, SB_BORN | SB_DYING));
119
120 /* Don't pointlessly acquire s_umount. */
121 if (super_flags(sb, SB_DYING))
122 return false;
123
124 __super_lock(sb, excl);
125
126 /*
127 * Has gone through generic_shutdown_super() in the meantime.
128 * @sb->s_root is NULL and @sb->s_active is 0. No one needs to
129 * grab a reference to this. Tell them so.
130 */
131 if (sb->s_flags & SB_DYING) {
132 super_unlock(sb, excl);
133 return false;
134 }
135
136 WARN_ON_ONCE(!(sb->s_flags & SB_BORN));
137 return true;
138 }
139
140 /* wait and try to acquire read-side of @sb->s_umount */
super_lock_shared(struct super_block * sb)141 static inline bool super_lock_shared(struct super_block *sb)
142 {
143 return super_lock(sb, false);
144 }
145
146 /* wait and try to acquire write-side of @sb->s_umount */
super_lock_excl(struct super_block * sb)147 static inline bool super_lock_excl(struct super_block *sb)
148 {
149 return super_lock(sb, true);
150 }
151
152 /* wake waiters */
153 #define SUPER_WAKE_FLAGS (SB_BORN | SB_DYING | SB_DEAD)
super_wake(struct super_block * sb,unsigned int flag)154 static void super_wake(struct super_block *sb, unsigned int flag)
155 {
156 WARN_ON_ONCE((flag & ~SUPER_WAKE_FLAGS));
157 WARN_ON_ONCE(hweight32(flag & SUPER_WAKE_FLAGS) > 1);
158
159 /*
160 * Pairs with smp_load_acquire() in super_lock() to make sure
161 * all initializations in the superblock are seen by the user
162 * seeing SB_BORN sent.
163 */
164 smp_store_release(&sb->s_flags, sb->s_flags | flag);
165 /*
166 * Pairs with the barrier in prepare_to_wait_event() to make sure
167 * ___wait_var_event() either sees SB_BORN set or
168 * waitqueue_active() check in wake_up_var() sees the waiter.
169 */
170 smp_mb();
171 wake_up_var(&sb->s_flags);
172 }
173
174 /*
175 * One thing we have to be careful of with a per-sb shrinker is that we don't
176 * drop the last active reference to the superblock from within the shrinker.
177 * If that happens we could trigger unregistering the shrinker from within the
178 * shrinker path and that leads to deadlock on the shrinker_mutex. Hence we
179 * take a passive reference to the superblock to avoid this from occurring.
180 */
super_cache_scan(struct shrinker * shrink,struct shrink_control * sc)181 static unsigned long super_cache_scan(struct shrinker *shrink,
182 struct shrink_control *sc)
183 {
184 struct super_block *sb;
185 long fs_objects = 0;
186 long total_objects;
187 long freed = 0;
188 long dentries;
189 long inodes;
190
191 sb = shrink->private_data;
192
193 /*
194 * Deadlock avoidance. We may hold various FS locks, and we don't want
195 * to recurse into the FS that called us in clear_inode() and friends..
196 */
197 if (!(sc->gfp_mask & __GFP_FS))
198 return SHRINK_STOP;
199
200 if (!super_trylock_shared(sb))
201 return SHRINK_STOP;
202
203 if (sb->s_op->nr_cached_objects)
204 fs_objects = sb->s_op->nr_cached_objects(sb, sc);
205
206 inodes = list_lru_shrink_count(&sb->s_inode_lru, sc);
207 dentries = list_lru_shrink_count(&sb->s_dentry_lru, sc);
208 total_objects = dentries + inodes + fs_objects;
209 if (!total_objects)
210 total_objects = 1;
211
212 /* proportion the scan between the caches */
213 dentries = mult_frac(sc->nr_to_scan, dentries, total_objects);
214 inodes = mult_frac(sc->nr_to_scan, inodes, total_objects);
215 fs_objects = mult_frac(sc->nr_to_scan, fs_objects, total_objects);
216
217 /*
218 * prune the dcache first as the icache is pinned by it, then
219 * prune the icache, followed by the filesystem specific caches
220 *
221 * Ensure that we always scan at least one object - memcg kmem
222 * accounting uses this to fully empty the caches.
223 */
224 sc->nr_to_scan = dentries + 1;
225 freed = prune_dcache_sb(sb, sc);
226 sc->nr_to_scan = inodes + 1;
227 freed += prune_icache_sb(sb, sc);
228
229 if (fs_objects) {
230 sc->nr_to_scan = fs_objects + 1;
231 freed += sb->s_op->free_cached_objects(sb, sc);
232 }
233
234 super_unlock_shared(sb);
235 return freed;
236 }
237
super_cache_count(struct shrinker * shrink,struct shrink_control * sc)238 static unsigned long super_cache_count(struct shrinker *shrink,
239 struct shrink_control *sc)
240 {
241 struct super_block *sb;
242 long total_objects = 0;
243
244 sb = shrink->private_data;
245
246 /*
247 * We don't call super_trylock_shared() here as it is a scalability
248 * bottleneck, so we're exposed to partial setup state. The shrinker
249 * rwsem does not protect filesystem operations backing
250 * list_lru_shrink_count() or s_op->nr_cached_objects(). Counts can
251 * change between super_cache_count and super_cache_scan, so we really
252 * don't need locks here.
253 *
254 * However, if we are currently mounting the superblock, the underlying
255 * filesystem might be in a state of partial construction and hence it
256 * is dangerous to access it. super_trylock_shared() uses a SB_BORN check
257 * to avoid this situation, so do the same here. The memory barrier is
258 * matched with the one in mount_fs() as we don't hold locks here.
259 */
260 if (!(sb->s_flags & SB_BORN))
261 return 0;
262 smp_rmb();
263
264 if (sb->s_op && sb->s_op->nr_cached_objects)
265 total_objects = sb->s_op->nr_cached_objects(sb, sc);
266
267 total_objects += list_lru_shrink_count(&sb->s_dentry_lru, sc);
268 total_objects += list_lru_shrink_count(&sb->s_inode_lru, sc);
269
270 if (!total_objects)
271 return SHRINK_EMPTY;
272
273 total_objects = vfs_pressure_ratio(total_objects);
274 return total_objects;
275 }
276
277 static struct super_dev *super_dev_alloc(dev_t dev, struct super_block *sb);
278
destroy_super_work(struct work_struct * work)279 static void destroy_super_work(struct work_struct *work)
280 {
281 struct super_block *s = container_of(work, struct super_block,
282 destroy_work);
283 fsnotify_sb_free(s);
284 security_sb_free(s);
285 put_user_ns(s->s_user_ns);
286 /* Only an unregistered entry is still owned by the superblock. */
287 kfree(s->s_super_dev);
288 kfree(s->s_subtype);
289 for (int i = 0; i < SB_FREEZE_LEVELS; i++)
290 percpu_free_rwsem(&s->s_writers.rw_sem[i]);
291 kfree(s);
292 }
293
destroy_super_rcu(struct rcu_head * head)294 static void destroy_super_rcu(struct rcu_head *head)
295 {
296 struct super_block *s = container_of(head, struct super_block, rcu);
297 INIT_WORK(&s->destroy_work, destroy_super_work);
298 schedule_work(&s->destroy_work);
299 }
300
301 /* Free a superblock that has never been seen by anyone */
destroy_unused_super(struct super_block * s)302 static void destroy_unused_super(struct super_block *s)
303 {
304 if (!s)
305 return;
306 super_unlock_excl(s);
307 list_lru_destroy(&s->s_dentry_lru);
308 list_lru_destroy(&s->s_inode_lru);
309 shrinker_free(s->s_shrink);
310 /* no delays needed */
311 destroy_super_work(&s->destroy_work);
312 }
313
314 /**
315 * alloc_super - create new superblock
316 * @type: filesystem type superblock should belong to
317 * @flags: the mount flags
318 * @user_ns: User namespace for the super_block
319 *
320 * Allocates and initializes a new &struct super_block. alloc_super()
321 * returns a pointer new superblock or %NULL if allocation had failed.
322 */
alloc_super(struct file_system_type * type,int flags,struct user_namespace * user_ns)323 static struct super_block *alloc_super(struct file_system_type *type, int flags,
324 struct user_namespace *user_ns)
325 {
326 struct super_block *s = kzalloc_obj(struct super_block);
327 static const struct super_operations default_op;
328 int i;
329
330 if (!s)
331 return NULL;
332
333 s->s_user_ns = get_user_ns(user_ns);
334 init_rwsem(&s->s_umount);
335 lockdep_set_class(&s->s_umount, &type->s_umount_key);
336 /*
337 * sget_fc() can have s_umount recursion.
338 *
339 * When it cannot find a suitable sb, it allocates a new
340 * one (this one), and tries again to find a suitable old
341 * one.
342 *
343 * In case that succeeds, it will acquire the s_umount
344 * lock of the old one. Since these are clearly distrinct
345 * locks, and this object isn't exposed yet, there's no
346 * risk of deadlocks.
347 *
348 * Annotate this by putting this lock in a different
349 * subclass.
350 */
351 down_write_nested(&s->s_umount, SINGLE_DEPTH_NESTING);
352
353 if (security_sb_alloc(s))
354 goto fail;
355
356 for (i = 0; i < SB_FREEZE_LEVELS; i++) {
357 if (__percpu_init_rwsem(&s->s_writers.rw_sem[i],
358 sb_writers_name[i],
359 &type->s_writers_key[i]))
360 goto fail;
361 }
362 s->s_bdi = &noop_backing_dev_info;
363 s->s_flags = flags;
364 if (s->s_user_ns != &init_user_ns)
365 s->s_iflags |= SB_I_NODEV;
366 INIT_HLIST_NODE(&s->s_instances);
367 INIT_HLIST_BL_HEAD(&s->s_roots);
368 spin_lock_init(&s->s_roots_lock);
369 mutex_init(&s->s_sync_lock);
370 INIT_LIST_HEAD(&s->s_inodes);
371 spin_lock_init(&s->s_inode_list_lock);
372 INIT_LIST_HEAD(&s->s_inodes_wb);
373 spin_lock_init(&s->s_inode_wblist_lock);
374 fserror_mount(s);
375
376 refcount_set(&s->s_passive, 1);
377 atomic_set(&s->s_active, 1);
378 mutex_init(&s->s_vfs_rename_mutex);
379 lockdep_set_class(&s->s_vfs_rename_mutex, &type->s_vfs_rename_key);
380 init_rwsem(&s->s_dquot.dqio_sem);
381 s->s_maxbytes = MAX_NON_LFS;
382 s->s_op = &default_op;
383 s->s_time_gran = 1000000000;
384 s->s_time_min = TIME64_MIN;
385 s->s_time_max = TIME64_MAX;
386
387 s->s_shrink = shrinker_alloc(SHRINKER_NUMA_AWARE | SHRINKER_MEMCG_AWARE,
388 "sb-%s", type->name);
389 if (!s->s_shrink)
390 goto fail;
391
392 s->s_shrink->scan_objects = super_cache_scan;
393 s->s_shrink->count_objects = super_cache_count;
394 s->s_shrink->batch = 1024;
395 s->s_shrink->private_data = s;
396
397 if (list_lru_init_memcg(&s->s_dentry_lru, s->s_shrink))
398 goto fail;
399 if (list_lru_init_memcg(&s->s_inode_lru, s->s_shrink))
400 goto fail;
401 s->s_super_dev = super_dev_alloc(0, s);
402 if (!s->s_super_dev)
403 goto fail;
404
405 s->s_min_writeback_pages = MIN_WRITEBACK_PAGES;
406 return s;
407
408 fail:
409 destroy_unused_super(s);
410 return NULL;
411 }
412
413 /* Superblock refcounting */
414
415 /*
416 * Drop a superblock's passive reference. Must be called WITHOUT sb_lock held;
417 * put_super() acquires sb_lock itself when the final reference is dropped.
418 */
put_super(struct super_block * s)419 void put_super(struct super_block *s)
420 {
421 if (refcount_dec_and_test(&s->s_passive)) {
422
423 spin_lock(&sb_lock);
424 list_del_init(&s->s_list);
425 spin_unlock(&sb_lock);
426
427 WARN_ON(s->s_dentry_lru.node);
428 WARN_ON(s->s_inode_lru.node);
429 WARN_ON(s->s_mounts);
430 call_rcu(&s->rcu, destroy_super_rcu);
431 }
432 }
433
434 struct super_dev {
435 dev_t sd_dev;
436 struct super_block *sd_sb;
437 refcount_t sd_ref;
438 struct rhlist_head sd_node;
439 struct rcu_head sd_rcu;
440 };
441
442 static struct rhltable super_dev_table;
443 static const struct rhashtable_params super_dev_params = {
444 .key_len = sizeof(dev_t),
445 .key_offset = offsetof(struct super_dev, sd_dev),
446 .head_offset = offsetof(struct super_dev, sd_node),
447 };
448
super_dev_alloc(dev_t dev,struct super_block * sb)449 static struct super_dev *super_dev_alloc(dev_t dev, struct super_block *sb)
450 {
451 struct super_dev *fsd;
452
453 fsd = kzalloc_obj(*fsd);
454 if (!fsd)
455 return NULL;
456 fsd->sd_dev = dev;
457 fsd->sd_sb = sb;
458 refcount_set(&fsd->sd_ref, 1);
459 return fsd;
460 }
461
super_dev_put(struct super_dev * fsd)462 static void super_dev_put(struct super_dev *fsd)
463 {
464 /* Unlink only once unpinned, so a cursor never resumes from a removed node. */
465 if (fsd && refcount_dec_and_test(&fsd->sd_ref)) {
466 rhltable_remove(&super_dev_table, &fsd->sd_node, super_dev_params);
467 put_super(fsd->sd_sb);
468 kfree_rcu(fsd, sd_rcu);
469 }
470 }
471
super_dev_init(void)472 void __init super_dev_init(void)
473 {
474 if (rhltable_init(&super_dev_table, &super_dev_params))
475 panic("VFS: Cannot initialise super_dev_table\n");
476 }
477
super_dev_insert(struct super_dev * fsd)478 static int super_dev_insert(struct super_dev *fsd)
479 {
480 int err;
481
482 err = rhltable_insert(&super_dev_table, &fsd->sd_node, super_dev_params);
483 if (!err)
484 refcount_inc(&fsd->sd_sb->s_passive);
485 return err;
486 }
487
488 /* Register @sb under @sb->s_dev as the final fallible act of a set callback. */
super_dev_register(struct super_block * sb)489 static int super_dev_register(struct super_block *sb)
490 {
491 struct super_dev *fsd = sb->s_super_dev;
492 int err;
493
494 lockdep_assert_held(&sb_lock);
495 VFS_WARN_ON_ONCE(!sb->s_dev);
496 VFS_WARN_ON_ONCE(!fsd || fsd->sd_dev);
497
498 fsd->sd_dev = sb->s_dev;
499 err = super_dev_insert(fsd);
500 if (err)
501 fsd->sd_dev = 0;
502 return err;
503 }
504
super_dev_get(struct rhlist_head * pos)505 static struct super_dev *super_dev_get(struct rhlist_head *pos)
506 {
507 struct super_dev *sb_dev;
508
509 for (; pos; pos = rcu_dereference_all(pos->next)) {
510 sb_dev = container_of(pos, struct super_dev, sd_node);
511 if (refcount_inc_not_zero(&sb_dev->sd_ref))
512 return sb_dev;
513 }
514 return NULL;
515 }
516
super_dev_first(dev_t dev)517 static struct super_dev *super_dev_first(dev_t dev)
518 {
519 struct super_dev *sb_dev;
520
521 rcu_read_lock();
522 sb_dev = super_dev_get(rhltable_lookup(&super_dev_table, &dev, super_dev_params));
523 rcu_read_unlock();
524 return sb_dev;
525 }
526
super_dev_next(struct super_dev * prev)527 static struct super_dev *super_dev_next(struct super_dev *prev)
528 {
529 struct super_dev *sb_dev;
530
531 rcu_read_lock();
532 sb_dev = super_dev_get(rcu_dereference_all(prev->sd_node.next));
533 rcu_read_unlock();
534
535 super_dev_put(prev);
536 return sb_dev;
537 }
538
kill_super_notify(struct super_block * sb)539 static void kill_super_notify(struct super_block *sb)
540 {
541 lockdep_assert_not_held(&sb->s_umount);
542
543 /* already notified earlier */
544 if (sb->s_flags & SB_DEAD)
545 return;
546
547 /*
548 * Remove it from @fs_supers so it isn't found by new
549 * sget_fc() walkers anymore. Any concurrent mounter still
550 * managing to grab a temporary reference is guaranteed to
551 * already see SB_DYING and will wait until we notify them about
552 * SB_DEAD.
553 */
554 spin_lock(&sb_lock);
555 hlist_del_init(&sb->s_instances);
556 spin_unlock(&sb_lock);
557
558 /* Drop sget_fc()'s claim; a never-registered entry stays with the sb. */
559 if (sb->s_super_dev->sd_dev) {
560 super_dev_put(sb->s_super_dev);
561 sb->s_super_dev = NULL;
562 }
563
564 /*
565 * Let concurrent mounts know that this thing is really dead.
566 * We don't need @sb->s_umount here as every concurrent caller
567 * will see SB_DYING and either discard the superblock or wait
568 * for SB_DEAD.
569 */
570 super_wake(sb, SB_DEAD);
571 }
572
573 /**
574 * deactivate_locked_super - drop an active reference to superblock
575 * @s: superblock to deactivate
576 *
577 * Drops an active reference to superblock, converting it into a temporary
578 * one if there is no other active references left. In that case we
579 * tell fs driver to shut it down and drop the temporary reference we
580 * had just acquired.
581 *
582 * Caller holds exclusive lock on superblock; that lock is released.
583 */
deactivate_locked_super(struct super_block * s)584 void deactivate_locked_super(struct super_block *s)
585 {
586 struct file_system_type *fs = s->s_type;
587 if (atomic_dec_and_test(&s->s_active)) {
588 shrinker_free(s->s_shrink);
589 fs->kill_sb(s);
590
591 kill_super_notify(s);
592
593 /* list_lru_destroy() may sleep; put_super() callers may not. */
594 list_lru_destroy(&s->s_dentry_lru);
595 list_lru_destroy(&s->s_inode_lru);
596
597 put_filesystem(fs);
598 put_super(s);
599 } else {
600 super_unlock_excl(s);
601 }
602 }
603
604 EXPORT_SYMBOL(deactivate_locked_super);
605
606 /**
607 * deactivate_super - drop an active reference to superblock
608 * @s: superblock to deactivate
609 *
610 * Variant of deactivate_locked_super(), except that superblock is *not*
611 * locked by caller. If we are going to drop the final active reference,
612 * lock will be acquired prior to that.
613 */
deactivate_super(struct super_block * s)614 void deactivate_super(struct super_block *s)
615 {
616 if (!atomic_add_unless(&s->s_active, -1, 1)) {
617 __super_lock_excl(s);
618 deactivate_locked_super(s);
619 }
620 }
621
622 EXPORT_SYMBOL(deactivate_super);
623
624 /**
625 * grab_super - acquire an active reference to a superblock
626 * @sb: superblock to acquire
627 *
628 * Acquire a temporary reference on a superblock and try to trade it for
629 * an active reference. This is used in sget_fc() to wait for a
630 * superblock to either become SB_BORN or for it to pass through
631 * sb->kill() and be marked as SB_DEAD.
632 *
633 * Return: This returns true if an active reference could be acquired,
634 * false if not.
635 */
grab_super(struct super_block * sb)636 static bool grab_super(struct super_block *sb)
637 {
638 bool locked;
639
640 refcount_inc(&sb->s_passive);
641 spin_unlock(&sb_lock);
642 locked = super_lock_excl(sb);
643 if (locked) {
644 if (atomic_inc_not_zero(&sb->s_active)) {
645 put_super(sb);
646 return true;
647 }
648 super_unlock_excl(sb);
649 }
650 wait_var_event(&sb->s_flags, super_flags(sb, SB_DEAD));
651 put_super(sb);
652 return false;
653 }
654
655 /*
656 * super_trylock_shared - try to grab ->s_umount shared
657 * @sb: reference we are trying to grab
658 *
659 * Try to prevent fs shutdown. This is used in places where we
660 * cannot take an active reference but we need to ensure that the
661 * filesystem is not shut down while we are working on it. It returns
662 * false if we cannot acquire s_umount or if we lose the race and
663 * filesystem already got into shutdown, and returns true with the s_umount
664 * lock held in read mode in case of success. On successful return,
665 * the caller must drop the s_umount lock when done.
666 *
667 * Note that unlike get_super() et.al. this one does *not* bump ->s_passive.
668 * The reason why it's safe is that we are OK with doing trylock instead
669 * of down_read(). There's a couple of places that are OK with that, but
670 * it's very much not a general-purpose interface.
671 */
super_trylock_shared(struct super_block * sb)672 bool super_trylock_shared(struct super_block *sb)
673 {
674 if (down_read_trylock(&sb->s_umount)) {
675 if (!(sb->s_flags & SB_DYING) && sb->s_root &&
676 (sb->s_flags & SB_BORN))
677 return true;
678 super_unlock_shared(sb);
679 }
680
681 return false;
682 }
683
684 /**
685 * retire_super - prevents superblock from being reused
686 * @sb: superblock to retire
687 *
688 * The function marks superblock to be ignored in superblock test, which
689 * prevents it from being reused for any new mounts. If the superblock has
690 * a private bdi, it also unregisters it, but doesn't reduce the refcount
691 * of the superblock to prevent potential races. The refcount is reduced
692 * by generic_shutdown_super(). The function can not be called
693 * concurrently with generic_shutdown_super(). It is safe to call the
694 * function multiple times, subsequent calls have no effect.
695 *
696 * The marker will affect the re-use only for block-device-based
697 * superblocks. Other superblocks will still get marked if this function
698 * is used, but that will not affect their reusability.
699 */
retire_super(struct super_block * sb)700 void retire_super(struct super_block *sb)
701 {
702 WARN_ON(!sb->s_bdev);
703 __super_lock_excl(sb);
704 if (sb->s_iflags & SB_I_PERSB_BDI) {
705 bdi_unregister(sb->s_bdi);
706 sb->s_iflags &= ~SB_I_PERSB_BDI;
707 }
708 sb->s_iflags |= SB_I_RETIRED;
709 super_unlock_excl(sb);
710 }
711 EXPORT_SYMBOL(retire_super);
712
713 /**
714 * generic_shutdown_super - common helper for ->kill_sb()
715 * @sb: superblock to kill
716 *
717 * generic_shutdown_super() does all fs-independent work on superblock
718 * shutdown. Typical ->kill_sb() should pick all fs-specific objects
719 * that need destruction out of superblock, call generic_shutdown_super()
720 * and release aforementioned objects. Note: dentries and inodes _are_
721 * taken care of and do not need specific handling.
722 *
723 * Upon calling this function, the filesystem may no longer alter or
724 * rearrange the set of dentries belonging to this super_block, nor may it
725 * change the attachments of dentries to inodes.
726 */
generic_shutdown_super(struct super_block * sb)727 void generic_shutdown_super(struct super_block *sb)
728 {
729 const struct super_operations *sop = sb->s_op;
730
731 if (sb->s_root) {
732 fsnotify_sb_delete(sb);
733 shrink_dcache_for_umount(sb);
734 sync_filesystem(sb);
735 sb->s_flags &= ~SB_ACTIVE;
736
737 fserror_unmount(sb);
738 cgroup_writeback_umount(sb);
739
740 /* Evict all inodes with zero refcount. */
741 evict_inodes(sb);
742
743 /*
744 * Clean up and evict any inodes that still have references due
745 * to the security policy.
746 */
747 security_sb_delete(sb);
748
749 if (sb->s_dio_done_wq) {
750 destroy_workqueue(sb->s_dio_done_wq);
751 sb->s_dio_done_wq = NULL;
752 }
753
754 if (sop->put_super)
755 sop->put_super(sb);
756
757 /*
758 * Now that all potentially-encrypted inodes have been evicted,
759 * the fscrypt keyring can be destroyed.
760 */
761 fscrypt_destroy_keyring(sb);
762
763 if (CHECK_DATA_CORRUPTION(!list_empty(&sb->s_inodes), NULL,
764 "VFS: Busy inodes after unmount of %s (%s)",
765 sb->s_id, sb->s_type->name)) {
766 /*
767 * Adding a proper bailout path here would be hard, but
768 * we can at least make it more likely that a later
769 * iput_final() or such crashes cleanly.
770 */
771 struct inode *inode;
772
773 spin_lock(&sb->s_inode_list_lock);
774 list_for_each_entry(inode, &sb->s_inodes, i_sb_list) {
775 inode->i_op = VFS_PTR_POISON;
776 inode->i_sb = VFS_PTR_POISON;
777 inode->i_mapping = VFS_PTR_POISON;
778 }
779 spin_unlock(&sb->s_inode_list_lock);
780 }
781 }
782 /*
783 * Broadcast to everyone that grabbed a temporary reference to this
784 * superblock before we removed it from @fs_supers that the superblock
785 * is dying. Every walker of @fs_supers outside of sget_fc() will now
786 * discard this superblock and treat it as dead.
787 *
788 * We leave the superblock on @fs_supers so it can be found by
789 * sget_fc() until we passed sb->kill_sb().
790 */
791 super_wake(sb, SB_DYING);
792 super_unlock_excl(sb);
793 if (sb->s_bdi != &noop_backing_dev_info) {
794 if (sb->s_iflags & SB_I_PERSB_BDI)
795 bdi_unregister(sb->s_bdi);
796 bdi_put(sb->s_bdi);
797 sb->s_bdi = &noop_backing_dev_info;
798 }
799 }
800
801 EXPORT_SYMBOL(generic_shutdown_super);
802
mount_capable(struct fs_context * fc)803 bool mount_capable(struct fs_context *fc)
804 {
805 if (!(fc->fs_type->fs_flags & FS_USERNS_MOUNT))
806 return capable(CAP_SYS_ADMIN);
807 else
808 return ns_capable(fc->user_ns, CAP_SYS_ADMIN);
809 }
810
811 /**
812 * sget_fc - Find or create a superblock
813 * @fc: Filesystem context.
814 * @test: Comparison callback
815 * @set: Setup callback
816 *
817 * Create a new superblock or find an existing one.
818 *
819 * The @test callback is used to find a matching existing superblock.
820 * Whether or not the requested parameters in @fc are taken into account
821 * is specific to the @test callback that is used. They may even be
822 * completely ignored.
823 *
824 * If an extant superblock is matched, it will be returned unless:
825 *
826 * (1) the namespace the filesystem context @fc and the extant
827 * superblock's namespace differ
828 *
829 * (2) the filesystem context @fc has requested that reusing an extant
830 * superblock is not allowed
831 *
832 * In both cases EBUSY will be returned.
833 *
834 * If no match is made, a new superblock will be allocated and basic
835 * initialisation will be performed (s_type, s_fs_info and s_id will be
836 * set and the @set callback will be invoked), the superblock will be
837 * published and it will be returned in a partially constructed state
838 * with SB_BORN and SB_ACTIVE as yet unset.
839 *
840 * Return: On success, an extant or newly created superblock is
841 * returned. On failure an error pointer is returned.
842 */
sget_fc(struct fs_context * fc,int (* test)(struct super_block *,struct fs_context *),int (* set)(struct super_block *,struct fs_context *))843 struct super_block *sget_fc(struct fs_context *fc,
844 int (*test)(struct super_block *, struct fs_context *),
845 int (*set)(struct super_block *, struct fs_context *))
846 {
847 struct super_block *s = NULL;
848 struct super_block *old;
849 struct user_namespace *user_ns = fc->global ? &init_user_ns : fc->user_ns;
850 int err;
851
852 /*
853 * Never allow s_user_ns != &init_user_ns when FS_USERNS_MOUNT or
854 * FS_USERNS_DELEGATABLE is not set, as the filesystem is likely
855 * unprepared to handle it. This can happen when fsconfig() is called
856 * from init_user_ns with an fs_fd opened in another user namespace.
857 */
858 if (user_ns != &init_user_ns &&
859 !(fc->fs_type->fs_flags & (FS_USERNS_MOUNT | FS_USERNS_DELEGATABLE))) {
860 errorfc(fc, "VFS: Mounting from non-initial user namespace is not allowed");
861 return ERR_PTR(-EPERM);
862 }
863
864 retry:
865 spin_lock(&sb_lock);
866 if (test) {
867 hlist_for_each_entry(old, &fc->fs_type->fs_supers, s_instances) {
868 if (test(old, fc))
869 goto share_extant_sb;
870 }
871 }
872 if (!s) {
873 spin_unlock(&sb_lock);
874
875 s = alloc_super(fc->fs_type, fc->sb_flags, user_ns);
876 if (!s)
877 return ERR_PTR(-ENOMEM);
878 goto retry;
879 }
880
881 s->s_fs_info = fc->s_fs_info;
882 err = set(s, fc);
883 if (err) {
884 VFS_WARN_ON_ONCE(s->s_super_dev->sd_dev);
885 s->s_fs_info = NULL;
886 spin_unlock(&sb_lock);
887 destroy_unused_super(s);
888 return ERR_PTR(err);
889 }
890 VFS_WARN_ON_ONCE(!s->s_super_dev->sd_dev);
891 fc->s_fs_info = NULL;
892 s->s_type = fc->fs_type;
893 s->s_iflags |= fc->s_iflags;
894 strscpy(s->s_id, s->s_type->name, sizeof(s->s_id));
895 /*
896 * Make the superblock visible on @super_blocks and @fs_supers.
897 * It's in a nascent state and users should wait on SB_BORN or
898 * SB_DYING to be set.
899 */
900 list_add_tail(&s->s_list, &super_blocks);
901 hlist_add_head(&s->s_instances, &s->s_type->fs_supers);
902 spin_unlock(&sb_lock);
903 get_filesystem(s->s_type);
904 shrinker_register(s->s_shrink);
905 return s;
906
907 share_extant_sb:
908 if (user_ns != old->s_user_ns || fc->exclusive) {
909 spin_unlock(&sb_lock);
910 destroy_unused_super(s);
911 if (fc->exclusive)
912 warnfc(fc, "reusing existing filesystem not allowed");
913 else
914 warnfc(fc, "reusing existing filesystem in another namespace not allowed");
915 return ERR_PTR(-EBUSY);
916 }
917 if (!grab_super(old))
918 goto retry;
919 destroy_unused_super(s);
920 return old;
921 }
922 EXPORT_SYMBOL(sget_fc);
923
drop_super(struct super_block * sb)924 void drop_super(struct super_block *sb)
925 {
926 super_unlock_shared(sb);
927 put_super(sb);
928 }
929
930 EXPORT_SYMBOL(drop_super);
931
drop_super_exclusive(struct super_block * sb)932 void drop_super_exclusive(struct super_block *sb)
933 {
934 super_unlock_excl(sb);
935 put_super(sb);
936 }
937
938 enum super_iter_flags_t {
939 SUPER_ITER_EXCL = (1U << 0),
940 SUPER_ITER_UNLOCKED = (1U << 1),
941 SUPER_ITER_REVERSE = (1U << 2),
942 };
943
first_super(enum super_iter_flags_t flags)944 static inline struct super_block *first_super(enum super_iter_flags_t flags)
945 {
946 if (flags & SUPER_ITER_REVERSE)
947 return list_last_entry(&super_blocks, struct super_block, s_list);
948 return list_first_entry(&super_blocks, struct super_block, s_list);
949 }
950
next_super(struct super_block * sb,enum super_iter_flags_t flags)951 static inline struct super_block *next_super(struct super_block *sb,
952 enum super_iter_flags_t flags)
953 {
954 if (flags & SUPER_ITER_REVERSE)
955 return list_prev_entry(sb, s_list);
956 return list_next_entry(sb, s_list);
957 }
958
__iterate_supers(void (* f)(struct super_block *,void *),void * arg,enum super_iter_flags_t flags)959 static void __iterate_supers(void (*f)(struct super_block *, void *), void *arg,
960 enum super_iter_flags_t flags)
961 {
962 struct super_block *sb, *p = NULL;
963 bool excl = flags & SUPER_ITER_EXCL;
964
965 spin_lock(&sb_lock);
966
967 for (sb = first_super(flags);
968 !list_entry_is_head(sb, &super_blocks, s_list);
969 sb = next_super(sb, flags)) {
970 if (super_flags(sb, SB_DYING))
971 continue;
972
973 if (!refcount_inc_not_zero(&sb->s_passive))
974 continue;
975
976 spin_unlock(&sb_lock);
977
978 if (flags & SUPER_ITER_UNLOCKED) {
979 f(sb, arg);
980 } else if (super_lock(sb, excl)) {
981 f(sb, arg);
982 super_unlock(sb, excl);
983 }
984
985 if (p)
986 put_super(p);
987 p = sb;
988 spin_lock(&sb_lock);
989 }
990 spin_unlock(&sb_lock);
991 if (p)
992 put_super(p);
993 }
994
iterate_supers(void (* f)(struct super_block *,void *),void * arg)995 void iterate_supers(void (*f)(struct super_block *, void *), void *arg)
996 {
997 __iterate_supers(f, arg, 0);
998 }
999
1000 /**
1001 * iterate_supers_type - call function for superblocks of given type
1002 * @type: fs type
1003 * @f: function to call
1004 * @arg: argument to pass to it
1005 *
1006 * Scans the superblock list and calls given function, passing it
1007 * locked superblock and given argument.
1008 */
iterate_supers_type(struct file_system_type * type,void (* f)(struct super_block *,void *),void * arg)1009 void iterate_supers_type(struct file_system_type *type,
1010 void (*f)(struct super_block *, void *), void *arg)
1011 {
1012 struct super_block *sb, *p = NULL;
1013
1014 spin_lock(&sb_lock);
1015 hlist_for_each_entry(sb, &type->fs_supers, s_instances) {
1016 bool locked;
1017
1018 if (super_flags(sb, SB_DYING))
1019 continue;
1020
1021 if (!refcount_inc_not_zero(&sb->s_passive))
1022 continue;
1023
1024 spin_unlock(&sb_lock);
1025
1026 locked = super_lock_shared(sb);
1027 if (locked) {
1028 f(sb, arg);
1029 super_unlock_shared(sb);
1030 }
1031
1032 if (p)
1033 put_super(p);
1034 p = sb;
1035 spin_lock(&sb_lock);
1036 }
1037 spin_unlock(&sb_lock);
1038 if (p)
1039 put_super(p);
1040 }
1041
1042 EXPORT_SYMBOL(iterate_supers_type);
1043
user_get_super(dev_t dev,bool excl)1044 struct super_block *user_get_super(dev_t dev, bool excl)
1045 {
1046 struct super_dev *sb_dev;
1047
1048 for (sb_dev = super_dev_first(dev); sb_dev; sb_dev = super_dev_next(sb_dev)) {
1049 struct super_block *sb = sb_dev->sd_sb;
1050
1051 if (!super_lock(sb, excl))
1052 continue;
1053
1054 /* The pinned entry holds a passive reference, take our own. */
1055 refcount_inc(&sb->s_passive);
1056 super_dev_put(sb_dev);
1057 return sb;
1058 }
1059 return NULL;
1060 }
1061
1062 /**
1063 * reconfigure_super - asks filesystem to change superblock parameters
1064 * @fc: The superblock and configuration
1065 *
1066 * Alters the configuration parameters of a live superblock.
1067 */
reconfigure_super(struct fs_context * fc)1068 int reconfigure_super(struct fs_context *fc)
1069 {
1070 struct super_block *sb = fc->root->d_sb;
1071 int retval;
1072 bool remount_ro = false;
1073 bool remount_rw = false;
1074 bool force = fc->sb_flags & SB_FORCE;
1075
1076 if (fc->sb_flags_mask & ~MS_RMT_MASK)
1077 return -EINVAL;
1078 if (sb->s_writers.frozen != SB_UNFROZEN)
1079 return -EBUSY;
1080
1081 retval = security_sb_remount(sb, fc->security);
1082 if (retval)
1083 return retval;
1084
1085 if (fc->sb_flags_mask & SB_RDONLY) {
1086 #ifdef CONFIG_BLOCK
1087 if (!(fc->sb_flags & SB_RDONLY) && sb->s_bdev &&
1088 bdev_read_only(sb->s_bdev))
1089 return -EACCES;
1090 #endif
1091 remount_rw = !(fc->sb_flags & SB_RDONLY) && sb_rdonly(sb);
1092 remount_ro = (fc->sb_flags & SB_RDONLY) && !sb_rdonly(sb);
1093 }
1094
1095 if (remount_ro) {
1096 if (!hlist_empty(&sb->s_pins)) {
1097 super_unlock_excl(sb);
1098 group_pin_kill(&sb->s_pins);
1099 __super_lock_excl(sb);
1100 if (!sb->s_root)
1101 return 0;
1102 if (sb->s_writers.frozen != SB_UNFROZEN)
1103 return -EBUSY;
1104 remount_ro = !sb_rdonly(sb);
1105 }
1106 }
1107 shrink_dcache_sb(sb);
1108
1109 /* If we are reconfiguring to RDONLY and current sb is read/write,
1110 * make sure there are no files open for writing.
1111 */
1112 if (remount_ro) {
1113 if (force) {
1114 sb_start_ro_state_change(sb);
1115 } else {
1116 retval = sb_prepare_remount_readonly(sb);
1117 if (retval)
1118 return retval;
1119 }
1120 } else if (remount_rw) {
1121 /*
1122 * Protect filesystem's reconfigure code from writes from
1123 * userspace until reconfigure finishes.
1124 */
1125 sb_start_ro_state_change(sb);
1126 }
1127
1128 if (fc->ops->reconfigure) {
1129 retval = fc->ops->reconfigure(fc);
1130 if (retval) {
1131 if (!force)
1132 goto cancel_readonly;
1133 /* If forced remount, go ahead despite any errors */
1134 WARN(1, "forced remount of a %s fs returned %i\n",
1135 sb->s_type->name, retval);
1136 }
1137 }
1138
1139 WRITE_ONCE(sb->s_flags, ((sb->s_flags & ~fc->sb_flags_mask) |
1140 (fc->sb_flags & fc->sb_flags_mask)));
1141 sb_end_ro_state_change(sb);
1142
1143 /*
1144 * Some filesystems modify their metadata via some other path than the
1145 * bdev buffer cache (eg. use a private mapping, or directories in
1146 * pagecache, etc). Also file data modifications go via their own
1147 * mappings. So If we try to mount readonly then copy the filesystem
1148 * from bdev, we could get stale data, so invalidate it to give a best
1149 * effort at coherency.
1150 */
1151 if (remount_ro && sb->s_bdev)
1152 invalidate_bdev(sb->s_bdev);
1153 return 0;
1154
1155 cancel_readonly:
1156 sb_end_ro_state_change(sb);
1157 return retval;
1158 }
1159
do_emergency_remount_callback(struct super_block * sb,void * unused)1160 static void do_emergency_remount_callback(struct super_block *sb, void *unused)
1161 {
1162 if (sb->s_bdev && !sb_rdonly(sb)) {
1163 struct fs_context *fc;
1164
1165 fc = fs_context_for_reconfigure(sb->s_root,
1166 SB_RDONLY | SB_FORCE, SB_RDONLY);
1167 if (!IS_ERR(fc)) {
1168 if (parse_monolithic_mount_data(fc, NULL) == 0)
1169 (void)reconfigure_super(fc);
1170 put_fs_context(fc);
1171 }
1172 }
1173 }
1174
do_emergency_remount(struct work_struct * work)1175 static void do_emergency_remount(struct work_struct *work)
1176 {
1177 __iterate_supers(do_emergency_remount_callback, NULL,
1178 SUPER_ITER_EXCL | SUPER_ITER_REVERSE);
1179 kfree(work);
1180 printk("Emergency Remount complete\n");
1181 }
1182
emergency_remount(void)1183 void emergency_remount(void)
1184 {
1185 struct work_struct *work;
1186
1187 work = kmalloc_obj(*work, GFP_ATOMIC);
1188 if (work) {
1189 INIT_WORK(work, do_emergency_remount);
1190 schedule_work(work);
1191 }
1192 }
1193
get_active_super(struct super_block * sb)1194 static inline bool get_active_super(struct super_block *sb)
1195 {
1196 bool active = false;
1197
1198 if (super_lock_excl(sb)) {
1199 active = atomic_inc_not_zero(&sb->s_active);
1200 super_unlock_excl(sb);
1201 }
1202 return active;
1203 }
1204
do_thaw_all_callback(struct super_block * sb,void * unused)1205 static void do_thaw_all_callback(struct super_block *sb, void *unused)
1206 {
1207 if (!get_active_super(sb))
1208 return;
1209
1210 /* fs_bdev_thaw() acquires s_umount so it must not be held here */
1211 if (IS_ENABLED(CONFIG_BLOCK))
1212 while (sb->s_bdev && !bdev_thaw(sb->s_bdev))
1213 pr_warn("Emergency Thaw on %pg\n", sb->s_bdev);
1214
1215 if (super_lock_excl(sb))
1216 thaw_super_locked(sb, FREEZE_HOLDER_USERSPACE, NULL);
1217 deactivate_super(sb);
1218 }
1219
do_thaw_all(struct work_struct * work)1220 static void do_thaw_all(struct work_struct *work)
1221 {
1222 __iterate_supers(do_thaw_all_callback, NULL, SUPER_ITER_UNLOCKED);
1223 kfree(work);
1224 printk(KERN_WARNING "Emergency Thaw complete\n");
1225 }
1226
1227 /**
1228 * emergency_thaw_all -- forcibly thaw every frozen filesystem
1229 *
1230 * Used for emergency unfreeze of all filesystems via SysRq
1231 */
emergency_thaw_all(void)1232 void emergency_thaw_all(void)
1233 {
1234 struct work_struct *work;
1235
1236 work = kmalloc_obj(*work, GFP_ATOMIC);
1237 if (work) {
1238 INIT_WORK(work, do_thaw_all);
1239 schedule_work(work);
1240 }
1241 }
1242
1243 static const char *filesystems_freeze_ptr = "filesystems_freeze";
1244
filesystems_freeze_callback(struct super_block * sb,void * freeze_all_ptr)1245 static void filesystems_freeze_callback(struct super_block *sb, void *freeze_all_ptr)
1246 {
1247 if (!sb->s_op->freeze_fs && !sb->s_op->freeze_super)
1248 return;
1249
1250 if (!freeze_all_ptr && !(sb->s_type->fs_flags & FS_POWER_FREEZE))
1251 return;
1252
1253 if (!get_active_super(sb))
1254 return;
1255
1256 if (sb->s_op->freeze_super)
1257 sb->s_op->freeze_super(sb, FREEZE_EXCL | FREEZE_HOLDER_KERNEL,
1258 filesystems_freeze_ptr);
1259 else
1260 freeze_super(sb, FREEZE_EXCL | FREEZE_HOLDER_KERNEL,
1261 filesystems_freeze_ptr);
1262
1263 deactivate_super(sb);
1264 }
1265
filesystems_freeze(bool freeze_all)1266 void filesystems_freeze(bool freeze_all)
1267 {
1268 void *freeze_all_ptr = NULL;
1269
1270 if (freeze_all)
1271 freeze_all_ptr = &freeze_all;
1272 __iterate_supers(filesystems_freeze_callback, freeze_all_ptr,
1273 SUPER_ITER_UNLOCKED | SUPER_ITER_REVERSE);
1274 }
1275
filesystems_thaw_callback(struct super_block * sb,void * unused)1276 static void filesystems_thaw_callback(struct super_block *sb, void *unused)
1277 {
1278 if (!sb->s_op->freeze_fs && !sb->s_op->freeze_super)
1279 return;
1280
1281 if (!get_active_super(sb))
1282 return;
1283
1284 if (sb->s_op->thaw_super)
1285 sb->s_op->thaw_super(sb, FREEZE_EXCL | FREEZE_HOLDER_KERNEL,
1286 filesystems_freeze_ptr);
1287 else
1288 thaw_super(sb, FREEZE_EXCL | FREEZE_HOLDER_KERNEL,
1289 filesystems_freeze_ptr);
1290
1291 deactivate_super(sb);
1292 }
1293
filesystems_thaw(void)1294 void filesystems_thaw(void)
1295 {
1296 __iterate_supers(filesystems_thaw_callback, NULL, SUPER_ITER_UNLOCKED);
1297 }
1298
1299 static DEFINE_IDA(unnamed_dev_ida);
1300
1301 /**
1302 * get_anon_bdev - Allocate a block device for filesystems which don't have one.
1303 * @p: Pointer to a dev_t.
1304 *
1305 * Filesystems which don't use real block devices can call this function
1306 * to allocate a virtual block device.
1307 *
1308 * Context: Any context. Frequently called while holding sb_lock.
1309 * Return: 0 on success, -EMFILE if there are no anonymous bdevs left
1310 * or -ENOMEM if memory allocation failed.
1311 */
get_anon_bdev(dev_t * p)1312 int get_anon_bdev(dev_t *p)
1313 {
1314 int dev;
1315
1316 /*
1317 * Many userspace utilities consider an FSID of 0 invalid.
1318 * Always return at least 1 from get_anon_bdev.
1319 */
1320 dev = ida_alloc_range(&unnamed_dev_ida, 1, (1 << MINORBITS) - 1,
1321 GFP_ATOMIC);
1322 if (dev == -ENOSPC)
1323 dev = -EMFILE;
1324 if (dev < 0)
1325 return dev;
1326
1327 *p = MKDEV(0, dev);
1328 return 0;
1329 }
1330 EXPORT_SYMBOL(get_anon_bdev);
1331
free_anon_bdev(dev_t dev)1332 void free_anon_bdev(dev_t dev)
1333 {
1334 ida_free(&unnamed_dev_ida, MINOR(dev));
1335 }
1336 EXPORT_SYMBOL(free_anon_bdev);
1337
set_anon_super(struct super_block * s,void * data)1338 int set_anon_super(struct super_block *s, void *data)
1339 {
1340 int error;
1341
1342 error = get_anon_bdev(&s->s_dev);
1343 if (error)
1344 return error;
1345
1346 error = super_dev_register(s);
1347 if (error)
1348 free_anon_bdev(s->s_dev);
1349 return error;
1350 }
1351 EXPORT_SYMBOL(set_anon_super);
1352
kill_anon_super(struct super_block * sb)1353 void kill_anon_super(struct super_block *sb)
1354 {
1355 dev_t dev = sb->s_dev;
1356 generic_shutdown_super(sb);
1357 kill_super_notify(sb);
1358 free_anon_bdev(dev);
1359 }
1360 EXPORT_SYMBOL(kill_anon_super);
1361
set_anon_super_fc(struct super_block * sb,struct fs_context * fc)1362 int set_anon_super_fc(struct super_block *sb, struct fs_context *fc)
1363 {
1364 return set_anon_super(sb, NULL);
1365 }
1366 EXPORT_SYMBOL(set_anon_super_fc);
1367
test_keyed_super(struct super_block * sb,struct fs_context * fc)1368 static int test_keyed_super(struct super_block *sb, struct fs_context *fc)
1369 {
1370 return sb->s_fs_info == fc->s_fs_info;
1371 }
1372
test_single_super(struct super_block * s,struct fs_context * fc)1373 static int test_single_super(struct super_block *s, struct fs_context *fc)
1374 {
1375 return 1;
1376 }
1377
vfs_get_super(struct fs_context * fc,int (* test)(struct super_block *,struct fs_context *),int (* fill_super)(struct super_block * sb,struct fs_context * fc))1378 static int vfs_get_super(struct fs_context *fc,
1379 int (*test)(struct super_block *, struct fs_context *),
1380 int (*fill_super)(struct super_block *sb,
1381 struct fs_context *fc))
1382 {
1383 struct super_block *sb;
1384 int err;
1385
1386 sb = sget_fc(fc, test, set_anon_super_fc);
1387 if (IS_ERR(sb))
1388 return PTR_ERR(sb);
1389
1390 if (!sb->s_root) {
1391 err = fill_super(sb, fc);
1392 if (err)
1393 goto error;
1394
1395 sb->s_flags |= SB_ACTIVE;
1396 }
1397
1398 fc->root = dget(sb->s_root);
1399 return 0;
1400
1401 error:
1402 deactivate_locked_super(sb);
1403 return err;
1404 }
1405
get_tree_nodev(struct fs_context * fc,int (* fill_super)(struct super_block * sb,struct fs_context * fc))1406 int get_tree_nodev(struct fs_context *fc,
1407 int (*fill_super)(struct super_block *sb,
1408 struct fs_context *fc))
1409 {
1410 return vfs_get_super(fc, NULL, fill_super);
1411 }
1412 EXPORT_SYMBOL(get_tree_nodev);
1413
get_tree_single(struct fs_context * fc,int (* fill_super)(struct super_block * sb,struct fs_context * fc))1414 int get_tree_single(struct fs_context *fc,
1415 int (*fill_super)(struct super_block *sb,
1416 struct fs_context *fc))
1417 {
1418 return vfs_get_super(fc, test_single_super, fill_super);
1419 }
1420 EXPORT_SYMBOL(get_tree_single);
1421
get_tree_keyed(struct fs_context * fc,int (* fill_super)(struct super_block * sb,struct fs_context * fc),void * key)1422 int get_tree_keyed(struct fs_context *fc,
1423 int (*fill_super)(struct super_block *sb,
1424 struct fs_context *fc),
1425 void *key)
1426 {
1427 fc->s_fs_info = key;
1428 return vfs_get_super(fc, test_keyed_super, fill_super);
1429 }
1430 EXPORT_SYMBOL(get_tree_keyed);
1431
set_bdev_super(struct super_block * s,void * data)1432 static int set_bdev_super(struct super_block *s, void *data)
1433 {
1434 s->s_dev = *(dev_t *)data;
1435 return super_dev_register(s);
1436 }
1437
super_s_dev_set(struct super_block * s,struct fs_context * fc)1438 static int super_s_dev_set(struct super_block *s, struct fs_context *fc)
1439 {
1440 return set_bdev_super(s, fc->sget_key);
1441 }
1442
super_s_dev_test(struct super_block * s,struct fs_context * fc)1443 static int super_s_dev_test(struct super_block *s, struct fs_context *fc)
1444 {
1445 return !(s->s_iflags & SB_I_RETIRED) &&
1446 s->s_dev == *(dev_t *)fc->sget_key;
1447 }
1448
1449 /**
1450 * sget_dev - Find or create a superblock by device number
1451 * @fc: Filesystem context.
1452 * @dev: device number
1453 *
1454 * Find or create a superblock using the provided device number that
1455 * will be stored in fc->sget_key.
1456 *
1457 * If an extant superblock is matched, then that will be returned with
1458 * an elevated reference count that the caller must transfer or discard.
1459 *
1460 * If no match is made, a new superblock will be allocated and basic
1461 * initialisation will be performed (s_type, s_fs_info, s_id, s_dev will
1462 * be set). The superblock will be published and it will be returned in
1463 * a partially constructed state with SB_BORN and SB_ACTIVE as yet
1464 * unset.
1465 *
1466 * Return: an existing or newly created superblock on success, an error
1467 * pointer on failure.
1468 */
sget_dev(struct fs_context * fc,dev_t dev)1469 struct super_block *sget_dev(struct fs_context *fc, dev_t dev)
1470 {
1471 fc->sget_key = &dev;
1472 return sget_fc(fc, super_s_dev_test, super_s_dev_set);
1473 }
1474 EXPORT_SYMBOL(sget_dev);
1475
1476 #ifdef CONFIG_BLOCK
fs_super_freeze(struct super_block * sb)1477 static int fs_super_freeze(struct super_block *sb)
1478 {
1479 if (sb->s_op->freeze_super)
1480 return sb->s_op->freeze_super(sb,
1481 FREEZE_MAY_NEST | FREEZE_HOLDER_USERSPACE, NULL);
1482 return freeze_super(sb, FREEZE_MAY_NEST | FREEZE_HOLDER_USERSPACE, NULL);
1483 }
1484
fs_super_thaw(struct super_block * sb)1485 static int fs_super_thaw(struct super_block *sb)
1486 {
1487 if (sb->s_op->thaw_super)
1488 return sb->s_op->thaw_super(sb,
1489 FREEZE_MAY_NEST | FREEZE_HOLDER_USERSPACE, NULL);
1490 return thaw_super(sb, FREEZE_MAY_NEST | FREEZE_HOLDER_USERSPACE, NULL);
1491 }
1492
fs_bdev_mark_dead(struct block_device * bdev,bool surprise)1493 static void fs_bdev_mark_dead(struct block_device *bdev, bool surprise)
1494 {
1495 struct super_dev *sb_dev;
1496 dev_t dev = bdev->bd_dev;
1497
1498 mutex_unlock(&bdev->bd_holder_lock);
1499
1500 for (sb_dev = super_dev_first(dev); sb_dev; sb_dev = super_dev_next(sb_dev)) {
1501 struct super_block *sb = sb_dev->sd_sb;
1502
1503 if (!super_lock_shared(sb))
1504 continue;
1505 if (sb->s_root && (sb->s_flags & SB_ACTIVE)) {
1506 if (!sb->s_op->remove_bdev ||
1507 sb->s_op->remove_bdev(sb, bdev)) {
1508 if (!surprise)
1509 sync_filesystem(sb);
1510 shrink_dcache_sb(sb);
1511 evict_inodes(sb);
1512 if (sb->s_op->shutdown)
1513 sb->s_op->shutdown(sb);
1514 }
1515 }
1516 super_unlock_shared(sb);
1517 }
1518 }
1519
fs_bdev_sync(struct block_device * bdev)1520 static void fs_bdev_sync(struct block_device *bdev)
1521 {
1522 struct super_dev *sb_dev;
1523 dev_t dev = bdev->bd_dev;
1524
1525 mutex_unlock(&bdev->bd_holder_lock);
1526
1527 for (sb_dev = super_dev_first(dev); sb_dev; sb_dev = super_dev_next(sb_dev)) {
1528 struct super_block *sb = sb_dev->sd_sb;
1529
1530 if (!super_lock_shared(sb))
1531 continue;
1532 if (sb->s_root && (sb->s_flags & SB_ACTIVE))
1533 sync_filesystem(sb);
1534 super_unlock_shared(sb);
1535 }
1536 }
1537
1538 /**
1539 * fs_bdev_freeze - freeze every superblock using a block device
1540 * @bdev: block device
1541 *
1542 * Freeze each live superblock using @bdev. A superblock owning several block
1543 * devices is frozen once per device and stays frozen until all are thawed; the
1544 * block layer nests these freezes so the count stays balanced.
1545 *
1546 * Return: 0, or the error from the one superblock on a single-fs device. When
1547 * several superblocks share @bdev a per-superblock failure is swallowed
1548 * (see below), but a sync_blockdev() failure is always reported.
1549 */
fs_bdev_freeze(struct block_device * bdev)1550 static int fs_bdev_freeze(struct block_device *bdev)
1551 {
1552 dev_t dev = bdev->bd_dev;
1553 struct super_dev *sb_dev;
1554 unsigned int count = 0;
1555 int error = 0, err;
1556
1557 lockdep_assert_held(&bdev->bd_fsfreeze_mutex);
1558
1559 mutex_unlock(&bdev->bd_holder_lock);
1560
1561 for (sb_dev = super_dev_first(dev); sb_dev; sb_dev = super_dev_next(sb_dev)) {
1562 if (!get_active_super(sb_dev->sd_sb))
1563 continue;
1564 err = fs_super_freeze(sb_dev->sd_sb);
1565 if (err && !error)
1566 error = err;
1567 deactivate_super(sb_dev->sd_sb);
1568 count++;
1569 }
1570
1571 /*
1572 * When several superblocks share the device, keep it frozen even if some
1573 * of them failed to freeze and swallow the error: rolling the rest back
1574 * via thaw_super() can fail too, so neither is a clear win. A single
1575 * filesystem (count == 1) still reports its error.
1576 */
1577 if (error && count > 1)
1578 error = 0;
1579 if (!error)
1580 error = sync_blockdev(bdev);
1581 return error;
1582 }
1583
1584 /**
1585 * fs_bdev_thaw - thaw every superblock using a block device
1586 * @bdev: block device
1587 *
1588 * The counterpart to fs_bdev_freeze(): thaw each live superblock using @bdev.
1589 * A zero return does not imply a superblock is fully unfrozen; it may have been
1590 * frozen more than once (by the kernel or via another device).
1591 *
1592 * Return: 0, or the first error on a single-fs device; a shared device swallows
1593 * per-superblock errors, as fs_bdev_freeze() does.
1594 */
fs_bdev_thaw(struct block_device * bdev)1595 static int fs_bdev_thaw(struct block_device *bdev)
1596 {
1597 dev_t dev = bdev->bd_dev;
1598 struct super_dev *sb_dev;
1599 unsigned int count = 0;
1600 int error = 0, err;
1601
1602 lockdep_assert_held(&bdev->bd_fsfreeze_mutex);
1603
1604 mutex_unlock(&bdev->bd_holder_lock);
1605
1606 for (sb_dev = super_dev_first(dev); sb_dev; sb_dev = super_dev_next(sb_dev)) {
1607 if (!get_active_super(sb_dev->sd_sb))
1608 continue;
1609 err = fs_super_thaw(sb_dev->sd_sb);
1610 if (err && !error)
1611 error = err;
1612 deactivate_super(sb_dev->sd_sb);
1613 count++;
1614 }
1615
1616 /* Shared device: swallow per-superblock errors, like fs_bdev_freeze(). */
1617 if (error && count > 1)
1618 error = 0;
1619 return error;
1620 }
1621
1622 static const struct blk_holder_ops fs_holder_ops = {
1623 .mark_dead = fs_bdev_mark_dead,
1624 .sync = fs_bdev_sync,
1625 .freeze = fs_bdev_freeze,
1626 .thaw = fs_bdev_thaw,
1627 };
1628
super_dev_lookup(dev_t dev,struct super_block * sb)1629 static struct super_dev *super_dev_lookup(dev_t dev, struct super_block *sb)
1630 {
1631 struct super_dev *it;
1632 struct rhlist_head *list, *pos;
1633
1634 RCU_LOCKDEP_WARN(!rcu_read_lock_held(), "suspicious super_dev_lookup() usage");
1635 VFS_WARN_ON_ONCE(!dev);
1636 VFS_WARN_ON_ONCE(!sb);
1637
1638 list = rhltable_lookup(&super_dev_table, &dev, super_dev_params);
1639 rhl_for_each_entry_rcu(it, pos, list, sd_node) {
1640 if (it->sd_sb == sb)
1641 return it;
1642 }
1643
1644 return NULL;
1645 }
1646
fs_bdev_register(struct file * bdev_file,struct super_block * sb)1647 static int fs_bdev_register(struct file *bdev_file, struct super_block *sb)
1648 {
1649 struct super_dev *sb_dev __free(kfree) = NULL;
1650 dev_t dev = file_bdev(bdev_file)->bd_dev;
1651 int err;
1652
1653 scoped_guard(rcu) {
1654 sb_dev = super_dev_lookup(dev, sb);
1655 if (sb_dev && refcount_inc_not_zero(&sb_dev->sd_ref)) {
1656 retain_and_null_ptr(sb_dev);
1657 return 0;
1658 }
1659 }
1660
1661 sb_dev = super_dev_alloc(dev, sb);
1662 if (!sb_dev)
1663 return -ENOMEM;
1664
1665 err = super_dev_insert(sb_dev);
1666 if (err)
1667 return err;
1668
1669 /* Publish the entry before reading the count; pairs with bdev_freeze(). */
1670 smp_mb();
1671 if (atomic_read(&file_bdev(bdev_file)->bd_fsfreeze_count) > 0) {
1672 err = -EBUSY;
1673 super_dev_put(sb_dev);
1674 }
1675
1676 retain_and_null_ptr(sb_dev);
1677 return err;
1678 }
1679
1680 /**
1681 * fs_bdev_file_open_by_dev - claim a block device on behalf of a superblock
1682 * @dev: block device number
1683 * @mode: open mode
1684 * @holder: block-layer exclusivity token (a superblock, or the file_system_type
1685 * when the device may be shared by several superblocks of that type)
1686 * @sb: superblock to drive fs_holder_ops events for
1687 *
1688 * Open @dev with &fs_holder_ops and register that @sb uses it, so device
1689 * removal/sync/freeze/thaw are propagated to @sb (and any other superblock
1690 * sharing @dev). Must be paired with fs_bdev_file_release().
1691 *
1692 * Return: an opened block-device file or an ERR_PTR().
1693 */
fs_bdev_file_open_by_dev(dev_t dev,blk_mode_t mode,void * holder,struct super_block * sb)1694 struct file *fs_bdev_file_open_by_dev(dev_t dev, blk_mode_t mode, void *holder,
1695 struct super_block *sb)
1696 {
1697 struct file *bdev_file;
1698 int err;
1699
1700 bdev_file = bdev_file_open_by_dev(dev, mode, holder, &fs_holder_ops);
1701 if (IS_ERR(bdev_file))
1702 return bdev_file;
1703
1704 err = fs_bdev_register(bdev_file, sb);
1705 if (err) {
1706 bdev_fput(bdev_file);
1707 return ERR_PTR(err);
1708 }
1709 return bdev_file;
1710 }
1711 EXPORT_SYMBOL_GPL(fs_bdev_file_open_by_dev);
1712
1713 /**
1714 * fs_bdev_file_open_by_path - claim a block device on behalf of a superblock
1715 * @path: path to the block device
1716 * @mode: open mode
1717 * @holder: block-layer exclusivity token (a superblock, or the file_system_type
1718 * when the device may be shared by several superblocks of that type)
1719 * @sb: superblock to drive fs_holder_ops events for
1720 *
1721 * Open the block device at @path with &fs_holder_ops and register that @sb
1722 * uses it, so device removal/sync/freeze/thaw are propagated to @sb (and any
1723 * other superblock sharing the device). Must be paired with
1724 * fs_bdev_file_release().
1725 *
1726 * Return: an opened block-device file or an ERR_PTR().
1727 */
fs_bdev_file_open_by_path(const char * path,blk_mode_t mode,void * holder,struct super_block * sb)1728 struct file *fs_bdev_file_open_by_path(const char *path, blk_mode_t mode,
1729 void *holder, struct super_block *sb)
1730 {
1731 struct file *bdev_file;
1732 int err;
1733
1734 bdev_file = bdev_file_open_by_path(path, mode, holder, &fs_holder_ops);
1735 if (IS_ERR(bdev_file))
1736 return bdev_file;
1737
1738 err = fs_bdev_register(bdev_file, sb);
1739 if (err) {
1740 bdev_fput(bdev_file);
1741 return ERR_PTR(err);
1742 }
1743 return bdev_file;
1744 }
1745 EXPORT_SYMBOL_GPL(fs_bdev_file_open_by_path);
1746
1747 /**
1748 * fs_bdev_unregister - drop a superblock's claim on a block device
1749 * @bdev_file: file returned by fs_bdev_file_open_by_{dev,path}()
1750 * @sb: superblock the device was claimed for
1751 *
1752 * The inverse of fs_bdev_register(): drop one claim on the {dev, @sb} entry
1753 * (the last claim unregisters it; a pinning cursor defers the actual unlink)
1754 * without closing the device. A caller that must act on the still-open device
1755 * between unregistering and closing - e.g. re-allow freezing one denied for a
1756 * membership change - pairs this with bdev_fput(). fs_bdev_file_release() is
1757 * the common unregister-and-close.
1758 */
fs_bdev_unregister(struct file * bdev_file,struct super_block * sb)1759 void fs_bdev_unregister(struct file *bdev_file, struct super_block *sb)
1760 {
1761 dev_t dev = file_bdev(bdev_file)->bd_dev;
1762 struct super_dev *sb_dev;
1763
1764 rcu_read_lock();
1765 sb_dev = super_dev_lookup(dev, sb);
1766 rcu_read_unlock();
1767 super_dev_put(sb_dev);
1768 }
1769 EXPORT_SYMBOL_GPL(fs_bdev_unregister);
1770
1771 /**
1772 * fs_bdev_file_release - release a block device claimed for a superblock
1773 * @bdev_file: file returned by fs_bdev_file_open_by_{dev,path}()
1774 * @sb: superblock the device was claimed for
1775 *
1776 * Unregister the {dev, @sb} entry, then close the block device.
1777 */
fs_bdev_file_release(struct file * bdev_file,struct super_block * sb)1778 void fs_bdev_file_release(struct file *bdev_file, struct super_block *sb)
1779 {
1780 fs_bdev_unregister(bdev_file, sb);
1781 bdev_fput(bdev_file);
1782 }
1783 EXPORT_SYMBOL_GPL(fs_bdev_file_release);
1784
setup_bdev_super(struct super_block * sb,int sb_flags,struct fs_context * fc)1785 int setup_bdev_super(struct super_block *sb, int sb_flags,
1786 struct fs_context *fc)
1787 {
1788 blk_mode_t mode = sb_open_mode(sb_flags);
1789 struct file *bdev_file;
1790 struct block_device *bdev;
1791
1792 bdev_file = fs_bdev_file_open_by_dev(sb->s_dev, mode, sb, sb);
1793 if (IS_ERR(bdev_file)) {
1794 if (fc)
1795 errorf(fc, "%s: Can't open blockdev", fc->source);
1796 return PTR_ERR(bdev_file);
1797 }
1798 bdev = file_bdev(bdev_file);
1799
1800 /*
1801 * This really should be in blkdev_get_by_dev, but right now can't due
1802 * to legacy issues that require us to allow opening a block device node
1803 * writable from userspace even for a read-only block device.
1804 */
1805 if ((mode & BLK_OPEN_WRITE) && bdev_read_only(bdev)) {
1806 fs_bdev_file_release(bdev_file, sb);
1807 return -EACCES;
1808 }
1809
1810 /* The sget_fc() entry is already published; pairs with bdev_freeze(). */
1811 smp_mb();
1812 if (atomic_read(&bdev->bd_fsfreeze_count) > 0) {
1813 if (fc)
1814 warnf(fc, "%pg: Can't mount, blockdev is frozen", bdev);
1815 fs_bdev_file_release(bdev_file, sb);
1816 return -EBUSY;
1817 }
1818
1819 spin_lock(&sb_lock);
1820 sb->s_bdev_file = bdev_file;
1821 sb->s_bdev = bdev;
1822 sb->s_bdi = bdi_get(bdev->bd_disk->bdi);
1823 if (bdev_stable_writes(bdev))
1824 sb->s_iflags |= SB_I_STABLE_WRITES;
1825 spin_unlock(&sb_lock);
1826
1827 snprintf(sb->s_id, sizeof(sb->s_id), "%pg", bdev);
1828 shrinker_debugfs_rename(sb->s_shrink, "sb-%s:%s", sb->s_type->name,
1829 sb->s_id);
1830 sb_set_blocksize(sb, block_size(bdev));
1831 return 0;
1832 }
1833 EXPORT_SYMBOL_GPL(setup_bdev_super);
1834
1835 /**
1836 * get_tree_bdev_flags - Get a superblock based on a single block device
1837 * @fc: The filesystem context holding the parameters
1838 * @fill_super: Helper to initialise a new superblock
1839 * @flags: GET_TREE_BDEV_* flags
1840 */
get_tree_bdev_flags(struct fs_context * fc,int (* fill_super)(struct super_block * sb,struct fs_context * fc),unsigned int flags)1841 int get_tree_bdev_flags(struct fs_context *fc,
1842 int (*fill_super)(struct super_block *sb,
1843 struct fs_context *fc), unsigned int flags)
1844 {
1845 struct super_block *s;
1846 int error = 0;
1847 dev_t dev;
1848
1849 if (!fc->source)
1850 return invalf(fc, "No source specified");
1851
1852 error = lookup_bdev(fc->source, &dev);
1853 if (error) {
1854 if (!(flags & GET_TREE_BDEV_QUIET_LOOKUP))
1855 errorf(fc, "%s: Can't lookup blockdev", fc->source);
1856 return error;
1857 }
1858 fc->sb_flags |= SB_NOSEC;
1859 s = sget_dev(fc, dev);
1860 if (IS_ERR(s))
1861 return PTR_ERR(s);
1862
1863 if (s->s_root) {
1864 /* Don't summarily change the RO/RW state. */
1865 if ((fc->sb_flags ^ s->s_flags) & SB_RDONLY) {
1866 warnf(fc, "%pg: Can't mount, would change RO state", s->s_bdev);
1867 deactivate_locked_super(s);
1868 return -EBUSY;
1869 }
1870 } else {
1871 error = setup_bdev_super(s, fc->sb_flags, fc);
1872 if (!error)
1873 error = fill_super(s, fc);
1874 if (error) {
1875 deactivate_locked_super(s);
1876 return error;
1877 }
1878 s->s_flags |= SB_ACTIVE;
1879 }
1880
1881 BUG_ON(fc->root);
1882 fc->root = dget(s->s_root);
1883 return 0;
1884 }
1885 EXPORT_SYMBOL_GPL(get_tree_bdev_flags);
1886
1887 /**
1888 * get_tree_bdev - Get a superblock based on a single block device
1889 * @fc: The filesystem context holding the parameters
1890 * @fill_super: Helper to initialise a new superblock
1891 */
get_tree_bdev(struct fs_context * fc,int (* fill_super)(struct super_block *,struct fs_context *))1892 int get_tree_bdev(struct fs_context *fc,
1893 int (*fill_super)(struct super_block *,
1894 struct fs_context *))
1895 {
1896 return get_tree_bdev_flags(fc, fill_super, 0);
1897 }
1898 EXPORT_SYMBOL(get_tree_bdev);
1899
kill_block_super(struct super_block * sb)1900 void kill_block_super(struct super_block *sb)
1901 {
1902 struct block_device *bdev = sb->s_bdev;
1903
1904 generic_shutdown_super(sb);
1905 if (bdev) {
1906 sync_blockdev(bdev);
1907 fs_bdev_file_release(sb->s_bdev_file, sb);
1908 }
1909 }
1910
1911 EXPORT_SYMBOL(kill_block_super);
1912 #endif
1913
1914 /**
1915 * vfs_get_tree - Get the mountable root
1916 * @fc: The superblock configuration context.
1917 *
1918 * The filesystem is invoked to get or create a superblock which can then later
1919 * be used for mounting. The filesystem places a pointer to the root to be
1920 * used for mounting in @fc->root.
1921 */
vfs_get_tree(struct fs_context * fc)1922 int vfs_get_tree(struct fs_context *fc)
1923 {
1924 struct super_block *sb;
1925 int error;
1926
1927 if (fc->root)
1928 return -EBUSY;
1929
1930 /* Get the mountable root in fc->root, with a ref on the root and a ref
1931 * on the superblock.
1932 */
1933 error = fc->ops->get_tree(fc);
1934 if (error < 0)
1935 return error;
1936
1937 if (!fc->root) {
1938 pr_err("Filesystem %s get_tree() didn't set fc->root, returned %i\n",
1939 fc->fs_type->name, error);
1940 /* We don't know what the locking state of the superblock is -
1941 * if there is a superblock.
1942 */
1943 BUG();
1944 }
1945
1946 sb = fc->root->d_sb;
1947 WARN_ON(!sb->s_bdi);
1948
1949 /*
1950 * super_wake() contains a memory barrier which also care of
1951 * ordering for super_cache_count(). We place it before setting
1952 * SB_BORN as the data dependency between the two functions is
1953 * the superblock structure contents that we just set up, not
1954 * the SB_BORN flag.
1955 */
1956 super_wake(sb, SB_BORN);
1957
1958 error = security_sb_set_mnt_opts(sb, fc->security, 0, NULL);
1959 if (unlikely(error)) {
1960 fc_drop_locked(fc);
1961 return error;
1962 }
1963
1964 /*
1965 * filesystems should never set s_maxbytes larger than MAX_LFS_FILESIZE
1966 * but s_maxbytes was an unsigned long long for many releases. Throw
1967 * this warning for a little while to try and catch filesystems that
1968 * violate this rule.
1969 */
1970 WARN((sb->s_maxbytes < 0), "%s set sb->s_maxbytes to "
1971 "negative value (%lld)\n", fc->fs_type->name, sb->s_maxbytes);
1972
1973 return 0;
1974 }
1975 EXPORT_SYMBOL(vfs_get_tree);
1976
1977 /*
1978 * Setup private BDI for given superblock. It gets automatically cleaned up
1979 * in generic_shutdown_super().
1980 */
super_setup_bdi_name(struct super_block * sb,char * fmt,...)1981 int super_setup_bdi_name(struct super_block *sb, char *fmt, ...)
1982 {
1983 struct backing_dev_info *bdi;
1984 int err;
1985 va_list args;
1986
1987 bdi = bdi_alloc(NUMA_NO_NODE);
1988 if (!bdi)
1989 return -ENOMEM;
1990
1991 va_start(args, fmt);
1992 err = bdi_register_va(bdi, fmt, args);
1993 va_end(args);
1994 if (err) {
1995 bdi_put(bdi);
1996 return err;
1997 }
1998 WARN_ON(sb->s_bdi != &noop_backing_dev_info);
1999 sb->s_bdi = bdi;
2000 sb->s_iflags |= SB_I_PERSB_BDI;
2001
2002 return 0;
2003 }
2004 EXPORT_SYMBOL(super_setup_bdi_name);
2005
2006 /*
2007 * Setup private BDI for given superblock. I gets automatically cleaned up
2008 * in generic_shutdown_super().
2009 */
super_setup_bdi(struct super_block * sb)2010 int super_setup_bdi(struct super_block *sb)
2011 {
2012 static atomic_long_t bdi_seq = ATOMIC_LONG_INIT(0);
2013
2014 return super_setup_bdi_name(sb, "%.28s-%ld", sb->s_type->name,
2015 atomic_long_inc_return(&bdi_seq));
2016 }
2017 EXPORT_SYMBOL(super_setup_bdi);
2018
2019 /**
2020 * sb_wait_write - wait until all writers to given file system finish
2021 * @sb: the super for which we wait
2022 * @level: type of writers we wait for (normal vs page fault)
2023 *
2024 * This function waits until there are no writers of given type to given file
2025 * system.
2026 */
sb_wait_write(struct super_block * sb,int level)2027 static void sb_wait_write(struct super_block *sb, int level)
2028 {
2029 percpu_down_write(sb->s_writers.rw_sem + level-1);
2030 }
2031
2032 /*
2033 * We are going to return to userspace and forget about these locks, the
2034 * ownership goes to the caller of thaw_super() which does unlock().
2035 */
lockdep_sb_freeze_release(struct super_block * sb)2036 static void lockdep_sb_freeze_release(struct super_block *sb)
2037 {
2038 int level;
2039
2040 for (level = SB_FREEZE_LEVELS - 1; level >= 0; level--)
2041 percpu_rwsem_release(sb->s_writers.rw_sem + level, _THIS_IP_);
2042 }
2043
2044 /*
2045 * Tell lockdep we are holding these locks before we call ->unfreeze_fs(sb).
2046 */
lockdep_sb_freeze_acquire(struct super_block * sb)2047 static void lockdep_sb_freeze_acquire(struct super_block *sb)
2048 {
2049 int level;
2050
2051 for (level = 0; level < SB_FREEZE_LEVELS; ++level)
2052 percpu_rwsem_acquire(sb->s_writers.rw_sem + level, 0, _THIS_IP_);
2053 }
2054
sb_freeze_unlock(struct super_block * sb,int level)2055 static void sb_freeze_unlock(struct super_block *sb, int level)
2056 {
2057 for (level--; level >= 0; level--)
2058 percpu_up_write(sb->s_writers.rw_sem + level);
2059 }
2060
wait_for_partially_frozen(struct super_block * sb)2061 static int wait_for_partially_frozen(struct super_block *sb)
2062 {
2063 int ret = 0;
2064
2065 do {
2066 unsigned short old = sb->s_writers.frozen;
2067
2068 up_write(&sb->s_umount);
2069 ret = wait_var_event_killable(&sb->s_writers.frozen,
2070 sb->s_writers.frozen != old);
2071 down_write(&sb->s_umount);
2072 } while (ret == 0 &&
2073 sb->s_writers.frozen != SB_UNFROZEN &&
2074 sb->s_writers.frozen != SB_FREEZE_COMPLETE);
2075
2076 return ret;
2077 }
2078
2079 #define FREEZE_HOLDERS (FREEZE_HOLDER_KERNEL | FREEZE_HOLDER_USERSPACE)
2080 #define FREEZE_FLAGS (FREEZE_HOLDERS | FREEZE_MAY_NEST | FREEZE_EXCL)
2081
freeze_inc(struct super_block * sb,enum freeze_holder who)2082 static inline int freeze_inc(struct super_block *sb, enum freeze_holder who)
2083 {
2084 WARN_ON_ONCE((who & ~FREEZE_FLAGS));
2085 WARN_ON_ONCE(hweight32(who & FREEZE_HOLDERS) > 1);
2086
2087 if (who & FREEZE_HOLDER_KERNEL)
2088 ++sb->s_writers.freeze_kcount;
2089 if (who & FREEZE_HOLDER_USERSPACE)
2090 ++sb->s_writers.freeze_ucount;
2091 return sb->s_writers.freeze_kcount + sb->s_writers.freeze_ucount;
2092 }
2093
freeze_dec(struct super_block * sb,enum freeze_holder who)2094 static inline int freeze_dec(struct super_block *sb, enum freeze_holder who)
2095 {
2096 WARN_ON_ONCE((who & ~FREEZE_FLAGS));
2097 WARN_ON_ONCE(hweight32(who & FREEZE_HOLDERS) > 1);
2098
2099 if ((who & FREEZE_HOLDER_KERNEL) && sb->s_writers.freeze_kcount)
2100 --sb->s_writers.freeze_kcount;
2101 if ((who & FREEZE_HOLDER_USERSPACE) && sb->s_writers.freeze_ucount)
2102 --sb->s_writers.freeze_ucount;
2103 return sb->s_writers.freeze_kcount + sb->s_writers.freeze_ucount;
2104 }
2105
may_freeze(struct super_block * sb,enum freeze_holder who,const void * freeze_owner)2106 static inline bool may_freeze(struct super_block *sb, enum freeze_holder who,
2107 const void *freeze_owner)
2108 {
2109 lockdep_assert_held(&sb->s_umount);
2110
2111 WARN_ON_ONCE((who & ~FREEZE_FLAGS));
2112 WARN_ON_ONCE(hweight32(who & FREEZE_HOLDERS) > 1);
2113
2114 if (who & FREEZE_EXCL) {
2115 if (WARN_ON_ONCE(!(who & FREEZE_HOLDER_KERNEL)))
2116 return false;
2117 if (WARN_ON_ONCE(who & ~(FREEZE_EXCL | FREEZE_HOLDER_KERNEL)))
2118 return false;
2119 if (WARN_ON_ONCE(!freeze_owner))
2120 return false;
2121 /* This freeze already has a specific owner. */
2122 if (sb->s_writers.freeze_owner)
2123 return false;
2124 /*
2125 * This is already frozen multiple times so we're just
2126 * going to take a reference count and mark the freeze as
2127 * being owned by the caller.
2128 */
2129 if (sb->s_writers.freeze_kcount + sb->s_writers.freeze_ucount)
2130 sb->s_writers.freeze_owner = freeze_owner;
2131 return true;
2132 }
2133
2134 if (who & FREEZE_HOLDER_KERNEL)
2135 return (who & FREEZE_MAY_NEST) ||
2136 sb->s_writers.freeze_kcount == 0;
2137 if (who & FREEZE_HOLDER_USERSPACE)
2138 return (who & FREEZE_MAY_NEST) ||
2139 sb->s_writers.freeze_ucount == 0;
2140 return false;
2141 }
2142
may_unfreeze(struct super_block * sb,enum freeze_holder who,const void * freeze_owner)2143 static inline bool may_unfreeze(struct super_block *sb, enum freeze_holder who,
2144 const void *freeze_owner)
2145 {
2146 lockdep_assert_held(&sb->s_umount);
2147
2148 WARN_ON_ONCE((who & ~FREEZE_FLAGS));
2149 WARN_ON_ONCE(hweight32(who & FREEZE_HOLDERS) > 1);
2150
2151 if (who & FREEZE_EXCL) {
2152 if (WARN_ON_ONCE(!(who & FREEZE_HOLDER_KERNEL)))
2153 return false;
2154 if (WARN_ON_ONCE(who & ~(FREEZE_EXCL | FREEZE_HOLDER_KERNEL)))
2155 return false;
2156 if (WARN_ON_ONCE(!freeze_owner))
2157 return false;
2158 if (WARN_ON_ONCE(sb->s_writers.freeze_kcount == 0))
2159 return false;
2160 /* This isn't exclusively frozen. */
2161 if (!sb->s_writers.freeze_owner)
2162 return false;
2163 /* This isn't exclusively frozen by us. */
2164 if (sb->s_writers.freeze_owner != freeze_owner)
2165 return false;
2166 /*
2167 * This is still frozen multiple times so we're just
2168 * going to drop our reference count and undo our
2169 * exclusive freeze.
2170 */
2171 if ((sb->s_writers.freeze_kcount + sb->s_writers.freeze_ucount) > 1)
2172 sb->s_writers.freeze_owner = NULL;
2173 return true;
2174 }
2175
2176 if (who & FREEZE_HOLDER_KERNEL) {
2177 /*
2178 * Someone's trying to steal the reference belonging to
2179 * @sb->s_writers.freeze_owner.
2180 */
2181 if (sb->s_writers.freeze_kcount == 1 &&
2182 sb->s_writers.freeze_owner)
2183 return false;
2184 return sb->s_writers.freeze_kcount > 0;
2185 }
2186
2187 if (who & FREEZE_HOLDER_USERSPACE)
2188 return sb->s_writers.freeze_ucount > 0;
2189
2190 return false;
2191 }
2192
2193 /**
2194 * freeze_super - lock the filesystem and force it into a consistent state
2195 * @sb: the super to lock
2196 * @who: context that wants to freeze
2197 * @freeze_owner: owner of the freeze
2198 *
2199 * Syncs the super to make sure the filesystem is consistent and calls the fs's
2200 * freeze_fs. Subsequent calls to this without first thawing the fs may return
2201 * -EBUSY.
2202 *
2203 * @who should be:
2204 * * %FREEZE_HOLDER_USERSPACE if userspace wants to freeze the fs;
2205 * * %FREEZE_HOLDER_KERNEL if the kernel wants to freeze the fs.
2206 * * %FREEZE_MAY_NEST whether nesting freeze and thaw requests is allowed.
2207 *
2208 * The @who argument distinguishes between the kernel and userspace trying to
2209 * freeze the filesystem. Although there cannot be multiple kernel freezes or
2210 * multiple userspace freezes in effect at any given time, the kernel and
2211 * userspace can both hold a filesystem frozen. The filesystem remains frozen
2212 * until there are no kernel or userspace freezes in effect.
2213 *
2214 * A filesystem may hold multiple devices and thus a filesystems may be
2215 * frozen through the block layer via multiple block devices. In this
2216 * case the request is marked as being allowed to nest by passing
2217 * FREEZE_MAY_NEST. The filesystem remains frozen until all block
2218 * devices are unfrozen. If multiple freezes are attempted without
2219 * FREEZE_MAY_NEST -EBUSY will be returned.
2220 *
2221 * During this function, sb->s_writers.frozen goes through these values:
2222 *
2223 * SB_UNFROZEN: File system is normal, all writes progress as usual.
2224 *
2225 * SB_FREEZE_WRITE: The file system is in the process of being frozen. New
2226 * writes should be blocked, though page faults are still allowed. We wait for
2227 * all writes to complete and then proceed to the next stage.
2228 *
2229 * SB_FREEZE_PAGEFAULT: Freezing continues. Now also page faults are blocked
2230 * but internal fs threads can still modify the filesystem (although they
2231 * should not dirty new pages or inodes), writeback can run etc. After waiting
2232 * for all running page faults we sync the filesystem which will clean all
2233 * dirty pages and inodes (no new dirty pages or inodes can be created when
2234 * sync is running).
2235 *
2236 * SB_FREEZE_FS: The file system is frozen. Now all internal sources of fs
2237 * modification are blocked (e.g. XFS preallocation truncation on inode
2238 * reclaim). This is usually implemented by blocking new transactions for
2239 * filesystems that have them and need this additional guard. After all
2240 * internal writers are finished we call ->freeze_fs() to finish filesystem
2241 * freezing. Then we transition to SB_FREEZE_COMPLETE state. This state is
2242 * mostly auxiliary for filesystems to verify they do not modify frozen fs.
2243 *
2244 * sb->s_writers.frozen is protected by sb->s_umount.
2245 *
2246 * Return: If the freeze was successful zero is returned. If the freeze
2247 * failed a negative error code is returned.
2248 */
freeze_super(struct super_block * sb,enum freeze_holder who,const void * freeze_owner)2249 int freeze_super(struct super_block *sb, enum freeze_holder who, const void *freeze_owner)
2250 {
2251 int ret;
2252
2253 if (!super_lock_excl(sb)) {
2254 WARN_ONCE(1, "Dying superblock while freezing!");
2255 return -EINVAL;
2256 }
2257 atomic_inc(&sb->s_active);
2258
2259 retry:
2260 if (sb->s_writers.frozen == SB_FREEZE_COMPLETE) {
2261 if (may_freeze(sb, who, freeze_owner))
2262 ret = !!WARN_ON_ONCE(freeze_inc(sb, who) == 1);
2263 else
2264 ret = -EBUSY;
2265 /* All freezers share a single active reference. */
2266 deactivate_locked_super(sb);
2267 return ret;
2268 }
2269
2270 if (sb->s_writers.frozen != SB_UNFROZEN) {
2271 ret = wait_for_partially_frozen(sb);
2272 if (ret) {
2273 deactivate_locked_super(sb);
2274 return ret;
2275 }
2276
2277 goto retry;
2278 }
2279
2280 if (sb_rdonly(sb)) {
2281 /* Nothing to do really... */
2282 WARN_ON_ONCE(freeze_inc(sb, who) > 1);
2283 sb->s_writers.freeze_owner = freeze_owner;
2284 sb->s_writers.frozen = SB_FREEZE_COMPLETE;
2285 wake_up_var(&sb->s_writers.frozen);
2286 super_unlock_excl(sb);
2287 return 0;
2288 }
2289
2290 sb->s_writers.frozen = SB_FREEZE_WRITE;
2291 /* Release s_umount to preserve sb_start_write -> s_umount ordering */
2292 super_unlock_excl(sb);
2293 sb_wait_write(sb, SB_FREEZE_WRITE);
2294 __super_lock_excl(sb);
2295
2296 /* Now we go and block page faults... */
2297 sb->s_writers.frozen = SB_FREEZE_PAGEFAULT;
2298 sb_wait_write(sb, SB_FREEZE_PAGEFAULT);
2299
2300 /* All writers are done so after syncing there won't be dirty data */
2301 ret = sync_filesystem(sb);
2302 if (ret) {
2303 sb->s_writers.frozen = SB_UNFROZEN;
2304 sb_freeze_unlock(sb, SB_FREEZE_PAGEFAULT);
2305 wake_up_var(&sb->s_writers.frozen);
2306 deactivate_locked_super(sb);
2307 return ret;
2308 }
2309
2310 /* Now wait for internal filesystem counter */
2311 sb->s_writers.frozen = SB_FREEZE_FS;
2312 sb_wait_write(sb, SB_FREEZE_FS);
2313
2314 if (sb->s_op->freeze_fs) {
2315 ret = sb->s_op->freeze_fs(sb);
2316 if (ret) {
2317 printk(KERN_ERR
2318 "VFS:Filesystem freeze failed\n");
2319 sb->s_writers.frozen = SB_UNFROZEN;
2320 sb_freeze_unlock(sb, SB_FREEZE_FS);
2321 wake_up_var(&sb->s_writers.frozen);
2322 deactivate_locked_super(sb);
2323 return ret;
2324 }
2325 }
2326 /*
2327 * For debugging purposes so that fs can warn if it sees write activity
2328 * when frozen is set to SB_FREEZE_COMPLETE, and for thaw_super().
2329 */
2330 WARN_ON_ONCE(freeze_inc(sb, who) > 1);
2331 sb->s_writers.freeze_owner = freeze_owner;
2332 sb->s_writers.frozen = SB_FREEZE_COMPLETE;
2333 wake_up_var(&sb->s_writers.frozen);
2334 lockdep_sb_freeze_release(sb);
2335 super_unlock_excl(sb);
2336 return 0;
2337 }
2338 EXPORT_SYMBOL(freeze_super);
2339
2340 /*
2341 * Undoes the effect of a freeze_super_locked call. If the filesystem is
2342 * frozen both by userspace and the kernel, a thaw call from either source
2343 * removes that state without releasing the other state or unlocking the
2344 * filesystem.
2345 */
thaw_super_locked(struct super_block * sb,enum freeze_holder who,const void * freeze_owner)2346 static int thaw_super_locked(struct super_block *sb, enum freeze_holder who,
2347 const void *freeze_owner)
2348 {
2349 int error = -EINVAL;
2350
2351 if (sb->s_writers.frozen != SB_FREEZE_COMPLETE)
2352 goto out_unlock;
2353
2354 if (!may_unfreeze(sb, who, freeze_owner))
2355 goto out_unlock;
2356
2357 /*
2358 * All freezers share a single active reference. If other freezers
2359 * remain, drop our hold and report success; the superblock stays
2360 * frozen until the last holder thaws it.
2361 */
2362 if (freeze_dec(sb, who)) {
2363 error = 0;
2364 goto out_unlock;
2365 }
2366
2367 if (sb_rdonly(sb)) {
2368 sb->s_writers.frozen = SB_UNFROZEN;
2369 sb->s_writers.freeze_owner = NULL;
2370 wake_up_var(&sb->s_writers.frozen);
2371 goto out_deactivate;
2372 }
2373
2374 lockdep_sb_freeze_acquire(sb);
2375
2376 if (sb->s_op->unfreeze_fs) {
2377 error = sb->s_op->unfreeze_fs(sb);
2378 if (error) {
2379 pr_err("VFS: Filesystem thaw failed\n");
2380 freeze_inc(sb, who);
2381 lockdep_sb_freeze_release(sb);
2382 goto out_unlock;
2383 }
2384 }
2385
2386 sb->s_writers.frozen = SB_UNFROZEN;
2387 sb->s_writers.freeze_owner = NULL;
2388 wake_up_var(&sb->s_writers.frozen);
2389 sb_freeze_unlock(sb, SB_FREEZE_FS);
2390 out_deactivate:
2391 deactivate_locked_super(sb);
2392 return 0;
2393
2394 out_unlock:
2395 super_unlock_excl(sb);
2396 return error;
2397 }
2398
2399 /**
2400 * thaw_super -- unlock filesystem
2401 * @sb: the super to thaw
2402 * @who: context that wants to freeze
2403 * @freeze_owner: owner of the freeze
2404 *
2405 * Unlocks the filesystem and marks it writeable again after freeze_super()
2406 * if there are no remaining freezes on the filesystem.
2407 *
2408 * @who should be:
2409 * * %FREEZE_HOLDER_USERSPACE if userspace wants to thaw the fs;
2410 * * %FREEZE_HOLDER_KERNEL if the kernel wants to thaw the fs.
2411 * * %FREEZE_MAY_NEST whether nesting freeze and thaw requests is allowed
2412 *
2413 * A filesystem may hold multiple devices and thus a filesystems may
2414 * have been frozen through the block layer via multiple block devices.
2415 * The filesystem remains frozen until all block devices are unfrozen.
2416 */
thaw_super(struct super_block * sb,enum freeze_holder who,const void * freeze_owner)2417 int thaw_super(struct super_block *sb, enum freeze_holder who,
2418 const void *freeze_owner)
2419 {
2420 if (!super_lock_excl(sb)) {
2421 WARN_ONCE(1, "Dying superblock while thawing!");
2422 return -EINVAL;
2423 }
2424 return thaw_super_locked(sb, who, freeze_owner);
2425 }
2426 EXPORT_SYMBOL(thaw_super);
2427
2428 /*
2429 * Create workqueue for deferred direct IO completions. We allocate the
2430 * workqueue when it's first needed. This avoids creating workqueue for
2431 * filesystems that don't need it and also allows us to create the workqueue
2432 * late enough so the we can include s_id in the name of the workqueue.
2433 */
sb_init_dio_done_wq(struct super_block * sb)2434 int sb_init_dio_done_wq(struct super_block *sb)
2435 {
2436 struct workqueue_struct *old;
2437 struct workqueue_struct *wq = alloc_workqueue("dio/%s",
2438 WQ_MEM_RECLAIM | WQ_PERCPU,
2439 0,
2440 sb->s_id);
2441 if (!wq)
2442 return -ENOMEM;
2443
2444 old = NULL;
2445 /*
2446 * This has to be atomic as more DIOs can race to create the workqueue
2447 */
2448 if (!try_cmpxchg(&sb->s_dio_done_wq, &old, wq)) {
2449 /* Someone created workqueue before us? Free ours... */
2450 destroy_workqueue(wq);
2451 }
2452 return 0;
2453 }
2454 EXPORT_SYMBOL_GPL(sb_init_dio_done_wq);
2455