4 * Runtime locking correctness validator
6 * Started by Ingo Molnar:
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:
14 * - lock inversion scenarios
15 * - circular lock dependencies
16 * - hardirq/softirq safe/unsafe locking bugs
18 * Bugs are reported even if the current locking scenario does not cause
19 * any deadlock at this point.
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.
25 * Thanks to Arjan van de Ven for coming up with the initial idea of
26 * mapping lock dependencies runtime.
28 #define DISABLE_BRANCH_PROFILING
29 #include <linux/mutex.h>
30 #include <linux/sched.h>
31 #include <linux/delay.h>
32 #include <linux/module.h>
33 #include <linux/proc_fs.h>
34 #include <linux/seq_file.h>
35 #include <linux/spinlock.h>
36 #include <linux/kallsyms.h>
37 #include <linux/interrupt.h>
38 #include <linux/stacktrace.h>
39 #include <linux/debug_locks.h>
40 #include <linux/irqflags.h>
41 #include <linux/utsname.h>
42 #include <linux/hash.h>
43 #include <linux/ftrace.h>
44 #include <linux/stringify.h>
45 #include <linux/bitops.h>
46 #include <linux/gfp.h>
48 #include <asm/sections.h>
50 #include "lockdep_internals.h"
52 #define CREATE_TRACE_POINTS
53 #include <trace/events/lock.h>
55 #ifdef CONFIG_PROVE_LOCKING
56 int prove_locking = 1;
57 module_param(prove_locking, int, 0644);
59 #define prove_locking 0
62 #ifdef CONFIG_LOCK_STAT
64 module_param(lock_stat, int, 0644);
70 * lockdep_lock: protects the lockdep graph, the hashes and the
71 * class/list/hash allocators.
73 * This is one of the rare exceptions where it's justified
74 * to use a raw spinlock - we really dont want the spinlock
75 * code to recurse back into the lockdep code...
77 static arch_spinlock_t lockdep_lock = (arch_spinlock_t)__ARCH_SPIN_LOCK_UNLOCKED;
79 static int graph_lock(void)
81 arch_spin_lock(&lockdep_lock);
83 * Make sure that if another CPU detected a bug while
84 * walking the graph we dont change it (while the other
85 * CPU is busy printing out stuff with the graph lock
89 arch_spin_unlock(&lockdep_lock);
92 /* prevent any recursions within lockdep from causing deadlocks */
93 current->lockdep_recursion++;
97 static inline int graph_unlock(void)
99 if (debug_locks && !arch_spin_is_locked(&lockdep_lock))
100 return DEBUG_LOCKS_WARN_ON(1);
102 current->lockdep_recursion--;
103 arch_spin_unlock(&lockdep_lock);
108 * Turn lock debugging off and return with 0 if it was off already,
109 * and also release the graph lock:
111 static inline int debug_locks_off_graph_unlock(void)
113 int ret = debug_locks_off();
115 arch_spin_unlock(&lockdep_lock);
120 static int lockdep_initialized;
122 unsigned long nr_list_entries;
123 static struct lock_list list_entries[MAX_LOCKDEP_ENTRIES];
126 * All data structures here are protected by the global debug_lock.
128 * Mutex key structs only get allocated, once during bootup, and never
129 * get freed - this significantly simplifies the debugging code.
131 unsigned long nr_lock_classes;
132 static struct lock_class lock_classes[MAX_LOCKDEP_KEYS];
134 static inline struct lock_class *hlock_class(struct held_lock *hlock)
136 if (!hlock->class_idx) {
137 DEBUG_LOCKS_WARN_ON(1);
140 return lock_classes + hlock->class_idx - 1;
143 #ifdef CONFIG_LOCK_STAT
144 static DEFINE_PER_CPU(struct lock_class_stats[MAX_LOCKDEP_KEYS],
147 static inline u64 lockstat_clock(void)
149 return local_clock();
152 static int lock_point(unsigned long points[], unsigned long ip)
156 for (i = 0; i < LOCKSTAT_POINTS; i++) {
157 if (points[i] == 0) {
168 static void lock_time_inc(struct lock_time *lt, u64 time)
173 if (time < lt->min || !lt->nr)
180 static inline void lock_time_add(struct lock_time *src, struct lock_time *dst)
185 if (src->max > dst->max)
188 if (src->min < dst->min || !dst->nr)
191 dst->total += src->total;
195 struct lock_class_stats lock_stats(struct lock_class *class)
197 struct lock_class_stats stats;
200 memset(&stats, 0, sizeof(struct lock_class_stats));
201 for_each_possible_cpu(cpu) {
202 struct lock_class_stats *pcs =
203 &per_cpu(cpu_lock_stats, cpu)[class - lock_classes];
205 for (i = 0; i < ARRAY_SIZE(stats.contention_point); i++)
206 stats.contention_point[i] += pcs->contention_point[i];
208 for (i = 0; i < ARRAY_SIZE(stats.contending_point); i++)
209 stats.contending_point[i] += pcs->contending_point[i];
211 lock_time_add(&pcs->read_waittime, &stats.read_waittime);
212 lock_time_add(&pcs->write_waittime, &stats.write_waittime);
214 lock_time_add(&pcs->read_holdtime, &stats.read_holdtime);
215 lock_time_add(&pcs->write_holdtime, &stats.write_holdtime);
217 for (i = 0; i < ARRAY_SIZE(stats.bounces); i++)
218 stats.bounces[i] += pcs->bounces[i];
224 void clear_lock_stats(struct lock_class *class)
228 for_each_possible_cpu(cpu) {
229 struct lock_class_stats *cpu_stats =
230 &per_cpu(cpu_lock_stats, cpu)[class - lock_classes];
232 memset(cpu_stats, 0, sizeof(struct lock_class_stats));
234 memset(class->contention_point, 0, sizeof(class->contention_point));
235 memset(class->contending_point, 0, sizeof(class->contending_point));
238 static struct lock_class_stats *get_lock_stats(struct lock_class *class)
240 return &get_cpu_var(cpu_lock_stats)[class - lock_classes];
243 static void put_lock_stats(struct lock_class_stats *stats)
245 put_cpu_var(cpu_lock_stats);
248 static void lock_release_holdtime(struct held_lock *hlock)
250 struct lock_class_stats *stats;
256 holdtime = lockstat_clock() - hlock->holdtime_stamp;
258 stats = get_lock_stats(hlock_class(hlock));
260 lock_time_inc(&stats->read_holdtime, holdtime);
262 lock_time_inc(&stats->write_holdtime, holdtime);
263 put_lock_stats(stats);
266 static inline void lock_release_holdtime(struct held_lock *hlock)
272 * We keep a global list of all lock classes. The list only grows,
273 * never shrinks. The list is only accessed with the lockdep
274 * spinlock lock held.
276 LIST_HEAD(all_lock_classes);
279 * The lockdep classes are in a hash-table as well, for fast lookup:
281 #define CLASSHASH_BITS (MAX_LOCKDEP_KEYS_BITS - 1)
282 #define CLASSHASH_SIZE (1UL << CLASSHASH_BITS)
283 #define __classhashfn(key) hash_long((unsigned long)key, CLASSHASH_BITS)
284 #define classhashentry(key) (classhash_table + __classhashfn((key)))
286 static struct list_head classhash_table[CLASSHASH_SIZE];
289 * We put the lock dependency chains into a hash-table as well, to cache
292 #define CHAINHASH_BITS (MAX_LOCKDEP_CHAINS_BITS-1)
293 #define CHAINHASH_SIZE (1UL << CHAINHASH_BITS)
294 #define __chainhashfn(chain) hash_long(chain, CHAINHASH_BITS)
295 #define chainhashentry(chain) (chainhash_table + __chainhashfn((chain)))
297 static struct list_head chainhash_table[CHAINHASH_SIZE];
300 * The hash key of the lock dependency chains is a hash itself too:
301 * it's a hash of all locks taken up to that lock, including that lock.
302 * It's a 64-bit hash, because it's important for the keys to be
305 #define iterate_chain_key(key1, key2) \
306 (((key1) << MAX_LOCKDEP_KEYS_BITS) ^ \
307 ((key1) >> (64-MAX_LOCKDEP_KEYS_BITS)) ^ \
310 void lockdep_off(void)
312 current->lockdep_recursion++;
314 EXPORT_SYMBOL(lockdep_off);
316 void lockdep_on(void)
318 current->lockdep_recursion--;
320 EXPORT_SYMBOL(lockdep_on);
323 * Debugging switches:
327 #define VERY_VERBOSE 0
330 # define HARDIRQ_VERBOSE 1
331 # define SOFTIRQ_VERBOSE 1
332 # define RECLAIM_VERBOSE 1
334 # define HARDIRQ_VERBOSE 0
335 # define SOFTIRQ_VERBOSE 0
336 # define RECLAIM_VERBOSE 0
339 #if VERBOSE || HARDIRQ_VERBOSE || SOFTIRQ_VERBOSE || RECLAIM_VERBOSE
341 * Quick filtering for interesting events:
343 static int class_filter(struct lock_class *class)
347 if (class->name_version == 1 &&
348 !strcmp(class->name, "lockname"))
350 if (class->name_version == 1 &&
351 !strcmp(class->name, "&struct->lockfield"))
354 /* Filter everything else. 1 would be to allow everything else */
359 static int verbose(struct lock_class *class)
362 return class_filter(class);
368 * Stack-trace: tightly packed array of stack backtrace
369 * addresses. Protected by the graph_lock.
371 unsigned long nr_stack_trace_entries;
372 static unsigned long stack_trace[MAX_STACK_TRACE_ENTRIES];
374 static int save_trace(struct stack_trace *trace)
376 trace->nr_entries = 0;
377 trace->max_entries = MAX_STACK_TRACE_ENTRIES - nr_stack_trace_entries;
378 trace->entries = stack_trace + nr_stack_trace_entries;
382 save_stack_trace(trace);
385 * Some daft arches put -1 at the end to indicate its a full trace.
387 * <rant> this is buggy anyway, since it takes a whole extra entry so a
388 * complete trace that maxes out the entries provided will be reported
389 * as incomplete, friggin useless </rant>
391 if (trace->nr_entries != 0 &&
392 trace->entries[trace->nr_entries-1] == ULONG_MAX)
395 trace->max_entries = trace->nr_entries;
397 nr_stack_trace_entries += trace->nr_entries;
399 if (nr_stack_trace_entries >= MAX_STACK_TRACE_ENTRIES-1) {
400 if (!debug_locks_off_graph_unlock())
403 printk("BUG: MAX_STACK_TRACE_ENTRIES too low!\n");
404 printk("turning off the locking correctness validator.\n");
413 unsigned int nr_hardirq_chains;
414 unsigned int nr_softirq_chains;
415 unsigned int nr_process_chains;
416 unsigned int max_lockdep_depth;
418 #ifdef CONFIG_DEBUG_LOCKDEP
420 * We cannot printk in early bootup code. Not even early_printk()
421 * might work. So we mark any initialization errors and printk
422 * about it later on, in lockdep_info().
424 static int lockdep_init_error;
425 static unsigned long lockdep_init_trace_data[20];
426 static struct stack_trace lockdep_init_trace = {
427 .max_entries = ARRAY_SIZE(lockdep_init_trace_data),
428 .entries = lockdep_init_trace_data,
432 * Various lockdep statistics:
434 DEFINE_PER_CPU(struct lockdep_stats, lockdep_stats);
441 #define __USAGE(__STATE) \
442 [LOCK_USED_IN_##__STATE] = "IN-"__stringify(__STATE)"-W", \
443 [LOCK_ENABLED_##__STATE] = __stringify(__STATE)"-ON-W", \
444 [LOCK_USED_IN_##__STATE##_READ] = "IN-"__stringify(__STATE)"-R",\
445 [LOCK_ENABLED_##__STATE##_READ] = __stringify(__STATE)"-ON-R",
447 static const char *usage_str[] =
449 #define LOCKDEP_STATE(__STATE) __USAGE(__STATE)
450 #include "lockdep_states.h"
452 [LOCK_USED] = "INITIAL USE",
455 const char * __get_key_name(struct lockdep_subclass_key *key, char *str)
457 return kallsyms_lookup((unsigned long)key, NULL, NULL, NULL, str);
460 static inline unsigned long lock_flag(enum lock_usage_bit bit)
465 static char get_usage_char(struct lock_class *class, enum lock_usage_bit bit)
469 if (class->usage_mask & lock_flag(bit + 2))
471 if (class->usage_mask & lock_flag(bit)) {
473 if (class->usage_mask & lock_flag(bit + 2))
480 void get_usage_chars(struct lock_class *class, char usage[LOCK_USAGE_CHARS])
484 #define LOCKDEP_STATE(__STATE) \
485 usage[i++] = get_usage_char(class, LOCK_USED_IN_##__STATE); \
486 usage[i++] = get_usage_char(class, LOCK_USED_IN_##__STATE##_READ);
487 #include "lockdep_states.h"
493 static int __print_lock_name(struct lock_class *class)
495 char str[KSYM_NAME_LEN];
500 name = __get_key_name(class->key, str);
502 return printk("%s", name);
505 static void print_lock_name(struct lock_class *class)
507 char str[KSYM_NAME_LEN], usage[LOCK_USAGE_CHARS];
510 get_usage_chars(class, usage);
514 name = __get_key_name(class->key, str);
515 printk(" (%s", name);
517 printk(" (%s", name);
518 if (class->name_version > 1)
519 printk("#%d", class->name_version);
521 printk("/%d", class->subclass);
523 printk("){%s}", usage);
526 static void print_lockdep_cache(struct lockdep_map *lock)
529 char str[KSYM_NAME_LEN];
533 name = __get_key_name(lock->key->subkeys, str);
538 static void print_lock(struct held_lock *hlock)
540 print_lock_name(hlock_class(hlock));
542 print_ip_sym(hlock->acquire_ip);
545 static void lockdep_print_held_locks(struct task_struct *curr)
547 int i, depth = curr->lockdep_depth;
550 printk("no locks held by %s/%d.\n", curr->comm, task_pid_nr(curr));
553 printk("%d lock%s held by %s/%d:\n",
554 depth, depth > 1 ? "s" : "", curr->comm, task_pid_nr(curr));
556 for (i = 0; i < depth; i++) {
558 print_lock(curr->held_locks + i);
562 static void print_kernel_version(void)
564 printk("%s %.*s\n", init_utsname()->release,
565 (int)strcspn(init_utsname()->version, " "),
566 init_utsname()->version);
569 static int very_verbose(struct lock_class *class)
572 return class_filter(class);
578 * Is this the address of a static object:
580 static int static_obj(void *obj)
582 unsigned long start = (unsigned long) &_stext,
583 end = (unsigned long) &_end,
584 addr = (unsigned long) obj;
589 if ((addr >= start) && (addr < end))
592 if (arch_is_kernel_data(addr))
596 * in-kernel percpu var?
598 if (is_kernel_percpu_address(addr))
602 * module static or percpu var?
604 return is_module_address(addr) || is_module_percpu_address(addr);
608 * To make lock name printouts unique, we calculate a unique
609 * class->name_version generation counter:
611 static int count_matching_names(struct lock_class *new_class)
613 struct lock_class *class;
616 if (!new_class->name)
619 list_for_each_entry(class, &all_lock_classes, lock_entry) {
620 if (new_class->key - new_class->subclass == class->key)
621 return class->name_version;
622 if (class->name && !strcmp(class->name, new_class->name))
623 count = max(count, class->name_version);
630 * Register a lock's class in the hash-table, if the class is not present
631 * yet. Otherwise we look it up. We cache the result in the lock object
632 * itself, so actual lookup of the hash should be once per lock object.
634 static inline struct lock_class *
635 look_up_lock_class(struct lockdep_map *lock, unsigned int subclass)
637 struct lockdep_subclass_key *key;
638 struct list_head *hash_head;
639 struct lock_class *class;
641 #ifdef CONFIG_DEBUG_LOCKDEP
643 * If the architecture calls into lockdep before initializing
644 * the hashes then we'll warn about it later. (we cannot printk
647 if (unlikely(!lockdep_initialized)) {
649 lockdep_init_error = 1;
650 save_stack_trace(&lockdep_init_trace);
654 if (unlikely(subclass >= MAX_LOCKDEP_SUBCLASSES)) {
657 "BUG: looking up invalid subclass: %u\n", subclass);
659 "turning off the locking correctness validator.\n");
665 * Static locks do not have their class-keys yet - for them the key
666 * is the lock object itself:
668 if (unlikely(!lock->key))
669 lock->key = (void *)lock;
672 * NOTE: the class-key must be unique. For dynamic locks, a static
673 * lock_class_key variable is passed in through the mutex_init()
674 * (or spin_lock_init()) call - which acts as the key. For static
675 * locks we use the lock object itself as the key.
677 BUILD_BUG_ON(sizeof(struct lock_class_key) >
678 sizeof(struct lockdep_map));
680 key = lock->key->subkeys + subclass;
682 hash_head = classhashentry(key);
685 * We can walk the hash lockfree, because the hash only
686 * grows, and we are careful when adding entries to the end:
688 list_for_each_entry(class, hash_head, hash_entry) {
689 if (class->key == key) {
690 WARN_ON_ONCE(class->name != lock->name);
699 * Register a lock's class in the hash-table, if the class is not present
700 * yet. Otherwise we look it up. We cache the result in the lock object
701 * itself, so actual lookup of the hash should be once per lock object.
703 static inline struct lock_class *
704 register_lock_class(struct lockdep_map *lock, unsigned int subclass, int force)
706 struct lockdep_subclass_key *key;
707 struct list_head *hash_head;
708 struct lock_class *class;
711 class = look_up_lock_class(lock, subclass);
716 * Debug-check: all keys must be persistent!
718 if (!static_obj(lock->key)) {
720 printk("INFO: trying to register non-static key.\n");
721 printk("the code is fine but needs lockdep annotation.\n");
722 printk("turning off the locking correctness validator.\n");
728 key = lock->key->subkeys + subclass;
729 hash_head = classhashentry(key);
731 raw_local_irq_save(flags);
733 raw_local_irq_restore(flags);
737 * We have to do the hash-walk again, to avoid races
740 list_for_each_entry(class, hash_head, hash_entry)
741 if (class->key == key)
744 * Allocate a new key from the static array, and add it to
747 if (nr_lock_classes >= MAX_LOCKDEP_KEYS) {
748 if (!debug_locks_off_graph_unlock()) {
749 raw_local_irq_restore(flags);
752 raw_local_irq_restore(flags);
754 printk("BUG: MAX_LOCKDEP_KEYS too low!\n");
755 printk("turning off the locking correctness validator.\n");
759 class = lock_classes + nr_lock_classes++;
760 debug_atomic_inc(nr_unused_locks);
762 class->name = lock->name;
763 class->subclass = subclass;
764 INIT_LIST_HEAD(&class->lock_entry);
765 INIT_LIST_HEAD(&class->locks_before);
766 INIT_LIST_HEAD(&class->locks_after);
767 class->name_version = count_matching_names(class);
769 * We use RCU's safe list-add method to make
770 * parallel walking of the hash-list safe:
772 list_add_tail_rcu(&class->hash_entry, hash_head);
774 * Add it to the global list of classes:
776 list_add_tail_rcu(&class->lock_entry, &all_lock_classes);
778 if (verbose(class)) {
780 raw_local_irq_restore(flags);
782 printk("\nnew class %p: %s", class->key, class->name);
783 if (class->name_version > 1)
784 printk("#%d", class->name_version);
788 raw_local_irq_save(flags);
790 raw_local_irq_restore(flags);
796 raw_local_irq_restore(flags);
798 if (!subclass || force)
799 lock->class_cache[0] = class;
800 else if (subclass < NR_LOCKDEP_CACHING_CLASSES)
801 lock->class_cache[subclass] = class;
803 if (DEBUG_LOCKS_WARN_ON(class->subclass != subclass))
809 #ifdef CONFIG_PROVE_LOCKING
811 * Allocate a lockdep entry. (assumes the graph_lock held, returns
812 * with NULL on failure)
814 static struct lock_list *alloc_list_entry(void)
816 if (nr_list_entries >= MAX_LOCKDEP_ENTRIES) {
817 if (!debug_locks_off_graph_unlock())
820 printk("BUG: MAX_LOCKDEP_ENTRIES too low!\n");
821 printk("turning off the locking correctness validator.\n");
825 return list_entries + nr_list_entries++;
829 * Add a new dependency to the head of the list:
831 static int add_lock_to_list(struct lock_class *class, struct lock_class *this,
832 struct list_head *head, unsigned long ip,
833 int distance, struct stack_trace *trace)
835 struct lock_list *entry;
837 * Lock not present yet - get a new dependency struct and
838 * add it to the list:
840 entry = alloc_list_entry();
845 entry->distance = distance;
846 entry->trace = *trace;
848 * Since we never remove from the dependency list, the list can
849 * be walked lockless by other CPUs, it's only allocation
850 * that must be protected by the spinlock. But this also means
851 * we must make new entries visible only once writes to the
852 * entry become visible - hence the RCU op:
854 list_add_tail_rcu(&entry->entry, head);
860 * For good efficiency of modular, we use power of 2
862 #define MAX_CIRCULAR_QUEUE_SIZE 4096UL
863 #define CQ_MASK (MAX_CIRCULAR_QUEUE_SIZE-1)
866 * The circular_queue and helpers is used to implement the
867 * breadth-first search(BFS)algorithem, by which we can build
868 * the shortest path from the next lock to be acquired to the
869 * previous held lock if there is a circular between them.
871 struct circular_queue {
872 unsigned long element[MAX_CIRCULAR_QUEUE_SIZE];
873 unsigned int front, rear;
876 static struct circular_queue lock_cq;
878 unsigned int max_bfs_queue_depth;
880 static unsigned int lockdep_dependency_gen_id;
882 static inline void __cq_init(struct circular_queue *cq)
884 cq->front = cq->rear = 0;
885 lockdep_dependency_gen_id++;
888 static inline int __cq_empty(struct circular_queue *cq)
890 return (cq->front == cq->rear);
893 static inline int __cq_full(struct circular_queue *cq)
895 return ((cq->rear + 1) & CQ_MASK) == cq->front;
898 static inline int __cq_enqueue(struct circular_queue *cq, unsigned long elem)
903 cq->element[cq->rear] = elem;
904 cq->rear = (cq->rear + 1) & CQ_MASK;
908 static inline int __cq_dequeue(struct circular_queue *cq, unsigned long *elem)
913 *elem = cq->element[cq->front];
914 cq->front = (cq->front + 1) & CQ_MASK;
918 static inline unsigned int __cq_get_elem_count(struct circular_queue *cq)
920 return (cq->rear - cq->front) & CQ_MASK;
923 static inline void mark_lock_accessed(struct lock_list *lock,
924 struct lock_list *parent)
928 nr = lock - list_entries;
929 WARN_ON(nr >= nr_list_entries);
930 lock->parent = parent;
931 lock->class->dep_gen_id = lockdep_dependency_gen_id;
934 static inline unsigned long lock_accessed(struct lock_list *lock)
938 nr = lock - list_entries;
939 WARN_ON(nr >= nr_list_entries);
940 return lock->class->dep_gen_id == lockdep_dependency_gen_id;
943 static inline struct lock_list *get_lock_parent(struct lock_list *child)
945 return child->parent;
948 static inline int get_lock_depth(struct lock_list *child)
951 struct lock_list *parent;
953 while ((parent = get_lock_parent(child))) {
960 static int __bfs(struct lock_list *source_entry,
962 int (*match)(struct lock_list *entry, void *data),
963 struct lock_list **target_entry,
966 struct lock_list *entry;
967 struct list_head *head;
968 struct circular_queue *cq = &lock_cq;
971 if (match(source_entry, data)) {
972 *target_entry = source_entry;
978 head = &source_entry->class->locks_after;
980 head = &source_entry->class->locks_before;
982 if (list_empty(head))
986 __cq_enqueue(cq, (unsigned long)source_entry);
988 while (!__cq_empty(cq)) {
989 struct lock_list *lock;
991 __cq_dequeue(cq, (unsigned long *)&lock);
999 head = &lock->class->locks_after;
1001 head = &lock->class->locks_before;
1003 list_for_each_entry(entry, head, entry) {
1004 if (!lock_accessed(entry)) {
1005 unsigned int cq_depth;
1006 mark_lock_accessed(entry, lock);
1007 if (match(entry, data)) {
1008 *target_entry = entry;
1013 if (__cq_enqueue(cq, (unsigned long)entry)) {
1017 cq_depth = __cq_get_elem_count(cq);
1018 if (max_bfs_queue_depth < cq_depth)
1019 max_bfs_queue_depth = cq_depth;
1027 static inline int __bfs_forwards(struct lock_list *src_entry,
1029 int (*match)(struct lock_list *entry, void *data),
1030 struct lock_list **target_entry)
1032 return __bfs(src_entry, data, match, target_entry, 1);
1036 static inline int __bfs_backwards(struct lock_list *src_entry,
1038 int (*match)(struct lock_list *entry, void *data),
1039 struct lock_list **target_entry)
1041 return __bfs(src_entry, data, match, target_entry, 0);
1046 * Recursive, forwards-direction lock-dependency checking, used for
1047 * both noncyclic checking and for hardirq-unsafe/softirq-unsafe
1052 * Print a dependency chain entry (this is only done when a deadlock
1053 * has been detected):
1056 print_circular_bug_entry(struct lock_list *target, int depth)
1058 if (debug_locks_silent)
1060 printk("\n-> #%u", depth);
1061 print_lock_name(target->class);
1063 print_stack_trace(&target->trace, 6);
1069 print_circular_lock_scenario(struct held_lock *src,
1070 struct held_lock *tgt,
1071 struct lock_list *prt)
1073 struct lock_class *source = hlock_class(src);
1074 struct lock_class *target = hlock_class(tgt);
1075 struct lock_class *parent = prt->class;
1078 * A direct locking problem where unsafe_class lock is taken
1079 * directly by safe_class lock, then all we need to show
1080 * is the deadlock scenario, as it is obvious that the
1081 * unsafe lock is taken under the safe lock.
1083 * But if there is a chain instead, where the safe lock takes
1084 * an intermediate lock (middle_class) where this lock is
1085 * not the same as the safe lock, then the lock chain is
1086 * used to describe the problem. Otherwise we would need
1087 * to show a different CPU case for each link in the chain
1088 * from the safe_class lock to the unsafe_class lock.
1090 if (parent != source) {
1091 printk("Chain exists of:\n ");
1092 __print_lock_name(source);
1094 __print_lock_name(parent);
1096 __print_lock_name(target);
1100 printk(" Possible unsafe locking scenario:\n\n");
1101 printk(" CPU0 CPU1\n");
1102 printk(" ---- ----\n");
1104 __print_lock_name(target);
1107 __print_lock_name(parent);
1110 __print_lock_name(target);
1113 __print_lock_name(source);
1115 printk("\n *** DEADLOCK ***\n\n");
1119 * When a circular dependency is detected, print the
1123 print_circular_bug_header(struct lock_list *entry, unsigned int depth,
1124 struct held_lock *check_src,
1125 struct held_lock *check_tgt)
1127 struct task_struct *curr = current;
1129 if (debug_locks_silent)
1132 printk("\n=======================================================\n");
1133 printk( "[ INFO: possible circular locking dependency detected ]\n");
1134 print_kernel_version();
1135 printk( "-------------------------------------------------------\n");
1136 printk("%s/%d is trying to acquire lock:\n",
1137 curr->comm, task_pid_nr(curr));
1138 print_lock(check_src);
1139 printk("\nbut task is already holding lock:\n");
1140 print_lock(check_tgt);
1141 printk("\nwhich lock already depends on the new lock.\n\n");
1142 printk("\nthe existing dependency chain (in reverse order) is:\n");
1144 print_circular_bug_entry(entry, depth);
1149 static inline int class_equal(struct lock_list *entry, void *data)
1151 return entry->class == data;
1154 static noinline int print_circular_bug(struct lock_list *this,
1155 struct lock_list *target,
1156 struct held_lock *check_src,
1157 struct held_lock *check_tgt)
1159 struct task_struct *curr = current;
1160 struct lock_list *parent;
1161 struct lock_list *first_parent;
1164 if (!debug_locks_off_graph_unlock() || debug_locks_silent)
1167 if (!save_trace(&this->trace))
1170 depth = get_lock_depth(target);
1172 print_circular_bug_header(target, depth, check_src, check_tgt);
1174 parent = get_lock_parent(target);
1175 first_parent = parent;
1178 print_circular_bug_entry(parent, --depth);
1179 parent = get_lock_parent(parent);
1182 printk("\nother info that might help us debug this:\n\n");
1183 print_circular_lock_scenario(check_src, check_tgt,
1186 lockdep_print_held_locks(curr);
1188 printk("\nstack backtrace:\n");
1194 static noinline int print_bfs_bug(int ret)
1196 if (!debug_locks_off_graph_unlock())
1199 WARN(1, "lockdep bfs error:%d\n", ret);
1204 static int noop_count(struct lock_list *entry, void *data)
1206 (*(unsigned long *)data)++;
1210 unsigned long __lockdep_count_forward_deps(struct lock_list *this)
1212 unsigned long count = 0;
1213 struct lock_list *uninitialized_var(target_entry);
1215 __bfs_forwards(this, (void *)&count, noop_count, &target_entry);
1219 unsigned long lockdep_count_forward_deps(struct lock_class *class)
1221 unsigned long ret, flags;
1222 struct lock_list this;
1227 local_irq_save(flags);
1228 arch_spin_lock(&lockdep_lock);
1229 ret = __lockdep_count_forward_deps(&this);
1230 arch_spin_unlock(&lockdep_lock);
1231 local_irq_restore(flags);
1236 unsigned long __lockdep_count_backward_deps(struct lock_list *this)
1238 unsigned long count = 0;
1239 struct lock_list *uninitialized_var(target_entry);
1241 __bfs_backwards(this, (void *)&count, noop_count, &target_entry);
1246 unsigned long lockdep_count_backward_deps(struct lock_class *class)
1248 unsigned long ret, flags;
1249 struct lock_list this;
1254 local_irq_save(flags);
1255 arch_spin_lock(&lockdep_lock);
1256 ret = __lockdep_count_backward_deps(&this);
1257 arch_spin_unlock(&lockdep_lock);
1258 local_irq_restore(flags);
1264 * Prove that the dependency graph starting at <entry> can not
1265 * lead to <target>. Print an error and return 0 if it does.
1268 check_noncircular(struct lock_list *root, struct lock_class *target,
1269 struct lock_list **target_entry)
1273 debug_atomic_inc(nr_cyclic_checks);
1275 result = __bfs_forwards(root, target, class_equal, target_entry);
1280 #if defined(CONFIG_TRACE_IRQFLAGS) && defined(CONFIG_PROVE_LOCKING)
1282 * Forwards and backwards subgraph searching, for the purposes of
1283 * proving that two subgraphs can be connected by a new dependency
1284 * without creating any illegal irq-safe -> irq-unsafe lock dependency.
1287 static inline int usage_match(struct lock_list *entry, void *bit)
1289 return entry->class->usage_mask & (1 << (enum lock_usage_bit)bit);
1295 * Find a node in the forwards-direction dependency sub-graph starting
1296 * at @root->class that matches @bit.
1298 * Return 0 if such a node exists in the subgraph, and put that node
1299 * into *@target_entry.
1301 * Return 1 otherwise and keep *@target_entry unchanged.
1302 * Return <0 on error.
1305 find_usage_forwards(struct lock_list *root, enum lock_usage_bit bit,
1306 struct lock_list **target_entry)
1310 debug_atomic_inc(nr_find_usage_forwards_checks);
1312 result = __bfs_forwards(root, (void *)bit, usage_match, target_entry);
1318 * Find a node in the backwards-direction dependency sub-graph starting
1319 * at @root->class that matches @bit.
1321 * Return 0 if such a node exists in the subgraph, and put that node
1322 * into *@target_entry.
1324 * Return 1 otherwise and keep *@target_entry unchanged.
1325 * Return <0 on error.
1328 find_usage_backwards(struct lock_list *root, enum lock_usage_bit bit,
1329 struct lock_list **target_entry)
1333 debug_atomic_inc(nr_find_usage_backwards_checks);
1335 result = __bfs_backwards(root, (void *)bit, usage_match, target_entry);
1340 static void print_lock_class_header(struct lock_class *class, int depth)
1344 printk("%*s->", depth, "");
1345 print_lock_name(class);
1346 printk(" ops: %lu", class->ops);
1349 for (bit = 0; bit < LOCK_USAGE_STATES; bit++) {
1350 if (class->usage_mask & (1 << bit)) {
1353 len += printk("%*s %s", depth, "", usage_str[bit]);
1354 len += printk(" at:\n");
1355 print_stack_trace(class->usage_traces + bit, len);
1358 printk("%*s }\n", depth, "");
1360 printk("%*s ... key at: ",depth,"");
1361 print_ip_sym((unsigned long)class->key);
1365 * printk the shortest lock dependencies from @start to @end in reverse order:
1368 print_shortest_lock_dependencies(struct lock_list *leaf,
1369 struct lock_list *root)
1371 struct lock_list *entry = leaf;
1374 /*compute depth from generated tree by BFS*/
1375 depth = get_lock_depth(leaf);
1378 print_lock_class_header(entry->class, depth);
1379 printk("%*s ... acquired at:\n", depth, "");
1380 print_stack_trace(&entry->trace, 2);
1383 if (depth == 0 && (entry != root)) {
1384 printk("lockdep:%s bad path found in chain graph\n", __func__);
1388 entry = get_lock_parent(entry);
1390 } while (entry && (depth >= 0));
1396 print_irq_lock_scenario(struct lock_list *safe_entry,
1397 struct lock_list *unsafe_entry,
1398 struct lock_class *prev_class,
1399 struct lock_class *next_class)
1401 struct lock_class *safe_class = safe_entry->class;
1402 struct lock_class *unsafe_class = unsafe_entry->class;
1403 struct lock_class *middle_class = prev_class;
1405 if (middle_class == safe_class)
1406 middle_class = next_class;
1409 * A direct locking problem where unsafe_class lock is taken
1410 * directly by safe_class lock, then all we need to show
1411 * is the deadlock scenario, as it is obvious that the
1412 * unsafe lock is taken under the safe lock.
1414 * But if there is a chain instead, where the safe lock takes
1415 * an intermediate lock (middle_class) where this lock is
1416 * not the same as the safe lock, then the lock chain is
1417 * used to describe the problem. Otherwise we would need
1418 * to show a different CPU case for each link in the chain
1419 * from the safe_class lock to the unsafe_class lock.
1421 if (middle_class != unsafe_class) {
1422 printk("Chain exists of:\n ");
1423 __print_lock_name(safe_class);
1425 __print_lock_name(middle_class);
1427 __print_lock_name(unsafe_class);
1431 printk(" Possible interrupt unsafe locking scenario:\n\n");
1432 printk(" CPU0 CPU1\n");
1433 printk(" ---- ----\n");
1435 __print_lock_name(unsafe_class);
1437 printk(" local_irq_disable();\n");
1439 __print_lock_name(safe_class);
1442 __print_lock_name(middle_class);
1444 printk(" <Interrupt>\n");
1446 __print_lock_name(safe_class);
1448 printk("\n *** DEADLOCK ***\n\n");
1452 print_bad_irq_dependency(struct task_struct *curr,
1453 struct lock_list *prev_root,
1454 struct lock_list *next_root,
1455 struct lock_list *backwards_entry,
1456 struct lock_list *forwards_entry,
1457 struct held_lock *prev,
1458 struct held_lock *next,
1459 enum lock_usage_bit bit1,
1460 enum lock_usage_bit bit2,
1461 const char *irqclass)
1463 if (!debug_locks_off_graph_unlock() || debug_locks_silent)
1466 printk("\n======================================================\n");
1467 printk( "[ INFO: %s-safe -> %s-unsafe lock order detected ]\n",
1468 irqclass, irqclass);
1469 print_kernel_version();
1470 printk( "------------------------------------------------------\n");
1471 printk("%s/%d [HC%u[%lu]:SC%u[%lu]:HE%u:SE%u] is trying to acquire:\n",
1472 curr->comm, task_pid_nr(curr),
1473 curr->hardirq_context, hardirq_count() >> HARDIRQ_SHIFT,
1474 curr->softirq_context, softirq_count() >> SOFTIRQ_SHIFT,
1475 curr->hardirqs_enabled,
1476 curr->softirqs_enabled);
1479 printk("\nand this task is already holding:\n");
1481 printk("which would create a new lock dependency:\n");
1482 print_lock_name(hlock_class(prev));
1484 print_lock_name(hlock_class(next));
1487 printk("\nbut this new dependency connects a %s-irq-safe lock:\n",
1489 print_lock_name(backwards_entry->class);
1490 printk("\n... which became %s-irq-safe at:\n", irqclass);
1492 print_stack_trace(backwards_entry->class->usage_traces + bit1, 1);
1494 printk("\nto a %s-irq-unsafe lock:\n", irqclass);
1495 print_lock_name(forwards_entry->class);
1496 printk("\n... which became %s-irq-unsafe at:\n", irqclass);
1499 print_stack_trace(forwards_entry->class->usage_traces + bit2, 1);
1501 printk("\nother info that might help us debug this:\n\n");
1502 print_irq_lock_scenario(backwards_entry, forwards_entry,
1503 hlock_class(prev), hlock_class(next));
1505 lockdep_print_held_locks(curr);
1507 printk("\nthe dependencies between %s-irq-safe lock", irqclass);
1508 printk(" and the holding lock:\n");
1509 if (!save_trace(&prev_root->trace))
1511 print_shortest_lock_dependencies(backwards_entry, prev_root);
1513 printk("\nthe dependencies between the lock to be acquired");
1514 printk(" and %s-irq-unsafe lock:\n", irqclass);
1515 if (!save_trace(&next_root->trace))
1517 print_shortest_lock_dependencies(forwards_entry, next_root);
1519 printk("\nstack backtrace:\n");
1526 check_usage(struct task_struct *curr, struct held_lock *prev,
1527 struct held_lock *next, enum lock_usage_bit bit_backwards,
1528 enum lock_usage_bit bit_forwards, const char *irqclass)
1531 struct lock_list this, that;
1532 struct lock_list *uninitialized_var(target_entry);
1533 struct lock_list *uninitialized_var(target_entry1);
1537 this.class = hlock_class(prev);
1538 ret = find_usage_backwards(&this, bit_backwards, &target_entry);
1540 return print_bfs_bug(ret);
1545 that.class = hlock_class(next);
1546 ret = find_usage_forwards(&that, bit_forwards, &target_entry1);
1548 return print_bfs_bug(ret);
1552 return print_bad_irq_dependency(curr, &this, &that,
1553 target_entry, target_entry1,
1555 bit_backwards, bit_forwards, irqclass);
1558 static const char *state_names[] = {
1559 #define LOCKDEP_STATE(__STATE) \
1560 __stringify(__STATE),
1561 #include "lockdep_states.h"
1562 #undef LOCKDEP_STATE
1565 static const char *state_rnames[] = {
1566 #define LOCKDEP_STATE(__STATE) \
1567 __stringify(__STATE)"-READ",
1568 #include "lockdep_states.h"
1569 #undef LOCKDEP_STATE
1572 static inline const char *state_name(enum lock_usage_bit bit)
1574 return (bit & 1) ? state_rnames[bit >> 2] : state_names[bit >> 2];
1577 static int exclusive_bit(int new_bit)
1585 * bit 0 - write/read
1586 * bit 1 - used_in/enabled
1590 int state = new_bit & ~3;
1591 int dir = new_bit & 2;
1594 * keep state, bit flip the direction and strip read.
1596 return state | (dir ^ 2);
1599 static int check_irq_usage(struct task_struct *curr, struct held_lock *prev,
1600 struct held_lock *next, enum lock_usage_bit bit)
1603 * Prove that the new dependency does not connect a hardirq-safe
1604 * lock with a hardirq-unsafe lock - to achieve this we search
1605 * the backwards-subgraph starting at <prev>, and the
1606 * forwards-subgraph starting at <next>:
1608 if (!check_usage(curr, prev, next, bit,
1609 exclusive_bit(bit), state_name(bit)))
1615 * Prove that the new dependency does not connect a hardirq-safe-read
1616 * lock with a hardirq-unsafe lock - to achieve this we search
1617 * the backwards-subgraph starting at <prev>, and the
1618 * forwards-subgraph starting at <next>:
1620 if (!check_usage(curr, prev, next, bit,
1621 exclusive_bit(bit), state_name(bit)))
1628 check_prev_add_irq(struct task_struct *curr, struct held_lock *prev,
1629 struct held_lock *next)
1631 #define LOCKDEP_STATE(__STATE) \
1632 if (!check_irq_usage(curr, prev, next, LOCK_USED_IN_##__STATE)) \
1634 #include "lockdep_states.h"
1635 #undef LOCKDEP_STATE
1640 static void inc_chains(void)
1642 if (current->hardirq_context)
1643 nr_hardirq_chains++;
1645 if (current->softirq_context)
1646 nr_softirq_chains++;
1648 nr_process_chains++;
1655 check_prev_add_irq(struct task_struct *curr, struct held_lock *prev,
1656 struct held_lock *next)
1661 static inline void inc_chains(void)
1663 nr_process_chains++;
1669 print_deadlock_scenario(struct held_lock *nxt,
1670 struct held_lock *prv)
1672 struct lock_class *next = hlock_class(nxt);
1673 struct lock_class *prev = hlock_class(prv);
1675 printk(" Possible unsafe locking scenario:\n\n");
1679 __print_lock_name(prev);
1682 __print_lock_name(next);
1684 printk("\n *** DEADLOCK ***\n\n");
1685 printk(" May be due to missing lock nesting notation\n\n");
1689 print_deadlock_bug(struct task_struct *curr, struct held_lock *prev,
1690 struct held_lock *next)
1692 if (!debug_locks_off_graph_unlock() || debug_locks_silent)
1695 printk("\n=============================================\n");
1696 printk( "[ INFO: possible recursive locking detected ]\n");
1697 print_kernel_version();
1698 printk( "---------------------------------------------\n");
1699 printk("%s/%d is trying to acquire lock:\n",
1700 curr->comm, task_pid_nr(curr));
1702 printk("\nbut task is already holding lock:\n");
1705 printk("\nother info that might help us debug this:\n");
1706 print_deadlock_scenario(next, prev);
1707 lockdep_print_held_locks(curr);
1709 printk("\nstack backtrace:\n");
1716 * Check whether we are holding such a class already.
1718 * (Note that this has to be done separately, because the graph cannot
1719 * detect such classes of deadlocks.)
1721 * Returns: 0 on deadlock detected, 1 on OK, 2 on recursive read
1724 check_deadlock(struct task_struct *curr, struct held_lock *next,
1725 struct lockdep_map *next_instance, int read)
1727 struct held_lock *prev;
1728 struct held_lock *nest = NULL;
1731 for (i = 0; i < curr->lockdep_depth; i++) {
1732 prev = curr->held_locks + i;
1734 if (prev->instance == next->nest_lock)
1737 if (hlock_class(prev) != hlock_class(next))
1741 * Allow read-after-read recursion of the same
1742 * lock class (i.e. read_lock(lock)+read_lock(lock)):
1744 if ((read == 2) && prev->read)
1748 * We're holding the nest_lock, which serializes this lock's
1749 * nesting behaviour.
1754 return print_deadlock_bug(curr, prev, next);
1760 * There was a chain-cache miss, and we are about to add a new dependency
1761 * to a previous lock. We recursively validate the following rules:
1763 * - would the adding of the <prev> -> <next> dependency create a
1764 * circular dependency in the graph? [== circular deadlock]
1766 * - does the new prev->next dependency connect any hardirq-safe lock
1767 * (in the full backwards-subgraph starting at <prev>) with any
1768 * hardirq-unsafe lock (in the full forwards-subgraph starting at
1769 * <next>)? [== illegal lock inversion with hardirq contexts]
1771 * - does the new prev->next dependency connect any softirq-safe lock
1772 * (in the full backwards-subgraph starting at <prev>) with any
1773 * softirq-unsafe lock (in the full forwards-subgraph starting at
1774 * <next>)? [== illegal lock inversion with softirq contexts]
1776 * any of these scenarios could lead to a deadlock.
1778 * Then if all the validations pass, we add the forwards and backwards
1782 check_prev_add(struct task_struct *curr, struct held_lock *prev,
1783 struct held_lock *next, int distance, int trylock_loop)
1785 struct lock_list *entry;
1787 struct lock_list this;
1788 struct lock_list *uninitialized_var(target_entry);
1790 * Static variable, serialized by the graph_lock().
1792 * We use this static variable to save the stack trace in case
1793 * we call into this function multiple times due to encountering
1794 * trylocks in the held lock stack.
1796 static struct stack_trace trace;
1799 * Prove that the new <prev> -> <next> dependency would not
1800 * create a circular dependency in the graph. (We do this by
1801 * forward-recursing into the graph starting at <next>, and
1802 * checking whether we can reach <prev>.)
1804 * We are using global variables to control the recursion, to
1805 * keep the stackframe size of the recursive functions low:
1807 this.class = hlock_class(next);
1809 ret = check_noncircular(&this, hlock_class(prev), &target_entry);
1811 return print_circular_bug(&this, target_entry, next, prev);
1812 else if (unlikely(ret < 0))
1813 return print_bfs_bug(ret);
1815 if (!check_prev_add_irq(curr, prev, next))
1819 * For recursive read-locks we do all the dependency checks,
1820 * but we dont store read-triggered dependencies (only
1821 * write-triggered dependencies). This ensures that only the
1822 * write-side dependencies matter, and that if for example a
1823 * write-lock never takes any other locks, then the reads are
1824 * equivalent to a NOP.
1826 if (next->read == 2 || prev->read == 2)
1829 * Is the <prev> -> <next> dependency already present?
1831 * (this may occur even though this is a new chain: consider
1832 * e.g. the L1 -> L2 -> L3 -> L4 and the L5 -> L1 -> L2 -> L3
1833 * chains - the second one will be new, but L1 already has
1834 * L2 added to its dependency list, due to the first chain.)
1836 list_for_each_entry(entry, &hlock_class(prev)->locks_after, entry) {
1837 if (entry->class == hlock_class(next)) {
1839 entry->distance = 1;
1844 if (!trylock_loop && !save_trace(&trace))
1848 * Ok, all validations passed, add the new lock
1849 * to the previous lock's dependency list:
1851 ret = add_lock_to_list(hlock_class(prev), hlock_class(next),
1852 &hlock_class(prev)->locks_after,
1853 next->acquire_ip, distance, &trace);
1858 ret = add_lock_to_list(hlock_class(next), hlock_class(prev),
1859 &hlock_class(next)->locks_before,
1860 next->acquire_ip, distance, &trace);
1865 * Debugging printouts:
1867 if (verbose(hlock_class(prev)) || verbose(hlock_class(next))) {
1869 printk("\n new dependency: ");
1870 print_lock_name(hlock_class(prev));
1872 print_lock_name(hlock_class(next));
1875 return graph_lock();
1881 * Add the dependency to all directly-previous locks that are 'relevant'.
1882 * The ones that are relevant are (in increasing distance from curr):
1883 * all consecutive trylock entries and the final non-trylock entry - or
1884 * the end of this context's lock-chain - whichever comes first.
1887 check_prevs_add(struct task_struct *curr, struct held_lock *next)
1889 int depth = curr->lockdep_depth;
1890 int trylock_loop = 0;
1891 struct held_lock *hlock;
1896 * Depth must not be zero for a non-head lock:
1901 * At least two relevant locks must exist for this
1904 if (curr->held_locks[depth].irq_context !=
1905 curr->held_locks[depth-1].irq_context)
1909 int distance = curr->lockdep_depth - depth + 1;
1910 hlock = curr->held_locks + depth-1;
1912 * Only non-recursive-read entries get new dependencies
1915 if (hlock->read != 2) {
1916 if (!check_prev_add(curr, hlock, next,
1917 distance, trylock_loop))
1920 * Stop after the first non-trylock entry,
1921 * as non-trylock entries have added their
1922 * own direct dependencies already, so this
1923 * lock is connected to them indirectly:
1925 if (!hlock->trylock)
1930 * End of lock-stack?
1935 * Stop the search if we cross into another context:
1937 if (curr->held_locks[depth].irq_context !=
1938 curr->held_locks[depth-1].irq_context)
1944 if (!debug_locks_off_graph_unlock())
1952 unsigned long nr_lock_chains;
1953 struct lock_chain lock_chains[MAX_LOCKDEP_CHAINS];
1954 int nr_chain_hlocks;
1955 static u16 chain_hlocks[MAX_LOCKDEP_CHAIN_HLOCKS];
1957 struct lock_class *lock_chain_get_class(struct lock_chain *chain, int i)
1959 return lock_classes + chain_hlocks[chain->base + i];
1963 * Look up a dependency chain. If the key is not present yet then
1964 * add it and return 1 - in this case the new dependency chain is
1965 * validated. If the key is already hashed, return 0.
1966 * (On return with 1 graph_lock is held.)
1968 static inline int lookup_chain_cache(struct task_struct *curr,
1969 struct held_lock *hlock,
1972 struct lock_class *class = hlock_class(hlock);
1973 struct list_head *hash_head = chainhashentry(chain_key);
1974 struct lock_chain *chain;
1975 struct held_lock *hlock_curr, *hlock_next;
1978 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled()))
1981 * We can walk it lock-free, because entries only get added
1984 list_for_each_entry(chain, hash_head, entry) {
1985 if (chain->chain_key == chain_key) {
1987 debug_atomic_inc(chain_lookup_hits);
1988 if (very_verbose(class))
1989 printk("\nhash chain already cached, key: "
1990 "%016Lx tail class: [%p] %s\n",
1991 (unsigned long long)chain_key,
1992 class->key, class->name);
1996 if (very_verbose(class))
1997 printk("\nnew hash chain, key: %016Lx tail class: [%p] %s\n",
1998 (unsigned long long)chain_key, class->key, class->name);
2000 * Allocate a new chain entry from the static array, and add
2006 * We have to walk the chain again locked - to avoid duplicates:
2008 list_for_each_entry(chain, hash_head, entry) {
2009 if (chain->chain_key == chain_key) {
2014 if (unlikely(nr_lock_chains >= MAX_LOCKDEP_CHAINS)) {
2015 if (!debug_locks_off_graph_unlock())
2018 printk("BUG: MAX_LOCKDEP_CHAINS too low!\n");
2019 printk("turning off the locking correctness validator.\n");
2023 chain = lock_chains + nr_lock_chains++;
2024 chain->chain_key = chain_key;
2025 chain->irq_context = hlock->irq_context;
2026 /* Find the first held_lock of current chain */
2028 for (i = curr->lockdep_depth - 1; i >= 0; i--) {
2029 hlock_curr = curr->held_locks + i;
2030 if (hlock_curr->irq_context != hlock_next->irq_context)
2035 chain->depth = curr->lockdep_depth + 1 - i;
2036 cn = nr_chain_hlocks;
2037 while (cn + chain->depth <= MAX_LOCKDEP_CHAIN_HLOCKS) {
2038 n = cmpxchg(&nr_chain_hlocks, cn, cn + chain->depth);
2043 if (likely(cn + chain->depth <= MAX_LOCKDEP_CHAIN_HLOCKS)) {
2045 for (j = 0; j < chain->depth - 1; j++, i++) {
2046 int lock_id = curr->held_locks[i].class_idx - 1;
2047 chain_hlocks[chain->base + j] = lock_id;
2049 chain_hlocks[chain->base + j] = class - lock_classes;
2051 list_add_tail_rcu(&chain->entry, hash_head);
2052 debug_atomic_inc(chain_lookup_misses);
2058 static int validate_chain(struct task_struct *curr, struct lockdep_map *lock,
2059 struct held_lock *hlock, int chain_head, u64 chain_key)
2062 * Trylock needs to maintain the stack of held locks, but it
2063 * does not add new dependencies, because trylock can be done
2066 * We look up the chain_key and do the O(N^2) check and update of
2067 * the dependencies only if this is a new dependency chain.
2068 * (If lookup_chain_cache() returns with 1 it acquires
2069 * graph_lock for us)
2071 if (!hlock->trylock && (hlock->check == 2) &&
2072 lookup_chain_cache(curr, hlock, chain_key)) {
2074 * Check whether last held lock:
2076 * - is irq-safe, if this lock is irq-unsafe
2077 * - is softirq-safe, if this lock is hardirq-unsafe
2079 * And check whether the new lock's dependency graph
2080 * could lead back to the previous lock.
2082 * any of these scenarios could lead to a deadlock. If
2085 int ret = check_deadlock(curr, hlock, lock, hlock->read);
2090 * Mark recursive read, as we jump over it when
2091 * building dependencies (just like we jump over
2097 * Add dependency only if this lock is not the head
2098 * of the chain, and if it's not a secondary read-lock:
2100 if (!chain_head && ret != 2)
2101 if (!check_prevs_add(curr, hlock))
2105 /* after lookup_chain_cache(): */
2106 if (unlikely(!debug_locks))
2112 static inline int validate_chain(struct task_struct *curr,
2113 struct lockdep_map *lock, struct held_lock *hlock,
2114 int chain_head, u64 chain_key)
2121 * We are building curr_chain_key incrementally, so double-check
2122 * it from scratch, to make sure that it's done correctly:
2124 static void check_chain_key(struct task_struct *curr)
2126 #ifdef CONFIG_DEBUG_LOCKDEP
2127 struct held_lock *hlock, *prev_hlock = NULL;
2131 for (i = 0; i < curr->lockdep_depth; i++) {
2132 hlock = curr->held_locks + i;
2133 if (chain_key != hlock->prev_chain_key) {
2135 WARN(1, "hm#1, depth: %u [%u], %016Lx != %016Lx\n",
2136 curr->lockdep_depth, i,
2137 (unsigned long long)chain_key,
2138 (unsigned long long)hlock->prev_chain_key);
2141 id = hlock->class_idx - 1;
2142 if (DEBUG_LOCKS_WARN_ON(id >= MAX_LOCKDEP_KEYS))
2145 if (prev_hlock && (prev_hlock->irq_context !=
2146 hlock->irq_context))
2148 chain_key = iterate_chain_key(chain_key, id);
2151 if (chain_key != curr->curr_chain_key) {
2153 WARN(1, "hm#2, depth: %u [%u], %016Lx != %016Lx\n",
2154 curr->lockdep_depth, i,
2155 (unsigned long long)chain_key,
2156 (unsigned long long)curr->curr_chain_key);
2162 print_usage_bug(struct task_struct *curr, struct held_lock *this,
2163 enum lock_usage_bit prev_bit, enum lock_usage_bit new_bit)
2165 if (!debug_locks_off_graph_unlock() || debug_locks_silent)
2168 printk("\n=================================\n");
2169 printk( "[ INFO: inconsistent lock state ]\n");
2170 print_kernel_version();
2171 printk( "---------------------------------\n");
2173 printk("inconsistent {%s} -> {%s} usage.\n",
2174 usage_str[prev_bit], usage_str[new_bit]);
2176 printk("%s/%d [HC%u[%lu]:SC%u[%lu]:HE%u:SE%u] takes:\n",
2177 curr->comm, task_pid_nr(curr),
2178 trace_hardirq_context(curr), hardirq_count() >> HARDIRQ_SHIFT,
2179 trace_softirq_context(curr), softirq_count() >> SOFTIRQ_SHIFT,
2180 trace_hardirqs_enabled(curr),
2181 trace_softirqs_enabled(curr));
2184 printk("{%s} state was registered at:\n", usage_str[prev_bit]);
2185 print_stack_trace(hlock_class(this)->usage_traces + prev_bit, 1);
2187 print_irqtrace_events(curr);
2188 printk("\nother info that might help us debug this:\n");
2189 lockdep_print_held_locks(curr);
2191 printk("\nstack backtrace:\n");
2198 * Print out an error if an invalid bit is set:
2201 valid_state(struct task_struct *curr, struct held_lock *this,
2202 enum lock_usage_bit new_bit, enum lock_usage_bit bad_bit)
2204 if (unlikely(hlock_class(this)->usage_mask & (1 << bad_bit)))
2205 return print_usage_bug(curr, this, bad_bit, new_bit);
2209 static int mark_lock(struct task_struct *curr, struct held_lock *this,
2210 enum lock_usage_bit new_bit);
2212 #if defined(CONFIG_TRACE_IRQFLAGS) && defined(CONFIG_PROVE_LOCKING)
2215 * print irq inversion bug:
2218 print_irq_inversion_bug(struct task_struct *curr,
2219 struct lock_list *root, struct lock_list *other,
2220 struct held_lock *this, int forwards,
2221 const char *irqclass)
2223 struct lock_list *entry = other;
2224 struct lock_list *middle = NULL;
2227 if (!debug_locks_off_graph_unlock() || debug_locks_silent)
2230 printk("\n=========================================================\n");
2231 printk( "[ INFO: possible irq lock inversion dependency detected ]\n");
2232 print_kernel_version();
2233 printk( "---------------------------------------------------------\n");
2234 printk("%s/%d just changed the state of lock:\n",
2235 curr->comm, task_pid_nr(curr));
2238 printk("but this lock took another, %s-unsafe lock in the past:\n", irqclass);
2240 printk("but this lock was taken by another, %s-safe lock in the past:\n", irqclass);
2241 print_lock_name(other->class);
2242 printk("\n\nand interrupts could create inverse lock ordering between them.\n\n");
2244 printk("\nother info that might help us debug this:\n");
2246 /* Find a middle lock (if one exists) */
2247 depth = get_lock_depth(other);
2249 if (depth == 0 && (entry != root)) {
2250 printk("lockdep:%s bad path found in chain graph\n", __func__);
2254 entry = get_lock_parent(entry);
2256 } while (entry && entry != root && (depth >= 0));
2258 print_irq_lock_scenario(root, other,
2259 middle ? middle->class : root->class, other->class);
2261 print_irq_lock_scenario(other, root,
2262 middle ? middle->class : other->class, root->class);
2264 lockdep_print_held_locks(curr);
2266 printk("\nthe shortest dependencies between 2nd lock and 1st lock:\n");
2267 if (!save_trace(&root->trace))
2269 print_shortest_lock_dependencies(other, root);
2271 printk("\nstack backtrace:\n");
2278 * Prove that in the forwards-direction subgraph starting at <this>
2279 * there is no lock matching <mask>:
2282 check_usage_forwards(struct task_struct *curr, struct held_lock *this,
2283 enum lock_usage_bit bit, const char *irqclass)
2286 struct lock_list root;
2287 struct lock_list *uninitialized_var(target_entry);
2290 root.class = hlock_class(this);
2291 ret = find_usage_forwards(&root, bit, &target_entry);
2293 return print_bfs_bug(ret);
2297 return print_irq_inversion_bug(curr, &root, target_entry,
2302 * Prove that in the backwards-direction subgraph starting at <this>
2303 * there is no lock matching <mask>:
2306 check_usage_backwards(struct task_struct *curr, struct held_lock *this,
2307 enum lock_usage_bit bit, const char *irqclass)
2310 struct lock_list root;
2311 struct lock_list *uninitialized_var(target_entry);
2314 root.class = hlock_class(this);
2315 ret = find_usage_backwards(&root, bit, &target_entry);
2317 return print_bfs_bug(ret);
2321 return print_irq_inversion_bug(curr, &root, target_entry,
2325 void print_irqtrace_events(struct task_struct *curr)
2327 printk("irq event stamp: %u\n", curr->irq_events);
2328 printk("hardirqs last enabled at (%u): ", curr->hardirq_enable_event);
2329 print_ip_sym(curr->hardirq_enable_ip);
2330 printk("hardirqs last disabled at (%u): ", curr->hardirq_disable_event);
2331 print_ip_sym(curr->hardirq_disable_ip);
2332 printk("softirqs last enabled at (%u): ", curr->softirq_enable_event);
2333 print_ip_sym(curr->softirq_enable_ip);
2334 printk("softirqs last disabled at (%u): ", curr->softirq_disable_event);
2335 print_ip_sym(curr->softirq_disable_ip);
2338 static int HARDIRQ_verbose(struct lock_class *class)
2341 return class_filter(class);
2346 static int SOFTIRQ_verbose(struct lock_class *class)
2349 return class_filter(class);
2354 static int RECLAIM_FS_verbose(struct lock_class *class)
2357 return class_filter(class);
2362 #define STRICT_READ_CHECKS 1
2364 static int (*state_verbose_f[])(struct lock_class *class) = {
2365 #define LOCKDEP_STATE(__STATE) \
2367 #include "lockdep_states.h"
2368 #undef LOCKDEP_STATE
2371 static inline int state_verbose(enum lock_usage_bit bit,
2372 struct lock_class *class)
2374 return state_verbose_f[bit >> 2](class);
2377 typedef int (*check_usage_f)(struct task_struct *, struct held_lock *,
2378 enum lock_usage_bit bit, const char *name);
2381 mark_lock_irq(struct task_struct *curr, struct held_lock *this,
2382 enum lock_usage_bit new_bit)
2384 int excl_bit = exclusive_bit(new_bit);
2385 int read = new_bit & 1;
2386 int dir = new_bit & 2;
2389 * mark USED_IN has to look forwards -- to ensure no dependency
2390 * has ENABLED state, which would allow recursion deadlocks.
2392 * mark ENABLED has to look backwards -- to ensure no dependee
2393 * has USED_IN state, which, again, would allow recursion deadlocks.
2395 check_usage_f usage = dir ?
2396 check_usage_backwards : check_usage_forwards;
2399 * Validate that this particular lock does not have conflicting
2402 if (!valid_state(curr, this, new_bit, excl_bit))
2406 * Validate that the lock dependencies don't have conflicting usage
2409 if ((!read || !dir || STRICT_READ_CHECKS) &&
2410 !usage(curr, this, excl_bit, state_name(new_bit & ~1)))
2414 * Check for read in write conflicts
2417 if (!valid_state(curr, this, new_bit, excl_bit + 1))
2420 if (STRICT_READ_CHECKS &&
2421 !usage(curr, this, excl_bit + 1,
2422 state_name(new_bit + 1)))
2426 if (state_verbose(new_bit, hlock_class(this)))
2433 #define LOCKDEP_STATE(__STATE) __STATE,
2434 #include "lockdep_states.h"
2435 #undef LOCKDEP_STATE
2439 * Mark all held locks with a usage bit:
2442 mark_held_locks(struct task_struct *curr, enum mark_type mark)
2444 enum lock_usage_bit usage_bit;
2445 struct held_lock *hlock;
2448 for (i = 0; i < curr->lockdep_depth; i++) {
2449 hlock = curr->held_locks + i;
2451 usage_bit = 2 + (mark << 2); /* ENABLED */
2453 usage_bit += 1; /* READ */
2455 BUG_ON(usage_bit >= LOCK_USAGE_STATES);
2457 if (!mark_lock(curr, hlock, usage_bit))
2465 * Hardirqs will be enabled:
2467 void trace_hardirqs_on_caller(unsigned long ip)
2469 struct task_struct *curr = current;
2471 time_hardirqs_on(CALLER_ADDR0, ip);
2473 if (unlikely(!debug_locks || current->lockdep_recursion))
2476 if (DEBUG_LOCKS_WARN_ON(unlikely(early_boot_irqs_disabled)))
2479 if (unlikely(curr->hardirqs_enabled)) {
2481 * Neither irq nor preemption are disabled here
2482 * so this is racy by nature but losing one hit
2483 * in a stat is not a big deal.
2485 __debug_atomic_inc(redundant_hardirqs_on);
2488 /* we'll do an OFF -> ON transition: */
2489 curr->hardirqs_enabled = 1;
2491 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled()))
2493 if (DEBUG_LOCKS_WARN_ON(current->hardirq_context))
2496 * We are going to turn hardirqs on, so set the
2497 * usage bit for all held locks:
2499 if (!mark_held_locks(curr, HARDIRQ))
2502 * If we have softirqs enabled, then set the usage
2503 * bit for all held locks. (disabled hardirqs prevented
2504 * this bit from being set before)
2506 if (curr->softirqs_enabled)
2507 if (!mark_held_locks(curr, SOFTIRQ))
2510 curr->hardirq_enable_ip = ip;
2511 curr->hardirq_enable_event = ++curr->irq_events;
2512 debug_atomic_inc(hardirqs_on_events);
2514 EXPORT_SYMBOL(trace_hardirqs_on_caller);
2516 void trace_hardirqs_on(void)
2518 trace_hardirqs_on_caller(CALLER_ADDR0);
2520 EXPORT_SYMBOL(trace_hardirqs_on);
2523 * Hardirqs were disabled:
2525 void trace_hardirqs_off_caller(unsigned long ip)
2527 struct task_struct *curr = current;
2529 time_hardirqs_off(CALLER_ADDR0, ip);
2531 if (unlikely(!debug_locks || current->lockdep_recursion))
2534 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled()))
2537 if (curr->hardirqs_enabled) {
2539 * We have done an ON -> OFF transition:
2541 curr->hardirqs_enabled = 0;
2542 curr->hardirq_disable_ip = ip;
2543 curr->hardirq_disable_event = ++curr->irq_events;
2544 debug_atomic_inc(hardirqs_off_events);
2546 debug_atomic_inc(redundant_hardirqs_off);
2548 EXPORT_SYMBOL(trace_hardirqs_off_caller);
2550 void trace_hardirqs_off(void)
2552 trace_hardirqs_off_caller(CALLER_ADDR0);
2554 EXPORT_SYMBOL(trace_hardirqs_off);
2557 * Softirqs will be enabled:
2559 void trace_softirqs_on(unsigned long ip)
2561 struct task_struct *curr = current;
2563 if (unlikely(!debug_locks))
2566 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled()))
2569 if (curr->softirqs_enabled) {
2570 debug_atomic_inc(redundant_softirqs_on);
2575 * We'll do an OFF -> ON transition:
2577 curr->softirqs_enabled = 1;
2578 curr->softirq_enable_ip = ip;
2579 curr->softirq_enable_event = ++curr->irq_events;
2580 debug_atomic_inc(softirqs_on_events);
2582 * We are going to turn softirqs on, so set the
2583 * usage bit for all held locks, if hardirqs are
2586 if (curr->hardirqs_enabled)
2587 mark_held_locks(curr, SOFTIRQ);
2591 * Softirqs were disabled:
2593 void trace_softirqs_off(unsigned long ip)
2595 struct task_struct *curr = current;
2597 if (unlikely(!debug_locks))
2600 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled()))
2603 if (curr->softirqs_enabled) {
2605 * We have done an ON -> OFF transition:
2607 curr->softirqs_enabled = 0;
2608 curr->softirq_disable_ip = ip;
2609 curr->softirq_disable_event = ++curr->irq_events;
2610 debug_atomic_inc(softirqs_off_events);
2611 DEBUG_LOCKS_WARN_ON(!softirq_count());
2613 debug_atomic_inc(redundant_softirqs_off);
2616 static void __lockdep_trace_alloc(gfp_t gfp_mask, unsigned long flags)
2618 struct task_struct *curr = current;
2620 if (unlikely(!debug_locks))
2623 /* no reclaim without waiting on it */
2624 if (!(gfp_mask & __GFP_WAIT))
2627 /* this guy won't enter reclaim */
2628 if ((curr->flags & PF_MEMALLOC) && !(gfp_mask & __GFP_NOMEMALLOC))
2631 /* We're only interested __GFP_FS allocations for now */
2632 if (!(gfp_mask & __GFP_FS))
2635 if (DEBUG_LOCKS_WARN_ON(irqs_disabled_flags(flags)))
2638 mark_held_locks(curr, RECLAIM_FS);
2641 static void check_flags(unsigned long flags);
2643 void lockdep_trace_alloc(gfp_t gfp_mask)
2645 unsigned long flags;
2647 if (unlikely(current->lockdep_recursion))
2650 raw_local_irq_save(flags);
2652 current->lockdep_recursion = 1;
2653 __lockdep_trace_alloc(gfp_mask, flags);
2654 current->lockdep_recursion = 0;
2655 raw_local_irq_restore(flags);
2658 static int mark_irqflags(struct task_struct *curr, struct held_lock *hlock)
2661 * If non-trylock use in a hardirq or softirq context, then
2662 * mark the lock as used in these contexts:
2664 if (!hlock->trylock) {
2666 if (curr->hardirq_context)
2667 if (!mark_lock(curr, hlock,
2668 LOCK_USED_IN_HARDIRQ_READ))
2670 if (curr->softirq_context)
2671 if (!mark_lock(curr, hlock,
2672 LOCK_USED_IN_SOFTIRQ_READ))
2675 if (curr->hardirq_context)
2676 if (!mark_lock(curr, hlock, LOCK_USED_IN_HARDIRQ))
2678 if (curr->softirq_context)
2679 if (!mark_lock(curr, hlock, LOCK_USED_IN_SOFTIRQ))
2683 if (!hlock->hardirqs_off) {
2685 if (!mark_lock(curr, hlock,
2686 LOCK_ENABLED_HARDIRQ_READ))
2688 if (curr->softirqs_enabled)
2689 if (!mark_lock(curr, hlock,
2690 LOCK_ENABLED_SOFTIRQ_READ))
2693 if (!mark_lock(curr, hlock,
2694 LOCK_ENABLED_HARDIRQ))
2696 if (curr->softirqs_enabled)
2697 if (!mark_lock(curr, hlock,
2698 LOCK_ENABLED_SOFTIRQ))
2704 * We reuse the irq context infrastructure more broadly as a general
2705 * context checking code. This tests GFP_FS recursion (a lock taken
2706 * during reclaim for a GFP_FS allocation is held over a GFP_FS
2709 if (!hlock->trylock && (curr->lockdep_reclaim_gfp & __GFP_FS)) {
2711 if (!mark_lock(curr, hlock, LOCK_USED_IN_RECLAIM_FS_READ))
2714 if (!mark_lock(curr, hlock, LOCK_USED_IN_RECLAIM_FS))
2722 static int separate_irq_context(struct task_struct *curr,
2723 struct held_lock *hlock)
2725 unsigned int depth = curr->lockdep_depth;
2728 * Keep track of points where we cross into an interrupt context:
2730 hlock->irq_context = 2*(curr->hardirq_context ? 1 : 0) +
2731 curr->softirq_context;
2733 struct held_lock *prev_hlock;
2735 prev_hlock = curr->held_locks + depth-1;
2737 * If we cross into another context, reset the
2738 * hash key (this also prevents the checking and the
2739 * adding of the dependency to 'prev'):
2741 if (prev_hlock->irq_context != hlock->irq_context)
2750 int mark_lock_irq(struct task_struct *curr, struct held_lock *this,
2751 enum lock_usage_bit new_bit)
2757 static inline int mark_irqflags(struct task_struct *curr,
2758 struct held_lock *hlock)
2763 static inline int separate_irq_context(struct task_struct *curr,
2764 struct held_lock *hlock)
2769 void lockdep_trace_alloc(gfp_t gfp_mask)
2776 * Mark a lock with a usage bit, and validate the state transition:
2778 static int mark_lock(struct task_struct *curr, struct held_lock *this,
2779 enum lock_usage_bit new_bit)
2781 unsigned int new_mask = 1 << new_bit, ret = 1;
2784 * If already set then do not dirty the cacheline,
2785 * nor do any checks:
2787 if (likely(hlock_class(this)->usage_mask & new_mask))
2793 * Make sure we didn't race:
2795 if (unlikely(hlock_class(this)->usage_mask & new_mask)) {
2800 hlock_class(this)->usage_mask |= new_mask;
2802 if (!save_trace(hlock_class(this)->usage_traces + new_bit))
2806 #define LOCKDEP_STATE(__STATE) \
2807 case LOCK_USED_IN_##__STATE: \
2808 case LOCK_USED_IN_##__STATE##_READ: \
2809 case LOCK_ENABLED_##__STATE: \
2810 case LOCK_ENABLED_##__STATE##_READ:
2811 #include "lockdep_states.h"
2812 #undef LOCKDEP_STATE
2813 ret = mark_lock_irq(curr, this, new_bit);
2818 debug_atomic_dec(nr_unused_locks);
2821 if (!debug_locks_off_graph_unlock())
2830 * We must printk outside of the graph_lock:
2833 printk("\nmarked lock as {%s}:\n", usage_str[new_bit]);
2835 print_irqtrace_events(curr);
2843 * Initialize a lock instance's lock-class mapping info:
2845 void lockdep_init_map(struct lockdep_map *lock, const char *name,
2846 struct lock_class_key *key, int subclass)
2850 for (i = 0; i < NR_LOCKDEP_CACHING_CLASSES; i++)
2851 lock->class_cache[i] = NULL;
2853 #ifdef CONFIG_LOCK_STAT
2854 lock->cpu = raw_smp_processor_id();
2857 if (DEBUG_LOCKS_WARN_ON(!name)) {
2858 lock->name = "NULL";
2864 if (DEBUG_LOCKS_WARN_ON(!key))
2867 * Sanity check, the lock-class key must be persistent:
2869 if (!static_obj(key)) {
2870 printk("BUG: key %p not in .data!\n", key);
2871 DEBUG_LOCKS_WARN_ON(1);
2876 if (unlikely(!debug_locks))
2880 register_lock_class(lock, subclass, 1);
2882 EXPORT_SYMBOL_GPL(lockdep_init_map);
2884 struct lock_class_key __lockdep_no_validate__;
2887 * This gets called for every mutex_lock*()/spin_lock*() operation.
2888 * We maintain the dependency maps and validate the locking attempt:
2890 static int __lock_acquire(struct lockdep_map *lock, unsigned int subclass,
2891 int trylock, int read, int check, int hardirqs_off,
2892 struct lockdep_map *nest_lock, unsigned long ip,
2895 struct task_struct *curr = current;
2896 struct lock_class *class = NULL;
2897 struct held_lock *hlock;
2898 unsigned int depth, id;
2906 if (unlikely(!debug_locks))
2909 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled()))
2912 if (lock->key == &__lockdep_no_validate__)
2915 if (subclass < NR_LOCKDEP_CACHING_CLASSES)
2916 class = lock->class_cache[subclass];
2920 if (unlikely(!class)) {
2921 class = register_lock_class(lock, subclass, 0);
2925 atomic_inc((atomic_t *)&class->ops);
2926 if (very_verbose(class)) {
2927 printk("\nacquire class [%p] %s", class->key, class->name);
2928 if (class->name_version > 1)
2929 printk("#%d", class->name_version);
2935 * Add the lock to the list of currently held locks.
2936 * (we dont increase the depth just yet, up until the
2937 * dependency checks are done)
2939 depth = curr->lockdep_depth;
2940 if (DEBUG_LOCKS_WARN_ON(depth >= MAX_LOCK_DEPTH))
2943 class_idx = class - lock_classes + 1;
2946 hlock = curr->held_locks + depth - 1;
2947 if (hlock->class_idx == class_idx && nest_lock) {
2948 if (hlock->references)
2949 hlock->references++;
2951 hlock->references = 2;
2957 hlock = curr->held_locks + depth;
2958 if (DEBUG_LOCKS_WARN_ON(!class))
2960 hlock->class_idx = class_idx;
2961 hlock->acquire_ip = ip;
2962 hlock->instance = lock;
2963 hlock->nest_lock = nest_lock;
2964 hlock->trylock = trylock;
2966 hlock->check = check;
2967 hlock->hardirqs_off = !!hardirqs_off;
2968 hlock->references = references;
2969 #ifdef CONFIG_LOCK_STAT
2970 hlock->waittime_stamp = 0;
2971 hlock->holdtime_stamp = lockstat_clock();
2974 if (check == 2 && !mark_irqflags(curr, hlock))
2977 /* mark it as used: */
2978 if (!mark_lock(curr, hlock, LOCK_USED))
2982 * Calculate the chain hash: it's the combined hash of all the
2983 * lock keys along the dependency chain. We save the hash value
2984 * at every step so that we can get the current hash easily
2985 * after unlock. The chain hash is then used to cache dependency
2988 * The 'key ID' is what is the most compact key value to drive
2989 * the hash, not class->key.
2991 id = class - lock_classes;
2992 if (DEBUG_LOCKS_WARN_ON(id >= MAX_LOCKDEP_KEYS))
2995 chain_key = curr->curr_chain_key;
2997 if (DEBUG_LOCKS_WARN_ON(chain_key != 0))
3002 hlock->prev_chain_key = chain_key;
3003 if (separate_irq_context(curr, hlock)) {
3007 chain_key = iterate_chain_key(chain_key, id);
3009 if (!validate_chain(curr, lock, hlock, chain_head, chain_key))
3012 curr->curr_chain_key = chain_key;
3013 curr->lockdep_depth++;
3014 check_chain_key(curr);
3015 #ifdef CONFIG_DEBUG_LOCKDEP
3016 if (unlikely(!debug_locks))
3019 if (unlikely(curr->lockdep_depth >= MAX_LOCK_DEPTH)) {
3021 printk("BUG: MAX_LOCK_DEPTH too low!\n");
3022 printk("turning off the locking correctness validator.\n");
3027 if (unlikely(curr->lockdep_depth > max_lockdep_depth))
3028 max_lockdep_depth = curr->lockdep_depth;
3034 print_unlock_inbalance_bug(struct task_struct *curr, struct lockdep_map *lock,
3037 if (!debug_locks_off())
3039 if (debug_locks_silent)
3042 printk("\n=====================================\n");
3043 printk( "[ BUG: bad unlock balance detected! ]\n");
3044 printk( "-------------------------------------\n");
3045 printk("%s/%d is trying to release lock (",
3046 curr->comm, task_pid_nr(curr));
3047 print_lockdep_cache(lock);
3050 printk("but there are no more locks to release!\n");
3051 printk("\nother info that might help us debug this:\n");
3052 lockdep_print_held_locks(curr);
3054 printk("\nstack backtrace:\n");
3061 * Common debugging checks for both nested and non-nested unlock:
3063 static int check_unlock(struct task_struct *curr, struct lockdep_map *lock,
3066 if (unlikely(!debug_locks))
3068 if (DEBUG_LOCKS_WARN_ON(!irqs_disabled()))
3071 if (curr->lockdep_depth <= 0)
3072 return print_unlock_inbalance_bug(curr, lock, ip);
3077 static int match_held_lock(struct held_lock *hlock, struct lockdep_map *lock)
3079 if (hlock->instance == lock)
3082 if (hlock->references) {
3083 struct lock_class *class = lock->class_cache[0];
3086 class = look_up_lock_class(lock, 0);
3088 if (DEBUG_LOCKS_WARN_ON(!class))
3091 if (DEBUG_LOCKS_WARN_ON(!hlock->nest_lock))
3094 if (hlock->class_idx == class - lock_classes + 1)
3102 __lock_set_class(struct lockdep_map *lock, const char *name,
3103 struct lock_class_key *key, unsigned int subclass,
3106 struct task_struct *curr = current;
3107 struct held_lock *hlock, *prev_hlock;
3108 struct lock_class *class;
3112 depth = curr->lockdep_depth;
3113 if (DEBUG_LOCKS_WARN_ON(!depth))
3117 for (i = depth-1; i >= 0; i--) {
3118 hlock = curr->held_locks + i;
3120 * We must not cross into another context:
3122 if (prev_hlock && prev_hlock->irq_context != hlock->irq_context)
3124 if (match_held_lock(hlock, lock))
3128 return print_unlock_inbalance_bug(curr, lock, ip);
3131 lockdep_init_map(lock, name, key, 0);
3132 class = register_lock_class(lock, subclass, 0);
3133 hlock->class_idx = class - lock_classes + 1;
3135 curr->lockdep_depth = i;
3136 curr->curr_chain_key = hlock->prev_chain_key;
3138 for (; i < depth; i++) {
3139 hlock = curr->held_locks + i;
3140 if (!__lock_acquire(hlock->instance,
3141 hlock_class(hlock)->subclass, hlock->trylock,
3142 hlock->read, hlock->check, hlock->hardirqs_off,
3143 hlock->nest_lock, hlock->acquire_ip,
3148 if (DEBUG_LOCKS_WARN_ON(curr->lockdep_depth != depth))
3154 * Remove the lock to the list of currently held locks in a
3155 * potentially non-nested (out of order) manner. This is a
3156 * relatively rare operation, as all the unlock APIs default
3157 * to nested mode (which uses lock_release()):
3160 lock_release_non_nested(struct task_struct *curr,
3161 struct lockdep_map *lock, unsigned long ip)
3163 struct held_lock *hlock, *prev_hlock;
3168 * Check whether the lock exists in the current stack
3171 depth = curr->lockdep_depth;
3172 if (DEBUG_LOCKS_WARN_ON(!depth))
3176 for (i = depth-1; i >= 0; i--) {
3177 hlock = curr->held_locks + i;
3179 * We must not cross into another context:
3181 if (prev_hlock && prev_hlock->irq_context != hlock->irq_context)
3183 if (match_held_lock(hlock, lock))
3187 return print_unlock_inbalance_bug(curr, lock, ip);
3190 if (hlock->instance == lock)
3191 lock_release_holdtime(hlock);
3193 if (hlock->references) {
3194 hlock->references--;
3195 if (hlock->references) {
3197 * We had, and after removing one, still have
3198 * references, the current lock stack is still
3199 * valid. We're done!
3206 * We have the right lock to unlock, 'hlock' points to it.
3207 * Now we remove it from the stack, and add back the other
3208 * entries (if any), recalculating the hash along the way:
3211 curr->lockdep_depth = i;
3212 curr->curr_chain_key = hlock->prev_chain_key;
3214 for (i++; i < depth; i++) {
3215 hlock = curr->held_locks + i;
3216 if (!__lock_acquire(hlock->instance,
3217 hlock_class(hlock)->subclass, hlock->trylock,
3218 hlock->read, hlock->check, hlock->hardirqs_off,
3219 hlock->nest_lock, hlock->acquire_ip,
3224 if (DEBUG_LOCKS_WARN_ON(curr->lockdep_depth != depth - 1))
3230 * Remove the lock to the list of currently held locks - this gets
3231 * called on mutex_unlock()/spin_unlock*() (or on a failed
3232 * mutex_lock_interruptible()). This is done for unlocks that nest
3233 * perfectly. (i.e. the current top of the lock-stack is unlocked)
3235 static int lock_release_nested(struct task_struct *curr,
3236 struct lockdep_map *lock, unsigned long ip)
3238 struct held_lock *hlock;
3242 * Pop off the top of the lock stack:
3244 depth = curr->lockdep_depth - 1;
3245 hlock = curr->held_locks + depth;
3248 * Is the unlock non-nested:
3250 if (hlock->instance != lock || hlock->references)
3251 return lock_release_non_nested(curr, lock, ip);
3252 curr->lockdep_depth--;
3254 if (DEBUG_LOCKS_WARN_ON(!depth && (hlock->prev_chain_key != 0)))
3257 curr->curr_chain_key = hlock->prev_chain_key;
3259 lock_release_holdtime(hlock);
3261 #ifdef CONFIG_DEBUG_LOCKDEP
3262 hlock->prev_chain_key = 0;
3263 hlock->class_idx = 0;
3264 hlock->acquire_ip = 0;
3265 hlock->irq_context = 0;
3271 * Remove the lock to the list of currently held locks - this gets
3272 * called on mutex_unlock()/spin_unlock*() (or on a failed
3273 * mutex_lock_interruptible()). This is done for unlocks that nest
3274 * perfectly. (i.e. the current top of the lock-stack is unlocked)
3277 __lock_release(struct lockdep_map *lock, int nested, unsigned long ip)
3279 struct task_struct *curr = current;
3281 if (!check_unlock(curr, lock, ip))
3285 if (!lock_release_nested(curr, lock, ip))
3288 if (!lock_release_non_nested(curr, lock, ip))
3292 check_chain_key(curr);
3295 static int __lock_is_held(struct lockdep_map *lock)
3297 struct task_struct *curr = current;
3300 for (i = 0; i < curr->lockdep_depth; i++) {
3301 struct held_lock *hlock = curr->held_locks + i;
3303 if (match_held_lock(hlock, lock))
3311 * Check whether we follow the irq-flags state precisely:
3313 static void check_flags(unsigned long flags)
3315 #if defined(CONFIG_PROVE_LOCKING) && defined(CONFIG_DEBUG_LOCKDEP) && \
3316 defined(CONFIG_TRACE_IRQFLAGS)
3320 if (irqs_disabled_flags(flags)) {
3321 if (DEBUG_LOCKS_WARN_ON(current->hardirqs_enabled)) {
3322 printk("possible reason: unannotated irqs-off.\n");
3325 if (DEBUG_LOCKS_WARN_ON(!current->hardirqs_enabled)) {
3326 printk("possible reason: unannotated irqs-on.\n");
3331 * We dont accurately track softirq state in e.g.
3332 * hardirq contexts (such as on 4KSTACKS), so only
3333 * check if not in hardirq contexts:
3335 if (!hardirq_count()) {
3336 if (softirq_count())
3337 DEBUG_LOCKS_WARN_ON(current->softirqs_enabled);
3339 DEBUG_LOCKS_WARN_ON(!current->softirqs_enabled);
3343 print_irqtrace_events(current);
3347 void lock_set_class(struct lockdep_map *lock, const char *name,
3348 struct lock_class_key *key, unsigned int subclass,
3351 unsigned long flags;
3353 if (unlikely(current->lockdep_recursion))
3356 raw_local_irq_save(flags);
3357 current->lockdep_recursion = 1;
3359 if (__lock_set_class(lock, name, key, subclass, ip))
3360 check_chain_key(current);
3361 current->lockdep_recursion = 0;
3362 raw_local_irq_restore(flags);
3364 EXPORT_SYMBOL_GPL(lock_set_class);
3367 * We are not always called with irqs disabled - do that here,
3368 * and also avoid lockdep recursion:
3370 void lock_acquire(struct lockdep_map *lock, unsigned int subclass,
3371 int trylock, int read, int check,
3372 struct lockdep_map *nest_lock, unsigned long ip)
3374 unsigned long flags;
3376 if (unlikely(current->lockdep_recursion))
3379 raw_local_irq_save(flags);
3382 current->lockdep_recursion = 1;
3383 trace_lock_acquire(lock, subclass, trylock, read, check, nest_lock, ip);
3384 __lock_acquire(lock, subclass, trylock, read, check,
3385 irqs_disabled_flags(flags), nest_lock, ip, 0);
3386 current->lockdep_recursion = 0;
3387 raw_local_irq_restore(flags);
3389 EXPORT_SYMBOL_GPL(lock_acquire);
3391 void lock_release(struct lockdep_map *lock, int nested,
3394 unsigned long flags;
3396 if (unlikely(current->lockdep_recursion))
3399 raw_local_irq_save(flags);
3401 current->lockdep_recursion = 1;
3402 trace_lock_release(lock, ip);
3403 __lock_release(lock, nested, ip);
3404 current->lockdep_recursion = 0;
3405 raw_local_irq_restore(flags);
3407 EXPORT_SYMBOL_GPL(lock_release);
3409 int lock_is_held(struct lockdep_map *lock)
3411 unsigned long flags;
3414 if (unlikely(current->lockdep_recursion))
3417 raw_local_irq_save(flags);
3420 current->lockdep_recursion = 1;
3421 ret = __lock_is_held(lock);
3422 current->lockdep_recursion = 0;
3423 raw_local_irq_restore(flags);
3427 EXPORT_SYMBOL_GPL(lock_is_held);
3429 void lockdep_set_current_reclaim_state(gfp_t gfp_mask)
3431 current->lockdep_reclaim_gfp = gfp_mask;
3434 void lockdep_clear_current_reclaim_state(void)
3436 current->lockdep_reclaim_gfp = 0;
3439 #ifdef CONFIG_LOCK_STAT
3441 print_lock_contention_bug(struct task_struct *curr, struct lockdep_map *lock,
3444 if (!debug_locks_off())
3446 if (debug_locks_silent)
3449 printk("\n=================================\n");
3450 printk( "[ BUG: bad contention detected! ]\n");
3451 printk( "---------------------------------\n");
3452 printk("%s/%d is trying to contend lock (",
3453 curr->comm, task_pid_nr(curr));
3454 print_lockdep_cache(lock);
3457 printk("but there are no locks held!\n");
3458 printk("\nother info that might help us debug this:\n");
3459 lockdep_print_held_locks(curr);
3461 printk("\nstack backtrace:\n");
3468 __lock_contended(struct lockdep_map *lock, unsigned long ip)
3470 struct task_struct *curr = current;
3471 struct held_lock *hlock, *prev_hlock;
3472 struct lock_class_stats *stats;
3474 int i, contention_point, contending_point;
3476 depth = curr->lockdep_depth;
3477 if (DEBUG_LOCKS_WARN_ON(!depth))
3481 for (i = depth-1; i >= 0; i--) {
3482 hlock = curr->held_locks + i;
3484 * We must not cross into another context:
3486 if (prev_hlock && prev_hlock->irq_context != hlock->irq_context)
3488 if (match_held_lock(hlock, lock))
3492 print_lock_contention_bug(curr, lock, ip);
3496 if (hlock->instance != lock)
3499 hlock->waittime_stamp = lockstat_clock();
3501 contention_point = lock_point(hlock_class(hlock)->contention_point, ip);
3502 contending_point = lock_point(hlock_class(hlock)->contending_point,
3505 stats = get_lock_stats(hlock_class(hlock));
3506 if (contention_point < LOCKSTAT_POINTS)
3507 stats->contention_point[contention_point]++;
3508 if (contending_point < LOCKSTAT_POINTS)
3509 stats->contending_point[contending_point]++;
3510 if (lock->cpu != smp_processor_id())
3511 stats->bounces[bounce_contended + !!hlock->read]++;
3512 put_lock_stats(stats);
3516 __lock_acquired(struct lockdep_map *lock, unsigned long ip)
3518 struct task_struct *curr = current;
3519 struct held_lock *hlock, *prev_hlock;
3520 struct lock_class_stats *stats;
3522 u64 now, waittime = 0;
3525 depth = curr->lockdep_depth;
3526 if (DEBUG_LOCKS_WARN_ON(!depth))
3530 for (i = depth-1; i >= 0; i--) {
3531 hlock = curr->held_locks + i;
3533 * We must not cross into another context:
3535 if (prev_hlock && prev_hlock->irq_context != hlock->irq_context)
3537 if (match_held_lock(hlock, lock))
3541 print_lock_contention_bug(curr, lock, _RET_IP_);
3545 if (hlock->instance != lock)
3548 cpu = smp_processor_id();
3549 if (hlock->waittime_stamp) {
3550 now = lockstat_clock();
3551 waittime = now - hlock->waittime_stamp;
3552 hlock->holdtime_stamp = now;
3555 trace_lock_acquired(lock, ip);
3557 stats = get_lock_stats(hlock_class(hlock));
3560 lock_time_inc(&stats->read_waittime, waittime);
3562 lock_time_inc(&stats->write_waittime, waittime);
3564 if (lock->cpu != cpu)
3565 stats->bounces[bounce_acquired + !!hlock->read]++;
3566 put_lock_stats(stats);
3572 void lock_contended(struct lockdep_map *lock, unsigned long ip)
3574 unsigned long flags;
3576 if (unlikely(!lock_stat))
3579 if (unlikely(current->lockdep_recursion))
3582 raw_local_irq_save(flags);
3584 current->lockdep_recursion = 1;
3585 trace_lock_contended(lock, ip);
3586 __lock_contended(lock, ip);
3587 current->lockdep_recursion = 0;
3588 raw_local_irq_restore(flags);
3590 EXPORT_SYMBOL_GPL(lock_contended);
3592 void lock_acquired(struct lockdep_map *lock, unsigned long ip)
3594 unsigned long flags;
3596 if (unlikely(!lock_stat))
3599 if (unlikely(current->lockdep_recursion))
3602 raw_local_irq_save(flags);
3604 current->lockdep_recursion = 1;
3605 __lock_acquired(lock, ip);
3606 current->lockdep_recursion = 0;
3607 raw_local_irq_restore(flags);
3609 EXPORT_SYMBOL_GPL(lock_acquired);
3613 * Used by the testsuite, sanitize the validator state
3614 * after a simulated failure:
3617 void lockdep_reset(void)
3619 unsigned long flags;
3622 raw_local_irq_save(flags);
3623 current->curr_chain_key = 0;
3624 current->lockdep_depth = 0;
3625 current->lockdep_recursion = 0;
3626 memset(current->held_locks, 0, MAX_LOCK_DEPTH*sizeof(struct held_lock));
3627 nr_hardirq_chains = 0;
3628 nr_softirq_chains = 0;
3629 nr_process_chains = 0;
3631 for (i = 0; i < CHAINHASH_SIZE; i++)
3632 INIT_LIST_HEAD(chainhash_table + i);
3633 raw_local_irq_restore(flags);
3636 static void zap_class(struct lock_class *class)
3641 * Remove all dependencies this lock is
3644 for (i = 0; i < nr_list_entries; i++) {
3645 if (list_entries[i].class == class)
3646 list_del_rcu(&list_entries[i].entry);
3649 * Unhash the class and remove it from the all_lock_classes list:
3651 list_del_rcu(&class->hash_entry);
3652 list_del_rcu(&class->lock_entry);
3657 static inline int within(const void *addr, void *start, unsigned long size)
3659 return addr >= start && addr < start + size;
3662 void lockdep_free_key_range(void *start, unsigned long size)
3664 struct lock_class *class, *next;
3665 struct list_head *head;
3666 unsigned long flags;
3670 raw_local_irq_save(flags);
3671 locked = graph_lock();
3674 * Unhash all classes that were created by this module:
3676 for (i = 0; i < CLASSHASH_SIZE; i++) {
3677 head = classhash_table + i;
3678 if (list_empty(head))
3680 list_for_each_entry_safe(class, next, head, hash_entry) {
3681 if (within(class->key, start, size))
3683 else if (within(class->name, start, size))
3690 raw_local_irq_restore(flags);
3693 void lockdep_reset_lock(struct lockdep_map *lock)
3695 struct lock_class *class, *next;
3696 struct list_head *head;
3697 unsigned long flags;
3701 raw_local_irq_save(flags);
3704 * Remove all classes this lock might have:
3706 for (j = 0; j < MAX_LOCKDEP_SUBCLASSES; j++) {
3708 * If the class exists we look it up and zap it:
3710 class = look_up_lock_class(lock, j);
3715 * Debug check: in the end all mapped classes should
3718 locked = graph_lock();
3719 for (i = 0; i < CLASSHASH_SIZE; i++) {
3720 head = classhash_table + i;
3721 if (list_empty(head))
3723 list_for_each_entry_safe(class, next, head, hash_entry) {
3726 for (j = 0; j < NR_LOCKDEP_CACHING_CLASSES; j++)
3727 match |= class == lock->class_cache[j];
3729 if (unlikely(match)) {
3730 if (debug_locks_off_graph_unlock())
3740 raw_local_irq_restore(flags);
3743 void lockdep_init(void)
3748 * Some architectures have their own start_kernel()
3749 * code which calls lockdep_init(), while we also
3750 * call lockdep_init() from the start_kernel() itself,
3751 * and we want to initialize the hashes only once:
3753 if (lockdep_initialized)
3756 for (i = 0; i < CLASSHASH_SIZE; i++)
3757 INIT_LIST_HEAD(classhash_table + i);
3759 for (i = 0; i < CHAINHASH_SIZE; i++)
3760 INIT_LIST_HEAD(chainhash_table + i);
3762 lockdep_initialized = 1;
3765 void __init lockdep_info(void)
3767 printk("Lock dependency validator: Copyright (c) 2006 Red Hat, Inc., Ingo Molnar\n");
3769 printk("... MAX_LOCKDEP_SUBCLASSES: %lu\n", MAX_LOCKDEP_SUBCLASSES);
3770 printk("... MAX_LOCK_DEPTH: %lu\n", MAX_LOCK_DEPTH);
3771 printk("... MAX_LOCKDEP_KEYS: %lu\n", MAX_LOCKDEP_KEYS);
3772 printk("... CLASSHASH_SIZE: %lu\n", CLASSHASH_SIZE);
3773 printk("... MAX_LOCKDEP_ENTRIES: %lu\n", MAX_LOCKDEP_ENTRIES);
3774 printk("... MAX_LOCKDEP_CHAINS: %lu\n", MAX_LOCKDEP_CHAINS);
3775 printk("... CHAINHASH_SIZE: %lu\n", CHAINHASH_SIZE);
3777 printk(" memory used by lock dependency info: %lu kB\n",
3778 (sizeof(struct lock_class) * MAX_LOCKDEP_KEYS +
3779 sizeof(struct list_head) * CLASSHASH_SIZE +
3780 sizeof(struct lock_list) * MAX_LOCKDEP_ENTRIES +
3781 sizeof(struct lock_chain) * MAX_LOCKDEP_CHAINS +
3782 sizeof(struct list_head) * CHAINHASH_SIZE
3783 #ifdef CONFIG_PROVE_LOCKING
3784 + sizeof(struct circular_queue)
3789 printk(" per task-struct memory footprint: %lu bytes\n",
3790 sizeof(struct held_lock) * MAX_LOCK_DEPTH);
3792 #ifdef CONFIG_DEBUG_LOCKDEP
3793 if (lockdep_init_error) {
3794 printk("WARNING: lockdep init error! Arch code didn't call lockdep_init() early enough?\n");
3795 printk("Call stack leading to lockdep invocation was:\n");
3796 print_stack_trace(&lockdep_init_trace, 0);
3802 print_freed_lock_bug(struct task_struct *curr, const void *mem_from,
3803 const void *mem_to, struct held_lock *hlock)
3805 if (!debug_locks_off())
3807 if (debug_locks_silent)
3810 printk("\n=========================\n");
3811 printk( "[ BUG: held lock freed! ]\n");
3812 printk( "-------------------------\n");
3813 printk("%s/%d is freeing memory %p-%p, with a lock still held there!\n",
3814 curr->comm, task_pid_nr(curr), mem_from, mem_to-1);
3816 lockdep_print_held_locks(curr);
3818 printk("\nstack backtrace:\n");
3822 static inline int not_in_range(const void* mem_from, unsigned long mem_len,
3823 const void* lock_from, unsigned long lock_len)
3825 return lock_from + lock_len <= mem_from ||
3826 mem_from + mem_len <= lock_from;
3830 * Called when kernel memory is freed (or unmapped), or if a lock
3831 * is destroyed or reinitialized - this code checks whether there is
3832 * any held lock in the memory range of <from> to <to>:
3834 void debug_check_no_locks_freed(const void *mem_from, unsigned long mem_len)
3836 struct task_struct *curr = current;
3837 struct held_lock *hlock;
3838 unsigned long flags;
3841 if (unlikely(!debug_locks))
3844 local_irq_save(flags);
3845 for (i = 0; i < curr->lockdep_depth; i++) {
3846 hlock = curr->held_locks + i;
3848 if (not_in_range(mem_from, mem_len, hlock->instance,
3849 sizeof(*hlock->instance)))
3852 print_freed_lock_bug(curr, mem_from, mem_from + mem_len, hlock);
3855 local_irq_restore(flags);
3857 EXPORT_SYMBOL_GPL(debug_check_no_locks_freed);
3859 static void print_held_locks_bug(struct task_struct *curr)
3861 if (!debug_locks_off())
3863 if (debug_locks_silent)
3866 printk("\n=====================================\n");
3867 printk( "[ BUG: lock held at task exit time! ]\n");
3868 printk( "-------------------------------------\n");
3869 printk("%s/%d is exiting with locks still held!\n",
3870 curr->comm, task_pid_nr(curr));
3871 lockdep_print_held_locks(curr);
3873 printk("\nstack backtrace:\n");
3877 void debug_check_no_locks_held(struct task_struct *task)
3879 if (unlikely(task->lockdep_depth > 0))
3880 print_held_locks_bug(task);
3883 void debug_show_all_locks(void)
3885 struct task_struct *g, *p;
3889 if (unlikely(!debug_locks)) {
3890 printk("INFO: lockdep is turned off.\n");
3893 printk("\nShowing all locks held in the system:\n");
3896 * Here we try to get the tasklist_lock as hard as possible,
3897 * if not successful after 2 seconds we ignore it (but keep
3898 * trying). This is to enable a debug printout even if a
3899 * tasklist_lock-holding task deadlocks or crashes.
3902 if (!read_trylock(&tasklist_lock)) {
3904 printk("hm, tasklist_lock locked, retrying... ");
3907 printk(" #%d", 10-count);
3911 printk(" ignoring it.\n");
3915 printk(KERN_CONT " locked it.\n");
3918 do_each_thread(g, p) {
3920 * It's not reliable to print a task's held locks
3921 * if it's not sleeping (or if it's not the current
3924 if (p->state == TASK_RUNNING && p != current)
3926 if (p->lockdep_depth)
3927 lockdep_print_held_locks(p);
3929 if (read_trylock(&tasklist_lock))
3931 } while_each_thread(g, p);
3934 printk("=============================================\n\n");
3937 read_unlock(&tasklist_lock);
3939 EXPORT_SYMBOL_GPL(debug_show_all_locks);
3942 * Careful: only use this function if you are sure that
3943 * the task cannot run in parallel!
3945 void debug_show_held_locks(struct task_struct *task)
3947 if (unlikely(!debug_locks)) {
3948 printk("INFO: lockdep is turned off.\n");
3951 lockdep_print_held_locks(task);
3953 EXPORT_SYMBOL_GPL(debug_show_held_locks);
3955 void lockdep_sys_exit(void)
3957 struct task_struct *curr = current;
3959 if (unlikely(curr->lockdep_depth)) {
3960 if (!debug_locks_off())
3962 printk("\n================================================\n");
3963 printk( "[ BUG: lock held when returning to user space! ]\n");
3964 printk( "------------------------------------------------\n");
3965 printk("%s/%d is leaving the kernel with locks still held!\n",
3966 curr->comm, curr->pid);
3967 lockdep_print_held_locks(curr);
3971 void lockdep_rcu_dereference(const char *file, const int line)
3973 struct task_struct *curr = current;
3975 #ifndef CONFIG_PROVE_RCU_REPEATEDLY
3976 if (!debug_locks_off())
3978 #endif /* #ifdef CONFIG_PROVE_RCU_REPEATEDLY */
3979 /* Note: the following can be executed concurrently, so be careful. */
3980 printk("\n===================================================\n");
3981 printk( "[ INFO: suspicious rcu_dereference_check() usage. ]\n");
3982 printk( "---------------------------------------------------\n");
3983 printk("%s:%d invoked rcu_dereference_check() without protection!\n",
3985 printk("\nother info that might help us debug this:\n\n");
3986 printk("\nrcu_scheduler_active = %d, debug_locks = %d\n", rcu_scheduler_active, debug_locks);
3987 lockdep_print_held_locks(curr);
3988 printk("\nstack backtrace:\n");
3991 EXPORT_SYMBOL_GPL(lockdep_rcu_dereference);