xref: /linux/fs/notify/mark.c (revision bfb921b2a9d5d1123d1d10b196a39db629ddef87)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  *  Copyright (C) 2008 Red Hat, Inc., Eric Paris <eparis@redhat.com>
4  */
5 
6 /*
7  * fsnotify inode mark locking/lifetime/and refcnting
8  *
9  * REFCNT:
10  * The group->recnt and mark->refcnt tell how many "things" in the kernel
11  * currently are referencing the objects. Both kind of objects typically will
12  * live inside the kernel with a refcnt of 2, one for its creation and one for
13  * the reference a group and a mark hold to each other.
14  * If you are holding the appropriate locks, you can take a reference and the
15  * object itself is guaranteed to survive until the reference is dropped.
16  *
17  * LOCKING:
18  * There are 3 locks involved with fsnotify inode marks and they MUST be taken
19  * in order as follows:
20  *
21  * group->mark_mutex
22  * mark->lock
23  * mark->connector->lock
24  *
25  * group->mark_mutex protects the marks_list anchored inside a given group and
26  * each mark is hooked via the g_list.  It also protects the groups private
27  * data (i.e group limits).
28 
29  * mark->lock protects the marks attributes like its masks and flags.
30  * Furthermore it protects the access to a reference of the group that the mark
31  * is assigned to as well as the access to a reference of the inode/vfsmount
32  * that is being watched by the mark.
33  *
34  * mark->connector->lock protects the list of marks anchored inside an
35  * inode / vfsmount and each mark is hooked via the i_list.
36  *
37  * A list of notification marks relating to inode / mnt is contained in
38  * fsnotify_mark_connector. That structure is alive as long as there are any
39  * marks in the list and is also protected by fsnotify_mark_srcu. A mark gets
40  * detached from fsnotify_mark_connector when last reference to the mark is
41  * dropped.  Thus having mark reference is enough to protect mark->connector
42  * pointer and to make sure fsnotify_mark_connector cannot disappear. Also
43  * because we remove mark from g_list before dropping mark reference associated
44  * with that, any mark found through g_list is guaranteed to have
45  * mark->connector set until we drop group->mark_mutex.
46  *
47  * LIFETIME:
48  * Inode marks survive between when they are added to an inode and when their
49  * refcnt==0. Marks are also protected by fsnotify_mark_srcu.
50  *
51  * The inode mark can be cleared for a number of different reasons including:
52  * - The inode is unlinked for the last time.  (fsnotify_inode_remove)
53  * - The inode is being evicted from cache. (fsnotify_inode_delete)
54  * - The fs the inode is on is unmounted.  (fsnotify_inode_delete/fsnotify_unmount_inodes)
55  * - Something explicitly requests that it be removed.  (fsnotify_destroy_mark)
56  * - The fsnotify_group associated with the mark is going away and all such marks
57  *   need to be cleaned up. (fsnotify_clear_marks_by_group)
58  *
59  * This has the very interesting property of being able to run concurrently with
60  * any (or all) other directions.
61  */
62 
63 #include <linux/fs.h>
64 #include <linux/init.h>
65 #include <linux/kernel.h>
66 #include <linux/kthread.h>
67 #include <linux/module.h>
68 #include <linux/mutex.h>
69 #include <linux/slab.h>
70 #include <linux/spinlock.h>
71 #include <linux/srcu.h>
72 #include <linux/ratelimit.h>
73 
74 #include <linux/atomic.h>
75 
76 #include <linux/fsnotify_backend.h>
77 #include "fsnotify.h"
78 
79 #define FSNOTIFY_REAPER_DELAY	(1)	/* 1 jiffy */
80 
81 struct srcu_struct fsnotify_mark_srcu;
82 struct kmem_cache *fsnotify_mark_connector_cachep;
83 
84 static DEFINE_SPINLOCK(destroy_lock);
85 static LIST_HEAD(destroy_list);
86 static struct fsnotify_mark_connector *connector_destroy_list;
87 
88 static void fsnotify_mark_destroy_workfn(struct work_struct *work);
89 static DECLARE_DELAYED_WORK(reaper_work, fsnotify_mark_destroy_workfn);
90 
91 static void fsnotify_connector_destroy_workfn(struct work_struct *work);
92 static DECLARE_WORK(connector_reaper_work, fsnotify_connector_destroy_workfn);
93 
94 void fsnotify_get_mark(struct fsnotify_mark *mark)
95 {
96 	WARN_ON_ONCE(!refcount_read(&mark->refcnt));
97 	refcount_inc(&mark->refcnt);
98 }
99 
100 static fsnotify_connp_t *fsnotify_object_connp(void *obj,
101 				enum fsnotify_obj_type obj_type)
102 {
103 	switch (obj_type) {
104 	case FSNOTIFY_OBJ_TYPE_INODE:
105 		return &((struct inode *)obj)->i_fsnotify_marks;
106 	case FSNOTIFY_OBJ_TYPE_VFSMOUNT:
107 		return &real_mount(obj)->mnt_fsnotify_marks;
108 	case FSNOTIFY_OBJ_TYPE_SB:
109 		return fsnotify_sb_marks(obj);
110 	default:
111 		return NULL;
112 	}
113 }
114 
115 static __u32 *fsnotify_conn_mask_p(struct fsnotify_mark_connector *conn)
116 {
117 	if (conn->type == FSNOTIFY_OBJ_TYPE_INODE)
118 		return &fsnotify_conn_inode(conn)->i_fsnotify_mask;
119 	else if (conn->type == FSNOTIFY_OBJ_TYPE_VFSMOUNT)
120 		return &fsnotify_conn_mount(conn)->mnt_fsnotify_mask;
121 	else if (conn->type == FSNOTIFY_OBJ_TYPE_SB)
122 		return &fsnotify_conn_sb(conn)->s_fsnotify_mask;
123 	return NULL;
124 }
125 
126 __u32 fsnotify_conn_mask(struct fsnotify_mark_connector *conn)
127 {
128 	if (WARN_ON(!fsnotify_valid_obj_type(conn->type)))
129 		return 0;
130 
131 	return *fsnotify_conn_mask_p(conn);
132 }
133 
134 static void fsnotify_get_sb_watched_objects(struct super_block *sb)
135 {
136 	atomic_long_inc(fsnotify_sb_watched_objects(sb));
137 }
138 
139 static void fsnotify_put_sb_watched_objects(struct super_block *sb)
140 {
141 	if (atomic_long_dec_and_test(fsnotify_sb_watched_objects(sb)))
142 		wake_up_var(fsnotify_sb_watched_objects(sb));
143 }
144 
145 static void fsnotify_get_inode_ref(struct inode *inode)
146 {
147 	ihold(inode);
148 	fsnotify_get_sb_watched_objects(inode->i_sb);
149 }
150 
151 static void fsnotify_put_inode_ref(struct inode *inode)
152 {
153 	fsnotify_put_sb_watched_objects(inode->i_sb);
154 	iput(inode);
155 }
156 
157 /*
158  * Grab or drop watched objects reference depending on whether the connector
159  * is attached and has any marks attached.
160  */
161 static void fsnotify_update_sb_watchers(struct super_block *sb,
162 					struct fsnotify_mark_connector *conn)
163 {
164 	struct fsnotify_sb_info *sbinfo = fsnotify_sb_info(sb);
165 	bool is_watched = conn->flags & FSNOTIFY_CONN_FLAG_IS_WATCHED;
166 	struct fsnotify_mark *first_mark = NULL;
167 	unsigned int highest_prio = 0;
168 
169 	if (conn->obj)
170 		first_mark = hlist_entry_safe(conn->list.first,
171 					      struct fsnotify_mark, obj_list);
172 	if (first_mark)
173 		highest_prio = first_mark->group->priority;
174 	if (WARN_ON(highest_prio >= __FSNOTIFY_PRIO_NUM))
175 		highest_prio = 0;
176 
177 	/*
178 	 * If the highest priority of group watching this object is prio,
179 	 * then watched object has a reference on counters [0..prio].
180 	 * Update priority >= 1 watched objects counters.
181 	 */
182 	for (unsigned int p = conn->prio + 1; p <= highest_prio; p++)
183 		atomic_long_inc(&sbinfo->watched_objects[p]);
184 	for (unsigned int p = conn->prio; p > highest_prio; p--)
185 		atomic_long_dec(&sbinfo->watched_objects[p]);
186 	conn->prio = highest_prio;
187 
188 	/* Update priority >= 0 (a.k.a total) watched objects counter */
189 	BUILD_BUG_ON(FSNOTIFY_PRIO_NORMAL != 0);
190 	if (first_mark && !is_watched) {
191 		conn->flags |= FSNOTIFY_CONN_FLAG_IS_WATCHED;
192 		fsnotify_get_sb_watched_objects(sb);
193 	} else if (!first_mark && is_watched) {
194 		conn->flags &= ~FSNOTIFY_CONN_FLAG_IS_WATCHED;
195 		fsnotify_put_sb_watched_objects(sb);
196 	}
197 }
198 
199 /*
200  * Grab or drop inode reference for the connector if needed.
201  *
202  * When it's time to drop the reference, we only clear the HAS_IREF flag and
203  * return the inode object. fsnotify_drop_object() will be resonsible for doing
204  * iput() outside of spinlocks. This happens when last mark that wanted iref is
205  * detached.
206  */
207 static struct inode *fsnotify_update_iref(struct fsnotify_mark_connector *conn,
208 					  bool want_iref)
209 {
210 	bool has_iref = conn->flags & FSNOTIFY_CONN_FLAG_HAS_IREF;
211 	struct inode *inode = NULL;
212 
213 	if (conn->type != FSNOTIFY_OBJ_TYPE_INODE ||
214 	    want_iref == has_iref)
215 		return NULL;
216 
217 	if (want_iref) {
218 		/* Pin inode if any mark wants inode refcount held */
219 		fsnotify_get_inode_ref(fsnotify_conn_inode(conn));
220 		conn->flags |= FSNOTIFY_CONN_FLAG_HAS_IREF;
221 	} else {
222 		/* Unpin inode after detach of last mark that wanted iref */
223 		inode = fsnotify_conn_inode(conn);
224 		conn->flags &= ~FSNOTIFY_CONN_FLAG_HAS_IREF;
225 	}
226 
227 	return inode;
228 }
229 
230 static void *__fsnotify_recalc_mask(struct fsnotify_mark_connector *conn)
231 {
232 	u32 new_mask = 0;
233 	bool want_iref = false;
234 	struct fsnotify_mark *mark;
235 
236 	assert_spin_locked(&conn->lock);
237 	/* We can get detached connector here when inode is getting unlinked. */
238 	if (!fsnotify_valid_obj_type(conn->type))
239 		return NULL;
240 	hlist_for_each_entry(mark, &conn->list, obj_list) {
241 		if (!(mark->flags & FSNOTIFY_MARK_FLAG_ATTACHED))
242 			continue;
243 		new_mask |= fsnotify_calc_mask(mark);
244 		if (conn->type == FSNOTIFY_OBJ_TYPE_INODE &&
245 		    !(mark->flags & FSNOTIFY_MARK_FLAG_NO_IREF))
246 			want_iref = true;
247 	}
248 	*fsnotify_conn_mask_p(conn) = new_mask;
249 
250 	return fsnotify_update_iref(conn, want_iref);
251 }
252 
253 /*
254  * Calculate mask of events for a list of marks. The caller must make sure
255  * connector and connector->obj cannot disappear under us.  Callers achieve
256  * this by holding a mark->lock or mark->group->mark_mutex for a mark on this
257  * list.
258  */
259 void fsnotify_recalc_mask(struct fsnotify_mark_connector *conn)
260 {
261 	if (!conn)
262 		return;
263 
264 	spin_lock(&conn->lock);
265 	__fsnotify_recalc_mask(conn);
266 	spin_unlock(&conn->lock);
267 	if (conn->type == FSNOTIFY_OBJ_TYPE_INODE)
268 		__fsnotify_update_child_dentry_flags(
269 					fsnotify_conn_inode(conn));
270 }
271 
272 /* Free all connectors queued for freeing once SRCU period ends */
273 static void fsnotify_connector_destroy_workfn(struct work_struct *work)
274 {
275 	struct fsnotify_mark_connector *conn, *free;
276 
277 	spin_lock(&destroy_lock);
278 	conn = connector_destroy_list;
279 	connector_destroy_list = NULL;
280 	spin_unlock(&destroy_lock);
281 
282 	synchronize_srcu(&fsnotify_mark_srcu);
283 	while (conn) {
284 		free = conn;
285 		conn = conn->destroy_next;
286 		kmem_cache_free(fsnotify_mark_connector_cachep, free);
287 	}
288 }
289 
290 static void *fsnotify_detach_connector_from_object(
291 					struct fsnotify_mark_connector *conn,
292 					unsigned int *type)
293 {
294 	fsnotify_connp_t *connp = fsnotify_object_connp(conn->obj, conn->type);
295 	struct super_block *sb = fsnotify_connector_sb(conn);
296 	struct inode *inode = NULL;
297 
298 	*type = conn->type;
299 	if (conn->type == FSNOTIFY_OBJ_TYPE_DETACHED)
300 		return NULL;
301 
302 	if (conn->type == FSNOTIFY_OBJ_TYPE_INODE) {
303 		inode = fsnotify_conn_inode(conn);
304 		inode->i_fsnotify_mask = 0;
305 
306 		/* Unpin inode when detaching from connector */
307 		if (!(conn->flags & FSNOTIFY_CONN_FLAG_HAS_IREF))
308 			inode = NULL;
309 	} else if (conn->type == FSNOTIFY_OBJ_TYPE_VFSMOUNT) {
310 		fsnotify_conn_mount(conn)->mnt_fsnotify_mask = 0;
311 	} else if (conn->type == FSNOTIFY_OBJ_TYPE_SB) {
312 		fsnotify_conn_sb(conn)->s_fsnotify_mask = 0;
313 	}
314 
315 	rcu_assign_pointer(*connp, NULL);
316 	conn->obj = NULL;
317 	conn->type = FSNOTIFY_OBJ_TYPE_DETACHED;
318 	fsnotify_update_sb_watchers(sb, conn);
319 
320 	return inode;
321 }
322 
323 static void fsnotify_final_mark_destroy(struct fsnotify_mark *mark)
324 {
325 	struct fsnotify_group *group = mark->group;
326 
327 	if (WARN_ON_ONCE(!group))
328 		return;
329 	group->ops->free_mark(mark);
330 	fsnotify_put_group(group);
331 }
332 
333 /* Drop object reference originally held by a connector */
334 static void fsnotify_drop_object(unsigned int type, void *objp)
335 {
336 	if (!objp)
337 		return;
338 	/* Currently only inode references are passed to be dropped */
339 	if (WARN_ON_ONCE(type != FSNOTIFY_OBJ_TYPE_INODE))
340 		return;
341 	fsnotify_put_inode_ref(objp);
342 }
343 
344 void fsnotify_put_mark(struct fsnotify_mark *mark)
345 {
346 	struct fsnotify_mark_connector *conn = READ_ONCE(mark->connector);
347 	void *objp = NULL;
348 	unsigned int type = FSNOTIFY_OBJ_TYPE_DETACHED;
349 	bool free_conn = false;
350 
351 	/* Catch marks that were actually never attached to object */
352 	if (!conn) {
353 		if (refcount_dec_and_test(&mark->refcnt))
354 			fsnotify_final_mark_destroy(mark);
355 		return;
356 	}
357 
358 	/*
359 	 * We have to be careful so that traversals of obj_list under lock can
360 	 * safely grab mark reference.
361 	 */
362 	if (!refcount_dec_and_lock(&mark->refcnt, &conn->lock))
363 		return;
364 
365 	hlist_del_init_rcu(&mark->obj_list);
366 	if (hlist_empty(&conn->list)) {
367 		objp = fsnotify_detach_connector_from_object(conn, &type);
368 		free_conn = true;
369 	} else {
370 		struct super_block *sb = fsnotify_connector_sb(conn);
371 
372 		/* Update watched objects after detaching mark */
373 		if (sb)
374 			fsnotify_update_sb_watchers(sb, conn);
375 		objp = __fsnotify_recalc_mask(conn);
376 		type = conn->type;
377 	}
378 	WRITE_ONCE(mark->connector, NULL);
379 	spin_unlock(&conn->lock);
380 
381 	fsnotify_drop_object(type, objp);
382 
383 	if (free_conn) {
384 		spin_lock(&destroy_lock);
385 		conn->destroy_next = connector_destroy_list;
386 		connector_destroy_list = conn;
387 		spin_unlock(&destroy_lock);
388 		queue_work(system_unbound_wq, &connector_reaper_work);
389 	}
390 	/*
391 	 * Note that we didn't update flags telling whether inode cares about
392 	 * what's happening with children. We update these flags from
393 	 * __fsnotify_parent() lazily when next event happens on one of our
394 	 * children.
395 	 */
396 	spin_lock(&destroy_lock);
397 	list_add(&mark->g_list, &destroy_list);
398 	spin_unlock(&destroy_lock);
399 	queue_delayed_work(system_unbound_wq, &reaper_work,
400 			   FSNOTIFY_REAPER_DELAY);
401 }
402 EXPORT_SYMBOL_GPL(fsnotify_put_mark);
403 
404 /*
405  * Get mark reference when we found the mark via lockless traversal of object
406  * list. Mark can be already removed from the list by now and on its way to be
407  * destroyed once SRCU period ends.
408  *
409  * Also pin the group so it doesn't disappear under us.
410  */
411 static bool fsnotify_get_mark_safe(struct fsnotify_mark *mark)
412 {
413 	if (!mark)
414 		return true;
415 
416 	if (refcount_inc_not_zero(&mark->refcnt)) {
417 		spin_lock(&mark->lock);
418 		if (mark->flags & FSNOTIFY_MARK_FLAG_ATTACHED) {
419 			/* mark is attached, group is still alive then */
420 			atomic_inc(&mark->group->user_waits);
421 			spin_unlock(&mark->lock);
422 			return true;
423 		}
424 		spin_unlock(&mark->lock);
425 		fsnotify_put_mark(mark);
426 	}
427 	return false;
428 }
429 
430 /*
431  * Puts marks and wakes up group destruction if necessary.
432  *
433  * Pairs with fsnotify_get_mark_safe()
434  */
435 static void fsnotify_put_mark_wake(struct fsnotify_mark *mark)
436 {
437 	if (mark) {
438 		struct fsnotify_group *group = mark->group;
439 
440 		fsnotify_put_mark(mark);
441 		/*
442 		 * We abuse notification_waitq on group shutdown for waiting for
443 		 * all marks pinned when waiting for userspace.
444 		 */
445 		if (atomic_dec_and_test(&group->user_waits) && group->shutdown)
446 			wake_up(&group->notification_waitq);
447 	}
448 }
449 
450 bool fsnotify_prepare_user_wait(struct fsnotify_iter_info *iter_info)
451 	__releases(&fsnotify_mark_srcu)
452 {
453 	int type;
454 
455 	fsnotify_foreach_iter_type(type) {
456 		/* This can fail if mark is being removed */
457 		if (!fsnotify_get_mark_safe(iter_info->marks[type])) {
458 			__release(&fsnotify_mark_srcu);
459 			goto fail;
460 		}
461 	}
462 
463 	/*
464 	 * Now that both marks are pinned by refcount in the inode / vfsmount
465 	 * lists, we can drop SRCU lock, and safely resume the list iteration
466 	 * once userspace returns.
467 	 */
468 	srcu_read_unlock(&fsnotify_mark_srcu, iter_info->srcu_idx);
469 
470 	return true;
471 
472 fail:
473 	for (type--; type >= 0; type--)
474 		fsnotify_put_mark_wake(iter_info->marks[type]);
475 	return false;
476 }
477 
478 void fsnotify_finish_user_wait(struct fsnotify_iter_info *iter_info)
479 	__acquires(&fsnotify_mark_srcu)
480 {
481 	int type;
482 
483 	iter_info->srcu_idx = srcu_read_lock(&fsnotify_mark_srcu);
484 	fsnotify_foreach_iter_type(type)
485 		fsnotify_put_mark_wake(iter_info->marks[type]);
486 }
487 
488 /*
489  * Mark mark as detached, remove it from group list. Mark still stays in object
490  * list until its last reference is dropped. Note that we rely on mark being
491  * removed from group list before corresponding reference to it is dropped. In
492  * particular we rely on mark->connector being valid while we hold
493  * group->mark_mutex if we found the mark through g_list.
494  *
495  * Must be called with group->mark_mutex held. The caller must either hold
496  * reference to the mark or be protected by fsnotify_mark_srcu.
497  */
498 void fsnotify_detach_mark(struct fsnotify_mark *mark)
499 {
500 	fsnotify_group_assert_locked(mark->group);
501 	WARN_ON_ONCE(!srcu_read_lock_held(&fsnotify_mark_srcu) &&
502 		     refcount_read(&mark->refcnt) < 1 +
503 			!!(mark->flags & FSNOTIFY_MARK_FLAG_ATTACHED));
504 
505 	spin_lock(&mark->lock);
506 	/* something else already called this function on this mark */
507 	if (!(mark->flags & FSNOTIFY_MARK_FLAG_ATTACHED)) {
508 		spin_unlock(&mark->lock);
509 		return;
510 	}
511 	mark->flags &= ~FSNOTIFY_MARK_FLAG_ATTACHED;
512 	list_del_init(&mark->g_list);
513 	spin_unlock(&mark->lock);
514 
515 	/* Drop mark reference acquired in fsnotify_add_mark_locked() */
516 	fsnotify_put_mark(mark);
517 }
518 
519 /*
520  * Free fsnotify mark. The mark is actually only marked as being freed.  The
521  * freeing is actually happening only once last reference to the mark is
522  * dropped from a workqueue which first waits for srcu period end.
523  *
524  * Caller must have a reference to the mark or be protected by
525  * fsnotify_mark_srcu.
526  */
527 void fsnotify_free_mark(struct fsnotify_mark *mark)
528 {
529 	struct fsnotify_group *group = mark->group;
530 
531 	spin_lock(&mark->lock);
532 	/* something else already called this function on this mark */
533 	if (!(mark->flags & FSNOTIFY_MARK_FLAG_ALIVE)) {
534 		spin_unlock(&mark->lock);
535 		return;
536 	}
537 	mark->flags &= ~FSNOTIFY_MARK_FLAG_ALIVE;
538 	spin_unlock(&mark->lock);
539 
540 	/*
541 	 * Some groups like to know that marks are being freed.  This is a
542 	 * callback to the group function to let it know that this mark
543 	 * is being freed.
544 	 */
545 	if (group->ops->freeing_mark)
546 		group->ops->freeing_mark(mark, group);
547 }
548 
549 void fsnotify_destroy_mark(struct fsnotify_mark *mark,
550 			   struct fsnotify_group *group)
551 {
552 	fsnotify_group_lock(group);
553 	fsnotify_detach_mark(mark);
554 	fsnotify_group_unlock(group);
555 	fsnotify_free_mark(mark);
556 }
557 EXPORT_SYMBOL_GPL(fsnotify_destroy_mark);
558 
559 /*
560  * Sorting function for lists of fsnotify marks.
561  *
562  * Fanotify supports different notification classes (reflected as priority of
563  * notification group). Events shall be passed to notification groups in
564  * decreasing priority order. To achieve this marks in notification lists for
565  * inodes and vfsmounts are sorted so that priorities of corresponding groups
566  * are descending.
567  *
568  * Furthermore correct handling of the ignore mask requires processing inode
569  * and vfsmount marks of each group together. Using the group address as
570  * further sort criterion provides a unique sorting order and thus we can
571  * merge inode and vfsmount lists of marks in linear time and find groups
572  * present in both lists.
573  *
574  * A return value of 1 signifies that b has priority over a.
575  * A return value of 0 signifies that the two marks have to be handled together.
576  * A return value of -1 signifies that a has priority over b.
577  */
578 int fsnotify_compare_groups(struct fsnotify_group *a, struct fsnotify_group *b)
579 {
580 	if (a == b)
581 		return 0;
582 	if (!a)
583 		return 1;
584 	if (!b)
585 		return -1;
586 	if (a->priority < b->priority)
587 		return 1;
588 	if (a->priority > b->priority)
589 		return -1;
590 	if (a < b)
591 		return 1;
592 	return -1;
593 }
594 
595 static int fsnotify_attach_info_to_sb(struct super_block *sb)
596 {
597 	struct fsnotify_sb_info *sbinfo;
598 
599 	/* sb info is freed on fsnotify_sb_delete() */
600 	sbinfo = kzalloc(sizeof(*sbinfo), GFP_KERNEL);
601 	if (!sbinfo)
602 		return -ENOMEM;
603 
604 	/*
605 	 * cmpxchg() provides the barrier so that callers of fsnotify_sb_info()
606 	 * will observe an initialized structure
607 	 */
608 	if (cmpxchg(&sb->s_fsnotify_info, NULL, sbinfo)) {
609 		/* Someone else created sbinfo for us */
610 		kfree(sbinfo);
611 	}
612 	return 0;
613 }
614 
615 static int fsnotify_attach_connector_to_object(fsnotify_connp_t *connp,
616 					       void *obj, unsigned int obj_type)
617 {
618 	struct fsnotify_mark_connector *conn;
619 
620 	conn = kmem_cache_alloc(fsnotify_mark_connector_cachep, GFP_KERNEL);
621 	if (!conn)
622 		return -ENOMEM;
623 	spin_lock_init(&conn->lock);
624 	INIT_HLIST_HEAD(&conn->list);
625 	conn->flags = 0;
626 	conn->prio = 0;
627 	conn->type = obj_type;
628 	conn->obj = obj;
629 
630 	/*
631 	 * cmpxchg() provides the barrier so that readers of *connp can see
632 	 * only initialized structure
633 	 */
634 	if (cmpxchg(connp, NULL, conn)) {
635 		/* Someone else created list structure for us */
636 		kmem_cache_free(fsnotify_mark_connector_cachep, conn);
637 	}
638 	return 0;
639 }
640 
641 /*
642  * Get mark connector, make sure it is alive and return with its lock held.
643  * This is for users that get connector pointer from inode or mount. Users that
644  * hold reference to a mark on the list may directly lock connector->lock as
645  * they are sure list cannot go away under them.
646  */
647 static struct fsnotify_mark_connector *fsnotify_grab_connector(
648 						fsnotify_connp_t *connp)
649 {
650 	struct fsnotify_mark_connector *conn;
651 	int idx;
652 
653 	idx = srcu_read_lock(&fsnotify_mark_srcu);
654 	conn = srcu_dereference(*connp, &fsnotify_mark_srcu);
655 	if (!conn)
656 		goto out;
657 	spin_lock(&conn->lock);
658 	if (conn->type == FSNOTIFY_OBJ_TYPE_DETACHED) {
659 		spin_unlock(&conn->lock);
660 		srcu_read_unlock(&fsnotify_mark_srcu, idx);
661 		return NULL;
662 	}
663 out:
664 	srcu_read_unlock(&fsnotify_mark_srcu, idx);
665 	return conn;
666 }
667 
668 /*
669  * Add mark into proper place in given list of marks. These marks may be used
670  * for the fsnotify backend to determine which event types should be delivered
671  * to which group and for which inodes. These marks are ordered according to
672  * priority, highest number first, and then by the group's location in memory.
673  */
674 static int fsnotify_add_mark_list(struct fsnotify_mark *mark, void *obj,
675 				  unsigned int obj_type, int add_flags)
676 {
677 	struct super_block *sb = fsnotify_object_sb(obj, obj_type);
678 	struct fsnotify_mark *lmark, *last = NULL;
679 	struct fsnotify_mark_connector *conn;
680 	fsnotify_connp_t *connp;
681 	int cmp;
682 	int err = 0;
683 
684 	if (WARN_ON(!fsnotify_valid_obj_type(obj_type)))
685 		return -EINVAL;
686 
687 	/*
688 	 * Attach the sb info before attaching a connector to any object on sb.
689 	 * The sb info will remain attached as long as sb lives.
690 	 */
691 	if (!fsnotify_sb_info(sb)) {
692 		err = fsnotify_attach_info_to_sb(sb);
693 		if (err)
694 			return err;
695 	}
696 
697 	connp = fsnotify_object_connp(obj, obj_type);
698 restart:
699 	spin_lock(&mark->lock);
700 	conn = fsnotify_grab_connector(connp);
701 	if (!conn) {
702 		spin_unlock(&mark->lock);
703 		err = fsnotify_attach_connector_to_object(connp, obj, obj_type);
704 		if (err)
705 			return err;
706 		goto restart;
707 	}
708 
709 	/* is mark the first mark? */
710 	if (hlist_empty(&conn->list)) {
711 		hlist_add_head_rcu(&mark->obj_list, &conn->list);
712 		goto added;
713 	}
714 
715 	/* should mark be in the middle of the current list? */
716 	hlist_for_each_entry(lmark, &conn->list, obj_list) {
717 		last = lmark;
718 
719 		if ((lmark->group == mark->group) &&
720 		    (lmark->flags & FSNOTIFY_MARK_FLAG_ATTACHED) &&
721 		    !(mark->group->flags & FSNOTIFY_GROUP_DUPS)) {
722 			err = -EEXIST;
723 			goto out_err;
724 		}
725 
726 		cmp = fsnotify_compare_groups(lmark->group, mark->group);
727 		if (cmp >= 0) {
728 			hlist_add_before_rcu(&mark->obj_list, &lmark->obj_list);
729 			goto added;
730 		}
731 	}
732 
733 	BUG_ON(last == NULL);
734 	/* mark should be the last entry.  last is the current last entry */
735 	hlist_add_behind_rcu(&mark->obj_list, &last->obj_list);
736 added:
737 	fsnotify_update_sb_watchers(sb, conn);
738 	/*
739 	 * Since connector is attached to object using cmpxchg() we are
740 	 * guaranteed that connector initialization is fully visible by anyone
741 	 * seeing mark->connector set.
742 	 */
743 	WRITE_ONCE(mark->connector, conn);
744 out_err:
745 	spin_unlock(&conn->lock);
746 	spin_unlock(&mark->lock);
747 	return err;
748 }
749 
750 /*
751  * Attach an initialized mark to a given group and fs object.
752  * These marks may be used for the fsnotify backend to determine which
753  * event types should be delivered to which group.
754  */
755 int fsnotify_add_mark_locked(struct fsnotify_mark *mark,
756 			     void *obj, unsigned int obj_type,
757 			     int add_flags)
758 {
759 	struct fsnotify_group *group = mark->group;
760 	int ret = 0;
761 
762 	fsnotify_group_assert_locked(group);
763 
764 	/*
765 	 * LOCKING ORDER!!!!
766 	 * group->mark_mutex
767 	 * mark->lock
768 	 * mark->connector->lock
769 	 */
770 	spin_lock(&mark->lock);
771 	mark->flags |= FSNOTIFY_MARK_FLAG_ALIVE | FSNOTIFY_MARK_FLAG_ATTACHED;
772 
773 	list_add(&mark->g_list, &group->marks_list);
774 	fsnotify_get_mark(mark); /* for g_list */
775 	spin_unlock(&mark->lock);
776 
777 	ret = fsnotify_add_mark_list(mark, obj, obj_type, add_flags);
778 	if (ret)
779 		goto err;
780 
781 	fsnotify_recalc_mask(mark->connector);
782 
783 	return ret;
784 err:
785 	spin_lock(&mark->lock);
786 	mark->flags &= ~(FSNOTIFY_MARK_FLAG_ALIVE |
787 			 FSNOTIFY_MARK_FLAG_ATTACHED);
788 	list_del_init(&mark->g_list);
789 	spin_unlock(&mark->lock);
790 
791 	fsnotify_put_mark(mark);
792 	return ret;
793 }
794 
795 int fsnotify_add_mark(struct fsnotify_mark *mark, void *obj,
796 		      unsigned int obj_type, int add_flags)
797 {
798 	int ret;
799 	struct fsnotify_group *group = mark->group;
800 
801 	fsnotify_group_lock(group);
802 	ret = fsnotify_add_mark_locked(mark, obj, obj_type, add_flags);
803 	fsnotify_group_unlock(group);
804 	return ret;
805 }
806 EXPORT_SYMBOL_GPL(fsnotify_add_mark);
807 
808 /*
809  * Given a list of marks, find the mark associated with given group. If found
810  * take a reference to that mark and return it, else return NULL.
811  */
812 struct fsnotify_mark *fsnotify_find_mark(void *obj, unsigned int obj_type,
813 					 struct fsnotify_group *group)
814 {
815 	fsnotify_connp_t *connp = fsnotify_object_connp(obj, obj_type);
816 	struct fsnotify_mark_connector *conn;
817 	struct fsnotify_mark *mark;
818 
819 	if (!connp)
820 		return NULL;
821 
822 	conn = fsnotify_grab_connector(connp);
823 	if (!conn)
824 		return NULL;
825 
826 	hlist_for_each_entry(mark, &conn->list, obj_list) {
827 		if (mark->group == group &&
828 		    (mark->flags & FSNOTIFY_MARK_FLAG_ATTACHED)) {
829 			fsnotify_get_mark(mark);
830 			spin_unlock(&conn->lock);
831 			return mark;
832 		}
833 	}
834 	spin_unlock(&conn->lock);
835 	return NULL;
836 }
837 EXPORT_SYMBOL_GPL(fsnotify_find_mark);
838 
839 /* Clear any marks in a group with given type mask */
840 void fsnotify_clear_marks_by_group(struct fsnotify_group *group,
841 				   unsigned int obj_type)
842 {
843 	struct fsnotify_mark *lmark, *mark;
844 	LIST_HEAD(to_free);
845 	struct list_head *head = &to_free;
846 
847 	/* Skip selection step if we want to clear all marks. */
848 	if (obj_type == FSNOTIFY_OBJ_TYPE_ANY) {
849 		head = &group->marks_list;
850 		goto clear;
851 	}
852 	/*
853 	 * We have to be really careful here. Anytime we drop mark_mutex, e.g.
854 	 * fsnotify_clear_marks_by_inode() can come and free marks. Even in our
855 	 * to_free list so we have to use mark_mutex even when accessing that
856 	 * list. And freeing mark requires us to drop mark_mutex. So we can
857 	 * reliably free only the first mark in the list. That's why we first
858 	 * move marks to free to to_free list in one go and then free marks in
859 	 * to_free list one by one.
860 	 */
861 	fsnotify_group_lock(group);
862 	list_for_each_entry_safe(mark, lmark, &group->marks_list, g_list) {
863 		if (mark->connector->type == obj_type)
864 			list_move(&mark->g_list, &to_free);
865 	}
866 	fsnotify_group_unlock(group);
867 
868 clear:
869 	while (1) {
870 		fsnotify_group_lock(group);
871 		if (list_empty(head)) {
872 			fsnotify_group_unlock(group);
873 			break;
874 		}
875 		mark = list_first_entry(head, struct fsnotify_mark, g_list);
876 		fsnotify_get_mark(mark);
877 		fsnotify_detach_mark(mark);
878 		fsnotify_group_unlock(group);
879 		fsnotify_free_mark(mark);
880 		fsnotify_put_mark(mark);
881 	}
882 }
883 
884 /* Destroy all marks attached to an object via connector */
885 void fsnotify_destroy_marks(fsnotify_connp_t *connp)
886 {
887 	struct fsnotify_mark_connector *conn;
888 	struct fsnotify_mark *mark, *old_mark = NULL;
889 	void *objp;
890 	unsigned int type;
891 
892 	conn = fsnotify_grab_connector(connp);
893 	if (!conn)
894 		return;
895 	/*
896 	 * We have to be careful since we can race with e.g.
897 	 * fsnotify_clear_marks_by_group() and once we drop the conn->lock, the
898 	 * list can get modified. However we are holding mark reference and
899 	 * thus our mark cannot be removed from obj_list so we can continue
900 	 * iteration after regaining conn->lock.
901 	 */
902 	hlist_for_each_entry(mark, &conn->list, obj_list) {
903 		fsnotify_get_mark(mark);
904 		spin_unlock(&conn->lock);
905 		if (old_mark)
906 			fsnotify_put_mark(old_mark);
907 		old_mark = mark;
908 		fsnotify_destroy_mark(mark, mark->group);
909 		spin_lock(&conn->lock);
910 	}
911 	/*
912 	 * Detach list from object now so that we don't pin inode until all
913 	 * mark references get dropped. It would lead to strange results such
914 	 * as delaying inode deletion or blocking unmount.
915 	 */
916 	objp = fsnotify_detach_connector_from_object(conn, &type);
917 	spin_unlock(&conn->lock);
918 	if (old_mark)
919 		fsnotify_put_mark(old_mark);
920 	fsnotify_drop_object(type, objp);
921 }
922 
923 /*
924  * Nothing fancy, just initialize lists and locks and counters.
925  */
926 void fsnotify_init_mark(struct fsnotify_mark *mark,
927 			struct fsnotify_group *group)
928 {
929 	memset(mark, 0, sizeof(*mark));
930 	spin_lock_init(&mark->lock);
931 	refcount_set(&mark->refcnt, 1);
932 	fsnotify_get_group(group);
933 	mark->group = group;
934 	WRITE_ONCE(mark->connector, NULL);
935 }
936 EXPORT_SYMBOL_GPL(fsnotify_init_mark);
937 
938 /*
939  * Destroy all marks in destroy_list, waits for SRCU period to finish before
940  * actually freeing marks.
941  */
942 static void fsnotify_mark_destroy_workfn(struct work_struct *work)
943 {
944 	struct fsnotify_mark *mark, *next;
945 	struct list_head private_destroy_list;
946 
947 	spin_lock(&destroy_lock);
948 	/* exchange the list head */
949 	list_replace_init(&destroy_list, &private_destroy_list);
950 	spin_unlock(&destroy_lock);
951 
952 	synchronize_srcu(&fsnotify_mark_srcu);
953 
954 	list_for_each_entry_safe(mark, next, &private_destroy_list, g_list) {
955 		list_del_init(&mark->g_list);
956 		fsnotify_final_mark_destroy(mark);
957 	}
958 }
959 
960 /* Wait for all marks queued for destruction to be actually destroyed */
961 void fsnotify_wait_marks_destroyed(void)
962 {
963 	flush_delayed_work(&reaper_work);
964 }
965 EXPORT_SYMBOL_GPL(fsnotify_wait_marks_destroyed);
966