1 /* 2 * kernel/lockdep.c 3 * 4 * Runtime locking correctness validator 5 * 6 * Started by Ingo Molnar: 7 * 8 * Copyright (C) 2006,2007 Red Hat, Inc., Ingo Molnar <mingo@redhat.com> 9 * Copyright (C) 2007 Red Hat, Inc., Peter Zijlstra 10 * 11 * this code maps all the lock dependencies as they occur in a live kernel 12 * and will warn about the following classes of locking bugs: 13 * 14 * - lock inversion scenarios 15 * - circular lock dependencies 16 * - hardirq/softirq safe/unsafe locking bugs 17 * 18 * Bugs are reported even if the current locking scenario does not cause 19 * any deadlock at this point. 20 * 21 * I.e. if anytime in the past two locks were taken in a different order, 22 * even if it happened for another task, even if those were different 23 * locks (but of the same class as this lock), this code will detect it. 24 * 25 * Thanks to Arjan van de Ven for coming up with the initial idea of 26 * mapping lock dependencies runtime. 27 */ 28 #define DISABLE_BRANCH_PROFILING 29 #include <linux/mutex.h> 30 #include <linux/sched.h> 31 #include <linux/sched/clock.h> 32 #include <linux/sched/task.h> 33 #include <linux/sched/mm.h> 34 #include <linux/delay.h> 35 #include <linux/module.h> 36 #include <linux/proc_fs.h> 37 #include <linux/seq_file.h> 38 #include <linux/spinlock.h> 39 #include <linux/kallsyms.h> 40 #include <linux/interrupt.h> 41 #include <linux/stacktrace.h> 42 #include <linux/debug_locks.h> 43 #include <linux/irqflags.h> 44 #include <linux/utsname.h> 45 #include <linux/hash.h> 46 #include <linux/ftrace.h> 47 #include <linux/stringify.h> 48 #include <linux/bitops.h> 49 #include <linux/gfp.h> 50 #include <linux/random.h> 51 #include <linux/jhash.h> 52 #include <linux/nmi.h> 53 #include <linux/kprobes.h> 54 55 #include <asm/sections.h> 56 57 #include "lockdep_internals.h" 58 59 #define CREATE_TRACE_POINTS 60 #include <trace/events/lock.h> 61 62 #ifdef CONFIG_PROVE_LOCKING 63 int prove_locking = 1; 64 module_param(prove_locking, int, 0644); 65 #else 66 #define prove_locking 0 67 #endif 68 69 #ifdef CONFIG_LOCK_STAT 70 int lock_stat = 1; 71 module_param(lock_stat, int, 0644); 72 #else 73 #define lock_stat 0 74 #endif 75 76 /* 77 * lockdep_lock: protects the lockdep graph, the hashes and the 78 * class/list/hash allocators. 79 * 80 * This is one of the rare exceptions where it's justified 81 * to use a raw spinlock - we really dont want the spinlock 82 * code to recurse back into the lockdep code... 83 */ 84 static arch_spinlock_t lockdep_lock = (arch_spinlock_t)__ARCH_SPIN_LOCK_UNLOCKED; 85 86 static int graph_lock(void) 87 { 88 arch_spin_lock(&lockdep_lock); 89 /* 90 * Make sure that if another CPU detected a bug while 91 * walking the graph we dont change it (while the other 92 * CPU is busy printing out stuff with the graph lock 93 * dropped already) 94 */ 95 if (!debug_locks) { 96 arch_spin_unlock(&lockdep_lock); 97 return 0; 98 } 99 /* prevent any recursions within lockdep from causing deadlocks */ 100 current->lockdep_recursion++; 101 return 1; 102 } 103 104 static inline int graph_unlock(void) 105 { 106 if (debug_locks && !arch_spin_is_locked(&lockdep_lock)) { 107 /* 108 * The lockdep graph lock isn't locked while we expect it to 109 * be, we're confused now, bye! 110 */ 111 return DEBUG_LOCKS_WARN_ON(1); 112 } 113 114 current->lockdep_recursion--; 115 arch_spin_unlock(&lockdep_lock); 116 return 0; 117 } 118 119 /* 120 * Turn lock debugging off and return with 0 if it was off already, 121 * and also release the graph lock: 122 */ 123 static inline int debug_locks_off_graph_unlock(void) 124 { 125 int ret = debug_locks_off(); 126 127 arch_spin_unlock(&lockdep_lock); 128 129 return ret; 130 } 131 132 unsigned long nr_list_entries; 133 static struct lock_list list_entries[MAX_LOCKDEP_ENTRIES]; 134 135 /* 136 * All data structures here are protected by the global debug_lock. 137 * 138 * Mutex key structs only get allocated, once during bootup, and never 139 * get freed - this significantly simplifies the debugging code. 140 */ 141 unsigned long nr_lock_classes; 142 #ifndef CONFIG_DEBUG_LOCKDEP 143 static 144 #endif 145 struct lock_class lock_classes[MAX_LOCKDEP_KEYS]; 146 147 static inline struct lock_class *hlock_class(struct held_lock *hlock) 148 { 149 if (!hlock->class_idx) { 150 /* 151 * Someone passed in garbage, we give up. 152 */ 153 DEBUG_LOCKS_WARN_ON(1); 154 return NULL; 155 } 156 return lock_classes + hlock->class_idx - 1; 157 } 158 159 #ifdef CONFIG_LOCK_STAT 160 static DEFINE_PER_CPU(struct lock_class_stats[MAX_LOCKDEP_KEYS], cpu_lock_stats); 161 162 static inline u64 lockstat_clock(void) 163 { 164 return local_clock(); 165 } 166 167 static int lock_point(unsigned long points[], unsigned long ip) 168 { 169 int i; 170 171 for (i = 0; i < LOCKSTAT_POINTS; i++) { 172 if (points[i] == 0) { 173 points[i] = ip; 174 break; 175 } 176 if (points[i] == ip) 177 break; 178 } 179 180 return i; 181 } 182 183 static void lock_time_inc(struct lock_time *lt, u64 time) 184 { 185 if (time > lt->max) 186 lt->max = time; 187 188 if (time < lt->min || !lt->nr) 189 lt->min = time; 190 191 lt->total += time; 192 lt->nr++; 193 } 194 195 static inline void lock_time_add(struct lock_time *src, struct lock_time *dst) 196 { 197 if (!src->nr) 198 return; 199 200 if (src->max > dst->max) 201 dst->max = src->max; 202 203 if (src->min < dst->min || !dst->nr) 204 dst->min = src->min; 205 206 dst->total += src->total; 207 dst->nr += src->nr; 208 } 209 210 struct lock_class_stats lock_stats(struct lock_class *class) 211 { 212 struct lock_class_stats stats; 213 int cpu, i; 214 215 memset(&stats, 0, sizeof(struct lock_class_stats)); 216 for_each_possible_cpu(cpu) { 217 struct lock_class_stats *pcs = 218 &per_cpu(cpu_lock_stats, cpu)[class - lock_classes]; 219 220 for (i = 0; i < ARRAY_SIZE(stats.contention_point); i++) 221 stats.contention_point[i] += pcs->contention_point[i]; 222 223 for (i = 0; i < ARRAY_SIZE(stats.contending_point); i++) 224 stats.contending_point[i] += pcs->contending_point[i]; 225 226 lock_time_add(&pcs->read_waittime, &stats.read_waittime); 227 lock_time_add(&pcs->write_waittime, &stats.write_waittime); 228 229 lock_time_add(&pcs->read_holdtime, &stats.read_holdtime); 230 lock_time_add(&pcs->write_holdtime, &stats.write_holdtime); 231 232 for (i = 0; i < ARRAY_SIZE(stats.bounces); i++) 233 stats.bounces[i] += pcs->bounces[i]; 234 } 235 236 return stats; 237 } 238 239 void clear_lock_stats(struct lock_class *class) 240 { 241 int cpu; 242 243 for_each_possible_cpu(cpu) { 244 struct lock_class_stats *cpu_stats = 245 &per_cpu(cpu_lock_stats, cpu)[class - lock_classes]; 246 247 memset(cpu_stats, 0, sizeof(struct lock_class_stats)); 248 } 249 memset(class->contention_point, 0, sizeof(class->contention_point)); 250 memset(class->contending_point, 0, sizeof(class->contending_point)); 251 } 252 253 static struct lock_class_stats *get_lock_stats(struct lock_class *class) 254 { 255 return &this_cpu_ptr(cpu_lock_stats)[class - lock_classes]; 256 } 257 258 static void lock_release_holdtime(struct held_lock *hlock) 259 { 260 struct lock_class_stats *stats; 261 u64 holdtime; 262 263 if (!lock_stat) 264 return; 265 266 holdtime = lockstat_clock() - hlock->holdtime_stamp; 267 268 stats = get_lock_stats(hlock_class(hlock)); 269 if (hlock->read) 270 lock_time_inc(&stats->read_holdtime, holdtime); 271 else 272 lock_time_inc(&stats->write_holdtime, holdtime); 273 } 274 #else 275 static inline void lock_release_holdtime(struct held_lock *hlock) 276 { 277 } 278 #endif 279 280 /* 281 * We keep a global list of all lock classes. The list only grows, 282 * never shrinks. The list is only accessed with the lockdep 283 * spinlock lock held. 284 */ 285 LIST_HEAD(all_lock_classes); 286 287 /* 288 * The lockdep classes are in a hash-table as well, for fast lookup: 289 */ 290 #define CLASSHASH_BITS (MAX_LOCKDEP_KEYS_BITS - 1) 291 #define CLASSHASH_SIZE (1UL << CLASSHASH_BITS) 292 #define __classhashfn(key) hash_long((unsigned long)key, CLASSHASH_BITS) 293 #define classhashentry(key) (classhash_table + __classhashfn((key))) 294 295 static struct hlist_head classhash_table[CLASSHASH_SIZE]; 296 297 /* 298 * We put the lock dependency chains into a hash-table as well, to cache 299 * their existence: 300 */ 301 #define CHAINHASH_BITS (MAX_LOCKDEP_CHAINS_BITS-1) 302 #define CHAINHASH_SIZE (1UL << CHAINHASH_BITS) 303 #define __chainhashfn(chain) hash_long(chain, CHAINHASH_BITS) 304 #define chainhashentry(chain) (chainhash_table + __chainhashfn((chain))) 305 306 static struct hlist_head chainhash_table[CHAINHASH_SIZE]; 307 308 /* 309 * The hash key of the lock dependency chains is a hash itself too: 310 * it's a hash of all locks taken up to that lock, including that lock. 311 * It's a 64-bit hash, because it's important for the keys to be 312 * unique. 313 */ 314 static inline u64 iterate_chain_key(u64 key, u32 idx) 315 { 316 u32 k0 = key, k1 = key >> 32; 317 318 __jhash_mix(idx, k0, k1); /* Macro that modifies arguments! */ 319 320 return k0 | (u64)k1 << 32; 321 } 322 323 void lockdep_off(void) 324 { 325 current->lockdep_recursion++; 326 } 327 EXPORT_SYMBOL(lockdep_off); 328 329 void lockdep_on(void) 330 { 331 current->lockdep_recursion--; 332 } 333 EXPORT_SYMBOL(lockdep_on); 334 335 /* 336 * Debugging switches: 337 */ 338 339 #define VERBOSE 0 340 #define VERY_VERBOSE 0 341 342 #if VERBOSE 343 # define HARDIRQ_VERBOSE 1 344 # define SOFTIRQ_VERBOSE 1 345 #else 346 # define HARDIRQ_VERBOSE 0 347 # define SOFTIRQ_VERBOSE 0 348 #endif 349 350 #if VERBOSE || HARDIRQ_VERBOSE || SOFTIRQ_VERBOSE 351 /* 352 * Quick filtering for interesting events: 353 */ 354 static int class_filter(struct lock_class *class) 355 { 356 #if 0 357 /* Example */ 358 if (class->name_version == 1 && 359 !strcmp(class->name, "lockname")) 360 return 1; 361 if (class->name_version == 1 && 362 !strcmp(class->name, "&struct->lockfield")) 363 return 1; 364 #endif 365 /* Filter everything else. 1 would be to allow everything else */ 366 return 0; 367 } 368 #endif 369 370 static int verbose(struct lock_class *class) 371 { 372 #if VERBOSE 373 return class_filter(class); 374 #endif 375 return 0; 376 } 377 378 /* 379 * Stack-trace: tightly packed array of stack backtrace 380 * addresses. Protected by the graph_lock. 381 */ 382 unsigned long nr_stack_trace_entries; 383 static unsigned long stack_trace[MAX_STACK_TRACE_ENTRIES]; 384 385 static void print_lockdep_off(const char *bug_msg) 386 { 387 printk(KERN_DEBUG "%s\n", bug_msg); 388 printk(KERN_DEBUG "turning off the locking correctness validator.\n"); 389 #ifdef CONFIG_LOCK_STAT 390 printk(KERN_DEBUG "Please attach the output of /proc/lock_stat to the bug report\n"); 391 #endif 392 } 393 394 static int save_trace(struct stack_trace *trace) 395 { 396 trace->nr_entries = 0; 397 trace->max_entries = MAX_STACK_TRACE_ENTRIES - nr_stack_trace_entries; 398 trace->entries = stack_trace + nr_stack_trace_entries; 399 400 trace->skip = 3; 401 402 save_stack_trace(trace); 403 404 /* 405 * Some daft arches put -1 at the end to indicate its a full trace. 406 * 407 * <rant> this is buggy anyway, since it takes a whole extra entry so a 408 * complete trace that maxes out the entries provided will be reported 409 * as incomplete, friggin useless </rant> 410 */ 411 if (trace->nr_entries != 0 && 412 trace->entries[trace->nr_entries-1] == ULONG_MAX) 413 trace->nr_entries--; 414 415 trace->max_entries = trace->nr_entries; 416 417 nr_stack_trace_entries += trace->nr_entries; 418 419 if (nr_stack_trace_entries >= MAX_STACK_TRACE_ENTRIES-1) { 420 if (!debug_locks_off_graph_unlock()) 421 return 0; 422 423 print_lockdep_off("BUG: MAX_STACK_TRACE_ENTRIES too low!"); 424 dump_stack(); 425 426 return 0; 427 } 428 429 return 1; 430 } 431 432 unsigned int nr_hardirq_chains; 433 unsigned int nr_softirq_chains; 434 unsigned int nr_process_chains; 435 unsigned int max_lockdep_depth; 436 437 #ifdef CONFIG_DEBUG_LOCKDEP 438 /* 439 * Various lockdep statistics: 440 */ 441 DEFINE_PER_CPU(struct lockdep_stats, lockdep_stats); 442 #endif 443 444 /* 445 * Locking printouts: 446 */ 447 448 #define __USAGE(__STATE) \ 449 [LOCK_USED_IN_##__STATE] = "IN-"__stringify(__STATE)"-W", \ 450 [LOCK_ENABLED_##__STATE] = __stringify(__STATE)"-ON-W", \ 451 [LOCK_USED_IN_##__STATE##_READ] = "IN-"__stringify(__STATE)"-R",\ 452 [LOCK_ENABLED_##__STATE##_READ] = __stringify(__STATE)"-ON-R", 453 454 static const char *usage_str[] = 455 { 456 #define LOCKDEP_STATE(__STATE) __USAGE(__STATE) 457 #include "lockdep_states.h" 458 #undef LOCKDEP_STATE 459 [LOCK_USED] = "INITIAL USE", 460 }; 461 462 const char * __get_key_name(struct lockdep_subclass_key *key, char *str) 463 { 464 return kallsyms_lookup((unsigned long)key, NULL, NULL, NULL, str); 465 } 466 467 static inline unsigned long lock_flag(enum lock_usage_bit bit) 468 { 469 return 1UL << bit; 470 } 471 472 static char get_usage_char(struct lock_class *class, enum lock_usage_bit bit) 473 { 474 char c = '.'; 475 476 if (class->usage_mask & lock_flag(bit + 2)) 477 c = '+'; 478 if (class->usage_mask & lock_flag(bit)) { 479 c = '-'; 480 if (class->usage_mask & lock_flag(bit + 2)) 481 c = '?'; 482 } 483 484 return c; 485 } 486 487 void get_usage_chars(struct lock_class *class, char usage[LOCK_USAGE_CHARS]) 488 { 489 int i = 0; 490 491 #define LOCKDEP_STATE(__STATE) \ 492 usage[i++] = get_usage_char(class, LOCK_USED_IN_##__STATE); \ 493 usage[i++] = get_usage_char(class, LOCK_USED_IN_##__STATE##_READ); 494 #include "lockdep_states.h" 495 #undef LOCKDEP_STATE 496 497 usage[i] = '\0'; 498 } 499 500 static void __print_lock_name(struct lock_class *class) 501 { 502 char str[KSYM_NAME_LEN]; 503 const char *name; 504 505 name = class->name; 506 if (!name) { 507 name = __get_key_name(class->key, str); 508 printk(KERN_CONT "%s", name); 509 } else { 510 printk(KERN_CONT "%s", name); 511 if (class->name_version > 1) 512 printk(KERN_CONT "#%d", class->name_version); 513 if (class->subclass) 514 printk(KERN_CONT "/%d", class->subclass); 515 } 516 } 517 518 static void print_lock_name(struct lock_class *class) 519 { 520 char usage[LOCK_USAGE_CHARS]; 521 522 get_usage_chars(class, usage); 523 524 printk(KERN_CONT " ("); 525 __print_lock_name(class); 526 printk(KERN_CONT "){%s}", usage); 527 } 528 529 static void print_lockdep_cache(struct lockdep_map *lock) 530 { 531 const char *name; 532 char str[KSYM_NAME_LEN]; 533 534 name = lock->name; 535 if (!name) 536 name = __get_key_name(lock->key->subkeys, str); 537 538 printk(KERN_CONT "%s", name); 539 } 540 541 static void print_lock(struct held_lock *hlock) 542 { 543 /* 544 * We can be called locklessly through debug_show_all_locks() so be 545 * extra careful, the hlock might have been released and cleared. 546 */ 547 unsigned int class_idx = hlock->class_idx; 548 549 /* Don't re-read hlock->class_idx, can't use READ_ONCE() on bitfields: */ 550 barrier(); 551 552 if (!class_idx || (class_idx - 1) >= MAX_LOCKDEP_KEYS) { 553 printk(KERN_CONT "<RELEASED>\n"); 554 return; 555 } 556 557 printk(KERN_CONT "%p", hlock->instance); 558 print_lock_name(lock_classes + class_idx - 1); 559 printk(KERN_CONT ", at: %pS\n", (void *)hlock->acquire_ip); 560 } 561 562 static void lockdep_print_held_locks(struct task_struct *p) 563 { 564 int i, depth = READ_ONCE(p->lockdep_depth); 565 566 if (!depth) 567 printk("no locks held by %s/%d.\n", p->comm, task_pid_nr(p)); 568 else 569 printk("%d lock%s held by %s/%d:\n", depth, 570 depth > 1 ? "s" : "", p->comm, task_pid_nr(p)); 571 /* 572 * It's not reliable to print a task's held locks if it's not sleeping 573 * and it's not the current task. 574 */ 575 if (p->state == TASK_RUNNING && p != current) 576 return; 577 for (i = 0; i < depth; i++) { 578 printk(" #%d: ", i); 579 print_lock(p->held_locks + i); 580 } 581 } 582 583 static void print_kernel_ident(void) 584 { 585 printk("%s %.*s %s\n", init_utsname()->release, 586 (int)strcspn(init_utsname()->version, " "), 587 init_utsname()->version, 588 print_tainted()); 589 } 590 591 static int very_verbose(struct lock_class *class) 592 { 593 #if VERY_VERBOSE 594 return class_filter(class); 595 #endif 596 return 0; 597 } 598 599 /* 600 * Is this the address of a static object: 601 */ 602 #ifdef __KERNEL__ 603 static int static_obj(void *obj) 604 { 605 unsigned long start = (unsigned long) &_stext, 606 end = (unsigned long) &_end, 607 addr = (unsigned long) obj; 608 609 /* 610 * static variable? 611 */ 612 if ((addr >= start) && (addr < end)) 613 return 1; 614 615 if (arch_is_kernel_data(addr)) 616 return 1; 617 618 /* 619 * in-kernel percpu var? 620 */ 621 if (is_kernel_percpu_address(addr)) 622 return 1; 623 624 /* 625 * module static or percpu var? 626 */ 627 return is_module_address(addr) || is_module_percpu_address(addr); 628 } 629 #endif 630 631 /* 632 * To make lock name printouts unique, we calculate a unique 633 * class->name_version generation counter. The caller must hold the graph 634 * lock. 635 */ 636 static int count_matching_names(struct lock_class *new_class) 637 { 638 struct lock_class *class; 639 int count = 0; 640 641 if (!new_class->name) 642 return 0; 643 644 list_for_each_entry(class, &all_lock_classes, lock_entry) { 645 if (new_class->key - new_class->subclass == class->key) 646 return class->name_version; 647 if (class->name && !strcmp(class->name, new_class->name)) 648 count = max(count, class->name_version); 649 } 650 651 return count + 1; 652 } 653 654 static inline struct lock_class * 655 look_up_lock_class(const struct lockdep_map *lock, unsigned int subclass) 656 { 657 struct lockdep_subclass_key *key; 658 struct hlist_head *hash_head; 659 struct lock_class *class; 660 661 if (unlikely(subclass >= MAX_LOCKDEP_SUBCLASSES)) { 662 debug_locks_off(); 663 printk(KERN_ERR 664 "BUG: looking up invalid subclass: %u\n", subclass); 665 printk(KERN_ERR 666 "turning off the locking correctness validator.\n"); 667 dump_stack(); 668 return NULL; 669 } 670 671 /* 672 * If it is not initialised then it has never been locked, 673 * so it won't be present in the hash table. 674 */ 675 if (unlikely(!lock->key)) 676 return NULL; 677 678 /* 679 * NOTE: the class-key must be unique. For dynamic locks, a static 680 * lock_class_key variable is passed in through the mutex_init() 681 * (or spin_lock_init()) call - which acts as the key. For static 682 * locks we use the lock object itself as the key. 683 */ 684 BUILD_BUG_ON(sizeof(struct lock_class_key) > 685 sizeof(struct lockdep_map)); 686 687 key = lock->key->subkeys + subclass; 688 689 hash_head = classhashentry(key); 690 691 /* 692 * We do an RCU walk of the hash, see lockdep_free_key_range(). 693 */ 694 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled())) 695 return NULL; 696 697 hlist_for_each_entry_rcu(class, hash_head, hash_entry) { 698 if (class->key == key) { 699 /* 700 * Huh! same key, different name? Did someone trample 701 * on some memory? We're most confused. 702 */ 703 WARN_ON_ONCE(class->name != lock->name); 704 return class; 705 } 706 } 707 708 return NULL; 709 } 710 711 /* 712 * Static locks do not have their class-keys yet - for them the key is 713 * the lock object itself. If the lock is in the per cpu area, the 714 * canonical address of the lock (per cpu offset removed) is used. 715 */ 716 static bool assign_lock_key(struct lockdep_map *lock) 717 { 718 unsigned long can_addr, addr = (unsigned long)lock; 719 720 if (__is_kernel_percpu_address(addr, &can_addr)) 721 lock->key = (void *)can_addr; 722 else if (__is_module_percpu_address(addr, &can_addr)) 723 lock->key = (void *)can_addr; 724 else if (static_obj(lock)) 725 lock->key = (void *)lock; 726 else { 727 /* Debug-check: all keys must be persistent! */ 728 debug_locks_off(); 729 pr_err("INFO: trying to register non-static key.\n"); 730 pr_err("the code is fine but needs lockdep annotation.\n"); 731 pr_err("turning off the locking correctness validator.\n"); 732 dump_stack(); 733 return false; 734 } 735 736 return true; 737 } 738 739 /* 740 * Register a lock's class in the hash-table, if the class is not present 741 * yet. Otherwise we look it up. We cache the result in the lock object 742 * itself, so actual lookup of the hash should be once per lock object. 743 */ 744 static struct lock_class * 745 register_lock_class(struct lockdep_map *lock, unsigned int subclass, int force) 746 { 747 struct lockdep_subclass_key *key; 748 struct hlist_head *hash_head; 749 struct lock_class *class; 750 751 DEBUG_LOCKS_WARN_ON(!irqs_disabled()); 752 753 class = look_up_lock_class(lock, subclass); 754 if (likely(class)) 755 goto out_set_class_cache; 756 757 if (!lock->key) { 758 if (!assign_lock_key(lock)) 759 return NULL; 760 } else if (!static_obj(lock->key)) { 761 return NULL; 762 } 763 764 key = lock->key->subkeys + subclass; 765 hash_head = classhashentry(key); 766 767 if (!graph_lock()) { 768 return NULL; 769 } 770 /* 771 * We have to do the hash-walk again, to avoid races 772 * with another CPU: 773 */ 774 hlist_for_each_entry_rcu(class, hash_head, hash_entry) { 775 if (class->key == key) 776 goto out_unlock_set; 777 } 778 779 /* 780 * Allocate a new key from the static array, and add it to 781 * the hash: 782 */ 783 if (nr_lock_classes >= MAX_LOCKDEP_KEYS) { 784 if (!debug_locks_off_graph_unlock()) { 785 return NULL; 786 } 787 788 print_lockdep_off("BUG: MAX_LOCKDEP_KEYS too low!"); 789 dump_stack(); 790 return NULL; 791 } 792 class = lock_classes + nr_lock_classes++; 793 debug_atomic_inc(nr_unused_locks); 794 class->key = key; 795 class->name = lock->name; 796 class->subclass = subclass; 797 INIT_LIST_HEAD(&class->locks_before); 798 INIT_LIST_HEAD(&class->locks_after); 799 class->name_version = count_matching_names(class); 800 /* 801 * We use RCU's safe list-add method to make 802 * parallel walking of the hash-list safe: 803 */ 804 hlist_add_head_rcu(&class->hash_entry, hash_head); 805 /* 806 * Add it to the global list of classes: 807 */ 808 list_add_tail(&class->lock_entry, &all_lock_classes); 809 810 if (verbose(class)) { 811 graph_unlock(); 812 813 printk("\nnew class %px: %s", class->key, class->name); 814 if (class->name_version > 1) 815 printk(KERN_CONT "#%d", class->name_version); 816 printk(KERN_CONT "\n"); 817 dump_stack(); 818 819 if (!graph_lock()) { 820 return NULL; 821 } 822 } 823 out_unlock_set: 824 graph_unlock(); 825 826 out_set_class_cache: 827 if (!subclass || force) 828 lock->class_cache[0] = class; 829 else if (subclass < NR_LOCKDEP_CACHING_CLASSES) 830 lock->class_cache[subclass] = class; 831 832 /* 833 * Hash collision, did we smoke some? We found a class with a matching 834 * hash but the subclass -- which is hashed in -- didn't match. 835 */ 836 if (DEBUG_LOCKS_WARN_ON(class->subclass != subclass)) 837 return NULL; 838 839 return class; 840 } 841 842 #ifdef CONFIG_PROVE_LOCKING 843 /* 844 * Allocate a lockdep entry. (assumes the graph_lock held, returns 845 * with NULL on failure) 846 */ 847 static struct lock_list *alloc_list_entry(void) 848 { 849 if (nr_list_entries >= MAX_LOCKDEP_ENTRIES) { 850 if (!debug_locks_off_graph_unlock()) 851 return NULL; 852 853 print_lockdep_off("BUG: MAX_LOCKDEP_ENTRIES too low!"); 854 dump_stack(); 855 return NULL; 856 } 857 return list_entries + nr_list_entries++; 858 } 859 860 /* 861 * Add a new dependency to the head of the list: 862 */ 863 static int add_lock_to_list(struct lock_class *this, struct list_head *head, 864 unsigned long ip, int distance, 865 struct stack_trace *trace) 866 { 867 struct lock_list *entry; 868 /* 869 * Lock not present yet - get a new dependency struct and 870 * add it to the list: 871 */ 872 entry = alloc_list_entry(); 873 if (!entry) 874 return 0; 875 876 entry->class = this; 877 entry->distance = distance; 878 entry->trace = *trace; 879 /* 880 * Both allocation and removal are done under the graph lock; but 881 * iteration is under RCU-sched; see look_up_lock_class() and 882 * lockdep_free_key_range(). 883 */ 884 list_add_tail_rcu(&entry->entry, head); 885 886 return 1; 887 } 888 889 /* 890 * For good efficiency of modular, we use power of 2 891 */ 892 #define MAX_CIRCULAR_QUEUE_SIZE 4096UL 893 #define CQ_MASK (MAX_CIRCULAR_QUEUE_SIZE-1) 894 895 /* 896 * The circular_queue and helpers is used to implement the 897 * breadth-first search(BFS)algorithem, by which we can build 898 * the shortest path from the next lock to be acquired to the 899 * previous held lock if there is a circular between them. 900 */ 901 struct circular_queue { 902 unsigned long element[MAX_CIRCULAR_QUEUE_SIZE]; 903 unsigned int front, rear; 904 }; 905 906 static struct circular_queue lock_cq; 907 908 unsigned int max_bfs_queue_depth; 909 910 static unsigned int lockdep_dependency_gen_id; 911 912 static inline void __cq_init(struct circular_queue *cq) 913 { 914 cq->front = cq->rear = 0; 915 lockdep_dependency_gen_id++; 916 } 917 918 static inline int __cq_empty(struct circular_queue *cq) 919 { 920 return (cq->front == cq->rear); 921 } 922 923 static inline int __cq_full(struct circular_queue *cq) 924 { 925 return ((cq->rear + 1) & CQ_MASK) == cq->front; 926 } 927 928 static inline int __cq_enqueue(struct circular_queue *cq, unsigned long elem) 929 { 930 if (__cq_full(cq)) 931 return -1; 932 933 cq->element[cq->rear] = elem; 934 cq->rear = (cq->rear + 1) & CQ_MASK; 935 return 0; 936 } 937 938 static inline int __cq_dequeue(struct circular_queue *cq, unsigned long *elem) 939 { 940 if (__cq_empty(cq)) 941 return -1; 942 943 *elem = cq->element[cq->front]; 944 cq->front = (cq->front + 1) & CQ_MASK; 945 return 0; 946 } 947 948 static inline unsigned int __cq_get_elem_count(struct circular_queue *cq) 949 { 950 return (cq->rear - cq->front) & CQ_MASK; 951 } 952 953 static inline void mark_lock_accessed(struct lock_list *lock, 954 struct lock_list *parent) 955 { 956 unsigned long nr; 957 958 nr = lock - list_entries; 959 WARN_ON(nr >= nr_list_entries); /* Out-of-bounds, input fail */ 960 lock->parent = parent; 961 lock->class->dep_gen_id = lockdep_dependency_gen_id; 962 } 963 964 static inline unsigned long lock_accessed(struct lock_list *lock) 965 { 966 unsigned long nr; 967 968 nr = lock - list_entries; 969 WARN_ON(nr >= nr_list_entries); /* Out-of-bounds, input fail */ 970 return lock->class->dep_gen_id == lockdep_dependency_gen_id; 971 } 972 973 static inline struct lock_list *get_lock_parent(struct lock_list *child) 974 { 975 return child->parent; 976 } 977 978 static inline int get_lock_depth(struct lock_list *child) 979 { 980 int depth = 0; 981 struct lock_list *parent; 982 983 while ((parent = get_lock_parent(child))) { 984 child = parent; 985 depth++; 986 } 987 return depth; 988 } 989 990 static int __bfs(struct lock_list *source_entry, 991 void *data, 992 int (*match)(struct lock_list *entry, void *data), 993 struct lock_list **target_entry, 994 int forward) 995 { 996 struct lock_list *entry; 997 struct list_head *head; 998 struct circular_queue *cq = &lock_cq; 999 int ret = 1; 1000 1001 if (match(source_entry, data)) { 1002 *target_entry = source_entry; 1003 ret = 0; 1004 goto exit; 1005 } 1006 1007 if (forward) 1008 head = &source_entry->class->locks_after; 1009 else 1010 head = &source_entry->class->locks_before; 1011 1012 if (list_empty(head)) 1013 goto exit; 1014 1015 __cq_init(cq); 1016 __cq_enqueue(cq, (unsigned long)source_entry); 1017 1018 while (!__cq_empty(cq)) { 1019 struct lock_list *lock; 1020 1021 __cq_dequeue(cq, (unsigned long *)&lock); 1022 1023 if (!lock->class) { 1024 ret = -2; 1025 goto exit; 1026 } 1027 1028 if (forward) 1029 head = &lock->class->locks_after; 1030 else 1031 head = &lock->class->locks_before; 1032 1033 DEBUG_LOCKS_WARN_ON(!irqs_disabled()); 1034 1035 list_for_each_entry_rcu(entry, head, entry) { 1036 if (!lock_accessed(entry)) { 1037 unsigned int cq_depth; 1038 mark_lock_accessed(entry, lock); 1039 if (match(entry, data)) { 1040 *target_entry = entry; 1041 ret = 0; 1042 goto exit; 1043 } 1044 1045 if (__cq_enqueue(cq, (unsigned long)entry)) { 1046 ret = -1; 1047 goto exit; 1048 } 1049 cq_depth = __cq_get_elem_count(cq); 1050 if (max_bfs_queue_depth < cq_depth) 1051 max_bfs_queue_depth = cq_depth; 1052 } 1053 } 1054 } 1055 exit: 1056 return ret; 1057 } 1058 1059 static inline int __bfs_forwards(struct lock_list *src_entry, 1060 void *data, 1061 int (*match)(struct lock_list *entry, void *data), 1062 struct lock_list **target_entry) 1063 { 1064 return __bfs(src_entry, data, match, target_entry, 1); 1065 1066 } 1067 1068 static inline int __bfs_backwards(struct lock_list *src_entry, 1069 void *data, 1070 int (*match)(struct lock_list *entry, void *data), 1071 struct lock_list **target_entry) 1072 { 1073 return __bfs(src_entry, data, match, target_entry, 0); 1074 1075 } 1076 1077 /* 1078 * Recursive, forwards-direction lock-dependency checking, used for 1079 * both noncyclic checking and for hardirq-unsafe/softirq-unsafe 1080 * checking. 1081 */ 1082 1083 /* 1084 * Print a dependency chain entry (this is only done when a deadlock 1085 * has been detected): 1086 */ 1087 static noinline int 1088 print_circular_bug_entry(struct lock_list *target, int depth) 1089 { 1090 if (debug_locks_silent) 1091 return 0; 1092 printk("\n-> #%u", depth); 1093 print_lock_name(target->class); 1094 printk(KERN_CONT ":\n"); 1095 print_stack_trace(&target->trace, 6); 1096 1097 return 0; 1098 } 1099 1100 static void 1101 print_circular_lock_scenario(struct held_lock *src, 1102 struct held_lock *tgt, 1103 struct lock_list *prt) 1104 { 1105 struct lock_class *source = hlock_class(src); 1106 struct lock_class *target = hlock_class(tgt); 1107 struct lock_class *parent = prt->class; 1108 1109 /* 1110 * A direct locking problem where unsafe_class lock is taken 1111 * directly by safe_class lock, then all we need to show 1112 * is the deadlock scenario, as it is obvious that the 1113 * unsafe lock is taken under the safe lock. 1114 * 1115 * But if there is a chain instead, where the safe lock takes 1116 * an intermediate lock (middle_class) where this lock is 1117 * not the same as the safe lock, then the lock chain is 1118 * used to describe the problem. Otherwise we would need 1119 * to show a different CPU case for each link in the chain 1120 * from the safe_class lock to the unsafe_class lock. 1121 */ 1122 if (parent != source) { 1123 printk("Chain exists of:\n "); 1124 __print_lock_name(source); 1125 printk(KERN_CONT " --> "); 1126 __print_lock_name(parent); 1127 printk(KERN_CONT " --> "); 1128 __print_lock_name(target); 1129 printk(KERN_CONT "\n\n"); 1130 } 1131 1132 printk(" Possible unsafe locking scenario:\n\n"); 1133 printk(" CPU0 CPU1\n"); 1134 printk(" ---- ----\n"); 1135 printk(" lock("); 1136 __print_lock_name(target); 1137 printk(KERN_CONT ");\n"); 1138 printk(" lock("); 1139 __print_lock_name(parent); 1140 printk(KERN_CONT ");\n"); 1141 printk(" lock("); 1142 __print_lock_name(target); 1143 printk(KERN_CONT ");\n"); 1144 printk(" lock("); 1145 __print_lock_name(source); 1146 printk(KERN_CONT ");\n"); 1147 printk("\n *** DEADLOCK ***\n\n"); 1148 } 1149 1150 /* 1151 * When a circular dependency is detected, print the 1152 * header first: 1153 */ 1154 static noinline int 1155 print_circular_bug_header(struct lock_list *entry, unsigned int depth, 1156 struct held_lock *check_src, 1157 struct held_lock *check_tgt) 1158 { 1159 struct task_struct *curr = current; 1160 1161 if (debug_locks_silent) 1162 return 0; 1163 1164 pr_warn("\n"); 1165 pr_warn("======================================================\n"); 1166 pr_warn("WARNING: possible circular locking dependency detected\n"); 1167 print_kernel_ident(); 1168 pr_warn("------------------------------------------------------\n"); 1169 pr_warn("%s/%d is trying to acquire lock:\n", 1170 curr->comm, task_pid_nr(curr)); 1171 print_lock(check_src); 1172 1173 pr_warn("\nbut task is already holding lock:\n"); 1174 1175 print_lock(check_tgt); 1176 pr_warn("\nwhich lock already depends on the new lock.\n\n"); 1177 pr_warn("\nthe existing dependency chain (in reverse order) is:\n"); 1178 1179 print_circular_bug_entry(entry, depth); 1180 1181 return 0; 1182 } 1183 1184 static inline int class_equal(struct lock_list *entry, void *data) 1185 { 1186 return entry->class == data; 1187 } 1188 1189 static noinline int print_circular_bug(struct lock_list *this, 1190 struct lock_list *target, 1191 struct held_lock *check_src, 1192 struct held_lock *check_tgt, 1193 struct stack_trace *trace) 1194 { 1195 struct task_struct *curr = current; 1196 struct lock_list *parent; 1197 struct lock_list *first_parent; 1198 int depth; 1199 1200 if (!debug_locks_off_graph_unlock() || debug_locks_silent) 1201 return 0; 1202 1203 if (!save_trace(&this->trace)) 1204 return 0; 1205 1206 depth = get_lock_depth(target); 1207 1208 print_circular_bug_header(target, depth, check_src, check_tgt); 1209 1210 parent = get_lock_parent(target); 1211 first_parent = parent; 1212 1213 while (parent) { 1214 print_circular_bug_entry(parent, --depth); 1215 parent = get_lock_parent(parent); 1216 } 1217 1218 printk("\nother info that might help us debug this:\n\n"); 1219 print_circular_lock_scenario(check_src, check_tgt, 1220 first_parent); 1221 1222 lockdep_print_held_locks(curr); 1223 1224 printk("\nstack backtrace:\n"); 1225 dump_stack(); 1226 1227 return 0; 1228 } 1229 1230 static noinline int print_bfs_bug(int ret) 1231 { 1232 if (!debug_locks_off_graph_unlock()) 1233 return 0; 1234 1235 /* 1236 * Breadth-first-search failed, graph got corrupted? 1237 */ 1238 WARN(1, "lockdep bfs error:%d\n", ret); 1239 1240 return 0; 1241 } 1242 1243 static int noop_count(struct lock_list *entry, void *data) 1244 { 1245 (*(unsigned long *)data)++; 1246 return 0; 1247 } 1248 1249 static unsigned long __lockdep_count_forward_deps(struct lock_list *this) 1250 { 1251 unsigned long count = 0; 1252 struct lock_list *uninitialized_var(target_entry); 1253 1254 __bfs_forwards(this, (void *)&count, noop_count, &target_entry); 1255 1256 return count; 1257 } 1258 unsigned long lockdep_count_forward_deps(struct lock_class *class) 1259 { 1260 unsigned long ret, flags; 1261 struct lock_list this; 1262 1263 this.parent = NULL; 1264 this.class = class; 1265 1266 raw_local_irq_save(flags); 1267 arch_spin_lock(&lockdep_lock); 1268 ret = __lockdep_count_forward_deps(&this); 1269 arch_spin_unlock(&lockdep_lock); 1270 raw_local_irq_restore(flags); 1271 1272 return ret; 1273 } 1274 1275 static unsigned long __lockdep_count_backward_deps(struct lock_list *this) 1276 { 1277 unsigned long count = 0; 1278 struct lock_list *uninitialized_var(target_entry); 1279 1280 __bfs_backwards(this, (void *)&count, noop_count, &target_entry); 1281 1282 return count; 1283 } 1284 1285 unsigned long lockdep_count_backward_deps(struct lock_class *class) 1286 { 1287 unsigned long ret, flags; 1288 struct lock_list this; 1289 1290 this.parent = NULL; 1291 this.class = class; 1292 1293 raw_local_irq_save(flags); 1294 arch_spin_lock(&lockdep_lock); 1295 ret = __lockdep_count_backward_deps(&this); 1296 arch_spin_unlock(&lockdep_lock); 1297 raw_local_irq_restore(flags); 1298 1299 return ret; 1300 } 1301 1302 /* 1303 * Prove that the dependency graph starting at <entry> can not 1304 * lead to <target>. Print an error and return 0 if it does. 1305 */ 1306 static noinline int 1307 check_noncircular(struct lock_list *root, struct lock_class *target, 1308 struct lock_list **target_entry) 1309 { 1310 int result; 1311 1312 debug_atomic_inc(nr_cyclic_checks); 1313 1314 result = __bfs_forwards(root, target, class_equal, target_entry); 1315 1316 return result; 1317 } 1318 1319 static noinline int 1320 check_redundant(struct lock_list *root, struct lock_class *target, 1321 struct lock_list **target_entry) 1322 { 1323 int result; 1324 1325 debug_atomic_inc(nr_redundant_checks); 1326 1327 result = __bfs_forwards(root, target, class_equal, target_entry); 1328 1329 return result; 1330 } 1331 1332 #if defined(CONFIG_TRACE_IRQFLAGS) && defined(CONFIG_PROVE_LOCKING) 1333 /* 1334 * Forwards and backwards subgraph searching, for the purposes of 1335 * proving that two subgraphs can be connected by a new dependency 1336 * without creating any illegal irq-safe -> irq-unsafe lock dependency. 1337 */ 1338 1339 static inline int usage_match(struct lock_list *entry, void *bit) 1340 { 1341 return entry->class->usage_mask & (1 << (enum lock_usage_bit)bit); 1342 } 1343 1344 1345 1346 /* 1347 * Find a node in the forwards-direction dependency sub-graph starting 1348 * at @root->class that matches @bit. 1349 * 1350 * Return 0 if such a node exists in the subgraph, and put that node 1351 * into *@target_entry. 1352 * 1353 * Return 1 otherwise and keep *@target_entry unchanged. 1354 * Return <0 on error. 1355 */ 1356 static int 1357 find_usage_forwards(struct lock_list *root, enum lock_usage_bit bit, 1358 struct lock_list **target_entry) 1359 { 1360 int result; 1361 1362 debug_atomic_inc(nr_find_usage_forwards_checks); 1363 1364 result = __bfs_forwards(root, (void *)bit, usage_match, target_entry); 1365 1366 return result; 1367 } 1368 1369 /* 1370 * Find a node in the backwards-direction dependency sub-graph starting 1371 * at @root->class that matches @bit. 1372 * 1373 * Return 0 if such a node exists in the subgraph, and put that node 1374 * into *@target_entry. 1375 * 1376 * Return 1 otherwise and keep *@target_entry unchanged. 1377 * Return <0 on error. 1378 */ 1379 static int 1380 find_usage_backwards(struct lock_list *root, enum lock_usage_bit bit, 1381 struct lock_list **target_entry) 1382 { 1383 int result; 1384 1385 debug_atomic_inc(nr_find_usage_backwards_checks); 1386 1387 result = __bfs_backwards(root, (void *)bit, usage_match, target_entry); 1388 1389 return result; 1390 } 1391 1392 static void print_lock_class_header(struct lock_class *class, int depth) 1393 { 1394 int bit; 1395 1396 printk("%*s->", depth, ""); 1397 print_lock_name(class); 1398 #ifdef CONFIG_DEBUG_LOCKDEP 1399 printk(KERN_CONT " ops: %lu", debug_class_ops_read(class)); 1400 #endif 1401 printk(KERN_CONT " {\n"); 1402 1403 for (bit = 0; bit < LOCK_USAGE_STATES; bit++) { 1404 if (class->usage_mask & (1 << bit)) { 1405 int len = depth; 1406 1407 len += printk("%*s %s", depth, "", usage_str[bit]); 1408 len += printk(KERN_CONT " at:\n"); 1409 print_stack_trace(class->usage_traces + bit, len); 1410 } 1411 } 1412 printk("%*s }\n", depth, ""); 1413 1414 printk("%*s ... key at: [<%px>] %pS\n", 1415 depth, "", class->key, class->key); 1416 } 1417 1418 /* 1419 * printk the shortest lock dependencies from @start to @end in reverse order: 1420 */ 1421 static void __used 1422 print_shortest_lock_dependencies(struct lock_list *leaf, 1423 struct lock_list *root) 1424 { 1425 struct lock_list *entry = leaf; 1426 int depth; 1427 1428 /*compute depth from generated tree by BFS*/ 1429 depth = get_lock_depth(leaf); 1430 1431 do { 1432 print_lock_class_header(entry->class, depth); 1433 printk("%*s ... acquired at:\n", depth, ""); 1434 print_stack_trace(&entry->trace, 2); 1435 printk("\n"); 1436 1437 if (depth == 0 && (entry != root)) { 1438 printk("lockdep:%s bad path found in chain graph\n", __func__); 1439 break; 1440 } 1441 1442 entry = get_lock_parent(entry); 1443 depth--; 1444 } while (entry && (depth >= 0)); 1445 1446 return; 1447 } 1448 1449 static void 1450 print_irq_lock_scenario(struct lock_list *safe_entry, 1451 struct lock_list *unsafe_entry, 1452 struct lock_class *prev_class, 1453 struct lock_class *next_class) 1454 { 1455 struct lock_class *safe_class = safe_entry->class; 1456 struct lock_class *unsafe_class = unsafe_entry->class; 1457 struct lock_class *middle_class = prev_class; 1458 1459 if (middle_class == safe_class) 1460 middle_class = next_class; 1461 1462 /* 1463 * A direct locking problem where unsafe_class lock is taken 1464 * directly by safe_class lock, then all we need to show 1465 * is the deadlock scenario, as it is obvious that the 1466 * unsafe lock is taken under the safe lock. 1467 * 1468 * But if there is a chain instead, where the safe lock takes 1469 * an intermediate lock (middle_class) where this lock is 1470 * not the same as the safe lock, then the lock chain is 1471 * used to describe the problem. Otherwise we would need 1472 * to show a different CPU case for each link in the chain 1473 * from the safe_class lock to the unsafe_class lock. 1474 */ 1475 if (middle_class != unsafe_class) { 1476 printk("Chain exists of:\n "); 1477 __print_lock_name(safe_class); 1478 printk(KERN_CONT " --> "); 1479 __print_lock_name(middle_class); 1480 printk(KERN_CONT " --> "); 1481 __print_lock_name(unsafe_class); 1482 printk(KERN_CONT "\n\n"); 1483 } 1484 1485 printk(" Possible interrupt unsafe locking scenario:\n\n"); 1486 printk(" CPU0 CPU1\n"); 1487 printk(" ---- ----\n"); 1488 printk(" lock("); 1489 __print_lock_name(unsafe_class); 1490 printk(KERN_CONT ");\n"); 1491 printk(" local_irq_disable();\n"); 1492 printk(" lock("); 1493 __print_lock_name(safe_class); 1494 printk(KERN_CONT ");\n"); 1495 printk(" lock("); 1496 __print_lock_name(middle_class); 1497 printk(KERN_CONT ");\n"); 1498 printk(" <Interrupt>\n"); 1499 printk(" lock("); 1500 __print_lock_name(safe_class); 1501 printk(KERN_CONT ");\n"); 1502 printk("\n *** DEADLOCK ***\n\n"); 1503 } 1504 1505 static int 1506 print_bad_irq_dependency(struct task_struct *curr, 1507 struct lock_list *prev_root, 1508 struct lock_list *next_root, 1509 struct lock_list *backwards_entry, 1510 struct lock_list *forwards_entry, 1511 struct held_lock *prev, 1512 struct held_lock *next, 1513 enum lock_usage_bit bit1, 1514 enum lock_usage_bit bit2, 1515 const char *irqclass) 1516 { 1517 if (!debug_locks_off_graph_unlock() || debug_locks_silent) 1518 return 0; 1519 1520 pr_warn("\n"); 1521 pr_warn("=====================================================\n"); 1522 pr_warn("WARNING: %s-safe -> %s-unsafe lock order detected\n", 1523 irqclass, irqclass); 1524 print_kernel_ident(); 1525 pr_warn("-----------------------------------------------------\n"); 1526 pr_warn("%s/%d [HC%u[%lu]:SC%u[%lu]:HE%u:SE%u] is trying to acquire:\n", 1527 curr->comm, task_pid_nr(curr), 1528 curr->hardirq_context, hardirq_count() >> HARDIRQ_SHIFT, 1529 curr->softirq_context, softirq_count() >> SOFTIRQ_SHIFT, 1530 curr->hardirqs_enabled, 1531 curr->softirqs_enabled); 1532 print_lock(next); 1533 1534 pr_warn("\nand this task is already holding:\n"); 1535 print_lock(prev); 1536 pr_warn("which would create a new lock dependency:\n"); 1537 print_lock_name(hlock_class(prev)); 1538 pr_cont(" ->"); 1539 print_lock_name(hlock_class(next)); 1540 pr_cont("\n"); 1541 1542 pr_warn("\nbut this new dependency connects a %s-irq-safe lock:\n", 1543 irqclass); 1544 print_lock_name(backwards_entry->class); 1545 pr_warn("\n... which became %s-irq-safe at:\n", irqclass); 1546 1547 print_stack_trace(backwards_entry->class->usage_traces + bit1, 1); 1548 1549 pr_warn("\nto a %s-irq-unsafe lock:\n", irqclass); 1550 print_lock_name(forwards_entry->class); 1551 pr_warn("\n... which became %s-irq-unsafe at:\n", irqclass); 1552 pr_warn("..."); 1553 1554 print_stack_trace(forwards_entry->class->usage_traces + bit2, 1); 1555 1556 pr_warn("\nother info that might help us debug this:\n\n"); 1557 print_irq_lock_scenario(backwards_entry, forwards_entry, 1558 hlock_class(prev), hlock_class(next)); 1559 1560 lockdep_print_held_locks(curr); 1561 1562 pr_warn("\nthe dependencies between %s-irq-safe lock and the holding lock:\n", irqclass); 1563 if (!save_trace(&prev_root->trace)) 1564 return 0; 1565 print_shortest_lock_dependencies(backwards_entry, prev_root); 1566 1567 pr_warn("\nthe dependencies between the lock to be acquired"); 1568 pr_warn(" and %s-irq-unsafe lock:\n", irqclass); 1569 if (!save_trace(&next_root->trace)) 1570 return 0; 1571 print_shortest_lock_dependencies(forwards_entry, next_root); 1572 1573 pr_warn("\nstack backtrace:\n"); 1574 dump_stack(); 1575 1576 return 0; 1577 } 1578 1579 static int 1580 check_usage(struct task_struct *curr, struct held_lock *prev, 1581 struct held_lock *next, enum lock_usage_bit bit_backwards, 1582 enum lock_usage_bit bit_forwards, const char *irqclass) 1583 { 1584 int ret; 1585 struct lock_list this, that; 1586 struct lock_list *uninitialized_var(target_entry); 1587 struct lock_list *uninitialized_var(target_entry1); 1588 1589 this.parent = NULL; 1590 1591 this.class = hlock_class(prev); 1592 ret = find_usage_backwards(&this, bit_backwards, &target_entry); 1593 if (ret < 0) 1594 return print_bfs_bug(ret); 1595 if (ret == 1) 1596 return ret; 1597 1598 that.parent = NULL; 1599 that.class = hlock_class(next); 1600 ret = find_usage_forwards(&that, bit_forwards, &target_entry1); 1601 if (ret < 0) 1602 return print_bfs_bug(ret); 1603 if (ret == 1) 1604 return ret; 1605 1606 return print_bad_irq_dependency(curr, &this, &that, 1607 target_entry, target_entry1, 1608 prev, next, 1609 bit_backwards, bit_forwards, irqclass); 1610 } 1611 1612 static const char *state_names[] = { 1613 #define LOCKDEP_STATE(__STATE) \ 1614 __stringify(__STATE), 1615 #include "lockdep_states.h" 1616 #undef LOCKDEP_STATE 1617 }; 1618 1619 static const char *state_rnames[] = { 1620 #define LOCKDEP_STATE(__STATE) \ 1621 __stringify(__STATE)"-READ", 1622 #include "lockdep_states.h" 1623 #undef LOCKDEP_STATE 1624 }; 1625 1626 static inline const char *state_name(enum lock_usage_bit bit) 1627 { 1628 return (bit & 1) ? state_rnames[bit >> 2] : state_names[bit >> 2]; 1629 } 1630 1631 static int exclusive_bit(int new_bit) 1632 { 1633 /* 1634 * USED_IN 1635 * USED_IN_READ 1636 * ENABLED 1637 * ENABLED_READ 1638 * 1639 * bit 0 - write/read 1640 * bit 1 - used_in/enabled 1641 * bit 2+ state 1642 */ 1643 1644 int state = new_bit & ~3; 1645 int dir = new_bit & 2; 1646 1647 /* 1648 * keep state, bit flip the direction and strip read. 1649 */ 1650 return state | (dir ^ 2); 1651 } 1652 1653 static int check_irq_usage(struct task_struct *curr, struct held_lock *prev, 1654 struct held_lock *next, enum lock_usage_bit bit) 1655 { 1656 /* 1657 * Prove that the new dependency does not connect a hardirq-safe 1658 * lock with a hardirq-unsafe lock - to achieve this we search 1659 * the backwards-subgraph starting at <prev>, and the 1660 * forwards-subgraph starting at <next>: 1661 */ 1662 if (!check_usage(curr, prev, next, bit, 1663 exclusive_bit(bit), state_name(bit))) 1664 return 0; 1665 1666 bit++; /* _READ */ 1667 1668 /* 1669 * Prove that the new dependency does not connect a hardirq-safe-read 1670 * lock with a hardirq-unsafe lock - to achieve this we search 1671 * the backwards-subgraph starting at <prev>, and the 1672 * forwards-subgraph starting at <next>: 1673 */ 1674 if (!check_usage(curr, prev, next, bit, 1675 exclusive_bit(bit), state_name(bit))) 1676 return 0; 1677 1678 return 1; 1679 } 1680 1681 static int 1682 check_prev_add_irq(struct task_struct *curr, struct held_lock *prev, 1683 struct held_lock *next) 1684 { 1685 #define LOCKDEP_STATE(__STATE) \ 1686 if (!check_irq_usage(curr, prev, next, LOCK_USED_IN_##__STATE)) \ 1687 return 0; 1688 #include "lockdep_states.h" 1689 #undef LOCKDEP_STATE 1690 1691 return 1; 1692 } 1693 1694 static void inc_chains(void) 1695 { 1696 if (current->hardirq_context) 1697 nr_hardirq_chains++; 1698 else { 1699 if (current->softirq_context) 1700 nr_softirq_chains++; 1701 else 1702 nr_process_chains++; 1703 } 1704 } 1705 1706 #else 1707 1708 static inline int 1709 check_prev_add_irq(struct task_struct *curr, struct held_lock *prev, 1710 struct held_lock *next) 1711 { 1712 return 1; 1713 } 1714 1715 static inline void inc_chains(void) 1716 { 1717 nr_process_chains++; 1718 } 1719 1720 #endif 1721 1722 static void 1723 print_deadlock_scenario(struct held_lock *nxt, 1724 struct held_lock *prv) 1725 { 1726 struct lock_class *next = hlock_class(nxt); 1727 struct lock_class *prev = hlock_class(prv); 1728 1729 printk(" Possible unsafe locking scenario:\n\n"); 1730 printk(" CPU0\n"); 1731 printk(" ----\n"); 1732 printk(" lock("); 1733 __print_lock_name(prev); 1734 printk(KERN_CONT ");\n"); 1735 printk(" lock("); 1736 __print_lock_name(next); 1737 printk(KERN_CONT ");\n"); 1738 printk("\n *** DEADLOCK ***\n\n"); 1739 printk(" May be due to missing lock nesting notation\n\n"); 1740 } 1741 1742 static int 1743 print_deadlock_bug(struct task_struct *curr, struct held_lock *prev, 1744 struct held_lock *next) 1745 { 1746 if (!debug_locks_off_graph_unlock() || debug_locks_silent) 1747 return 0; 1748 1749 pr_warn("\n"); 1750 pr_warn("============================================\n"); 1751 pr_warn("WARNING: possible recursive locking detected\n"); 1752 print_kernel_ident(); 1753 pr_warn("--------------------------------------------\n"); 1754 pr_warn("%s/%d is trying to acquire lock:\n", 1755 curr->comm, task_pid_nr(curr)); 1756 print_lock(next); 1757 pr_warn("\nbut task is already holding lock:\n"); 1758 print_lock(prev); 1759 1760 pr_warn("\nother info that might help us debug this:\n"); 1761 print_deadlock_scenario(next, prev); 1762 lockdep_print_held_locks(curr); 1763 1764 pr_warn("\nstack backtrace:\n"); 1765 dump_stack(); 1766 1767 return 0; 1768 } 1769 1770 /* 1771 * Check whether we are holding such a class already. 1772 * 1773 * (Note that this has to be done separately, because the graph cannot 1774 * detect such classes of deadlocks.) 1775 * 1776 * Returns: 0 on deadlock detected, 1 on OK, 2 on recursive read 1777 */ 1778 static int 1779 check_deadlock(struct task_struct *curr, struct held_lock *next, 1780 struct lockdep_map *next_instance, int read) 1781 { 1782 struct held_lock *prev; 1783 struct held_lock *nest = NULL; 1784 int i; 1785 1786 for (i = 0; i < curr->lockdep_depth; i++) { 1787 prev = curr->held_locks + i; 1788 1789 if (prev->instance == next->nest_lock) 1790 nest = prev; 1791 1792 if (hlock_class(prev) != hlock_class(next)) 1793 continue; 1794 1795 /* 1796 * Allow read-after-read recursion of the same 1797 * lock class (i.e. read_lock(lock)+read_lock(lock)): 1798 */ 1799 if ((read == 2) && prev->read) 1800 return 2; 1801 1802 /* 1803 * We're holding the nest_lock, which serializes this lock's 1804 * nesting behaviour. 1805 */ 1806 if (nest) 1807 return 2; 1808 1809 return print_deadlock_bug(curr, prev, next); 1810 } 1811 return 1; 1812 } 1813 1814 /* 1815 * There was a chain-cache miss, and we are about to add a new dependency 1816 * to a previous lock. We recursively validate the following rules: 1817 * 1818 * - would the adding of the <prev> -> <next> dependency create a 1819 * circular dependency in the graph? [== circular deadlock] 1820 * 1821 * - does the new prev->next dependency connect any hardirq-safe lock 1822 * (in the full backwards-subgraph starting at <prev>) with any 1823 * hardirq-unsafe lock (in the full forwards-subgraph starting at 1824 * <next>)? [== illegal lock inversion with hardirq contexts] 1825 * 1826 * - does the new prev->next dependency connect any softirq-safe lock 1827 * (in the full backwards-subgraph starting at <prev>) with any 1828 * softirq-unsafe lock (in the full forwards-subgraph starting at 1829 * <next>)? [== illegal lock inversion with softirq contexts] 1830 * 1831 * any of these scenarios could lead to a deadlock. 1832 * 1833 * Then if all the validations pass, we add the forwards and backwards 1834 * dependency. 1835 */ 1836 static int 1837 check_prev_add(struct task_struct *curr, struct held_lock *prev, 1838 struct held_lock *next, int distance, struct stack_trace *trace, 1839 int (*save)(struct stack_trace *trace)) 1840 { 1841 struct lock_list *uninitialized_var(target_entry); 1842 struct lock_list *entry; 1843 struct lock_list this; 1844 int ret; 1845 1846 /* 1847 * Prove that the new <prev> -> <next> dependency would not 1848 * create a circular dependency in the graph. (We do this by 1849 * forward-recursing into the graph starting at <next>, and 1850 * checking whether we can reach <prev>.) 1851 * 1852 * We are using global variables to control the recursion, to 1853 * keep the stackframe size of the recursive functions low: 1854 */ 1855 this.class = hlock_class(next); 1856 this.parent = NULL; 1857 ret = check_noncircular(&this, hlock_class(prev), &target_entry); 1858 if (unlikely(!ret)) { 1859 if (!trace->entries) { 1860 /* 1861 * If @save fails here, the printing might trigger 1862 * a WARN but because of the !nr_entries it should 1863 * not do bad things. 1864 */ 1865 save(trace); 1866 } 1867 return print_circular_bug(&this, target_entry, next, prev, trace); 1868 } 1869 else if (unlikely(ret < 0)) 1870 return print_bfs_bug(ret); 1871 1872 if (!check_prev_add_irq(curr, prev, next)) 1873 return 0; 1874 1875 /* 1876 * For recursive read-locks we do all the dependency checks, 1877 * but we dont store read-triggered dependencies (only 1878 * write-triggered dependencies). This ensures that only the 1879 * write-side dependencies matter, and that if for example a 1880 * write-lock never takes any other locks, then the reads are 1881 * equivalent to a NOP. 1882 */ 1883 if (next->read == 2 || prev->read == 2) 1884 return 1; 1885 /* 1886 * Is the <prev> -> <next> dependency already present? 1887 * 1888 * (this may occur even though this is a new chain: consider 1889 * e.g. the L1 -> L2 -> L3 -> L4 and the L5 -> L1 -> L2 -> L3 1890 * chains - the second one will be new, but L1 already has 1891 * L2 added to its dependency list, due to the first chain.) 1892 */ 1893 list_for_each_entry(entry, &hlock_class(prev)->locks_after, entry) { 1894 if (entry->class == hlock_class(next)) { 1895 if (distance == 1) 1896 entry->distance = 1; 1897 return 1; 1898 } 1899 } 1900 1901 /* 1902 * Is the <prev> -> <next> link redundant? 1903 */ 1904 this.class = hlock_class(prev); 1905 this.parent = NULL; 1906 ret = check_redundant(&this, hlock_class(next), &target_entry); 1907 if (!ret) { 1908 debug_atomic_inc(nr_redundant); 1909 return 2; 1910 } 1911 if (ret < 0) 1912 return print_bfs_bug(ret); 1913 1914 1915 if (!trace->entries && !save(trace)) 1916 return 0; 1917 1918 /* 1919 * Ok, all validations passed, add the new lock 1920 * to the previous lock's dependency list: 1921 */ 1922 ret = add_lock_to_list(hlock_class(next), 1923 &hlock_class(prev)->locks_after, 1924 next->acquire_ip, distance, trace); 1925 1926 if (!ret) 1927 return 0; 1928 1929 ret = add_lock_to_list(hlock_class(prev), 1930 &hlock_class(next)->locks_before, 1931 next->acquire_ip, distance, trace); 1932 if (!ret) 1933 return 0; 1934 1935 return 2; 1936 } 1937 1938 /* 1939 * Add the dependency to all directly-previous locks that are 'relevant'. 1940 * The ones that are relevant are (in increasing distance from curr): 1941 * all consecutive trylock entries and the final non-trylock entry - or 1942 * the end of this context's lock-chain - whichever comes first. 1943 */ 1944 static int 1945 check_prevs_add(struct task_struct *curr, struct held_lock *next) 1946 { 1947 int depth = curr->lockdep_depth; 1948 struct held_lock *hlock; 1949 struct stack_trace trace = { 1950 .nr_entries = 0, 1951 .max_entries = 0, 1952 .entries = NULL, 1953 .skip = 0, 1954 }; 1955 1956 /* 1957 * Debugging checks. 1958 * 1959 * Depth must not be zero for a non-head lock: 1960 */ 1961 if (!depth) 1962 goto out_bug; 1963 /* 1964 * At least two relevant locks must exist for this 1965 * to be a head: 1966 */ 1967 if (curr->held_locks[depth].irq_context != 1968 curr->held_locks[depth-1].irq_context) 1969 goto out_bug; 1970 1971 for (;;) { 1972 int distance = curr->lockdep_depth - depth + 1; 1973 hlock = curr->held_locks + depth - 1; 1974 1975 /* 1976 * Only non-recursive-read entries get new dependencies 1977 * added: 1978 */ 1979 if (hlock->read != 2 && hlock->check) { 1980 int ret = check_prev_add(curr, hlock, next, distance, &trace, save_trace); 1981 if (!ret) 1982 return 0; 1983 1984 /* 1985 * Stop after the first non-trylock entry, 1986 * as non-trylock entries have added their 1987 * own direct dependencies already, so this 1988 * lock is connected to them indirectly: 1989 */ 1990 if (!hlock->trylock) 1991 break; 1992 } 1993 1994 depth--; 1995 /* 1996 * End of lock-stack? 1997 */ 1998 if (!depth) 1999 break; 2000 /* 2001 * Stop the search if we cross into another context: 2002 */ 2003 if (curr->held_locks[depth].irq_context != 2004 curr->held_locks[depth-1].irq_context) 2005 break; 2006 } 2007 return 1; 2008 out_bug: 2009 if (!debug_locks_off_graph_unlock()) 2010 return 0; 2011 2012 /* 2013 * Clearly we all shouldn't be here, but since we made it we 2014 * can reliable say we messed up our state. See the above two 2015 * gotos for reasons why we could possibly end up here. 2016 */ 2017 WARN_ON(1); 2018 2019 return 0; 2020 } 2021 2022 unsigned long nr_lock_chains; 2023 struct lock_chain lock_chains[MAX_LOCKDEP_CHAINS]; 2024 int nr_chain_hlocks; 2025 static u16 chain_hlocks[MAX_LOCKDEP_CHAIN_HLOCKS]; 2026 2027 struct lock_class *lock_chain_get_class(struct lock_chain *chain, int i) 2028 { 2029 return lock_classes + chain_hlocks[chain->base + i]; 2030 } 2031 2032 /* 2033 * Returns the index of the first held_lock of the current chain 2034 */ 2035 static inline int get_first_held_lock(struct task_struct *curr, 2036 struct held_lock *hlock) 2037 { 2038 int i; 2039 struct held_lock *hlock_curr; 2040 2041 for (i = curr->lockdep_depth - 1; i >= 0; i--) { 2042 hlock_curr = curr->held_locks + i; 2043 if (hlock_curr->irq_context != hlock->irq_context) 2044 break; 2045 2046 } 2047 2048 return ++i; 2049 } 2050 2051 #ifdef CONFIG_DEBUG_LOCKDEP 2052 /* 2053 * Returns the next chain_key iteration 2054 */ 2055 static u64 print_chain_key_iteration(int class_idx, u64 chain_key) 2056 { 2057 u64 new_chain_key = iterate_chain_key(chain_key, class_idx); 2058 2059 printk(" class_idx:%d -> chain_key:%016Lx", 2060 class_idx, 2061 (unsigned long long)new_chain_key); 2062 return new_chain_key; 2063 } 2064 2065 static void 2066 print_chain_keys_held_locks(struct task_struct *curr, struct held_lock *hlock_next) 2067 { 2068 struct held_lock *hlock; 2069 u64 chain_key = 0; 2070 int depth = curr->lockdep_depth; 2071 int i; 2072 2073 printk("depth: %u\n", depth + 1); 2074 for (i = get_first_held_lock(curr, hlock_next); i < depth; i++) { 2075 hlock = curr->held_locks + i; 2076 chain_key = print_chain_key_iteration(hlock->class_idx, chain_key); 2077 2078 print_lock(hlock); 2079 } 2080 2081 print_chain_key_iteration(hlock_next->class_idx, chain_key); 2082 print_lock(hlock_next); 2083 } 2084 2085 static void print_chain_keys_chain(struct lock_chain *chain) 2086 { 2087 int i; 2088 u64 chain_key = 0; 2089 int class_id; 2090 2091 printk("depth: %u\n", chain->depth); 2092 for (i = 0; i < chain->depth; i++) { 2093 class_id = chain_hlocks[chain->base + i]; 2094 chain_key = print_chain_key_iteration(class_id + 1, chain_key); 2095 2096 print_lock_name(lock_classes + class_id); 2097 printk("\n"); 2098 } 2099 } 2100 2101 static void print_collision(struct task_struct *curr, 2102 struct held_lock *hlock_next, 2103 struct lock_chain *chain) 2104 { 2105 pr_warn("\n"); 2106 pr_warn("============================\n"); 2107 pr_warn("WARNING: chain_key collision\n"); 2108 print_kernel_ident(); 2109 pr_warn("----------------------------\n"); 2110 pr_warn("%s/%d: ", current->comm, task_pid_nr(current)); 2111 pr_warn("Hash chain already cached but the contents don't match!\n"); 2112 2113 pr_warn("Held locks:"); 2114 print_chain_keys_held_locks(curr, hlock_next); 2115 2116 pr_warn("Locks in cached chain:"); 2117 print_chain_keys_chain(chain); 2118 2119 pr_warn("\nstack backtrace:\n"); 2120 dump_stack(); 2121 } 2122 #endif 2123 2124 /* 2125 * Checks whether the chain and the current held locks are consistent 2126 * in depth and also in content. If they are not it most likely means 2127 * that there was a collision during the calculation of the chain_key. 2128 * Returns: 0 not passed, 1 passed 2129 */ 2130 static int check_no_collision(struct task_struct *curr, 2131 struct held_lock *hlock, 2132 struct lock_chain *chain) 2133 { 2134 #ifdef CONFIG_DEBUG_LOCKDEP 2135 int i, j, id; 2136 2137 i = get_first_held_lock(curr, hlock); 2138 2139 if (DEBUG_LOCKS_WARN_ON(chain->depth != curr->lockdep_depth - (i - 1))) { 2140 print_collision(curr, hlock, chain); 2141 return 0; 2142 } 2143 2144 for (j = 0; j < chain->depth - 1; j++, i++) { 2145 id = curr->held_locks[i].class_idx - 1; 2146 2147 if (DEBUG_LOCKS_WARN_ON(chain_hlocks[chain->base + j] != id)) { 2148 print_collision(curr, hlock, chain); 2149 return 0; 2150 } 2151 } 2152 #endif 2153 return 1; 2154 } 2155 2156 /* 2157 * Adds a dependency chain into chain hashtable. And must be called with 2158 * graph_lock held. 2159 * 2160 * Return 0 if fail, and graph_lock is released. 2161 * Return 1 if succeed, with graph_lock held. 2162 */ 2163 static inline int add_chain_cache(struct task_struct *curr, 2164 struct held_lock *hlock, 2165 u64 chain_key) 2166 { 2167 struct lock_class *class = hlock_class(hlock); 2168 struct hlist_head *hash_head = chainhashentry(chain_key); 2169 struct lock_chain *chain; 2170 int i, j; 2171 2172 /* 2173 * Allocate a new chain entry from the static array, and add 2174 * it to the hash: 2175 */ 2176 2177 /* 2178 * We might need to take the graph lock, ensure we've got IRQs 2179 * disabled to make this an IRQ-safe lock.. for recursion reasons 2180 * lockdep won't complain about its own locking errors. 2181 */ 2182 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled())) 2183 return 0; 2184 2185 if (unlikely(nr_lock_chains >= MAX_LOCKDEP_CHAINS)) { 2186 if (!debug_locks_off_graph_unlock()) 2187 return 0; 2188 2189 print_lockdep_off("BUG: MAX_LOCKDEP_CHAINS too low!"); 2190 dump_stack(); 2191 return 0; 2192 } 2193 chain = lock_chains + nr_lock_chains++; 2194 chain->chain_key = chain_key; 2195 chain->irq_context = hlock->irq_context; 2196 i = get_first_held_lock(curr, hlock); 2197 chain->depth = curr->lockdep_depth + 1 - i; 2198 2199 BUILD_BUG_ON((1UL << 24) <= ARRAY_SIZE(chain_hlocks)); 2200 BUILD_BUG_ON((1UL << 6) <= ARRAY_SIZE(curr->held_locks)); 2201 BUILD_BUG_ON((1UL << 8*sizeof(chain_hlocks[0])) <= ARRAY_SIZE(lock_classes)); 2202 2203 if (likely(nr_chain_hlocks + chain->depth <= MAX_LOCKDEP_CHAIN_HLOCKS)) { 2204 chain->base = nr_chain_hlocks; 2205 for (j = 0; j < chain->depth - 1; j++, i++) { 2206 int lock_id = curr->held_locks[i].class_idx - 1; 2207 chain_hlocks[chain->base + j] = lock_id; 2208 } 2209 chain_hlocks[chain->base + j] = class - lock_classes; 2210 } 2211 2212 if (nr_chain_hlocks < MAX_LOCKDEP_CHAIN_HLOCKS) 2213 nr_chain_hlocks += chain->depth; 2214 2215 #ifdef CONFIG_DEBUG_LOCKDEP 2216 /* 2217 * Important for check_no_collision(). 2218 */ 2219 if (unlikely(nr_chain_hlocks > MAX_LOCKDEP_CHAIN_HLOCKS)) { 2220 if (!debug_locks_off_graph_unlock()) 2221 return 0; 2222 2223 print_lockdep_off("BUG: MAX_LOCKDEP_CHAIN_HLOCKS too low!"); 2224 dump_stack(); 2225 return 0; 2226 } 2227 #endif 2228 2229 hlist_add_head_rcu(&chain->entry, hash_head); 2230 debug_atomic_inc(chain_lookup_misses); 2231 inc_chains(); 2232 2233 return 1; 2234 } 2235 2236 /* 2237 * Look up a dependency chain. 2238 */ 2239 static inline struct lock_chain *lookup_chain_cache(u64 chain_key) 2240 { 2241 struct hlist_head *hash_head = chainhashentry(chain_key); 2242 struct lock_chain *chain; 2243 2244 /* 2245 * We can walk it lock-free, because entries only get added 2246 * to the hash: 2247 */ 2248 hlist_for_each_entry_rcu(chain, hash_head, entry) { 2249 if (chain->chain_key == chain_key) { 2250 debug_atomic_inc(chain_lookup_hits); 2251 return chain; 2252 } 2253 } 2254 return NULL; 2255 } 2256 2257 /* 2258 * If the key is not present yet in dependency chain cache then 2259 * add it and return 1 - in this case the new dependency chain is 2260 * validated. If the key is already hashed, return 0. 2261 * (On return with 1 graph_lock is held.) 2262 */ 2263 static inline int lookup_chain_cache_add(struct task_struct *curr, 2264 struct held_lock *hlock, 2265 u64 chain_key) 2266 { 2267 struct lock_class *class = hlock_class(hlock); 2268 struct lock_chain *chain = lookup_chain_cache(chain_key); 2269 2270 if (chain) { 2271 cache_hit: 2272 if (!check_no_collision(curr, hlock, chain)) 2273 return 0; 2274 2275 if (very_verbose(class)) { 2276 printk("\nhash chain already cached, key: " 2277 "%016Lx tail class: [%px] %s\n", 2278 (unsigned long long)chain_key, 2279 class->key, class->name); 2280 } 2281 2282 return 0; 2283 } 2284 2285 if (very_verbose(class)) { 2286 printk("\nnew hash chain, key: %016Lx tail class: [%px] %s\n", 2287 (unsigned long long)chain_key, class->key, class->name); 2288 } 2289 2290 if (!graph_lock()) 2291 return 0; 2292 2293 /* 2294 * We have to walk the chain again locked - to avoid duplicates: 2295 */ 2296 chain = lookup_chain_cache(chain_key); 2297 if (chain) { 2298 graph_unlock(); 2299 goto cache_hit; 2300 } 2301 2302 if (!add_chain_cache(curr, hlock, chain_key)) 2303 return 0; 2304 2305 return 1; 2306 } 2307 2308 static int validate_chain(struct task_struct *curr, struct lockdep_map *lock, 2309 struct held_lock *hlock, int chain_head, u64 chain_key) 2310 { 2311 /* 2312 * Trylock needs to maintain the stack of held locks, but it 2313 * does not add new dependencies, because trylock can be done 2314 * in any order. 2315 * 2316 * We look up the chain_key and do the O(N^2) check and update of 2317 * the dependencies only if this is a new dependency chain. 2318 * (If lookup_chain_cache_add() return with 1 it acquires 2319 * graph_lock for us) 2320 */ 2321 if (!hlock->trylock && hlock->check && 2322 lookup_chain_cache_add(curr, hlock, chain_key)) { 2323 /* 2324 * Check whether last held lock: 2325 * 2326 * - is irq-safe, if this lock is irq-unsafe 2327 * - is softirq-safe, if this lock is hardirq-unsafe 2328 * 2329 * And check whether the new lock's dependency graph 2330 * could lead back to the previous lock. 2331 * 2332 * any of these scenarios could lead to a deadlock. If 2333 * All validations 2334 */ 2335 int ret = check_deadlock(curr, hlock, lock, hlock->read); 2336 2337 if (!ret) 2338 return 0; 2339 /* 2340 * Mark recursive read, as we jump over it when 2341 * building dependencies (just like we jump over 2342 * trylock entries): 2343 */ 2344 if (ret == 2) 2345 hlock->read = 2; 2346 /* 2347 * Add dependency only if this lock is not the head 2348 * of the chain, and if it's not a secondary read-lock: 2349 */ 2350 if (!chain_head && ret != 2) { 2351 if (!check_prevs_add(curr, hlock)) 2352 return 0; 2353 } 2354 2355 graph_unlock(); 2356 } else { 2357 /* after lookup_chain_cache_add(): */ 2358 if (unlikely(!debug_locks)) 2359 return 0; 2360 } 2361 2362 return 1; 2363 } 2364 #else 2365 static inline int validate_chain(struct task_struct *curr, 2366 struct lockdep_map *lock, struct held_lock *hlock, 2367 int chain_head, u64 chain_key) 2368 { 2369 return 1; 2370 } 2371 #endif 2372 2373 /* 2374 * We are building curr_chain_key incrementally, so double-check 2375 * it from scratch, to make sure that it's done correctly: 2376 */ 2377 static void check_chain_key(struct task_struct *curr) 2378 { 2379 #ifdef CONFIG_DEBUG_LOCKDEP 2380 struct held_lock *hlock, *prev_hlock = NULL; 2381 unsigned int i; 2382 u64 chain_key = 0; 2383 2384 for (i = 0; i < curr->lockdep_depth; i++) { 2385 hlock = curr->held_locks + i; 2386 if (chain_key != hlock->prev_chain_key) { 2387 debug_locks_off(); 2388 /* 2389 * We got mighty confused, our chain keys don't match 2390 * with what we expect, someone trample on our task state? 2391 */ 2392 WARN(1, "hm#1, depth: %u [%u], %016Lx != %016Lx\n", 2393 curr->lockdep_depth, i, 2394 (unsigned long long)chain_key, 2395 (unsigned long long)hlock->prev_chain_key); 2396 return; 2397 } 2398 /* 2399 * Whoops ran out of static storage again? 2400 */ 2401 if (DEBUG_LOCKS_WARN_ON(hlock->class_idx > MAX_LOCKDEP_KEYS)) 2402 return; 2403 2404 if (prev_hlock && (prev_hlock->irq_context != 2405 hlock->irq_context)) 2406 chain_key = 0; 2407 chain_key = iterate_chain_key(chain_key, hlock->class_idx); 2408 prev_hlock = hlock; 2409 } 2410 if (chain_key != curr->curr_chain_key) { 2411 debug_locks_off(); 2412 /* 2413 * More smoking hash instead of calculating it, damn see these 2414 * numbers float.. I bet that a pink elephant stepped on my memory. 2415 */ 2416 WARN(1, "hm#2, depth: %u [%u], %016Lx != %016Lx\n", 2417 curr->lockdep_depth, i, 2418 (unsigned long long)chain_key, 2419 (unsigned long long)curr->curr_chain_key); 2420 } 2421 #endif 2422 } 2423 2424 static void 2425 print_usage_bug_scenario(struct held_lock *lock) 2426 { 2427 struct lock_class *class = hlock_class(lock); 2428 2429 printk(" Possible unsafe locking scenario:\n\n"); 2430 printk(" CPU0\n"); 2431 printk(" ----\n"); 2432 printk(" lock("); 2433 __print_lock_name(class); 2434 printk(KERN_CONT ");\n"); 2435 printk(" <Interrupt>\n"); 2436 printk(" lock("); 2437 __print_lock_name(class); 2438 printk(KERN_CONT ");\n"); 2439 printk("\n *** DEADLOCK ***\n\n"); 2440 } 2441 2442 static int 2443 print_usage_bug(struct task_struct *curr, struct held_lock *this, 2444 enum lock_usage_bit prev_bit, enum lock_usage_bit new_bit) 2445 { 2446 if (!debug_locks_off_graph_unlock() || debug_locks_silent) 2447 return 0; 2448 2449 pr_warn("\n"); 2450 pr_warn("================================\n"); 2451 pr_warn("WARNING: inconsistent lock state\n"); 2452 print_kernel_ident(); 2453 pr_warn("--------------------------------\n"); 2454 2455 pr_warn("inconsistent {%s} -> {%s} usage.\n", 2456 usage_str[prev_bit], usage_str[new_bit]); 2457 2458 pr_warn("%s/%d [HC%u[%lu]:SC%u[%lu]:HE%u:SE%u] takes:\n", 2459 curr->comm, task_pid_nr(curr), 2460 trace_hardirq_context(curr), hardirq_count() >> HARDIRQ_SHIFT, 2461 trace_softirq_context(curr), softirq_count() >> SOFTIRQ_SHIFT, 2462 trace_hardirqs_enabled(curr), 2463 trace_softirqs_enabled(curr)); 2464 print_lock(this); 2465 2466 pr_warn("{%s} state was registered at:\n", usage_str[prev_bit]); 2467 print_stack_trace(hlock_class(this)->usage_traces + prev_bit, 1); 2468 2469 print_irqtrace_events(curr); 2470 pr_warn("\nother info that might help us debug this:\n"); 2471 print_usage_bug_scenario(this); 2472 2473 lockdep_print_held_locks(curr); 2474 2475 pr_warn("\nstack backtrace:\n"); 2476 dump_stack(); 2477 2478 return 0; 2479 } 2480 2481 /* 2482 * Print out an error if an invalid bit is set: 2483 */ 2484 static inline int 2485 valid_state(struct task_struct *curr, struct held_lock *this, 2486 enum lock_usage_bit new_bit, enum lock_usage_bit bad_bit) 2487 { 2488 if (unlikely(hlock_class(this)->usage_mask & (1 << bad_bit))) 2489 return print_usage_bug(curr, this, bad_bit, new_bit); 2490 return 1; 2491 } 2492 2493 static int mark_lock(struct task_struct *curr, struct held_lock *this, 2494 enum lock_usage_bit new_bit); 2495 2496 #if defined(CONFIG_TRACE_IRQFLAGS) && defined(CONFIG_PROVE_LOCKING) 2497 2498 /* 2499 * print irq inversion bug: 2500 */ 2501 static int 2502 print_irq_inversion_bug(struct task_struct *curr, 2503 struct lock_list *root, struct lock_list *other, 2504 struct held_lock *this, int forwards, 2505 const char *irqclass) 2506 { 2507 struct lock_list *entry = other; 2508 struct lock_list *middle = NULL; 2509 int depth; 2510 2511 if (!debug_locks_off_graph_unlock() || debug_locks_silent) 2512 return 0; 2513 2514 pr_warn("\n"); 2515 pr_warn("========================================================\n"); 2516 pr_warn("WARNING: possible irq lock inversion dependency detected\n"); 2517 print_kernel_ident(); 2518 pr_warn("--------------------------------------------------------\n"); 2519 pr_warn("%s/%d just changed the state of lock:\n", 2520 curr->comm, task_pid_nr(curr)); 2521 print_lock(this); 2522 if (forwards) 2523 pr_warn("but this lock took another, %s-unsafe lock in the past:\n", irqclass); 2524 else 2525 pr_warn("but this lock was taken by another, %s-safe lock in the past:\n", irqclass); 2526 print_lock_name(other->class); 2527 pr_warn("\n\nand interrupts could create inverse lock ordering between them.\n\n"); 2528 2529 pr_warn("\nother info that might help us debug this:\n"); 2530 2531 /* Find a middle lock (if one exists) */ 2532 depth = get_lock_depth(other); 2533 do { 2534 if (depth == 0 && (entry != root)) { 2535 pr_warn("lockdep:%s bad path found in chain graph\n", __func__); 2536 break; 2537 } 2538 middle = entry; 2539 entry = get_lock_parent(entry); 2540 depth--; 2541 } while (entry && entry != root && (depth >= 0)); 2542 if (forwards) 2543 print_irq_lock_scenario(root, other, 2544 middle ? middle->class : root->class, other->class); 2545 else 2546 print_irq_lock_scenario(other, root, 2547 middle ? middle->class : other->class, root->class); 2548 2549 lockdep_print_held_locks(curr); 2550 2551 pr_warn("\nthe shortest dependencies between 2nd lock and 1st lock:\n"); 2552 if (!save_trace(&root->trace)) 2553 return 0; 2554 print_shortest_lock_dependencies(other, root); 2555 2556 pr_warn("\nstack backtrace:\n"); 2557 dump_stack(); 2558 2559 return 0; 2560 } 2561 2562 /* 2563 * Prove that in the forwards-direction subgraph starting at <this> 2564 * there is no lock matching <mask>: 2565 */ 2566 static int 2567 check_usage_forwards(struct task_struct *curr, struct held_lock *this, 2568 enum lock_usage_bit bit, const char *irqclass) 2569 { 2570 int ret; 2571 struct lock_list root; 2572 struct lock_list *uninitialized_var(target_entry); 2573 2574 root.parent = NULL; 2575 root.class = hlock_class(this); 2576 ret = find_usage_forwards(&root, bit, &target_entry); 2577 if (ret < 0) 2578 return print_bfs_bug(ret); 2579 if (ret == 1) 2580 return ret; 2581 2582 return print_irq_inversion_bug(curr, &root, target_entry, 2583 this, 1, irqclass); 2584 } 2585 2586 /* 2587 * Prove that in the backwards-direction subgraph starting at <this> 2588 * there is no lock matching <mask>: 2589 */ 2590 static int 2591 check_usage_backwards(struct task_struct *curr, struct held_lock *this, 2592 enum lock_usage_bit bit, const char *irqclass) 2593 { 2594 int ret; 2595 struct lock_list root; 2596 struct lock_list *uninitialized_var(target_entry); 2597 2598 root.parent = NULL; 2599 root.class = hlock_class(this); 2600 ret = find_usage_backwards(&root, bit, &target_entry); 2601 if (ret < 0) 2602 return print_bfs_bug(ret); 2603 if (ret == 1) 2604 return ret; 2605 2606 return print_irq_inversion_bug(curr, &root, target_entry, 2607 this, 0, irqclass); 2608 } 2609 2610 void print_irqtrace_events(struct task_struct *curr) 2611 { 2612 printk("irq event stamp: %u\n", curr->irq_events); 2613 printk("hardirqs last enabled at (%u): [<%px>] %pS\n", 2614 curr->hardirq_enable_event, (void *)curr->hardirq_enable_ip, 2615 (void *)curr->hardirq_enable_ip); 2616 printk("hardirqs last disabled at (%u): [<%px>] %pS\n", 2617 curr->hardirq_disable_event, (void *)curr->hardirq_disable_ip, 2618 (void *)curr->hardirq_disable_ip); 2619 printk("softirqs last enabled at (%u): [<%px>] %pS\n", 2620 curr->softirq_enable_event, (void *)curr->softirq_enable_ip, 2621 (void *)curr->softirq_enable_ip); 2622 printk("softirqs last disabled at (%u): [<%px>] %pS\n", 2623 curr->softirq_disable_event, (void *)curr->softirq_disable_ip, 2624 (void *)curr->softirq_disable_ip); 2625 } 2626 2627 static int HARDIRQ_verbose(struct lock_class *class) 2628 { 2629 #if HARDIRQ_VERBOSE 2630 return class_filter(class); 2631 #endif 2632 return 0; 2633 } 2634 2635 static int SOFTIRQ_verbose(struct lock_class *class) 2636 { 2637 #if SOFTIRQ_VERBOSE 2638 return class_filter(class); 2639 #endif 2640 return 0; 2641 } 2642 2643 #define STRICT_READ_CHECKS 1 2644 2645 static int (*state_verbose_f[])(struct lock_class *class) = { 2646 #define LOCKDEP_STATE(__STATE) \ 2647 __STATE##_verbose, 2648 #include "lockdep_states.h" 2649 #undef LOCKDEP_STATE 2650 }; 2651 2652 static inline int state_verbose(enum lock_usage_bit bit, 2653 struct lock_class *class) 2654 { 2655 return state_verbose_f[bit >> 2](class); 2656 } 2657 2658 typedef int (*check_usage_f)(struct task_struct *, struct held_lock *, 2659 enum lock_usage_bit bit, const char *name); 2660 2661 static int 2662 mark_lock_irq(struct task_struct *curr, struct held_lock *this, 2663 enum lock_usage_bit new_bit) 2664 { 2665 int excl_bit = exclusive_bit(new_bit); 2666 int read = new_bit & 1; 2667 int dir = new_bit & 2; 2668 2669 /* 2670 * mark USED_IN has to look forwards -- to ensure no dependency 2671 * has ENABLED state, which would allow recursion deadlocks. 2672 * 2673 * mark ENABLED has to look backwards -- to ensure no dependee 2674 * has USED_IN state, which, again, would allow recursion deadlocks. 2675 */ 2676 check_usage_f usage = dir ? 2677 check_usage_backwards : check_usage_forwards; 2678 2679 /* 2680 * Validate that this particular lock does not have conflicting 2681 * usage states. 2682 */ 2683 if (!valid_state(curr, this, new_bit, excl_bit)) 2684 return 0; 2685 2686 /* 2687 * Validate that the lock dependencies don't have conflicting usage 2688 * states. 2689 */ 2690 if ((!read || !dir || STRICT_READ_CHECKS) && 2691 !usage(curr, this, excl_bit, state_name(new_bit & ~1))) 2692 return 0; 2693 2694 /* 2695 * Check for read in write conflicts 2696 */ 2697 if (!read) { 2698 if (!valid_state(curr, this, new_bit, excl_bit + 1)) 2699 return 0; 2700 2701 if (STRICT_READ_CHECKS && 2702 !usage(curr, this, excl_bit + 1, 2703 state_name(new_bit + 1))) 2704 return 0; 2705 } 2706 2707 if (state_verbose(new_bit, hlock_class(this))) 2708 return 2; 2709 2710 return 1; 2711 } 2712 2713 enum mark_type { 2714 #define LOCKDEP_STATE(__STATE) __STATE, 2715 #include "lockdep_states.h" 2716 #undef LOCKDEP_STATE 2717 }; 2718 2719 /* 2720 * Mark all held locks with a usage bit: 2721 */ 2722 static int 2723 mark_held_locks(struct task_struct *curr, enum mark_type mark) 2724 { 2725 enum lock_usage_bit usage_bit; 2726 struct held_lock *hlock; 2727 int i; 2728 2729 for (i = 0; i < curr->lockdep_depth; i++) { 2730 hlock = curr->held_locks + i; 2731 2732 usage_bit = 2 + (mark << 2); /* ENABLED */ 2733 if (hlock->read) 2734 usage_bit += 1; /* READ */ 2735 2736 BUG_ON(usage_bit >= LOCK_USAGE_STATES); 2737 2738 if (!hlock->check) 2739 continue; 2740 2741 if (!mark_lock(curr, hlock, usage_bit)) 2742 return 0; 2743 } 2744 2745 return 1; 2746 } 2747 2748 /* 2749 * Hardirqs will be enabled: 2750 */ 2751 static void __trace_hardirqs_on_caller(unsigned long ip) 2752 { 2753 struct task_struct *curr = current; 2754 2755 /* we'll do an OFF -> ON transition: */ 2756 curr->hardirqs_enabled = 1; 2757 2758 /* 2759 * We are going to turn hardirqs on, so set the 2760 * usage bit for all held locks: 2761 */ 2762 if (!mark_held_locks(curr, HARDIRQ)) 2763 return; 2764 /* 2765 * If we have softirqs enabled, then set the usage 2766 * bit for all held locks. (disabled hardirqs prevented 2767 * this bit from being set before) 2768 */ 2769 if (curr->softirqs_enabled) 2770 if (!mark_held_locks(curr, SOFTIRQ)) 2771 return; 2772 2773 curr->hardirq_enable_ip = ip; 2774 curr->hardirq_enable_event = ++curr->irq_events; 2775 debug_atomic_inc(hardirqs_on_events); 2776 } 2777 2778 void lockdep_hardirqs_on(unsigned long ip) 2779 { 2780 if (unlikely(!debug_locks || current->lockdep_recursion)) 2781 return; 2782 2783 if (unlikely(current->hardirqs_enabled)) { 2784 /* 2785 * Neither irq nor preemption are disabled here 2786 * so this is racy by nature but losing one hit 2787 * in a stat is not a big deal. 2788 */ 2789 __debug_atomic_inc(redundant_hardirqs_on); 2790 return; 2791 } 2792 2793 /* 2794 * We're enabling irqs and according to our state above irqs weren't 2795 * already enabled, yet we find the hardware thinks they are in fact 2796 * enabled.. someone messed up their IRQ state tracing. 2797 */ 2798 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled())) 2799 return; 2800 2801 /* 2802 * See the fine text that goes along with this variable definition. 2803 */ 2804 if (DEBUG_LOCKS_WARN_ON(unlikely(early_boot_irqs_disabled))) 2805 return; 2806 2807 /* 2808 * Can't allow enabling interrupts while in an interrupt handler, 2809 * that's general bad form and such. Recursion, limited stack etc.. 2810 */ 2811 if (DEBUG_LOCKS_WARN_ON(current->hardirq_context)) 2812 return; 2813 2814 current->lockdep_recursion = 1; 2815 __trace_hardirqs_on_caller(ip); 2816 current->lockdep_recursion = 0; 2817 } 2818 NOKPROBE_SYMBOL(lockdep_hardirqs_on); 2819 2820 /* 2821 * Hardirqs were disabled: 2822 */ 2823 void lockdep_hardirqs_off(unsigned long ip) 2824 { 2825 struct task_struct *curr = current; 2826 2827 if (unlikely(!debug_locks || current->lockdep_recursion)) 2828 return; 2829 2830 /* 2831 * So we're supposed to get called after you mask local IRQs, but for 2832 * some reason the hardware doesn't quite think you did a proper job. 2833 */ 2834 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled())) 2835 return; 2836 2837 if (curr->hardirqs_enabled) { 2838 /* 2839 * We have done an ON -> OFF transition: 2840 */ 2841 curr->hardirqs_enabled = 0; 2842 curr->hardirq_disable_ip = ip; 2843 curr->hardirq_disable_event = ++curr->irq_events; 2844 debug_atomic_inc(hardirqs_off_events); 2845 } else 2846 debug_atomic_inc(redundant_hardirqs_off); 2847 } 2848 NOKPROBE_SYMBOL(lockdep_hardirqs_off); 2849 2850 /* 2851 * Softirqs will be enabled: 2852 */ 2853 void trace_softirqs_on(unsigned long ip) 2854 { 2855 struct task_struct *curr = current; 2856 2857 if (unlikely(!debug_locks || current->lockdep_recursion)) 2858 return; 2859 2860 /* 2861 * We fancy IRQs being disabled here, see softirq.c, avoids 2862 * funny state and nesting things. 2863 */ 2864 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled())) 2865 return; 2866 2867 if (curr->softirqs_enabled) { 2868 debug_atomic_inc(redundant_softirqs_on); 2869 return; 2870 } 2871 2872 current->lockdep_recursion = 1; 2873 /* 2874 * We'll do an OFF -> ON transition: 2875 */ 2876 curr->softirqs_enabled = 1; 2877 curr->softirq_enable_ip = ip; 2878 curr->softirq_enable_event = ++curr->irq_events; 2879 debug_atomic_inc(softirqs_on_events); 2880 /* 2881 * We are going to turn softirqs on, so set the 2882 * usage bit for all held locks, if hardirqs are 2883 * enabled too: 2884 */ 2885 if (curr->hardirqs_enabled) 2886 mark_held_locks(curr, SOFTIRQ); 2887 current->lockdep_recursion = 0; 2888 } 2889 2890 /* 2891 * Softirqs were disabled: 2892 */ 2893 void trace_softirqs_off(unsigned long ip) 2894 { 2895 struct task_struct *curr = current; 2896 2897 if (unlikely(!debug_locks || current->lockdep_recursion)) 2898 return; 2899 2900 /* 2901 * We fancy IRQs being disabled here, see softirq.c 2902 */ 2903 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled())) 2904 return; 2905 2906 if (curr->softirqs_enabled) { 2907 /* 2908 * We have done an ON -> OFF transition: 2909 */ 2910 curr->softirqs_enabled = 0; 2911 curr->softirq_disable_ip = ip; 2912 curr->softirq_disable_event = ++curr->irq_events; 2913 debug_atomic_inc(softirqs_off_events); 2914 /* 2915 * Whoops, we wanted softirqs off, so why aren't they? 2916 */ 2917 DEBUG_LOCKS_WARN_ON(!softirq_count()); 2918 } else 2919 debug_atomic_inc(redundant_softirqs_off); 2920 } 2921 2922 static int mark_irqflags(struct task_struct *curr, struct held_lock *hlock) 2923 { 2924 /* 2925 * If non-trylock use in a hardirq or softirq context, then 2926 * mark the lock as used in these contexts: 2927 */ 2928 if (!hlock->trylock) { 2929 if (hlock->read) { 2930 if (curr->hardirq_context) 2931 if (!mark_lock(curr, hlock, 2932 LOCK_USED_IN_HARDIRQ_READ)) 2933 return 0; 2934 if (curr->softirq_context) 2935 if (!mark_lock(curr, hlock, 2936 LOCK_USED_IN_SOFTIRQ_READ)) 2937 return 0; 2938 } else { 2939 if (curr->hardirq_context) 2940 if (!mark_lock(curr, hlock, LOCK_USED_IN_HARDIRQ)) 2941 return 0; 2942 if (curr->softirq_context) 2943 if (!mark_lock(curr, hlock, LOCK_USED_IN_SOFTIRQ)) 2944 return 0; 2945 } 2946 } 2947 if (!hlock->hardirqs_off) { 2948 if (hlock->read) { 2949 if (!mark_lock(curr, hlock, 2950 LOCK_ENABLED_HARDIRQ_READ)) 2951 return 0; 2952 if (curr->softirqs_enabled) 2953 if (!mark_lock(curr, hlock, 2954 LOCK_ENABLED_SOFTIRQ_READ)) 2955 return 0; 2956 } else { 2957 if (!mark_lock(curr, hlock, 2958 LOCK_ENABLED_HARDIRQ)) 2959 return 0; 2960 if (curr->softirqs_enabled) 2961 if (!mark_lock(curr, hlock, 2962 LOCK_ENABLED_SOFTIRQ)) 2963 return 0; 2964 } 2965 } 2966 2967 return 1; 2968 } 2969 2970 static inline unsigned int task_irq_context(struct task_struct *task) 2971 { 2972 return 2 * !!task->hardirq_context + !!task->softirq_context; 2973 } 2974 2975 static int separate_irq_context(struct task_struct *curr, 2976 struct held_lock *hlock) 2977 { 2978 unsigned int depth = curr->lockdep_depth; 2979 2980 /* 2981 * Keep track of points where we cross into an interrupt context: 2982 */ 2983 if (depth) { 2984 struct held_lock *prev_hlock; 2985 2986 prev_hlock = curr->held_locks + depth-1; 2987 /* 2988 * If we cross into another context, reset the 2989 * hash key (this also prevents the checking and the 2990 * adding of the dependency to 'prev'): 2991 */ 2992 if (prev_hlock->irq_context != hlock->irq_context) 2993 return 1; 2994 } 2995 return 0; 2996 } 2997 2998 #else /* defined(CONFIG_TRACE_IRQFLAGS) && defined(CONFIG_PROVE_LOCKING) */ 2999 3000 static inline 3001 int mark_lock_irq(struct task_struct *curr, struct held_lock *this, 3002 enum lock_usage_bit new_bit) 3003 { 3004 WARN_ON(1); /* Impossible innit? when we don't have TRACE_IRQFLAG */ 3005 return 1; 3006 } 3007 3008 static inline int mark_irqflags(struct task_struct *curr, 3009 struct held_lock *hlock) 3010 { 3011 return 1; 3012 } 3013 3014 static inline unsigned int task_irq_context(struct task_struct *task) 3015 { 3016 return 0; 3017 } 3018 3019 static inline int separate_irq_context(struct task_struct *curr, 3020 struct held_lock *hlock) 3021 { 3022 return 0; 3023 } 3024 3025 #endif /* defined(CONFIG_TRACE_IRQFLAGS) && defined(CONFIG_PROVE_LOCKING) */ 3026 3027 /* 3028 * Mark a lock with a usage bit, and validate the state transition: 3029 */ 3030 static int mark_lock(struct task_struct *curr, struct held_lock *this, 3031 enum lock_usage_bit new_bit) 3032 { 3033 unsigned int new_mask = 1 << new_bit, ret = 1; 3034 3035 /* 3036 * If already set then do not dirty the cacheline, 3037 * nor do any checks: 3038 */ 3039 if (likely(hlock_class(this)->usage_mask & new_mask)) 3040 return 1; 3041 3042 if (!graph_lock()) 3043 return 0; 3044 /* 3045 * Make sure we didn't race: 3046 */ 3047 if (unlikely(hlock_class(this)->usage_mask & new_mask)) { 3048 graph_unlock(); 3049 return 1; 3050 } 3051 3052 hlock_class(this)->usage_mask |= new_mask; 3053 3054 if (!save_trace(hlock_class(this)->usage_traces + new_bit)) 3055 return 0; 3056 3057 switch (new_bit) { 3058 #define LOCKDEP_STATE(__STATE) \ 3059 case LOCK_USED_IN_##__STATE: \ 3060 case LOCK_USED_IN_##__STATE##_READ: \ 3061 case LOCK_ENABLED_##__STATE: \ 3062 case LOCK_ENABLED_##__STATE##_READ: 3063 #include "lockdep_states.h" 3064 #undef LOCKDEP_STATE 3065 ret = mark_lock_irq(curr, this, new_bit); 3066 if (!ret) 3067 return 0; 3068 break; 3069 case LOCK_USED: 3070 debug_atomic_dec(nr_unused_locks); 3071 break; 3072 default: 3073 if (!debug_locks_off_graph_unlock()) 3074 return 0; 3075 WARN_ON(1); 3076 return 0; 3077 } 3078 3079 graph_unlock(); 3080 3081 /* 3082 * We must printk outside of the graph_lock: 3083 */ 3084 if (ret == 2) { 3085 printk("\nmarked lock as {%s}:\n", usage_str[new_bit]); 3086 print_lock(this); 3087 print_irqtrace_events(curr); 3088 dump_stack(); 3089 } 3090 3091 return ret; 3092 } 3093 3094 /* 3095 * Initialize a lock instance's lock-class mapping info: 3096 */ 3097 void lockdep_init_map(struct lockdep_map *lock, const char *name, 3098 struct lock_class_key *key, int subclass) 3099 { 3100 int i; 3101 3102 for (i = 0; i < NR_LOCKDEP_CACHING_CLASSES; i++) 3103 lock->class_cache[i] = NULL; 3104 3105 #ifdef CONFIG_LOCK_STAT 3106 lock->cpu = raw_smp_processor_id(); 3107 #endif 3108 3109 /* 3110 * Can't be having no nameless bastards around this place! 3111 */ 3112 if (DEBUG_LOCKS_WARN_ON(!name)) { 3113 lock->name = "NULL"; 3114 return; 3115 } 3116 3117 lock->name = name; 3118 3119 /* 3120 * No key, no joy, we need to hash something. 3121 */ 3122 if (DEBUG_LOCKS_WARN_ON(!key)) 3123 return; 3124 /* 3125 * Sanity check, the lock-class key must be persistent: 3126 */ 3127 if (!static_obj(key)) { 3128 printk("BUG: key %px not in .data!\n", key); 3129 /* 3130 * What it says above ^^^^^, I suggest you read it. 3131 */ 3132 DEBUG_LOCKS_WARN_ON(1); 3133 return; 3134 } 3135 lock->key = key; 3136 3137 if (unlikely(!debug_locks)) 3138 return; 3139 3140 if (subclass) { 3141 unsigned long flags; 3142 3143 if (DEBUG_LOCKS_WARN_ON(current->lockdep_recursion)) 3144 return; 3145 3146 raw_local_irq_save(flags); 3147 current->lockdep_recursion = 1; 3148 register_lock_class(lock, subclass, 1); 3149 current->lockdep_recursion = 0; 3150 raw_local_irq_restore(flags); 3151 } 3152 } 3153 EXPORT_SYMBOL_GPL(lockdep_init_map); 3154 3155 struct lock_class_key __lockdep_no_validate__; 3156 EXPORT_SYMBOL_GPL(__lockdep_no_validate__); 3157 3158 static int 3159 print_lock_nested_lock_not_held(struct task_struct *curr, 3160 struct held_lock *hlock, 3161 unsigned long ip) 3162 { 3163 if (!debug_locks_off()) 3164 return 0; 3165 if (debug_locks_silent) 3166 return 0; 3167 3168 pr_warn("\n"); 3169 pr_warn("==================================\n"); 3170 pr_warn("WARNING: Nested lock was not taken\n"); 3171 print_kernel_ident(); 3172 pr_warn("----------------------------------\n"); 3173 3174 pr_warn("%s/%d is trying to lock:\n", curr->comm, task_pid_nr(curr)); 3175 print_lock(hlock); 3176 3177 pr_warn("\nbut this task is not holding:\n"); 3178 pr_warn("%s\n", hlock->nest_lock->name); 3179 3180 pr_warn("\nstack backtrace:\n"); 3181 dump_stack(); 3182 3183 pr_warn("\nother info that might help us debug this:\n"); 3184 lockdep_print_held_locks(curr); 3185 3186 pr_warn("\nstack backtrace:\n"); 3187 dump_stack(); 3188 3189 return 0; 3190 } 3191 3192 static int __lock_is_held(const struct lockdep_map *lock, int read); 3193 3194 /* 3195 * This gets called for every mutex_lock*()/spin_lock*() operation. 3196 * We maintain the dependency maps and validate the locking attempt: 3197 * 3198 * The callers must make sure that IRQs are disabled before calling it, 3199 * otherwise we could get an interrupt which would want to take locks, 3200 * which would end up in lockdep again. 3201 */ 3202 static int __lock_acquire(struct lockdep_map *lock, unsigned int subclass, 3203 int trylock, int read, int check, int hardirqs_off, 3204 struct lockdep_map *nest_lock, unsigned long ip, 3205 int references, int pin_count) 3206 { 3207 struct task_struct *curr = current; 3208 struct lock_class *class = NULL; 3209 struct held_lock *hlock; 3210 unsigned int depth; 3211 int chain_head = 0; 3212 int class_idx; 3213 u64 chain_key; 3214 3215 if (unlikely(!debug_locks)) 3216 return 0; 3217 3218 if (!prove_locking || lock->key == &__lockdep_no_validate__) 3219 check = 0; 3220 3221 if (subclass < NR_LOCKDEP_CACHING_CLASSES) 3222 class = lock->class_cache[subclass]; 3223 /* 3224 * Not cached? 3225 */ 3226 if (unlikely(!class)) { 3227 class = register_lock_class(lock, subclass, 0); 3228 if (!class) 3229 return 0; 3230 } 3231 3232 debug_class_ops_inc(class); 3233 3234 if (very_verbose(class)) { 3235 printk("\nacquire class [%px] %s", class->key, class->name); 3236 if (class->name_version > 1) 3237 printk(KERN_CONT "#%d", class->name_version); 3238 printk(KERN_CONT "\n"); 3239 dump_stack(); 3240 } 3241 3242 /* 3243 * Add the lock to the list of currently held locks. 3244 * (we dont increase the depth just yet, up until the 3245 * dependency checks are done) 3246 */ 3247 depth = curr->lockdep_depth; 3248 /* 3249 * Ran out of static storage for our per-task lock stack again have we? 3250 */ 3251 if (DEBUG_LOCKS_WARN_ON(depth >= MAX_LOCK_DEPTH)) 3252 return 0; 3253 3254 class_idx = class - lock_classes + 1; 3255 3256 if (depth) { 3257 hlock = curr->held_locks + depth - 1; 3258 if (hlock->class_idx == class_idx && nest_lock) { 3259 if (hlock->references) { 3260 /* 3261 * Check: unsigned int references:12, overflow. 3262 */ 3263 if (DEBUG_LOCKS_WARN_ON(hlock->references == (1 << 12)-1)) 3264 return 0; 3265 3266 hlock->references++; 3267 } else { 3268 hlock->references = 2; 3269 } 3270 3271 return 1; 3272 } 3273 } 3274 3275 hlock = curr->held_locks + depth; 3276 /* 3277 * Plain impossible, we just registered it and checked it weren't no 3278 * NULL like.. I bet this mushroom I ate was good! 3279 */ 3280 if (DEBUG_LOCKS_WARN_ON(!class)) 3281 return 0; 3282 hlock->class_idx = class_idx; 3283 hlock->acquire_ip = ip; 3284 hlock->instance = lock; 3285 hlock->nest_lock = nest_lock; 3286 hlock->irq_context = task_irq_context(curr); 3287 hlock->trylock = trylock; 3288 hlock->read = read; 3289 hlock->check = check; 3290 hlock->hardirqs_off = !!hardirqs_off; 3291 hlock->references = references; 3292 #ifdef CONFIG_LOCK_STAT 3293 hlock->waittime_stamp = 0; 3294 hlock->holdtime_stamp = lockstat_clock(); 3295 #endif 3296 hlock->pin_count = pin_count; 3297 3298 if (check && !mark_irqflags(curr, hlock)) 3299 return 0; 3300 3301 /* mark it as used: */ 3302 if (!mark_lock(curr, hlock, LOCK_USED)) 3303 return 0; 3304 3305 /* 3306 * Calculate the chain hash: it's the combined hash of all the 3307 * lock keys along the dependency chain. We save the hash value 3308 * at every step so that we can get the current hash easily 3309 * after unlock. The chain hash is then used to cache dependency 3310 * results. 3311 * 3312 * The 'key ID' is what is the most compact key value to drive 3313 * the hash, not class->key. 3314 */ 3315 /* 3316 * Whoops, we did it again.. ran straight out of our static allocation. 3317 */ 3318 if (DEBUG_LOCKS_WARN_ON(class_idx > MAX_LOCKDEP_KEYS)) 3319 return 0; 3320 3321 chain_key = curr->curr_chain_key; 3322 if (!depth) { 3323 /* 3324 * How can we have a chain hash when we ain't got no keys?! 3325 */ 3326 if (DEBUG_LOCKS_WARN_ON(chain_key != 0)) 3327 return 0; 3328 chain_head = 1; 3329 } 3330 3331 hlock->prev_chain_key = chain_key; 3332 if (separate_irq_context(curr, hlock)) { 3333 chain_key = 0; 3334 chain_head = 1; 3335 } 3336 chain_key = iterate_chain_key(chain_key, class_idx); 3337 3338 if (nest_lock && !__lock_is_held(nest_lock, -1)) 3339 return print_lock_nested_lock_not_held(curr, hlock, ip); 3340 3341 if (!validate_chain(curr, lock, hlock, chain_head, chain_key)) 3342 return 0; 3343 3344 curr->curr_chain_key = chain_key; 3345 curr->lockdep_depth++; 3346 check_chain_key(curr); 3347 #ifdef CONFIG_DEBUG_LOCKDEP 3348 if (unlikely(!debug_locks)) 3349 return 0; 3350 #endif 3351 if (unlikely(curr->lockdep_depth >= MAX_LOCK_DEPTH)) { 3352 debug_locks_off(); 3353 print_lockdep_off("BUG: MAX_LOCK_DEPTH too low!"); 3354 printk(KERN_DEBUG "depth: %i max: %lu!\n", 3355 curr->lockdep_depth, MAX_LOCK_DEPTH); 3356 3357 lockdep_print_held_locks(current); 3358 debug_show_all_locks(); 3359 dump_stack(); 3360 3361 return 0; 3362 } 3363 3364 if (unlikely(curr->lockdep_depth > max_lockdep_depth)) 3365 max_lockdep_depth = curr->lockdep_depth; 3366 3367 return 1; 3368 } 3369 3370 static int 3371 print_unlock_imbalance_bug(struct task_struct *curr, struct lockdep_map *lock, 3372 unsigned long ip) 3373 { 3374 if (!debug_locks_off()) 3375 return 0; 3376 if (debug_locks_silent) 3377 return 0; 3378 3379 pr_warn("\n"); 3380 pr_warn("=====================================\n"); 3381 pr_warn("WARNING: bad unlock balance detected!\n"); 3382 print_kernel_ident(); 3383 pr_warn("-------------------------------------\n"); 3384 pr_warn("%s/%d is trying to release lock (", 3385 curr->comm, task_pid_nr(curr)); 3386 print_lockdep_cache(lock); 3387 pr_cont(") at:\n"); 3388 print_ip_sym(ip); 3389 pr_warn("but there are no more locks to release!\n"); 3390 pr_warn("\nother info that might help us debug this:\n"); 3391 lockdep_print_held_locks(curr); 3392 3393 pr_warn("\nstack backtrace:\n"); 3394 dump_stack(); 3395 3396 return 0; 3397 } 3398 3399 static int match_held_lock(const struct held_lock *hlock, 3400 const struct lockdep_map *lock) 3401 { 3402 if (hlock->instance == lock) 3403 return 1; 3404 3405 if (hlock->references) { 3406 const struct lock_class *class = lock->class_cache[0]; 3407 3408 if (!class) 3409 class = look_up_lock_class(lock, 0); 3410 3411 /* 3412 * If look_up_lock_class() failed to find a class, we're trying 3413 * to test if we hold a lock that has never yet been acquired. 3414 * Clearly if the lock hasn't been acquired _ever_, we're not 3415 * holding it either, so report failure. 3416 */ 3417 if (!class) 3418 return 0; 3419 3420 /* 3421 * References, but not a lock we're actually ref-counting? 3422 * State got messed up, follow the sites that change ->references 3423 * and try to make sense of it. 3424 */ 3425 if (DEBUG_LOCKS_WARN_ON(!hlock->nest_lock)) 3426 return 0; 3427 3428 if (hlock->class_idx == class - lock_classes + 1) 3429 return 1; 3430 } 3431 3432 return 0; 3433 } 3434 3435 /* @depth must not be zero */ 3436 static struct held_lock *find_held_lock(struct task_struct *curr, 3437 struct lockdep_map *lock, 3438 unsigned int depth, int *idx) 3439 { 3440 struct held_lock *ret, *hlock, *prev_hlock; 3441 int i; 3442 3443 i = depth - 1; 3444 hlock = curr->held_locks + i; 3445 ret = hlock; 3446 if (match_held_lock(hlock, lock)) 3447 goto out; 3448 3449 ret = NULL; 3450 for (i--, prev_hlock = hlock--; 3451 i >= 0; 3452 i--, prev_hlock = hlock--) { 3453 /* 3454 * We must not cross into another context: 3455 */ 3456 if (prev_hlock->irq_context != hlock->irq_context) { 3457 ret = NULL; 3458 break; 3459 } 3460 if (match_held_lock(hlock, lock)) { 3461 ret = hlock; 3462 break; 3463 } 3464 } 3465 3466 out: 3467 *idx = i; 3468 return ret; 3469 } 3470 3471 static int reacquire_held_locks(struct task_struct *curr, unsigned int depth, 3472 int idx) 3473 { 3474 struct held_lock *hlock; 3475 3476 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled())) 3477 return 0; 3478 3479 for (hlock = curr->held_locks + idx; idx < depth; idx++, hlock++) { 3480 if (!__lock_acquire(hlock->instance, 3481 hlock_class(hlock)->subclass, 3482 hlock->trylock, 3483 hlock->read, hlock->check, 3484 hlock->hardirqs_off, 3485 hlock->nest_lock, hlock->acquire_ip, 3486 hlock->references, hlock->pin_count)) 3487 return 1; 3488 } 3489 return 0; 3490 } 3491 3492 static int 3493 __lock_set_class(struct lockdep_map *lock, const char *name, 3494 struct lock_class_key *key, unsigned int subclass, 3495 unsigned long ip) 3496 { 3497 struct task_struct *curr = current; 3498 struct held_lock *hlock; 3499 struct lock_class *class; 3500 unsigned int depth; 3501 int i; 3502 3503 depth = curr->lockdep_depth; 3504 /* 3505 * This function is about (re)setting the class of a held lock, 3506 * yet we're not actually holding any locks. Naughty user! 3507 */ 3508 if (DEBUG_LOCKS_WARN_ON(!depth)) 3509 return 0; 3510 3511 hlock = find_held_lock(curr, lock, depth, &i); 3512 if (!hlock) 3513 return print_unlock_imbalance_bug(curr, lock, ip); 3514 3515 lockdep_init_map(lock, name, key, 0); 3516 class = register_lock_class(lock, subclass, 0); 3517 hlock->class_idx = class - lock_classes + 1; 3518 3519 curr->lockdep_depth = i; 3520 curr->curr_chain_key = hlock->prev_chain_key; 3521 3522 if (reacquire_held_locks(curr, depth, i)) 3523 return 0; 3524 3525 /* 3526 * I took it apart and put it back together again, except now I have 3527 * these 'spare' parts.. where shall I put them. 3528 */ 3529 if (DEBUG_LOCKS_WARN_ON(curr->lockdep_depth != depth)) 3530 return 0; 3531 return 1; 3532 } 3533 3534 static int __lock_downgrade(struct lockdep_map *lock, unsigned long ip) 3535 { 3536 struct task_struct *curr = current; 3537 struct held_lock *hlock; 3538 unsigned int depth; 3539 int i; 3540 3541 depth = curr->lockdep_depth; 3542 /* 3543 * This function is about (re)setting the class of a held lock, 3544 * yet we're not actually holding any locks. Naughty user! 3545 */ 3546 if (DEBUG_LOCKS_WARN_ON(!depth)) 3547 return 0; 3548 3549 hlock = find_held_lock(curr, lock, depth, &i); 3550 if (!hlock) 3551 return print_unlock_imbalance_bug(curr, lock, ip); 3552 3553 curr->lockdep_depth = i; 3554 curr->curr_chain_key = hlock->prev_chain_key; 3555 3556 WARN(hlock->read, "downgrading a read lock"); 3557 hlock->read = 1; 3558 hlock->acquire_ip = ip; 3559 3560 if (reacquire_held_locks(curr, depth, i)) 3561 return 0; 3562 3563 /* 3564 * I took it apart and put it back together again, except now I have 3565 * these 'spare' parts.. where shall I put them. 3566 */ 3567 if (DEBUG_LOCKS_WARN_ON(curr->lockdep_depth != depth)) 3568 return 0; 3569 return 1; 3570 } 3571 3572 /* 3573 * Remove the lock to the list of currently held locks - this gets 3574 * called on mutex_unlock()/spin_unlock*() (or on a failed 3575 * mutex_lock_interruptible()). 3576 * 3577 * @nested is an hysterical artifact, needs a tree wide cleanup. 3578 */ 3579 static int 3580 __lock_release(struct lockdep_map *lock, int nested, unsigned long ip) 3581 { 3582 struct task_struct *curr = current; 3583 struct held_lock *hlock; 3584 unsigned int depth; 3585 int i; 3586 3587 if (unlikely(!debug_locks)) 3588 return 0; 3589 3590 depth = curr->lockdep_depth; 3591 /* 3592 * So we're all set to release this lock.. wait what lock? We don't 3593 * own any locks, you've been drinking again? 3594 */ 3595 if (DEBUG_LOCKS_WARN_ON(depth <= 0)) 3596 return print_unlock_imbalance_bug(curr, lock, ip); 3597 3598 /* 3599 * Check whether the lock exists in the current stack 3600 * of held locks: 3601 */ 3602 hlock = find_held_lock(curr, lock, depth, &i); 3603 if (!hlock) 3604 return print_unlock_imbalance_bug(curr, lock, ip); 3605 3606 if (hlock->instance == lock) 3607 lock_release_holdtime(hlock); 3608 3609 WARN(hlock->pin_count, "releasing a pinned lock\n"); 3610 3611 if (hlock->references) { 3612 hlock->references--; 3613 if (hlock->references) { 3614 /* 3615 * We had, and after removing one, still have 3616 * references, the current lock stack is still 3617 * valid. We're done! 3618 */ 3619 return 1; 3620 } 3621 } 3622 3623 /* 3624 * We have the right lock to unlock, 'hlock' points to it. 3625 * Now we remove it from the stack, and add back the other 3626 * entries (if any), recalculating the hash along the way: 3627 */ 3628 3629 curr->lockdep_depth = i; 3630 curr->curr_chain_key = hlock->prev_chain_key; 3631 3632 /* 3633 * The most likely case is when the unlock is on the innermost 3634 * lock. In this case, we are done! 3635 */ 3636 if (i == depth-1) 3637 return 1; 3638 3639 if (reacquire_held_locks(curr, depth, i + 1)) 3640 return 0; 3641 3642 /* 3643 * We had N bottles of beer on the wall, we drank one, but now 3644 * there's not N-1 bottles of beer left on the wall... 3645 */ 3646 DEBUG_LOCKS_WARN_ON(curr->lockdep_depth != depth-1); 3647 3648 /* 3649 * Since reacquire_held_locks() would have called check_chain_key() 3650 * indirectly via __lock_acquire(), we don't need to do it again 3651 * on return. 3652 */ 3653 return 0; 3654 } 3655 3656 static nokprobe_inline 3657 int __lock_is_held(const struct lockdep_map *lock, int read) 3658 { 3659 struct task_struct *curr = current; 3660 int i; 3661 3662 for (i = 0; i < curr->lockdep_depth; i++) { 3663 struct held_lock *hlock = curr->held_locks + i; 3664 3665 if (match_held_lock(hlock, lock)) { 3666 if (read == -1 || hlock->read == read) 3667 return 1; 3668 3669 return 0; 3670 } 3671 } 3672 3673 return 0; 3674 } 3675 3676 static struct pin_cookie __lock_pin_lock(struct lockdep_map *lock) 3677 { 3678 struct pin_cookie cookie = NIL_COOKIE; 3679 struct task_struct *curr = current; 3680 int i; 3681 3682 if (unlikely(!debug_locks)) 3683 return cookie; 3684 3685 for (i = 0; i < curr->lockdep_depth; i++) { 3686 struct held_lock *hlock = curr->held_locks + i; 3687 3688 if (match_held_lock(hlock, lock)) { 3689 /* 3690 * Grab 16bits of randomness; this is sufficient to not 3691 * be guessable and still allows some pin nesting in 3692 * our u32 pin_count. 3693 */ 3694 cookie.val = 1 + (prandom_u32() >> 16); 3695 hlock->pin_count += cookie.val; 3696 return cookie; 3697 } 3698 } 3699 3700 WARN(1, "pinning an unheld lock\n"); 3701 return cookie; 3702 } 3703 3704 static void __lock_repin_lock(struct lockdep_map *lock, struct pin_cookie cookie) 3705 { 3706 struct task_struct *curr = current; 3707 int i; 3708 3709 if (unlikely(!debug_locks)) 3710 return; 3711 3712 for (i = 0; i < curr->lockdep_depth; i++) { 3713 struct held_lock *hlock = curr->held_locks + i; 3714 3715 if (match_held_lock(hlock, lock)) { 3716 hlock->pin_count += cookie.val; 3717 return; 3718 } 3719 } 3720 3721 WARN(1, "pinning an unheld lock\n"); 3722 } 3723 3724 static void __lock_unpin_lock(struct lockdep_map *lock, struct pin_cookie cookie) 3725 { 3726 struct task_struct *curr = current; 3727 int i; 3728 3729 if (unlikely(!debug_locks)) 3730 return; 3731 3732 for (i = 0; i < curr->lockdep_depth; i++) { 3733 struct held_lock *hlock = curr->held_locks + i; 3734 3735 if (match_held_lock(hlock, lock)) { 3736 if (WARN(!hlock->pin_count, "unpinning an unpinned lock\n")) 3737 return; 3738 3739 hlock->pin_count -= cookie.val; 3740 3741 if (WARN((int)hlock->pin_count < 0, "pin count corrupted\n")) 3742 hlock->pin_count = 0; 3743 3744 return; 3745 } 3746 } 3747 3748 WARN(1, "unpinning an unheld lock\n"); 3749 } 3750 3751 /* 3752 * Check whether we follow the irq-flags state precisely: 3753 */ 3754 static void check_flags(unsigned long flags) 3755 { 3756 #if defined(CONFIG_PROVE_LOCKING) && defined(CONFIG_DEBUG_LOCKDEP) && \ 3757 defined(CONFIG_TRACE_IRQFLAGS) 3758 if (!debug_locks) 3759 return; 3760 3761 if (irqs_disabled_flags(flags)) { 3762 if (DEBUG_LOCKS_WARN_ON(current->hardirqs_enabled)) { 3763 printk("possible reason: unannotated irqs-off.\n"); 3764 } 3765 } else { 3766 if (DEBUG_LOCKS_WARN_ON(!current->hardirqs_enabled)) { 3767 printk("possible reason: unannotated irqs-on.\n"); 3768 } 3769 } 3770 3771 /* 3772 * We dont accurately track softirq state in e.g. 3773 * hardirq contexts (such as on 4KSTACKS), so only 3774 * check if not in hardirq contexts: 3775 */ 3776 if (!hardirq_count()) { 3777 if (softirq_count()) { 3778 /* like the above, but with softirqs */ 3779 DEBUG_LOCKS_WARN_ON(current->softirqs_enabled); 3780 } else { 3781 /* lick the above, does it taste good? */ 3782 DEBUG_LOCKS_WARN_ON(!current->softirqs_enabled); 3783 } 3784 } 3785 3786 if (!debug_locks) 3787 print_irqtrace_events(current); 3788 #endif 3789 } 3790 3791 void lock_set_class(struct lockdep_map *lock, const char *name, 3792 struct lock_class_key *key, unsigned int subclass, 3793 unsigned long ip) 3794 { 3795 unsigned long flags; 3796 3797 if (unlikely(current->lockdep_recursion)) 3798 return; 3799 3800 raw_local_irq_save(flags); 3801 current->lockdep_recursion = 1; 3802 check_flags(flags); 3803 if (__lock_set_class(lock, name, key, subclass, ip)) 3804 check_chain_key(current); 3805 current->lockdep_recursion = 0; 3806 raw_local_irq_restore(flags); 3807 } 3808 EXPORT_SYMBOL_GPL(lock_set_class); 3809 3810 void lock_downgrade(struct lockdep_map *lock, unsigned long ip) 3811 { 3812 unsigned long flags; 3813 3814 if (unlikely(current->lockdep_recursion)) 3815 return; 3816 3817 raw_local_irq_save(flags); 3818 current->lockdep_recursion = 1; 3819 check_flags(flags); 3820 if (__lock_downgrade(lock, ip)) 3821 check_chain_key(current); 3822 current->lockdep_recursion = 0; 3823 raw_local_irq_restore(flags); 3824 } 3825 EXPORT_SYMBOL_GPL(lock_downgrade); 3826 3827 /* 3828 * We are not always called with irqs disabled - do that here, 3829 * and also avoid lockdep recursion: 3830 */ 3831 void lock_acquire(struct lockdep_map *lock, unsigned int subclass, 3832 int trylock, int read, int check, 3833 struct lockdep_map *nest_lock, unsigned long ip) 3834 { 3835 unsigned long flags; 3836 3837 if (unlikely(current->lockdep_recursion)) 3838 return; 3839 3840 raw_local_irq_save(flags); 3841 check_flags(flags); 3842 3843 current->lockdep_recursion = 1; 3844 trace_lock_acquire(lock, subclass, trylock, read, check, nest_lock, ip); 3845 __lock_acquire(lock, subclass, trylock, read, check, 3846 irqs_disabled_flags(flags), nest_lock, ip, 0, 0); 3847 current->lockdep_recursion = 0; 3848 raw_local_irq_restore(flags); 3849 } 3850 EXPORT_SYMBOL_GPL(lock_acquire); 3851 3852 void lock_release(struct lockdep_map *lock, int nested, 3853 unsigned long ip) 3854 { 3855 unsigned long flags; 3856 3857 if (unlikely(current->lockdep_recursion)) 3858 return; 3859 3860 raw_local_irq_save(flags); 3861 check_flags(flags); 3862 current->lockdep_recursion = 1; 3863 trace_lock_release(lock, ip); 3864 if (__lock_release(lock, nested, ip)) 3865 check_chain_key(current); 3866 current->lockdep_recursion = 0; 3867 raw_local_irq_restore(flags); 3868 } 3869 EXPORT_SYMBOL_GPL(lock_release); 3870 3871 int lock_is_held_type(const struct lockdep_map *lock, int read) 3872 { 3873 unsigned long flags; 3874 int ret = 0; 3875 3876 if (unlikely(current->lockdep_recursion)) 3877 return 1; /* avoid false negative lockdep_assert_held() */ 3878 3879 raw_local_irq_save(flags); 3880 check_flags(flags); 3881 3882 current->lockdep_recursion = 1; 3883 ret = __lock_is_held(lock, read); 3884 current->lockdep_recursion = 0; 3885 raw_local_irq_restore(flags); 3886 3887 return ret; 3888 } 3889 EXPORT_SYMBOL_GPL(lock_is_held_type); 3890 NOKPROBE_SYMBOL(lock_is_held_type); 3891 3892 struct pin_cookie lock_pin_lock(struct lockdep_map *lock) 3893 { 3894 struct pin_cookie cookie = NIL_COOKIE; 3895 unsigned long flags; 3896 3897 if (unlikely(current->lockdep_recursion)) 3898 return cookie; 3899 3900 raw_local_irq_save(flags); 3901 check_flags(flags); 3902 3903 current->lockdep_recursion = 1; 3904 cookie = __lock_pin_lock(lock); 3905 current->lockdep_recursion = 0; 3906 raw_local_irq_restore(flags); 3907 3908 return cookie; 3909 } 3910 EXPORT_SYMBOL_GPL(lock_pin_lock); 3911 3912 void lock_repin_lock(struct lockdep_map *lock, struct pin_cookie cookie) 3913 { 3914 unsigned long flags; 3915 3916 if (unlikely(current->lockdep_recursion)) 3917 return; 3918 3919 raw_local_irq_save(flags); 3920 check_flags(flags); 3921 3922 current->lockdep_recursion = 1; 3923 __lock_repin_lock(lock, cookie); 3924 current->lockdep_recursion = 0; 3925 raw_local_irq_restore(flags); 3926 } 3927 EXPORT_SYMBOL_GPL(lock_repin_lock); 3928 3929 void lock_unpin_lock(struct lockdep_map *lock, struct pin_cookie cookie) 3930 { 3931 unsigned long flags; 3932 3933 if (unlikely(current->lockdep_recursion)) 3934 return; 3935 3936 raw_local_irq_save(flags); 3937 check_flags(flags); 3938 3939 current->lockdep_recursion = 1; 3940 __lock_unpin_lock(lock, cookie); 3941 current->lockdep_recursion = 0; 3942 raw_local_irq_restore(flags); 3943 } 3944 EXPORT_SYMBOL_GPL(lock_unpin_lock); 3945 3946 #ifdef CONFIG_LOCK_STAT 3947 static int 3948 print_lock_contention_bug(struct task_struct *curr, struct lockdep_map *lock, 3949 unsigned long ip) 3950 { 3951 if (!debug_locks_off()) 3952 return 0; 3953 if (debug_locks_silent) 3954 return 0; 3955 3956 pr_warn("\n"); 3957 pr_warn("=================================\n"); 3958 pr_warn("WARNING: bad contention detected!\n"); 3959 print_kernel_ident(); 3960 pr_warn("---------------------------------\n"); 3961 pr_warn("%s/%d is trying to contend lock (", 3962 curr->comm, task_pid_nr(curr)); 3963 print_lockdep_cache(lock); 3964 pr_cont(") at:\n"); 3965 print_ip_sym(ip); 3966 pr_warn("but there are no locks held!\n"); 3967 pr_warn("\nother info that might help us debug this:\n"); 3968 lockdep_print_held_locks(curr); 3969 3970 pr_warn("\nstack backtrace:\n"); 3971 dump_stack(); 3972 3973 return 0; 3974 } 3975 3976 static void 3977 __lock_contended(struct lockdep_map *lock, unsigned long ip) 3978 { 3979 struct task_struct *curr = current; 3980 struct held_lock *hlock; 3981 struct lock_class_stats *stats; 3982 unsigned int depth; 3983 int i, contention_point, contending_point; 3984 3985 depth = curr->lockdep_depth; 3986 /* 3987 * Whee, we contended on this lock, except it seems we're not 3988 * actually trying to acquire anything much at all.. 3989 */ 3990 if (DEBUG_LOCKS_WARN_ON(!depth)) 3991 return; 3992 3993 hlock = find_held_lock(curr, lock, depth, &i); 3994 if (!hlock) { 3995 print_lock_contention_bug(curr, lock, ip); 3996 return; 3997 } 3998 3999 if (hlock->instance != lock) 4000 return; 4001 4002 hlock->waittime_stamp = lockstat_clock(); 4003 4004 contention_point = lock_point(hlock_class(hlock)->contention_point, ip); 4005 contending_point = lock_point(hlock_class(hlock)->contending_point, 4006 lock->ip); 4007 4008 stats = get_lock_stats(hlock_class(hlock)); 4009 if (contention_point < LOCKSTAT_POINTS) 4010 stats->contention_point[contention_point]++; 4011 if (contending_point < LOCKSTAT_POINTS) 4012 stats->contending_point[contending_point]++; 4013 if (lock->cpu != smp_processor_id()) 4014 stats->bounces[bounce_contended + !!hlock->read]++; 4015 } 4016 4017 static void 4018 __lock_acquired(struct lockdep_map *lock, unsigned long ip) 4019 { 4020 struct task_struct *curr = current; 4021 struct held_lock *hlock; 4022 struct lock_class_stats *stats; 4023 unsigned int depth; 4024 u64 now, waittime = 0; 4025 int i, cpu; 4026 4027 depth = curr->lockdep_depth; 4028 /* 4029 * Yay, we acquired ownership of this lock we didn't try to 4030 * acquire, how the heck did that happen? 4031 */ 4032 if (DEBUG_LOCKS_WARN_ON(!depth)) 4033 return; 4034 4035 hlock = find_held_lock(curr, lock, depth, &i); 4036 if (!hlock) { 4037 print_lock_contention_bug(curr, lock, _RET_IP_); 4038 return; 4039 } 4040 4041 if (hlock->instance != lock) 4042 return; 4043 4044 cpu = smp_processor_id(); 4045 if (hlock->waittime_stamp) { 4046 now = lockstat_clock(); 4047 waittime = now - hlock->waittime_stamp; 4048 hlock->holdtime_stamp = now; 4049 } 4050 4051 trace_lock_acquired(lock, ip); 4052 4053 stats = get_lock_stats(hlock_class(hlock)); 4054 if (waittime) { 4055 if (hlock->read) 4056 lock_time_inc(&stats->read_waittime, waittime); 4057 else 4058 lock_time_inc(&stats->write_waittime, waittime); 4059 } 4060 if (lock->cpu != cpu) 4061 stats->bounces[bounce_acquired + !!hlock->read]++; 4062 4063 lock->cpu = cpu; 4064 lock->ip = ip; 4065 } 4066 4067 void lock_contended(struct lockdep_map *lock, unsigned long ip) 4068 { 4069 unsigned long flags; 4070 4071 if (unlikely(!lock_stat || !debug_locks)) 4072 return; 4073 4074 if (unlikely(current->lockdep_recursion)) 4075 return; 4076 4077 raw_local_irq_save(flags); 4078 check_flags(flags); 4079 current->lockdep_recursion = 1; 4080 trace_lock_contended(lock, ip); 4081 __lock_contended(lock, ip); 4082 current->lockdep_recursion = 0; 4083 raw_local_irq_restore(flags); 4084 } 4085 EXPORT_SYMBOL_GPL(lock_contended); 4086 4087 void lock_acquired(struct lockdep_map *lock, unsigned long ip) 4088 { 4089 unsigned long flags; 4090 4091 if (unlikely(!lock_stat || !debug_locks)) 4092 return; 4093 4094 if (unlikely(current->lockdep_recursion)) 4095 return; 4096 4097 raw_local_irq_save(flags); 4098 check_flags(flags); 4099 current->lockdep_recursion = 1; 4100 __lock_acquired(lock, ip); 4101 current->lockdep_recursion = 0; 4102 raw_local_irq_restore(flags); 4103 } 4104 EXPORT_SYMBOL_GPL(lock_acquired); 4105 #endif 4106 4107 /* 4108 * Used by the testsuite, sanitize the validator state 4109 * after a simulated failure: 4110 */ 4111 4112 void lockdep_reset(void) 4113 { 4114 unsigned long flags; 4115 int i; 4116 4117 raw_local_irq_save(flags); 4118 current->curr_chain_key = 0; 4119 current->lockdep_depth = 0; 4120 current->lockdep_recursion = 0; 4121 memset(current->held_locks, 0, MAX_LOCK_DEPTH*sizeof(struct held_lock)); 4122 nr_hardirq_chains = 0; 4123 nr_softirq_chains = 0; 4124 nr_process_chains = 0; 4125 debug_locks = 1; 4126 for (i = 0; i < CHAINHASH_SIZE; i++) 4127 INIT_HLIST_HEAD(chainhash_table + i); 4128 raw_local_irq_restore(flags); 4129 } 4130 4131 /* 4132 * Remove all references to a lock class. The caller must hold the graph lock. 4133 */ 4134 static void zap_class(struct lock_class *class) 4135 { 4136 int i; 4137 4138 /* 4139 * Remove all dependencies this lock is 4140 * involved in: 4141 */ 4142 for (i = 0; i < nr_list_entries; i++) { 4143 if (list_entries[i].class == class) 4144 list_del_rcu(&list_entries[i].entry); 4145 } 4146 /* 4147 * Unhash the class and remove it from the all_lock_classes list: 4148 */ 4149 hlist_del_rcu(&class->hash_entry); 4150 list_del(&class->lock_entry); 4151 4152 RCU_INIT_POINTER(class->key, NULL); 4153 RCU_INIT_POINTER(class->name, NULL); 4154 } 4155 4156 static inline int within(const void *addr, void *start, unsigned long size) 4157 { 4158 return addr >= start && addr < start + size; 4159 } 4160 4161 /* 4162 * Used in module.c to remove lock classes from memory that is going to be 4163 * freed; and possibly re-used by other modules. 4164 * 4165 * We will have had one sync_sched() before getting here, so we're guaranteed 4166 * nobody will look up these exact classes -- they're properly dead but still 4167 * allocated. 4168 */ 4169 void lockdep_free_key_range(void *start, unsigned long size) 4170 { 4171 struct lock_class *class; 4172 struct hlist_head *head; 4173 unsigned long flags; 4174 int i; 4175 int locked; 4176 4177 raw_local_irq_save(flags); 4178 locked = graph_lock(); 4179 4180 /* 4181 * Unhash all classes that were created by this module: 4182 */ 4183 for (i = 0; i < CLASSHASH_SIZE; i++) { 4184 head = classhash_table + i; 4185 hlist_for_each_entry_rcu(class, head, hash_entry) { 4186 if (within(class->key, start, size)) 4187 zap_class(class); 4188 else if (within(class->name, start, size)) 4189 zap_class(class); 4190 } 4191 } 4192 4193 if (locked) 4194 graph_unlock(); 4195 raw_local_irq_restore(flags); 4196 4197 /* 4198 * Wait for any possible iterators from look_up_lock_class() to pass 4199 * before continuing to free the memory they refer to. 4200 * 4201 * sync_sched() is sufficient because the read-side is IRQ disable. 4202 */ 4203 synchronize_rcu(); 4204 4205 /* 4206 * XXX at this point we could return the resources to the pool; 4207 * instead we leak them. We would need to change to bitmap allocators 4208 * instead of the linear allocators we have now. 4209 */ 4210 } 4211 4212 /* 4213 * Check whether any element of the @lock->class_cache[] array refers to a 4214 * registered lock class. The caller must hold either the graph lock or the 4215 * RCU read lock. 4216 */ 4217 static bool lock_class_cache_is_registered(struct lockdep_map *lock) 4218 { 4219 struct lock_class *class; 4220 struct hlist_head *head; 4221 int i, j; 4222 4223 for (i = 0; i < CLASSHASH_SIZE; i++) { 4224 head = classhash_table + i; 4225 hlist_for_each_entry_rcu(class, head, hash_entry) { 4226 for (j = 0; j < NR_LOCKDEP_CACHING_CLASSES; j++) 4227 if (lock->class_cache[j] == class) 4228 return true; 4229 } 4230 } 4231 return false; 4232 } 4233 4234 void lockdep_reset_lock(struct lockdep_map *lock) 4235 { 4236 struct lock_class *class; 4237 unsigned long flags; 4238 int j, locked; 4239 4240 raw_local_irq_save(flags); 4241 locked = graph_lock(); 4242 4243 /* 4244 * Remove all classes this lock might have: 4245 */ 4246 for (j = 0; j < MAX_LOCKDEP_SUBCLASSES; j++) { 4247 /* 4248 * If the class exists we look it up and zap it: 4249 */ 4250 class = look_up_lock_class(lock, j); 4251 if (class) 4252 zap_class(class); 4253 } 4254 /* 4255 * Debug check: in the end all mapped classes should 4256 * be gone. 4257 */ 4258 if (unlikely(lock_class_cache_is_registered(lock))) { 4259 if (debug_locks_off_graph_unlock()) { 4260 /* 4261 * We all just reset everything, how did it match? 4262 */ 4263 WARN_ON(1); 4264 } 4265 goto out_restore; 4266 } 4267 if (locked) 4268 graph_unlock(); 4269 4270 out_restore: 4271 raw_local_irq_restore(flags); 4272 } 4273 4274 void __init lockdep_init(void) 4275 { 4276 printk("Lock dependency validator: Copyright (c) 2006 Red Hat, Inc., Ingo Molnar\n"); 4277 4278 printk("... MAX_LOCKDEP_SUBCLASSES: %lu\n", MAX_LOCKDEP_SUBCLASSES); 4279 printk("... MAX_LOCK_DEPTH: %lu\n", MAX_LOCK_DEPTH); 4280 printk("... MAX_LOCKDEP_KEYS: %lu\n", MAX_LOCKDEP_KEYS); 4281 printk("... CLASSHASH_SIZE: %lu\n", CLASSHASH_SIZE); 4282 printk("... MAX_LOCKDEP_ENTRIES: %lu\n", MAX_LOCKDEP_ENTRIES); 4283 printk("... MAX_LOCKDEP_CHAINS: %lu\n", MAX_LOCKDEP_CHAINS); 4284 printk("... CHAINHASH_SIZE: %lu\n", CHAINHASH_SIZE); 4285 4286 printk(" memory used by lock dependency info: %lu kB\n", 4287 (sizeof(struct lock_class) * MAX_LOCKDEP_KEYS + 4288 sizeof(struct list_head) * CLASSHASH_SIZE + 4289 sizeof(struct lock_list) * MAX_LOCKDEP_ENTRIES + 4290 sizeof(struct lock_chain) * MAX_LOCKDEP_CHAINS + 4291 sizeof(struct list_head) * CHAINHASH_SIZE 4292 #ifdef CONFIG_PROVE_LOCKING 4293 + sizeof(struct circular_queue) 4294 #endif 4295 ) / 1024 4296 ); 4297 4298 printk(" per task-struct memory footprint: %lu bytes\n", 4299 sizeof(struct held_lock) * MAX_LOCK_DEPTH); 4300 } 4301 4302 static void 4303 print_freed_lock_bug(struct task_struct *curr, const void *mem_from, 4304 const void *mem_to, struct held_lock *hlock) 4305 { 4306 if (!debug_locks_off()) 4307 return; 4308 if (debug_locks_silent) 4309 return; 4310 4311 pr_warn("\n"); 4312 pr_warn("=========================\n"); 4313 pr_warn("WARNING: held lock freed!\n"); 4314 print_kernel_ident(); 4315 pr_warn("-------------------------\n"); 4316 pr_warn("%s/%d is freeing memory %px-%px, with a lock still held there!\n", 4317 curr->comm, task_pid_nr(curr), mem_from, mem_to-1); 4318 print_lock(hlock); 4319 lockdep_print_held_locks(curr); 4320 4321 pr_warn("\nstack backtrace:\n"); 4322 dump_stack(); 4323 } 4324 4325 static inline int not_in_range(const void* mem_from, unsigned long mem_len, 4326 const void* lock_from, unsigned long lock_len) 4327 { 4328 return lock_from + lock_len <= mem_from || 4329 mem_from + mem_len <= lock_from; 4330 } 4331 4332 /* 4333 * Called when kernel memory is freed (or unmapped), or if a lock 4334 * is destroyed or reinitialized - this code checks whether there is 4335 * any held lock in the memory range of <from> to <to>: 4336 */ 4337 void debug_check_no_locks_freed(const void *mem_from, unsigned long mem_len) 4338 { 4339 struct task_struct *curr = current; 4340 struct held_lock *hlock; 4341 unsigned long flags; 4342 int i; 4343 4344 if (unlikely(!debug_locks)) 4345 return; 4346 4347 raw_local_irq_save(flags); 4348 for (i = 0; i < curr->lockdep_depth; i++) { 4349 hlock = curr->held_locks + i; 4350 4351 if (not_in_range(mem_from, mem_len, hlock->instance, 4352 sizeof(*hlock->instance))) 4353 continue; 4354 4355 print_freed_lock_bug(curr, mem_from, mem_from + mem_len, hlock); 4356 break; 4357 } 4358 raw_local_irq_restore(flags); 4359 } 4360 EXPORT_SYMBOL_GPL(debug_check_no_locks_freed); 4361 4362 static void print_held_locks_bug(void) 4363 { 4364 if (!debug_locks_off()) 4365 return; 4366 if (debug_locks_silent) 4367 return; 4368 4369 pr_warn("\n"); 4370 pr_warn("====================================\n"); 4371 pr_warn("WARNING: %s/%d still has locks held!\n", 4372 current->comm, task_pid_nr(current)); 4373 print_kernel_ident(); 4374 pr_warn("------------------------------------\n"); 4375 lockdep_print_held_locks(current); 4376 pr_warn("\nstack backtrace:\n"); 4377 dump_stack(); 4378 } 4379 4380 void debug_check_no_locks_held(void) 4381 { 4382 if (unlikely(current->lockdep_depth > 0)) 4383 print_held_locks_bug(); 4384 } 4385 EXPORT_SYMBOL_GPL(debug_check_no_locks_held); 4386 4387 #ifdef __KERNEL__ 4388 void debug_show_all_locks(void) 4389 { 4390 struct task_struct *g, *p; 4391 4392 if (unlikely(!debug_locks)) { 4393 pr_warn("INFO: lockdep is turned off.\n"); 4394 return; 4395 } 4396 pr_warn("\nShowing all locks held in the system:\n"); 4397 4398 rcu_read_lock(); 4399 for_each_process_thread(g, p) { 4400 if (!p->lockdep_depth) 4401 continue; 4402 lockdep_print_held_locks(p); 4403 touch_nmi_watchdog(); 4404 touch_all_softlockup_watchdogs(); 4405 } 4406 rcu_read_unlock(); 4407 4408 pr_warn("\n"); 4409 pr_warn("=============================================\n\n"); 4410 } 4411 EXPORT_SYMBOL_GPL(debug_show_all_locks); 4412 #endif 4413 4414 /* 4415 * Careful: only use this function if you are sure that 4416 * the task cannot run in parallel! 4417 */ 4418 void debug_show_held_locks(struct task_struct *task) 4419 { 4420 if (unlikely(!debug_locks)) { 4421 printk("INFO: lockdep is turned off.\n"); 4422 return; 4423 } 4424 lockdep_print_held_locks(task); 4425 } 4426 EXPORT_SYMBOL_GPL(debug_show_held_locks); 4427 4428 asmlinkage __visible void lockdep_sys_exit(void) 4429 { 4430 struct task_struct *curr = current; 4431 4432 if (unlikely(curr->lockdep_depth)) { 4433 if (!debug_locks_off()) 4434 return; 4435 pr_warn("\n"); 4436 pr_warn("================================================\n"); 4437 pr_warn("WARNING: lock held when returning to user space!\n"); 4438 print_kernel_ident(); 4439 pr_warn("------------------------------------------------\n"); 4440 pr_warn("%s/%d is leaving the kernel with locks still held!\n", 4441 curr->comm, curr->pid); 4442 lockdep_print_held_locks(curr); 4443 } 4444 4445 /* 4446 * The lock history for each syscall should be independent. So wipe the 4447 * slate clean on return to userspace. 4448 */ 4449 lockdep_invariant_state(false); 4450 } 4451 4452 void lockdep_rcu_suspicious(const char *file, const int line, const char *s) 4453 { 4454 struct task_struct *curr = current; 4455 4456 /* Note: the following can be executed concurrently, so be careful. */ 4457 pr_warn("\n"); 4458 pr_warn("=============================\n"); 4459 pr_warn("WARNING: suspicious RCU usage\n"); 4460 print_kernel_ident(); 4461 pr_warn("-----------------------------\n"); 4462 pr_warn("%s:%d %s!\n", file, line, s); 4463 pr_warn("\nother info that might help us debug this:\n\n"); 4464 pr_warn("\n%srcu_scheduler_active = %d, debug_locks = %d\n", 4465 !rcu_lockdep_current_cpu_online() 4466 ? "RCU used illegally from offline CPU!\n" 4467 : !rcu_is_watching() 4468 ? "RCU used illegally from idle CPU!\n" 4469 : "", 4470 rcu_scheduler_active, debug_locks); 4471 4472 /* 4473 * If a CPU is in the RCU-free window in idle (ie: in the section 4474 * between rcu_idle_enter() and rcu_idle_exit(), then RCU 4475 * considers that CPU to be in an "extended quiescent state", 4476 * which means that RCU will be completely ignoring that CPU. 4477 * Therefore, rcu_read_lock() and friends have absolutely no 4478 * effect on a CPU running in that state. In other words, even if 4479 * such an RCU-idle CPU has called rcu_read_lock(), RCU might well 4480 * delete data structures out from under it. RCU really has no 4481 * choice here: we need to keep an RCU-free window in idle where 4482 * the CPU may possibly enter into low power mode. This way we can 4483 * notice an extended quiescent state to other CPUs that started a grace 4484 * period. Otherwise we would delay any grace period as long as we run 4485 * in the idle task. 4486 * 4487 * So complain bitterly if someone does call rcu_read_lock(), 4488 * rcu_read_lock_bh() and so on from extended quiescent states. 4489 */ 4490 if (!rcu_is_watching()) 4491 pr_warn("RCU used illegally from extended quiescent state!\n"); 4492 4493 lockdep_print_held_locks(curr); 4494 pr_warn("\nstack backtrace:\n"); 4495 dump_stack(); 4496 } 4497 EXPORT_SYMBOL_GPL(lockdep_rcu_suspicious); 4498