1 /* 2 * linux/fs/locks.c 3 * 4 * Provide support for fcntl()'s F_GETLK, F_SETLK, and F_SETLKW calls. 5 * Doug Evans (dje@spiff.uucp), August 07, 1992 6 * 7 * Deadlock detection added. 8 * FIXME: one thing isn't handled yet: 9 * - mandatory locks (requires lots of changes elsewhere) 10 * Kelly Carmichael (kelly@[142.24.8.65]), September 17, 1994. 11 * 12 * Miscellaneous edits, and a total rewrite of posix_lock_file() code. 13 * Kai Petzke (wpp@marie.physik.tu-berlin.de), 1994 14 * 15 * Converted file_lock_table to a linked list from an array, which eliminates 16 * the limits on how many active file locks are open. 17 * Chad Page (pageone@netcom.com), November 27, 1994 18 * 19 * Removed dependency on file descriptors. dup()'ed file descriptors now 20 * get the same locks as the original file descriptors, and a close() on 21 * any file descriptor removes ALL the locks on the file for the current 22 * process. Since locks still depend on the process id, locks are inherited 23 * after an exec() but not after a fork(). This agrees with POSIX, and both 24 * BSD and SVR4 practice. 25 * Andy Walker (andy@lysaker.kvaerner.no), February 14, 1995 26 * 27 * Scrapped free list which is redundant now that we allocate locks 28 * dynamically with kmalloc()/kfree(). 29 * Andy Walker (andy@lysaker.kvaerner.no), February 21, 1995 30 * 31 * Implemented two lock personalities - FL_FLOCK and FL_POSIX. 32 * 33 * FL_POSIX locks are created with calls to fcntl() and lockf() through the 34 * fcntl() system call. They have the semantics described above. 35 * 36 * FL_FLOCK locks are created with calls to flock(), through the flock() 37 * system call, which is new. Old C libraries implement flock() via fcntl() 38 * and will continue to use the old, broken implementation. 39 * 40 * FL_FLOCK locks follow the 4.4 BSD flock() semantics. They are associated 41 * with a file pointer (filp). As a result they can be shared by a parent 42 * process and its children after a fork(). They are removed when the last 43 * file descriptor referring to the file pointer is closed (unless explicitly 44 * unlocked). 45 * 46 * FL_FLOCK locks never deadlock, an existing lock is always removed before 47 * upgrading from shared to exclusive (or vice versa). When this happens 48 * any processes blocked by the current lock are woken up and allowed to 49 * run before the new lock is applied. 50 * Andy Walker (andy@lysaker.kvaerner.no), June 09, 1995 51 * 52 * Removed some race conditions in flock_lock_file(), marked other possible 53 * races. Just grep for FIXME to see them. 54 * Dmitry Gorodchanin (pgmdsg@ibi.com), February 09, 1996. 55 * 56 * Addressed Dmitry's concerns. Deadlock checking no longer recursive. 57 * Lock allocation changed to GFP_ATOMIC as we can't afford to sleep 58 * once we've checked for blocking and deadlocking. 59 * Andy Walker (andy@lysaker.kvaerner.no), April 03, 1996. 60 * 61 * Initial implementation of mandatory locks. SunOS turned out to be 62 * a rotten model, so I implemented the "obvious" semantics. 63 * See 'Documentation/filesystems/mandatory-locking.txt' for details. 64 * Andy Walker (andy@lysaker.kvaerner.no), April 06, 1996. 65 * 66 * Don't allow mandatory locks on mmap()'ed files. Added simple functions to 67 * check if a file has mandatory locks, used by mmap(), open() and creat() to 68 * see if system call should be rejected. Ref. HP-UX/SunOS/Solaris Reference 69 * Manual, Section 2. 70 * Andy Walker (andy@lysaker.kvaerner.no), April 09, 1996. 71 * 72 * Tidied up block list handling. Added '/proc/locks' interface. 73 * Andy Walker (andy@lysaker.kvaerner.no), April 24, 1996. 74 * 75 * Fixed deadlock condition for pathological code that mixes calls to 76 * flock() and fcntl(). 77 * Andy Walker (andy@lysaker.kvaerner.no), April 29, 1996. 78 * 79 * Allow only one type of locking scheme (FL_POSIX or FL_FLOCK) to be in use 80 * for a given file at a time. Changed the CONFIG_LOCK_MANDATORY scheme to 81 * guarantee sensible behaviour in the case where file system modules might 82 * be compiled with different options than the kernel itself. 83 * Andy Walker (andy@lysaker.kvaerner.no), May 15, 1996. 84 * 85 * Added a couple of missing wake_up() calls. Thanks to Thomas Meckel 86 * (Thomas.Meckel@mni.fh-giessen.de) for spotting this. 87 * Andy Walker (andy@lysaker.kvaerner.no), May 15, 1996. 88 * 89 * Changed FL_POSIX locks to use the block list in the same way as FL_FLOCK 90 * locks. Changed process synchronisation to avoid dereferencing locks that 91 * have already been freed. 92 * Andy Walker (andy@lysaker.kvaerner.no), Sep 21, 1996. 93 * 94 * Made the block list a circular list to minimise searching in the list. 95 * Andy Walker (andy@lysaker.kvaerner.no), Sep 25, 1996. 96 * 97 * Made mandatory locking a mount option. Default is not to allow mandatory 98 * locking. 99 * Andy Walker (andy@lysaker.kvaerner.no), Oct 04, 1996. 100 * 101 * Some adaptations for NFS support. 102 * Olaf Kirch (okir@monad.swb.de), Dec 1996, 103 * 104 * Fixed /proc/locks interface so that we can't overrun the buffer we are handed. 105 * Andy Walker (andy@lysaker.kvaerner.no), May 12, 1997. 106 * 107 * Use slab allocator instead of kmalloc/kfree. 108 * Use generic list implementation from <linux/list.h>. 109 * Sped up posix_locks_deadlock by only considering blocked locks. 110 * Matthew Wilcox <willy@debian.org>, March, 2000. 111 * 112 * Leases and LOCK_MAND 113 * Matthew Wilcox <willy@debian.org>, June, 2000. 114 * Stephen Rothwell <sfr@canb.auug.org.au>, June, 2000. 115 */ 116 117 #include <linux/capability.h> 118 #include <linux/file.h> 119 #include <linux/fdtable.h> 120 #include <linux/fs.h> 121 #include <linux/init.h> 122 #include <linux/security.h> 123 #include <linux/slab.h> 124 #include <linux/syscalls.h> 125 #include <linux/time.h> 126 #include <linux/rcupdate.h> 127 #include <linux/pid_namespace.h> 128 #include <linux/hashtable.h> 129 #include <linux/percpu.h> 130 131 #define CREATE_TRACE_POINTS 132 #include <trace/events/filelock.h> 133 134 #include <asm/uaccess.h> 135 136 #define IS_POSIX(fl) (fl->fl_flags & FL_POSIX) 137 #define IS_FLOCK(fl) (fl->fl_flags & FL_FLOCK) 138 #define IS_LEASE(fl) (fl->fl_flags & (FL_LEASE|FL_DELEG|FL_LAYOUT)) 139 #define IS_OFDLCK(fl) (fl->fl_flags & FL_OFDLCK) 140 141 static bool lease_breaking(struct file_lock *fl) 142 { 143 return fl->fl_flags & (FL_UNLOCK_PENDING | FL_DOWNGRADE_PENDING); 144 } 145 146 static int target_leasetype(struct file_lock *fl) 147 { 148 if (fl->fl_flags & FL_UNLOCK_PENDING) 149 return F_UNLCK; 150 if (fl->fl_flags & FL_DOWNGRADE_PENDING) 151 return F_RDLCK; 152 return fl->fl_type; 153 } 154 155 int leases_enable = 1; 156 int lease_break_time = 45; 157 158 /* 159 * The global file_lock_list is only used for displaying /proc/locks, so we 160 * keep a list on each CPU, with each list protected by its own spinlock. 161 * Global serialization is done using file_rwsem. 162 * 163 * Note that alterations to the list also require that the relevant flc_lock is 164 * held. 165 */ 166 struct file_lock_list_struct { 167 spinlock_t lock; 168 struct hlist_head hlist; 169 }; 170 static DEFINE_PER_CPU(struct file_lock_list_struct, file_lock_list); 171 DEFINE_STATIC_PERCPU_RWSEM(file_rwsem); 172 173 /* 174 * The blocked_hash is used to find POSIX lock loops for deadlock detection. 175 * It is protected by blocked_lock_lock. 176 * 177 * We hash locks by lockowner in order to optimize searching for the lock a 178 * particular lockowner is waiting on. 179 * 180 * FIXME: make this value scale via some heuristic? We generally will want more 181 * buckets when we have more lockowners holding locks, but that's a little 182 * difficult to determine without knowing what the workload will look like. 183 */ 184 #define BLOCKED_HASH_BITS 7 185 static DEFINE_HASHTABLE(blocked_hash, BLOCKED_HASH_BITS); 186 187 /* 188 * This lock protects the blocked_hash. Generally, if you're accessing it, you 189 * want to be holding this lock. 190 * 191 * In addition, it also protects the fl->fl_block list, and the fl->fl_next 192 * pointer for file_lock structures that are acting as lock requests (in 193 * contrast to those that are acting as records of acquired locks). 194 * 195 * Note that when we acquire this lock in order to change the above fields, 196 * we often hold the flc_lock as well. In certain cases, when reading the fields 197 * protected by this lock, we can skip acquiring it iff we already hold the 198 * flc_lock. 199 * 200 * In particular, adding an entry to the fl_block list requires that you hold 201 * both the flc_lock and the blocked_lock_lock (acquired in that order). 202 * Deleting an entry from the list however only requires the file_lock_lock. 203 */ 204 static DEFINE_SPINLOCK(blocked_lock_lock); 205 206 static struct kmem_cache *flctx_cache __read_mostly; 207 static struct kmem_cache *filelock_cache __read_mostly; 208 209 static struct file_lock_context * 210 locks_get_lock_context(struct inode *inode, int type) 211 { 212 struct file_lock_context *ctx; 213 214 /* paired with cmpxchg() below */ 215 ctx = smp_load_acquire(&inode->i_flctx); 216 if (likely(ctx) || type == F_UNLCK) 217 goto out; 218 219 ctx = kmem_cache_alloc(flctx_cache, GFP_KERNEL); 220 if (!ctx) 221 goto out; 222 223 spin_lock_init(&ctx->flc_lock); 224 INIT_LIST_HEAD(&ctx->flc_flock); 225 INIT_LIST_HEAD(&ctx->flc_posix); 226 INIT_LIST_HEAD(&ctx->flc_lease); 227 228 /* 229 * Assign the pointer if it's not already assigned. If it is, then 230 * free the context we just allocated. 231 */ 232 if (cmpxchg(&inode->i_flctx, NULL, ctx)) { 233 kmem_cache_free(flctx_cache, ctx); 234 ctx = smp_load_acquire(&inode->i_flctx); 235 } 236 out: 237 trace_locks_get_lock_context(inode, type, ctx); 238 return ctx; 239 } 240 241 static void 242 locks_dump_ctx_list(struct list_head *list, char *list_type) 243 { 244 struct file_lock *fl; 245 246 list_for_each_entry(fl, list, fl_list) { 247 pr_warn("%s: fl_owner=%p fl_flags=0x%x fl_type=0x%x fl_pid=%u\n", list_type, fl->fl_owner, fl->fl_flags, fl->fl_type, fl->fl_pid); 248 } 249 } 250 251 static void 252 locks_check_ctx_lists(struct inode *inode) 253 { 254 struct file_lock_context *ctx = inode->i_flctx; 255 256 if (unlikely(!list_empty(&ctx->flc_flock) || 257 !list_empty(&ctx->flc_posix) || 258 !list_empty(&ctx->flc_lease))) { 259 pr_warn("Leaked locks on dev=0x%x:0x%x ino=0x%lx:\n", 260 MAJOR(inode->i_sb->s_dev), MINOR(inode->i_sb->s_dev), 261 inode->i_ino); 262 locks_dump_ctx_list(&ctx->flc_flock, "FLOCK"); 263 locks_dump_ctx_list(&ctx->flc_posix, "POSIX"); 264 locks_dump_ctx_list(&ctx->flc_lease, "LEASE"); 265 } 266 } 267 268 void 269 locks_free_lock_context(struct inode *inode) 270 { 271 struct file_lock_context *ctx = inode->i_flctx; 272 273 if (unlikely(ctx)) { 274 locks_check_ctx_lists(inode); 275 kmem_cache_free(flctx_cache, ctx); 276 } 277 } 278 279 static void locks_init_lock_heads(struct file_lock *fl) 280 { 281 INIT_HLIST_NODE(&fl->fl_link); 282 INIT_LIST_HEAD(&fl->fl_list); 283 INIT_LIST_HEAD(&fl->fl_block); 284 init_waitqueue_head(&fl->fl_wait); 285 } 286 287 /* Allocate an empty lock structure. */ 288 struct file_lock *locks_alloc_lock(void) 289 { 290 struct file_lock *fl = kmem_cache_zalloc(filelock_cache, GFP_KERNEL); 291 292 if (fl) 293 locks_init_lock_heads(fl); 294 295 return fl; 296 } 297 EXPORT_SYMBOL_GPL(locks_alloc_lock); 298 299 void locks_release_private(struct file_lock *fl) 300 { 301 if (fl->fl_ops) { 302 if (fl->fl_ops->fl_release_private) 303 fl->fl_ops->fl_release_private(fl); 304 fl->fl_ops = NULL; 305 } 306 307 if (fl->fl_lmops) { 308 if (fl->fl_lmops->lm_put_owner) { 309 fl->fl_lmops->lm_put_owner(fl->fl_owner); 310 fl->fl_owner = NULL; 311 } 312 fl->fl_lmops = NULL; 313 } 314 } 315 EXPORT_SYMBOL_GPL(locks_release_private); 316 317 /* Free a lock which is not in use. */ 318 void locks_free_lock(struct file_lock *fl) 319 { 320 BUG_ON(waitqueue_active(&fl->fl_wait)); 321 BUG_ON(!list_empty(&fl->fl_list)); 322 BUG_ON(!list_empty(&fl->fl_block)); 323 BUG_ON(!hlist_unhashed(&fl->fl_link)); 324 325 locks_release_private(fl); 326 kmem_cache_free(filelock_cache, fl); 327 } 328 EXPORT_SYMBOL(locks_free_lock); 329 330 static void 331 locks_dispose_list(struct list_head *dispose) 332 { 333 struct file_lock *fl; 334 335 while (!list_empty(dispose)) { 336 fl = list_first_entry(dispose, struct file_lock, fl_list); 337 list_del_init(&fl->fl_list); 338 locks_free_lock(fl); 339 } 340 } 341 342 void locks_init_lock(struct file_lock *fl) 343 { 344 memset(fl, 0, sizeof(struct file_lock)); 345 locks_init_lock_heads(fl); 346 } 347 348 EXPORT_SYMBOL(locks_init_lock); 349 350 /* 351 * Initialize a new lock from an existing file_lock structure. 352 */ 353 void locks_copy_conflock(struct file_lock *new, struct file_lock *fl) 354 { 355 new->fl_owner = fl->fl_owner; 356 new->fl_pid = fl->fl_pid; 357 new->fl_file = NULL; 358 new->fl_flags = fl->fl_flags; 359 new->fl_type = fl->fl_type; 360 new->fl_start = fl->fl_start; 361 new->fl_end = fl->fl_end; 362 new->fl_lmops = fl->fl_lmops; 363 new->fl_ops = NULL; 364 365 if (fl->fl_lmops) { 366 if (fl->fl_lmops->lm_get_owner) 367 fl->fl_lmops->lm_get_owner(fl->fl_owner); 368 } 369 } 370 EXPORT_SYMBOL(locks_copy_conflock); 371 372 void locks_copy_lock(struct file_lock *new, struct file_lock *fl) 373 { 374 /* "new" must be a freshly-initialized lock */ 375 WARN_ON_ONCE(new->fl_ops); 376 377 locks_copy_conflock(new, fl); 378 379 new->fl_file = fl->fl_file; 380 new->fl_ops = fl->fl_ops; 381 382 if (fl->fl_ops) { 383 if (fl->fl_ops->fl_copy_lock) 384 fl->fl_ops->fl_copy_lock(new, fl); 385 } 386 } 387 388 EXPORT_SYMBOL(locks_copy_lock); 389 390 static inline int flock_translate_cmd(int cmd) { 391 if (cmd & LOCK_MAND) 392 return cmd & (LOCK_MAND | LOCK_RW); 393 switch (cmd) { 394 case LOCK_SH: 395 return F_RDLCK; 396 case LOCK_EX: 397 return F_WRLCK; 398 case LOCK_UN: 399 return F_UNLCK; 400 } 401 return -EINVAL; 402 } 403 404 /* Fill in a file_lock structure with an appropriate FLOCK lock. */ 405 static struct file_lock * 406 flock_make_lock(struct file *filp, unsigned int cmd) 407 { 408 struct file_lock *fl; 409 int type = flock_translate_cmd(cmd); 410 411 if (type < 0) 412 return ERR_PTR(type); 413 414 fl = locks_alloc_lock(); 415 if (fl == NULL) 416 return ERR_PTR(-ENOMEM); 417 418 fl->fl_file = filp; 419 fl->fl_owner = filp; 420 fl->fl_pid = current->tgid; 421 fl->fl_flags = FL_FLOCK; 422 fl->fl_type = type; 423 fl->fl_end = OFFSET_MAX; 424 425 return fl; 426 } 427 428 static int assign_type(struct file_lock *fl, long type) 429 { 430 switch (type) { 431 case F_RDLCK: 432 case F_WRLCK: 433 case F_UNLCK: 434 fl->fl_type = type; 435 break; 436 default: 437 return -EINVAL; 438 } 439 return 0; 440 } 441 442 static int flock64_to_posix_lock(struct file *filp, struct file_lock *fl, 443 struct flock64 *l) 444 { 445 switch (l->l_whence) { 446 case SEEK_SET: 447 fl->fl_start = 0; 448 break; 449 case SEEK_CUR: 450 fl->fl_start = filp->f_pos; 451 break; 452 case SEEK_END: 453 fl->fl_start = i_size_read(file_inode(filp)); 454 break; 455 default: 456 return -EINVAL; 457 } 458 if (l->l_start > OFFSET_MAX - fl->fl_start) 459 return -EOVERFLOW; 460 fl->fl_start += l->l_start; 461 if (fl->fl_start < 0) 462 return -EINVAL; 463 464 /* POSIX-1996 leaves the case l->l_len < 0 undefined; 465 POSIX-2001 defines it. */ 466 if (l->l_len > 0) { 467 if (l->l_len - 1 > OFFSET_MAX - fl->fl_start) 468 return -EOVERFLOW; 469 fl->fl_end = fl->fl_start + l->l_len - 1; 470 471 } else if (l->l_len < 0) { 472 if (fl->fl_start + l->l_len < 0) 473 return -EINVAL; 474 fl->fl_end = fl->fl_start - 1; 475 fl->fl_start += l->l_len; 476 } else 477 fl->fl_end = OFFSET_MAX; 478 479 fl->fl_owner = current->files; 480 fl->fl_pid = current->tgid; 481 fl->fl_file = filp; 482 fl->fl_flags = FL_POSIX; 483 fl->fl_ops = NULL; 484 fl->fl_lmops = NULL; 485 486 return assign_type(fl, l->l_type); 487 } 488 489 /* Verify a "struct flock" and copy it to a "struct file_lock" as a POSIX 490 * style lock. 491 */ 492 static int flock_to_posix_lock(struct file *filp, struct file_lock *fl, 493 struct flock *l) 494 { 495 struct flock64 ll = { 496 .l_type = l->l_type, 497 .l_whence = l->l_whence, 498 .l_start = l->l_start, 499 .l_len = l->l_len, 500 }; 501 502 return flock64_to_posix_lock(filp, fl, &ll); 503 } 504 505 /* default lease lock manager operations */ 506 static bool 507 lease_break_callback(struct file_lock *fl) 508 { 509 kill_fasync(&fl->fl_fasync, SIGIO, POLL_MSG); 510 return false; 511 } 512 513 static void 514 lease_setup(struct file_lock *fl, void **priv) 515 { 516 struct file *filp = fl->fl_file; 517 struct fasync_struct *fa = *priv; 518 519 /* 520 * fasync_insert_entry() returns the old entry if any. If there was no 521 * old entry, then it used "priv" and inserted it into the fasync list. 522 * Clear the pointer to indicate that it shouldn't be freed. 523 */ 524 if (!fasync_insert_entry(fa->fa_fd, filp, &fl->fl_fasync, fa)) 525 *priv = NULL; 526 527 __f_setown(filp, task_pid(current), PIDTYPE_PID, 0); 528 } 529 530 static const struct lock_manager_operations lease_manager_ops = { 531 .lm_break = lease_break_callback, 532 .lm_change = lease_modify, 533 .lm_setup = lease_setup, 534 }; 535 536 /* 537 * Initialize a lease, use the default lock manager operations 538 */ 539 static int lease_init(struct file *filp, long type, struct file_lock *fl) 540 { 541 if (assign_type(fl, type) != 0) 542 return -EINVAL; 543 544 fl->fl_owner = filp; 545 fl->fl_pid = current->tgid; 546 547 fl->fl_file = filp; 548 fl->fl_flags = FL_LEASE; 549 fl->fl_start = 0; 550 fl->fl_end = OFFSET_MAX; 551 fl->fl_ops = NULL; 552 fl->fl_lmops = &lease_manager_ops; 553 return 0; 554 } 555 556 /* Allocate a file_lock initialised to this type of lease */ 557 static struct file_lock *lease_alloc(struct file *filp, long type) 558 { 559 struct file_lock *fl = locks_alloc_lock(); 560 int error = -ENOMEM; 561 562 if (fl == NULL) 563 return ERR_PTR(error); 564 565 error = lease_init(filp, type, fl); 566 if (error) { 567 locks_free_lock(fl); 568 return ERR_PTR(error); 569 } 570 return fl; 571 } 572 573 /* Check if two locks overlap each other. 574 */ 575 static inline int locks_overlap(struct file_lock *fl1, struct file_lock *fl2) 576 { 577 return ((fl1->fl_end >= fl2->fl_start) && 578 (fl2->fl_end >= fl1->fl_start)); 579 } 580 581 /* 582 * Check whether two locks have the same owner. 583 */ 584 static int posix_same_owner(struct file_lock *fl1, struct file_lock *fl2) 585 { 586 if (fl1->fl_lmops && fl1->fl_lmops->lm_compare_owner) 587 return fl2->fl_lmops == fl1->fl_lmops && 588 fl1->fl_lmops->lm_compare_owner(fl1, fl2); 589 return fl1->fl_owner == fl2->fl_owner; 590 } 591 592 /* Must be called with the flc_lock held! */ 593 static void locks_insert_global_locks(struct file_lock *fl) 594 { 595 struct file_lock_list_struct *fll = this_cpu_ptr(&file_lock_list); 596 597 percpu_rwsem_assert_held(&file_rwsem); 598 599 spin_lock(&fll->lock); 600 fl->fl_link_cpu = smp_processor_id(); 601 hlist_add_head(&fl->fl_link, &fll->hlist); 602 spin_unlock(&fll->lock); 603 } 604 605 /* Must be called with the flc_lock held! */ 606 static void locks_delete_global_locks(struct file_lock *fl) 607 { 608 struct file_lock_list_struct *fll; 609 610 percpu_rwsem_assert_held(&file_rwsem); 611 612 /* 613 * Avoid taking lock if already unhashed. This is safe since this check 614 * is done while holding the flc_lock, and new insertions into the list 615 * also require that it be held. 616 */ 617 if (hlist_unhashed(&fl->fl_link)) 618 return; 619 620 fll = per_cpu_ptr(&file_lock_list, fl->fl_link_cpu); 621 spin_lock(&fll->lock); 622 hlist_del_init(&fl->fl_link); 623 spin_unlock(&fll->lock); 624 } 625 626 static unsigned long 627 posix_owner_key(struct file_lock *fl) 628 { 629 if (fl->fl_lmops && fl->fl_lmops->lm_owner_key) 630 return fl->fl_lmops->lm_owner_key(fl); 631 return (unsigned long)fl->fl_owner; 632 } 633 634 static void locks_insert_global_blocked(struct file_lock *waiter) 635 { 636 lockdep_assert_held(&blocked_lock_lock); 637 638 hash_add(blocked_hash, &waiter->fl_link, posix_owner_key(waiter)); 639 } 640 641 static void locks_delete_global_blocked(struct file_lock *waiter) 642 { 643 lockdep_assert_held(&blocked_lock_lock); 644 645 hash_del(&waiter->fl_link); 646 } 647 648 /* Remove waiter from blocker's block list. 649 * When blocker ends up pointing to itself then the list is empty. 650 * 651 * Must be called with blocked_lock_lock held. 652 */ 653 static void __locks_delete_block(struct file_lock *waiter) 654 { 655 locks_delete_global_blocked(waiter); 656 list_del_init(&waiter->fl_block); 657 waiter->fl_next = NULL; 658 } 659 660 static void locks_delete_block(struct file_lock *waiter) 661 { 662 spin_lock(&blocked_lock_lock); 663 __locks_delete_block(waiter); 664 spin_unlock(&blocked_lock_lock); 665 } 666 667 /* Insert waiter into blocker's block list. 668 * We use a circular list so that processes can be easily woken up in 669 * the order they blocked. The documentation doesn't require this but 670 * it seems like the reasonable thing to do. 671 * 672 * Must be called with both the flc_lock and blocked_lock_lock held. The 673 * fl_block list itself is protected by the blocked_lock_lock, but by ensuring 674 * that the flc_lock is also held on insertions we can avoid taking the 675 * blocked_lock_lock in some cases when we see that the fl_block list is empty. 676 */ 677 static void __locks_insert_block(struct file_lock *blocker, 678 struct file_lock *waiter) 679 { 680 BUG_ON(!list_empty(&waiter->fl_block)); 681 waiter->fl_next = blocker; 682 list_add_tail(&waiter->fl_block, &blocker->fl_block); 683 if (IS_POSIX(blocker) && !IS_OFDLCK(blocker)) 684 locks_insert_global_blocked(waiter); 685 } 686 687 /* Must be called with flc_lock held. */ 688 static void locks_insert_block(struct file_lock *blocker, 689 struct file_lock *waiter) 690 { 691 spin_lock(&blocked_lock_lock); 692 __locks_insert_block(blocker, waiter); 693 spin_unlock(&blocked_lock_lock); 694 } 695 696 /* 697 * Wake up processes blocked waiting for blocker. 698 * 699 * Must be called with the inode->flc_lock held! 700 */ 701 static void locks_wake_up_blocks(struct file_lock *blocker) 702 { 703 /* 704 * Avoid taking global lock if list is empty. This is safe since new 705 * blocked requests are only added to the list under the flc_lock, and 706 * the flc_lock is always held here. Note that removal from the fl_block 707 * list does not require the flc_lock, so we must recheck list_empty() 708 * after acquiring the blocked_lock_lock. 709 */ 710 if (list_empty(&blocker->fl_block)) 711 return; 712 713 spin_lock(&blocked_lock_lock); 714 while (!list_empty(&blocker->fl_block)) { 715 struct file_lock *waiter; 716 717 waiter = list_first_entry(&blocker->fl_block, 718 struct file_lock, fl_block); 719 __locks_delete_block(waiter); 720 if (waiter->fl_lmops && waiter->fl_lmops->lm_notify) 721 waiter->fl_lmops->lm_notify(waiter); 722 else 723 wake_up(&waiter->fl_wait); 724 } 725 spin_unlock(&blocked_lock_lock); 726 } 727 728 static void 729 locks_insert_lock_ctx(struct file_lock *fl, struct list_head *before) 730 { 731 fl->fl_nspid = get_pid(task_tgid(current)); 732 list_add_tail(&fl->fl_list, before); 733 locks_insert_global_locks(fl); 734 } 735 736 static void 737 locks_unlink_lock_ctx(struct file_lock *fl) 738 { 739 locks_delete_global_locks(fl); 740 list_del_init(&fl->fl_list); 741 if (fl->fl_nspid) { 742 put_pid(fl->fl_nspid); 743 fl->fl_nspid = NULL; 744 } 745 locks_wake_up_blocks(fl); 746 } 747 748 static void 749 locks_delete_lock_ctx(struct file_lock *fl, struct list_head *dispose) 750 { 751 locks_unlink_lock_ctx(fl); 752 if (dispose) 753 list_add(&fl->fl_list, dispose); 754 else 755 locks_free_lock(fl); 756 } 757 758 /* Determine if lock sys_fl blocks lock caller_fl. Common functionality 759 * checks for shared/exclusive status of overlapping locks. 760 */ 761 static int locks_conflict(struct file_lock *caller_fl, struct file_lock *sys_fl) 762 { 763 if (sys_fl->fl_type == F_WRLCK) 764 return 1; 765 if (caller_fl->fl_type == F_WRLCK) 766 return 1; 767 return 0; 768 } 769 770 /* Determine if lock sys_fl blocks lock caller_fl. POSIX specific 771 * checking before calling the locks_conflict(). 772 */ 773 static int posix_locks_conflict(struct file_lock *caller_fl, struct file_lock *sys_fl) 774 { 775 /* POSIX locks owned by the same process do not conflict with 776 * each other. 777 */ 778 if (posix_same_owner(caller_fl, sys_fl)) 779 return (0); 780 781 /* Check whether they overlap */ 782 if (!locks_overlap(caller_fl, sys_fl)) 783 return 0; 784 785 return (locks_conflict(caller_fl, sys_fl)); 786 } 787 788 /* Determine if lock sys_fl blocks lock caller_fl. FLOCK specific 789 * checking before calling the locks_conflict(). 790 */ 791 static int flock_locks_conflict(struct file_lock *caller_fl, struct file_lock *sys_fl) 792 { 793 /* FLOCK locks referring to the same filp do not conflict with 794 * each other. 795 */ 796 if (caller_fl->fl_file == sys_fl->fl_file) 797 return (0); 798 if ((caller_fl->fl_type & LOCK_MAND) || (sys_fl->fl_type & LOCK_MAND)) 799 return 0; 800 801 return (locks_conflict(caller_fl, sys_fl)); 802 } 803 804 void 805 posix_test_lock(struct file *filp, struct file_lock *fl) 806 { 807 struct file_lock *cfl; 808 struct file_lock_context *ctx; 809 struct inode *inode = file_inode(filp); 810 811 ctx = smp_load_acquire(&inode->i_flctx); 812 if (!ctx || list_empty_careful(&ctx->flc_posix)) { 813 fl->fl_type = F_UNLCK; 814 return; 815 } 816 817 spin_lock(&ctx->flc_lock); 818 list_for_each_entry(cfl, &ctx->flc_posix, fl_list) { 819 if (posix_locks_conflict(fl, cfl)) { 820 locks_copy_conflock(fl, cfl); 821 if (cfl->fl_nspid) 822 fl->fl_pid = pid_vnr(cfl->fl_nspid); 823 goto out; 824 } 825 } 826 fl->fl_type = F_UNLCK; 827 out: 828 spin_unlock(&ctx->flc_lock); 829 return; 830 } 831 EXPORT_SYMBOL(posix_test_lock); 832 833 /* 834 * Deadlock detection: 835 * 836 * We attempt to detect deadlocks that are due purely to posix file 837 * locks. 838 * 839 * We assume that a task can be waiting for at most one lock at a time. 840 * So for any acquired lock, the process holding that lock may be 841 * waiting on at most one other lock. That lock in turns may be held by 842 * someone waiting for at most one other lock. Given a requested lock 843 * caller_fl which is about to wait for a conflicting lock block_fl, we 844 * follow this chain of waiters to ensure we are not about to create a 845 * cycle. 846 * 847 * Since we do this before we ever put a process to sleep on a lock, we 848 * are ensured that there is never a cycle; that is what guarantees that 849 * the while() loop in posix_locks_deadlock() eventually completes. 850 * 851 * Note: the above assumption may not be true when handling lock 852 * requests from a broken NFS client. It may also fail in the presence 853 * of tasks (such as posix threads) sharing the same open file table. 854 * To handle those cases, we just bail out after a few iterations. 855 * 856 * For FL_OFDLCK locks, the owner is the filp, not the files_struct. 857 * Because the owner is not even nominally tied to a thread of 858 * execution, the deadlock detection below can't reasonably work well. Just 859 * skip it for those. 860 * 861 * In principle, we could do a more limited deadlock detection on FL_OFDLCK 862 * locks that just checks for the case where two tasks are attempting to 863 * upgrade from read to write locks on the same inode. 864 */ 865 866 #define MAX_DEADLK_ITERATIONS 10 867 868 /* Find a lock that the owner of the given block_fl is blocking on. */ 869 static struct file_lock *what_owner_is_waiting_for(struct file_lock *block_fl) 870 { 871 struct file_lock *fl; 872 873 hash_for_each_possible(blocked_hash, fl, fl_link, posix_owner_key(block_fl)) { 874 if (posix_same_owner(fl, block_fl)) 875 return fl->fl_next; 876 } 877 return NULL; 878 } 879 880 /* Must be called with the blocked_lock_lock held! */ 881 static int posix_locks_deadlock(struct file_lock *caller_fl, 882 struct file_lock *block_fl) 883 { 884 int i = 0; 885 886 lockdep_assert_held(&blocked_lock_lock); 887 888 /* 889 * This deadlock detector can't reasonably detect deadlocks with 890 * FL_OFDLCK locks, since they aren't owned by a process, per-se. 891 */ 892 if (IS_OFDLCK(caller_fl)) 893 return 0; 894 895 while ((block_fl = what_owner_is_waiting_for(block_fl))) { 896 if (i++ > MAX_DEADLK_ITERATIONS) 897 return 0; 898 if (posix_same_owner(caller_fl, block_fl)) 899 return 1; 900 } 901 return 0; 902 } 903 904 /* Try to create a FLOCK lock on filp. We always insert new FLOCK locks 905 * after any leases, but before any posix locks. 906 * 907 * Note that if called with an FL_EXISTS argument, the caller may determine 908 * whether or not a lock was successfully freed by testing the return 909 * value for -ENOENT. 910 */ 911 static int flock_lock_inode(struct inode *inode, struct file_lock *request) 912 { 913 struct file_lock *new_fl = NULL; 914 struct file_lock *fl; 915 struct file_lock_context *ctx; 916 int error = 0; 917 bool found = false; 918 LIST_HEAD(dispose); 919 920 ctx = locks_get_lock_context(inode, request->fl_type); 921 if (!ctx) { 922 if (request->fl_type != F_UNLCK) 923 return -ENOMEM; 924 return (request->fl_flags & FL_EXISTS) ? -ENOENT : 0; 925 } 926 927 if (!(request->fl_flags & FL_ACCESS) && (request->fl_type != F_UNLCK)) { 928 new_fl = locks_alloc_lock(); 929 if (!new_fl) 930 return -ENOMEM; 931 } 932 933 percpu_down_read_preempt_disable(&file_rwsem); 934 spin_lock(&ctx->flc_lock); 935 if (request->fl_flags & FL_ACCESS) 936 goto find_conflict; 937 938 list_for_each_entry(fl, &ctx->flc_flock, fl_list) { 939 if (request->fl_file != fl->fl_file) 940 continue; 941 if (request->fl_type == fl->fl_type) 942 goto out; 943 found = true; 944 locks_delete_lock_ctx(fl, &dispose); 945 break; 946 } 947 948 if (request->fl_type == F_UNLCK) { 949 if ((request->fl_flags & FL_EXISTS) && !found) 950 error = -ENOENT; 951 goto out; 952 } 953 954 find_conflict: 955 list_for_each_entry(fl, &ctx->flc_flock, fl_list) { 956 if (!flock_locks_conflict(request, fl)) 957 continue; 958 error = -EAGAIN; 959 if (!(request->fl_flags & FL_SLEEP)) 960 goto out; 961 error = FILE_LOCK_DEFERRED; 962 locks_insert_block(fl, request); 963 goto out; 964 } 965 if (request->fl_flags & FL_ACCESS) 966 goto out; 967 locks_copy_lock(new_fl, request); 968 locks_insert_lock_ctx(new_fl, &ctx->flc_flock); 969 new_fl = NULL; 970 error = 0; 971 972 out: 973 spin_unlock(&ctx->flc_lock); 974 percpu_up_read_preempt_enable(&file_rwsem); 975 if (new_fl) 976 locks_free_lock(new_fl); 977 locks_dispose_list(&dispose); 978 return error; 979 } 980 981 static int posix_lock_inode(struct inode *inode, struct file_lock *request, 982 struct file_lock *conflock) 983 { 984 struct file_lock *fl, *tmp; 985 struct file_lock *new_fl = NULL; 986 struct file_lock *new_fl2 = NULL; 987 struct file_lock *left = NULL; 988 struct file_lock *right = NULL; 989 struct file_lock_context *ctx; 990 int error; 991 bool added = false; 992 LIST_HEAD(dispose); 993 994 ctx = locks_get_lock_context(inode, request->fl_type); 995 if (!ctx) 996 return (request->fl_type == F_UNLCK) ? 0 : -ENOMEM; 997 998 /* 999 * We may need two file_lock structures for this operation, 1000 * so we get them in advance to avoid races. 1001 * 1002 * In some cases we can be sure, that no new locks will be needed 1003 */ 1004 if (!(request->fl_flags & FL_ACCESS) && 1005 (request->fl_type != F_UNLCK || 1006 request->fl_start != 0 || request->fl_end != OFFSET_MAX)) { 1007 new_fl = locks_alloc_lock(); 1008 new_fl2 = locks_alloc_lock(); 1009 } 1010 1011 percpu_down_read_preempt_disable(&file_rwsem); 1012 spin_lock(&ctx->flc_lock); 1013 /* 1014 * New lock request. Walk all POSIX locks and look for conflicts. If 1015 * there are any, either return error or put the request on the 1016 * blocker's list of waiters and the global blocked_hash. 1017 */ 1018 if (request->fl_type != F_UNLCK) { 1019 list_for_each_entry(fl, &ctx->flc_posix, fl_list) { 1020 if (!posix_locks_conflict(request, fl)) 1021 continue; 1022 if (conflock) 1023 locks_copy_conflock(conflock, fl); 1024 error = -EAGAIN; 1025 if (!(request->fl_flags & FL_SLEEP)) 1026 goto out; 1027 /* 1028 * Deadlock detection and insertion into the blocked 1029 * locks list must be done while holding the same lock! 1030 */ 1031 error = -EDEADLK; 1032 spin_lock(&blocked_lock_lock); 1033 if (likely(!posix_locks_deadlock(request, fl))) { 1034 error = FILE_LOCK_DEFERRED; 1035 __locks_insert_block(fl, request); 1036 } 1037 spin_unlock(&blocked_lock_lock); 1038 goto out; 1039 } 1040 } 1041 1042 /* If we're just looking for a conflict, we're done. */ 1043 error = 0; 1044 if (request->fl_flags & FL_ACCESS) 1045 goto out; 1046 1047 /* Find the first old lock with the same owner as the new lock */ 1048 list_for_each_entry(fl, &ctx->flc_posix, fl_list) { 1049 if (posix_same_owner(request, fl)) 1050 break; 1051 } 1052 1053 /* Process locks with this owner. */ 1054 list_for_each_entry_safe_from(fl, tmp, &ctx->flc_posix, fl_list) { 1055 if (!posix_same_owner(request, fl)) 1056 break; 1057 1058 /* Detect adjacent or overlapping regions (if same lock type) */ 1059 if (request->fl_type == fl->fl_type) { 1060 /* In all comparisons of start vs end, use 1061 * "start - 1" rather than "end + 1". If end 1062 * is OFFSET_MAX, end + 1 will become negative. 1063 */ 1064 if (fl->fl_end < request->fl_start - 1) 1065 continue; 1066 /* If the next lock in the list has entirely bigger 1067 * addresses than the new one, insert the lock here. 1068 */ 1069 if (fl->fl_start - 1 > request->fl_end) 1070 break; 1071 1072 /* If we come here, the new and old lock are of the 1073 * same type and adjacent or overlapping. Make one 1074 * lock yielding from the lower start address of both 1075 * locks to the higher end address. 1076 */ 1077 if (fl->fl_start > request->fl_start) 1078 fl->fl_start = request->fl_start; 1079 else 1080 request->fl_start = fl->fl_start; 1081 if (fl->fl_end < request->fl_end) 1082 fl->fl_end = request->fl_end; 1083 else 1084 request->fl_end = fl->fl_end; 1085 if (added) { 1086 locks_delete_lock_ctx(fl, &dispose); 1087 continue; 1088 } 1089 request = fl; 1090 added = true; 1091 } else { 1092 /* Processing for different lock types is a bit 1093 * more complex. 1094 */ 1095 if (fl->fl_end < request->fl_start) 1096 continue; 1097 if (fl->fl_start > request->fl_end) 1098 break; 1099 if (request->fl_type == F_UNLCK) 1100 added = true; 1101 if (fl->fl_start < request->fl_start) 1102 left = fl; 1103 /* If the next lock in the list has a higher end 1104 * address than the new one, insert the new one here. 1105 */ 1106 if (fl->fl_end > request->fl_end) { 1107 right = fl; 1108 break; 1109 } 1110 if (fl->fl_start >= request->fl_start) { 1111 /* The new lock completely replaces an old 1112 * one (This may happen several times). 1113 */ 1114 if (added) { 1115 locks_delete_lock_ctx(fl, &dispose); 1116 continue; 1117 } 1118 /* 1119 * Replace the old lock with new_fl, and 1120 * remove the old one. It's safe to do the 1121 * insert here since we know that we won't be 1122 * using new_fl later, and that the lock is 1123 * just replacing an existing lock. 1124 */ 1125 error = -ENOLCK; 1126 if (!new_fl) 1127 goto out; 1128 locks_copy_lock(new_fl, request); 1129 request = new_fl; 1130 new_fl = NULL; 1131 locks_insert_lock_ctx(request, &fl->fl_list); 1132 locks_delete_lock_ctx(fl, &dispose); 1133 added = true; 1134 } 1135 } 1136 } 1137 1138 /* 1139 * The above code only modifies existing locks in case of merging or 1140 * replacing. If new lock(s) need to be inserted all modifications are 1141 * done below this, so it's safe yet to bail out. 1142 */ 1143 error = -ENOLCK; /* "no luck" */ 1144 if (right && left == right && !new_fl2) 1145 goto out; 1146 1147 error = 0; 1148 if (!added) { 1149 if (request->fl_type == F_UNLCK) { 1150 if (request->fl_flags & FL_EXISTS) 1151 error = -ENOENT; 1152 goto out; 1153 } 1154 1155 if (!new_fl) { 1156 error = -ENOLCK; 1157 goto out; 1158 } 1159 locks_copy_lock(new_fl, request); 1160 locks_insert_lock_ctx(new_fl, &fl->fl_list); 1161 fl = new_fl; 1162 new_fl = NULL; 1163 } 1164 if (right) { 1165 if (left == right) { 1166 /* The new lock breaks the old one in two pieces, 1167 * so we have to use the second new lock. 1168 */ 1169 left = new_fl2; 1170 new_fl2 = NULL; 1171 locks_copy_lock(left, right); 1172 locks_insert_lock_ctx(left, &fl->fl_list); 1173 } 1174 right->fl_start = request->fl_end + 1; 1175 locks_wake_up_blocks(right); 1176 } 1177 if (left) { 1178 left->fl_end = request->fl_start - 1; 1179 locks_wake_up_blocks(left); 1180 } 1181 out: 1182 spin_unlock(&ctx->flc_lock); 1183 percpu_up_read_preempt_enable(&file_rwsem); 1184 /* 1185 * Free any unused locks. 1186 */ 1187 if (new_fl) 1188 locks_free_lock(new_fl); 1189 if (new_fl2) 1190 locks_free_lock(new_fl2); 1191 locks_dispose_list(&dispose); 1192 trace_posix_lock_inode(inode, request, error); 1193 1194 return error; 1195 } 1196 1197 /** 1198 * posix_lock_file - Apply a POSIX-style lock to a file 1199 * @filp: The file to apply the lock to 1200 * @fl: The lock to be applied 1201 * @conflock: Place to return a copy of the conflicting lock, if found. 1202 * 1203 * Add a POSIX style lock to a file. 1204 * We merge adjacent & overlapping locks whenever possible. 1205 * POSIX locks are sorted by owner task, then by starting address 1206 * 1207 * Note that if called with an FL_EXISTS argument, the caller may determine 1208 * whether or not a lock was successfully freed by testing the return 1209 * value for -ENOENT. 1210 */ 1211 int posix_lock_file(struct file *filp, struct file_lock *fl, 1212 struct file_lock *conflock) 1213 { 1214 return posix_lock_inode(file_inode(filp), fl, conflock); 1215 } 1216 EXPORT_SYMBOL(posix_lock_file); 1217 1218 /** 1219 * posix_lock_inode_wait - Apply a POSIX-style lock to a file 1220 * @inode: inode of file to which lock request should be applied 1221 * @fl: The lock to be applied 1222 * 1223 * Apply a POSIX style lock request to an inode. 1224 */ 1225 static int posix_lock_inode_wait(struct inode *inode, struct file_lock *fl) 1226 { 1227 int error; 1228 might_sleep (); 1229 for (;;) { 1230 error = posix_lock_inode(inode, fl, NULL); 1231 if (error != FILE_LOCK_DEFERRED) 1232 break; 1233 error = wait_event_interruptible(fl->fl_wait, !fl->fl_next); 1234 if (!error) 1235 continue; 1236 1237 locks_delete_block(fl); 1238 break; 1239 } 1240 return error; 1241 } 1242 1243 #ifdef CONFIG_MANDATORY_FILE_LOCKING 1244 /** 1245 * locks_mandatory_locked - Check for an active lock 1246 * @file: the file to check 1247 * 1248 * Searches the inode's list of locks to find any POSIX locks which conflict. 1249 * This function is called from locks_verify_locked() only. 1250 */ 1251 int locks_mandatory_locked(struct file *file) 1252 { 1253 int ret; 1254 struct inode *inode = file_inode(file); 1255 struct file_lock_context *ctx; 1256 struct file_lock *fl; 1257 1258 ctx = smp_load_acquire(&inode->i_flctx); 1259 if (!ctx || list_empty_careful(&ctx->flc_posix)) 1260 return 0; 1261 1262 /* 1263 * Search the lock list for this inode for any POSIX locks. 1264 */ 1265 spin_lock(&ctx->flc_lock); 1266 ret = 0; 1267 list_for_each_entry(fl, &ctx->flc_posix, fl_list) { 1268 if (fl->fl_owner != current->files && 1269 fl->fl_owner != file) { 1270 ret = -EAGAIN; 1271 break; 1272 } 1273 } 1274 spin_unlock(&ctx->flc_lock); 1275 return ret; 1276 } 1277 1278 /** 1279 * locks_mandatory_area - Check for a conflicting lock 1280 * @inode: the file to check 1281 * @filp: how the file was opened (if it was) 1282 * @start: first byte in the file to check 1283 * @end: lastbyte in the file to check 1284 * @type: %F_WRLCK for a write lock, else %F_RDLCK 1285 * 1286 * Searches the inode's list of locks to find any POSIX locks which conflict. 1287 */ 1288 int locks_mandatory_area(struct inode *inode, struct file *filp, loff_t start, 1289 loff_t end, unsigned char type) 1290 { 1291 struct file_lock fl; 1292 int error; 1293 bool sleep = false; 1294 1295 locks_init_lock(&fl); 1296 fl.fl_pid = current->tgid; 1297 fl.fl_file = filp; 1298 fl.fl_flags = FL_POSIX | FL_ACCESS; 1299 if (filp && !(filp->f_flags & O_NONBLOCK)) 1300 sleep = true; 1301 fl.fl_type = type; 1302 fl.fl_start = start; 1303 fl.fl_end = end; 1304 1305 for (;;) { 1306 if (filp) { 1307 fl.fl_owner = filp; 1308 fl.fl_flags &= ~FL_SLEEP; 1309 error = posix_lock_inode(inode, &fl, NULL); 1310 if (!error) 1311 break; 1312 } 1313 1314 if (sleep) 1315 fl.fl_flags |= FL_SLEEP; 1316 fl.fl_owner = current->files; 1317 error = posix_lock_inode(inode, &fl, NULL); 1318 if (error != FILE_LOCK_DEFERRED) 1319 break; 1320 error = wait_event_interruptible(fl.fl_wait, !fl.fl_next); 1321 if (!error) { 1322 /* 1323 * If we've been sleeping someone might have 1324 * changed the permissions behind our back. 1325 */ 1326 if (__mandatory_lock(inode)) 1327 continue; 1328 } 1329 1330 locks_delete_block(&fl); 1331 break; 1332 } 1333 1334 return error; 1335 } 1336 1337 EXPORT_SYMBOL(locks_mandatory_area); 1338 #endif /* CONFIG_MANDATORY_FILE_LOCKING */ 1339 1340 static void lease_clear_pending(struct file_lock *fl, int arg) 1341 { 1342 switch (arg) { 1343 case F_UNLCK: 1344 fl->fl_flags &= ~FL_UNLOCK_PENDING; 1345 /* fall through: */ 1346 case F_RDLCK: 1347 fl->fl_flags &= ~FL_DOWNGRADE_PENDING; 1348 } 1349 } 1350 1351 /* We already had a lease on this file; just change its type */ 1352 int lease_modify(struct file_lock *fl, int arg, struct list_head *dispose) 1353 { 1354 int error = assign_type(fl, arg); 1355 1356 if (error) 1357 return error; 1358 lease_clear_pending(fl, arg); 1359 locks_wake_up_blocks(fl); 1360 if (arg == F_UNLCK) { 1361 struct file *filp = fl->fl_file; 1362 1363 f_delown(filp); 1364 filp->f_owner.signum = 0; 1365 fasync_helper(0, fl->fl_file, 0, &fl->fl_fasync); 1366 if (fl->fl_fasync != NULL) { 1367 printk(KERN_ERR "locks_delete_lock: fasync == %p\n", fl->fl_fasync); 1368 fl->fl_fasync = NULL; 1369 } 1370 locks_delete_lock_ctx(fl, dispose); 1371 } 1372 return 0; 1373 } 1374 EXPORT_SYMBOL(lease_modify); 1375 1376 static bool past_time(unsigned long then) 1377 { 1378 if (!then) 1379 /* 0 is a special value meaning "this never expires": */ 1380 return false; 1381 return time_after(jiffies, then); 1382 } 1383 1384 static void time_out_leases(struct inode *inode, struct list_head *dispose) 1385 { 1386 struct file_lock_context *ctx = inode->i_flctx; 1387 struct file_lock *fl, *tmp; 1388 1389 lockdep_assert_held(&ctx->flc_lock); 1390 1391 list_for_each_entry_safe(fl, tmp, &ctx->flc_lease, fl_list) { 1392 trace_time_out_leases(inode, fl); 1393 if (past_time(fl->fl_downgrade_time)) 1394 lease_modify(fl, F_RDLCK, dispose); 1395 if (past_time(fl->fl_break_time)) 1396 lease_modify(fl, F_UNLCK, dispose); 1397 } 1398 } 1399 1400 static bool leases_conflict(struct file_lock *lease, struct file_lock *breaker) 1401 { 1402 if ((breaker->fl_flags & FL_LAYOUT) != (lease->fl_flags & FL_LAYOUT)) 1403 return false; 1404 if ((breaker->fl_flags & FL_DELEG) && (lease->fl_flags & FL_LEASE)) 1405 return false; 1406 return locks_conflict(breaker, lease); 1407 } 1408 1409 static bool 1410 any_leases_conflict(struct inode *inode, struct file_lock *breaker) 1411 { 1412 struct file_lock_context *ctx = inode->i_flctx; 1413 struct file_lock *fl; 1414 1415 lockdep_assert_held(&ctx->flc_lock); 1416 1417 list_for_each_entry(fl, &ctx->flc_lease, fl_list) { 1418 if (leases_conflict(fl, breaker)) 1419 return true; 1420 } 1421 return false; 1422 } 1423 1424 /** 1425 * __break_lease - revoke all outstanding leases on file 1426 * @inode: the inode of the file to return 1427 * @mode: O_RDONLY: break only write leases; O_WRONLY or O_RDWR: 1428 * break all leases 1429 * @type: FL_LEASE: break leases and delegations; FL_DELEG: break 1430 * only delegations 1431 * 1432 * break_lease (inlined for speed) has checked there already is at least 1433 * some kind of lock (maybe a lease) on this file. Leases are broken on 1434 * a call to open() or truncate(). This function can sleep unless you 1435 * specified %O_NONBLOCK to your open(). 1436 */ 1437 int __break_lease(struct inode *inode, unsigned int mode, unsigned int type) 1438 { 1439 int error = 0; 1440 struct file_lock_context *ctx; 1441 struct file_lock *new_fl, *fl, *tmp; 1442 unsigned long break_time; 1443 int want_write = (mode & O_ACCMODE) != O_RDONLY; 1444 LIST_HEAD(dispose); 1445 1446 new_fl = lease_alloc(NULL, want_write ? F_WRLCK : F_RDLCK); 1447 if (IS_ERR(new_fl)) 1448 return PTR_ERR(new_fl); 1449 new_fl->fl_flags = type; 1450 1451 /* typically we will check that ctx is non-NULL before calling */ 1452 ctx = smp_load_acquire(&inode->i_flctx); 1453 if (!ctx) { 1454 WARN_ON_ONCE(1); 1455 return error; 1456 } 1457 1458 percpu_down_read_preempt_disable(&file_rwsem); 1459 spin_lock(&ctx->flc_lock); 1460 1461 time_out_leases(inode, &dispose); 1462 1463 if (!any_leases_conflict(inode, new_fl)) 1464 goto out; 1465 1466 break_time = 0; 1467 if (lease_break_time > 0) { 1468 break_time = jiffies + lease_break_time * HZ; 1469 if (break_time == 0) 1470 break_time++; /* so that 0 means no break time */ 1471 } 1472 1473 list_for_each_entry_safe(fl, tmp, &ctx->flc_lease, fl_list) { 1474 if (!leases_conflict(fl, new_fl)) 1475 continue; 1476 if (want_write) { 1477 if (fl->fl_flags & FL_UNLOCK_PENDING) 1478 continue; 1479 fl->fl_flags |= FL_UNLOCK_PENDING; 1480 fl->fl_break_time = break_time; 1481 } else { 1482 if (lease_breaking(fl)) 1483 continue; 1484 fl->fl_flags |= FL_DOWNGRADE_PENDING; 1485 fl->fl_downgrade_time = break_time; 1486 } 1487 if (fl->fl_lmops->lm_break(fl)) 1488 locks_delete_lock_ctx(fl, &dispose); 1489 } 1490 1491 if (list_empty(&ctx->flc_lease)) 1492 goto out; 1493 1494 if (mode & O_NONBLOCK) { 1495 trace_break_lease_noblock(inode, new_fl); 1496 error = -EWOULDBLOCK; 1497 goto out; 1498 } 1499 1500 restart: 1501 fl = list_first_entry(&ctx->flc_lease, struct file_lock, fl_list); 1502 break_time = fl->fl_break_time; 1503 if (break_time != 0) 1504 break_time -= jiffies; 1505 if (break_time == 0) 1506 break_time++; 1507 locks_insert_block(fl, new_fl); 1508 trace_break_lease_block(inode, new_fl); 1509 spin_unlock(&ctx->flc_lock); 1510 percpu_up_read_preempt_enable(&file_rwsem); 1511 1512 locks_dispose_list(&dispose); 1513 error = wait_event_interruptible_timeout(new_fl->fl_wait, 1514 !new_fl->fl_next, break_time); 1515 1516 percpu_down_read_preempt_disable(&file_rwsem); 1517 spin_lock(&ctx->flc_lock); 1518 trace_break_lease_unblock(inode, new_fl); 1519 locks_delete_block(new_fl); 1520 if (error >= 0) { 1521 /* 1522 * Wait for the next conflicting lease that has not been 1523 * broken yet 1524 */ 1525 if (error == 0) 1526 time_out_leases(inode, &dispose); 1527 if (any_leases_conflict(inode, new_fl)) 1528 goto restart; 1529 error = 0; 1530 } 1531 out: 1532 spin_unlock(&ctx->flc_lock); 1533 percpu_up_read_preempt_enable(&file_rwsem); 1534 locks_dispose_list(&dispose); 1535 locks_free_lock(new_fl); 1536 return error; 1537 } 1538 1539 EXPORT_SYMBOL(__break_lease); 1540 1541 /** 1542 * lease_get_mtime - get the last modified time of an inode 1543 * @inode: the inode 1544 * @time: pointer to a timespec which will contain the last modified time 1545 * 1546 * This is to force NFS clients to flush their caches for files with 1547 * exclusive leases. The justification is that if someone has an 1548 * exclusive lease, then they could be modifying it. 1549 */ 1550 void lease_get_mtime(struct inode *inode, struct timespec *time) 1551 { 1552 bool has_lease = false; 1553 struct file_lock_context *ctx; 1554 struct file_lock *fl; 1555 1556 ctx = smp_load_acquire(&inode->i_flctx); 1557 if (ctx && !list_empty_careful(&ctx->flc_lease)) { 1558 spin_lock(&ctx->flc_lock); 1559 fl = list_first_entry_or_null(&ctx->flc_lease, 1560 struct file_lock, fl_list); 1561 if (fl && (fl->fl_type == F_WRLCK)) 1562 has_lease = true; 1563 spin_unlock(&ctx->flc_lock); 1564 } 1565 1566 if (has_lease) 1567 *time = current_fs_time(inode->i_sb); 1568 else 1569 *time = inode->i_mtime; 1570 } 1571 1572 EXPORT_SYMBOL(lease_get_mtime); 1573 1574 /** 1575 * fcntl_getlease - Enquire what lease is currently active 1576 * @filp: the file 1577 * 1578 * The value returned by this function will be one of 1579 * (if no lease break is pending): 1580 * 1581 * %F_RDLCK to indicate a shared lease is held. 1582 * 1583 * %F_WRLCK to indicate an exclusive lease is held. 1584 * 1585 * %F_UNLCK to indicate no lease is held. 1586 * 1587 * (if a lease break is pending): 1588 * 1589 * %F_RDLCK to indicate an exclusive lease needs to be 1590 * changed to a shared lease (or removed). 1591 * 1592 * %F_UNLCK to indicate the lease needs to be removed. 1593 * 1594 * XXX: sfr & willy disagree over whether F_INPROGRESS 1595 * should be returned to userspace. 1596 */ 1597 int fcntl_getlease(struct file *filp) 1598 { 1599 struct file_lock *fl; 1600 struct inode *inode = file_inode(filp); 1601 struct file_lock_context *ctx; 1602 int type = F_UNLCK; 1603 LIST_HEAD(dispose); 1604 1605 ctx = smp_load_acquire(&inode->i_flctx); 1606 if (ctx && !list_empty_careful(&ctx->flc_lease)) { 1607 spin_lock(&ctx->flc_lock); 1608 time_out_leases(file_inode(filp), &dispose); 1609 list_for_each_entry(fl, &ctx->flc_lease, fl_list) { 1610 if (fl->fl_file != filp) 1611 continue; 1612 type = target_leasetype(fl); 1613 break; 1614 } 1615 spin_unlock(&ctx->flc_lock); 1616 locks_dispose_list(&dispose); 1617 } 1618 return type; 1619 } 1620 1621 /** 1622 * check_conflicting_open - see if the given dentry points to a file that has 1623 * an existing open that would conflict with the 1624 * desired lease. 1625 * @dentry: dentry to check 1626 * @arg: type of lease that we're trying to acquire 1627 * @flags: current lock flags 1628 * 1629 * Check to see if there's an existing open fd on this file that would 1630 * conflict with the lease we're trying to set. 1631 */ 1632 static int 1633 check_conflicting_open(const struct dentry *dentry, const long arg, int flags) 1634 { 1635 int ret = 0; 1636 struct inode *inode = dentry->d_inode; 1637 1638 if (flags & FL_LAYOUT) 1639 return 0; 1640 1641 if ((arg == F_RDLCK) && (atomic_read(&inode->i_writecount) > 0)) 1642 return -EAGAIN; 1643 1644 if ((arg == F_WRLCK) && ((d_count(dentry) > 1) || 1645 (atomic_read(&inode->i_count) > 1))) 1646 ret = -EAGAIN; 1647 1648 return ret; 1649 } 1650 1651 static int 1652 generic_add_lease(struct file *filp, long arg, struct file_lock **flp, void **priv) 1653 { 1654 struct file_lock *fl, *my_fl = NULL, *lease; 1655 struct dentry *dentry = filp->f_path.dentry; 1656 struct inode *inode = file_inode(filp); 1657 struct file_lock_context *ctx; 1658 bool is_deleg = (*flp)->fl_flags & FL_DELEG; 1659 int error; 1660 LIST_HEAD(dispose); 1661 1662 lease = *flp; 1663 trace_generic_add_lease(inode, lease); 1664 1665 /* Note that arg is never F_UNLCK here */ 1666 ctx = locks_get_lock_context(inode, arg); 1667 if (!ctx) 1668 return -ENOMEM; 1669 1670 /* 1671 * In the delegation case we need mutual exclusion with 1672 * a number of operations that take the i_mutex. We trylock 1673 * because delegations are an optional optimization, and if 1674 * there's some chance of a conflict--we'd rather not 1675 * bother, maybe that's a sign this just isn't a good file to 1676 * hand out a delegation on. 1677 */ 1678 if (is_deleg && !inode_trylock(inode)) 1679 return -EAGAIN; 1680 1681 if (is_deleg && arg == F_WRLCK) { 1682 /* Write delegations are not currently supported: */ 1683 inode_unlock(inode); 1684 WARN_ON_ONCE(1); 1685 return -EINVAL; 1686 } 1687 1688 percpu_down_read_preempt_disable(&file_rwsem); 1689 spin_lock(&ctx->flc_lock); 1690 time_out_leases(inode, &dispose); 1691 error = check_conflicting_open(dentry, arg, lease->fl_flags); 1692 if (error) 1693 goto out; 1694 1695 /* 1696 * At this point, we know that if there is an exclusive 1697 * lease on this file, then we hold it on this filp 1698 * (otherwise our open of this file would have blocked). 1699 * And if we are trying to acquire an exclusive lease, 1700 * then the file is not open by anyone (including us) 1701 * except for this filp. 1702 */ 1703 error = -EAGAIN; 1704 list_for_each_entry(fl, &ctx->flc_lease, fl_list) { 1705 if (fl->fl_file == filp && 1706 fl->fl_owner == lease->fl_owner) { 1707 my_fl = fl; 1708 continue; 1709 } 1710 1711 /* 1712 * No exclusive leases if someone else has a lease on 1713 * this file: 1714 */ 1715 if (arg == F_WRLCK) 1716 goto out; 1717 /* 1718 * Modifying our existing lease is OK, but no getting a 1719 * new lease if someone else is opening for write: 1720 */ 1721 if (fl->fl_flags & FL_UNLOCK_PENDING) 1722 goto out; 1723 } 1724 1725 if (my_fl != NULL) { 1726 lease = my_fl; 1727 error = lease->fl_lmops->lm_change(lease, arg, &dispose); 1728 if (error) 1729 goto out; 1730 goto out_setup; 1731 } 1732 1733 error = -EINVAL; 1734 if (!leases_enable) 1735 goto out; 1736 1737 locks_insert_lock_ctx(lease, &ctx->flc_lease); 1738 /* 1739 * The check in break_lease() is lockless. It's possible for another 1740 * open to race in after we did the earlier check for a conflicting 1741 * open but before the lease was inserted. Check again for a 1742 * conflicting open and cancel the lease if there is one. 1743 * 1744 * We also add a barrier here to ensure that the insertion of the lock 1745 * precedes these checks. 1746 */ 1747 smp_mb(); 1748 error = check_conflicting_open(dentry, arg, lease->fl_flags); 1749 if (error) { 1750 locks_unlink_lock_ctx(lease); 1751 goto out; 1752 } 1753 1754 out_setup: 1755 if (lease->fl_lmops->lm_setup) 1756 lease->fl_lmops->lm_setup(lease, priv); 1757 out: 1758 spin_unlock(&ctx->flc_lock); 1759 percpu_up_read_preempt_enable(&file_rwsem); 1760 locks_dispose_list(&dispose); 1761 if (is_deleg) 1762 inode_unlock(inode); 1763 if (!error && !my_fl) 1764 *flp = NULL; 1765 return error; 1766 } 1767 1768 static int generic_delete_lease(struct file *filp, void *owner) 1769 { 1770 int error = -EAGAIN; 1771 struct file_lock *fl, *victim = NULL; 1772 struct inode *inode = file_inode(filp); 1773 struct file_lock_context *ctx; 1774 LIST_HEAD(dispose); 1775 1776 ctx = smp_load_acquire(&inode->i_flctx); 1777 if (!ctx) { 1778 trace_generic_delete_lease(inode, NULL); 1779 return error; 1780 } 1781 1782 percpu_down_read_preempt_disable(&file_rwsem); 1783 spin_lock(&ctx->flc_lock); 1784 list_for_each_entry(fl, &ctx->flc_lease, fl_list) { 1785 if (fl->fl_file == filp && 1786 fl->fl_owner == owner) { 1787 victim = fl; 1788 break; 1789 } 1790 } 1791 trace_generic_delete_lease(inode, victim); 1792 if (victim) 1793 error = fl->fl_lmops->lm_change(victim, F_UNLCK, &dispose); 1794 spin_unlock(&ctx->flc_lock); 1795 percpu_up_read_preempt_enable(&file_rwsem); 1796 locks_dispose_list(&dispose); 1797 return error; 1798 } 1799 1800 /** 1801 * generic_setlease - sets a lease on an open file 1802 * @filp: file pointer 1803 * @arg: type of lease to obtain 1804 * @flp: input - file_lock to use, output - file_lock inserted 1805 * @priv: private data for lm_setup (may be NULL if lm_setup 1806 * doesn't require it) 1807 * 1808 * The (input) flp->fl_lmops->lm_break function is required 1809 * by break_lease(). 1810 */ 1811 int generic_setlease(struct file *filp, long arg, struct file_lock **flp, 1812 void **priv) 1813 { 1814 struct inode *inode = file_inode(filp); 1815 int error; 1816 1817 if ((!uid_eq(current_fsuid(), inode->i_uid)) && !capable(CAP_LEASE)) 1818 return -EACCES; 1819 if (!S_ISREG(inode->i_mode)) 1820 return -EINVAL; 1821 error = security_file_lock(filp, arg); 1822 if (error) 1823 return error; 1824 1825 switch (arg) { 1826 case F_UNLCK: 1827 return generic_delete_lease(filp, *priv); 1828 case F_RDLCK: 1829 case F_WRLCK: 1830 if (!(*flp)->fl_lmops->lm_break) { 1831 WARN_ON_ONCE(1); 1832 return -ENOLCK; 1833 } 1834 1835 return generic_add_lease(filp, arg, flp, priv); 1836 default: 1837 return -EINVAL; 1838 } 1839 } 1840 EXPORT_SYMBOL(generic_setlease); 1841 1842 /** 1843 * vfs_setlease - sets a lease on an open file 1844 * @filp: file pointer 1845 * @arg: type of lease to obtain 1846 * @lease: file_lock to use when adding a lease 1847 * @priv: private info for lm_setup when adding a lease (may be 1848 * NULL if lm_setup doesn't require it) 1849 * 1850 * Call this to establish a lease on the file. The "lease" argument is not 1851 * used for F_UNLCK requests and may be NULL. For commands that set or alter 1852 * an existing lease, the (*lease)->fl_lmops->lm_break operation must be set; 1853 * if not, this function will return -ENOLCK (and generate a scary-looking 1854 * stack trace). 1855 * 1856 * The "priv" pointer is passed directly to the lm_setup function as-is. It 1857 * may be NULL if the lm_setup operation doesn't require it. 1858 */ 1859 int 1860 vfs_setlease(struct file *filp, long arg, struct file_lock **lease, void **priv) 1861 { 1862 if (filp->f_op->setlease) 1863 return filp->f_op->setlease(filp, arg, lease, priv); 1864 else 1865 return generic_setlease(filp, arg, lease, priv); 1866 } 1867 EXPORT_SYMBOL_GPL(vfs_setlease); 1868 1869 static int do_fcntl_add_lease(unsigned int fd, struct file *filp, long arg) 1870 { 1871 struct file_lock *fl; 1872 struct fasync_struct *new; 1873 int error; 1874 1875 fl = lease_alloc(filp, arg); 1876 if (IS_ERR(fl)) 1877 return PTR_ERR(fl); 1878 1879 new = fasync_alloc(); 1880 if (!new) { 1881 locks_free_lock(fl); 1882 return -ENOMEM; 1883 } 1884 new->fa_fd = fd; 1885 1886 error = vfs_setlease(filp, arg, &fl, (void **)&new); 1887 if (fl) 1888 locks_free_lock(fl); 1889 if (new) 1890 fasync_free(new); 1891 return error; 1892 } 1893 1894 /** 1895 * fcntl_setlease - sets a lease on an open file 1896 * @fd: open file descriptor 1897 * @filp: file pointer 1898 * @arg: type of lease to obtain 1899 * 1900 * Call this fcntl to establish a lease on the file. 1901 * Note that you also need to call %F_SETSIG to 1902 * receive a signal when the lease is broken. 1903 */ 1904 int fcntl_setlease(unsigned int fd, struct file *filp, long arg) 1905 { 1906 if (arg == F_UNLCK) 1907 return vfs_setlease(filp, F_UNLCK, NULL, (void **)&filp); 1908 return do_fcntl_add_lease(fd, filp, arg); 1909 } 1910 1911 /** 1912 * flock_lock_inode_wait - Apply a FLOCK-style lock to a file 1913 * @inode: inode of the file to apply to 1914 * @fl: The lock to be applied 1915 * 1916 * Apply a FLOCK style lock request to an inode. 1917 */ 1918 static int flock_lock_inode_wait(struct inode *inode, struct file_lock *fl) 1919 { 1920 int error; 1921 might_sleep(); 1922 for (;;) { 1923 error = flock_lock_inode(inode, fl); 1924 if (error != FILE_LOCK_DEFERRED) 1925 break; 1926 error = wait_event_interruptible(fl->fl_wait, !fl->fl_next); 1927 if (!error) 1928 continue; 1929 1930 locks_delete_block(fl); 1931 break; 1932 } 1933 return error; 1934 } 1935 1936 /** 1937 * locks_lock_inode_wait - Apply a lock to an inode 1938 * @inode: inode of the file to apply to 1939 * @fl: The lock to be applied 1940 * 1941 * Apply a POSIX or FLOCK style lock request to an inode. 1942 */ 1943 int locks_lock_inode_wait(struct inode *inode, struct file_lock *fl) 1944 { 1945 int res = 0; 1946 switch (fl->fl_flags & (FL_POSIX|FL_FLOCK)) { 1947 case FL_POSIX: 1948 res = posix_lock_inode_wait(inode, fl); 1949 break; 1950 case FL_FLOCK: 1951 res = flock_lock_inode_wait(inode, fl); 1952 break; 1953 default: 1954 BUG(); 1955 } 1956 return res; 1957 } 1958 EXPORT_SYMBOL(locks_lock_inode_wait); 1959 1960 /** 1961 * sys_flock: - flock() system call. 1962 * @fd: the file descriptor to lock. 1963 * @cmd: the type of lock to apply. 1964 * 1965 * Apply a %FL_FLOCK style lock to an open file descriptor. 1966 * The @cmd can be one of 1967 * 1968 * %LOCK_SH -- a shared lock. 1969 * 1970 * %LOCK_EX -- an exclusive lock. 1971 * 1972 * %LOCK_UN -- remove an existing lock. 1973 * 1974 * %LOCK_MAND -- a `mandatory' flock. This exists to emulate Windows Share Modes. 1975 * 1976 * %LOCK_MAND can be combined with %LOCK_READ or %LOCK_WRITE to allow other 1977 * processes read and write access respectively. 1978 */ 1979 SYSCALL_DEFINE2(flock, unsigned int, fd, unsigned int, cmd) 1980 { 1981 struct fd f = fdget(fd); 1982 struct file_lock *lock; 1983 int can_sleep, unlock; 1984 int error; 1985 1986 error = -EBADF; 1987 if (!f.file) 1988 goto out; 1989 1990 can_sleep = !(cmd & LOCK_NB); 1991 cmd &= ~LOCK_NB; 1992 unlock = (cmd == LOCK_UN); 1993 1994 if (!unlock && !(cmd & LOCK_MAND) && 1995 !(f.file->f_mode & (FMODE_READ|FMODE_WRITE))) 1996 goto out_putf; 1997 1998 lock = flock_make_lock(f.file, cmd); 1999 if (IS_ERR(lock)) { 2000 error = PTR_ERR(lock); 2001 goto out_putf; 2002 } 2003 2004 if (can_sleep) 2005 lock->fl_flags |= FL_SLEEP; 2006 2007 error = security_file_lock(f.file, lock->fl_type); 2008 if (error) 2009 goto out_free; 2010 2011 if (f.file->f_op->flock) 2012 error = f.file->f_op->flock(f.file, 2013 (can_sleep) ? F_SETLKW : F_SETLK, 2014 lock); 2015 else 2016 error = locks_lock_file_wait(f.file, lock); 2017 2018 out_free: 2019 locks_free_lock(lock); 2020 2021 out_putf: 2022 fdput(f); 2023 out: 2024 return error; 2025 } 2026 2027 /** 2028 * vfs_test_lock - test file byte range lock 2029 * @filp: The file to test lock for 2030 * @fl: The lock to test; also used to hold result 2031 * 2032 * Returns -ERRNO on failure. Indicates presence of conflicting lock by 2033 * setting conf->fl_type to something other than F_UNLCK. 2034 */ 2035 int vfs_test_lock(struct file *filp, struct file_lock *fl) 2036 { 2037 if (filp->f_op->lock) 2038 return filp->f_op->lock(filp, F_GETLK, fl); 2039 posix_test_lock(filp, fl); 2040 return 0; 2041 } 2042 EXPORT_SYMBOL_GPL(vfs_test_lock); 2043 2044 static int posix_lock_to_flock(struct flock *flock, struct file_lock *fl) 2045 { 2046 flock->l_pid = IS_OFDLCK(fl) ? -1 : fl->fl_pid; 2047 #if BITS_PER_LONG == 32 2048 /* 2049 * Make sure we can represent the posix lock via 2050 * legacy 32bit flock. 2051 */ 2052 if (fl->fl_start > OFFT_OFFSET_MAX) 2053 return -EOVERFLOW; 2054 if (fl->fl_end != OFFSET_MAX && fl->fl_end > OFFT_OFFSET_MAX) 2055 return -EOVERFLOW; 2056 #endif 2057 flock->l_start = fl->fl_start; 2058 flock->l_len = fl->fl_end == OFFSET_MAX ? 0 : 2059 fl->fl_end - fl->fl_start + 1; 2060 flock->l_whence = 0; 2061 flock->l_type = fl->fl_type; 2062 return 0; 2063 } 2064 2065 #if BITS_PER_LONG == 32 2066 static void posix_lock_to_flock64(struct flock64 *flock, struct file_lock *fl) 2067 { 2068 flock->l_pid = IS_OFDLCK(fl) ? -1 : fl->fl_pid; 2069 flock->l_start = fl->fl_start; 2070 flock->l_len = fl->fl_end == OFFSET_MAX ? 0 : 2071 fl->fl_end - fl->fl_start + 1; 2072 flock->l_whence = 0; 2073 flock->l_type = fl->fl_type; 2074 } 2075 #endif 2076 2077 /* Report the first existing lock that would conflict with l. 2078 * This implements the F_GETLK command of fcntl(). 2079 */ 2080 int fcntl_getlk(struct file *filp, unsigned int cmd, struct flock __user *l) 2081 { 2082 struct file_lock file_lock; 2083 struct flock flock; 2084 int error; 2085 2086 error = -EFAULT; 2087 if (copy_from_user(&flock, l, sizeof(flock))) 2088 goto out; 2089 error = -EINVAL; 2090 if ((flock.l_type != F_RDLCK) && (flock.l_type != F_WRLCK)) 2091 goto out; 2092 2093 error = flock_to_posix_lock(filp, &file_lock, &flock); 2094 if (error) 2095 goto out; 2096 2097 if (cmd == F_OFD_GETLK) { 2098 error = -EINVAL; 2099 if (flock.l_pid != 0) 2100 goto out; 2101 2102 cmd = F_GETLK; 2103 file_lock.fl_flags |= FL_OFDLCK; 2104 file_lock.fl_owner = filp; 2105 } 2106 2107 error = vfs_test_lock(filp, &file_lock); 2108 if (error) 2109 goto out; 2110 2111 flock.l_type = file_lock.fl_type; 2112 if (file_lock.fl_type != F_UNLCK) { 2113 error = posix_lock_to_flock(&flock, &file_lock); 2114 if (error) 2115 goto rel_priv; 2116 } 2117 error = -EFAULT; 2118 if (!copy_to_user(l, &flock, sizeof(flock))) 2119 error = 0; 2120 rel_priv: 2121 locks_release_private(&file_lock); 2122 out: 2123 return error; 2124 } 2125 2126 /** 2127 * vfs_lock_file - file byte range lock 2128 * @filp: The file to apply the lock to 2129 * @cmd: type of locking operation (F_SETLK, F_GETLK, etc.) 2130 * @fl: The lock to be applied 2131 * @conf: Place to return a copy of the conflicting lock, if found. 2132 * 2133 * A caller that doesn't care about the conflicting lock may pass NULL 2134 * as the final argument. 2135 * 2136 * If the filesystem defines a private ->lock() method, then @conf will 2137 * be left unchanged; so a caller that cares should initialize it to 2138 * some acceptable default. 2139 * 2140 * To avoid blocking kernel daemons, such as lockd, that need to acquire POSIX 2141 * locks, the ->lock() interface may return asynchronously, before the lock has 2142 * been granted or denied by the underlying filesystem, if (and only if) 2143 * lm_grant is set. Callers expecting ->lock() to return asynchronously 2144 * will only use F_SETLK, not F_SETLKW; they will set FL_SLEEP if (and only if) 2145 * the request is for a blocking lock. When ->lock() does return asynchronously, 2146 * it must return FILE_LOCK_DEFERRED, and call ->lm_grant() when the lock 2147 * request completes. 2148 * If the request is for non-blocking lock the file system should return 2149 * FILE_LOCK_DEFERRED then try to get the lock and call the callback routine 2150 * with the result. If the request timed out the callback routine will return a 2151 * nonzero return code and the file system should release the lock. The file 2152 * system is also responsible to keep a corresponding posix lock when it 2153 * grants a lock so the VFS can find out which locks are locally held and do 2154 * the correct lock cleanup when required. 2155 * The underlying filesystem must not drop the kernel lock or call 2156 * ->lm_grant() before returning to the caller with a FILE_LOCK_DEFERRED 2157 * return code. 2158 */ 2159 int vfs_lock_file(struct file *filp, unsigned int cmd, struct file_lock *fl, struct file_lock *conf) 2160 { 2161 if (filp->f_op->lock) 2162 return filp->f_op->lock(filp, cmd, fl); 2163 else 2164 return posix_lock_file(filp, fl, conf); 2165 } 2166 EXPORT_SYMBOL_GPL(vfs_lock_file); 2167 2168 static int do_lock_file_wait(struct file *filp, unsigned int cmd, 2169 struct file_lock *fl) 2170 { 2171 int error; 2172 2173 error = security_file_lock(filp, fl->fl_type); 2174 if (error) 2175 return error; 2176 2177 for (;;) { 2178 error = vfs_lock_file(filp, cmd, fl, NULL); 2179 if (error != FILE_LOCK_DEFERRED) 2180 break; 2181 error = wait_event_interruptible(fl->fl_wait, !fl->fl_next); 2182 if (!error) 2183 continue; 2184 2185 locks_delete_block(fl); 2186 break; 2187 } 2188 2189 return error; 2190 } 2191 2192 /* Ensure that fl->fl_file has compatible f_mode for F_SETLK calls */ 2193 static int 2194 check_fmode_for_setlk(struct file_lock *fl) 2195 { 2196 switch (fl->fl_type) { 2197 case F_RDLCK: 2198 if (!(fl->fl_file->f_mode & FMODE_READ)) 2199 return -EBADF; 2200 break; 2201 case F_WRLCK: 2202 if (!(fl->fl_file->f_mode & FMODE_WRITE)) 2203 return -EBADF; 2204 } 2205 return 0; 2206 } 2207 2208 /* Apply the lock described by l to an open file descriptor. 2209 * This implements both the F_SETLK and F_SETLKW commands of fcntl(). 2210 */ 2211 int fcntl_setlk(unsigned int fd, struct file *filp, unsigned int cmd, 2212 struct flock __user *l) 2213 { 2214 struct file_lock *file_lock = locks_alloc_lock(); 2215 struct flock flock; 2216 struct inode *inode; 2217 struct file *f; 2218 int error; 2219 2220 if (file_lock == NULL) 2221 return -ENOLCK; 2222 2223 inode = file_inode(filp); 2224 2225 /* 2226 * This might block, so we do it before checking the inode. 2227 */ 2228 error = -EFAULT; 2229 if (copy_from_user(&flock, l, sizeof(flock))) 2230 goto out; 2231 2232 /* Don't allow mandatory locks on files that may be memory mapped 2233 * and shared. 2234 */ 2235 if (mandatory_lock(inode) && mapping_writably_mapped(filp->f_mapping)) { 2236 error = -EAGAIN; 2237 goto out; 2238 } 2239 2240 error = flock_to_posix_lock(filp, file_lock, &flock); 2241 if (error) 2242 goto out; 2243 2244 error = check_fmode_for_setlk(file_lock); 2245 if (error) 2246 goto out; 2247 2248 /* 2249 * If the cmd is requesting file-private locks, then set the 2250 * FL_OFDLCK flag and override the owner. 2251 */ 2252 switch (cmd) { 2253 case F_OFD_SETLK: 2254 error = -EINVAL; 2255 if (flock.l_pid != 0) 2256 goto out; 2257 2258 cmd = F_SETLK; 2259 file_lock->fl_flags |= FL_OFDLCK; 2260 file_lock->fl_owner = filp; 2261 break; 2262 case F_OFD_SETLKW: 2263 error = -EINVAL; 2264 if (flock.l_pid != 0) 2265 goto out; 2266 2267 cmd = F_SETLKW; 2268 file_lock->fl_flags |= FL_OFDLCK; 2269 file_lock->fl_owner = filp; 2270 /* Fallthrough */ 2271 case F_SETLKW: 2272 file_lock->fl_flags |= FL_SLEEP; 2273 } 2274 2275 error = do_lock_file_wait(filp, cmd, file_lock); 2276 2277 /* 2278 * Attempt to detect a close/fcntl race and recover by releasing the 2279 * lock that was just acquired. There is no need to do that when we're 2280 * unlocking though, or for OFD locks. 2281 */ 2282 if (!error && file_lock->fl_type != F_UNLCK && 2283 !(file_lock->fl_flags & FL_OFDLCK)) { 2284 /* 2285 * We need that spin_lock here - it prevents reordering between 2286 * update of i_flctx->flc_posix and check for it done in 2287 * close(). rcu_read_lock() wouldn't do. 2288 */ 2289 spin_lock(¤t->files->file_lock); 2290 f = fcheck(fd); 2291 spin_unlock(¤t->files->file_lock); 2292 if (f != filp) { 2293 file_lock->fl_type = F_UNLCK; 2294 error = do_lock_file_wait(filp, cmd, file_lock); 2295 WARN_ON_ONCE(error); 2296 error = -EBADF; 2297 } 2298 } 2299 out: 2300 trace_fcntl_setlk(inode, file_lock, error); 2301 locks_free_lock(file_lock); 2302 return error; 2303 } 2304 2305 #if BITS_PER_LONG == 32 2306 /* Report the first existing lock that would conflict with l. 2307 * This implements the F_GETLK command of fcntl(). 2308 */ 2309 int fcntl_getlk64(struct file *filp, unsigned int cmd, struct flock64 __user *l) 2310 { 2311 struct file_lock file_lock; 2312 struct flock64 flock; 2313 int error; 2314 2315 error = -EFAULT; 2316 if (copy_from_user(&flock, l, sizeof(flock))) 2317 goto out; 2318 error = -EINVAL; 2319 if ((flock.l_type != F_RDLCK) && (flock.l_type != F_WRLCK)) 2320 goto out; 2321 2322 error = flock64_to_posix_lock(filp, &file_lock, &flock); 2323 if (error) 2324 goto out; 2325 2326 if (cmd == F_OFD_GETLK) { 2327 error = -EINVAL; 2328 if (flock.l_pid != 0) 2329 goto out; 2330 2331 cmd = F_GETLK64; 2332 file_lock.fl_flags |= FL_OFDLCK; 2333 file_lock.fl_owner = filp; 2334 } 2335 2336 error = vfs_test_lock(filp, &file_lock); 2337 if (error) 2338 goto out; 2339 2340 flock.l_type = file_lock.fl_type; 2341 if (file_lock.fl_type != F_UNLCK) 2342 posix_lock_to_flock64(&flock, &file_lock); 2343 2344 error = -EFAULT; 2345 if (!copy_to_user(l, &flock, sizeof(flock))) 2346 error = 0; 2347 2348 locks_release_private(&file_lock); 2349 out: 2350 return error; 2351 } 2352 2353 /* Apply the lock described by l to an open file descriptor. 2354 * This implements both the F_SETLK and F_SETLKW commands of fcntl(). 2355 */ 2356 int fcntl_setlk64(unsigned int fd, struct file *filp, unsigned int cmd, 2357 struct flock64 __user *l) 2358 { 2359 struct file_lock *file_lock = locks_alloc_lock(); 2360 struct flock64 flock; 2361 struct inode *inode; 2362 struct file *f; 2363 int error; 2364 2365 if (file_lock == NULL) 2366 return -ENOLCK; 2367 2368 /* 2369 * This might block, so we do it before checking the inode. 2370 */ 2371 error = -EFAULT; 2372 if (copy_from_user(&flock, l, sizeof(flock))) 2373 goto out; 2374 2375 inode = file_inode(filp); 2376 2377 /* Don't allow mandatory locks on files that may be memory mapped 2378 * and shared. 2379 */ 2380 if (mandatory_lock(inode) && mapping_writably_mapped(filp->f_mapping)) { 2381 error = -EAGAIN; 2382 goto out; 2383 } 2384 2385 error = flock64_to_posix_lock(filp, file_lock, &flock); 2386 if (error) 2387 goto out; 2388 2389 error = check_fmode_for_setlk(file_lock); 2390 if (error) 2391 goto out; 2392 2393 /* 2394 * If the cmd is requesting file-private locks, then set the 2395 * FL_OFDLCK flag and override the owner. 2396 */ 2397 switch (cmd) { 2398 case F_OFD_SETLK: 2399 error = -EINVAL; 2400 if (flock.l_pid != 0) 2401 goto out; 2402 2403 cmd = F_SETLK64; 2404 file_lock->fl_flags |= FL_OFDLCK; 2405 file_lock->fl_owner = filp; 2406 break; 2407 case F_OFD_SETLKW: 2408 error = -EINVAL; 2409 if (flock.l_pid != 0) 2410 goto out; 2411 2412 cmd = F_SETLKW64; 2413 file_lock->fl_flags |= FL_OFDLCK; 2414 file_lock->fl_owner = filp; 2415 /* Fallthrough */ 2416 case F_SETLKW64: 2417 file_lock->fl_flags |= FL_SLEEP; 2418 } 2419 2420 error = do_lock_file_wait(filp, cmd, file_lock); 2421 2422 /* 2423 * Attempt to detect a close/fcntl race and recover by releasing the 2424 * lock that was just acquired. There is no need to do that when we're 2425 * unlocking though, or for OFD locks. 2426 */ 2427 if (!error && file_lock->fl_type != F_UNLCK && 2428 !(file_lock->fl_flags & FL_OFDLCK)) { 2429 /* 2430 * We need that spin_lock here - it prevents reordering between 2431 * update of i_flctx->flc_posix and check for it done in 2432 * close(). rcu_read_lock() wouldn't do. 2433 */ 2434 spin_lock(¤t->files->file_lock); 2435 f = fcheck(fd); 2436 spin_unlock(¤t->files->file_lock); 2437 if (f != filp) { 2438 file_lock->fl_type = F_UNLCK; 2439 error = do_lock_file_wait(filp, cmd, file_lock); 2440 WARN_ON_ONCE(error); 2441 error = -EBADF; 2442 } 2443 } 2444 out: 2445 locks_free_lock(file_lock); 2446 return error; 2447 } 2448 #endif /* BITS_PER_LONG == 32 */ 2449 2450 /* 2451 * This function is called when the file is being removed 2452 * from the task's fd array. POSIX locks belonging to this task 2453 * are deleted at this time. 2454 */ 2455 void locks_remove_posix(struct file *filp, fl_owner_t owner) 2456 { 2457 int error; 2458 struct file_lock lock; 2459 struct file_lock_context *ctx; 2460 2461 /* 2462 * If there are no locks held on this file, we don't need to call 2463 * posix_lock_file(). Another process could be setting a lock on this 2464 * file at the same time, but we wouldn't remove that lock anyway. 2465 */ 2466 ctx = smp_load_acquire(&file_inode(filp)->i_flctx); 2467 if (!ctx || list_empty(&ctx->flc_posix)) 2468 return; 2469 2470 lock.fl_type = F_UNLCK; 2471 lock.fl_flags = FL_POSIX | FL_CLOSE; 2472 lock.fl_start = 0; 2473 lock.fl_end = OFFSET_MAX; 2474 lock.fl_owner = owner; 2475 lock.fl_pid = current->tgid; 2476 lock.fl_file = filp; 2477 lock.fl_ops = NULL; 2478 lock.fl_lmops = NULL; 2479 2480 error = vfs_lock_file(filp, F_SETLK, &lock, NULL); 2481 2482 if (lock.fl_ops && lock.fl_ops->fl_release_private) 2483 lock.fl_ops->fl_release_private(&lock); 2484 trace_locks_remove_posix(file_inode(filp), &lock, error); 2485 } 2486 2487 EXPORT_SYMBOL(locks_remove_posix); 2488 2489 /* The i_flctx must be valid when calling into here */ 2490 static void 2491 locks_remove_flock(struct file *filp, struct file_lock_context *flctx) 2492 { 2493 struct file_lock fl = { 2494 .fl_owner = filp, 2495 .fl_pid = current->tgid, 2496 .fl_file = filp, 2497 .fl_flags = FL_FLOCK, 2498 .fl_type = F_UNLCK, 2499 .fl_end = OFFSET_MAX, 2500 }; 2501 struct inode *inode = file_inode(filp); 2502 2503 if (list_empty(&flctx->flc_flock)) 2504 return; 2505 2506 if (filp->f_op->flock) 2507 filp->f_op->flock(filp, F_SETLKW, &fl); 2508 else 2509 flock_lock_inode(inode, &fl); 2510 2511 if (fl.fl_ops && fl.fl_ops->fl_release_private) 2512 fl.fl_ops->fl_release_private(&fl); 2513 } 2514 2515 /* The i_flctx must be valid when calling into here */ 2516 static void 2517 locks_remove_lease(struct file *filp, struct file_lock_context *ctx) 2518 { 2519 struct file_lock *fl, *tmp; 2520 LIST_HEAD(dispose); 2521 2522 if (list_empty(&ctx->flc_lease)) 2523 return; 2524 2525 spin_lock(&ctx->flc_lock); 2526 list_for_each_entry_safe(fl, tmp, &ctx->flc_lease, fl_list) 2527 if (filp == fl->fl_file) 2528 lease_modify(fl, F_UNLCK, &dispose); 2529 spin_unlock(&ctx->flc_lock); 2530 locks_dispose_list(&dispose); 2531 } 2532 2533 /* 2534 * This function is called on the last close of an open file. 2535 */ 2536 void locks_remove_file(struct file *filp) 2537 { 2538 struct file_lock_context *ctx; 2539 2540 ctx = smp_load_acquire(&file_inode(filp)->i_flctx); 2541 if (!ctx) 2542 return; 2543 2544 /* remove any OFD locks */ 2545 locks_remove_posix(filp, filp); 2546 2547 /* remove flock locks */ 2548 locks_remove_flock(filp, ctx); 2549 2550 /* remove any leases */ 2551 locks_remove_lease(filp, ctx); 2552 } 2553 2554 /** 2555 * posix_unblock_lock - stop waiting for a file lock 2556 * @waiter: the lock which was waiting 2557 * 2558 * lockd needs to block waiting for locks. 2559 */ 2560 int 2561 posix_unblock_lock(struct file_lock *waiter) 2562 { 2563 int status = 0; 2564 2565 spin_lock(&blocked_lock_lock); 2566 if (waiter->fl_next) 2567 __locks_delete_block(waiter); 2568 else 2569 status = -ENOENT; 2570 spin_unlock(&blocked_lock_lock); 2571 return status; 2572 } 2573 EXPORT_SYMBOL(posix_unblock_lock); 2574 2575 /** 2576 * vfs_cancel_lock - file byte range unblock lock 2577 * @filp: The file to apply the unblock to 2578 * @fl: The lock to be unblocked 2579 * 2580 * Used by lock managers to cancel blocked requests 2581 */ 2582 int vfs_cancel_lock(struct file *filp, struct file_lock *fl) 2583 { 2584 if (filp->f_op->lock) 2585 return filp->f_op->lock(filp, F_CANCELLK, fl); 2586 return 0; 2587 } 2588 2589 EXPORT_SYMBOL_GPL(vfs_cancel_lock); 2590 2591 #ifdef CONFIG_PROC_FS 2592 #include <linux/proc_fs.h> 2593 #include <linux/seq_file.h> 2594 2595 struct locks_iterator { 2596 int li_cpu; 2597 loff_t li_pos; 2598 }; 2599 2600 static void lock_get_status(struct seq_file *f, struct file_lock *fl, 2601 loff_t id, char *pfx) 2602 { 2603 struct inode *inode = NULL; 2604 unsigned int fl_pid; 2605 2606 if (fl->fl_nspid) { 2607 struct pid_namespace *proc_pidns = file_inode(f->file)->i_sb->s_fs_info; 2608 2609 /* Don't let fl_pid change based on who is reading the file */ 2610 fl_pid = pid_nr_ns(fl->fl_nspid, proc_pidns); 2611 2612 /* 2613 * If there isn't a fl_pid don't display who is waiting on 2614 * the lock if we are called from locks_show, or if we are 2615 * called from __show_fd_info - skip lock entirely 2616 */ 2617 if (fl_pid == 0) 2618 return; 2619 } else 2620 fl_pid = fl->fl_pid; 2621 2622 if (fl->fl_file != NULL) 2623 inode = file_inode(fl->fl_file); 2624 2625 seq_printf(f, "%lld:%s ", id, pfx); 2626 if (IS_POSIX(fl)) { 2627 if (fl->fl_flags & FL_ACCESS) 2628 seq_puts(f, "ACCESS"); 2629 else if (IS_OFDLCK(fl)) 2630 seq_puts(f, "OFDLCK"); 2631 else 2632 seq_puts(f, "POSIX "); 2633 2634 seq_printf(f, " %s ", 2635 (inode == NULL) ? "*NOINODE*" : 2636 mandatory_lock(inode) ? "MANDATORY" : "ADVISORY "); 2637 } else if (IS_FLOCK(fl)) { 2638 if (fl->fl_type & LOCK_MAND) { 2639 seq_puts(f, "FLOCK MSNFS "); 2640 } else { 2641 seq_puts(f, "FLOCK ADVISORY "); 2642 } 2643 } else if (IS_LEASE(fl)) { 2644 if (fl->fl_flags & FL_DELEG) 2645 seq_puts(f, "DELEG "); 2646 else 2647 seq_puts(f, "LEASE "); 2648 2649 if (lease_breaking(fl)) 2650 seq_puts(f, "BREAKING "); 2651 else if (fl->fl_file) 2652 seq_puts(f, "ACTIVE "); 2653 else 2654 seq_puts(f, "BREAKER "); 2655 } else { 2656 seq_puts(f, "UNKNOWN UNKNOWN "); 2657 } 2658 if (fl->fl_type & LOCK_MAND) { 2659 seq_printf(f, "%s ", 2660 (fl->fl_type & LOCK_READ) 2661 ? (fl->fl_type & LOCK_WRITE) ? "RW " : "READ " 2662 : (fl->fl_type & LOCK_WRITE) ? "WRITE" : "NONE "); 2663 } else { 2664 seq_printf(f, "%s ", 2665 (lease_breaking(fl)) 2666 ? (fl->fl_type == F_UNLCK) ? "UNLCK" : "READ " 2667 : (fl->fl_type == F_WRLCK) ? "WRITE" : "READ "); 2668 } 2669 if (inode) { 2670 /* userspace relies on this representation of dev_t */ 2671 seq_printf(f, "%d %02x:%02x:%ld ", fl_pid, 2672 MAJOR(inode->i_sb->s_dev), 2673 MINOR(inode->i_sb->s_dev), inode->i_ino); 2674 } else { 2675 seq_printf(f, "%d <none>:0 ", fl_pid); 2676 } 2677 if (IS_POSIX(fl)) { 2678 if (fl->fl_end == OFFSET_MAX) 2679 seq_printf(f, "%Ld EOF\n", fl->fl_start); 2680 else 2681 seq_printf(f, "%Ld %Ld\n", fl->fl_start, fl->fl_end); 2682 } else { 2683 seq_puts(f, "0 EOF\n"); 2684 } 2685 } 2686 2687 static int locks_show(struct seq_file *f, void *v) 2688 { 2689 struct locks_iterator *iter = f->private; 2690 struct file_lock *fl, *bfl; 2691 struct pid_namespace *proc_pidns = file_inode(f->file)->i_sb->s_fs_info; 2692 2693 fl = hlist_entry(v, struct file_lock, fl_link); 2694 2695 if (fl->fl_nspid && !pid_nr_ns(fl->fl_nspid, proc_pidns)) 2696 return 0; 2697 2698 lock_get_status(f, fl, iter->li_pos, ""); 2699 2700 list_for_each_entry(bfl, &fl->fl_block, fl_block) 2701 lock_get_status(f, bfl, iter->li_pos, " ->"); 2702 2703 return 0; 2704 } 2705 2706 static void __show_fd_locks(struct seq_file *f, 2707 struct list_head *head, int *id, 2708 struct file *filp, struct files_struct *files) 2709 { 2710 struct file_lock *fl; 2711 2712 list_for_each_entry(fl, head, fl_list) { 2713 2714 if (filp != fl->fl_file) 2715 continue; 2716 if (fl->fl_owner != files && 2717 fl->fl_owner != filp) 2718 continue; 2719 2720 (*id)++; 2721 seq_puts(f, "lock:\t"); 2722 lock_get_status(f, fl, *id, ""); 2723 } 2724 } 2725 2726 void show_fd_locks(struct seq_file *f, 2727 struct file *filp, struct files_struct *files) 2728 { 2729 struct inode *inode = file_inode(filp); 2730 struct file_lock_context *ctx; 2731 int id = 0; 2732 2733 ctx = smp_load_acquire(&inode->i_flctx); 2734 if (!ctx) 2735 return; 2736 2737 spin_lock(&ctx->flc_lock); 2738 __show_fd_locks(f, &ctx->flc_flock, &id, filp, files); 2739 __show_fd_locks(f, &ctx->flc_posix, &id, filp, files); 2740 __show_fd_locks(f, &ctx->flc_lease, &id, filp, files); 2741 spin_unlock(&ctx->flc_lock); 2742 } 2743 2744 static void *locks_start(struct seq_file *f, loff_t *pos) 2745 __acquires(&blocked_lock_lock) 2746 { 2747 struct locks_iterator *iter = f->private; 2748 2749 iter->li_pos = *pos + 1; 2750 percpu_down_write(&file_rwsem); 2751 spin_lock(&blocked_lock_lock); 2752 return seq_hlist_start_percpu(&file_lock_list.hlist, &iter->li_cpu, *pos); 2753 } 2754 2755 static void *locks_next(struct seq_file *f, void *v, loff_t *pos) 2756 { 2757 struct locks_iterator *iter = f->private; 2758 2759 ++iter->li_pos; 2760 return seq_hlist_next_percpu(v, &file_lock_list.hlist, &iter->li_cpu, pos); 2761 } 2762 2763 static void locks_stop(struct seq_file *f, void *v) 2764 __releases(&blocked_lock_lock) 2765 { 2766 spin_unlock(&blocked_lock_lock); 2767 percpu_up_write(&file_rwsem); 2768 } 2769 2770 static const struct seq_operations locks_seq_operations = { 2771 .start = locks_start, 2772 .next = locks_next, 2773 .stop = locks_stop, 2774 .show = locks_show, 2775 }; 2776 2777 static int locks_open(struct inode *inode, struct file *filp) 2778 { 2779 return seq_open_private(filp, &locks_seq_operations, 2780 sizeof(struct locks_iterator)); 2781 } 2782 2783 static const struct file_operations proc_locks_operations = { 2784 .open = locks_open, 2785 .read = seq_read, 2786 .llseek = seq_lseek, 2787 .release = seq_release_private, 2788 }; 2789 2790 static int __init proc_locks_init(void) 2791 { 2792 proc_create("locks", 0, NULL, &proc_locks_operations); 2793 return 0; 2794 } 2795 fs_initcall(proc_locks_init); 2796 #endif 2797 2798 static int __init filelock_init(void) 2799 { 2800 int i; 2801 2802 flctx_cache = kmem_cache_create("file_lock_ctx", 2803 sizeof(struct file_lock_context), 0, SLAB_PANIC, NULL); 2804 2805 filelock_cache = kmem_cache_create("file_lock_cache", 2806 sizeof(struct file_lock), 0, SLAB_PANIC, NULL); 2807 2808 2809 for_each_possible_cpu(i) { 2810 struct file_lock_list_struct *fll = per_cpu_ptr(&file_lock_list, i); 2811 2812 spin_lock_init(&fll->lock); 2813 INIT_HLIST_HEAD(&fll->hlist); 2814 } 2815 2816 return 0; 2817 } 2818 2819 core_initcall(filelock_init); 2820