linux/kernel/futex.c
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   1/*
   2 *  Fast Userspace Mutexes (which I call "Futexes!").
   3 *  (C) Rusty Russell, IBM 2002
   4 *
   5 *  Generalized futexes, futex requeueing, misc fixes by Ingo Molnar
   6 *  (C) Copyright 2003 Red Hat Inc, All Rights Reserved
   7 *
   8 *  Removed page pinning, fix privately mapped COW pages and other cleanups
   9 *  (C) Copyright 2003, 2004 Jamie Lokier
  10 *
  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.
  14 *
  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>
  18 *
  19 *  PRIVATE futexes by Eric Dumazet
  20 *  Copyright (C) 2007 Eric Dumazet <dada1@cosmosbay.com>
  21 *
  22 *  Thanks to Ben LaHaise for yelling "hashed waitqueues" loudly
  23 *  enough at me, Linus for the original (flawed) idea, Matthew
  24 *  Kirkwood for proof-of-concept implementation.
  25 *
  26 *  "The futexes are also cursed."
  27 *  "But they come in a choice of three flavours!"
  28 *
  29 *  This program is free software; you can redistribute it and/or modify
  30 *  it under the terms of the GNU General Public License as published by
  31 *  the Free Software Foundation; either version 2 of the License, or
  32 *  (at your option) any later version.
  33 *
  34 *  This program is distributed in the hope that it will be useful,
  35 *  but WITHOUT ANY WARRANTY; without even the implied warranty of
  36 *  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
  37 *  GNU General Public License for more details.
  38 *
  39 *  You should have received a copy of the GNU General Public License
  40 *  along with this program; if not, write to the Free Software
  41 *  Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
  42 */
  43#include <linux/slab.h>
  44#include <linux/poll.h>
  45#include <linux/fs.h>
  46#include <linux/file.h>
  47#include <linux/jhash.h>
  48#include <linux/init.h>
  49#include <linux/futex.h>
  50#include <linux/mount.h>
  51#include <linux/pagemap.h>
  52#include <linux/syscalls.h>
  53#include <linux/signal.h>
  54#include <linux/module.h>
  55#include <linux/magic.h>
  56#include <linux/pid.h>
  57#include <linux/nsproxy.h>
  58
  59#include <asm/futex.h>
  60
  61#include "rtmutex_common.h"
  62
  63int __read_mostly futex_cmpxchg_enabled;
  64
  65#define FUTEX_HASHBITS (CONFIG_BASE_SMALL ? 4 : 8)
  66
  67/*
  68 * Priority Inheritance state:
  69 */
  70struct futex_pi_state {
  71        /*
  72         * list of 'owned' pi_state instances - these have to be
  73         * cleaned up in do_exit() if the task exits prematurely:
  74         */
  75        struct list_head list;
  76
  77        /*
  78         * The PI object:
  79         */
  80        struct rt_mutex pi_mutex;
  81
  82        struct task_struct *owner;
  83        atomic_t refcount;
  84
  85        union futex_key key;
  86};
  87
  88/*
  89 * We use this hashed waitqueue instead of a normal wait_queue_t, so
  90 * we can wake only the relevant ones (hashed queues may be shared).
  91 *
  92 * A futex_q has a woken state, just like tasks have TASK_RUNNING.
  93 * It is considered woken when plist_node_empty(&q->list) || q->lock_ptr == 0.
  94 * The order of wakup is always to make the first condition true, then
  95 * wake up q->waiters, then make the second condition true.
  96 */
  97struct futex_q {
  98        struct plist_node list;
  99        wait_queue_head_t waiters;
 100
 101        /* Which hash list lock to use: */
 102        spinlock_t *lock_ptr;
 103
 104        /* Key which the futex is hashed on: */
 105        union futex_key key;
 106
 107        /* Optional priority inheritance state: */
 108        struct futex_pi_state *pi_state;
 109        struct task_struct *task;
 110
 111        /* Bitset for the optional bitmasked wakeup */
 112        u32 bitset;
 113};
 114
 115/*
 116 * Split the global futex_lock into every hash list lock.
 117 */
 118struct futex_hash_bucket {
 119        spinlock_t lock;
 120        struct plist_head chain;
 121};
 122
 123static struct futex_hash_bucket futex_queues[1<<FUTEX_HASHBITS];
 124
 125/*
 126 * Take mm->mmap_sem, when futex is shared
 127 */
 128static inline void futex_lock_mm(struct rw_semaphore *fshared)
 129{
 130        if (fshared)
 131                down_read(fshared);
 132}
 133
 134/*
 135 * Release mm->mmap_sem, when the futex is shared
 136 */
 137static inline void futex_unlock_mm(struct rw_semaphore *fshared)
 138{
 139        if (fshared)
 140                up_read(fshared);
 141}
 142
 143/*
 144 * We hash on the keys returned from get_futex_key (see below).
 145 */
 146static struct futex_hash_bucket *hash_futex(union futex_key *key)
 147{
 148        u32 hash = jhash2((u32*)&key->both.word,
 149                          (sizeof(key->both.word)+sizeof(key->both.ptr))/4,
 150                          key->both.offset);
 151        return &futex_queues[hash & ((1 << FUTEX_HASHBITS)-1)];
 152}
 153
 154/*
 155 * Return 1 if two futex_keys are equal, 0 otherwise.
 156 */
 157static inline int match_futex(union futex_key *key1, union futex_key *key2)
 158{
 159        return (key1->both.word == key2->both.word
 160                && key1->both.ptr == key2->both.ptr
 161                && key1->both.offset == key2->both.offset);
 162}
 163
 164/**
 165 * get_futex_key - Get parameters which are the keys for a futex.
 166 * @uaddr: virtual address of the futex
 167 * @shared: NULL for a PROCESS_PRIVATE futex,
 168 *      &current->mm->mmap_sem for a PROCESS_SHARED futex
 169 * @key: address where result is stored.
 170 *
 171 * Returns a negative error code or 0
 172 * The key words are stored in *key on success.
 173 *
 174 * For shared mappings, it's (page->index, vma->vm_file->f_path.dentry->d_inode,
 175 * offset_within_page).  For private mappings, it's (uaddr, current->mm).
 176 * We can usually work out the index without swapping in the page.
 177 *
 178 * fshared is NULL for PROCESS_PRIVATE futexes
 179 * For other futexes, it points to &current->mm->mmap_sem and
 180 * caller must have taken the reader lock. but NOT any spinlocks.
 181 */
 182static int get_futex_key(u32 __user *uaddr, struct rw_semaphore *fshared,
 183                         union futex_key *key)
 184{
 185        unsigned long address = (unsigned long)uaddr;
 186        struct mm_struct *mm = current->mm;
 187        struct vm_area_struct *vma;
 188        struct page *page;
 189        int err;
 190
 191        /*
 192         * The futex address must be "naturally" aligned.
 193         */
 194        key->both.offset = address % PAGE_SIZE;
 195        if (unlikely((address % sizeof(u32)) != 0))
 196                return -EINVAL;
 197        address -= key->both.offset;
 198
 199        /*
 200         * PROCESS_PRIVATE futexes are fast.
 201         * As the mm cannot disappear under us and the 'key' only needs
 202         * virtual address, we dont even have to find the underlying vma.
 203         * Note : We do have to check 'uaddr' is a valid user address,
 204         *        but access_ok() should be faster than find_vma()
 205         */
 206        if (!fshared) {
 207                if (unlikely(!access_ok(VERIFY_WRITE, uaddr, sizeof(u32))))
 208                        return -EFAULT;
 209                key->private.mm = mm;
 210                key->private.address = address;
 211                return 0;
 212        }
 213        /*
 214         * The futex is hashed differently depending on whether
 215         * it's in a shared or private mapping.  So check vma first.
 216         */
 217        vma = find_extend_vma(mm, address);
 218        if (unlikely(!vma))
 219                return -EFAULT;
 220
 221        /*
 222         * Permissions.
 223         */
 224        if (unlikely((vma->vm_flags & (VM_IO|VM_READ)) != VM_READ))
 225                return (vma->vm_flags & VM_IO) ? -EPERM : -EACCES;
 226
 227        /*
 228         * Private mappings are handled in a simple way.
 229         *
 230         * NOTE: When userspace waits on a MAP_SHARED mapping, even if
 231         * it's a read-only handle, it's expected that futexes attach to
 232         * the object not the particular process.  Therefore we use
 233         * VM_MAYSHARE here, not VM_SHARED which is restricted to shared
 234         * mappings of _writable_ handles.
 235         */
 236        if (likely(!(vma->vm_flags & VM_MAYSHARE))) {
 237                key->both.offset |= FUT_OFF_MMSHARED; /* reference taken on mm */
 238                key->private.mm = mm;
 239                key->private.address = address;
 240                return 0;
 241        }
 242
 243        /*
 244         * Linear file mappings are also simple.
 245         */
 246        key->shared.inode = vma->vm_file->f_path.dentry->d_inode;
 247        key->both.offset |= FUT_OFF_INODE; /* inode-based key. */
 248        if (likely(!(vma->vm_flags & VM_NONLINEAR))) {
 249                key->shared.pgoff = (((address - vma->vm_start) >> PAGE_SHIFT)
 250                                     + vma->vm_pgoff);
 251                return 0;
 252        }
 253
 254        /*
 255         * We could walk the page table to read the non-linear
 256         * pte, and get the page index without fetching the page
 257         * from swap.  But that's a lot of code to duplicate here
 258         * for a rare case, so we simply fetch the page.
 259         */
 260        err = get_user_pages(current, mm, address, 1, 0, 0, &page, NULL);
 261        if (err >= 0) {
 262                key->shared.pgoff =
 263                        page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT);
 264                put_page(page);
 265                return 0;
 266        }
 267        return err;
 268}
 269
 270/*
 271 * Take a reference to the resource addressed by a key.
 272 * Can be called while holding spinlocks.
 273 *
 274 */
 275static void get_futex_key_refs(union futex_key *key)
 276{
 277        if (key->both.ptr == NULL)
 278                return;
 279        switch (key->both.offset & (FUT_OFF_INODE|FUT_OFF_MMSHARED)) {
 280                case FUT_OFF_INODE:
 281                        atomic_inc(&key->shared.inode->i_count);
 282                        break;
 283                case FUT_OFF_MMSHARED:
 284                        atomic_inc(&key->private.mm->mm_count);
 285                        break;
 286        }
 287}
 288
 289/*
 290 * Drop a reference to the resource addressed by a key.
 291 * The hash bucket spinlock must not be held.
 292 */
 293static void drop_futex_key_refs(union futex_key *key)
 294{
 295        if (!key->both.ptr)
 296                return;
 297        switch (key->both.offset & (FUT_OFF_INODE|FUT_OFF_MMSHARED)) {
 298                case FUT_OFF_INODE:
 299                        iput(key->shared.inode);
 300                        break;
 301                case FUT_OFF_MMSHARED:
 302                        mmdrop(key->private.mm);
 303                        break;
 304        }
 305}
 306
 307static u32 cmpxchg_futex_value_locked(u32 __user *uaddr, u32 uval, u32 newval)
 308{
 309        u32 curval;
 310
 311        pagefault_disable();
 312        curval = futex_atomic_cmpxchg_inatomic(uaddr, uval, newval);
 313        pagefault_enable();
 314
 315        return curval;
 316}
 317
 318static int get_futex_value_locked(u32 *dest, u32 __user *from)
 319{
 320        int ret;
 321
 322        pagefault_disable();
 323        ret = __copy_from_user_inatomic(dest, from, sizeof(u32));
 324        pagefault_enable();
 325
 326        return ret ? -EFAULT : 0;
 327}
 328
 329/*
 330 * Fault handling.
 331 * if fshared is non NULL, current->mm->mmap_sem is already held
 332 */
 333static int futex_handle_fault(unsigned long address,
 334                              struct rw_semaphore *fshared, int attempt)
 335{
 336        struct vm_area_struct * vma;
 337        struct mm_struct *mm = current->mm;
 338        int ret = -EFAULT;
 339
 340        if (attempt > 2)
 341                return ret;
 342
 343        if (!fshared)
 344                down_read(&mm->mmap_sem);
 345        vma = find_vma(mm, address);
 346        if (vma && address >= vma->vm_start &&
 347            (vma->vm_flags & VM_WRITE)) {
 348                int fault;
 349                fault = handle_mm_fault(mm, vma, address, 1);
 350                if (unlikely((fault & VM_FAULT_ERROR))) {
 351#if 0
 352                        /* XXX: let's do this when we verify it is OK */
 353                        if (ret & VM_FAULT_OOM)
 354                                ret = -ENOMEM;
 355#endif
 356                } else {
 357                        ret = 0;
 358                        if (fault & VM_FAULT_MAJOR)
 359                                current->maj_flt++;
 360                        else
 361                                current->min_flt++;
 362                }
 363        }
 364        if (!fshared)
 365                up_read(&mm->mmap_sem);
 366        return ret;
 367}
 368
 369/*
 370 * PI code:
 371 */
 372static int refill_pi_state_cache(void)
 373{
 374        struct futex_pi_state *pi_state;
 375
 376        if (likely(current->pi_state_cache))
 377                return 0;
 378
 379        pi_state = kzalloc(sizeof(*pi_state), GFP_KERNEL);
 380
 381        if (!pi_state)
 382                return -ENOMEM;
 383
 384        INIT_LIST_HEAD(&pi_state->list);
 385        /* pi_mutex gets initialized later */
 386        pi_state->owner = NULL;
 387        atomic_set(&pi_state->refcount, 1);
 388
 389        current->pi_state_cache = pi_state;
 390
 391        return 0;
 392}
 393
 394static struct futex_pi_state * alloc_pi_state(void)
 395{
 396        struct futex_pi_state *pi_state = current->pi_state_cache;
 397
 398        WARN_ON(!pi_state);
 399        current->pi_state_cache = NULL;
 400
 401        return pi_state;
 402}
 403
 404static void free_pi_state(struct futex_pi_state *pi_state)
 405{
 406        if (!atomic_dec_and_test(&pi_state->refcount))
 407                return;
 408
 409        /*
 410         * If pi_state->owner is NULL, the owner is most probably dying
 411         * and has cleaned up the pi_state already
 412         */
 413        if (pi_state->owner) {
 414                spin_lock_irq(&pi_state->owner->pi_lock);
 415                list_del_init(&pi_state->list);
 416                spin_unlock_irq(&pi_state->owner->pi_lock);
 417
 418                rt_mutex_proxy_unlock(&pi_state->pi_mutex, pi_state->owner);
 419        }
 420
 421        if (current->pi_state_cache)
 422                kfree(pi_state);
 423        else {
 424                /*
 425                 * pi_state->list is already empty.
 426                 * clear pi_state->owner.
 427                 * refcount is at 0 - put it back to 1.
 428                 */
 429                pi_state->owner = NULL;
 430                atomic_set(&pi_state->refcount, 1);
 431                current->pi_state_cache = pi_state;
 432        }
 433}
 434
 435/*
 436 * Look up the task based on what TID userspace gave us.
 437 * We dont trust it.
 438 */
 439static struct task_struct * futex_find_get_task(pid_t pid)
 440{
 441        struct task_struct *p;
 442
 443        rcu_read_lock();
 444        p = find_task_by_vpid(pid);
 445        if (!p || ((current->euid != p->euid) && (current->euid != p->uid)))
 446                p = ERR_PTR(-ESRCH);
 447        else
 448                get_task_struct(p);
 449
 450        rcu_read_unlock();
 451
 452        return p;
 453}
 454
 455/*
 456 * This task is holding PI mutexes at exit time => bad.
 457 * Kernel cleans up PI-state, but userspace is likely hosed.
 458 * (Robust-futex cleanup is separate and might save the day for userspace.)
 459 */
 460void exit_pi_state_list(struct task_struct *curr)
 461{
 462        struct list_head *next, *head = &curr->pi_state_list;
 463        struct futex_pi_state *pi_state;
 464        struct futex_hash_bucket *hb;
 465        union futex_key key;
 466
 467        if (!futex_cmpxchg_enabled)
 468                return;
 469        /*
 470         * We are a ZOMBIE and nobody can enqueue itself on
 471         * pi_state_list anymore, but we have to be careful
 472         * versus waiters unqueueing themselves:
 473         */
 474        spin_lock_irq(&curr->pi_lock);
 475        while (!list_empty(head)) {
 476
 477                next = head->next;
 478                pi_state = list_entry(next, struct futex_pi_state, list);
 479                key = pi_state->key;
 480                hb = hash_futex(&key);
 481                spin_unlock_irq(&curr->pi_lock);
 482
 483                spin_lock(&hb->lock);
 484
 485                spin_lock_irq(&curr->pi_lock);
 486                /*
 487                 * We dropped the pi-lock, so re-check whether this
 488                 * task still owns the PI-state:
 489                 */
 490                if (head->next != next) {
 491                        spin_unlock(&hb->lock);
 492                        continue;
 493                }
 494
 495                WARN_ON(pi_state->owner != curr);
 496                WARN_ON(list_empty(&pi_state->list));
 497                list_del_init(&pi_state->list);
 498                pi_state->owner = NULL;
 499                spin_unlock_irq(&curr->pi_lock);
 500
 501                rt_mutex_unlock(&pi_state->pi_mutex);
 502
 503                spin_unlock(&hb->lock);
 504
 505                spin_lock_irq(&curr->pi_lock);
 506        }
 507        spin_unlock_irq(&curr->pi_lock);
 508}
 509
 510static int
 511lookup_pi_state(u32 uval, struct futex_hash_bucket *hb,
 512                union futex_key *key, struct futex_pi_state **ps)
 513{
 514        struct futex_pi_state *pi_state = NULL;
 515        struct futex_q *this, *next;
 516        struct plist_head *head;
 517        struct task_struct *p;
 518        pid_t pid = uval & FUTEX_TID_MASK;
 519
 520        head = &hb->chain;
 521
 522        plist_for_each_entry_safe(this, next, head, list) {
 523                if (match_futex(&this->key, key)) {
 524                        /*
 525                         * Another waiter already exists - bump up
 526                         * the refcount and return its pi_state:
 527                         */
 528                        pi_state = this->pi_state;
 529                        /*
 530                         * Userspace might have messed up non PI and PI futexes
 531                         */
 532                        if (unlikely(!pi_state))
 533                                return -EINVAL;
 534
 535                        WARN_ON(!atomic_read(&pi_state->refcount));
 536
 537                        /*
 538                         * When pi_state->owner is NULL then the owner died
 539                         * and another waiter is on the fly. pi_state->owner
 540                         * is fixed up by the task which acquires
 541                         * pi_state->rt_mutex.
 542                         *
 543                         * We do not check for pid == 0 which can happen when
 544                         * the owner died and robust_list_exit() cleared the
 545                         * TID.
 546                         */
 547                        if (pid && pi_state->owner) {
 548                                /*
 549                                 * Bail out if user space manipulated the
 550                                 * futex value.
 551                                 */
 552                                if (pid != task_pid_vnr(pi_state->owner))
 553                                        return -EINVAL;
 554                        }
 555
 556                        atomic_inc(&pi_state->refcount);
 557                        *ps = pi_state;
 558
 559                        return 0;
 560                }
 561        }
 562
 563        /*
 564         * We are the first waiter - try to look up the real owner and attach
 565         * the new pi_state to it, but bail out when TID = 0
 566         */
 567        if (!pid)
 568                return -ESRCH;
 569        p = futex_find_get_task(pid);
 570        if (IS_ERR(p))
 571                return PTR_ERR(p);
 572
 573        /*
 574         * We need to look at the task state flags to figure out,
 575         * whether the task is exiting. To protect against the do_exit
 576         * change of the task flags, we do this protected by
 577         * p->pi_lock:
 578         */
 579        spin_lock_irq(&p->pi_lock);
 580        if (unlikely(p->flags & PF_EXITING)) {
 581                /*
 582                 * The task is on the way out. When PF_EXITPIDONE is
 583                 * set, we know that the task has finished the
 584                 * cleanup:
 585                 */
 586                int ret = (p->flags & PF_EXITPIDONE) ? -ESRCH : -EAGAIN;
 587
 588                spin_unlock_irq(&p->pi_lock);
 589                put_task_struct(p);
 590                return ret;
 591        }
 592
 593        pi_state = alloc_pi_state();
 594
 595        /*
 596         * Initialize the pi_mutex in locked state and make 'p'
 597         * the owner of it:
 598         */
 599        rt_mutex_init_proxy_locked(&pi_state->pi_mutex, p);
 600
 601        /* Store the key for possible exit cleanups: */
 602        pi_state->key = *key;
 603
 604        WARN_ON(!list_empty(&pi_state->list));
 605        list_add(&pi_state->list, &p->pi_state_list);
 606        pi_state->owner = p;
 607        spin_unlock_irq(&p->pi_lock);
 608
 609        put_task_struct(p);
 610
 611        *ps = pi_state;
 612
 613        return 0;
 614}
 615
 616/*
 617 * The hash bucket lock must be held when this is called.
 618 * Afterwards, the futex_q must not be accessed.
 619 */
 620static void wake_futex(struct futex_q *q)
 621{
 622        plist_del(&q->list, &q->list.plist);
 623        /*
 624         * The lock in wake_up_all() is a crucial memory barrier after the
 625         * plist_del() and also before assigning to q->lock_ptr.
 626         */
 627        wake_up_all(&q->waiters);
 628        /*
 629         * The waiting task can free the futex_q as soon as this is written,
 630         * without taking any locks.  This must come last.
 631         *
 632         * A memory barrier is required here to prevent the following store
 633         * to lock_ptr from getting ahead of the wakeup. Clearing the lock
 634         * at the end of wake_up_all() does not prevent this store from
 635         * moving.
 636         */
 637        smp_wmb();
 638        q->lock_ptr = NULL;
 639}
 640
 641static int wake_futex_pi(u32 __user *uaddr, u32 uval, struct futex_q *this)
 642{
 643        struct task_struct *new_owner;
 644        struct futex_pi_state *pi_state = this->pi_state;
 645        u32 curval, newval;
 646
 647        if (!pi_state)
 648                return -EINVAL;
 649
 650        /*
 651         * If current does not own the pi_state then the futex is
 652         * inconsistent and user space fiddled with the futex value.
 653         */
 654        if (pi_state->owner != current)
 655                return -EINVAL;
 656
 657        spin_lock(&pi_state->pi_mutex.wait_lock);
 658        new_owner = rt_mutex_next_owner(&pi_state->pi_mutex);
 659
 660        /*
 661         * This happens when we have stolen the lock and the original
 662         * pending owner did not enqueue itself back on the rt_mutex.
 663         * Thats not a tragedy. We know that way, that a lock waiter
 664         * is on the fly. We make the futex_q waiter the pending owner.
 665         */
 666        if (!new_owner)
 667                new_owner = this->task;
 668
 669        /*
 670         * We pass it to the next owner. (The WAITERS bit is always
 671         * kept enabled while there is PI state around. We must also
 672         * preserve the owner died bit.)
 673         */
 674        if (!(uval & FUTEX_OWNER_DIED)) {
 675                int ret = 0;
 676
 677                newval = FUTEX_WAITERS | task_pid_vnr(new_owner);
 678
 679                curval = cmpxchg_futex_value_locked(uaddr, uval, newval);
 680
 681                if (curval == -EFAULT)
 682                        ret = -EFAULT;
 683                else if (curval != uval)
 684                        ret = -EINVAL;
 685                if (ret) {
 686                        spin_unlock(&pi_state->pi_mutex.wait_lock);
 687                        return ret;
 688                }
 689        }
 690
 691        spin_lock_irq(&pi_state->owner->pi_lock);
 692        WARN_ON(list_empty(&pi_state->list));
 693        list_del_init(&pi_state->list);
 694        spin_unlock_irq(&pi_state->owner->pi_lock);
 695
 696        spin_lock_irq(&new_owner->pi_lock);
 697        WARN_ON(!list_empty(&pi_state->list));
 698        list_add(&pi_state->list, &new_owner->pi_state_list);
 699        pi_state->owner = new_owner;
 700        spin_unlock_irq(&new_owner->pi_lock);
 701
 702        spin_unlock(&pi_state->pi_mutex.wait_lock);
 703        rt_mutex_unlock(&pi_state->pi_mutex);
 704
 705        return 0;
 706}
 707
 708static int unlock_futex_pi(u32 __user *uaddr, u32 uval)
 709{
 710        u32 oldval;
 711
 712        /*
 713         * There is no waiter, so we unlock the futex. The owner died
 714         * bit has not to be preserved here. We are the owner:
 715         */
 716        oldval = cmpxchg_futex_value_locked(uaddr, uval, 0);
 717
 718        if (oldval == -EFAULT)
 719                return oldval;
 720        if (oldval != uval)
 721                return -EAGAIN;
 722
 723        return 0;
 724}
 725
 726/*
 727 * Express the locking dependencies for lockdep:
 728 */
 729static inline void
 730double_lock_hb(struct futex_hash_bucket *hb1, struct futex_hash_bucket *hb2)
 731{
 732        if (hb1 <= hb2) {
 733                spin_lock(&hb1->lock);
 734                if (hb1 < hb2)
 735                        spin_lock_nested(&hb2->lock, SINGLE_DEPTH_NESTING);
 736        } else { /* hb1 > hb2 */
 737                spin_lock(&hb2->lock);
 738                spin_lock_nested(&hb1->lock, SINGLE_DEPTH_NESTING);
 739        }
 740}
 741
 742/*
 743 * Wake up all waiters hashed on the physical page that is mapped
 744 * to this virtual address:
 745 */
 746static int futex_wake(u32 __user *uaddr, struct rw_semaphore *fshared,
 747                      int nr_wake, u32 bitset)
 748{
 749        struct futex_hash_bucket *hb;
 750        struct futex_q *this, *next;
 751        struct plist_head *head;
 752        union futex_key key;
 753        int ret;
 754
 755        if (!bitset)
 756                return -EINVAL;
 757
 758        futex_lock_mm(fshared);
 759
 760        ret = get_futex_key(uaddr, fshared, &key);
 761        if (unlikely(ret != 0))
 762                goto out;
 763
 764        hb = hash_futex(&key);
 765        spin_lock(&hb->lock);
 766        head = &hb->chain;
 767
 768        plist_for_each_entry_safe(this, next, head, list) {
 769                if (match_futex (&this->key, &key)) {
 770                        if (this->pi_state) {
 771                                ret = -EINVAL;
 772                                break;
 773                        }
 774
 775                        /* Check if one of the bits is set in both bitsets */
 776                        if (!(this->bitset & bitset))
 777                                continue;
 778
 779                        wake_futex(this);
 780                        if (++ret >= nr_wake)
 781                                break;
 782                }
 783        }
 784
 785        spin_unlock(&hb->lock);
 786out:
 787        futex_unlock_mm(fshared);
 788        return ret;
 789}
 790
 791/*
 792 * Wake up all waiters hashed on the physical page that is mapped
 793 * to this virtual address:
 794 */
 795static int
 796futex_wake_op(u32 __user *uaddr1, struct rw_semaphore *fshared,
 797              u32 __user *uaddr2,
 798              int nr_wake, int nr_wake2, int op)
 799{
 800        union futex_key key1, key2;
 801        struct futex_hash_bucket *hb1, *hb2;
 802        struct plist_head *head;
 803        struct futex_q *this, *next;
 804        int ret, op_ret, attempt = 0;
 805
 806retryfull:
 807        futex_lock_mm(fshared);
 808
 809        ret = get_futex_key(uaddr1, fshared, &key1);
 810        if (unlikely(ret != 0))
 811                goto out;
 812        ret = get_futex_key(uaddr2, fshared, &key2);
 813        if (unlikely(ret != 0))
 814                goto out;
 815
 816        hb1 = hash_futex(&key1);
 817        hb2 = hash_futex(&key2);
 818
 819retry:
 820        double_lock_hb(hb1, hb2);
 821
 822        op_ret = futex_atomic_op_inuser(op, uaddr2);
 823        if (unlikely(op_ret < 0)) {
 824                u32 dummy;
 825
 826                spin_unlock(&hb1->lock);
 827                if (hb1 != hb2)
 828                        spin_unlock(&hb2->lock);
 829
 830#ifndef CONFIG_MMU
 831                /*
 832                 * we don't get EFAULT from MMU faults if we don't have an MMU,
 833                 * but we might get them from range checking
 834                 */
 835                ret = op_ret;
 836                goto out;
 837#endif
 838
 839                if (unlikely(op_ret != -EFAULT)) {
 840                        ret = op_ret;
 841                        goto out;
 842                }
 843
 844                /*
 845                 * futex_atomic_op_inuser needs to both read and write
 846                 * *(int __user *)uaddr2, but we can't modify it
 847                 * non-atomically.  Therefore, if get_user below is not
 848                 * enough, we need to handle the fault ourselves, while
 849                 * still holding the mmap_sem.
 850                 */
 851                if (attempt++) {
 852                        ret = futex_handle_fault((unsigned long)uaddr2,
 853                                                 fshared, attempt);
 854                        if (ret)
 855                                goto out;
 856                        goto retry;
 857                }
 858
 859                /*
 860                 * If we would have faulted, release mmap_sem,
 861                 * fault it in and start all over again.
 862                 */
 863                futex_unlock_mm(fshared);
 864
 865                ret = get_user(dummy, uaddr2);
 866                if (ret)
 867                        return ret;
 868
 869                goto retryfull;
 870        }
 871
 872        head = &hb1->chain;
 873
 874        plist_for_each_entry_safe(this, next, head, list) {
 875                if (match_futex (&this->key, &key1)) {
 876                        wake_futex(this);
 877                        if (++ret >= nr_wake)
 878                                break;
 879                }
 880        }
 881
 882        if (op_ret > 0) {
 883                head = &hb2->chain;
 884
 885                op_ret = 0;
 886                plist_for_each_entry_safe(this, next, head, list) {
 887                        if (match_futex (&this->key, &key2)) {
 888                                wake_futex(this);
 889                                if (++op_ret >= nr_wake2)
 890                                        break;
 891                        }
 892                }
 893                ret += op_ret;
 894        }
 895
 896        spin_unlock(&hb1->lock);
 897        if (hb1 != hb2)
 898                spin_unlock(&hb2->lock);
 899out:
 900        futex_unlock_mm(fshared);
 901
 902        return ret;
 903}
 904
 905/*
 906 * Requeue all waiters hashed on one physical page to another
 907 * physical page.
 908 */
 909static int futex_requeue(u32 __user *uaddr1, struct rw_semaphore *fshared,
 910                         u32 __user *uaddr2,
 911                         int nr_wake, int nr_requeue, u32 *cmpval)
 912{
 913        union futex_key key1, key2;
 914        struct futex_hash_bucket *hb1, *hb2;
 915        struct plist_head *head1;
 916        struct futex_q *this, *next;
 917        int ret, drop_count = 0;
 918
 919 retry:
 920        futex_lock_mm(fshared);
 921
 922        ret = get_futex_key(uaddr1, fshared, &key1);
 923        if (unlikely(ret != 0))
 924                goto out;
 925        ret = get_futex_key(uaddr2, fshared, &key2);
 926        if (unlikely(ret != 0))
 927                goto out;
 928
 929        hb1 = hash_futex(&key1);
 930        hb2 = hash_futex(&key2);
 931
 932        double_lock_hb(hb1, hb2);
 933
 934        if (likely(cmpval != NULL)) {
 935                u32 curval;
 936
 937                ret = get_futex_value_locked(&curval, uaddr1);
 938
 939                if (unlikely(ret)) {
 940                        spin_unlock(&hb1->lock);
 941                        if (hb1 != hb2)
 942                                spin_unlock(&hb2->lock);
 943
 944                        /*
 945                         * If we would have faulted, release mmap_sem, fault
 946                         * it in and start all over again.
 947                         */
 948                        futex_unlock_mm(fshared);
 949
 950                        ret = get_user(curval, uaddr1);
 951
 952                        if (!ret)
 953                                goto retry;
 954
 955                        return ret;
 956                }
 957                if (curval != *cmpval) {
 958                        ret = -EAGAIN;
 959                        goto out_unlock;
 960                }
 961        }
 962
 963        head1 = &hb1->chain;
 964        plist_for_each_entry_safe(this, next, head1, list) {
 965                if (!match_futex (&this->key, &key1))
 966                        continue;
 967                if (++ret <= nr_wake) {
 968                        wake_futex(this);
 969                } else {
 970                        /*
 971                         * If key1 and key2 hash to the same bucket, no need to
 972                         * requeue.
 973                         */
 974                        if (likely(head1 != &hb2->chain)) {
 975                                plist_del(&this->list, &hb1->chain);
 976                                plist_add(&this->list, &hb2->chain);
 977                                this->lock_ptr = &hb2->lock;
 978#ifdef CONFIG_DEBUG_PI_LIST
 979                                this->list.plist.lock = &hb2->lock;
 980#endif
 981                        }
 982                        this->key = key2;
 983                        get_futex_key_refs(&key2);
 984                        drop_count++;
 985
 986                        if (ret - nr_wake >= nr_requeue)
 987                                break;
 988                }
 989        }
 990
 991out_unlock:
 992        spin_unlock(&hb1->lock);
 993        if (hb1 != hb2)
 994                spin_unlock(&hb2->lock);
 995
 996        /* drop_futex_key_refs() must be called outside the spinlocks. */
 997        while (--drop_count >= 0)
 998                drop_futex_key_refs(&key1);
 999
1000out:
1001        futex_unlock_mm(fshared);
1002        return ret;
1003}
1004
1005/* The key must be already stored in q->key. */
1006static inline struct futex_hash_bucket *queue_lock(struct futex_q *q)
1007{
1008        struct futex_hash_bucket *hb;
1009
1010        init_waitqueue_head(&q->waiters);
1011
1012        get_futex_key_refs(&q->key);
1013        hb = hash_futex(&q->key);
1014        q->lock_ptr = &hb->lock;
1015
1016        spin_lock(&hb->lock);
1017        return hb;
1018}
1019
1020static inline void queue_me(struct futex_q *q, struct futex_hash_bucket *hb)
1021{
1022        int prio;
1023
1024        /*
1025         * The priority used to register this element is
1026         * - either the real thread-priority for the real-time threads
1027         * (i.e. threads with a priority lower than MAX_RT_PRIO)
1028         * - or MAX_RT_PRIO for non-RT threads.
1029         * Thus, all RT-threads are woken first in priority order, and
1030         * the others are woken last, in FIFO order.
1031         */
1032        prio = min(current->normal_prio, MAX_RT_PRIO);
1033
1034        plist_node_init(&q->list, prio);
1035#ifdef CONFIG_DEBUG_PI_LIST
1036        q->list.plist.lock = &hb->lock;
1037#endif
1038        plist_add(&q->list, &hb->chain);
1039        q->task = current;
1040        spin_unlock(&hb->lock);
1041}
1042
1043static inline void
1044queue_unlock(struct futex_q *q, struct futex_hash_bucket *hb)
1045{
1046        spin_unlock(&hb->lock);
1047        drop_futex_key_refs(&q->key);
1048}
1049
1050/*
1051 * queue_me and unqueue_me must be called as a pair, each
1052 * exactly once.  They are called with the hashed spinlock held.
1053 */
1054
1055/* Return 1 if we were still queued (ie. 0 means we were woken) */
1056static int unqueue_me(struct futex_q *q)
1057{
1058        spinlock_t *lock_ptr;
1059        int ret = 0;
1060
1061        /* In the common case we don't take the spinlock, which is nice. */
1062 retry:
1063        lock_ptr = q->lock_ptr;
1064        barrier();
1065        if (lock_ptr != NULL) {
1066                spin_lock(lock_ptr);
1067                /*
1068                 * q->lock_ptr can change between reading it and
1069                 * spin_lock(), causing us to take the wrong lock.  This
1070                 * corrects the race condition.
1071                 *
1072                 * Reasoning goes like this: if we have the wrong lock,
1073                 * q->lock_ptr must have changed (maybe several times)
1074                 * between reading it and the spin_lock().  It can
1075                 * change again after the spin_lock() but only if it was
1076                 * already changed before the spin_lock().  It cannot,
1077                 * however, change back to the original value.  Therefore
1078                 * we can detect whether we acquired the correct lock.
1079                 */
1080                if (unlikely(lock_ptr != q->lock_ptr)) {
1081                        spin_unlock(lock_ptr);
1082                        goto retry;
1083                }
1084                WARN_ON(plist_node_empty(&q->list));
1085                plist_del(&q->list, &q->list.plist);
1086
1087                BUG_ON(q->pi_state);
1088
1089                spin_unlock(lock_ptr);
1090                ret = 1;
1091        }
1092
1093        drop_futex_key_refs(&q->key);
1094        return ret;
1095}
1096
1097/*
1098 * PI futexes can not be requeued and must remove themself from the
1099 * hash bucket. The hash bucket lock (i.e. lock_ptr) is held on entry
1100 * and dropped here.
1101 */
1102static void unqueue_me_pi(struct futex_q *q)
1103{
1104        WARN_ON(plist_node_empty(&q->list));
1105        plist_del(&q->list, &q->list.plist);
1106
1107        BUG_ON(!q->pi_state);
1108        free_pi_state(q->pi_state);
1109        q->pi_state = NULL;
1110
1111        spin_unlock(q->lock_ptr);
1112
1113        drop_futex_key_refs(&q->key);
1114}
1115
1116/*
1117 * Fixup the pi_state owner with the new owner.
1118 *
1119 * Must be called with hash bucket lock held and mm->sem held for non
1120 * private futexes.
1121 */
1122static int fixup_pi_state_owner(u32 __user *uaddr, struct futex_q *q,
1123                                struct task_struct *newowner,
1124                                struct rw_semaphore *fshared)
1125{
1126        u32 newtid = task_pid_vnr(newowner) | FUTEX_WAITERS;
1127        struct futex_pi_state *pi_state = q->pi_state;
1128        struct task_struct *oldowner = pi_state->owner;
1129        u32 uval, curval, newval;
1130        int ret, attempt = 0;
1131
1132        /* Owner died? */
1133        if (!pi_state->owner)
1134                newtid |= FUTEX_OWNER_DIED;
1135
1136        /*
1137         * We are here either because we stole the rtmutex from the
1138         * pending owner or we are the pending owner which failed to
1139         * get the rtmutex. We have to replace the pending owner TID
1140         * in the user space variable. This must be atomic as we have
1141         * to preserve the owner died bit here.
1142         *
1143         * Note: We write the user space value _before_ changing the
1144         * pi_state because we can fault here. Imagine swapped out
1145         * pages or a fork, which was running right before we acquired
1146         * mmap_sem, that marked all the anonymous memory readonly for
1147         * cow.
1148         *
1149         * Modifying pi_state _before_ the user space value would
1150         * leave the pi_state in an inconsistent state when we fault
1151         * here, because we need to drop the hash bucket lock to
1152         * handle the fault. This might be observed in the PID check
1153         * in lookup_pi_state.
1154         */
1155retry:
1156        if (get_futex_value_locked(&uval, uaddr))
1157                goto handle_fault;
1158
1159        while (1) {
1160                newval = (uval & FUTEX_OWNER_DIED) | newtid;
1161
1162                curval = cmpxchg_futex_value_locked(uaddr, uval, newval);
1163
1164                if (curval == -EFAULT)
1165                        goto handle_fault;
1166                if (curval == uval)
1167                        break;
1168                uval = curval;
1169        }
1170
1171        /*
1172         * We fixed up user space. Now we need to fix the pi_state
1173         * itself.
1174         */
1175        if (pi_state->owner != NULL) {
1176                spin_lock_irq(&pi_state->owner->pi_lock);
1177                WARN_ON(list_empty(&pi_state->list));
1178                list_del_init(&pi_state->list);
1179                spin_unlock_irq(&pi_state->owner->pi_lock);
1180        }
1181
1182        pi_state->owner = newowner;
1183
1184        spin_lock_irq(&newowner->pi_lock);
1185        WARN_ON(!list_empty(&pi_state->list));
1186        list_add(&pi_state->list, &newowner->pi_state_list);
1187        spin_unlock_irq(&newowner->pi_lock);
1188        return 0;
1189
1190        /*
1191         * To handle the page fault we need to drop the hash bucket
1192         * lock here. That gives the other task (either the pending
1193         * owner itself or the task which stole the rtmutex) the
1194         * chance to try the fixup of the pi_state. So once we are
1195         * back from handling the fault we need to check the pi_state
1196         * after reacquiring the hash bucket lock and before trying to
1197         * do another fixup. When the fixup has been done already we
1198         * simply return.
1199         */
1200handle_fault:
1201        spin_unlock(q->lock_ptr);
1202
1203        ret = futex_handle_fault((unsigned long)uaddr, fshared, attempt++);
1204
1205        spin_lock(q->lock_ptr);
1206
1207        /*
1208         * Check if someone else fixed it for us:
1209         */
1210        if (pi_state->owner != oldowner)
1211                return 0;
1212
1213        if (ret)
1214                return ret;
1215
1216        goto retry;
1217}
1218
1219/*
1220 * In case we must use restart_block to restart a futex_wait,
1221 * we encode in the 'flags' shared capability
1222 */
1223#define FLAGS_SHARED  1
1224
1225static long futex_wait_restart(struct restart_block *restart);
1226
1227static int futex_wait(u32 __user *uaddr, struct rw_semaphore *fshared,
1228                      u32 val, ktime_t *abs_time, u32 bitset)
1229{
1230        struct task_struct *curr = current;
1231        DECLARE_WAITQUEUE(wait, curr);
1232        struct futex_hash_bucket *hb;
1233        struct futex_q q;
1234        u32 uval;
1235        int ret;
1236        struct hrtimer_sleeper t;
1237        int rem = 0;
1238
1239        if (!bitset)
1240                return -EINVAL;
1241
1242        q.pi_state = NULL;
1243        q.bitset = bitset;
1244 retry:
1245        futex_lock_mm(fshared);
1246
1247        ret = get_futex_key(uaddr, fshared, &q.key);
1248        if (unlikely(ret != 0))
1249                goto out_release_sem;
1250
1251        hb = queue_lock(&q);
1252
1253        /*
1254         * Access the page AFTER the futex is queued.
1255         * Order is important:
1256         *
1257         *   Userspace waiter: val = var; if (cond(val)) futex_wait(&var, val);
1258         *   Userspace waker:  if (cond(var)) { var = new; futex_wake(&var); }
1259         *
1260         * The basic logical guarantee of a futex is that it blocks ONLY
1261         * if cond(var) is known to be true at the time of blocking, for
1262         * any cond.  If we queued after testing *uaddr, that would open
1263         * a race condition where we could block indefinitely with
1264         * cond(var) false, which would violate the guarantee.
1265         *
1266         * A consequence is that futex_wait() can return zero and absorb
1267         * a wakeup when *uaddr != val on entry to the syscall.  This is
1268         * rare, but normal.
1269         *
1270         * for shared futexes, we hold the mmap semaphore, so the mapping
1271         * cannot have changed since we looked it up in get_futex_key.
1272         */
1273        ret = get_futex_value_locked(&uval, uaddr);
1274
1275        if (unlikely(ret)) {
1276                queue_unlock(&q, hb);
1277
1278                /*
1279                 * If we would have faulted, release mmap_sem, fault it in and
1280                 * start all over again.
1281                 */
1282                futex_unlock_mm(fshared);
1283
1284                ret = get_user(uval, uaddr);
1285
1286                if (!ret)
1287                        goto retry;
1288                return ret;
1289        }
1290        ret = -EWOULDBLOCK;
1291        if (uval != val)
1292                goto out_unlock_release_sem;
1293
1294        /* Only actually queue if *uaddr contained val.  */
1295        queue_me(&q, hb);
1296
1297        /*
1298         * Now the futex is queued and we have checked the data, we
1299         * don't want to hold mmap_sem while we sleep.
1300         */
1301        futex_unlock_mm(fshared);
1302
1303        /*
1304         * There might have been scheduling since the queue_me(), as we
1305         * cannot hold a spinlock across the get_user() in case it
1306         * faults, and we cannot just set TASK_INTERRUPTIBLE state when
1307         * queueing ourselves into the futex hash.  This code thus has to
1308         * rely on the futex_wake() code removing us from hash when it
1309         * wakes us up.
1310         */
1311
1312        /* add_wait_queue is the barrier after __set_current_state. */
1313        __set_current_state(TASK_INTERRUPTIBLE);
1314        add_wait_queue(&q.waiters, &wait);
1315        /*
1316         * !plist_node_empty() is safe here without any lock.
1317         * q.lock_ptr != 0 is not safe, because of ordering against wakeup.
1318         */
1319        if (likely(!plist_node_empty(&q.list))) {
1320                if (!abs_time)
1321                        schedule();
1322                else {
1323                        hrtimer_init_on_stack(&t.timer, CLOCK_MONOTONIC,
1324                                                HRTIMER_MODE_ABS);
1325                        hrtimer_init_sleeper(&t, current);
1326                        t.timer.expires = *abs_time;
1327
1328                        hrtimer_start(&t.timer, t.timer.expires,
1329                                                HRTIMER_MODE_ABS);
1330                        if (!hrtimer_active(&t.timer))
1331                                t.task = NULL;
1332
1333                        /*
1334                         * the timer could have already expired, in which
1335                         * case current would be flagged for rescheduling.
1336                         * Don't bother calling schedule.
1337                         */
1338                        if (likely(t.task))
1339                                schedule();
1340
1341                        hrtimer_cancel(&t.timer);
1342
1343                        /* Flag if a timeout occured */
1344                        rem = (t.task == NULL);
1345
1346                        destroy_hrtimer_on_stack(&t.timer);
1347                }
1348        }
1349        __set_current_state(TASK_RUNNING);
1350
1351        /*
1352         * NOTE: we don't remove ourselves from the waitqueue because
1353         * we are the only user of it.
1354         */
1355
1356        /* If we were woken (and unqueued), we succeeded, whatever. */
1357        if (!unqueue_me(&q))
1358                return 0;
1359        if (rem)
1360                return -ETIMEDOUT;
1361
1362        /*
1363         * We expect signal_pending(current), but another thread may
1364         * have handled it for us already.
1365         */
1366        if (!abs_time)
1367                return -ERESTARTSYS;
1368        else {
1369                struct restart_block *restart;
1370                restart = &current_thread_info()->restart_block;
1371                restart->fn = futex_wait_restart;
1372                restart->futex.uaddr = (u32 *)uaddr;
1373                restart->futex.val = val;
1374                restart->futex.time = abs_time->tv64;
1375                restart->futex.bitset = bitset;
1376                restart->futex.flags = 0;
1377
1378                if (fshared)
1379                        restart->futex.flags |= FLAGS_SHARED;
1380                return -ERESTART_RESTARTBLOCK;
1381        }
1382
1383 out_unlock_release_sem:
1384        queue_unlock(&q, hb);
1385
1386 out_release_sem:
1387        futex_unlock_mm(fshared);
1388        return ret;
1389}
1390
1391
1392static long futex_wait_restart(struct restart_block *restart)
1393{
1394        u32 __user *uaddr = (u32 __user *)restart->futex.uaddr;
1395        struct rw_semaphore *fshared = NULL;
1396        ktime_t t;
1397
1398        t.tv64 = restart->futex.time;
1399        restart->fn = do_no_restart_syscall;
1400        if (restart->futex.flags & FLAGS_SHARED)
1401                fshared = &current->mm->mmap_sem;
1402        return (long)futex_wait(uaddr, fshared, restart->futex.val, &t,
1403                                restart->futex.bitset);
1404}
1405
1406
1407/*
1408 * Userspace tried a 0 -> TID atomic transition of the futex value
1409 * and failed. The kernel side here does the whole locking operation:
1410 * if there are waiters then it will block, it does PI, etc. (Due to
1411 * races the kernel might see a 0 value of the futex too.)
1412 */
1413static int futex_lock_pi(u32 __user *uaddr, struct rw_semaphore *fshared,
1414                         int detect, ktime_t *time, int trylock)
1415{
1416        struct hrtimer_sleeper timeout, *to = NULL;
1417        struct task_struct *curr = current;
1418        struct futex_hash_bucket *hb;
1419        u32 uval, newval, curval;
1420        struct futex_q q;
1421        int ret, lock_taken, ownerdied = 0, attempt = 0;
1422
1423        if (refill_pi_state_cache())
1424                return -ENOMEM;
1425
1426        if (time) {
1427                to = &timeout;
1428                hrtimer_init_on_stack(&to->timer, CLOCK_REALTIME,
1429                                      HRTIMER_MODE_ABS);
1430                hrtimer_init_sleeper(to, current);
1431                to->timer.expires = *time;
1432        }
1433
1434        q.pi_state = NULL;
1435 retry:
1436        futex_lock_mm(fshared);
1437
1438        ret = get_futex_key(uaddr, fshared, &q.key);
1439        if (unlikely(ret != 0))
1440                goto out_release_sem;
1441
1442 retry_unlocked:
1443        hb = queue_lock(&q);
1444
1445 retry_locked:
1446        ret = lock_taken = 0;
1447
1448        /*
1449         * To avoid races, we attempt to take the lock here again
1450         * (by doing a 0 -> TID atomic cmpxchg), while holding all
1451         * the locks. It will most likely not succeed.
1452         */
1453        newval = task_pid_vnr(current);
1454
1455        curval = cmpxchg_futex_value_locked(uaddr, 0, newval);
1456
1457        if (unlikely(curval == -EFAULT))
1458                goto uaddr_faulted;
1459
1460        /*
1461         * Detect deadlocks. In case of REQUEUE_PI this is a valid
1462         * situation and we return success to user space.
1463         */
1464        if (unlikely((curval & FUTEX_TID_MASK) == task_pid_vnr(current))) {
1465                ret = -EDEADLK;
1466                goto out_unlock_release_sem;
1467        }
1468
1469        /*
1470         * Surprise - we got the lock. Just return to userspace:
1471         */
1472        if (unlikely(!curval))
1473                goto out_unlock_release_sem;
1474
1475        uval = curval;
1476
1477        /*
1478         * Set the WAITERS flag, so the owner will know it has someone
1479         * to wake at next unlock
1480         */
1481        newval = curval | FUTEX_WAITERS;
1482
1483        /*
1484         * There are two cases, where a futex might have no owner (the
1485         * owner TID is 0): OWNER_DIED. We take over the futex in this
1486         * case. We also do an unconditional take over, when the owner
1487         * of the futex died.
1488         *
1489         * This is safe as we are protected by the hash bucket lock !
1490         */
1491        if (unlikely(ownerdied || !(curval & FUTEX_TID_MASK))) {
1492                /* Keep the OWNER_DIED bit */
1493                newval = (curval & ~FUTEX_TID_MASK) | task_pid_vnr(current);
1494                ownerdied = 0;
1495                lock_taken = 1;
1496        }
1497
1498        curval = cmpxchg_futex_value_locked(uaddr, uval, newval);
1499
1500        if (unlikely(curval == -EFAULT))
1501                goto uaddr_faulted;
1502        if (unlikely(curval != uval))
1503                goto retry_locked;
1504
1505        /*
1506         * We took the lock due to owner died take over.
1507         */
1508        if (unlikely(lock_taken))
1509                goto out_unlock_release_sem;
1510
1511        /*
1512         * We dont have the lock. Look up the PI state (or create it if
1513         * we are the first waiter):
1514         */
1515        ret = lookup_pi_state(uval, hb, &q.key, &q.pi_state);
1516
1517        if (unlikely(ret)) {
1518                switch (ret) {
1519
1520                case -EAGAIN:
1521                        /*
1522                         * Task is exiting and we just wait for the
1523                         * exit to complete.
1524                         */
1525                        queue_unlock(&q, hb);
1526                        futex_unlock_mm(fshared);
1527                        cond_resched();
1528                        goto retry;
1529
1530                case -ESRCH:
1531                        /*
1532                         * No owner found for this futex. Check if the
1533                         * OWNER_DIED bit is set to figure out whether
1534                         * this is a robust futex or not.
1535                         */
1536                        if (get_futex_value_locked(&curval, uaddr))
1537                                goto uaddr_faulted;
1538
1539                        /*
1540                         * We simply start over in case of a robust
1541                         * futex. The code above will take the futex
1542                         * and return happy.
1543                         */
1544                        if (curval & FUTEX_OWNER_DIED) {
1545                                ownerdied = 1;
1546                                goto retry_locked;
1547                        }
1548                default:
1549                        goto out_unlock_release_sem;
1550                }
1551        }
1552
1553        /*
1554         * Only actually queue now that the atomic ops are done:
1555         */
1556        queue_me(&q, hb);
1557
1558        /*
1559         * Now the futex is queued and we have checked the data, we
1560         * don't want to hold mmap_sem while we sleep.
1561         */
1562        futex_unlock_mm(fshared);
1563
1564        WARN_ON(!q.pi_state);
1565        /*
1566         * Block on the PI mutex:
1567         */
1568        if (!trylock)
1569                ret = rt_mutex_timed_lock(&q.pi_state->pi_mutex, to, 1);
1570        else {
1571                ret = rt_mutex_trylock(&q.pi_state->pi_mutex);
1572                /* Fixup the trylock return value: */
1573                ret = ret ? 0 : -EWOULDBLOCK;
1574        }
1575
1576        futex_lock_mm(fshared);
1577        spin_lock(q.lock_ptr);
1578
1579        if (!ret) {
1580                /*
1581                 * Got the lock. We might not be the anticipated owner
1582                 * if we did a lock-steal - fix up the PI-state in
1583                 * that case:
1584                 */
1585                if (q.pi_state->owner != curr)
1586                        ret = fixup_pi_state_owner(uaddr, &q, curr, fshared);
1587        } else {
1588                /*
1589                 * Catch the rare case, where the lock was released
1590                 * when we were on the way back before we locked the
1591                 * hash bucket.
1592                 */
1593                if (q.pi_state->owner == curr) {
1594                        /*
1595                         * Try to get the rt_mutex now. This might
1596                         * fail as some other task acquired the
1597                         * rt_mutex after we removed ourself from the
1598                         * rt_mutex waiters list.
1599                         */
1600                        if (rt_mutex_trylock(&q.pi_state->pi_mutex))
1601                                ret = 0;
1602                        else {
1603                                /*
1604                                 * pi_state is incorrect, some other
1605                                 * task did a lock steal and we
1606                                 * returned due to timeout or signal
1607                                 * without taking the rt_mutex. Too
1608                                 * late. We can access the
1609                                 * rt_mutex_owner without locking, as
1610                                 * the other task is now blocked on
1611                                 * the hash bucket lock. Fix the state
1612                                 * up.
1613                                 */
1614                                struct task_struct *owner;
1615                                int res;
1616
1617                                owner = rt_mutex_owner(&q.pi_state->pi_mutex);
1618                                res = fixup_pi_state_owner(uaddr, &q, owner,
1619                                                           fshared);
1620
1621                                /* propagate -EFAULT, if the fixup failed */
1622                                if (res)
1623                                        ret = res;
1624                        }
1625                } else {
1626                        /*
1627                         * Paranoia check. If we did not take the lock
1628                         * in the trylock above, then we should not be
1629                         * the owner of the rtmutex, neither the real
1630                         * nor the pending one:
1631                         */
1632                        if (rt_mutex_owner(&q.pi_state->pi_mutex) == curr)
1633                                printk(KERN_ERR "futex_lock_pi: ret = %d "
1634                                       "pi-mutex: %p pi-state %p\n", ret,
1635                                       q.pi_state->pi_mutex.owner,
1636                                       q.pi_state->owner);
1637                }
1638        }
1639
1640        /* Unqueue and drop the lock */
1641        unqueue_me_pi(&q);
1642        futex_unlock_mm(fshared);
1643
1644        if (to)
1645                destroy_hrtimer_on_stack(&to->timer);
1646        return ret != -EINTR ? ret : -ERESTARTNOINTR;
1647
1648 out_unlock_release_sem:
1649        queue_unlock(&q, hb);
1650
1651 out_release_sem:
1652        futex_unlock_mm(fshared);
1653        if (to)
1654                destroy_hrtimer_on_stack(&to->timer);
1655        return ret;
1656
1657 uaddr_faulted:
1658        /*
1659         * We have to r/w  *(int __user *)uaddr, but we can't modify it
1660         * non-atomically.  Therefore, if get_user below is not
1661         * enough, we need to handle the fault ourselves, while
1662         * still holding the mmap_sem.
1663         *
1664         * ... and hb->lock. :-) --ANK
1665         */
1666        queue_unlock(&q, hb);
1667
1668        if (attempt++) {
1669                ret = futex_handle_fault((unsigned long)uaddr, fshared,
1670                                         attempt);
1671                if (ret)
1672                        goto out_release_sem;
1673                goto retry_unlocked;
1674        }
1675
1676        futex_unlock_mm(fshared);
1677
1678        ret = get_user(uval, uaddr);
1679        if (!ret && (uval != -EFAULT))
1680                goto retry;
1681
1682        if (to)
1683                destroy_hrtimer_on_stack(&to->timer);
1684        return ret;
1685}
1686
1687/*
1688 * Userspace attempted a TID -> 0 atomic transition, and failed.
1689 * This is the in-kernel slowpath: we look up the PI state (if any),
1690 * and do the rt-mutex unlock.
1691 */
1692static int futex_unlock_pi(u32 __user *uaddr, struct rw_semaphore *fshared)
1693{
1694        struct futex_hash_bucket *hb;
1695        struct futex_q *this, *next;
1696        u32 uval;
1697        struct plist_head *head;
1698        union futex_key key;
1699        int ret, attempt = 0;
1700
1701retry:
1702        if (get_user(uval, uaddr))
1703                return -EFAULT;
1704        /*
1705         * We release only a lock we actually own:
1706         */
1707        if ((uval & FUTEX_TID_MASK) != task_pid_vnr(current))
1708                return -EPERM;
1709        /*
1710         * First take all the futex related locks:
1711         */
1712        futex_lock_mm(fshared);
1713
1714        ret = get_futex_key(uaddr, fshared, &key);
1715        if (unlikely(ret != 0))
1716                goto out;
1717
1718        hb = hash_futex(&key);
1719retry_unlocked:
1720        spin_lock(&hb->lock);
1721
1722        /*
1723         * To avoid races, try to do the TID -> 0 atomic transition
1724         * again. If it succeeds then we can return without waking
1725         * anyone else up:
1726         */
1727        if (!(uval & FUTEX_OWNER_DIED))
1728                uval = cmpxchg_futex_value_locked(uaddr, task_pid_vnr(current), 0);
1729
1730
1731        if (unlikely(uval == -EFAULT))
1732                goto pi_faulted;
1733        /*
1734         * Rare case: we managed to release the lock atomically,
1735         * no need to wake anyone else up:
1736         */
1737        if (unlikely(uval == task_pid_vnr(current)))
1738                goto out_unlock;
1739
1740        /*
1741         * Ok, other tasks may need to be woken up - check waiters
1742         * and do the wakeup if necessary:
1743         */
1744        head = &hb->chain;
1745
1746        plist_for_each_entry_safe(this, next, head, list) {
1747                if (!match_futex (&this->key, &key))
1748                        continue;
1749                ret = wake_futex_pi(uaddr, uval, this);
1750                /*
1751                 * The atomic access to the futex value
1752                 * generated a pagefault, so retry the
1753                 * user-access and the wakeup:
1754                 */
1755                if (ret == -EFAULT)
1756                        goto pi_faulted;
1757                goto out_unlock;
1758        }
1759        /*
1760         * No waiters - kernel unlocks the futex:
1761         */
1762        if (!(uval & FUTEX_OWNER_DIED)) {
1763                ret = unlock_futex_pi(uaddr, uval);
1764                if (ret == -EFAULT)
1765                        goto pi_faulted;
1766        }
1767
1768out_unlock:
1769        spin_unlock(&hb->lock);
1770out:
1771        futex_unlock_mm(fshared);
1772
1773        return ret;
1774
1775pi_faulted:
1776        /*
1777         * We have to r/w  *(int __user *)uaddr, but we can't modify it
1778         * non-atomically.  Therefore, if get_user below is not
1779         * enough, we need to handle the fault ourselves, while
1780         * still holding the mmap_sem.
1781         *
1782         * ... and hb->lock. --ANK
1783         */
1784        spin_unlock(&hb->lock);
1785
1786        if (attempt++) {
1787                ret = futex_handle_fault((unsigned long)uaddr, fshared,
1788                                         attempt);
1789                if (ret)
1790                        goto out;
1791                uval = 0;
1792                goto retry_unlocked;
1793        }
1794
1795        futex_unlock_mm(fshared);
1796
1797        ret = get_user(uval, uaddr);
1798        if (!ret && (uval != -EFAULT))
1799                goto retry;
1800
1801        return ret;
1802}
1803
1804/*
1805 * Support for robust futexes: the kernel cleans up held futexes at
1806 * thread exit time.
1807 *
1808 * Implementation: user-space maintains a per-thread list of locks it
1809 * is holding. Upon do_exit(), the kernel carefully walks this list,
1810 * and marks all locks that are owned by this thread with the
1811 * FUTEX_OWNER_DIED bit, and wakes up a waiter (if any). The list is
1812 * always manipulated with the lock held, so the list is private and
1813 * per-thread. Userspace also maintains a per-thread 'list_op_pending'
1814 * field, to allow the kernel to clean up if the thread dies after
1815 * acquiring the lock, but just before it could have added itself to
1816 * the list. There can only be one such pending lock.
1817 */
1818
1819/**
1820 * sys_set_robust_list - set the robust-futex list head of a task
1821 * @head: pointer to the list-head
1822 * @len: length of the list-head, as userspace expects
1823 */
1824SYSCALL_DEFINE2(set_robust_list, struct robust_list_head __user *, head,
1825                size_t, len)
1826{
1827        if (!futex_cmpxchg_enabled)
1828                return -ENOSYS;
1829        /*
1830         * The kernel knows only one size for now:
1831         */
1832        if (unlikely(len != sizeof(*head)))
1833                return -EINVAL;
1834
1835        current->robust_list = head;
1836
1837        return 0;
1838}
1839
1840/**
1841 * sys_get_robust_list - get the robust-futex list head of a task
1842 * @pid: pid of the process [zero for current task]
1843 * @head_ptr: pointer to a list-head pointer, the kernel fills it in
1844 * @len_ptr: pointer to a length field, the kernel fills in the header size
1845 */
1846SYSCALL_DEFINE3(get_robust_list, int, pid,
1847                struct robust_list_head __user * __user *, head_ptr,
1848                size_t __user *, len_ptr)
1849{
1850        struct robust_list_head __user *head;
1851        unsigned long ret;
1852
1853        if (!futex_cmpxchg_enabled)
1854                return -ENOSYS;
1855
1856        if (!pid)
1857                head = current->robust_list;
1858        else {
1859                struct task_struct *p;
1860
1861                ret = -ESRCH;
1862                rcu_read_lock();
1863                p = find_task_by_vpid(pid);
1864                if (!p)
1865                        goto err_unlock;
1866                ret = -EPERM;
1867                if ((current->euid != p->euid) && (current->euid != p->uid) &&
1868                                !capable(CAP_SYS_PTRACE))
1869                        goto err_unlock;
1870                head = p->robust_list;
1871                rcu_read_unlock();
1872        }
1873
1874        if (put_user(sizeof(*head), len_ptr))
1875                return -EFAULT;
1876        return put_user(head, head_ptr);
1877
1878err_unlock:
1879        rcu_read_unlock();
1880
1881        return ret;
1882}
1883
1884/*
1885 * Process a futex-list entry, check whether it's owned by the
1886 * dying task, and do notification if so:
1887 */
1888int handle_futex_death(u32 __user *uaddr, struct task_struct *curr, int pi)
1889{
1890        u32 uval, nval, mval;
1891
1892retry:
1893        if (get_user(uval, uaddr))
1894                return -1;
1895
1896        if ((uval & FUTEX_TID_MASK) == task_pid_vnr(curr)) {
1897                /*
1898                 * Ok, this dying thread is truly holding a futex
1899                 * of interest. Set the OWNER_DIED bit atomically
1900                 * via cmpxchg, and if the value had FUTEX_WAITERS
1901                 * set, wake up a waiter (if any). (We have to do a
1902                 * futex_wake() even if OWNER_DIED is already set -
1903                 * to handle the rare but possible case of recursive
1904                 * thread-death.) The rest of the cleanup is done in
1905                 * userspace.
1906                 */
1907                mval = (uval & FUTEX_WAITERS) | FUTEX_OWNER_DIED;
1908                nval = futex_atomic_cmpxchg_inatomic(uaddr, uval, mval);
1909
1910                if (nval == -EFAULT)
1911                        return -1;
1912
1913                if (nval != uval)
1914                        goto retry;
1915
1916                /*
1917                 * Wake robust non-PI futexes here. The wakeup of
1918                 * PI futexes happens in exit_pi_state():
1919                 */
1920                if (!pi && (uval & FUTEX_WAITERS))
1921                        futex_wake(uaddr, &curr->mm->mmap_sem, 1,
1922                                   FUTEX_BITSET_MATCH_ANY);
1923        }
1924        return 0;
1925}
1926
1927/*
1928 * Fetch a robust-list pointer. Bit 0 signals PI futexes:
1929 */
1930static inline int fetch_robust_entry(struct robust_list __user **entry,
1931                                     struct robust_list __user * __user *head,
1932                                     int *pi)
1933{
1934        unsigned long uentry;
1935
1936        if (get_user(uentry, (unsigned long __user *)head))
1937                return -EFAULT;
1938
1939        *entry = (void __user *)(uentry & ~1UL);
1940        *pi = uentry & 1;
1941
1942        return 0;
1943}
1944
1945/*
1946 * Walk curr->robust_list (very carefully, it's a userspace list!)
1947 * and mark any locks found there dead, and notify any waiters.
1948 *
1949 * We silently return on any sign of list-walking problem.
1950 */
1951void exit_robust_list(struct task_struct *curr)
1952{
1953        struct robust_list_head __user *head = curr->robust_list;
1954        struct robust_list __user *entry, *next_entry, *pending;
1955        unsigned int limit = ROBUST_LIST_LIMIT, pi, next_pi, pip;
1956        unsigned long futex_offset;
1957        int rc;
1958
1959        if (!futex_cmpxchg_enabled)
1960                return;
1961
1962        /*
1963         * Fetch the list head (which was registered earlier, via
1964         * sys_set_robust_list()):
1965         */
1966        if (fetch_robust_entry(&entry, &head->list.next, &pi))
1967                return;
1968        /*
1969         * Fetch the relative futex offset:
1970         */
1971        if (get_user(futex_offset, &head->futex_offset))
1972                return;
1973        /*
1974         * Fetch any possibly pending lock-add first, and handle it
1975         * if it exists:
1976         */
1977        if (fetch_robust_entry(&pending, &head->list_op_pending, &pip))
1978                return;
1979
1980        next_entry = NULL;      /* avoid warning with gcc */
1981        while (entry != &head->list) {
1982                /*
1983                 * Fetch the next entry in the list before calling
1984                 * handle_futex_death:
1985                 */
1986                rc = fetch_robust_entry(&next_entry, &entry->next, &next_pi);
1987                /*
1988                 * A pending lock might already be on the list, so
1989                 * don't process it twice:
1990                 */
1991                if (entry != pending)
1992                        if (handle_futex_death((void __user *)entry + futex_offset,
1993                                                curr, pi))
1994                                return;
1995                if (rc)
1996                        return;
1997                entry = next_entry;
1998                pi = next_pi;
1999                /*
2000                 * Avoid excessively long or circular lists:
2001                 */
2002                if (!--limit)
2003                        break;
2004
2005                cond_resched();
2006        }
2007
2008        if (pending)
2009                handle_futex_death((void __user *)pending + futex_offset,
2010                                   curr, pip);
2011}
2012
2013long do_futex(u32 __user *uaddr, int op, u32 val, ktime_t *timeout,
2014                u32 __user *uaddr2, u32 val2, u32 val3)
2015{
2016        int ret = -ENOSYS;
2017        int cmd = op & FUTEX_CMD_MASK;
2018        struct rw_semaphore *fshared = NULL;
2019
2020        if (!(op & FUTEX_PRIVATE_FLAG))
2021                fshared = &current->mm->mmap_sem;
2022
2023        switch (cmd) {
2024        case FUTEX_WAIT:
2025                val3 = FUTEX_BITSET_MATCH_ANY;
2026        case FUTEX_WAIT_BITSET:
2027                ret = futex_wait(uaddr, fshared, val, timeout, val3);
2028                break;
2029        case FUTEX_WAKE:
2030                val3 = FUTEX_BITSET_MATCH_ANY;
2031        case FUTEX_WAKE_BITSET:
2032                ret = futex_wake(uaddr, fshared, val, val3);
2033                break;
2034        case FUTEX_REQUEUE:
2035                ret = futex_requeue(uaddr, fshared, uaddr2, val, val2, NULL);
2036                break;
2037        case FUTEX_CMP_REQUEUE:
2038                ret = futex_requeue(uaddr, fshared, uaddr2, val, val2, &val3);
2039                break;
2040        case FUTEX_WAKE_OP:
2041                ret = futex_wake_op(uaddr, fshared, uaddr2, val, val2, val3);
2042                break;
2043        case FUTEX_LOCK_PI:
2044                if (futex_cmpxchg_enabled)
2045                        ret = futex_lock_pi(uaddr, fshared, val, timeout, 0);
2046                break;
2047        case FUTEX_UNLOCK_PI:
2048                if (futex_cmpxchg_enabled)
2049                        ret = futex_unlock_pi(uaddr, fshared);
2050                break;
2051        case FUTEX_TRYLOCK_PI:
2052                if (futex_cmpxchg_enabled)
2053                        ret = futex_lock_pi(uaddr, fshared, 0, timeout, 1);
2054                break;
2055        default:
2056                ret = -ENOSYS;
2057        }
2058        return ret;
2059}
2060
2061
2062SYSCALL_DEFINE6(futex, u32 __user *, uaddr, int, op, u32, val,
2063                struct timespec __user *, utime, u32 __user *, uaddr2,
2064                u32, val3)
2065{
2066        struct timespec ts;
2067        ktime_t t, *tp = NULL;
2068        u32 val2 = 0;
2069        int cmd = op & FUTEX_CMD_MASK;
2070
2071        if (utime && (cmd == FUTEX_WAIT || cmd == FUTEX_LOCK_PI ||
2072                      cmd == FUTEX_WAIT_BITSET)) {
2073                if (copy_from_user(&ts, utime, sizeof(ts)) != 0)
2074                        return -EFAULT;
2075                if (!timespec_valid(&ts))
2076                        return -EINVAL;
2077
2078                t = timespec_to_ktime(ts);
2079                if (cmd == FUTEX_WAIT)
2080                        t = ktime_add_safe(ktime_get(), t);
2081                tp = &t;
2082        }
2083        /*
2084         * requeue parameter in 'utime' if cmd == FUTEX_REQUEUE.
2085         * number of waiters to wake in 'utime' if cmd == FUTEX_WAKE_OP.
2086         */
2087        if (cmd == FUTEX_REQUEUE || cmd == FUTEX_CMP_REQUEUE ||
2088            cmd == FUTEX_WAKE_OP)
2089                val2 = (u32) (unsigned long) utime;
2090
2091        return do_futex(uaddr, op, val, tp, uaddr2, val2, val3);
2092}
2093
2094static int __init futex_init(void)
2095{
2096        u32 curval;
2097        int i;
2098
2099        /*
2100         * This will fail and we want it. Some arch implementations do
2101         * runtime detection of the futex_atomic_cmpxchg_inatomic()
2102         * functionality. We want to know that before we call in any
2103         * of the complex code paths. Also we want to prevent
2104         * registration of robust lists in that case. NULL is
2105         * guaranteed to fault and we get -EFAULT on functional
2106         * implementation, the non functional ones will return
2107         * -ENOSYS.
2108         */
2109        curval = cmpxchg_futex_value_locked(NULL, 0, 0);
2110        if (curval == -EFAULT)
2111                futex_cmpxchg_enabled = 1;
2112
2113        for (i = 0; i < ARRAY_SIZE(futex_queues); i++) {
2114                plist_head_init(&futex_queues[i].chain, &futex_queues[i].lock);
2115                spin_lock_init(&futex_queues[i].lock);
2116        }
2117
2118        return 0;
2119}
2120__initcall(futex_init);
2121
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