ALSA: Don't assume i2c device probing always succeeds
[linux-2.6/verdex.git] / kernel / futex.c
blob59a2f4d1620297bb036e5465a99588336d1e3a09
1 /*
2 * Fast Userspace Mutexes (which I call "Futexes!").
3 * (C) Rusty Russell, IBM 2002
5 * Generalized futexes, futex requeueing, misc fixes by Ingo Molnar
6 * (C) Copyright 2003 Red Hat Inc, All Rights Reserved
8 * Removed page pinning, fix privately mapped COW pages and other cleanups
9 * (C) Copyright 2003, 2004 Jamie Lokier
11 * Robust futex support started by Ingo Molnar
12 * (C) Copyright 2006 Red Hat Inc, All Rights Reserved
13 * Thanks to Thomas Gleixner for suggestions, analysis and fixes.
15 * PI-futex support started by Ingo Molnar and Thomas Gleixner
16 * Copyright (C) 2006 Red Hat, Inc., Ingo Molnar <mingo@redhat.com>
17 * Copyright (C) 2006 Timesys Corp., Thomas Gleixner <tglx@timesys.com>
19 * PRIVATE futexes by Eric Dumazet
20 * Copyright (C) 2007 Eric Dumazet <dada1@cosmosbay.com>
22 * Requeue-PI support by Darren Hart <dvhltc@us.ibm.com>
23 * Copyright (C) IBM Corporation, 2009
24 * Thanks to Thomas Gleixner for conceptual design and careful reviews.
26 * Thanks to Ben LaHaise for yelling "hashed waitqueues" loudly
27 * enough at me, Linus for the original (flawed) idea, Matthew
28 * Kirkwood for proof-of-concept implementation.
30 * "The futexes are also cursed."
31 * "But they come in a choice of three flavours!"
33 * This program is free software; you can redistribute it and/or modify
34 * it under the terms of the GNU General Public License as published by
35 * the Free Software Foundation; either version 2 of the License, or
36 * (at your option) any later version.
38 * This program is distributed in the hope that it will be useful,
39 * but WITHOUT ANY WARRANTY; without even the implied warranty of
40 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
41 * GNU General Public License for more details.
43 * You should have received a copy of the GNU General Public License
44 * along with this program; if not, write to the Free Software
45 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
47 #include <linux/slab.h>
48 #include <linux/poll.h>
49 #include <linux/fs.h>
50 #include <linux/file.h>
51 #include <linux/jhash.h>
52 #include <linux/init.h>
53 #include <linux/futex.h>
54 #include <linux/mount.h>
55 #include <linux/pagemap.h>
56 #include <linux/syscalls.h>
57 #include <linux/signal.h>
58 #include <linux/module.h>
59 #include <linux/magic.h>
60 #include <linux/pid.h>
61 #include <linux/nsproxy.h>
63 #include <asm/futex.h>
65 #include "rtmutex_common.h"
67 int __read_mostly futex_cmpxchg_enabled;
69 #define FUTEX_HASHBITS (CONFIG_BASE_SMALL ? 4 : 8)
72 * Priority Inheritance state:
74 struct futex_pi_state {
76 * list of 'owned' pi_state instances - these have to be
77 * cleaned up in do_exit() if the task exits prematurely:
79 struct list_head list;
82 * The PI object:
84 struct rt_mutex pi_mutex;
86 struct task_struct *owner;
87 atomic_t refcount;
89 union futex_key key;
93 * We use this hashed waitqueue instead of a normal wait_queue_t, so
94 * we can wake only the relevant ones (hashed queues may be shared).
96 * A futex_q has a woken state, just like tasks have TASK_RUNNING.
97 * It is considered woken when plist_node_empty(&q->list) || q->lock_ptr == 0.
98 * The order of wakup is always to make the first condition true, then
99 * wake up q->waiter, then make the second condition true.
101 struct futex_q {
102 struct plist_node list;
103 /* Waiter reference */
104 struct task_struct *task;
106 /* Which hash list lock to use: */
107 spinlock_t *lock_ptr;
109 /* Key which the futex is hashed on: */
110 union futex_key key;
112 /* Optional priority inheritance state: */
113 struct futex_pi_state *pi_state;
115 /* rt_waiter storage for requeue_pi: */
116 struct rt_mutex_waiter *rt_waiter;
118 /* The expected requeue pi target futex key: */
119 union futex_key *requeue_pi_key;
121 /* Bitset for the optional bitmasked wakeup */
122 u32 bitset;
126 * Hash buckets are shared by all the futex_keys that hash to the same
127 * location. Each key may have multiple futex_q structures, one for each task
128 * waiting on a futex.
130 struct futex_hash_bucket {
131 spinlock_t lock;
132 struct plist_head chain;
135 static struct futex_hash_bucket futex_queues[1<<FUTEX_HASHBITS];
138 * We hash on the keys returned from get_futex_key (see below).
140 static struct futex_hash_bucket *hash_futex(union futex_key *key)
142 u32 hash = jhash2((u32*)&key->both.word,
143 (sizeof(key->both.word)+sizeof(key->both.ptr))/4,
144 key->both.offset);
145 return &futex_queues[hash & ((1 << FUTEX_HASHBITS)-1)];
149 * Return 1 if two futex_keys are equal, 0 otherwise.
151 static inline int match_futex(union futex_key *key1, union futex_key *key2)
153 return (key1->both.word == key2->both.word
154 && key1->both.ptr == key2->both.ptr
155 && key1->both.offset == key2->both.offset);
159 * Take a reference to the resource addressed by a key.
160 * Can be called while holding spinlocks.
163 static void get_futex_key_refs(union futex_key *key)
165 if (!key->both.ptr)
166 return;
168 switch (key->both.offset & (FUT_OFF_INODE|FUT_OFF_MMSHARED)) {
169 case FUT_OFF_INODE:
170 atomic_inc(&key->shared.inode->i_count);
171 break;
172 case FUT_OFF_MMSHARED:
173 atomic_inc(&key->private.mm->mm_count);
174 break;
179 * Drop a reference to the resource addressed by a key.
180 * The hash bucket spinlock must not be held.
182 static void drop_futex_key_refs(union futex_key *key)
184 if (!key->both.ptr) {
185 /* If we're here then we tried to put a key we failed to get */
186 WARN_ON_ONCE(1);
187 return;
190 switch (key->both.offset & (FUT_OFF_INODE|FUT_OFF_MMSHARED)) {
191 case FUT_OFF_INODE:
192 iput(key->shared.inode);
193 break;
194 case FUT_OFF_MMSHARED:
195 mmdrop(key->private.mm);
196 break;
201 * get_futex_key - Get parameters which are the keys for a futex.
202 * @uaddr: virtual address of the futex
203 * @fshared: 0 for a PROCESS_PRIVATE futex, 1 for PROCESS_SHARED
204 * @key: address where result is stored.
205 * @rw: mapping needs to be read/write (values: VERIFY_READ, VERIFY_WRITE)
207 * Returns a negative error code or 0
208 * The key words are stored in *key on success.
210 * For shared mappings, it's (page->index, vma->vm_file->f_path.dentry->d_inode,
211 * offset_within_page). For private mappings, it's (uaddr, current->mm).
212 * We can usually work out the index without swapping in the page.
214 * lock_page() might sleep, the caller should not hold a spinlock.
216 static int
217 get_futex_key(u32 __user *uaddr, int fshared, union futex_key *key, int rw)
219 unsigned long address = (unsigned long)uaddr;
220 struct mm_struct *mm = current->mm;
221 struct page *page;
222 int err;
225 * The futex address must be "naturally" aligned.
227 key->both.offset = address % PAGE_SIZE;
228 if (unlikely((address % sizeof(u32)) != 0))
229 return -EINVAL;
230 address -= key->both.offset;
233 * PROCESS_PRIVATE futexes are fast.
234 * As the mm cannot disappear under us and the 'key' only needs
235 * virtual address, we dont even have to find the underlying vma.
236 * Note : We do have to check 'uaddr' is a valid user address,
237 * but access_ok() should be faster than find_vma()
239 if (!fshared) {
240 if (unlikely(!access_ok(rw, uaddr, sizeof(u32))))
241 return -EFAULT;
242 key->private.mm = mm;
243 key->private.address = address;
244 get_futex_key_refs(key);
245 return 0;
248 again:
249 err = get_user_pages_fast(address, 1, rw == VERIFY_WRITE, &page);
250 if (err < 0)
251 return err;
253 page = compound_head(page);
254 lock_page(page);
255 if (!page->mapping) {
256 unlock_page(page);
257 put_page(page);
258 goto again;
262 * Private mappings are handled in a simple way.
264 * NOTE: When userspace waits on a MAP_SHARED mapping, even if
265 * it's a read-only handle, it's expected that futexes attach to
266 * the object not the particular process.
268 if (PageAnon(page)) {
269 key->both.offset |= FUT_OFF_MMSHARED; /* ref taken on mm */
270 key->private.mm = mm;
271 key->private.address = address;
272 } else {
273 key->both.offset |= FUT_OFF_INODE; /* inode-based key */
274 key->shared.inode = page->mapping->host;
275 key->shared.pgoff = page->index;
278 get_futex_key_refs(key);
280 unlock_page(page);
281 put_page(page);
282 return 0;
285 static inline
286 void put_futex_key(int fshared, union futex_key *key)
288 drop_futex_key_refs(key);
292 * fault_in_user_writeable - fault in user address and verify RW access
293 * @uaddr: pointer to faulting user space address
295 * Slow path to fixup the fault we just took in the atomic write
296 * access to @uaddr.
298 * We have no generic implementation of a non destructive write to the
299 * user address. We know that we faulted in the atomic pagefault
300 * disabled section so we can as well avoid the #PF overhead by
301 * calling get_user_pages() right away.
303 static int fault_in_user_writeable(u32 __user *uaddr)
305 int ret = get_user_pages(current, current->mm, (unsigned long)uaddr,
306 1, 1, 0, NULL, NULL);
307 return ret < 0 ? ret : 0;
311 * futex_top_waiter() - Return the highest priority waiter on a futex
312 * @hb: the hash bucket the futex_q's reside in
313 * @key: the futex key (to distinguish it from other futex futex_q's)
315 * Must be called with the hb lock held.
317 static struct futex_q *futex_top_waiter(struct futex_hash_bucket *hb,
318 union futex_key *key)
320 struct futex_q *this;
322 plist_for_each_entry(this, &hb->chain, list) {
323 if (match_futex(&this->key, key))
324 return this;
326 return NULL;
329 static u32 cmpxchg_futex_value_locked(u32 __user *uaddr, u32 uval, u32 newval)
331 u32 curval;
333 pagefault_disable();
334 curval = futex_atomic_cmpxchg_inatomic(uaddr, uval, newval);
335 pagefault_enable();
337 return curval;
340 static int get_futex_value_locked(u32 *dest, u32 __user *from)
342 int ret;
344 pagefault_disable();
345 ret = __copy_from_user_inatomic(dest, from, sizeof(u32));
346 pagefault_enable();
348 return ret ? -EFAULT : 0;
353 * PI code:
355 static int refill_pi_state_cache(void)
357 struct futex_pi_state *pi_state;
359 if (likely(current->pi_state_cache))
360 return 0;
362 pi_state = kzalloc(sizeof(*pi_state), GFP_KERNEL);
364 if (!pi_state)
365 return -ENOMEM;
367 INIT_LIST_HEAD(&pi_state->list);
368 /* pi_mutex gets initialized later */
369 pi_state->owner = NULL;
370 atomic_set(&pi_state->refcount, 1);
371 pi_state->key = FUTEX_KEY_INIT;
373 current->pi_state_cache = pi_state;
375 return 0;
378 static struct futex_pi_state * alloc_pi_state(void)
380 struct futex_pi_state *pi_state = current->pi_state_cache;
382 WARN_ON(!pi_state);
383 current->pi_state_cache = NULL;
385 return pi_state;
388 static void free_pi_state(struct futex_pi_state *pi_state)
390 if (!atomic_dec_and_test(&pi_state->refcount))
391 return;
394 * If pi_state->owner is NULL, the owner is most probably dying
395 * and has cleaned up the pi_state already
397 if (pi_state->owner) {
398 spin_lock_irq(&pi_state->owner->pi_lock);
399 list_del_init(&pi_state->list);
400 spin_unlock_irq(&pi_state->owner->pi_lock);
402 rt_mutex_proxy_unlock(&pi_state->pi_mutex, pi_state->owner);
405 if (current->pi_state_cache)
406 kfree(pi_state);
407 else {
409 * pi_state->list is already empty.
410 * clear pi_state->owner.
411 * refcount is at 0 - put it back to 1.
413 pi_state->owner = NULL;
414 atomic_set(&pi_state->refcount, 1);
415 current->pi_state_cache = pi_state;
420 * Look up the task based on what TID userspace gave us.
421 * We dont trust it.
423 static struct task_struct * futex_find_get_task(pid_t pid)
425 struct task_struct *p;
426 const struct cred *cred = current_cred(), *pcred;
428 rcu_read_lock();
429 p = find_task_by_vpid(pid);
430 if (!p) {
431 p = ERR_PTR(-ESRCH);
432 } else {
433 pcred = __task_cred(p);
434 if (cred->euid != pcred->euid &&
435 cred->euid != pcred->uid)
436 p = ERR_PTR(-ESRCH);
437 else
438 get_task_struct(p);
441 rcu_read_unlock();
443 return p;
447 * This task is holding PI mutexes at exit time => bad.
448 * Kernel cleans up PI-state, but userspace is likely hosed.
449 * (Robust-futex cleanup is separate and might save the day for userspace.)
451 void exit_pi_state_list(struct task_struct *curr)
453 struct list_head *next, *head = &curr->pi_state_list;
454 struct futex_pi_state *pi_state;
455 struct futex_hash_bucket *hb;
456 union futex_key key = FUTEX_KEY_INIT;
458 if (!futex_cmpxchg_enabled)
459 return;
461 * We are a ZOMBIE and nobody can enqueue itself on
462 * pi_state_list anymore, but we have to be careful
463 * versus waiters unqueueing themselves:
465 spin_lock_irq(&curr->pi_lock);
466 while (!list_empty(head)) {
468 next = head->next;
469 pi_state = list_entry(next, struct futex_pi_state, list);
470 key = pi_state->key;
471 hb = hash_futex(&key);
472 spin_unlock_irq(&curr->pi_lock);
474 spin_lock(&hb->lock);
476 spin_lock_irq(&curr->pi_lock);
478 * We dropped the pi-lock, so re-check whether this
479 * task still owns the PI-state:
481 if (head->next != next) {
482 spin_unlock(&hb->lock);
483 continue;
486 WARN_ON(pi_state->owner != curr);
487 WARN_ON(list_empty(&pi_state->list));
488 list_del_init(&pi_state->list);
489 pi_state->owner = NULL;
490 spin_unlock_irq(&curr->pi_lock);
492 rt_mutex_unlock(&pi_state->pi_mutex);
494 spin_unlock(&hb->lock);
496 spin_lock_irq(&curr->pi_lock);
498 spin_unlock_irq(&curr->pi_lock);
501 static int
502 lookup_pi_state(u32 uval, struct futex_hash_bucket *hb,
503 union futex_key *key, struct futex_pi_state **ps)
505 struct futex_pi_state *pi_state = NULL;
506 struct futex_q *this, *next;
507 struct plist_head *head;
508 struct task_struct *p;
509 pid_t pid = uval & FUTEX_TID_MASK;
511 head = &hb->chain;
513 plist_for_each_entry_safe(this, next, head, list) {
514 if (match_futex(&this->key, key)) {
516 * Another waiter already exists - bump up
517 * the refcount and return its pi_state:
519 pi_state = this->pi_state;
521 * Userspace might have messed up non PI and PI futexes
523 if (unlikely(!pi_state))
524 return -EINVAL;
526 WARN_ON(!atomic_read(&pi_state->refcount));
527 WARN_ON(pid && pi_state->owner &&
528 pi_state->owner->pid != pid);
530 atomic_inc(&pi_state->refcount);
531 *ps = pi_state;
533 return 0;
538 * We are the first waiter - try to look up the real owner and attach
539 * the new pi_state to it, but bail out when TID = 0
541 if (!pid)
542 return -ESRCH;
543 p = futex_find_get_task(pid);
544 if (IS_ERR(p))
545 return PTR_ERR(p);
548 * We need to look at the task state flags to figure out,
549 * whether the task is exiting. To protect against the do_exit
550 * change of the task flags, we do this protected by
551 * p->pi_lock:
553 spin_lock_irq(&p->pi_lock);
554 if (unlikely(p->flags & PF_EXITING)) {
556 * The task is on the way out. When PF_EXITPIDONE is
557 * set, we know that the task has finished the
558 * cleanup:
560 int ret = (p->flags & PF_EXITPIDONE) ? -ESRCH : -EAGAIN;
562 spin_unlock_irq(&p->pi_lock);
563 put_task_struct(p);
564 return ret;
567 pi_state = alloc_pi_state();
570 * Initialize the pi_mutex in locked state and make 'p'
571 * the owner of it:
573 rt_mutex_init_proxy_locked(&pi_state->pi_mutex, p);
575 /* Store the key for possible exit cleanups: */
576 pi_state->key = *key;
578 WARN_ON(!list_empty(&pi_state->list));
579 list_add(&pi_state->list, &p->pi_state_list);
580 pi_state->owner = p;
581 spin_unlock_irq(&p->pi_lock);
583 put_task_struct(p);
585 *ps = pi_state;
587 return 0;
591 * futex_lock_pi_atomic() - atomic work required to acquire a pi aware futex
592 * @uaddr: the pi futex user address
593 * @hb: the pi futex hash bucket
594 * @key: the futex key associated with uaddr and hb
595 * @ps: the pi_state pointer where we store the result of the
596 * lookup
597 * @task: the task to perform the atomic lock work for. This will
598 * be "current" except in the case of requeue pi.
599 * @set_waiters: force setting the FUTEX_WAITERS bit (1) or not (0)
601 * Returns:
602 * 0 - ready to wait
603 * 1 - acquired the lock
604 * <0 - error
606 * The hb->lock and futex_key refs shall be held by the caller.
608 static int futex_lock_pi_atomic(u32 __user *uaddr, struct futex_hash_bucket *hb,
609 union futex_key *key,
610 struct futex_pi_state **ps,
611 struct task_struct *task, int set_waiters)
613 int lock_taken, ret, ownerdied = 0;
614 u32 uval, newval, curval;
616 retry:
617 ret = lock_taken = 0;
620 * To avoid races, we attempt to take the lock here again
621 * (by doing a 0 -> TID atomic cmpxchg), while holding all
622 * the locks. It will most likely not succeed.
624 newval = task_pid_vnr(task);
625 if (set_waiters)
626 newval |= FUTEX_WAITERS;
628 curval = cmpxchg_futex_value_locked(uaddr, 0, newval);
630 if (unlikely(curval == -EFAULT))
631 return -EFAULT;
634 * Detect deadlocks.
636 if ((unlikely((curval & FUTEX_TID_MASK) == task_pid_vnr(task))))
637 return -EDEADLK;
640 * Surprise - we got the lock. Just return to userspace:
642 if (unlikely(!curval))
643 return 1;
645 uval = curval;
648 * Set the FUTEX_WAITERS flag, so the owner will know it has someone
649 * to wake at the next unlock.
651 newval = curval | FUTEX_WAITERS;
654 * There are two cases, where a futex might have no owner (the
655 * owner TID is 0): OWNER_DIED. We take over the futex in this
656 * case. We also do an unconditional take over, when the owner
657 * of the futex died.
659 * This is safe as we are protected by the hash bucket lock !
661 if (unlikely(ownerdied || !(curval & FUTEX_TID_MASK))) {
662 /* Keep the OWNER_DIED bit */
663 newval = (curval & ~FUTEX_TID_MASK) | task_pid_vnr(task);
664 ownerdied = 0;
665 lock_taken = 1;
668 curval = cmpxchg_futex_value_locked(uaddr, uval, newval);
670 if (unlikely(curval == -EFAULT))
671 return -EFAULT;
672 if (unlikely(curval != uval))
673 goto retry;
676 * We took the lock due to owner died take over.
678 if (unlikely(lock_taken))
679 return 1;
682 * We dont have the lock. Look up the PI state (or create it if
683 * we are the first waiter):
685 ret = lookup_pi_state(uval, hb, key, ps);
687 if (unlikely(ret)) {
688 switch (ret) {
689 case -ESRCH:
691 * No owner found for this futex. Check if the
692 * OWNER_DIED bit is set to figure out whether
693 * this is a robust futex or not.
695 if (get_futex_value_locked(&curval, uaddr))
696 return -EFAULT;
699 * We simply start over in case of a robust
700 * futex. The code above will take the futex
701 * and return happy.
703 if (curval & FUTEX_OWNER_DIED) {
704 ownerdied = 1;
705 goto retry;
707 default:
708 break;
712 return ret;
716 * The hash bucket lock must be held when this is called.
717 * Afterwards, the futex_q must not be accessed.
719 static void wake_futex(struct futex_q *q)
721 struct task_struct *p = q->task;
724 * We set q->lock_ptr = NULL _before_ we wake up the task. If
725 * a non futex wake up happens on another CPU then the task
726 * might exit and p would dereference a non existing task
727 * struct. Prevent this by holding a reference on p across the
728 * wake up.
730 get_task_struct(p);
732 plist_del(&q->list, &q->list.plist);
734 * The waiting task can free the futex_q as soon as
735 * q->lock_ptr = NULL is written, without taking any locks. A
736 * memory barrier is required here to prevent the following
737 * store to lock_ptr from getting ahead of the plist_del.
739 smp_wmb();
740 q->lock_ptr = NULL;
742 wake_up_state(p, TASK_NORMAL);
743 put_task_struct(p);
746 static int wake_futex_pi(u32 __user *uaddr, u32 uval, struct futex_q *this)
748 struct task_struct *new_owner;
749 struct futex_pi_state *pi_state = this->pi_state;
750 u32 curval, newval;
752 if (!pi_state)
753 return -EINVAL;
755 spin_lock(&pi_state->pi_mutex.wait_lock);
756 new_owner = rt_mutex_next_owner(&pi_state->pi_mutex);
759 * This happens when we have stolen the lock and the original
760 * pending owner did not enqueue itself back on the rt_mutex.
761 * Thats not a tragedy. We know that way, that a lock waiter
762 * is on the fly. We make the futex_q waiter the pending owner.
764 if (!new_owner)
765 new_owner = this->task;
768 * We pass it to the next owner. (The WAITERS bit is always
769 * kept enabled while there is PI state around. We must also
770 * preserve the owner died bit.)
772 if (!(uval & FUTEX_OWNER_DIED)) {
773 int ret = 0;
775 newval = FUTEX_WAITERS | task_pid_vnr(new_owner);
777 curval = cmpxchg_futex_value_locked(uaddr, uval, newval);
779 if (curval == -EFAULT)
780 ret = -EFAULT;
781 else if (curval != uval)
782 ret = -EINVAL;
783 if (ret) {
784 spin_unlock(&pi_state->pi_mutex.wait_lock);
785 return ret;
789 spin_lock_irq(&pi_state->owner->pi_lock);
790 WARN_ON(list_empty(&pi_state->list));
791 list_del_init(&pi_state->list);
792 spin_unlock_irq(&pi_state->owner->pi_lock);
794 spin_lock_irq(&new_owner->pi_lock);
795 WARN_ON(!list_empty(&pi_state->list));
796 list_add(&pi_state->list, &new_owner->pi_state_list);
797 pi_state->owner = new_owner;
798 spin_unlock_irq(&new_owner->pi_lock);
800 spin_unlock(&pi_state->pi_mutex.wait_lock);
801 rt_mutex_unlock(&pi_state->pi_mutex);
803 return 0;
806 static int unlock_futex_pi(u32 __user *uaddr, u32 uval)
808 u32 oldval;
811 * There is no waiter, so we unlock the futex. The owner died
812 * bit has not to be preserved here. We are the owner:
814 oldval = cmpxchg_futex_value_locked(uaddr, uval, 0);
816 if (oldval == -EFAULT)
817 return oldval;
818 if (oldval != uval)
819 return -EAGAIN;
821 return 0;
825 * Express the locking dependencies for lockdep:
827 static inline void
828 double_lock_hb(struct futex_hash_bucket *hb1, struct futex_hash_bucket *hb2)
830 if (hb1 <= hb2) {
831 spin_lock(&hb1->lock);
832 if (hb1 < hb2)
833 spin_lock_nested(&hb2->lock, SINGLE_DEPTH_NESTING);
834 } else { /* hb1 > hb2 */
835 spin_lock(&hb2->lock);
836 spin_lock_nested(&hb1->lock, SINGLE_DEPTH_NESTING);
840 static inline void
841 double_unlock_hb(struct futex_hash_bucket *hb1, struct futex_hash_bucket *hb2)
843 spin_unlock(&hb1->lock);
844 if (hb1 != hb2)
845 spin_unlock(&hb2->lock);
849 * Wake up waiters matching bitset queued on this futex (uaddr).
851 static int futex_wake(u32 __user *uaddr, int fshared, int nr_wake, u32 bitset)
853 struct futex_hash_bucket *hb;
854 struct futex_q *this, *next;
855 struct plist_head *head;
856 union futex_key key = FUTEX_KEY_INIT;
857 int ret;
859 if (!bitset)
860 return -EINVAL;
862 ret = get_futex_key(uaddr, fshared, &key, VERIFY_READ);
863 if (unlikely(ret != 0))
864 goto out;
866 hb = hash_futex(&key);
867 spin_lock(&hb->lock);
868 head = &hb->chain;
870 plist_for_each_entry_safe(this, next, head, list) {
871 if (match_futex (&this->key, &key)) {
872 if (this->pi_state || this->rt_waiter) {
873 ret = -EINVAL;
874 break;
877 /* Check if one of the bits is set in both bitsets */
878 if (!(this->bitset & bitset))
879 continue;
881 wake_futex(this);
882 if (++ret >= nr_wake)
883 break;
887 spin_unlock(&hb->lock);
888 put_futex_key(fshared, &key);
889 out:
890 return ret;
894 * Wake up all waiters hashed on the physical page that is mapped
895 * to this virtual address:
897 static int
898 futex_wake_op(u32 __user *uaddr1, int fshared, u32 __user *uaddr2,
899 int nr_wake, int nr_wake2, int op)
901 union futex_key key1 = FUTEX_KEY_INIT, key2 = FUTEX_KEY_INIT;
902 struct futex_hash_bucket *hb1, *hb2;
903 struct plist_head *head;
904 struct futex_q *this, *next;
905 int ret, op_ret;
907 retry:
908 ret = get_futex_key(uaddr1, fshared, &key1, VERIFY_READ);
909 if (unlikely(ret != 0))
910 goto out;
911 ret = get_futex_key(uaddr2, fshared, &key2, VERIFY_WRITE);
912 if (unlikely(ret != 0))
913 goto out_put_key1;
915 hb1 = hash_futex(&key1);
916 hb2 = hash_futex(&key2);
918 retry_private:
919 double_lock_hb(hb1, hb2);
920 op_ret = futex_atomic_op_inuser(op, uaddr2);
921 if (unlikely(op_ret < 0)) {
923 double_unlock_hb(hb1, hb2);
925 #ifndef CONFIG_MMU
927 * we don't get EFAULT from MMU faults if we don't have an MMU,
928 * but we might get them from range checking
930 ret = op_ret;
931 goto out_put_keys;
932 #endif
934 if (unlikely(op_ret != -EFAULT)) {
935 ret = op_ret;
936 goto out_put_keys;
939 ret = fault_in_user_writeable(uaddr2);
940 if (ret)
941 goto out_put_keys;
943 if (!fshared)
944 goto retry_private;
946 put_futex_key(fshared, &key2);
947 put_futex_key(fshared, &key1);
948 goto retry;
951 head = &hb1->chain;
953 plist_for_each_entry_safe(this, next, head, list) {
954 if (match_futex (&this->key, &key1)) {
955 wake_futex(this);
956 if (++ret >= nr_wake)
957 break;
961 if (op_ret > 0) {
962 head = &hb2->chain;
964 op_ret = 0;
965 plist_for_each_entry_safe(this, next, head, list) {
966 if (match_futex (&this->key, &key2)) {
967 wake_futex(this);
968 if (++op_ret >= nr_wake2)
969 break;
972 ret += op_ret;
975 double_unlock_hb(hb1, hb2);
976 out_put_keys:
977 put_futex_key(fshared, &key2);
978 out_put_key1:
979 put_futex_key(fshared, &key1);
980 out:
981 return ret;
985 * requeue_futex() - Requeue a futex_q from one hb to another
986 * @q: the futex_q to requeue
987 * @hb1: the source hash_bucket
988 * @hb2: the target hash_bucket
989 * @key2: the new key for the requeued futex_q
991 static inline
992 void requeue_futex(struct futex_q *q, struct futex_hash_bucket *hb1,
993 struct futex_hash_bucket *hb2, union futex_key *key2)
997 * If key1 and key2 hash to the same bucket, no need to
998 * requeue.
1000 if (likely(&hb1->chain != &hb2->chain)) {
1001 plist_del(&q->list, &hb1->chain);
1002 plist_add(&q->list, &hb2->chain);
1003 q->lock_ptr = &hb2->lock;
1004 #ifdef CONFIG_DEBUG_PI_LIST
1005 q->list.plist.lock = &hb2->lock;
1006 #endif
1008 get_futex_key_refs(key2);
1009 q->key = *key2;
1013 * requeue_pi_wake_futex() - Wake a task that acquired the lock during requeue
1014 * q: the futex_q
1015 * key: the key of the requeue target futex
1016 * hb: the hash_bucket of the requeue target futex
1018 * During futex_requeue, with requeue_pi=1, it is possible to acquire the
1019 * target futex if it is uncontended or via a lock steal. Set the futex_q key
1020 * to the requeue target futex so the waiter can detect the wakeup on the right
1021 * futex, but remove it from the hb and NULL the rt_waiter so it can detect
1022 * atomic lock acquisition. Set the q->lock_ptr to the requeue target hb->lock
1023 * to protect access to the pi_state to fixup the owner later. Must be called
1024 * with both q->lock_ptr and hb->lock held.
1026 static inline
1027 void requeue_pi_wake_futex(struct futex_q *q, union futex_key *key,
1028 struct futex_hash_bucket *hb)
1030 drop_futex_key_refs(&q->key);
1031 get_futex_key_refs(key);
1032 q->key = *key;
1034 WARN_ON(plist_node_empty(&q->list));
1035 plist_del(&q->list, &q->list.plist);
1037 WARN_ON(!q->rt_waiter);
1038 q->rt_waiter = NULL;
1040 q->lock_ptr = &hb->lock;
1041 #ifdef CONFIG_DEBUG_PI_LIST
1042 q->list.plist.lock = &hb->lock;
1043 #endif
1045 wake_up_state(q->task, TASK_NORMAL);
1049 * futex_proxy_trylock_atomic() - Attempt an atomic lock for the top waiter
1050 * @pifutex: the user address of the to futex
1051 * @hb1: the from futex hash bucket, must be locked by the caller
1052 * @hb2: the to futex hash bucket, must be locked by the caller
1053 * @key1: the from futex key
1054 * @key2: the to futex key
1055 * @ps: address to store the pi_state pointer
1056 * @set_waiters: force setting the FUTEX_WAITERS bit (1) or not (0)
1058 * Try and get the lock on behalf of the top waiter if we can do it atomically.
1059 * Wake the top waiter if we succeed. If the caller specified set_waiters,
1060 * then direct futex_lock_pi_atomic() to force setting the FUTEX_WAITERS bit.
1061 * hb1 and hb2 must be held by the caller.
1063 * Returns:
1064 * 0 - failed to acquire the lock atomicly
1065 * 1 - acquired the lock
1066 * <0 - error
1068 static int futex_proxy_trylock_atomic(u32 __user *pifutex,
1069 struct futex_hash_bucket *hb1,
1070 struct futex_hash_bucket *hb2,
1071 union futex_key *key1, union futex_key *key2,
1072 struct futex_pi_state **ps, int set_waiters)
1074 struct futex_q *top_waiter = NULL;
1075 u32 curval;
1076 int ret;
1078 if (get_futex_value_locked(&curval, pifutex))
1079 return -EFAULT;
1082 * Find the top_waiter and determine if there are additional waiters.
1083 * If the caller intends to requeue more than 1 waiter to pifutex,
1084 * force futex_lock_pi_atomic() to set the FUTEX_WAITERS bit now,
1085 * as we have means to handle the possible fault. If not, don't set
1086 * the bit unecessarily as it will force the subsequent unlock to enter
1087 * the kernel.
1089 top_waiter = futex_top_waiter(hb1, key1);
1091 /* There are no waiters, nothing for us to do. */
1092 if (!top_waiter)
1093 return 0;
1095 /* Ensure we requeue to the expected futex. */
1096 if (!match_futex(top_waiter->requeue_pi_key, key2))
1097 return -EINVAL;
1100 * Try to take the lock for top_waiter. Set the FUTEX_WAITERS bit in
1101 * the contended case or if set_waiters is 1. The pi_state is returned
1102 * in ps in contended cases.
1104 ret = futex_lock_pi_atomic(pifutex, hb2, key2, ps, top_waiter->task,
1105 set_waiters);
1106 if (ret == 1)
1107 requeue_pi_wake_futex(top_waiter, key2, hb2);
1109 return ret;
1113 * futex_requeue() - Requeue waiters from uaddr1 to uaddr2
1114 * uaddr1: source futex user address
1115 * uaddr2: target futex user address
1116 * nr_wake: number of waiters to wake (must be 1 for requeue_pi)
1117 * nr_requeue: number of waiters to requeue (0-INT_MAX)
1118 * requeue_pi: if we are attempting to requeue from a non-pi futex to a
1119 * pi futex (pi to pi requeue is not supported)
1121 * Requeue waiters on uaddr1 to uaddr2. In the requeue_pi case, try to acquire
1122 * uaddr2 atomically on behalf of the top waiter.
1124 * Returns:
1125 * >=0 - on success, the number of tasks requeued or woken
1126 * <0 - on error
1128 static int futex_requeue(u32 __user *uaddr1, int fshared, u32 __user *uaddr2,
1129 int nr_wake, int nr_requeue, u32 *cmpval,
1130 int requeue_pi)
1132 union futex_key key1 = FUTEX_KEY_INIT, key2 = FUTEX_KEY_INIT;
1133 int drop_count = 0, task_count = 0, ret;
1134 struct futex_pi_state *pi_state = NULL;
1135 struct futex_hash_bucket *hb1, *hb2;
1136 struct plist_head *head1;
1137 struct futex_q *this, *next;
1138 u32 curval2;
1140 if (requeue_pi) {
1142 * requeue_pi requires a pi_state, try to allocate it now
1143 * without any locks in case it fails.
1145 if (refill_pi_state_cache())
1146 return -ENOMEM;
1148 * requeue_pi must wake as many tasks as it can, up to nr_wake
1149 * + nr_requeue, since it acquires the rt_mutex prior to
1150 * returning to userspace, so as to not leave the rt_mutex with
1151 * waiters and no owner. However, second and third wake-ups
1152 * cannot be predicted as they involve race conditions with the
1153 * first wake and a fault while looking up the pi_state. Both
1154 * pthread_cond_signal() and pthread_cond_broadcast() should
1155 * use nr_wake=1.
1157 if (nr_wake != 1)
1158 return -EINVAL;
1161 retry:
1162 if (pi_state != NULL) {
1164 * We will have to lookup the pi_state again, so free this one
1165 * to keep the accounting correct.
1167 free_pi_state(pi_state);
1168 pi_state = NULL;
1171 ret = get_futex_key(uaddr1, fshared, &key1, VERIFY_READ);
1172 if (unlikely(ret != 0))
1173 goto out;
1174 ret = get_futex_key(uaddr2, fshared, &key2,
1175 requeue_pi ? VERIFY_WRITE : VERIFY_READ);
1176 if (unlikely(ret != 0))
1177 goto out_put_key1;
1179 hb1 = hash_futex(&key1);
1180 hb2 = hash_futex(&key2);
1182 retry_private:
1183 double_lock_hb(hb1, hb2);
1185 if (likely(cmpval != NULL)) {
1186 u32 curval;
1188 ret = get_futex_value_locked(&curval, uaddr1);
1190 if (unlikely(ret)) {
1191 double_unlock_hb(hb1, hb2);
1193 ret = get_user(curval, uaddr1);
1194 if (ret)
1195 goto out_put_keys;
1197 if (!fshared)
1198 goto retry_private;
1200 put_futex_key(fshared, &key2);
1201 put_futex_key(fshared, &key1);
1202 goto retry;
1204 if (curval != *cmpval) {
1205 ret = -EAGAIN;
1206 goto out_unlock;
1210 if (requeue_pi && (task_count - nr_wake < nr_requeue)) {
1212 * Attempt to acquire uaddr2 and wake the top waiter. If we
1213 * intend to requeue waiters, force setting the FUTEX_WAITERS
1214 * bit. We force this here where we are able to easily handle
1215 * faults rather in the requeue loop below.
1217 ret = futex_proxy_trylock_atomic(uaddr2, hb1, hb2, &key1,
1218 &key2, &pi_state, nr_requeue);
1221 * At this point the top_waiter has either taken uaddr2 or is
1222 * waiting on it. If the former, then the pi_state will not
1223 * exist yet, look it up one more time to ensure we have a
1224 * reference to it.
1226 if (ret == 1) {
1227 WARN_ON(pi_state);
1228 task_count++;
1229 ret = get_futex_value_locked(&curval2, uaddr2);
1230 if (!ret)
1231 ret = lookup_pi_state(curval2, hb2, &key2,
1232 &pi_state);
1235 switch (ret) {
1236 case 0:
1237 break;
1238 case -EFAULT:
1239 double_unlock_hb(hb1, hb2);
1240 put_futex_key(fshared, &key2);
1241 put_futex_key(fshared, &key1);
1242 ret = fault_in_user_writeable(uaddr2);
1243 if (!ret)
1244 goto retry;
1245 goto out;
1246 case -EAGAIN:
1247 /* The owner was exiting, try again. */
1248 double_unlock_hb(hb1, hb2);
1249 put_futex_key(fshared, &key2);
1250 put_futex_key(fshared, &key1);
1251 cond_resched();
1252 goto retry;
1253 default:
1254 goto out_unlock;
1258 head1 = &hb1->chain;
1259 plist_for_each_entry_safe(this, next, head1, list) {
1260 if (task_count - nr_wake >= nr_requeue)
1261 break;
1263 if (!match_futex(&this->key, &key1))
1264 continue;
1267 * FUTEX_WAIT_REQEUE_PI and FUTEX_CMP_REQUEUE_PI should always
1268 * be paired with each other and no other futex ops.
1270 if ((requeue_pi && !this->rt_waiter) ||
1271 (!requeue_pi && this->rt_waiter)) {
1272 ret = -EINVAL;
1273 break;
1277 * Wake nr_wake waiters. For requeue_pi, if we acquired the
1278 * lock, we already woke the top_waiter. If not, it will be
1279 * woken by futex_unlock_pi().
1281 if (++task_count <= nr_wake && !requeue_pi) {
1282 wake_futex(this);
1283 continue;
1286 /* Ensure we requeue to the expected futex for requeue_pi. */
1287 if (requeue_pi && !match_futex(this->requeue_pi_key, &key2)) {
1288 ret = -EINVAL;
1289 break;
1293 * Requeue nr_requeue waiters and possibly one more in the case
1294 * of requeue_pi if we couldn't acquire the lock atomically.
1296 if (requeue_pi) {
1297 /* Prepare the waiter to take the rt_mutex. */
1298 atomic_inc(&pi_state->refcount);
1299 this->pi_state = pi_state;
1300 ret = rt_mutex_start_proxy_lock(&pi_state->pi_mutex,
1301 this->rt_waiter,
1302 this->task, 1);
1303 if (ret == 1) {
1304 /* We got the lock. */
1305 requeue_pi_wake_futex(this, &key2, hb2);
1306 continue;
1307 } else if (ret) {
1308 /* -EDEADLK */
1309 this->pi_state = NULL;
1310 free_pi_state(pi_state);
1311 goto out_unlock;
1314 requeue_futex(this, hb1, hb2, &key2);
1315 drop_count++;
1318 out_unlock:
1319 double_unlock_hb(hb1, hb2);
1322 * drop_futex_key_refs() must be called outside the spinlocks. During
1323 * the requeue we moved futex_q's from the hash bucket at key1 to the
1324 * one at key2 and updated their key pointer. We no longer need to
1325 * hold the references to key1.
1327 while (--drop_count >= 0)
1328 drop_futex_key_refs(&key1);
1330 out_put_keys:
1331 put_futex_key(fshared, &key2);
1332 out_put_key1:
1333 put_futex_key(fshared, &key1);
1334 out:
1335 if (pi_state != NULL)
1336 free_pi_state(pi_state);
1337 return ret ? ret : task_count;
1340 /* The key must be already stored in q->key. */
1341 static inline struct futex_hash_bucket *queue_lock(struct futex_q *q)
1343 struct futex_hash_bucket *hb;
1345 get_futex_key_refs(&q->key);
1346 hb = hash_futex(&q->key);
1347 q->lock_ptr = &hb->lock;
1349 spin_lock(&hb->lock);
1350 return hb;
1353 static inline void queue_me(struct futex_q *q, struct futex_hash_bucket *hb)
1355 int prio;
1358 * The priority used to register this element is
1359 * - either the real thread-priority for the real-time threads
1360 * (i.e. threads with a priority lower than MAX_RT_PRIO)
1361 * - or MAX_RT_PRIO for non-RT threads.
1362 * Thus, all RT-threads are woken first in priority order, and
1363 * the others are woken last, in FIFO order.
1365 prio = min(current->normal_prio, MAX_RT_PRIO);
1367 plist_node_init(&q->list, prio);
1368 #ifdef CONFIG_DEBUG_PI_LIST
1369 q->list.plist.lock = &hb->lock;
1370 #endif
1371 plist_add(&q->list, &hb->chain);
1372 q->task = current;
1373 spin_unlock(&hb->lock);
1376 static inline void
1377 queue_unlock(struct futex_q *q, struct futex_hash_bucket *hb)
1379 spin_unlock(&hb->lock);
1380 drop_futex_key_refs(&q->key);
1384 * queue_me and unqueue_me must be called as a pair, each
1385 * exactly once. They are called with the hashed spinlock held.
1388 /* Return 1 if we were still queued (ie. 0 means we were woken) */
1389 static int unqueue_me(struct futex_q *q)
1391 spinlock_t *lock_ptr;
1392 int ret = 0;
1394 /* In the common case we don't take the spinlock, which is nice. */
1395 retry:
1396 lock_ptr = q->lock_ptr;
1397 barrier();
1398 if (lock_ptr != NULL) {
1399 spin_lock(lock_ptr);
1401 * q->lock_ptr can change between reading it and
1402 * spin_lock(), causing us to take the wrong lock. This
1403 * corrects the race condition.
1405 * Reasoning goes like this: if we have the wrong lock,
1406 * q->lock_ptr must have changed (maybe several times)
1407 * between reading it and the spin_lock(). It can
1408 * change again after the spin_lock() but only if it was
1409 * already changed before the spin_lock(). It cannot,
1410 * however, change back to the original value. Therefore
1411 * we can detect whether we acquired the correct lock.
1413 if (unlikely(lock_ptr != q->lock_ptr)) {
1414 spin_unlock(lock_ptr);
1415 goto retry;
1417 WARN_ON(plist_node_empty(&q->list));
1418 plist_del(&q->list, &q->list.plist);
1420 BUG_ON(q->pi_state);
1422 spin_unlock(lock_ptr);
1423 ret = 1;
1426 drop_futex_key_refs(&q->key);
1427 return ret;
1431 * PI futexes can not be requeued and must remove themself from the
1432 * hash bucket. The hash bucket lock (i.e. lock_ptr) is held on entry
1433 * and dropped here.
1435 static void unqueue_me_pi(struct futex_q *q)
1437 WARN_ON(plist_node_empty(&q->list));
1438 plist_del(&q->list, &q->list.plist);
1440 BUG_ON(!q->pi_state);
1441 free_pi_state(q->pi_state);
1442 q->pi_state = NULL;
1444 spin_unlock(q->lock_ptr);
1446 drop_futex_key_refs(&q->key);
1450 * Fixup the pi_state owner with the new owner.
1452 * Must be called with hash bucket lock held and mm->sem held for non
1453 * private futexes.
1455 static int fixup_pi_state_owner(u32 __user *uaddr, struct futex_q *q,
1456 struct task_struct *newowner, int fshared)
1458 u32 newtid = task_pid_vnr(newowner) | FUTEX_WAITERS;
1459 struct futex_pi_state *pi_state = q->pi_state;
1460 struct task_struct *oldowner = pi_state->owner;
1461 u32 uval, curval, newval;
1462 int ret;
1464 /* Owner died? */
1465 if (!pi_state->owner)
1466 newtid |= FUTEX_OWNER_DIED;
1469 * We are here either because we stole the rtmutex from the
1470 * pending owner or we are the pending owner which failed to
1471 * get the rtmutex. We have to replace the pending owner TID
1472 * in the user space variable. This must be atomic as we have
1473 * to preserve the owner died bit here.
1475 * Note: We write the user space value _before_ changing the pi_state
1476 * because we can fault here. Imagine swapped out pages or a fork
1477 * that marked all the anonymous memory readonly for cow.
1479 * Modifying pi_state _before_ the user space value would
1480 * leave the pi_state in an inconsistent state when we fault
1481 * here, because we need to drop the hash bucket lock to
1482 * handle the fault. This might be observed in the PID check
1483 * in lookup_pi_state.
1485 retry:
1486 if (get_futex_value_locked(&uval, uaddr))
1487 goto handle_fault;
1489 while (1) {
1490 newval = (uval & FUTEX_OWNER_DIED) | newtid;
1492 curval = cmpxchg_futex_value_locked(uaddr, uval, newval);
1494 if (curval == -EFAULT)
1495 goto handle_fault;
1496 if (curval == uval)
1497 break;
1498 uval = curval;
1502 * We fixed up user space. Now we need to fix the pi_state
1503 * itself.
1505 if (pi_state->owner != NULL) {
1506 spin_lock_irq(&pi_state->owner->pi_lock);
1507 WARN_ON(list_empty(&pi_state->list));
1508 list_del_init(&pi_state->list);
1509 spin_unlock_irq(&pi_state->owner->pi_lock);
1512 pi_state->owner = newowner;
1514 spin_lock_irq(&newowner->pi_lock);
1515 WARN_ON(!list_empty(&pi_state->list));
1516 list_add(&pi_state->list, &newowner->pi_state_list);
1517 spin_unlock_irq(&newowner->pi_lock);
1518 return 0;
1521 * To handle the page fault we need to drop the hash bucket
1522 * lock here. That gives the other task (either the pending
1523 * owner itself or the task which stole the rtmutex) the
1524 * chance to try the fixup of the pi_state. So once we are
1525 * back from handling the fault we need to check the pi_state
1526 * after reacquiring the hash bucket lock and before trying to
1527 * do another fixup. When the fixup has been done already we
1528 * simply return.
1530 handle_fault:
1531 spin_unlock(q->lock_ptr);
1533 ret = fault_in_user_writeable(uaddr);
1535 spin_lock(q->lock_ptr);
1538 * Check if someone else fixed it for us:
1540 if (pi_state->owner != oldowner)
1541 return 0;
1543 if (ret)
1544 return ret;
1546 goto retry;
1550 * In case we must use restart_block to restart a futex_wait,
1551 * we encode in the 'flags' shared capability
1553 #define FLAGS_SHARED 0x01
1554 #define FLAGS_CLOCKRT 0x02
1555 #define FLAGS_HAS_TIMEOUT 0x04
1557 static long futex_wait_restart(struct restart_block *restart);
1560 * fixup_owner() - Post lock pi_state and corner case management
1561 * @uaddr: user address of the futex
1562 * @fshared: whether the futex is shared (1) or not (0)
1563 * @q: futex_q (contains pi_state and access to the rt_mutex)
1564 * @locked: if the attempt to take the rt_mutex succeeded (1) or not (0)
1566 * After attempting to lock an rt_mutex, this function is called to cleanup
1567 * the pi_state owner as well as handle race conditions that may allow us to
1568 * acquire the lock. Must be called with the hb lock held.
1570 * Returns:
1571 * 1 - success, lock taken
1572 * 0 - success, lock not taken
1573 * <0 - on error (-EFAULT)
1575 static int fixup_owner(u32 __user *uaddr, int fshared, struct futex_q *q,
1576 int locked)
1578 struct task_struct *owner;
1579 int ret = 0;
1581 if (locked) {
1583 * Got the lock. We might not be the anticipated owner if we
1584 * did a lock-steal - fix up the PI-state in that case:
1586 if (q->pi_state->owner != current)
1587 ret = fixup_pi_state_owner(uaddr, q, current, fshared);
1588 goto out;
1592 * Catch the rare case, where the lock was released when we were on the
1593 * way back before we locked the hash bucket.
1595 if (q->pi_state->owner == current) {
1597 * Try to get the rt_mutex now. This might fail as some other
1598 * task acquired the rt_mutex after we removed ourself from the
1599 * rt_mutex waiters list.
1601 if (rt_mutex_trylock(&q->pi_state->pi_mutex)) {
1602 locked = 1;
1603 goto out;
1607 * pi_state is incorrect, some other task did a lock steal and
1608 * we returned due to timeout or signal without taking the
1609 * rt_mutex. Too late. We can access the rt_mutex_owner without
1610 * locking, as the other task is now blocked on the hash bucket
1611 * lock. Fix the state up.
1613 owner = rt_mutex_owner(&q->pi_state->pi_mutex);
1614 ret = fixup_pi_state_owner(uaddr, q, owner, fshared);
1615 goto out;
1619 * Paranoia check. If we did not take the lock, then we should not be
1620 * the owner, nor the pending owner, of the rt_mutex.
1622 if (rt_mutex_owner(&q->pi_state->pi_mutex) == current)
1623 printk(KERN_ERR "fixup_owner: ret = %d pi-mutex: %p "
1624 "pi-state %p\n", ret,
1625 q->pi_state->pi_mutex.owner,
1626 q->pi_state->owner);
1628 out:
1629 return ret ? ret : locked;
1633 * futex_wait_queue_me() - queue_me() and wait for wakeup, timeout, or signal
1634 * @hb: the futex hash bucket, must be locked by the caller
1635 * @q: the futex_q to queue up on
1636 * @timeout: the prepared hrtimer_sleeper, or null for no timeout
1638 static void futex_wait_queue_me(struct futex_hash_bucket *hb, struct futex_q *q,
1639 struct hrtimer_sleeper *timeout)
1641 set_current_state(TASK_INTERRUPTIBLE);
1642 queue_me(q, hb);
1644 /* Arm the timer */
1645 if (timeout) {
1646 hrtimer_start_expires(&timeout->timer, HRTIMER_MODE_ABS);
1647 if (!hrtimer_active(&timeout->timer))
1648 timeout->task = NULL;
1652 * If we have been removed from the hash list, then another task
1653 * has tried to wake us, and we can skip the call to schedule().
1655 if (likely(!plist_node_empty(&q->list))) {
1657 * If the timer has already expired, current will already be
1658 * flagged for rescheduling. Only call schedule if there
1659 * is no timeout, or if it has yet to expire.
1661 if (!timeout || timeout->task)
1662 schedule();
1664 __set_current_state(TASK_RUNNING);
1668 * futex_wait_setup() - Prepare to wait on a futex
1669 * @uaddr: the futex userspace address
1670 * @val: the expected value
1671 * @fshared: whether the futex is shared (1) or not (0)
1672 * @q: the associated futex_q
1673 * @hb: storage for hash_bucket pointer to be returned to caller
1675 * Setup the futex_q and locate the hash_bucket. Get the futex value and
1676 * compare it with the expected value. Handle atomic faults internally.
1677 * Return with the hb lock held and a q.key reference on success, and unlocked
1678 * with no q.key reference on failure.
1680 * Returns:
1681 * 0 - uaddr contains val and hb has been locked
1682 * <1 - -EFAULT or -EWOULDBLOCK (uaddr does not contain val) and hb is unlcoked
1684 static int futex_wait_setup(u32 __user *uaddr, u32 val, int fshared,
1685 struct futex_q *q, struct futex_hash_bucket **hb)
1687 u32 uval;
1688 int ret;
1691 * Access the page AFTER the hash-bucket is locked.
1692 * Order is important:
1694 * Userspace waiter: val = var; if (cond(val)) futex_wait(&var, val);
1695 * Userspace waker: if (cond(var)) { var = new; futex_wake(&var); }
1697 * The basic logical guarantee of a futex is that it blocks ONLY
1698 * if cond(var) is known to be true at the time of blocking, for
1699 * any cond. If we queued after testing *uaddr, that would open
1700 * a race condition where we could block indefinitely with
1701 * cond(var) false, which would violate the guarantee.
1703 * A consequence is that futex_wait() can return zero and absorb
1704 * a wakeup when *uaddr != val on entry to the syscall. This is
1705 * rare, but normal.
1707 retry:
1708 q->key = FUTEX_KEY_INIT;
1709 ret = get_futex_key(uaddr, fshared, &q->key, VERIFY_READ);
1710 if (unlikely(ret != 0))
1711 return ret;
1713 retry_private:
1714 *hb = queue_lock(q);
1716 ret = get_futex_value_locked(&uval, uaddr);
1718 if (ret) {
1719 queue_unlock(q, *hb);
1721 ret = get_user(uval, uaddr);
1722 if (ret)
1723 goto out;
1725 if (!fshared)
1726 goto retry_private;
1728 put_futex_key(fshared, &q->key);
1729 goto retry;
1732 if (uval != val) {
1733 queue_unlock(q, *hb);
1734 ret = -EWOULDBLOCK;
1737 out:
1738 if (ret)
1739 put_futex_key(fshared, &q->key);
1740 return ret;
1743 static int futex_wait(u32 __user *uaddr, int fshared,
1744 u32 val, ktime_t *abs_time, u32 bitset, int clockrt)
1746 struct hrtimer_sleeper timeout, *to = NULL;
1747 struct restart_block *restart;
1748 struct futex_hash_bucket *hb;
1749 struct futex_q q;
1750 int ret;
1752 if (!bitset)
1753 return -EINVAL;
1755 q.pi_state = NULL;
1756 q.bitset = bitset;
1757 q.rt_waiter = NULL;
1758 q.requeue_pi_key = NULL;
1760 if (abs_time) {
1761 to = &timeout;
1763 hrtimer_init_on_stack(&to->timer, clockrt ? CLOCK_REALTIME :
1764 CLOCK_MONOTONIC, HRTIMER_MODE_ABS);
1765 hrtimer_init_sleeper(to, current);
1766 hrtimer_set_expires_range_ns(&to->timer, *abs_time,
1767 current->timer_slack_ns);
1770 /* Prepare to wait on uaddr. */
1771 ret = futex_wait_setup(uaddr, val, fshared, &q, &hb);
1772 if (ret)
1773 goto out;
1775 /* queue_me and wait for wakeup, timeout, or a signal. */
1776 futex_wait_queue_me(hb, &q, to);
1778 /* If we were woken (and unqueued), we succeeded, whatever. */
1779 ret = 0;
1780 if (!unqueue_me(&q))
1781 goto out_put_key;
1782 ret = -ETIMEDOUT;
1783 if (to && !to->task)
1784 goto out_put_key;
1787 * We expect signal_pending(current), but another thread may
1788 * have handled it for us already.
1790 ret = -ERESTARTSYS;
1791 if (!abs_time)
1792 goto out_put_key;
1794 restart = &current_thread_info()->restart_block;
1795 restart->fn = futex_wait_restart;
1796 restart->futex.uaddr = (u32 *)uaddr;
1797 restart->futex.val = val;
1798 restart->futex.time = abs_time->tv64;
1799 restart->futex.bitset = bitset;
1800 restart->futex.flags = FLAGS_HAS_TIMEOUT;
1802 if (fshared)
1803 restart->futex.flags |= FLAGS_SHARED;
1804 if (clockrt)
1805 restart->futex.flags |= FLAGS_CLOCKRT;
1807 ret = -ERESTART_RESTARTBLOCK;
1809 out_put_key:
1810 put_futex_key(fshared, &q.key);
1811 out:
1812 if (to) {
1813 hrtimer_cancel(&to->timer);
1814 destroy_hrtimer_on_stack(&to->timer);
1816 return ret;
1820 static long futex_wait_restart(struct restart_block *restart)
1822 u32 __user *uaddr = (u32 __user *)restart->futex.uaddr;
1823 int fshared = 0;
1824 ktime_t t, *tp = NULL;
1826 if (restart->futex.flags & FLAGS_HAS_TIMEOUT) {
1827 t.tv64 = restart->futex.time;
1828 tp = &t;
1830 restart->fn = do_no_restart_syscall;
1831 if (restart->futex.flags & FLAGS_SHARED)
1832 fshared = 1;
1833 return (long)futex_wait(uaddr, fshared, restart->futex.val, tp,
1834 restart->futex.bitset,
1835 restart->futex.flags & FLAGS_CLOCKRT);
1840 * Userspace tried a 0 -> TID atomic transition of the futex value
1841 * and failed. The kernel side here does the whole locking operation:
1842 * if there are waiters then it will block, it does PI, etc. (Due to
1843 * races the kernel might see a 0 value of the futex too.)
1845 static int futex_lock_pi(u32 __user *uaddr, int fshared,
1846 int detect, ktime_t *time, int trylock)
1848 struct hrtimer_sleeper timeout, *to = NULL;
1849 struct futex_hash_bucket *hb;
1850 struct futex_q q;
1851 int res, ret;
1853 if (refill_pi_state_cache())
1854 return -ENOMEM;
1856 if (time) {
1857 to = &timeout;
1858 hrtimer_init_on_stack(&to->timer, CLOCK_REALTIME,
1859 HRTIMER_MODE_ABS);
1860 hrtimer_init_sleeper(to, current);
1861 hrtimer_set_expires(&to->timer, *time);
1864 q.pi_state = NULL;
1865 q.rt_waiter = NULL;
1866 q.requeue_pi_key = NULL;
1867 retry:
1868 q.key = FUTEX_KEY_INIT;
1869 ret = get_futex_key(uaddr, fshared, &q.key, VERIFY_WRITE);
1870 if (unlikely(ret != 0))
1871 goto out;
1873 retry_private:
1874 hb = queue_lock(&q);
1876 ret = futex_lock_pi_atomic(uaddr, hb, &q.key, &q.pi_state, current, 0);
1877 if (unlikely(ret)) {
1878 switch (ret) {
1879 case 1:
1880 /* We got the lock. */
1881 ret = 0;
1882 goto out_unlock_put_key;
1883 case -EFAULT:
1884 goto uaddr_faulted;
1885 case -EAGAIN:
1887 * Task is exiting and we just wait for the
1888 * exit to complete.
1890 queue_unlock(&q, hb);
1891 put_futex_key(fshared, &q.key);
1892 cond_resched();
1893 goto retry;
1894 default:
1895 goto out_unlock_put_key;
1900 * Only actually queue now that the atomic ops are done:
1902 queue_me(&q, hb);
1904 WARN_ON(!q.pi_state);
1906 * Block on the PI mutex:
1908 if (!trylock)
1909 ret = rt_mutex_timed_lock(&q.pi_state->pi_mutex, to, 1);
1910 else {
1911 ret = rt_mutex_trylock(&q.pi_state->pi_mutex);
1912 /* Fixup the trylock return value: */
1913 ret = ret ? 0 : -EWOULDBLOCK;
1916 spin_lock(q.lock_ptr);
1918 * Fixup the pi_state owner and possibly acquire the lock if we
1919 * haven't already.
1921 res = fixup_owner(uaddr, fshared, &q, !ret);
1923 * If fixup_owner() returned an error, proprogate that. If it acquired
1924 * the lock, clear our -ETIMEDOUT or -EINTR.
1926 if (res)
1927 ret = (res < 0) ? res : 0;
1930 * If fixup_owner() faulted and was unable to handle the fault, unlock
1931 * it and return the fault to userspace.
1933 if (ret && (rt_mutex_owner(&q.pi_state->pi_mutex) == current))
1934 rt_mutex_unlock(&q.pi_state->pi_mutex);
1936 /* Unqueue and drop the lock */
1937 unqueue_me_pi(&q);
1939 goto out;
1941 out_unlock_put_key:
1942 queue_unlock(&q, hb);
1944 out_put_key:
1945 put_futex_key(fshared, &q.key);
1946 out:
1947 if (to)
1948 destroy_hrtimer_on_stack(&to->timer);
1949 return ret != -EINTR ? ret : -ERESTARTNOINTR;
1951 uaddr_faulted:
1952 queue_unlock(&q, hb);
1954 ret = fault_in_user_writeable(uaddr);
1955 if (ret)
1956 goto out_put_key;
1958 if (!fshared)
1959 goto retry_private;
1961 put_futex_key(fshared, &q.key);
1962 goto retry;
1966 * Userspace attempted a TID -> 0 atomic transition, and failed.
1967 * This is the in-kernel slowpath: we look up the PI state (if any),
1968 * and do the rt-mutex unlock.
1970 static int futex_unlock_pi(u32 __user *uaddr, int fshared)
1972 struct futex_hash_bucket *hb;
1973 struct futex_q *this, *next;
1974 u32 uval;
1975 struct plist_head *head;
1976 union futex_key key = FUTEX_KEY_INIT;
1977 int ret;
1979 retry:
1980 if (get_user(uval, uaddr))
1981 return -EFAULT;
1983 * We release only a lock we actually own:
1985 if ((uval & FUTEX_TID_MASK) != task_pid_vnr(current))
1986 return -EPERM;
1988 ret = get_futex_key(uaddr, fshared, &key, VERIFY_WRITE);
1989 if (unlikely(ret != 0))
1990 goto out;
1992 hb = hash_futex(&key);
1993 spin_lock(&hb->lock);
1996 * To avoid races, try to do the TID -> 0 atomic transition
1997 * again. If it succeeds then we can return without waking
1998 * anyone else up:
2000 if (!(uval & FUTEX_OWNER_DIED))
2001 uval = cmpxchg_futex_value_locked(uaddr, task_pid_vnr(current), 0);
2004 if (unlikely(uval == -EFAULT))
2005 goto pi_faulted;
2007 * Rare case: we managed to release the lock atomically,
2008 * no need to wake anyone else up:
2010 if (unlikely(uval == task_pid_vnr(current)))
2011 goto out_unlock;
2014 * Ok, other tasks may need to be woken up - check waiters
2015 * and do the wakeup if necessary:
2017 head = &hb->chain;
2019 plist_for_each_entry_safe(this, next, head, list) {
2020 if (!match_futex (&this->key, &key))
2021 continue;
2022 ret = wake_futex_pi(uaddr, uval, this);
2024 * The atomic access to the futex value
2025 * generated a pagefault, so retry the
2026 * user-access and the wakeup:
2028 if (ret == -EFAULT)
2029 goto pi_faulted;
2030 goto out_unlock;
2033 * No waiters - kernel unlocks the futex:
2035 if (!(uval & FUTEX_OWNER_DIED)) {
2036 ret = unlock_futex_pi(uaddr, uval);
2037 if (ret == -EFAULT)
2038 goto pi_faulted;
2041 out_unlock:
2042 spin_unlock(&hb->lock);
2043 put_futex_key(fshared, &key);
2045 out:
2046 return ret;
2048 pi_faulted:
2049 spin_unlock(&hb->lock);
2050 put_futex_key(fshared, &key);
2052 ret = fault_in_user_writeable(uaddr);
2053 if (!ret)
2054 goto retry;
2056 return ret;
2060 * handle_early_requeue_pi_wakeup() - Detect early wakeup on the initial futex
2061 * @hb: the hash_bucket futex_q was original enqueued on
2062 * @q: the futex_q woken while waiting to be requeued
2063 * @key2: the futex_key of the requeue target futex
2064 * @timeout: the timeout associated with the wait (NULL if none)
2066 * Detect if the task was woken on the initial futex as opposed to the requeue
2067 * target futex. If so, determine if it was a timeout or a signal that caused
2068 * the wakeup and return the appropriate error code to the caller. Must be
2069 * called with the hb lock held.
2071 * Returns
2072 * 0 - no early wakeup detected
2073 * <0 - -ETIMEDOUT or -ERESTARTNOINTR
2075 static inline
2076 int handle_early_requeue_pi_wakeup(struct futex_hash_bucket *hb,
2077 struct futex_q *q, union futex_key *key2,
2078 struct hrtimer_sleeper *timeout)
2080 int ret = 0;
2083 * With the hb lock held, we avoid races while we process the wakeup.
2084 * We only need to hold hb (and not hb2) to ensure atomicity as the
2085 * wakeup code can't change q.key from uaddr to uaddr2 if we hold hb.
2086 * It can't be requeued from uaddr2 to something else since we don't
2087 * support a PI aware source futex for requeue.
2089 if (!match_futex(&q->key, key2)) {
2090 WARN_ON(q->lock_ptr && (&hb->lock != q->lock_ptr));
2092 * We were woken prior to requeue by a timeout or a signal.
2093 * Unqueue the futex_q and determine which it was.
2095 plist_del(&q->list, &q->list.plist);
2097 if (timeout && !timeout->task)
2098 ret = -ETIMEDOUT;
2099 else
2100 ret = -ERESTARTNOINTR;
2102 return ret;
2106 * futex_wait_requeue_pi() - Wait on uaddr and take uaddr2
2107 * @uaddr: the futex we initialyl wait on (non-pi)
2108 * @fshared: whether the futexes are shared (1) or not (0). They must be
2109 * the same type, no requeueing from private to shared, etc.
2110 * @val: the expected value of uaddr
2111 * @abs_time: absolute timeout
2112 * @bitset: 32 bit wakeup bitset set by userspace, defaults to all.
2113 * @clockrt: whether to use CLOCK_REALTIME (1) or CLOCK_MONOTONIC (0)
2114 * @uaddr2: the pi futex we will take prior to returning to user-space
2116 * The caller will wait on uaddr and will be requeued by futex_requeue() to
2117 * uaddr2 which must be PI aware. Normal wakeup will wake on uaddr2 and
2118 * complete the acquisition of the rt_mutex prior to returning to userspace.
2119 * This ensures the rt_mutex maintains an owner when it has waiters; without
2120 * one, the pi logic wouldn't know which task to boost/deboost, if there was a
2121 * need to.
2123 * We call schedule in futex_wait_queue_me() when we enqueue and return there
2124 * via the following:
2125 * 1) wakeup on uaddr2 after an atomic lock acquisition by futex_requeue()
2126 * 2) wakeup on uaddr2 after a requeue and subsequent unlock
2127 * 3) signal (before or after requeue)
2128 * 4) timeout (before or after requeue)
2130 * If 3, we setup a restart_block with futex_wait_requeue_pi() as the function.
2132 * If 2, we may then block on trying to take the rt_mutex and return via:
2133 * 5) successful lock
2134 * 6) signal
2135 * 7) timeout
2136 * 8) other lock acquisition failure
2138 * If 6, we setup a restart_block with futex_lock_pi() as the function.
2140 * If 4 or 7, we cleanup and return with -ETIMEDOUT.
2142 * Returns:
2143 * 0 - On success
2144 * <0 - On error
2146 static int futex_wait_requeue_pi(u32 __user *uaddr, int fshared,
2147 u32 val, ktime_t *abs_time, u32 bitset,
2148 int clockrt, u32 __user *uaddr2)
2150 struct hrtimer_sleeper timeout, *to = NULL;
2151 struct rt_mutex_waiter rt_waiter;
2152 struct rt_mutex *pi_mutex = NULL;
2153 struct futex_hash_bucket *hb;
2154 union futex_key key2;
2155 struct futex_q q;
2156 int res, ret;
2158 if (!bitset)
2159 return -EINVAL;
2161 if (abs_time) {
2162 to = &timeout;
2163 hrtimer_init_on_stack(&to->timer, clockrt ? CLOCK_REALTIME :
2164 CLOCK_MONOTONIC, HRTIMER_MODE_ABS);
2165 hrtimer_init_sleeper(to, current);
2166 hrtimer_set_expires_range_ns(&to->timer, *abs_time,
2167 current->timer_slack_ns);
2171 * The waiter is allocated on our stack, manipulated by the requeue
2172 * code while we sleep on uaddr.
2174 debug_rt_mutex_init_waiter(&rt_waiter);
2175 rt_waiter.task = NULL;
2177 key2 = FUTEX_KEY_INIT;
2178 ret = get_futex_key(uaddr2, fshared, &key2, VERIFY_WRITE);
2179 if (unlikely(ret != 0))
2180 goto out;
2182 q.pi_state = NULL;
2183 q.bitset = bitset;
2184 q.rt_waiter = &rt_waiter;
2185 q.requeue_pi_key = &key2;
2187 /* Prepare to wait on uaddr. */
2188 ret = futex_wait_setup(uaddr, val, fshared, &q, &hb);
2189 if (ret)
2190 goto out_key2;
2192 /* Queue the futex_q, drop the hb lock, wait for wakeup. */
2193 futex_wait_queue_me(hb, &q, to);
2195 spin_lock(&hb->lock);
2196 ret = handle_early_requeue_pi_wakeup(hb, &q, &key2, to);
2197 spin_unlock(&hb->lock);
2198 if (ret)
2199 goto out_put_keys;
2202 * In order for us to be here, we know our q.key == key2, and since
2203 * we took the hb->lock above, we also know that futex_requeue() has
2204 * completed and we no longer have to concern ourselves with a wakeup
2205 * race with the atomic proxy lock acquition by the requeue code.
2208 /* Check if the requeue code acquired the second futex for us. */
2209 if (!q.rt_waiter) {
2211 * Got the lock. We might not be the anticipated owner if we
2212 * did a lock-steal - fix up the PI-state in that case.
2214 if (q.pi_state && (q.pi_state->owner != current)) {
2215 spin_lock(q.lock_ptr);
2216 ret = fixup_pi_state_owner(uaddr2, &q, current,
2217 fshared);
2218 spin_unlock(q.lock_ptr);
2220 } else {
2222 * We have been woken up by futex_unlock_pi(), a timeout, or a
2223 * signal. futex_unlock_pi() will not destroy the lock_ptr nor
2224 * the pi_state.
2226 WARN_ON(!&q.pi_state);
2227 pi_mutex = &q.pi_state->pi_mutex;
2228 ret = rt_mutex_finish_proxy_lock(pi_mutex, to, &rt_waiter, 1);
2229 debug_rt_mutex_free_waiter(&rt_waiter);
2231 spin_lock(q.lock_ptr);
2233 * Fixup the pi_state owner and possibly acquire the lock if we
2234 * haven't already.
2236 res = fixup_owner(uaddr2, fshared, &q, !ret);
2238 * If fixup_owner() returned an error, proprogate that. If it
2239 * acquired the lock, clear our -ETIMEDOUT or -EINTR.
2241 if (res)
2242 ret = (res < 0) ? res : 0;
2244 /* Unqueue and drop the lock. */
2245 unqueue_me_pi(&q);
2249 * If fixup_pi_state_owner() faulted and was unable to handle the
2250 * fault, unlock the rt_mutex and return the fault to userspace.
2252 if (ret == -EFAULT) {
2253 if (rt_mutex_owner(pi_mutex) == current)
2254 rt_mutex_unlock(pi_mutex);
2255 } else if (ret == -EINTR) {
2257 * We've already been requeued, but we have no way to
2258 * restart by calling futex_lock_pi() directly. We
2259 * could restart the syscall, but that will look at
2260 * the user space value and return right away. So we
2261 * drop back with EWOULDBLOCK to tell user space that
2262 * "val" has been changed. That's the same what the
2263 * restart of the syscall would do in
2264 * futex_wait_setup().
2266 ret = -EWOULDBLOCK;
2269 out_put_keys:
2270 put_futex_key(fshared, &q.key);
2271 out_key2:
2272 put_futex_key(fshared, &key2);
2274 out:
2275 if (to) {
2276 hrtimer_cancel(&to->timer);
2277 destroy_hrtimer_on_stack(&to->timer);
2279 return ret;
2283 * Support for robust futexes: the kernel cleans up held futexes at
2284 * thread exit time.
2286 * Implementation: user-space maintains a per-thread list of locks it
2287 * is holding. Upon do_exit(), the kernel carefully walks this list,
2288 * and marks all locks that are owned by this thread with the
2289 * FUTEX_OWNER_DIED bit, and wakes up a waiter (if any). The list is
2290 * always manipulated with the lock held, so the list is private and
2291 * per-thread. Userspace also maintains a per-thread 'list_op_pending'
2292 * field, to allow the kernel to clean up if the thread dies after
2293 * acquiring the lock, but just before it could have added itself to
2294 * the list. There can only be one such pending lock.
2298 * sys_set_robust_list - set the robust-futex list head of a task
2299 * @head: pointer to the list-head
2300 * @len: length of the list-head, as userspace expects
2302 SYSCALL_DEFINE2(set_robust_list, struct robust_list_head __user *, head,
2303 size_t, len)
2305 if (!futex_cmpxchg_enabled)
2306 return -ENOSYS;
2308 * The kernel knows only one size for now:
2310 if (unlikely(len != sizeof(*head)))
2311 return -EINVAL;
2313 current->robust_list = head;
2315 return 0;
2319 * sys_get_robust_list - get the robust-futex list head of a task
2320 * @pid: pid of the process [zero for current task]
2321 * @head_ptr: pointer to a list-head pointer, the kernel fills it in
2322 * @len_ptr: pointer to a length field, the kernel fills in the header size
2324 SYSCALL_DEFINE3(get_robust_list, int, pid,
2325 struct robust_list_head __user * __user *, head_ptr,
2326 size_t __user *, len_ptr)
2328 struct robust_list_head __user *head;
2329 unsigned long ret;
2330 const struct cred *cred = current_cred(), *pcred;
2332 if (!futex_cmpxchg_enabled)
2333 return -ENOSYS;
2335 if (!pid)
2336 head = current->robust_list;
2337 else {
2338 struct task_struct *p;
2340 ret = -ESRCH;
2341 rcu_read_lock();
2342 p = find_task_by_vpid(pid);
2343 if (!p)
2344 goto err_unlock;
2345 ret = -EPERM;
2346 pcred = __task_cred(p);
2347 if (cred->euid != pcred->euid &&
2348 cred->euid != pcred->uid &&
2349 !capable(CAP_SYS_PTRACE))
2350 goto err_unlock;
2351 head = p->robust_list;
2352 rcu_read_unlock();
2355 if (put_user(sizeof(*head), len_ptr))
2356 return -EFAULT;
2357 return put_user(head, head_ptr);
2359 err_unlock:
2360 rcu_read_unlock();
2362 return ret;
2366 * Process a futex-list entry, check whether it's owned by the
2367 * dying task, and do notification if so:
2369 int handle_futex_death(u32 __user *uaddr, struct task_struct *curr, int pi)
2371 u32 uval, nval, mval;
2373 retry:
2374 if (get_user(uval, uaddr))
2375 return -1;
2377 if ((uval & FUTEX_TID_MASK) == task_pid_vnr(curr)) {
2379 * Ok, this dying thread is truly holding a futex
2380 * of interest. Set the OWNER_DIED bit atomically
2381 * via cmpxchg, and if the value had FUTEX_WAITERS
2382 * set, wake up a waiter (if any). (We have to do a
2383 * futex_wake() even if OWNER_DIED is already set -
2384 * to handle the rare but possible case of recursive
2385 * thread-death.) The rest of the cleanup is done in
2386 * userspace.
2388 mval = (uval & FUTEX_WAITERS) | FUTEX_OWNER_DIED;
2389 nval = futex_atomic_cmpxchg_inatomic(uaddr, uval, mval);
2391 if (nval == -EFAULT)
2392 return -1;
2394 if (nval != uval)
2395 goto retry;
2398 * Wake robust non-PI futexes here. The wakeup of
2399 * PI futexes happens in exit_pi_state():
2401 if (!pi && (uval & FUTEX_WAITERS))
2402 futex_wake(uaddr, 1, 1, FUTEX_BITSET_MATCH_ANY);
2404 return 0;
2408 * Fetch a robust-list pointer. Bit 0 signals PI futexes:
2410 static inline int fetch_robust_entry(struct robust_list __user **entry,
2411 struct robust_list __user * __user *head,
2412 int *pi)
2414 unsigned long uentry;
2416 if (get_user(uentry, (unsigned long __user *)head))
2417 return -EFAULT;
2419 *entry = (void __user *)(uentry & ~1UL);
2420 *pi = uentry & 1;
2422 return 0;
2426 * Walk curr->robust_list (very carefully, it's a userspace list!)
2427 * and mark any locks found there dead, and notify any waiters.
2429 * We silently return on any sign of list-walking problem.
2431 void exit_robust_list(struct task_struct *curr)
2433 struct robust_list_head __user *head = curr->robust_list;
2434 struct robust_list __user *entry, *next_entry, *pending;
2435 unsigned int limit = ROBUST_LIST_LIMIT, pi, next_pi, pip;
2436 unsigned long futex_offset;
2437 int rc;
2439 if (!futex_cmpxchg_enabled)
2440 return;
2443 * Fetch the list head (which was registered earlier, via
2444 * sys_set_robust_list()):
2446 if (fetch_robust_entry(&entry, &head->list.next, &pi))
2447 return;
2449 * Fetch the relative futex offset:
2451 if (get_user(futex_offset, &head->futex_offset))
2452 return;
2454 * Fetch any possibly pending lock-add first, and handle it
2455 * if it exists:
2457 if (fetch_robust_entry(&pending, &head->list_op_pending, &pip))
2458 return;
2460 next_entry = NULL; /* avoid warning with gcc */
2461 while (entry != &head->list) {
2463 * Fetch the next entry in the list before calling
2464 * handle_futex_death:
2466 rc = fetch_robust_entry(&next_entry, &entry->next, &next_pi);
2468 * A pending lock might already be on the list, so
2469 * don't process it twice:
2471 if (entry != pending)
2472 if (handle_futex_death((void __user *)entry + futex_offset,
2473 curr, pi))
2474 return;
2475 if (rc)
2476 return;
2477 entry = next_entry;
2478 pi = next_pi;
2480 * Avoid excessively long or circular lists:
2482 if (!--limit)
2483 break;
2485 cond_resched();
2488 if (pending)
2489 handle_futex_death((void __user *)pending + futex_offset,
2490 curr, pip);
2493 long do_futex(u32 __user *uaddr, int op, u32 val, ktime_t *timeout,
2494 u32 __user *uaddr2, u32 val2, u32 val3)
2496 int clockrt, ret = -ENOSYS;
2497 int cmd = op & FUTEX_CMD_MASK;
2498 int fshared = 0;
2500 if (!(op & FUTEX_PRIVATE_FLAG))
2501 fshared = 1;
2503 clockrt = op & FUTEX_CLOCK_REALTIME;
2504 if (clockrt && cmd != FUTEX_WAIT_BITSET && cmd != FUTEX_WAIT_REQUEUE_PI)
2505 return -ENOSYS;
2507 switch (cmd) {
2508 case FUTEX_WAIT:
2509 val3 = FUTEX_BITSET_MATCH_ANY;
2510 case FUTEX_WAIT_BITSET:
2511 ret = futex_wait(uaddr, fshared, val, timeout, val3, clockrt);
2512 break;
2513 case FUTEX_WAKE:
2514 val3 = FUTEX_BITSET_MATCH_ANY;
2515 case FUTEX_WAKE_BITSET:
2516 ret = futex_wake(uaddr, fshared, val, val3);
2517 break;
2518 case FUTEX_REQUEUE:
2519 ret = futex_requeue(uaddr, fshared, uaddr2, val, val2, NULL, 0);
2520 break;
2521 case FUTEX_CMP_REQUEUE:
2522 ret = futex_requeue(uaddr, fshared, uaddr2, val, val2, &val3,
2524 break;
2525 case FUTEX_WAKE_OP:
2526 ret = futex_wake_op(uaddr, fshared, uaddr2, val, val2, val3);
2527 break;
2528 case FUTEX_LOCK_PI:
2529 if (futex_cmpxchg_enabled)
2530 ret = futex_lock_pi(uaddr, fshared, val, timeout, 0);
2531 break;
2532 case FUTEX_UNLOCK_PI:
2533 if (futex_cmpxchg_enabled)
2534 ret = futex_unlock_pi(uaddr, fshared);
2535 break;
2536 case FUTEX_TRYLOCK_PI:
2537 if (futex_cmpxchg_enabled)
2538 ret = futex_lock_pi(uaddr, fshared, 0, timeout, 1);
2539 break;
2540 case FUTEX_WAIT_REQUEUE_PI:
2541 val3 = FUTEX_BITSET_MATCH_ANY;
2542 ret = futex_wait_requeue_pi(uaddr, fshared, val, timeout, val3,
2543 clockrt, uaddr2);
2544 break;
2545 case FUTEX_CMP_REQUEUE_PI:
2546 ret = futex_requeue(uaddr, fshared, uaddr2, val, val2, &val3,
2548 break;
2549 default:
2550 ret = -ENOSYS;
2552 return ret;
2556 SYSCALL_DEFINE6(futex, u32 __user *, uaddr, int, op, u32, val,
2557 struct timespec __user *, utime, u32 __user *, uaddr2,
2558 u32, val3)
2560 struct timespec ts;
2561 ktime_t t, *tp = NULL;
2562 u32 val2 = 0;
2563 int cmd = op & FUTEX_CMD_MASK;
2565 if (utime && (cmd == FUTEX_WAIT || cmd == FUTEX_LOCK_PI ||
2566 cmd == FUTEX_WAIT_BITSET ||
2567 cmd == FUTEX_WAIT_REQUEUE_PI)) {
2568 if (copy_from_user(&ts, utime, sizeof(ts)) != 0)
2569 return -EFAULT;
2570 if (!timespec_valid(&ts))
2571 return -EINVAL;
2573 t = timespec_to_ktime(ts);
2574 if (cmd == FUTEX_WAIT)
2575 t = ktime_add_safe(ktime_get(), t);
2576 tp = &t;
2579 * requeue parameter in 'utime' if cmd == FUTEX_*_REQUEUE_*.
2580 * number of waiters to wake in 'utime' if cmd == FUTEX_WAKE_OP.
2582 if (cmd == FUTEX_REQUEUE || cmd == FUTEX_CMP_REQUEUE ||
2583 cmd == FUTEX_CMP_REQUEUE_PI || cmd == FUTEX_WAKE_OP)
2584 val2 = (u32) (unsigned long) utime;
2586 return do_futex(uaddr, op, val, tp, uaddr2, val2, val3);
2589 static int __init futex_init(void)
2591 u32 curval;
2592 int i;
2595 * This will fail and we want it. Some arch implementations do
2596 * runtime detection of the futex_atomic_cmpxchg_inatomic()
2597 * functionality. We want to know that before we call in any
2598 * of the complex code paths. Also we want to prevent
2599 * registration of robust lists in that case. NULL is
2600 * guaranteed to fault and we get -EFAULT on functional
2601 * implementation, the non functional ones will return
2602 * -ENOSYS.
2604 curval = cmpxchg_futex_value_locked(NULL, 0, 0);
2605 if (curval == -EFAULT)
2606 futex_cmpxchg_enabled = 1;
2608 for (i = 0; i < ARRAY_SIZE(futex_queues); i++) {
2609 plist_head_init(&futex_queues[i].chain, &futex_queues[i].lock);
2610 spin_lock_init(&futex_queues[i].lock);
2613 return 0;
2615 __initcall(futex_init);