1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * fs/eventpoll.c (Efficient event retrieval implementation)
4 * Copyright (C) 2001,...,2009 Davide Libenzi
5 *
6 * Davide Libenzi <davidel@xmailserver.org>
7 */
8
9 #include <linux/init.h>
10 #include <linux/kernel.h>
11 #include <linux/sched/signal.h>
12 #include <linux/fs.h>
13 #include <linux/file.h>
14 #include <linux/signal.h>
15 #include <linux/errno.h>
16 #include <linux/mm.h>
17 #include <linux/slab.h>
18 #include <linux/poll.h>
19 #include <linux/string.h>
20 #include <linux/list.h>
21 #include <linux/hash.h>
22 #include <linux/spinlock.h>
23 #include <linux/syscalls.h>
24 #include <linux/rbtree.h>
25 #include <linux/wait.h>
26 #include <linux/eventpoll.h>
27 #include <linux/mount.h>
28 #include <linux/bitops.h>
29 #include <linux/mutex.h>
30 #include <linux/anon_inodes.h>
31 #include <linux/device.h>
32 #include <linux/uaccess.h>
33 #include <asm/io.h>
34 #include <asm/mman.h>
35 #include <linux/atomic.h>
36 #include <linux/proc_fs.h>
37 #include <linux/seq_file.h>
38 #include <linux/compat.h>
39 #include <linux/rculist.h>
40 #include <linux/capability.h>
41 #include <net/busy_poll.h>
42
43 /*
44 * LOCKING:
45 * There are three level of locking required by epoll :
46 *
47 * 1) epnested_mutex (mutex)
48 * 2) ep->mtx (mutex)
49 * 3) ep->lock (spinlock)
50 *
51 * The acquire order is the one listed above, from 1 to 3.
52 * We need a spinlock (ep->lock) because we manipulate objects
53 * from inside the poll callback, that might be triggered from
54 * a wake_up() that in turn might be called from IRQ context.
55 * So we can't sleep inside the poll callback and hence we need
56 * a spinlock. During the event transfer loop (from kernel to
57 * user space) we could end up sleeping due a copy_to_user(), so
58 * we need a lock that will allow us to sleep. This lock is a
59 * mutex (ep->mtx). It is acquired during the event transfer loop,
60 * during epoll_ctl(EPOLL_CTL_DEL) and during eventpoll_release_file().
61 * The epnested_mutex is acquired when inserting an epoll fd onto another
62 * epoll fd. We do this so that we walk the epoll tree and ensure that this
63 * insertion does not create a cycle of epoll file descriptors, which
64 * could lead to deadlock. We need a global mutex to prevent two
65 * simultaneous inserts (A into B and B into A) from racing and
66 * constructing a cycle without either insert observing that it is
67 * going to.
68 * It is necessary to acquire multiple "ep->mtx"es at once in the
69 * case when one epoll fd is added to another. In this case, we
70 * always acquire the locks in the order of nesting (i.e. after
71 * epoll_ctl(e1, EPOLL_CTL_ADD, e2), e1->mtx will always be acquired
72 * before e2->mtx). Since we disallow cycles of epoll file
73 * descriptors, this ensures that the mutexes are well-ordered. In
74 * order to communicate this nesting to lockdep, when walking a tree
75 * of epoll file descriptors, we use the current recursion depth as
76 * the lockdep subkey.
77 * It is possible to drop the "ep->mtx" and to use the global
78 * mutex "epnested_mutex" (together with "ep->lock") to have it working,
79 * but having "ep->mtx" will make the interface more scalable.
80 * Events that require holding "epnested_mutex" are very rare, while for
81 * normal operations the epoll private "ep->mtx" will guarantee
82 * a better scalability.
83 */
84
85 /* Epoll private bits inside the event mask */
86 #define EP_PRIVATE_BITS (EPOLLWAKEUP | EPOLLONESHOT | EPOLLET | EPOLLEXCLUSIVE)
87
88 #define EPOLLINOUT_BITS (EPOLLIN | EPOLLOUT)
89
90 #define EPOLLEXCLUSIVE_OK_BITS (EPOLLINOUT_BITS | EPOLLERR | EPOLLHUP | \
91 EPOLLWAKEUP | EPOLLET | EPOLLEXCLUSIVE)
92
93 /* Maximum number of nesting allowed inside epoll sets */
94 #define EP_MAX_NESTS 4
95
96 #define EP_MAX_EVENTS (INT_MAX / sizeof(struct epoll_event))
97
98 #define EP_UNACTIVE_PTR ((void *) -1L)
99
100 #define EP_ITEM_COST (sizeof(struct epitem) + sizeof(struct eppoll_entry))
101
102 struct epoll_filefd {
103 struct file *file;
104 int fd;
105 } __packed;
106
107 /* Wait structure used by the poll hooks */
108 struct eppoll_entry {
109 /* List header used to link this structure to the "struct epitem" */
110 struct eppoll_entry *next;
111
112 /* The "base" pointer is set to the container "struct epitem" */
113 struct epitem *base;
114
115 /*
116 * Wait queue item that will be linked to the target file wait
117 * queue head.
118 */
119 wait_queue_entry_t wait;
120
121 /* The wait queue head that linked the "wait" wait queue item */
122 wait_queue_head_t *whead;
123 };
124
125 /*
126 * Each file descriptor added to the eventpoll interface will
127 * have an entry of this type linked to the "rbr" RB tree.
128 * Avoid increasing the size of this struct, there can be many thousands
129 * of these on a server and we do not want this to take another cache line.
130 */
131 struct epitem {
132 union {
133 /* RB tree node links this structure to the eventpoll RB tree */
134 struct rb_node rbn;
135 /* Used to free the struct epitem */
136 struct rcu_head rcu;
137 };
138
139 /* List header used to link this structure to the eventpoll ready list */
140 struct list_head rdllink;
141
142 /*
143 * Works together "struct eventpoll"->ovflist in keeping the
144 * single linked chain of items.
145 */
146 struct epitem *next;
147
148 /* The file descriptor information this item refers to */
149 struct epoll_filefd ffd;
150
151 /*
152 * Protected by file->f_lock, true for to-be-released epitem already
153 * removed from the "struct file" items list; together with
154 * eventpoll->refcount orchestrates "struct eventpoll" disposal
155 */
156 bool dying;
157
158 /* List containing poll wait queues */
159 struct eppoll_entry *pwqlist;
160
161 /* The "container" of this item */
162 struct eventpoll *ep;
163
164 /* List header used to link this item to the "struct file" items list */
165 struct hlist_node fllink;
166
167 /* wakeup_source used when EPOLLWAKEUP is set */
168 struct wakeup_source __rcu *ws;
169
170 /* The structure that describe the interested events and the source fd */
171 struct epoll_event event;
172 };
173
174 /*
175 * This structure is stored inside the "private_data" member of the file
176 * structure and represents the main data structure for the eventpoll
177 * interface.
178 */
179 struct eventpoll {
180 /*
181 * This mutex is used to ensure that files are not removed
182 * while epoll is using them. This is held during the event
183 * collection loop, the file cleanup path, the epoll file exit
184 * code and the ctl operations.
185 */
186 struct mutex mtx;
187
188 /* Wait queue used by sys_epoll_wait() */
189 wait_queue_head_t wq;
190
191 /* Wait queue used by file->poll() */
192 wait_queue_head_t poll_wait;
193
194 /* List of ready file descriptors */
195 struct list_head rdllist;
196
197 /* Lock which protects rdllist and ovflist */
198 spinlock_t lock;
199
200 /* RB tree root used to store monitored fd structs */
201 struct rb_root_cached rbr;
202
203 /*
204 * This is a single linked list that chains all the "struct epitem" that
205 * happened while transferring ready events to userspace w/out
206 * holding ->lock.
207 */
208 struct epitem *ovflist;
209
210 /* wakeup_source used when ep_send_events or __ep_eventpoll_poll is running */
211 struct wakeup_source *ws;
212
213 /* The user that created the eventpoll descriptor */
214 struct user_struct *user;
215
216 struct file *file;
217
218 /* used to optimize loop detection check */
219 u64 gen;
220 struct hlist_head refs;
221 u8 loop_check_depth;
222
223 /*
224 * usage count, used together with epitem->dying to
225 * orchestrate the disposal of this struct
226 */
227 refcount_t refcount;
228
229 /* used to defer freeing past ep_get_upwards_depth_proc() RCU walk */
230 struct rcu_head rcu;
231
232 #ifdef CONFIG_NET_RX_BUSY_POLL
233 /* used to track busy poll napi_id */
234 unsigned int napi_id;
235 /* busy poll timeout */
236 u32 busy_poll_usecs;
237 /* busy poll packet budget */
238 u16 busy_poll_budget;
239 bool prefer_busy_poll;
240 #endif
241
242 #ifdef CONFIG_DEBUG_LOCK_ALLOC
243 /* tracks wakeup nests for lockdep validation */
244 u8 nests;
245 #endif
246 };
247
248 /* Wrapper struct used by poll queueing */
249 struct ep_pqueue {
250 poll_table pt;
251 struct epitem *epi;
252 };
253
254 /*
255 * Configuration options available inside /proc/sys/fs/epoll/
256 */
257 /* Maximum number of epoll watched descriptors, per user */
258 static long max_user_watches __read_mostly;
259
260 /* Used for cycles detection */
261 static DEFINE_MUTEX(epnested_mutex);
262
263 static u64 loop_check_gen = 0;
264
265 /* Used to check for epoll file descriptor inclusion loops */
266 static struct eventpoll *inserting_into;
267
268 /* Slab cache used to allocate "struct epitem" */
269 static struct kmem_cache *epi_cache __ro_after_init;
270
271 /* Slab cache used to allocate "struct eppoll_entry" */
272 static struct kmem_cache *pwq_cache __ro_after_init;
273
274 /*
275 * List of files with newly added links, where we may need to limit the number
276 * of emanating paths. Protected by the epnested_mutex.
277 */
278 struct epitems_head {
279 struct hlist_head epitems;
280 struct epitems_head *next;
281 };
282 static struct epitems_head *tfile_check_list = EP_UNACTIVE_PTR;
283
284 static struct kmem_cache *ephead_cache __ro_after_init;
285
free_ephead(struct epitems_head * head)286 static inline void free_ephead(struct epitems_head *head)
287 {
288 if (head)
289 kmem_cache_free(ephead_cache, head);
290 }
291
list_file(struct file * file)292 static void list_file(struct file *file)
293 {
294 struct epitems_head *head;
295
296 head = container_of(file->f_ep, struct epitems_head, epitems);
297 if (!head->next) {
298 head->next = tfile_check_list;
299 tfile_check_list = head;
300 }
301 }
302
unlist_file(struct epitems_head * head)303 static void unlist_file(struct epitems_head *head)
304 {
305 struct epitems_head *to_free = head;
306 struct hlist_node *p = rcu_dereference(hlist_first_rcu(&head->epitems));
307 if (p) {
308 struct epitem *epi= container_of(p, struct epitem, fllink);
309 spin_lock(&epi->ffd.file->f_lock);
310 if (!hlist_empty(&head->epitems))
311 to_free = NULL;
312 head->next = NULL;
313 spin_unlock(&epi->ffd.file->f_lock);
314 }
315 free_ephead(to_free);
316 }
317
318 #ifdef CONFIG_SYSCTL
319
320 #include <linux/sysctl.h>
321
322 static long long_zero;
323 static long long_max = LONG_MAX;
324
325 static const struct ctl_table epoll_table[] = {
326 {
327 .procname = "max_user_watches",
328 .data = &max_user_watches,
329 .maxlen = sizeof(max_user_watches),
330 .mode = 0644,
331 .proc_handler = proc_doulongvec_minmax,
332 .extra1 = &long_zero,
333 .extra2 = &long_max,
334 },
335 };
336
epoll_sysctls_init(void)337 static void __init epoll_sysctls_init(void)
338 {
339 register_sysctl("fs/epoll", epoll_table);
340 }
341 #else
342 #define epoll_sysctls_init() do { } while (0)
343 #endif /* CONFIG_SYSCTL */
344
345 static const struct file_operations eventpoll_fops;
346
is_file_epoll(struct file * f)347 static inline int is_file_epoll(struct file *f)
348 {
349 return f->f_op == &eventpoll_fops;
350 }
351
352 /* Setup the structure that is used as key for the RB tree */
ep_set_ffd(struct epoll_filefd * ffd,struct file * file,int fd)353 static inline void ep_set_ffd(struct epoll_filefd *ffd,
354 struct file *file, int fd)
355 {
356 ffd->file = file;
357 ffd->fd = fd;
358 }
359
360 /* Compare RB tree keys */
ep_cmp_ffd(struct epoll_filefd * p1,struct epoll_filefd * p2)361 static inline int ep_cmp_ffd(struct epoll_filefd *p1,
362 struct epoll_filefd *p2)
363 {
364 return (p1->file > p2->file ? +1:
365 (p1->file < p2->file ? -1 : p1->fd - p2->fd));
366 }
367
368 /* Tells us if the item is currently linked */
ep_is_linked(struct epitem * epi)369 static inline int ep_is_linked(struct epitem *epi)
370 {
371 return !list_empty(&epi->rdllink);
372 }
373
ep_pwq_from_wait(wait_queue_entry_t * p)374 static inline struct eppoll_entry *ep_pwq_from_wait(wait_queue_entry_t *p)
375 {
376 return container_of(p, struct eppoll_entry, wait);
377 }
378
379 /* Get the "struct epitem" from a wait queue pointer */
ep_item_from_wait(wait_queue_entry_t * p)380 static inline struct epitem *ep_item_from_wait(wait_queue_entry_t *p)
381 {
382 return container_of(p, struct eppoll_entry, wait)->base;
383 }
384
385 /**
386 * ep_events_available - Checks if ready events might be available.
387 *
388 * @ep: Pointer to the eventpoll context.
389 *
390 * Return: a value different than %zero if ready events are available,
391 * or %zero otherwise.
392 */
ep_events_available(struct eventpoll * ep)393 static inline int ep_events_available(struct eventpoll *ep)
394 {
395 return !list_empty_careful(&ep->rdllist) ||
396 READ_ONCE(ep->ovflist) != EP_UNACTIVE_PTR;
397 }
398
399 #ifdef CONFIG_NET_RX_BUSY_POLL
400 /**
401 * busy_loop_ep_timeout - check if busy poll has timed out. The timeout value
402 * from the epoll instance ep is preferred, but if it is not set fallback to
403 * the system-wide global via busy_loop_timeout.
404 *
405 * @start_time: The start time used to compute the remaining time until timeout.
406 * @ep: Pointer to the eventpoll context.
407 *
408 * Return: true if the timeout has expired, false otherwise.
409 */
busy_loop_ep_timeout(unsigned long start_time,struct eventpoll * ep)410 static bool busy_loop_ep_timeout(unsigned long start_time,
411 struct eventpoll *ep)
412 {
413 unsigned long bp_usec = READ_ONCE(ep->busy_poll_usecs);
414
415 if (bp_usec) {
416 unsigned long end_time = start_time + bp_usec;
417 unsigned long now = busy_loop_current_time();
418
419 return time_after(now, end_time);
420 } else {
421 return busy_loop_timeout(start_time);
422 }
423 }
424
ep_busy_loop_on(struct eventpoll * ep)425 static bool ep_busy_loop_on(struct eventpoll *ep)
426 {
427 return !!READ_ONCE(ep->busy_poll_usecs) ||
428 READ_ONCE(ep->prefer_busy_poll) ||
429 net_busy_loop_on();
430 }
431
ep_busy_loop_end(void * p,unsigned long start_time)432 static bool ep_busy_loop_end(void *p, unsigned long start_time)
433 {
434 struct eventpoll *ep = p;
435
436 return ep_events_available(ep) || busy_loop_ep_timeout(start_time, ep);
437 }
438
439 /*
440 * Busy poll if globally on and supporting sockets found && no events,
441 * busy loop will return if need_resched or ep_events_available.
442 *
443 * we must do our busy polling with irqs enabled
444 */
ep_busy_loop(struct eventpoll * ep)445 static bool ep_busy_loop(struct eventpoll *ep)
446 {
447 unsigned int napi_id = READ_ONCE(ep->napi_id);
448 u16 budget = READ_ONCE(ep->busy_poll_budget);
449 bool prefer_busy_poll = READ_ONCE(ep->prefer_busy_poll);
450
451 if (!budget)
452 budget = BUSY_POLL_BUDGET;
453
454 if (napi_id_valid(napi_id) && ep_busy_loop_on(ep)) {
455 napi_busy_loop(napi_id, ep_busy_loop_end,
456 ep, prefer_busy_poll, budget);
457 if (ep_events_available(ep))
458 return true;
459 /*
460 * Busy poll timed out. Drop NAPI ID for now, we can add
461 * it back in when we have moved a socket with a valid NAPI
462 * ID onto the ready list.
463 */
464 if (prefer_busy_poll)
465 napi_resume_irqs(napi_id);
466 ep->napi_id = 0;
467 return false;
468 }
469 return false;
470 }
471
472 /*
473 * Set epoll busy poll NAPI ID from sk.
474 */
ep_set_busy_poll_napi_id(struct epitem * epi)475 static inline void ep_set_busy_poll_napi_id(struct epitem *epi)
476 {
477 struct eventpoll *ep = epi->ep;
478 unsigned int napi_id;
479 struct socket *sock;
480 struct sock *sk;
481
482 if (!ep_busy_loop_on(ep))
483 return;
484
485 sock = sock_from_file(epi->ffd.file);
486 if (!sock)
487 return;
488
489 sk = sock->sk;
490 if (!sk)
491 return;
492
493 napi_id = READ_ONCE(sk->sk_napi_id);
494
495 /* Non-NAPI IDs can be rejected
496 * or
497 * Nothing to do if we already have this ID
498 */
499 if (!napi_id_valid(napi_id) || napi_id == ep->napi_id)
500 return;
501
502 /* record NAPI ID for use in next busy poll */
503 ep->napi_id = napi_id;
504 }
505
ep_eventpoll_bp_ioctl(struct file * file,unsigned int cmd,unsigned long arg)506 static long ep_eventpoll_bp_ioctl(struct file *file, unsigned int cmd,
507 unsigned long arg)
508 {
509 struct eventpoll *ep = file->private_data;
510 void __user *uarg = (void __user *)arg;
511 struct epoll_params epoll_params;
512
513 switch (cmd) {
514 case EPIOCSPARAMS:
515 if (copy_from_user(&epoll_params, uarg, sizeof(epoll_params)))
516 return -EFAULT;
517
518 /* pad byte must be zero */
519 if (epoll_params.__pad)
520 return -EINVAL;
521
522 if (epoll_params.busy_poll_usecs > S32_MAX)
523 return -EINVAL;
524
525 if (epoll_params.prefer_busy_poll > 1)
526 return -EINVAL;
527
528 if (epoll_params.busy_poll_budget > NAPI_POLL_WEIGHT &&
529 !capable(CAP_NET_ADMIN))
530 return -EPERM;
531
532 WRITE_ONCE(ep->busy_poll_usecs, epoll_params.busy_poll_usecs);
533 WRITE_ONCE(ep->busy_poll_budget, epoll_params.busy_poll_budget);
534 WRITE_ONCE(ep->prefer_busy_poll, epoll_params.prefer_busy_poll);
535 return 0;
536 case EPIOCGPARAMS:
537 memset(&epoll_params, 0, sizeof(epoll_params));
538 epoll_params.busy_poll_usecs = READ_ONCE(ep->busy_poll_usecs);
539 epoll_params.busy_poll_budget = READ_ONCE(ep->busy_poll_budget);
540 epoll_params.prefer_busy_poll = READ_ONCE(ep->prefer_busy_poll);
541 if (copy_to_user(uarg, &epoll_params, sizeof(epoll_params)))
542 return -EFAULT;
543 return 0;
544 default:
545 return -ENOIOCTLCMD;
546 }
547 }
548
ep_suspend_napi_irqs(struct eventpoll * ep)549 static void ep_suspend_napi_irqs(struct eventpoll *ep)
550 {
551 unsigned int napi_id = READ_ONCE(ep->napi_id);
552
553 if (napi_id_valid(napi_id) && READ_ONCE(ep->prefer_busy_poll))
554 napi_suspend_irqs(napi_id);
555 }
556
ep_resume_napi_irqs(struct eventpoll * ep)557 static void ep_resume_napi_irqs(struct eventpoll *ep)
558 {
559 unsigned int napi_id = READ_ONCE(ep->napi_id);
560
561 if (napi_id_valid(napi_id) && READ_ONCE(ep->prefer_busy_poll))
562 napi_resume_irqs(napi_id);
563 }
564
565 #else
566
ep_busy_loop(struct eventpoll * ep)567 static inline bool ep_busy_loop(struct eventpoll *ep)
568 {
569 return false;
570 }
571
ep_set_busy_poll_napi_id(struct epitem * epi)572 static inline void ep_set_busy_poll_napi_id(struct epitem *epi)
573 {
574 }
575
ep_eventpoll_bp_ioctl(struct file * file,unsigned int cmd,unsigned long arg)576 static long ep_eventpoll_bp_ioctl(struct file *file, unsigned int cmd,
577 unsigned long arg)
578 {
579 return -EOPNOTSUPP;
580 }
581
ep_suspend_napi_irqs(struct eventpoll * ep)582 static void ep_suspend_napi_irqs(struct eventpoll *ep)
583 {
584 }
585
ep_resume_napi_irqs(struct eventpoll * ep)586 static void ep_resume_napi_irqs(struct eventpoll *ep)
587 {
588 }
589
590 #endif /* CONFIG_NET_RX_BUSY_POLL */
591
592 /*
593 * As described in commit 0ccf831cb lockdep: annotate epoll
594 * the use of wait queues used by epoll is done in a very controlled
595 * manner. Wake ups can nest inside each other, but are never done
596 * with the same locking. For example:
597 *
598 * dfd = socket(...);
599 * efd1 = epoll_create();
600 * efd2 = epoll_create();
601 * epoll_ctl(efd1, EPOLL_CTL_ADD, dfd, ...);
602 * epoll_ctl(efd2, EPOLL_CTL_ADD, efd1, ...);
603 *
604 * When a packet arrives to the device underneath "dfd", the net code will
605 * issue a wake_up() on its poll wake list. Epoll (efd1) has installed a
606 * callback wakeup entry on that queue, and the wake_up() performed by the
607 * "dfd" net code will end up in ep_poll_callback(). At this point epoll
608 * (efd1) notices that it may have some event ready, so it needs to wake up
609 * the waiters on its poll wait list (efd2). So it calls ep_poll_safewake()
610 * that ends up in another wake_up(), after having checked about the
611 * recursion constraints. That are, no more than EP_MAX_NESTS, to avoid
612 * stack blasting.
613 *
614 * When CONFIG_DEBUG_LOCK_ALLOC is enabled, make sure lockdep can handle
615 * this special case of epoll.
616 */
617 #ifdef CONFIG_DEBUG_LOCK_ALLOC
618
ep_poll_safewake(struct eventpoll * ep,struct epitem * epi,unsigned pollflags)619 static void ep_poll_safewake(struct eventpoll *ep, struct epitem *epi,
620 unsigned pollflags)
621 {
622 struct eventpoll *ep_src;
623 unsigned long flags;
624 u8 nests = 0;
625
626 /*
627 * To set the subclass or nesting level for spin_lock_irqsave_nested()
628 * it might be natural to create a per-cpu nest count. However, since
629 * we can recurse on ep->poll_wait.lock, and a non-raw spinlock can
630 * schedule() in the -rt kernel, the per-cpu variable are no longer
631 * protected. Thus, we are introducing a per eventpoll nest field.
632 * If we are not being call from ep_poll_callback(), epi is NULL and
633 * we are at the first level of nesting, 0. Otherwise, we are being
634 * called from ep_poll_callback() and if a previous wakeup source is
635 * not an epoll file itself, we are at depth 1 since the wakeup source
636 * is depth 0. If the wakeup source is a previous epoll file in the
637 * wakeup chain then we use its nests value and record ours as
638 * nests + 1. The previous epoll file nests value is stable since its
639 * already holding its own poll_wait.lock.
640 */
641 if (epi) {
642 if ((is_file_epoll(epi->ffd.file))) {
643 ep_src = epi->ffd.file->private_data;
644 nests = ep_src->nests;
645 } else {
646 nests = 1;
647 }
648 }
649 spin_lock_irqsave_nested(&ep->poll_wait.lock, flags, nests);
650 ep->nests = nests + 1;
651 wake_up_locked_poll(&ep->poll_wait, EPOLLIN | pollflags);
652 ep->nests = 0;
653 spin_unlock_irqrestore(&ep->poll_wait.lock, flags);
654 }
655
656 #else
657
ep_poll_safewake(struct eventpoll * ep,struct epitem * epi,__poll_t pollflags)658 static void ep_poll_safewake(struct eventpoll *ep, struct epitem *epi,
659 __poll_t pollflags)
660 {
661 wake_up_poll(&ep->poll_wait, EPOLLIN | pollflags);
662 }
663
664 #endif
665
ep_remove_wait_queue(struct eppoll_entry * pwq)666 static void ep_remove_wait_queue(struct eppoll_entry *pwq)
667 {
668 wait_queue_head_t *whead;
669
670 rcu_read_lock();
671 /*
672 * If it is cleared by POLLFREE, it should be rcu-safe.
673 * If we read NULL we need a barrier paired with
674 * smp_store_release() in ep_poll_callback(), otherwise
675 * we rely on whead->lock.
676 */
677 whead = smp_load_acquire(&pwq->whead);
678 if (whead)
679 remove_wait_queue(whead, &pwq->wait);
680 rcu_read_unlock();
681 }
682
683 /*
684 * This function unregisters poll callbacks from the associated file
685 * descriptor. Must be called with "mtx" held.
686 */
ep_unregister_pollwait(struct eventpoll * ep,struct epitem * epi)687 static void ep_unregister_pollwait(struct eventpoll *ep, struct epitem *epi)
688 {
689 struct eppoll_entry **p = &epi->pwqlist;
690 struct eppoll_entry *pwq;
691
692 while ((pwq = *p) != NULL) {
693 *p = pwq->next;
694 ep_remove_wait_queue(pwq);
695 kmem_cache_free(pwq_cache, pwq);
696 }
697 }
698
699 /* call only when ep->mtx is held */
ep_wakeup_source(struct epitem * epi)700 static inline struct wakeup_source *ep_wakeup_source(struct epitem *epi)
701 {
702 return rcu_dereference_check(epi->ws, lockdep_is_held(&epi->ep->mtx));
703 }
704
705 /* call only when ep->mtx is held */
ep_pm_stay_awake(struct epitem * epi)706 static inline void ep_pm_stay_awake(struct epitem *epi)
707 {
708 struct wakeup_source *ws = ep_wakeup_source(epi);
709
710 if (ws)
711 __pm_stay_awake(ws);
712 }
713
ep_has_wakeup_source(struct epitem * epi)714 static inline bool ep_has_wakeup_source(struct epitem *epi)
715 {
716 return rcu_access_pointer(epi->ws) ? true : false;
717 }
718
719 /* call when ep->mtx cannot be held (ep_poll_callback) */
ep_pm_stay_awake_rcu(struct epitem * epi)720 static inline void ep_pm_stay_awake_rcu(struct epitem *epi)
721 {
722 struct wakeup_source *ws;
723
724 rcu_read_lock();
725 ws = rcu_dereference(epi->ws);
726 if (ws)
727 __pm_stay_awake(ws);
728 rcu_read_unlock();
729 }
730
731
732 /*
733 * ep->mutex needs to be held because we could be hit by
734 * eventpoll_release_file() and epoll_ctl().
735 */
ep_start_scan(struct eventpoll * ep,struct list_head * txlist)736 static void ep_start_scan(struct eventpoll *ep, struct list_head *txlist)
737 {
738 /*
739 * Steal the ready list, and re-init the original one to the
740 * empty list. Also, set ep->ovflist to NULL so that events
741 * happening while looping w/out locks, are not lost. We cannot
742 * have the poll callback to queue directly on ep->rdllist,
743 * because we want the "sproc" callback to be able to do it
744 * in a lockless way.
745 */
746 lockdep_assert_irqs_enabled();
747 spin_lock_irq(&ep->lock);
748 list_splice_init(&ep->rdllist, txlist);
749 WRITE_ONCE(ep->ovflist, NULL);
750 spin_unlock_irq(&ep->lock);
751 }
752
ep_done_scan(struct eventpoll * ep,struct list_head * txlist)753 static void ep_done_scan(struct eventpoll *ep,
754 struct list_head *txlist)
755 {
756 struct epitem *epi, *nepi;
757
758 spin_lock_irq(&ep->lock);
759 /*
760 * During the time we spent inside the "sproc" callback, some
761 * other events might have been queued by the poll callback.
762 * We re-insert them inside the main ready-list here.
763 */
764 for (nepi = READ_ONCE(ep->ovflist); (epi = nepi) != NULL;
765 nepi = epi->next, epi->next = EP_UNACTIVE_PTR) {
766 /*
767 * We need to check if the item is already in the list.
768 * During the "sproc" callback execution time, items are
769 * queued into ->ovflist but the "txlist" might already
770 * contain them, and the list_splice() below takes care of them.
771 */
772 if (!ep_is_linked(epi)) {
773 /*
774 * ->ovflist is LIFO, so we have to reverse it in order
775 * to keep in FIFO.
776 */
777 list_add(&epi->rdllink, &ep->rdllist);
778 ep_pm_stay_awake(epi);
779 }
780 }
781 /*
782 * We need to set back ep->ovflist to EP_UNACTIVE_PTR, so that after
783 * releasing the lock, events will be queued in the normal way inside
784 * ep->rdllist.
785 */
786 WRITE_ONCE(ep->ovflist, EP_UNACTIVE_PTR);
787
788 /*
789 * Quickly re-inject items left on "txlist".
790 */
791 list_splice(txlist, &ep->rdllist);
792 __pm_relax(ep->ws);
793
794 if (!list_empty(&ep->rdllist)) {
795 if (waitqueue_active(&ep->wq))
796 wake_up(&ep->wq);
797 }
798
799 spin_unlock_irq(&ep->lock);
800 }
801
ep_get(struct eventpoll * ep)802 static void ep_get(struct eventpoll *ep)
803 {
804 refcount_inc(&ep->refcount);
805 }
806
807 /*
808 * Returns true if the event poll can be disposed
809 */
ep_refcount_dec_and_test(struct eventpoll * ep)810 static bool ep_refcount_dec_and_test(struct eventpoll *ep)
811 {
812 if (!refcount_dec_and_test(&ep->refcount))
813 return false;
814
815 WARN_ON_ONCE(!RB_EMPTY_ROOT(&ep->rbr.rb_root));
816 return true;
817 }
818
ep_free(struct eventpoll * ep)819 static void ep_free(struct eventpoll *ep)
820 {
821 ep_resume_napi_irqs(ep);
822 mutex_destroy(&ep->mtx);
823 free_uid(ep->user);
824 wakeup_source_unregister(ep->ws);
825 /* ep_get_upwards_depth_proc() may still hold epi->ep under RCU */
826 kfree_rcu(ep, rcu);
827 }
828
829 /*
830 * Removes a "struct epitem" from the eventpoll RB tree and deallocates
831 * all the associated resources. Must be called with "mtx" held.
832 * If the dying flag is set, do the removal only if force is true.
833 * This prevents ep_clear_and_put() from dropping all the ep references
834 * while running concurrently with eventpoll_release_file().
835 * Returns true if the eventpoll can be disposed.
836 */
__ep_remove(struct eventpoll * ep,struct epitem * epi,bool force)837 static bool __ep_remove(struct eventpoll *ep, struct epitem *epi, bool force)
838 {
839 struct file *file = epi->ffd.file;
840 struct epitems_head *to_free;
841 struct hlist_head *head;
842
843 lockdep_assert_irqs_enabled();
844
845 /*
846 * Removes poll wait queue hooks.
847 */
848 ep_unregister_pollwait(ep, epi);
849
850 /* Remove the current item from the list of epoll hooks */
851 spin_lock(&file->f_lock);
852 if (epi->dying && !force) {
853 spin_unlock(&file->f_lock);
854 return false;
855 }
856
857 to_free = NULL;
858 head = file->f_ep;
859 if (head->first == &epi->fllink && !epi->fllink.next) {
860 /* See eventpoll_release() for details. */
861 WRITE_ONCE(file->f_ep, NULL);
862 if (!is_file_epoll(file)) {
863 struct epitems_head *v;
864 v = container_of(head, struct epitems_head, epitems);
865 if (!smp_load_acquire(&v->next))
866 to_free = v;
867 }
868 }
869 hlist_del_rcu(&epi->fllink);
870 spin_unlock(&file->f_lock);
871 free_ephead(to_free);
872
873 rb_erase_cached(&epi->rbn, &ep->rbr);
874
875 spin_lock_irq(&ep->lock);
876 if (ep_is_linked(epi))
877 list_del_init(&epi->rdllink);
878 spin_unlock_irq(&ep->lock);
879
880 wakeup_source_unregister(ep_wakeup_source(epi));
881 /*
882 * At this point it is safe to free the eventpoll item. Use the union
883 * field epi->rcu, since we are trying to minimize the size of
884 * 'struct epitem'. The 'rbn' field is no longer in use. Protected by
885 * ep->mtx. The rcu read side, reverse_path_check_proc(), does not make
886 * use of the rbn field.
887 */
888 kfree_rcu(epi, rcu);
889
890 percpu_counter_dec(&ep->user->epoll_watches);
891 return true;
892 }
893
894 /*
895 * ep_remove variant for callers owing an additional reference to the ep
896 */
ep_remove_safe(struct eventpoll * ep,struct epitem * epi)897 static void ep_remove_safe(struct eventpoll *ep, struct epitem *epi)
898 {
899 if (__ep_remove(ep, epi, false))
900 WARN_ON_ONCE(ep_refcount_dec_and_test(ep));
901 }
902
ep_clear_and_put(struct eventpoll * ep)903 static void ep_clear_and_put(struct eventpoll *ep)
904 {
905 struct rb_node *rbp, *next;
906 struct epitem *epi;
907
908 /* We need to release all tasks waiting for these file */
909 if (waitqueue_active(&ep->poll_wait))
910 ep_poll_safewake(ep, NULL, 0);
911
912 mutex_lock(&ep->mtx);
913
914 /*
915 * Walks through the whole tree by unregistering poll callbacks.
916 */
917 for (rbp = rb_first_cached(&ep->rbr); rbp; rbp = rb_next(rbp)) {
918 epi = rb_entry(rbp, struct epitem, rbn);
919
920 ep_unregister_pollwait(ep, epi);
921 cond_resched();
922 }
923
924 /*
925 * Walks through the whole tree and try to free each "struct epitem".
926 * Note that ep_remove_safe() will not remove the epitem in case of a
927 * racing eventpoll_release_file(); the latter will do the removal.
928 * At this point we are sure no poll callbacks will be lingering around.
929 * Since we still own a reference to the eventpoll struct, the loop can't
930 * dispose it.
931 */
932 for (rbp = rb_first_cached(&ep->rbr); rbp; rbp = next) {
933 next = rb_next(rbp);
934 epi = rb_entry(rbp, struct epitem, rbn);
935 ep_remove_safe(ep, epi);
936 cond_resched();
937 }
938
939 mutex_unlock(&ep->mtx);
940 if (ep_refcount_dec_and_test(ep))
941 ep_free(ep);
942 }
943
ep_eventpoll_ioctl(struct file * file,unsigned int cmd,unsigned long arg)944 static long ep_eventpoll_ioctl(struct file *file, unsigned int cmd,
945 unsigned long arg)
946 {
947 int ret;
948
949 if (!is_file_epoll(file))
950 return -EINVAL;
951
952 switch (cmd) {
953 case EPIOCSPARAMS:
954 case EPIOCGPARAMS:
955 ret = ep_eventpoll_bp_ioctl(file, cmd, arg);
956 break;
957 default:
958 ret = -EINVAL;
959 break;
960 }
961
962 return ret;
963 }
964
ep_eventpoll_release(struct inode * inode,struct file * file)965 static int ep_eventpoll_release(struct inode *inode, struct file *file)
966 {
967 struct eventpoll *ep = file->private_data;
968
969 if (ep)
970 ep_clear_and_put(ep);
971
972 return 0;
973 }
974
975 static __poll_t ep_item_poll(const struct epitem *epi, poll_table *pt, int depth);
976
__ep_eventpoll_poll(struct file * file,poll_table * wait,int depth)977 static __poll_t __ep_eventpoll_poll(struct file *file, poll_table *wait, int depth)
978 {
979 struct eventpoll *ep = file->private_data;
980 LIST_HEAD(txlist);
981 struct epitem *epi, *tmp;
982 poll_table pt;
983 __poll_t res = 0;
984
985 init_poll_funcptr(&pt, NULL);
986
987 /* Insert inside our poll wait queue */
988 poll_wait(file, &ep->poll_wait, wait);
989
990 /*
991 * Proceed to find out if wanted events are really available inside
992 * the ready list.
993 */
994 mutex_lock_nested(&ep->mtx, depth);
995 ep_start_scan(ep, &txlist);
996 list_for_each_entry_safe(epi, tmp, &txlist, rdllink) {
997 if (ep_item_poll(epi, &pt, depth + 1)) {
998 res = EPOLLIN | EPOLLRDNORM;
999 break;
1000 } else {
1001 /*
1002 * Item has been dropped into the ready list by the poll
1003 * callback, but it's not actually ready, as far as
1004 * caller requested events goes. We can remove it here.
1005 */
1006 __pm_relax(ep_wakeup_source(epi));
1007 list_del_init(&epi->rdllink);
1008 }
1009 }
1010 ep_done_scan(ep, &txlist);
1011 mutex_unlock(&ep->mtx);
1012 return res;
1013 }
1014
1015 /*
1016 * The ffd.file pointer may be in the process of being torn down due to
1017 * being closed, but we may not have finished eventpoll_release() yet.
1018 *
1019 * Normally, even with the atomic_long_inc_not_zero, the file may have
1020 * been free'd and then gotten re-allocated to something else (since
1021 * files are not RCU-delayed, they are SLAB_TYPESAFE_BY_RCU).
1022 *
1023 * But for epoll, users hold the ep->mtx mutex, and as such any file in
1024 * the process of being free'd will block in eventpoll_release_file()
1025 * and thus the underlying file allocation will not be free'd, and the
1026 * file re-use cannot happen.
1027 *
1028 * For the same reason we can avoid a rcu_read_lock() around the
1029 * operation - 'ffd.file' cannot go away even if the refcount has
1030 * reached zero (but we must still not call out to ->poll() functions
1031 * etc).
1032 */
epi_fget(const struct epitem * epi)1033 static struct file *epi_fget(const struct epitem *epi)
1034 {
1035 struct file *file;
1036
1037 file = epi->ffd.file;
1038 if (!file_ref_get(&file->f_ref))
1039 file = NULL;
1040 return file;
1041 }
1042
1043 /*
1044 * Differs from ep_eventpoll_poll() in that internal callers already have
1045 * the ep->mtx so we need to start from depth=1, such that mutex_lock_nested()
1046 * is correctly annotated.
1047 */
ep_item_poll(const struct epitem * epi,poll_table * pt,int depth)1048 static __poll_t ep_item_poll(const struct epitem *epi, poll_table *pt,
1049 int depth)
1050 {
1051 struct file *file = epi_fget(epi);
1052 __poll_t res;
1053
1054 /*
1055 * We could return EPOLLERR | EPOLLHUP or something, but let's
1056 * treat this more as "file doesn't exist, poll didn't happen".
1057 */
1058 if (!file)
1059 return 0;
1060
1061 pt->_key = epi->event.events;
1062 if (!is_file_epoll(file))
1063 res = vfs_poll(file, pt);
1064 else
1065 res = __ep_eventpoll_poll(file, pt, depth);
1066 fput(file);
1067 return res & epi->event.events;
1068 }
1069
ep_eventpoll_poll(struct file * file,poll_table * wait)1070 static __poll_t ep_eventpoll_poll(struct file *file, poll_table *wait)
1071 {
1072 return __ep_eventpoll_poll(file, wait, 0);
1073 }
1074
1075 #ifdef CONFIG_PROC_FS
ep_show_fdinfo(struct seq_file * m,struct file * f)1076 static void ep_show_fdinfo(struct seq_file *m, struct file *f)
1077 {
1078 struct eventpoll *ep = f->private_data;
1079 struct rb_node *rbp;
1080
1081 mutex_lock(&ep->mtx);
1082 for (rbp = rb_first_cached(&ep->rbr); rbp; rbp = rb_next(rbp)) {
1083 struct epitem *epi = rb_entry(rbp, struct epitem, rbn);
1084 struct inode *inode = file_inode(epi->ffd.file);
1085
1086 seq_printf(m, "tfd: %8d events: %8x data: %16llx "
1087 " pos:%lli ino:%lx sdev:%x\n",
1088 epi->ffd.fd, epi->event.events,
1089 (long long)epi->event.data,
1090 (long long)epi->ffd.file->f_pos,
1091 inode->i_ino, inode->i_sb->s_dev);
1092 if (seq_has_overflowed(m))
1093 break;
1094 }
1095 mutex_unlock(&ep->mtx);
1096 }
1097 #endif
1098
1099 /* File callbacks that implement the eventpoll file behaviour */
1100 static const struct file_operations eventpoll_fops = {
1101 #ifdef CONFIG_PROC_FS
1102 .show_fdinfo = ep_show_fdinfo,
1103 #endif
1104 .release = ep_eventpoll_release,
1105 .poll = ep_eventpoll_poll,
1106 .llseek = noop_llseek,
1107 .unlocked_ioctl = ep_eventpoll_ioctl,
1108 .compat_ioctl = compat_ptr_ioctl,
1109 };
1110
1111 /*
1112 * This is called from eventpoll_release() to unlink files from the eventpoll
1113 * interface. We need to have this facility to cleanup correctly files that are
1114 * closed without being removed from the eventpoll interface.
1115 */
eventpoll_release_file(struct file * file)1116 void eventpoll_release_file(struct file *file)
1117 {
1118 struct eventpoll *ep;
1119 struct epitem *epi;
1120 bool dispose;
1121
1122 /*
1123 * Use the 'dying' flag to prevent a concurrent ep_clear_and_put() from
1124 * touching the epitems list before eventpoll_release_file() can access
1125 * the ep->mtx.
1126 */
1127 again:
1128 spin_lock(&file->f_lock);
1129 if (file->f_ep && file->f_ep->first) {
1130 epi = hlist_entry(file->f_ep->first, struct epitem, fllink);
1131 epi->dying = true;
1132 spin_unlock(&file->f_lock);
1133
1134 /*
1135 * ep access is safe as we still own a reference to the ep
1136 * struct
1137 */
1138 ep = epi->ep;
1139 mutex_lock(&ep->mtx);
1140 dispose = __ep_remove(ep, epi, true);
1141 mutex_unlock(&ep->mtx);
1142
1143 if (dispose && ep_refcount_dec_and_test(ep))
1144 ep_free(ep);
1145 goto again;
1146 }
1147 spin_unlock(&file->f_lock);
1148 }
1149
ep_alloc(struct eventpoll ** pep)1150 static int ep_alloc(struct eventpoll **pep)
1151 {
1152 struct eventpoll *ep;
1153
1154 ep = kzalloc_obj(*ep);
1155 if (unlikely(!ep))
1156 return -ENOMEM;
1157
1158 mutex_init(&ep->mtx);
1159 spin_lock_init(&ep->lock);
1160 init_waitqueue_head(&ep->wq);
1161 init_waitqueue_head(&ep->poll_wait);
1162 INIT_LIST_HEAD(&ep->rdllist);
1163 ep->rbr = RB_ROOT_CACHED;
1164 ep->ovflist = EP_UNACTIVE_PTR;
1165 ep->user = get_current_user();
1166 refcount_set(&ep->refcount, 1);
1167
1168 *pep = ep;
1169
1170 return 0;
1171 }
1172
1173 /*
1174 * Search the file inside the eventpoll tree. The RB tree operations
1175 * are protected by the "mtx" mutex, and ep_find() must be called with
1176 * "mtx" held.
1177 */
ep_find(struct eventpoll * ep,struct file * file,int fd)1178 static struct epitem *ep_find(struct eventpoll *ep, struct file *file, int fd)
1179 {
1180 int kcmp;
1181 struct rb_node *rbp;
1182 struct epitem *epi, *epir = NULL;
1183 struct epoll_filefd ffd;
1184
1185 ep_set_ffd(&ffd, file, fd);
1186 for (rbp = ep->rbr.rb_root.rb_node; rbp; ) {
1187 epi = rb_entry(rbp, struct epitem, rbn);
1188 kcmp = ep_cmp_ffd(&ffd, &epi->ffd);
1189 if (kcmp > 0)
1190 rbp = rbp->rb_right;
1191 else if (kcmp < 0)
1192 rbp = rbp->rb_left;
1193 else {
1194 epir = epi;
1195 break;
1196 }
1197 }
1198
1199 return epir;
1200 }
1201
1202 #ifdef CONFIG_KCMP
ep_find_tfd(struct eventpoll * ep,int tfd,unsigned long toff)1203 static struct epitem *ep_find_tfd(struct eventpoll *ep, int tfd, unsigned long toff)
1204 {
1205 struct rb_node *rbp;
1206 struct epitem *epi;
1207
1208 for (rbp = rb_first_cached(&ep->rbr); rbp; rbp = rb_next(rbp)) {
1209 epi = rb_entry(rbp, struct epitem, rbn);
1210 if (epi->ffd.fd == tfd) {
1211 if (toff == 0)
1212 return epi;
1213 else
1214 toff--;
1215 }
1216 cond_resched();
1217 }
1218
1219 return NULL;
1220 }
1221
get_epoll_tfile_raw_ptr(struct file * file,int tfd,unsigned long toff)1222 struct file *get_epoll_tfile_raw_ptr(struct file *file, int tfd,
1223 unsigned long toff)
1224 {
1225 struct file *file_raw;
1226 struct eventpoll *ep;
1227 struct epitem *epi;
1228
1229 if (!is_file_epoll(file))
1230 return ERR_PTR(-EINVAL);
1231
1232 ep = file->private_data;
1233
1234 mutex_lock(&ep->mtx);
1235 epi = ep_find_tfd(ep, tfd, toff);
1236 if (epi)
1237 file_raw = epi->ffd.file;
1238 else
1239 file_raw = ERR_PTR(-ENOENT);
1240 mutex_unlock(&ep->mtx);
1241
1242 return file_raw;
1243 }
1244 #endif /* CONFIG_KCMP */
1245
1246 /*
1247 * This is the callback that is passed to the wait queue wakeup
1248 * mechanism. It is called by the stored file descriptors when they
1249 * have events to report.
1250 */
ep_poll_callback(wait_queue_entry_t * wait,unsigned mode,int sync,void * key)1251 static int ep_poll_callback(wait_queue_entry_t *wait, unsigned mode, int sync, void *key)
1252 {
1253 int pwake = 0;
1254 struct epitem *epi = ep_item_from_wait(wait);
1255 struct eventpoll *ep = epi->ep;
1256 __poll_t pollflags = key_to_poll(key);
1257 unsigned long flags;
1258 int ewake = 0;
1259
1260 spin_lock_irqsave(&ep->lock, flags);
1261
1262 ep_set_busy_poll_napi_id(epi);
1263
1264 /*
1265 * If the event mask does not contain any poll(2) event, we consider the
1266 * descriptor to be disabled. This condition is likely the effect of the
1267 * EPOLLONESHOT bit that disables the descriptor when an event is received,
1268 * until the next EPOLL_CTL_MOD will be issued.
1269 */
1270 if (!(epi->event.events & ~EP_PRIVATE_BITS))
1271 goto out_unlock;
1272
1273 /*
1274 * Check the events coming with the callback. At this stage, not
1275 * every device reports the events in the "key" parameter of the
1276 * callback. We need to be able to handle both cases here, hence the
1277 * test for "key" != NULL before the event match test.
1278 */
1279 if (pollflags && !(pollflags & epi->event.events))
1280 goto out_unlock;
1281
1282 /*
1283 * If we are transferring events to userspace, we can hold no locks
1284 * (because we're accessing user memory, and because of linux f_op->poll()
1285 * semantics). All the events that happen during that period of time are
1286 * chained in ep->ovflist and requeued later on.
1287 */
1288 if (READ_ONCE(ep->ovflist) != EP_UNACTIVE_PTR) {
1289 if (epi->next == EP_UNACTIVE_PTR) {
1290 epi->next = READ_ONCE(ep->ovflist);
1291 WRITE_ONCE(ep->ovflist, epi);
1292 ep_pm_stay_awake_rcu(epi);
1293 }
1294 } else if (!ep_is_linked(epi)) {
1295 /* In the usual case, add event to ready list. */
1296 list_add_tail(&epi->rdllink, &ep->rdllist);
1297 ep_pm_stay_awake_rcu(epi);
1298 }
1299
1300 /*
1301 * Wake up ( if active ) both the eventpoll wait list and the ->poll()
1302 * wait list.
1303 */
1304 if (waitqueue_active(&ep->wq)) {
1305 if ((epi->event.events & EPOLLEXCLUSIVE) &&
1306 !(pollflags & POLLFREE)) {
1307 switch (pollflags & EPOLLINOUT_BITS) {
1308 case EPOLLIN:
1309 if (epi->event.events & EPOLLIN)
1310 ewake = 1;
1311 break;
1312 case EPOLLOUT:
1313 if (epi->event.events & EPOLLOUT)
1314 ewake = 1;
1315 break;
1316 case 0:
1317 ewake = 1;
1318 break;
1319 }
1320 }
1321 if (sync)
1322 wake_up_sync(&ep->wq);
1323 else
1324 wake_up(&ep->wq);
1325 }
1326 if (waitqueue_active(&ep->poll_wait))
1327 pwake++;
1328
1329 out_unlock:
1330 spin_unlock_irqrestore(&ep->lock, flags);
1331
1332 /* We have to call this outside the lock */
1333 if (pwake)
1334 ep_poll_safewake(ep, epi, pollflags & EPOLL_URING_WAKE);
1335
1336 if (!(epi->event.events & EPOLLEXCLUSIVE))
1337 ewake = 1;
1338
1339 if (pollflags & POLLFREE) {
1340 /*
1341 * If we race with ep_remove_wait_queue() it can miss
1342 * ->whead = NULL and do another remove_wait_queue() after
1343 * us, so we can't use __remove_wait_queue().
1344 */
1345 list_del_init(&wait->entry);
1346 /*
1347 * ->whead != NULL protects us from the race with
1348 * ep_clear_and_put() or ep_remove(), ep_remove_wait_queue()
1349 * takes whead->lock held by the caller. Once we nullify it,
1350 * nothing protects ep/epi or even wait.
1351 */
1352 smp_store_release(&ep_pwq_from_wait(wait)->whead, NULL);
1353 }
1354
1355 return ewake;
1356 }
1357
1358 /*
1359 * This is the callback that is used to add our wait queue to the
1360 * target file wakeup lists.
1361 */
ep_ptable_queue_proc(struct file * file,wait_queue_head_t * whead,poll_table * pt)1362 static void ep_ptable_queue_proc(struct file *file, wait_queue_head_t *whead,
1363 poll_table *pt)
1364 {
1365 struct ep_pqueue *epq = container_of(pt, struct ep_pqueue, pt);
1366 struct epitem *epi = epq->epi;
1367 struct eppoll_entry *pwq;
1368
1369 if (unlikely(!epi)) // an earlier allocation has failed
1370 return;
1371
1372 pwq = kmem_cache_alloc(pwq_cache, GFP_KERNEL);
1373 if (unlikely(!pwq)) {
1374 epq->epi = NULL;
1375 return;
1376 }
1377
1378 init_waitqueue_func_entry(&pwq->wait, ep_poll_callback);
1379 pwq->whead = whead;
1380 pwq->base = epi;
1381 if (epi->event.events & EPOLLEXCLUSIVE)
1382 add_wait_queue_exclusive(whead, &pwq->wait);
1383 else
1384 add_wait_queue(whead, &pwq->wait);
1385 pwq->next = epi->pwqlist;
1386 epi->pwqlist = pwq;
1387 }
1388
ep_rbtree_insert(struct eventpoll * ep,struct epitem * epi)1389 static void ep_rbtree_insert(struct eventpoll *ep, struct epitem *epi)
1390 {
1391 int kcmp;
1392 struct rb_node **p = &ep->rbr.rb_root.rb_node, *parent = NULL;
1393 struct epitem *epic;
1394 bool leftmost = true;
1395
1396 while (*p) {
1397 parent = *p;
1398 epic = rb_entry(parent, struct epitem, rbn);
1399 kcmp = ep_cmp_ffd(&epi->ffd, &epic->ffd);
1400 if (kcmp > 0) {
1401 p = &parent->rb_right;
1402 leftmost = false;
1403 } else
1404 p = &parent->rb_left;
1405 }
1406 rb_link_node(&epi->rbn, parent, p);
1407 rb_insert_color_cached(&epi->rbn, &ep->rbr, leftmost);
1408 }
1409
1410
1411
1412 #define PATH_ARR_SIZE 5
1413 /*
1414 * These are the number paths of length 1 to 5, that we are allowing to emanate
1415 * from a single file of interest. For example, we allow 1000 paths of length
1416 * 1, to emanate from each file of interest. This essentially represents the
1417 * potential wakeup paths, which need to be limited in order to avoid massive
1418 * uncontrolled wakeup storms. The common use case should be a single ep which
1419 * is connected to n file sources. In this case each file source has 1 path
1420 * of length 1. Thus, the numbers below should be more than sufficient. These
1421 * path limits are enforced during an EPOLL_CTL_ADD operation, since a modify
1422 * and delete can't add additional paths. Protected by the epnested_mutex.
1423 */
1424 static const int path_limits[PATH_ARR_SIZE] = { 1000, 500, 100, 50, 10 };
1425 static int path_count[PATH_ARR_SIZE];
1426
path_count_inc(int nests)1427 static int path_count_inc(int nests)
1428 {
1429 /* Allow an arbitrary number of depth 1 paths */
1430 if (nests == 0)
1431 return 0;
1432
1433 if (++path_count[nests] > path_limits[nests])
1434 return -1;
1435 return 0;
1436 }
1437
path_count_init(void)1438 static void path_count_init(void)
1439 {
1440 int i;
1441
1442 for (i = 0; i < PATH_ARR_SIZE; i++)
1443 path_count[i] = 0;
1444 }
1445
reverse_path_check_proc(struct hlist_head * refs,int depth)1446 static int reverse_path_check_proc(struct hlist_head *refs, int depth)
1447 {
1448 int error = 0;
1449 struct epitem *epi;
1450
1451 if (depth > EP_MAX_NESTS) /* too deep nesting */
1452 return -1;
1453
1454 /* CTL_DEL can remove links here, but that can't increase our count */
1455 hlist_for_each_entry_rcu(epi, refs, fllink) {
1456 struct hlist_head *refs = &epi->ep->refs;
1457 if (hlist_empty(refs))
1458 error = path_count_inc(depth);
1459 else
1460 error = reverse_path_check_proc(refs, depth + 1);
1461 if (error != 0)
1462 break;
1463 }
1464 return error;
1465 }
1466
1467 /**
1468 * reverse_path_check - The tfile_check_list is list of epitem_head, which have
1469 * links that are proposed to be newly added. We need to
1470 * make sure that those added links don't add too many
1471 * paths such that we will spend all our time waking up
1472 * eventpoll objects.
1473 *
1474 * Return: %zero if the proposed links don't create too many paths,
1475 * %-1 otherwise.
1476 */
reverse_path_check(void)1477 static int reverse_path_check(void)
1478 {
1479 struct epitems_head *p;
1480
1481 for (p = tfile_check_list; p != EP_UNACTIVE_PTR; p = p->next) {
1482 int error;
1483 path_count_init();
1484 rcu_read_lock();
1485 error = reverse_path_check_proc(&p->epitems, 0);
1486 rcu_read_unlock();
1487 if (error)
1488 return error;
1489 }
1490 return 0;
1491 }
1492
ep_create_wakeup_source(struct epitem * epi)1493 static int ep_create_wakeup_source(struct epitem *epi)
1494 {
1495 struct name_snapshot n;
1496 struct wakeup_source *ws;
1497
1498 if (!epi->ep->ws) {
1499 epi->ep->ws = wakeup_source_register(NULL, "eventpoll");
1500 if (!epi->ep->ws)
1501 return -ENOMEM;
1502 }
1503
1504 take_dentry_name_snapshot(&n, epi->ffd.file->f_path.dentry);
1505 ws = wakeup_source_register(NULL, n.name.name);
1506 release_dentry_name_snapshot(&n);
1507
1508 if (!ws)
1509 return -ENOMEM;
1510 rcu_assign_pointer(epi->ws, ws);
1511
1512 return 0;
1513 }
1514
1515 /* rare code path, only used when EPOLL_CTL_MOD removes a wakeup source */
ep_destroy_wakeup_source(struct epitem * epi)1516 static noinline void ep_destroy_wakeup_source(struct epitem *epi)
1517 {
1518 struct wakeup_source *ws = ep_wakeup_source(epi);
1519
1520 RCU_INIT_POINTER(epi->ws, NULL);
1521
1522 /*
1523 * wait for ep_pm_stay_awake_rcu to finish, synchronize_rcu is
1524 * used internally by wakeup_source_remove, too (called by
1525 * wakeup_source_unregister), so we cannot use call_rcu
1526 */
1527 synchronize_rcu();
1528 wakeup_source_unregister(ws);
1529 }
1530
attach_epitem(struct file * file,struct epitem * epi)1531 static int attach_epitem(struct file *file, struct epitem *epi)
1532 {
1533 struct epitems_head *to_free = NULL;
1534 struct hlist_head *head = NULL;
1535 struct eventpoll *ep = NULL;
1536
1537 if (is_file_epoll(file))
1538 ep = file->private_data;
1539
1540 if (ep) {
1541 head = &ep->refs;
1542 } else if (!READ_ONCE(file->f_ep)) {
1543 allocate:
1544 to_free = kmem_cache_zalloc(ephead_cache, GFP_KERNEL);
1545 if (!to_free)
1546 return -ENOMEM;
1547 head = &to_free->epitems;
1548 }
1549 spin_lock(&file->f_lock);
1550 if (!file->f_ep) {
1551 if (unlikely(!head)) {
1552 spin_unlock(&file->f_lock);
1553 goto allocate;
1554 }
1555 /* See eventpoll_release() for details. */
1556 WRITE_ONCE(file->f_ep, head);
1557 to_free = NULL;
1558 }
1559 hlist_add_head_rcu(&epi->fllink, file->f_ep);
1560 spin_unlock(&file->f_lock);
1561 free_ephead(to_free);
1562 return 0;
1563 }
1564
1565 /*
1566 * Must be called with "mtx" held.
1567 */
ep_insert(struct eventpoll * ep,const struct epoll_event * event,struct file * tfile,int fd,int full_check)1568 static int ep_insert(struct eventpoll *ep, const struct epoll_event *event,
1569 struct file *tfile, int fd, int full_check)
1570 {
1571 int error, pwake = 0;
1572 __poll_t revents;
1573 struct epitem *epi;
1574 struct ep_pqueue epq;
1575 struct eventpoll *tep = NULL;
1576
1577 if (is_file_epoll(tfile))
1578 tep = tfile->private_data;
1579
1580 lockdep_assert_irqs_enabled();
1581
1582 if (unlikely(percpu_counter_compare(&ep->user->epoll_watches,
1583 max_user_watches) >= 0))
1584 return -ENOSPC;
1585 percpu_counter_inc(&ep->user->epoll_watches);
1586
1587 if (!(epi = kmem_cache_zalloc(epi_cache, GFP_KERNEL))) {
1588 percpu_counter_dec(&ep->user->epoll_watches);
1589 return -ENOMEM;
1590 }
1591
1592 /* Item initialization follow here ... */
1593 INIT_LIST_HEAD(&epi->rdllink);
1594 epi->ep = ep;
1595 ep_set_ffd(&epi->ffd, tfile, fd);
1596 epi->event = *event;
1597 epi->next = EP_UNACTIVE_PTR;
1598
1599 if (tep)
1600 mutex_lock_nested(&tep->mtx, 1);
1601 /* Add the current item to the list of active epoll hook for this file */
1602 if (unlikely(attach_epitem(tfile, epi) < 0)) {
1603 if (tep)
1604 mutex_unlock(&tep->mtx);
1605 kmem_cache_free(epi_cache, epi);
1606 percpu_counter_dec(&ep->user->epoll_watches);
1607 return -ENOMEM;
1608 }
1609
1610 if (full_check && !tep)
1611 list_file(tfile);
1612
1613 /*
1614 * Add the current item to the RB tree. All RB tree operations are
1615 * protected by "mtx", and ep_insert() is called with "mtx" held.
1616 */
1617 ep_rbtree_insert(ep, epi);
1618 if (tep)
1619 mutex_unlock(&tep->mtx);
1620
1621 /*
1622 * ep_remove_safe() calls in the later error paths can't lead to
1623 * ep_free() as the ep file itself still holds an ep reference.
1624 */
1625 ep_get(ep);
1626
1627 /* now check if we've created too many backpaths */
1628 if (unlikely(full_check && reverse_path_check())) {
1629 ep_remove_safe(ep, epi);
1630 return -EINVAL;
1631 }
1632
1633 if (epi->event.events & EPOLLWAKEUP) {
1634 error = ep_create_wakeup_source(epi);
1635 if (error) {
1636 ep_remove_safe(ep, epi);
1637 return error;
1638 }
1639 }
1640
1641 /* Initialize the poll table using the queue callback */
1642 epq.epi = epi;
1643 init_poll_funcptr(&epq.pt, ep_ptable_queue_proc);
1644
1645 /*
1646 * Attach the item to the poll hooks and get current event bits.
1647 * We can safely use the file* here because its usage count has
1648 * been increased by the caller of this function. Note that after
1649 * this operation completes, the poll callback can start hitting
1650 * the new item.
1651 */
1652 revents = ep_item_poll(epi, &epq.pt, 1);
1653
1654 /*
1655 * We have to check if something went wrong during the poll wait queue
1656 * install process. Namely an allocation for a wait queue failed due
1657 * high memory pressure.
1658 */
1659 if (unlikely(!epq.epi)) {
1660 ep_remove_safe(ep, epi);
1661 return -ENOMEM;
1662 }
1663
1664 /* We have to drop the new item inside our item list to keep track of it */
1665 spin_lock_irq(&ep->lock);
1666
1667 /* record NAPI ID of new item if present */
1668 ep_set_busy_poll_napi_id(epi);
1669
1670 /* If the file is already "ready" we drop it inside the ready list */
1671 if (revents && !ep_is_linked(epi)) {
1672 list_add_tail(&epi->rdllink, &ep->rdllist);
1673 ep_pm_stay_awake(epi);
1674
1675 /* Notify waiting tasks that events are available */
1676 if (waitqueue_active(&ep->wq))
1677 wake_up(&ep->wq);
1678 if (waitqueue_active(&ep->poll_wait))
1679 pwake++;
1680 }
1681
1682 spin_unlock_irq(&ep->lock);
1683
1684 /* We have to call this outside the lock */
1685 if (pwake)
1686 ep_poll_safewake(ep, NULL, 0);
1687
1688 return 0;
1689 }
1690
1691 /*
1692 * Modify the interest event mask by dropping an event if the new mask
1693 * has a match in the current file status. Must be called with "mtx" held.
1694 */
ep_modify(struct eventpoll * ep,struct epitem * epi,const struct epoll_event * event)1695 static int ep_modify(struct eventpoll *ep, struct epitem *epi,
1696 const struct epoll_event *event)
1697 {
1698 int pwake = 0;
1699 poll_table pt;
1700
1701 lockdep_assert_irqs_enabled();
1702
1703 init_poll_funcptr(&pt, NULL);
1704
1705 /*
1706 * Set the new event interest mask before calling f_op->poll();
1707 * otherwise we might miss an event that happens between the
1708 * f_op->poll() call and the new event set registering.
1709 */
1710 epi->event.events = event->events; /* need barrier below */
1711 epi->event.data = event->data; /* protected by mtx */
1712 if (epi->event.events & EPOLLWAKEUP) {
1713 if (!ep_has_wakeup_source(epi))
1714 ep_create_wakeup_source(epi);
1715 } else if (ep_has_wakeup_source(epi)) {
1716 ep_destroy_wakeup_source(epi);
1717 }
1718
1719 /*
1720 * The following barrier has two effects:
1721 *
1722 * 1) Flush epi changes above to other CPUs. This ensures
1723 * we do not miss events from ep_poll_callback if an
1724 * event occurs immediately after we call f_op->poll().
1725 * We need this because we did not take ep->lock while
1726 * changing epi above (but ep_poll_callback does take
1727 * ep->lock).
1728 *
1729 * 2) We also need to ensure we do not miss _past_ events
1730 * when calling f_op->poll(). This barrier also
1731 * pairs with the barrier in wq_has_sleeper (see
1732 * comments for wq_has_sleeper).
1733 *
1734 * This barrier will now guarantee ep_poll_callback or f_op->poll
1735 * (or both) will notice the readiness of an item.
1736 */
1737 smp_mb();
1738
1739 /*
1740 * Get current event bits. We can safely use the file* here because
1741 * its usage count has been increased by the caller of this function.
1742 * If the item is "hot" and it is not registered inside the ready
1743 * list, push it inside.
1744 */
1745 if (ep_item_poll(epi, &pt, 1)) {
1746 spin_lock_irq(&ep->lock);
1747 if (!ep_is_linked(epi)) {
1748 list_add_tail(&epi->rdllink, &ep->rdllist);
1749 ep_pm_stay_awake(epi);
1750
1751 /* Notify waiting tasks that events are available */
1752 if (waitqueue_active(&ep->wq))
1753 wake_up(&ep->wq);
1754 if (waitqueue_active(&ep->poll_wait))
1755 pwake++;
1756 }
1757 spin_unlock_irq(&ep->lock);
1758 }
1759
1760 /* We have to call this outside the lock */
1761 if (pwake)
1762 ep_poll_safewake(ep, NULL, 0);
1763
1764 return 0;
1765 }
1766
ep_send_events(struct eventpoll * ep,struct epoll_event __user * events,int maxevents)1767 static int ep_send_events(struct eventpoll *ep,
1768 struct epoll_event __user *events, int maxevents)
1769 {
1770 struct epitem *epi, *tmp;
1771 LIST_HEAD(txlist);
1772 poll_table pt;
1773 int res = 0;
1774
1775 /*
1776 * Always short-circuit for fatal signals to allow threads to make a
1777 * timely exit without the chance of finding more events available and
1778 * fetching repeatedly.
1779 */
1780 if (fatal_signal_pending(current))
1781 return -EINTR;
1782
1783 init_poll_funcptr(&pt, NULL);
1784
1785 mutex_lock(&ep->mtx);
1786 ep_start_scan(ep, &txlist);
1787
1788 /*
1789 * We can loop without lock because we are passed a task private list.
1790 * Items cannot vanish during the loop we are holding ep->mtx.
1791 */
1792 list_for_each_entry_safe(epi, tmp, &txlist, rdllink) {
1793 struct wakeup_source *ws;
1794 __poll_t revents;
1795
1796 if (res >= maxevents)
1797 break;
1798
1799 /*
1800 * Activate ep->ws before deactivating epi->ws to prevent
1801 * triggering auto-suspend here (in case we reactive epi->ws
1802 * below).
1803 *
1804 * This could be rearranged to delay the deactivation of epi->ws
1805 * instead, but then epi->ws would temporarily be out of sync
1806 * with ep_is_linked().
1807 */
1808 ws = ep_wakeup_source(epi);
1809 if (ws) {
1810 if (ws->active)
1811 __pm_stay_awake(ep->ws);
1812 __pm_relax(ws);
1813 }
1814
1815 list_del_init(&epi->rdllink);
1816
1817 /*
1818 * If the event mask intersect the caller-requested one,
1819 * deliver the event to userspace. Again, we are holding ep->mtx,
1820 * so no operations coming from userspace can change the item.
1821 */
1822 revents = ep_item_poll(epi, &pt, 1);
1823 if (!revents)
1824 continue;
1825
1826 events = epoll_put_uevent(revents, epi->event.data, events);
1827 if (!events) {
1828 list_add(&epi->rdllink, &txlist);
1829 ep_pm_stay_awake(epi);
1830 if (!res)
1831 res = -EFAULT;
1832 break;
1833 }
1834 res++;
1835 if (epi->event.events & EPOLLONESHOT)
1836 epi->event.events &= EP_PRIVATE_BITS;
1837 else if (!(epi->event.events & EPOLLET)) {
1838 /*
1839 * If this file has been added with Level
1840 * Trigger mode, we need to insert back inside
1841 * the ready list, so that the next call to
1842 * epoll_wait() will check again the events
1843 * availability. At this point, no one can insert
1844 * into ep->rdllist besides us. The epoll_ctl()
1845 * callers are locked out by
1846 * ep_send_events() holding "mtx" and the
1847 * poll callback will queue them in ep->ovflist.
1848 */
1849 list_add_tail(&epi->rdllink, &ep->rdllist);
1850 ep_pm_stay_awake(epi);
1851 }
1852 }
1853 ep_done_scan(ep, &txlist);
1854 mutex_unlock(&ep->mtx);
1855
1856 return res;
1857 }
1858
ep_timeout_to_timespec(struct timespec64 * to,long ms)1859 static struct timespec64 *ep_timeout_to_timespec(struct timespec64 *to, long ms)
1860 {
1861 struct timespec64 now;
1862
1863 if (ms < 0)
1864 return NULL;
1865
1866 if (!ms) {
1867 to->tv_sec = 0;
1868 to->tv_nsec = 0;
1869 return to;
1870 }
1871
1872 to->tv_sec = ms / MSEC_PER_SEC;
1873 to->tv_nsec = NSEC_PER_MSEC * (ms % MSEC_PER_SEC);
1874
1875 ktime_get_ts64(&now);
1876 *to = timespec64_add_safe(now, *to);
1877 return to;
1878 }
1879
1880 /*
1881 * autoremove_wake_function, but remove even on failure to wake up, because we
1882 * know that default_wake_function/ttwu will only fail if the thread is already
1883 * woken, and in that case the ep_poll loop will remove the entry anyways, not
1884 * try to reuse it.
1885 */
ep_autoremove_wake_function(struct wait_queue_entry * wq_entry,unsigned int mode,int sync,void * key)1886 static int ep_autoremove_wake_function(struct wait_queue_entry *wq_entry,
1887 unsigned int mode, int sync, void *key)
1888 {
1889 int ret = default_wake_function(wq_entry, mode, sync, key);
1890
1891 /*
1892 * Pairs with list_empty_careful in ep_poll, and ensures future loop
1893 * iterations see the cause of this wakeup.
1894 */
1895 list_del_init_careful(&wq_entry->entry);
1896 return ret;
1897 }
1898
ep_try_send_events(struct eventpoll * ep,struct epoll_event __user * events,int maxevents)1899 static int ep_try_send_events(struct eventpoll *ep,
1900 struct epoll_event __user *events, int maxevents)
1901 {
1902 int res;
1903
1904 /*
1905 * Try to transfer events to user space. In case we get 0 events and
1906 * there's still timeout left over, we go trying again in search of
1907 * more luck.
1908 */
1909 res = ep_send_events(ep, events, maxevents);
1910 if (res > 0)
1911 ep_suspend_napi_irqs(ep);
1912 return res;
1913 }
1914
ep_schedule_timeout(ktime_t * to)1915 static int ep_schedule_timeout(ktime_t *to)
1916 {
1917 if (to)
1918 return ktime_after(*to, ktime_get());
1919 else
1920 return 1;
1921 }
1922
1923 /**
1924 * ep_poll - Retrieves ready events, and delivers them to the caller-supplied
1925 * event buffer.
1926 *
1927 * @ep: Pointer to the eventpoll context.
1928 * @events: Pointer to the userspace buffer where the ready events should be
1929 * stored.
1930 * @maxevents: Size (in terms of number of events) of the caller event buffer.
1931 * @timeout: Maximum timeout for the ready events fetch operation, in
1932 * timespec. If the timeout is zero, the function will not block,
1933 * while if the @timeout ptr is NULL, the function will block
1934 * until at least one event has been retrieved (or an error
1935 * occurred).
1936 *
1937 * Return: the number of ready events which have been fetched, or an
1938 * error code, in case of error.
1939 */
ep_poll(struct eventpoll * ep,struct epoll_event __user * events,int maxevents,struct timespec64 * timeout)1940 static int ep_poll(struct eventpoll *ep, struct epoll_event __user *events,
1941 int maxevents, struct timespec64 *timeout)
1942 {
1943 int res, eavail, timed_out = 0;
1944 u64 slack = 0;
1945 wait_queue_entry_t wait;
1946 ktime_t expires, *to = NULL;
1947
1948 lockdep_assert_irqs_enabled();
1949
1950 if (timeout && (timeout->tv_sec | timeout->tv_nsec)) {
1951 slack = select_estimate_accuracy(timeout);
1952 to = &expires;
1953 *to = timespec64_to_ktime(*timeout);
1954 } else if (timeout) {
1955 /*
1956 * Avoid the unnecessary trip to the wait queue loop, if the
1957 * caller specified a non blocking operation.
1958 */
1959 timed_out = 1;
1960 }
1961
1962 /*
1963 * This call is racy: We may or may not see events that are being added
1964 * to the ready list under the lock (e.g., in IRQ callbacks). For cases
1965 * with a non-zero timeout, this thread will check the ready list under
1966 * lock and will add to the wait queue. For cases with a zero
1967 * timeout, the user by definition should not care and will have to
1968 * recheck again.
1969 */
1970 eavail = ep_events_available(ep);
1971
1972 while (1) {
1973 if (eavail) {
1974 res = ep_try_send_events(ep, events, maxevents);
1975 if (res)
1976 return res;
1977 }
1978
1979 if (timed_out)
1980 return 0;
1981
1982 eavail = ep_busy_loop(ep);
1983 if (eavail)
1984 continue;
1985
1986 if (signal_pending(current))
1987 return -EINTR;
1988
1989 /*
1990 * Internally init_wait() uses autoremove_wake_function(),
1991 * thus wait entry is removed from the wait queue on each
1992 * wakeup. Why it is important? In case of several waiters
1993 * each new wakeup will hit the next waiter, giving it the
1994 * chance to harvest new event. Otherwise wakeup can be
1995 * lost. This is also good performance-wise, because on
1996 * normal wakeup path no need to call __remove_wait_queue()
1997 * explicitly, thus ep->lock is not taken, which halts the
1998 * event delivery.
1999 *
2000 * In fact, we now use an even more aggressive function that
2001 * unconditionally removes, because we don't reuse the wait
2002 * entry between loop iterations. This lets us also avoid the
2003 * performance issue if a process is killed, causing all of its
2004 * threads to wake up without being removed normally.
2005 */
2006 init_wait(&wait);
2007 wait.func = ep_autoremove_wake_function;
2008
2009 spin_lock_irq(&ep->lock);
2010 /*
2011 * Barrierless variant, waitqueue_active() is called under
2012 * the same lock on wakeup ep_poll_callback() side, so it
2013 * is safe to avoid an explicit barrier.
2014 */
2015 __set_current_state(TASK_INTERRUPTIBLE);
2016
2017 /*
2018 * Do the final check under the lock. ep_start/done_scan()
2019 * plays with two lists (->rdllist and ->ovflist) and there
2020 * is always a race when both lists are empty for short
2021 * period of time although events are pending, so lock is
2022 * important.
2023 */
2024 eavail = ep_events_available(ep);
2025 if (!eavail)
2026 __add_wait_queue_exclusive(&ep->wq, &wait);
2027
2028 spin_unlock_irq(&ep->lock);
2029
2030 if (!eavail)
2031 timed_out = !ep_schedule_timeout(to) ||
2032 !schedule_hrtimeout_range(to, slack,
2033 HRTIMER_MODE_ABS);
2034 __set_current_state(TASK_RUNNING);
2035
2036 /*
2037 * We were woken up, thus go and try to harvest some events.
2038 * If timed out and still on the wait queue, recheck eavail
2039 * carefully under lock, below.
2040 */
2041 eavail = 1;
2042
2043 if (!list_empty_careful(&wait.entry)) {
2044 spin_lock_irq(&ep->lock);
2045 /*
2046 * If the thread timed out and is not on the wait queue,
2047 * it means that the thread was woken up after its
2048 * timeout expired before it could reacquire the lock.
2049 * Thus, when wait.entry is empty, it needs to harvest
2050 * events.
2051 */
2052 if (timed_out)
2053 eavail = list_empty(&wait.entry);
2054 __remove_wait_queue(&ep->wq, &wait);
2055 spin_unlock_irq(&ep->lock);
2056 }
2057 }
2058 }
2059
2060 /**
2061 * ep_loop_check_proc - verify that adding an epoll file @ep inside another
2062 * epoll file does not create closed loops, and
2063 * determine the depth of the subtree starting at @ep
2064 *
2065 * @ep: the &struct eventpoll to be currently checked.
2066 * @depth: Current depth of the path being checked.
2067 *
2068 * Return: depth of the subtree, or a value bigger than EP_MAX_NESTS if we found
2069 * a loop or went too deep.
2070 */
ep_loop_check_proc(struct eventpoll * ep,int depth)2071 static int ep_loop_check_proc(struct eventpoll *ep, int depth)
2072 {
2073 int result = 0;
2074 struct rb_node *rbp;
2075 struct epitem *epi;
2076
2077 if (ep->gen == loop_check_gen)
2078 return ep->loop_check_depth;
2079
2080 mutex_lock_nested(&ep->mtx, depth + 1);
2081 ep->gen = loop_check_gen;
2082 for (rbp = rb_first_cached(&ep->rbr); rbp; rbp = rb_next(rbp)) {
2083 epi = rb_entry(rbp, struct epitem, rbn);
2084 if (unlikely(is_file_epoll(epi->ffd.file))) {
2085 struct eventpoll *ep_tovisit;
2086 ep_tovisit = epi->ffd.file->private_data;
2087 if (ep_tovisit == inserting_into || depth > EP_MAX_NESTS)
2088 result = EP_MAX_NESTS+1;
2089 else
2090 result = max(result, ep_loop_check_proc(ep_tovisit, depth + 1) + 1);
2091 if (result > EP_MAX_NESTS)
2092 break;
2093 } else {
2094 /*
2095 * If we've reached a file that is not associated with
2096 * an ep, then we need to check if the newly added
2097 * links are going to add too many wakeup paths. We do
2098 * this by adding it to the tfile_check_list, if it's
2099 * not already there, and calling reverse_path_check()
2100 * during ep_insert().
2101 */
2102 list_file(epi->ffd.file);
2103 }
2104 }
2105 ep->loop_check_depth = result;
2106 mutex_unlock(&ep->mtx);
2107
2108 return result;
2109 }
2110
2111 /* ep_get_upwards_depth_proc - determine depth of @ep when traversed upwards */
ep_get_upwards_depth_proc(struct eventpoll * ep,int depth)2112 static int ep_get_upwards_depth_proc(struct eventpoll *ep, int depth)
2113 {
2114 int result = 0;
2115 struct epitem *epi;
2116
2117 if (ep->gen == loop_check_gen)
2118 return ep->loop_check_depth;
2119 hlist_for_each_entry_rcu(epi, &ep->refs, fllink)
2120 result = max(result, ep_get_upwards_depth_proc(epi->ep, depth + 1) + 1);
2121 ep->gen = loop_check_gen;
2122 ep->loop_check_depth = result;
2123 return result;
2124 }
2125
2126 /**
2127 * ep_loop_check - Performs a check to verify that adding an epoll file (@to)
2128 * into another epoll file (represented by @ep) does not create
2129 * closed loops or too deep chains.
2130 *
2131 * @ep: Pointer to the epoll we are inserting into.
2132 * @to: Pointer to the epoll to be inserted.
2133 *
2134 * Return: %zero if adding the epoll @to inside the epoll @from
2135 * does not violate the constraints, or %-1 otherwise.
2136 */
ep_loop_check(struct eventpoll * ep,struct eventpoll * to)2137 static int ep_loop_check(struct eventpoll *ep, struct eventpoll *to)
2138 {
2139 int depth, upwards_depth;
2140
2141 inserting_into = ep;
2142 /*
2143 * Check how deep down we can get from @to, and whether it is possible
2144 * to loop up to @ep.
2145 */
2146 depth = ep_loop_check_proc(to, 0);
2147 if (depth > EP_MAX_NESTS)
2148 return -1;
2149 /* Check how far up we can go from @ep. */
2150 rcu_read_lock();
2151 upwards_depth = ep_get_upwards_depth_proc(ep, 0);
2152 rcu_read_unlock();
2153
2154 return (depth+1+upwards_depth > EP_MAX_NESTS) ? -1 : 0;
2155 }
2156
clear_tfile_check_list(void)2157 static void clear_tfile_check_list(void)
2158 {
2159 rcu_read_lock();
2160 while (tfile_check_list != EP_UNACTIVE_PTR) {
2161 struct epitems_head *head = tfile_check_list;
2162 tfile_check_list = head->next;
2163 unlist_file(head);
2164 }
2165 rcu_read_unlock();
2166 }
2167
2168 /*
2169 * Open an eventpoll file descriptor.
2170 */
do_epoll_create(int flags)2171 static int do_epoll_create(int flags)
2172 {
2173 int error;
2174 struct eventpoll *ep;
2175
2176 /* Check the EPOLL_* constant for consistency. */
2177 BUILD_BUG_ON(EPOLL_CLOEXEC != O_CLOEXEC);
2178
2179 if (flags & ~EPOLL_CLOEXEC)
2180 return -EINVAL;
2181 /*
2182 * Create the internal data structure ("struct eventpoll").
2183 */
2184 error = ep_alloc(&ep);
2185 if (error < 0)
2186 return error;
2187 /*
2188 * Creates all the items needed to setup an eventpoll file. That is,
2189 * a file structure and a free file descriptor.
2190 */
2191 FD_PREPARE(fdf, O_RDWR | (flags & O_CLOEXEC),
2192 anon_inode_getfile("[eventpoll]", &eventpoll_fops, ep,
2193 O_RDWR | (flags & O_CLOEXEC)));
2194 if (fdf.err) {
2195 ep_clear_and_put(ep);
2196 return fdf.err;
2197 }
2198 ep->file = fd_prepare_file(fdf);
2199 return fd_publish(fdf);
2200 }
2201
SYSCALL_DEFINE1(epoll_create1,int,flags)2202 SYSCALL_DEFINE1(epoll_create1, int, flags)
2203 {
2204 return do_epoll_create(flags);
2205 }
2206
SYSCALL_DEFINE1(epoll_create,int,size)2207 SYSCALL_DEFINE1(epoll_create, int, size)
2208 {
2209 if (size <= 0)
2210 return -EINVAL;
2211
2212 return do_epoll_create(0);
2213 }
2214
2215 #ifdef CONFIG_PM_SLEEP
ep_take_care_of_epollwakeup(struct epoll_event * epev)2216 static inline void ep_take_care_of_epollwakeup(struct epoll_event *epev)
2217 {
2218 if ((epev->events & EPOLLWAKEUP) && !capable(CAP_BLOCK_SUSPEND))
2219 epev->events &= ~EPOLLWAKEUP;
2220 }
2221 #else
ep_take_care_of_epollwakeup(struct epoll_event * epev)2222 static inline void ep_take_care_of_epollwakeup(struct epoll_event *epev)
2223 {
2224 epev->events &= ~EPOLLWAKEUP;
2225 }
2226 #endif
2227
epoll_mutex_lock(struct mutex * mutex,int depth,bool nonblock)2228 static inline int epoll_mutex_lock(struct mutex *mutex, int depth,
2229 bool nonblock)
2230 {
2231 if (!nonblock) {
2232 mutex_lock_nested(mutex, depth);
2233 return 0;
2234 }
2235 if (mutex_trylock(mutex))
2236 return 0;
2237 return -EAGAIN;
2238 }
2239
do_epoll_ctl(int epfd,int op,int fd,struct epoll_event * epds,bool nonblock)2240 int do_epoll_ctl(int epfd, int op, int fd, struct epoll_event *epds,
2241 bool nonblock)
2242 {
2243 int error;
2244 int full_check = 0;
2245 struct eventpoll *ep;
2246 struct epitem *epi;
2247 struct eventpoll *tep = NULL;
2248
2249 CLASS(fd, f)(epfd);
2250 if (fd_empty(f))
2251 return -EBADF;
2252
2253 /* Get the "struct file *" for the target file */
2254 CLASS(fd, tf)(fd);
2255 if (fd_empty(tf))
2256 return -EBADF;
2257
2258 /* The target file descriptor must support poll */
2259 if (!file_can_poll(fd_file(tf)))
2260 return -EPERM;
2261
2262 /* Check if EPOLLWAKEUP is allowed */
2263 if (ep_op_has_event(op))
2264 ep_take_care_of_epollwakeup(epds);
2265
2266 /*
2267 * We have to check that the file structure underneath the file descriptor
2268 * the user passed to us _is_ an eventpoll file. And also we do not permit
2269 * adding an epoll file descriptor inside itself.
2270 */
2271 error = -EINVAL;
2272 if (fd_file(f) == fd_file(tf) || !is_file_epoll(fd_file(f)))
2273 goto error_tgt_fput;
2274
2275 /*
2276 * epoll adds to the wakeup queue at EPOLL_CTL_ADD time only,
2277 * so EPOLLEXCLUSIVE is not allowed for a EPOLL_CTL_MOD operation.
2278 * Also, we do not currently supported nested exclusive wakeups.
2279 */
2280 if (ep_op_has_event(op) && (epds->events & EPOLLEXCLUSIVE)) {
2281 if (op == EPOLL_CTL_MOD)
2282 goto error_tgt_fput;
2283 if (op == EPOLL_CTL_ADD && (is_file_epoll(fd_file(tf)) ||
2284 (epds->events & ~EPOLLEXCLUSIVE_OK_BITS)))
2285 goto error_tgt_fput;
2286 }
2287
2288 /*
2289 * At this point it is safe to assume that the "private_data" contains
2290 * our own data structure.
2291 */
2292 ep = fd_file(f)->private_data;
2293
2294 /*
2295 * When we insert an epoll file descriptor inside another epoll file
2296 * descriptor, there is the chance of creating closed loops, which are
2297 * better be handled here, than in more critical paths. While we are
2298 * checking for loops we also determine the list of files reachable
2299 * and hang them on the tfile_check_list, so we can check that we
2300 * haven't created too many possible wakeup paths.
2301 *
2302 * We do not need to take the global 'epumutex' on EPOLL_CTL_ADD when
2303 * the epoll file descriptor is attaching directly to a wakeup source,
2304 * unless the epoll file descriptor is nested. The purpose of taking the
2305 * 'epnested_mutex' on add is to prevent complex toplogies such as loops and
2306 * deep wakeup paths from forming in parallel through multiple
2307 * EPOLL_CTL_ADD operations.
2308 */
2309 error = epoll_mutex_lock(&ep->mtx, 0, nonblock);
2310 if (error)
2311 goto error_tgt_fput;
2312 if (op == EPOLL_CTL_ADD) {
2313 if (READ_ONCE(fd_file(f)->f_ep) || ep->gen == loop_check_gen ||
2314 is_file_epoll(fd_file(tf))) {
2315 mutex_unlock(&ep->mtx);
2316 error = epoll_mutex_lock(&epnested_mutex, 0, nonblock);
2317 if (error)
2318 goto error_tgt_fput;
2319 loop_check_gen++;
2320 full_check = 1;
2321 if (is_file_epoll(fd_file(tf))) {
2322 tep = fd_file(tf)->private_data;
2323 error = -ELOOP;
2324 if (ep_loop_check(ep, tep) != 0)
2325 goto error_tgt_fput;
2326 }
2327 error = epoll_mutex_lock(&ep->mtx, 0, nonblock);
2328 if (error)
2329 goto error_tgt_fput;
2330 }
2331 }
2332
2333 /*
2334 * Try to lookup the file inside our RB tree. Since we grabbed "mtx"
2335 * above, we can be sure to be able to use the item looked up by
2336 * ep_find() till we release the mutex.
2337 */
2338 epi = ep_find(ep, fd_file(tf), fd);
2339
2340 error = -EINVAL;
2341 switch (op) {
2342 case EPOLL_CTL_ADD:
2343 if (!epi) {
2344 epds->events |= EPOLLERR | EPOLLHUP;
2345 error = ep_insert(ep, epds, fd_file(tf), fd, full_check);
2346 } else
2347 error = -EEXIST;
2348 break;
2349 case EPOLL_CTL_DEL:
2350 if (epi) {
2351 /*
2352 * The eventpoll itself is still alive: the refcount
2353 * can't go to zero here.
2354 */
2355 ep_remove_safe(ep, epi);
2356 error = 0;
2357 } else {
2358 error = -ENOENT;
2359 }
2360 break;
2361 case EPOLL_CTL_MOD:
2362 if (epi) {
2363 if (!(epi->event.events & EPOLLEXCLUSIVE)) {
2364 epds->events |= EPOLLERR | EPOLLHUP;
2365 error = ep_modify(ep, epi, epds);
2366 }
2367 } else
2368 error = -ENOENT;
2369 break;
2370 }
2371 mutex_unlock(&ep->mtx);
2372
2373 error_tgt_fput:
2374 if (full_check) {
2375 clear_tfile_check_list();
2376 loop_check_gen++;
2377 mutex_unlock(&epnested_mutex);
2378 }
2379 return error;
2380 }
2381
2382 /*
2383 * The following function implements the controller interface for
2384 * the eventpoll file that enables the insertion/removal/change of
2385 * file descriptors inside the interest set.
2386 */
SYSCALL_DEFINE4(epoll_ctl,int,epfd,int,op,int,fd,struct epoll_event __user *,event)2387 SYSCALL_DEFINE4(epoll_ctl, int, epfd, int, op, int, fd,
2388 struct epoll_event __user *, event)
2389 {
2390 struct epoll_event epds;
2391
2392 if (ep_op_has_event(op) &&
2393 copy_from_user(&epds, event, sizeof(struct epoll_event)))
2394 return -EFAULT;
2395
2396 return do_epoll_ctl(epfd, op, fd, &epds, false);
2397 }
2398
ep_check_params(struct file * file,struct epoll_event __user * evs,int maxevents)2399 static int ep_check_params(struct file *file, struct epoll_event __user *evs,
2400 int maxevents)
2401 {
2402 /* The maximum number of event must be greater than zero */
2403 if (maxevents <= 0 || maxevents > EP_MAX_EVENTS)
2404 return -EINVAL;
2405
2406 /* Verify that the area passed by the user is writeable */
2407 if (!access_ok(evs, maxevents * sizeof(struct epoll_event)))
2408 return -EFAULT;
2409
2410 /*
2411 * We have to check that the file structure underneath the fd
2412 * the user passed to us _is_ an eventpoll file.
2413 */
2414 if (!is_file_epoll(file))
2415 return -EINVAL;
2416
2417 return 0;
2418 }
2419
epoll_sendevents(struct file * file,struct epoll_event __user * events,int maxevents)2420 int epoll_sendevents(struct file *file, struct epoll_event __user *events,
2421 int maxevents)
2422 {
2423 struct eventpoll *ep;
2424 int ret;
2425
2426 ret = ep_check_params(file, events, maxevents);
2427 if (unlikely(ret))
2428 return ret;
2429
2430 ep = file->private_data;
2431 /*
2432 * Racy call, but that's ok - it should get retried based on
2433 * poll readiness anyway.
2434 */
2435 if (ep_events_available(ep))
2436 return ep_try_send_events(ep, events, maxevents);
2437 return 0;
2438 }
2439
2440 /*
2441 * Implement the event wait interface for the eventpoll file. It is the kernel
2442 * part of the user space epoll_wait(2).
2443 */
do_epoll_wait(int epfd,struct epoll_event __user * events,int maxevents,struct timespec64 * to)2444 static int do_epoll_wait(int epfd, struct epoll_event __user *events,
2445 int maxevents, struct timespec64 *to)
2446 {
2447 struct eventpoll *ep;
2448 int ret;
2449
2450 /* Get the "struct file *" for the eventpoll file */
2451 CLASS(fd, f)(epfd);
2452 if (fd_empty(f))
2453 return -EBADF;
2454
2455 ret = ep_check_params(fd_file(f), events, maxevents);
2456 if (unlikely(ret))
2457 return ret;
2458
2459 /*
2460 * At this point it is safe to assume that the "private_data" contains
2461 * our own data structure.
2462 */
2463 ep = fd_file(f)->private_data;
2464
2465 /* Time to fish for events ... */
2466 return ep_poll(ep, events, maxevents, to);
2467 }
2468
SYSCALL_DEFINE4(epoll_wait,int,epfd,struct epoll_event __user *,events,int,maxevents,int,timeout)2469 SYSCALL_DEFINE4(epoll_wait, int, epfd, struct epoll_event __user *, events,
2470 int, maxevents, int, timeout)
2471 {
2472 struct timespec64 to;
2473
2474 return do_epoll_wait(epfd, events, maxevents,
2475 ep_timeout_to_timespec(&to, timeout));
2476 }
2477
2478 /*
2479 * Implement the event wait interface for the eventpoll file. It is the kernel
2480 * part of the user space epoll_pwait(2).
2481 */
do_epoll_pwait(int epfd,struct epoll_event __user * events,int maxevents,struct timespec64 * to,const sigset_t __user * sigmask,size_t sigsetsize)2482 static int do_epoll_pwait(int epfd, struct epoll_event __user *events,
2483 int maxevents, struct timespec64 *to,
2484 const sigset_t __user *sigmask, size_t sigsetsize)
2485 {
2486 int error;
2487
2488 /*
2489 * If the caller wants a certain signal mask to be set during the wait,
2490 * we apply it here.
2491 */
2492 error = set_user_sigmask(sigmask, sigsetsize);
2493 if (error)
2494 return error;
2495
2496 error = do_epoll_wait(epfd, events, maxevents, to);
2497
2498 restore_saved_sigmask_unless(error == -EINTR);
2499
2500 return error;
2501 }
2502
SYSCALL_DEFINE6(epoll_pwait,int,epfd,struct epoll_event __user *,events,int,maxevents,int,timeout,const sigset_t __user *,sigmask,size_t,sigsetsize)2503 SYSCALL_DEFINE6(epoll_pwait, int, epfd, struct epoll_event __user *, events,
2504 int, maxevents, int, timeout, const sigset_t __user *, sigmask,
2505 size_t, sigsetsize)
2506 {
2507 struct timespec64 to;
2508
2509 return do_epoll_pwait(epfd, events, maxevents,
2510 ep_timeout_to_timespec(&to, timeout),
2511 sigmask, sigsetsize);
2512 }
2513
SYSCALL_DEFINE6(epoll_pwait2,int,epfd,struct epoll_event __user *,events,int,maxevents,const struct __kernel_timespec __user *,timeout,const sigset_t __user *,sigmask,size_t,sigsetsize)2514 SYSCALL_DEFINE6(epoll_pwait2, int, epfd, struct epoll_event __user *, events,
2515 int, maxevents, const struct __kernel_timespec __user *, timeout,
2516 const sigset_t __user *, sigmask, size_t, sigsetsize)
2517 {
2518 struct timespec64 ts, *to = NULL;
2519
2520 if (timeout) {
2521 if (get_timespec64(&ts, timeout))
2522 return -EFAULT;
2523 to = &ts;
2524 if (poll_select_set_timeout(to, ts.tv_sec, ts.tv_nsec))
2525 return -EINVAL;
2526 }
2527
2528 return do_epoll_pwait(epfd, events, maxevents, to,
2529 sigmask, sigsetsize);
2530 }
2531
2532 #ifdef CONFIG_COMPAT
do_compat_epoll_pwait(int epfd,struct epoll_event __user * events,int maxevents,struct timespec64 * timeout,const compat_sigset_t __user * sigmask,compat_size_t sigsetsize)2533 static int do_compat_epoll_pwait(int epfd, struct epoll_event __user *events,
2534 int maxevents, struct timespec64 *timeout,
2535 const compat_sigset_t __user *sigmask,
2536 compat_size_t sigsetsize)
2537 {
2538 long err;
2539
2540 /*
2541 * If the caller wants a certain signal mask to be set during the wait,
2542 * we apply it here.
2543 */
2544 err = set_compat_user_sigmask(sigmask, sigsetsize);
2545 if (err)
2546 return err;
2547
2548 err = do_epoll_wait(epfd, events, maxevents, timeout);
2549
2550 restore_saved_sigmask_unless(err == -EINTR);
2551
2552 return err;
2553 }
2554
COMPAT_SYSCALL_DEFINE6(epoll_pwait,int,epfd,struct epoll_event __user *,events,int,maxevents,int,timeout,const compat_sigset_t __user *,sigmask,compat_size_t,sigsetsize)2555 COMPAT_SYSCALL_DEFINE6(epoll_pwait, int, epfd,
2556 struct epoll_event __user *, events,
2557 int, maxevents, int, timeout,
2558 const compat_sigset_t __user *, sigmask,
2559 compat_size_t, sigsetsize)
2560 {
2561 struct timespec64 to;
2562
2563 return do_compat_epoll_pwait(epfd, events, maxevents,
2564 ep_timeout_to_timespec(&to, timeout),
2565 sigmask, sigsetsize);
2566 }
2567
COMPAT_SYSCALL_DEFINE6(epoll_pwait2,int,epfd,struct epoll_event __user *,events,int,maxevents,const struct __kernel_timespec __user *,timeout,const compat_sigset_t __user *,sigmask,compat_size_t,sigsetsize)2568 COMPAT_SYSCALL_DEFINE6(epoll_pwait2, int, epfd,
2569 struct epoll_event __user *, events,
2570 int, maxevents,
2571 const struct __kernel_timespec __user *, timeout,
2572 const compat_sigset_t __user *, sigmask,
2573 compat_size_t, sigsetsize)
2574 {
2575 struct timespec64 ts, *to = NULL;
2576
2577 if (timeout) {
2578 if (get_timespec64(&ts, timeout))
2579 return -EFAULT;
2580 to = &ts;
2581 if (poll_select_set_timeout(to, ts.tv_sec, ts.tv_nsec))
2582 return -EINVAL;
2583 }
2584
2585 return do_compat_epoll_pwait(epfd, events, maxevents, to,
2586 sigmask, sigsetsize);
2587 }
2588
2589 #endif
2590
eventpoll_init(void)2591 static int __init eventpoll_init(void)
2592 {
2593 struct sysinfo si;
2594
2595 si_meminfo(&si);
2596 /*
2597 * Allows top 4% of lomem to be allocated for epoll watches (per user).
2598 */
2599 max_user_watches = (((si.totalram - si.totalhigh) / 25) << PAGE_SHIFT) /
2600 EP_ITEM_COST;
2601 BUG_ON(max_user_watches < 0);
2602
2603 /*
2604 * We can have many thousands of epitems, so prevent this from
2605 * using an extra cache line on 64-bit (and smaller) CPUs
2606 */
2607 BUILD_BUG_ON(sizeof(void *) <= 8 && sizeof(struct epitem) > 128);
2608
2609 /* Allocates slab cache used to allocate "struct epitem" items */
2610 epi_cache = kmem_cache_create("eventpoll_epi", sizeof(struct epitem),
2611 0, SLAB_HWCACHE_ALIGN|SLAB_PANIC|SLAB_ACCOUNT, NULL);
2612
2613 /* Allocates slab cache used to allocate "struct eppoll_entry" */
2614 pwq_cache = kmem_cache_create("eventpoll_pwq",
2615 sizeof(struct eppoll_entry), 0, SLAB_PANIC|SLAB_ACCOUNT, NULL);
2616 epoll_sysctls_init();
2617
2618 ephead_cache = kmem_cache_create("ep_head",
2619 sizeof(struct epitems_head), 0, SLAB_PANIC|SLAB_ACCOUNT, NULL);
2620
2621 return 0;
2622 }
2623 fs_initcall(eventpoll_init);
2624