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457c8996 1// SPDX-License-Identifier: GPL-2.0-only
1da177e4 2/*
c54fce6e 3 * kernel/workqueue.c - generic async execution with shared worker pool
1da177e4 4 *
c54fce6e 5 * Copyright (C) 2002 Ingo Molnar
1da177e4 6 *
c54fce6e
TH
7 * Derived from the taskqueue/keventd code by:
8 * David Woodhouse <dwmw2@infradead.org>
9 * Andrew Morton
10 * Kai Petzke <wpp@marie.physik.tu-berlin.de>
11 * Theodore Ts'o <tytso@mit.edu>
1da177e4 12 *
c54fce6e 13 * Made to use alloc_percpu by Christoph Lameter.
1da177e4 14 *
c54fce6e
TH
15 * Copyright (C) 2010 SUSE Linux Products GmbH
16 * Copyright (C) 2010 Tejun Heo <tj@kernel.org>
89ada679 17 *
c54fce6e
TH
18 * This is the generic async execution mechanism. Work items as are
19 * executed in process context. The worker pool is shared and
b11895c4
L
20 * automatically managed. There are two worker pools for each CPU (one for
21 * normal work items and the other for high priority ones) and some extra
22 * pools for workqueues which are not bound to any specific CPU - the
23 * number of these backing pools is dynamic.
c54fce6e 24 *
9a261491 25 * Please read Documentation/core-api/workqueue.rst for details.
1da177e4
LT
26 */
27
9984de1a 28#include <linux/export.h>
1da177e4
LT
29#include <linux/kernel.h>
30#include <linux/sched.h>
31#include <linux/init.h>
32#include <linux/signal.h>
33#include <linux/completion.h>
34#include <linux/workqueue.h>
35#include <linux/slab.h>
36#include <linux/cpu.h>
37#include <linux/notifier.h>
38#include <linux/kthread.h>
1fa44eca 39#include <linux/hardirq.h>
46934023 40#include <linux/mempolicy.h>
341a5958 41#include <linux/freezer.h>
d5abe669 42#include <linux/debug_locks.h>
4e6045f1 43#include <linux/lockdep.h>
c34056a3 44#include <linux/idr.h>
29c91e99 45#include <linux/jhash.h>
42f8570f 46#include <linux/hashtable.h>
76af4d93 47#include <linux/rculist.h>
bce90380 48#include <linux/nodemask.h>
4c16bd32 49#include <linux/moduleparam.h>
3d1cb205 50#include <linux/uaccess.h>
c98a9805 51#include <linux/sched/isolation.h>
62635ea8 52#include <linux/nmi.h>
940d71c6 53#include <linux/kvm_para.h>
e22bee78 54
ea138446 55#include "workqueue_internal.h"
1da177e4 56
c8e55f36 57enum {
24647570
TH
58 /*
59 * worker_pool flags
bc2ae0f5 60 *
24647570 61 * A bound pool is either associated or disassociated with its CPU.
bc2ae0f5
TH
62 * While associated (!DISASSOCIATED), all workers are bound to the
63 * CPU and none has %WORKER_UNBOUND set and concurrency management
64 * is in effect.
65 *
66 * While DISASSOCIATED, the cpu may be offline and all workers have
67 * %WORKER_UNBOUND set and concurrency management disabled, and may
24647570 68 * be executing on any CPU. The pool behaves as an unbound one.
bc2ae0f5 69 *
bc3a1afc 70 * Note that DISASSOCIATED should be flipped only while holding
1258fae7 71 * wq_pool_attach_mutex to avoid changing binding state while
4736cbf7 72 * worker_attach_to_pool() is in progress.
bc2ae0f5 73 */
692b4825 74 POOL_MANAGER_ACTIVE = 1 << 0, /* being managed */
24647570 75 POOL_DISASSOCIATED = 1 << 2, /* cpu can't serve workers */
db7bccf4 76
c8e55f36 77 /* worker flags */
c8e55f36
TH
78 WORKER_DIE = 1 << 1, /* die die die */
79 WORKER_IDLE = 1 << 2, /* is idle */
e22bee78 80 WORKER_PREP = 1 << 3, /* preparing to run works */
fb0e7beb 81 WORKER_CPU_INTENSIVE = 1 << 6, /* cpu intensive */
f3421797 82 WORKER_UNBOUND = 1 << 7, /* worker is unbound */
a9ab775b 83 WORKER_REBOUND = 1 << 8, /* worker was rebound */
e22bee78 84
a9ab775b
TH
85 WORKER_NOT_RUNNING = WORKER_PREP | WORKER_CPU_INTENSIVE |
86 WORKER_UNBOUND | WORKER_REBOUND,
db7bccf4 87
e34cdddb 88 NR_STD_WORKER_POOLS = 2, /* # standard pools per cpu */
4ce62e9e 89
29c91e99 90 UNBOUND_POOL_HASH_ORDER = 6, /* hashed by pool->attrs */
c8e55f36 91 BUSY_WORKER_HASH_ORDER = 6, /* 64 pointers */
db7bccf4 92
e22bee78
TH
93 MAX_IDLE_WORKERS_RATIO = 4, /* 1/4 of busy can be idle */
94 IDLE_WORKER_TIMEOUT = 300 * HZ, /* keep idle ones for 5 mins */
95
3233cdbd
TH
96 MAYDAY_INITIAL_TIMEOUT = HZ / 100 >= 2 ? HZ / 100 : 2,
97 /* call for help after 10ms
98 (min two ticks) */
e22bee78
TH
99 MAYDAY_INTERVAL = HZ / 10, /* and then every 100ms */
100 CREATE_COOLDOWN = HZ, /* time to breath after fail */
e22bee78
TH
101
102 /*
103 * Rescue workers are used only on emergencies and shared by
8698a745 104 * all cpus. Give MIN_NICE.
e22bee78 105 */
8698a745
DY
106 RESCUER_NICE_LEVEL = MIN_NICE,
107 HIGHPRI_NICE_LEVEL = MIN_NICE,
ecf6881f
TH
108
109 WQ_NAME_LEN = 24,
c8e55f36 110};
1da177e4
LT
111
112/*
4690c4ab
TH
113 * Structure fields follow one of the following exclusion rules.
114 *
e41e704b
TH
115 * I: Modifiable by initialization/destruction paths and read-only for
116 * everyone else.
4690c4ab 117 *
e22bee78
TH
118 * P: Preemption protected. Disabling preemption is enough and should
119 * only be modified and accessed from the local cpu.
120 *
d565ed63 121 * L: pool->lock protected. Access with pool->lock held.
4690c4ab 122 *
d565ed63
TH
123 * X: During normal operation, modification requires pool->lock and should
124 * be done only from local cpu. Either disabling preemption on local
125 * cpu or grabbing pool->lock is enough for read access. If
126 * POOL_DISASSOCIATED is set, it's identical to L.
e22bee78 127 *
1258fae7 128 * A: wq_pool_attach_mutex protected.
822d8405 129 *
68e13a67 130 * PL: wq_pool_mutex protected.
5bcab335 131 *
24acfb71 132 * PR: wq_pool_mutex protected for writes. RCU protected for reads.
76af4d93 133 *
5b95e1af
LJ
134 * PW: wq_pool_mutex and wq->mutex protected for writes. Either for reads.
135 *
136 * PWR: wq_pool_mutex and wq->mutex protected for writes. Either or
24acfb71 137 * RCU for reads.
5b95e1af 138 *
3c25a55d
LJ
139 * WQ: wq->mutex protected.
140 *
24acfb71 141 * WR: wq->mutex protected for writes. RCU protected for reads.
2e109a28
TH
142 *
143 * MD: wq_mayday_lock protected.
1da177e4 144 */
1da177e4 145
2eaebdb3 146/* struct worker is defined in workqueue_internal.h */
c34056a3 147
bd7bdd43 148struct worker_pool {
a9b8a985 149 raw_spinlock_t lock; /* the pool lock */
d84ff051 150 int cpu; /* I: the associated cpu */
f3f90ad4 151 int node; /* I: the associated node ID */
9daf9e67 152 int id; /* I: pool ID */
11ebea50 153 unsigned int flags; /* X: flags */
bd7bdd43 154
82607adc
TH
155 unsigned long watchdog_ts; /* L: watchdog timestamp */
156
bc35f7ef
LJ
157 /*
158 * The counter is incremented in a process context on the associated CPU
159 * w/ preemption disabled, and decremented or reset in the same context
160 * but w/ pool->lock held. The readers grab pool->lock and are
161 * guaranteed to see if the counter reached zero.
162 */
163 int nr_running;
84f91c62 164
bd7bdd43 165 struct list_head worklist; /* L: list of pending works */
ea1abd61 166
5826cc8f
LJ
167 int nr_workers; /* L: total number of workers */
168 int nr_idle; /* L: currently idle workers */
bd7bdd43 169
2c1f1a91 170 struct list_head idle_list; /* L: list of idle workers */
bd7bdd43
TH
171 struct timer_list idle_timer; /* L: worker idle timeout */
172 struct timer_list mayday_timer; /* L: SOS timer for workers */
173
c5aa87bb 174 /* a workers is either on busy_hash or idle_list, or the manager */
c9e7cf27
TH
175 DECLARE_HASHTABLE(busy_hash, BUSY_WORKER_HASH_ORDER);
176 /* L: hash of busy workers */
177
2607d7a6 178 struct worker *manager; /* L: purely informational */
92f9c5c4 179 struct list_head workers; /* A: attached workers */
60f5a4bc 180 struct completion *detach_completion; /* all workers detached */
e19e397a 181
7cda9aae 182 struct ida worker_ida; /* worker IDs for task name */
e19e397a 183
7a4e344c 184 struct workqueue_attrs *attrs; /* I: worker attributes */
68e13a67
LJ
185 struct hlist_node hash_node; /* PL: unbound_pool_hash node */
186 int refcnt; /* PL: refcnt for unbound pools */
7a4e344c 187
29c91e99 188 /*
24acfb71 189 * Destruction of pool is RCU protected to allow dereferences
29c91e99
TH
190 * from get_work_pool().
191 */
192 struct rcu_head rcu;
84f91c62 193};
8b03ae3c 194
1da177e4 195/*
112202d9
TH
196 * The per-pool workqueue. While queued, the lower WORK_STRUCT_FLAG_BITS
197 * of work_struct->data are used for flags and the remaining high bits
198 * point to the pwq; thus, pwqs need to be aligned at two's power of the
199 * number of flag bits.
1da177e4 200 */
112202d9 201struct pool_workqueue {
bd7bdd43 202 struct worker_pool *pool; /* I: the associated pool */
4690c4ab 203 struct workqueue_struct *wq; /* I: the owning workqueue */
73f53c4a
TH
204 int work_color; /* L: current color */
205 int flush_color; /* L: flushing color */
8864b4e5 206 int refcnt; /* L: reference count */
73f53c4a
TH
207 int nr_in_flight[WORK_NR_COLORS];
208 /* L: nr of in_flight works */
018f3a13
LJ
209
210 /*
211 * nr_active management and WORK_STRUCT_INACTIVE:
212 *
213 * When pwq->nr_active >= max_active, new work item is queued to
214 * pwq->inactive_works instead of pool->worklist and marked with
215 * WORK_STRUCT_INACTIVE.
216 *
217 * All work items marked with WORK_STRUCT_INACTIVE do not participate
218 * in pwq->nr_active and all work items in pwq->inactive_works are
219 * marked with WORK_STRUCT_INACTIVE. But not all WORK_STRUCT_INACTIVE
220 * work items are in pwq->inactive_works. Some of them are ready to
221 * run in pool->worklist or worker->scheduled. Those work itmes are
222 * only struct wq_barrier which is used for flush_work() and should
223 * not participate in pwq->nr_active. For non-barrier work item, it
224 * is marked with WORK_STRUCT_INACTIVE iff it is in pwq->inactive_works.
225 */
1e19ffc6 226 int nr_active; /* L: nr of active works */
a0a1a5fd 227 int max_active; /* L: max active works */
f97a4a1a 228 struct list_head inactive_works; /* L: inactive works */
3c25a55d 229 struct list_head pwqs_node; /* WR: node on wq->pwqs */
2e109a28 230 struct list_head mayday_node; /* MD: node on wq->maydays */
8864b4e5
TH
231
232 /*
233 * Release of unbound pwq is punted to system_wq. See put_pwq()
234 * and pwq_unbound_release_workfn() for details. pool_workqueue
24acfb71 235 * itself is also RCU protected so that the first pwq can be
b09f4fd3 236 * determined without grabbing wq->mutex.
8864b4e5
TH
237 */
238 struct work_struct unbound_release_work;
239 struct rcu_head rcu;
e904e6c2 240} __aligned(1 << WORK_STRUCT_FLAG_BITS);
1da177e4 241
73f53c4a
TH
242/*
243 * Structure used to wait for workqueue flush.
244 */
245struct wq_flusher {
3c25a55d
LJ
246 struct list_head list; /* WQ: list of flushers */
247 int flush_color; /* WQ: flush color waiting for */
73f53c4a
TH
248 struct completion done; /* flush completion */
249};
250
226223ab
TH
251struct wq_device;
252
1da177e4 253/*
c5aa87bb
TH
254 * The externally visible workqueue. It relays the issued work items to
255 * the appropriate worker_pool through its pool_workqueues.
1da177e4
LT
256 */
257struct workqueue_struct {
3c25a55d 258 struct list_head pwqs; /* WR: all pwqs of this wq */
e2dca7ad 259 struct list_head list; /* PR: list of all workqueues */
73f53c4a 260
3c25a55d
LJ
261 struct mutex mutex; /* protects this wq */
262 int work_color; /* WQ: current work color */
263 int flush_color; /* WQ: current flush color */
112202d9 264 atomic_t nr_pwqs_to_flush; /* flush in progress */
3c25a55d
LJ
265 struct wq_flusher *first_flusher; /* WQ: first flusher */
266 struct list_head flusher_queue; /* WQ: flush waiters */
267 struct list_head flusher_overflow; /* WQ: flush overflow list */
73f53c4a 268
2e109a28 269 struct list_head maydays; /* MD: pwqs requesting rescue */
30ae2fc0 270 struct worker *rescuer; /* MD: rescue worker */
e22bee78 271
87fc741e 272 int nr_drainers; /* WQ: drain in progress */
a357fc03 273 int saved_max_active; /* WQ: saved pwq max_active */
226223ab 274
5b95e1af
LJ
275 struct workqueue_attrs *unbound_attrs; /* PW: only for unbound wqs */
276 struct pool_workqueue *dfl_pwq; /* PW: only for unbound wqs */
6029a918 277
226223ab
TH
278#ifdef CONFIG_SYSFS
279 struct wq_device *wq_dev; /* I: for sysfs interface */
280#endif
4e6045f1 281#ifdef CONFIG_LOCKDEP
669de8bd
BVA
282 char *lock_name;
283 struct lock_class_key key;
4690c4ab 284 struct lockdep_map lockdep_map;
4e6045f1 285#endif
ecf6881f 286 char name[WQ_NAME_LEN]; /* I: workqueue name */
2728fd2f 287
e2dca7ad 288 /*
24acfb71
TG
289 * Destruction of workqueue_struct is RCU protected to allow walking
290 * the workqueues list without grabbing wq_pool_mutex.
e2dca7ad
TH
291 * This is used to dump all workqueues from sysrq.
292 */
293 struct rcu_head rcu;
294
2728fd2f
TH
295 /* hot fields used during command issue, aligned to cacheline */
296 unsigned int flags ____cacheline_aligned; /* WQ: WQ_* flags */
297 struct pool_workqueue __percpu *cpu_pwqs; /* I: per-cpu pwqs */
5b95e1af 298 struct pool_workqueue __rcu *numa_pwq_tbl[]; /* PWR: unbound pwqs indexed by node */
1da177e4
LT
299};
300
e904e6c2
TH
301static struct kmem_cache *pwq_cache;
302
bce90380
TH
303static cpumask_var_t *wq_numa_possible_cpumask;
304 /* possible CPUs of each node */
305
d55262c4
TH
306static bool wq_disable_numa;
307module_param_named(disable_numa, wq_disable_numa, bool, 0444);
308
cee22a15 309/* see the comment above the definition of WQ_POWER_EFFICIENT */
552f530c 310static bool wq_power_efficient = IS_ENABLED(CONFIG_WQ_POWER_EFFICIENT_DEFAULT);
cee22a15
VK
311module_param_named(power_efficient, wq_power_efficient, bool, 0444);
312
863b710b 313static bool wq_online; /* can kworkers be created yet? */
3347fa09 314
bce90380
TH
315static bool wq_numa_enabled; /* unbound NUMA affinity enabled */
316
4c16bd32
TH
317/* buf for wq_update_unbound_numa_attrs(), protected by CPU hotplug exclusion */
318static struct workqueue_attrs *wq_update_unbound_numa_attrs_buf;
319
68e13a67 320static DEFINE_MUTEX(wq_pool_mutex); /* protects pools and workqueues list */
1258fae7 321static DEFINE_MUTEX(wq_pool_attach_mutex); /* protects worker attach/detach */
a9b8a985 322static DEFINE_RAW_SPINLOCK(wq_mayday_lock); /* protects wq->maydays list */
d8bb65ab
SAS
323/* wait for manager to go away */
324static struct rcuwait manager_wait = __RCUWAIT_INITIALIZER(manager_wait);
5bcab335 325
e2dca7ad 326static LIST_HEAD(workqueues); /* PR: list of all workqueues */
68e13a67 327static bool workqueue_freezing; /* PL: have wqs started freezing? */
7d19c5ce 328
ef557180
MG
329/* PL: allowable cpus for unbound wqs and work items */
330static cpumask_var_t wq_unbound_cpumask;
331
332/* CPU where unbound work was last round robin scheduled from this CPU */
333static DEFINE_PER_CPU(int, wq_rr_cpu_last);
b05a7928 334
f303fccb
TH
335/*
336 * Local execution of unbound work items is no longer guaranteed. The
337 * following always forces round-robin CPU selection on unbound work items
338 * to uncover usages which depend on it.
339 */
340#ifdef CONFIG_DEBUG_WQ_FORCE_RR_CPU
341static bool wq_debug_force_rr_cpu = true;
342#else
343static bool wq_debug_force_rr_cpu = false;
344#endif
345module_param_named(debug_force_rr_cpu, wq_debug_force_rr_cpu, bool, 0644);
346
7d19c5ce 347/* the per-cpu worker pools */
25528213 348static DEFINE_PER_CPU_SHARED_ALIGNED(struct worker_pool [NR_STD_WORKER_POOLS], cpu_worker_pools);
7d19c5ce 349
68e13a67 350static DEFINE_IDR(worker_pool_idr); /* PR: idr of all pools */
7d19c5ce 351
68e13a67 352/* PL: hash of all unbound pools keyed by pool->attrs */
29c91e99
TH
353static DEFINE_HASHTABLE(unbound_pool_hash, UNBOUND_POOL_HASH_ORDER);
354
c5aa87bb 355/* I: attributes used when instantiating standard unbound pools on demand */
29c91e99
TH
356static struct workqueue_attrs *unbound_std_wq_attrs[NR_STD_WORKER_POOLS];
357
8a2b7538
TH
358/* I: attributes used when instantiating ordered pools on demand */
359static struct workqueue_attrs *ordered_wq_attrs[NR_STD_WORKER_POOLS];
360
d320c038 361struct workqueue_struct *system_wq __read_mostly;
ad7b1f84 362EXPORT_SYMBOL(system_wq);
044c782c 363struct workqueue_struct *system_highpri_wq __read_mostly;
1aabe902 364EXPORT_SYMBOL_GPL(system_highpri_wq);
044c782c 365struct workqueue_struct *system_long_wq __read_mostly;
d320c038 366EXPORT_SYMBOL_GPL(system_long_wq);
044c782c 367struct workqueue_struct *system_unbound_wq __read_mostly;
f3421797 368EXPORT_SYMBOL_GPL(system_unbound_wq);
044c782c 369struct workqueue_struct *system_freezable_wq __read_mostly;
24d51add 370EXPORT_SYMBOL_GPL(system_freezable_wq);
0668106c
VK
371struct workqueue_struct *system_power_efficient_wq __read_mostly;
372EXPORT_SYMBOL_GPL(system_power_efficient_wq);
373struct workqueue_struct *system_freezable_power_efficient_wq __read_mostly;
374EXPORT_SYMBOL_GPL(system_freezable_power_efficient_wq);
d320c038 375
7d19c5ce 376static int worker_thread(void *__worker);
6ba94429 377static void workqueue_sysfs_unregister(struct workqueue_struct *wq);
c29eb853 378static void show_pwq(struct pool_workqueue *pwq);
55df0933 379static void show_one_worker_pool(struct worker_pool *pool);
7d19c5ce 380
97bd2347
TH
381#define CREATE_TRACE_POINTS
382#include <trace/events/workqueue.h>
383
68e13a67 384#define assert_rcu_or_pool_mutex() \
24acfb71 385 RCU_LOCKDEP_WARN(!rcu_read_lock_held() && \
f78f5b90 386 !lockdep_is_held(&wq_pool_mutex), \
24acfb71 387 "RCU or wq_pool_mutex should be held")
5bcab335 388
5b95e1af 389#define assert_rcu_or_wq_mutex_or_pool_mutex(wq) \
24acfb71 390 RCU_LOCKDEP_WARN(!rcu_read_lock_held() && \
f78f5b90
PM
391 !lockdep_is_held(&wq->mutex) && \
392 !lockdep_is_held(&wq_pool_mutex), \
24acfb71 393 "RCU, wq->mutex or wq_pool_mutex should be held")
5b95e1af 394
f02ae73a
TH
395#define for_each_cpu_worker_pool(pool, cpu) \
396 for ((pool) = &per_cpu(cpu_worker_pools, cpu)[0]; \
397 (pool) < &per_cpu(cpu_worker_pools, cpu)[NR_STD_WORKER_POOLS]; \
7a62c2c8 398 (pool)++)
4ce62e9e 399
17116969
TH
400/**
401 * for_each_pool - iterate through all worker_pools in the system
402 * @pool: iteration cursor
611c92a0 403 * @pi: integer used for iteration
fa1b54e6 404 *
24acfb71 405 * This must be called either with wq_pool_mutex held or RCU read
68e13a67
LJ
406 * locked. If the pool needs to be used beyond the locking in effect, the
407 * caller is responsible for guaranteeing that the pool stays online.
fa1b54e6
TH
408 *
409 * The if/else clause exists only for the lockdep assertion and can be
410 * ignored.
17116969 411 */
611c92a0
TH
412#define for_each_pool(pool, pi) \
413 idr_for_each_entry(&worker_pool_idr, pool, pi) \
68e13a67 414 if (({ assert_rcu_or_pool_mutex(); false; })) { } \
fa1b54e6 415 else
17116969 416
822d8405
TH
417/**
418 * for_each_pool_worker - iterate through all workers of a worker_pool
419 * @worker: iteration cursor
822d8405
TH
420 * @pool: worker_pool to iterate workers of
421 *
1258fae7 422 * This must be called with wq_pool_attach_mutex.
822d8405
TH
423 *
424 * The if/else clause exists only for the lockdep assertion and can be
425 * ignored.
426 */
da028469
LJ
427#define for_each_pool_worker(worker, pool) \
428 list_for_each_entry((worker), &(pool)->workers, node) \
1258fae7 429 if (({ lockdep_assert_held(&wq_pool_attach_mutex); false; })) { } \
822d8405
TH
430 else
431
49e3cf44
TH
432/**
433 * for_each_pwq - iterate through all pool_workqueues of the specified workqueue
434 * @pwq: iteration cursor
435 * @wq: the target workqueue
76af4d93 436 *
24acfb71 437 * This must be called either with wq->mutex held or RCU read locked.
794b18bc
TH
438 * If the pwq needs to be used beyond the locking in effect, the caller is
439 * responsible for guaranteeing that the pwq stays online.
76af4d93
TH
440 *
441 * The if/else clause exists only for the lockdep assertion and can be
442 * ignored.
49e3cf44
TH
443 */
444#define for_each_pwq(pwq, wq) \
49e9d1a9 445 list_for_each_entry_rcu((pwq), &(wq)->pwqs, pwqs_node, \
5a644662 446 lockdep_is_held(&(wq->mutex)))
f3421797 447
dc186ad7
TG
448#ifdef CONFIG_DEBUG_OBJECTS_WORK
449
f9e62f31 450static const struct debug_obj_descr work_debug_descr;
dc186ad7 451
99777288
SG
452static void *work_debug_hint(void *addr)
453{
454 return ((struct work_struct *) addr)->func;
455}
456
b9fdac7f
DC
457static bool work_is_static_object(void *addr)
458{
459 struct work_struct *work = addr;
460
461 return test_bit(WORK_STRUCT_STATIC_BIT, work_data_bits(work));
462}
463
dc186ad7
TG
464/*
465 * fixup_init is called when:
466 * - an active object is initialized
467 */
02a982a6 468static bool work_fixup_init(void *addr, enum debug_obj_state state)
dc186ad7
TG
469{
470 struct work_struct *work = addr;
471
472 switch (state) {
473 case ODEBUG_STATE_ACTIVE:
474 cancel_work_sync(work);
475 debug_object_init(work, &work_debug_descr);
02a982a6 476 return true;
dc186ad7 477 default:
02a982a6 478 return false;
dc186ad7
TG
479 }
480}
481
dc186ad7
TG
482/*
483 * fixup_free is called when:
484 * - an active object is freed
485 */
02a982a6 486static bool work_fixup_free(void *addr, enum debug_obj_state state)
dc186ad7
TG
487{
488 struct work_struct *work = addr;
489
490 switch (state) {
491 case ODEBUG_STATE_ACTIVE:
492 cancel_work_sync(work);
493 debug_object_free(work, &work_debug_descr);
02a982a6 494 return true;
dc186ad7 495 default:
02a982a6 496 return false;
dc186ad7
TG
497 }
498}
499
f9e62f31 500static const struct debug_obj_descr work_debug_descr = {
dc186ad7 501 .name = "work_struct",
99777288 502 .debug_hint = work_debug_hint,
b9fdac7f 503 .is_static_object = work_is_static_object,
dc186ad7 504 .fixup_init = work_fixup_init,
dc186ad7
TG
505 .fixup_free = work_fixup_free,
506};
507
508static inline void debug_work_activate(struct work_struct *work)
509{
510 debug_object_activate(work, &work_debug_descr);
511}
512
513static inline void debug_work_deactivate(struct work_struct *work)
514{
515 debug_object_deactivate(work, &work_debug_descr);
516}
517
518void __init_work(struct work_struct *work, int onstack)
519{
520 if (onstack)
521 debug_object_init_on_stack(work, &work_debug_descr);
522 else
523 debug_object_init(work, &work_debug_descr);
524}
525EXPORT_SYMBOL_GPL(__init_work);
526
527void destroy_work_on_stack(struct work_struct *work)
528{
529 debug_object_free(work, &work_debug_descr);
530}
531EXPORT_SYMBOL_GPL(destroy_work_on_stack);
532
ea2e64f2
TG
533void destroy_delayed_work_on_stack(struct delayed_work *work)
534{
535 destroy_timer_on_stack(&work->timer);
536 debug_object_free(&work->work, &work_debug_descr);
537}
538EXPORT_SYMBOL_GPL(destroy_delayed_work_on_stack);
539
dc186ad7
TG
540#else
541static inline void debug_work_activate(struct work_struct *work) { }
542static inline void debug_work_deactivate(struct work_struct *work) { }
543#endif
544
4e8b22bd 545/**
67dc8325 546 * worker_pool_assign_id - allocate ID and assign it to @pool
4e8b22bd
LB
547 * @pool: the pool pointer of interest
548 *
549 * Returns 0 if ID in [0, WORK_OFFQ_POOL_NONE) is allocated and assigned
550 * successfully, -errno on failure.
551 */
9daf9e67
TH
552static int worker_pool_assign_id(struct worker_pool *pool)
553{
554 int ret;
555
68e13a67 556 lockdep_assert_held(&wq_pool_mutex);
5bcab335 557
4e8b22bd
LB
558 ret = idr_alloc(&worker_pool_idr, pool, 0, WORK_OFFQ_POOL_NONE,
559 GFP_KERNEL);
229641a6 560 if (ret >= 0) {
e68035fb 561 pool->id = ret;
229641a6
TH
562 return 0;
563 }
fa1b54e6 564 return ret;
7c3eed5c
TH
565}
566
df2d5ae4
TH
567/**
568 * unbound_pwq_by_node - return the unbound pool_workqueue for the given node
569 * @wq: the target workqueue
570 * @node: the node ID
571 *
24acfb71 572 * This must be called with any of wq_pool_mutex, wq->mutex or RCU
5b95e1af 573 * read locked.
df2d5ae4
TH
574 * If the pwq needs to be used beyond the locking in effect, the caller is
575 * responsible for guaranteeing that the pwq stays online.
d185af30
YB
576 *
577 * Return: The unbound pool_workqueue for @node.
df2d5ae4
TH
578 */
579static struct pool_workqueue *unbound_pwq_by_node(struct workqueue_struct *wq,
580 int node)
581{
5b95e1af 582 assert_rcu_or_wq_mutex_or_pool_mutex(wq);
d6e022f1
TH
583
584 /*
585 * XXX: @node can be NUMA_NO_NODE if CPU goes offline while a
586 * delayed item is pending. The plan is to keep CPU -> NODE
587 * mapping valid and stable across CPU on/offlines. Once that
588 * happens, this workaround can be removed.
589 */
590 if (unlikely(node == NUMA_NO_NODE))
591 return wq->dfl_pwq;
592
df2d5ae4
TH
593 return rcu_dereference_raw(wq->numa_pwq_tbl[node]);
594}
595
73f53c4a
TH
596static unsigned int work_color_to_flags(int color)
597{
598 return color << WORK_STRUCT_COLOR_SHIFT;
599}
600
c4560c2c 601static int get_work_color(unsigned long work_data)
73f53c4a 602{
c4560c2c 603 return (work_data >> WORK_STRUCT_COLOR_SHIFT) &
73f53c4a
TH
604 ((1 << WORK_STRUCT_COLOR_BITS) - 1);
605}
606
607static int work_next_color(int color)
608{
609 return (color + 1) % WORK_NR_COLORS;
610}
1da177e4 611
14441960 612/*
112202d9
TH
613 * While queued, %WORK_STRUCT_PWQ is set and non flag bits of a work's data
614 * contain the pointer to the queued pwq. Once execution starts, the flag
7c3eed5c 615 * is cleared and the high bits contain OFFQ flags and pool ID.
7a22ad75 616 *
112202d9
TH
617 * set_work_pwq(), set_work_pool_and_clear_pending(), mark_work_canceling()
618 * and clear_work_data() can be used to set the pwq, pool or clear
bbb68dfa
TH
619 * work->data. These functions should only be called while the work is
620 * owned - ie. while the PENDING bit is set.
7a22ad75 621 *
112202d9 622 * get_work_pool() and get_work_pwq() can be used to obtain the pool or pwq
7c3eed5c 623 * corresponding to a work. Pool is available once the work has been
112202d9 624 * queued anywhere after initialization until it is sync canceled. pwq is
7c3eed5c 625 * available only while the work item is queued.
7a22ad75 626 *
bbb68dfa
TH
627 * %WORK_OFFQ_CANCELING is used to mark a work item which is being
628 * canceled. While being canceled, a work item may have its PENDING set
629 * but stay off timer and worklist for arbitrarily long and nobody should
630 * try to steal the PENDING bit.
14441960 631 */
7a22ad75
TH
632static inline void set_work_data(struct work_struct *work, unsigned long data,
633 unsigned long flags)
365970a1 634{
6183c009 635 WARN_ON_ONCE(!work_pending(work));
7a22ad75
TH
636 atomic_long_set(&work->data, data | flags | work_static(work));
637}
365970a1 638
112202d9 639static void set_work_pwq(struct work_struct *work, struct pool_workqueue *pwq,
7a22ad75
TH
640 unsigned long extra_flags)
641{
112202d9
TH
642 set_work_data(work, (unsigned long)pwq,
643 WORK_STRUCT_PENDING | WORK_STRUCT_PWQ | extra_flags);
365970a1
DH
644}
645
4468a00f
LJ
646static void set_work_pool_and_keep_pending(struct work_struct *work,
647 int pool_id)
648{
649 set_work_data(work, (unsigned long)pool_id << WORK_OFFQ_POOL_SHIFT,
650 WORK_STRUCT_PENDING);
651}
652
7c3eed5c
TH
653static void set_work_pool_and_clear_pending(struct work_struct *work,
654 int pool_id)
7a22ad75 655{
23657bb1
TH
656 /*
657 * The following wmb is paired with the implied mb in
658 * test_and_set_bit(PENDING) and ensures all updates to @work made
659 * here are visible to and precede any updates by the next PENDING
660 * owner.
661 */
662 smp_wmb();
7c3eed5c 663 set_work_data(work, (unsigned long)pool_id << WORK_OFFQ_POOL_SHIFT, 0);
346c09f8
RP
664 /*
665 * The following mb guarantees that previous clear of a PENDING bit
666 * will not be reordered with any speculative LOADS or STORES from
667 * work->current_func, which is executed afterwards. This possible
8bdc6201 668 * reordering can lead to a missed execution on attempt to queue
346c09f8
RP
669 * the same @work. E.g. consider this case:
670 *
671 * CPU#0 CPU#1
672 * ---------------------------- --------------------------------
673 *
674 * 1 STORE event_indicated
675 * 2 queue_work_on() {
676 * 3 test_and_set_bit(PENDING)
677 * 4 } set_..._and_clear_pending() {
678 * 5 set_work_data() # clear bit
679 * 6 smp_mb()
680 * 7 work->current_func() {
681 * 8 LOAD event_indicated
682 * }
683 *
684 * Without an explicit full barrier speculative LOAD on line 8 can
685 * be executed before CPU#0 does STORE on line 1. If that happens,
686 * CPU#0 observes the PENDING bit is still set and new execution of
687 * a @work is not queued in a hope, that CPU#1 will eventually
688 * finish the queued @work. Meanwhile CPU#1 does not see
689 * event_indicated is set, because speculative LOAD was executed
690 * before actual STORE.
691 */
692 smp_mb();
7a22ad75 693}
f756d5e2 694
7a22ad75 695static void clear_work_data(struct work_struct *work)
1da177e4 696{
7c3eed5c
TH
697 smp_wmb(); /* see set_work_pool_and_clear_pending() */
698 set_work_data(work, WORK_STRUCT_NO_POOL, 0);
1da177e4
LT
699}
700
112202d9 701static struct pool_workqueue *get_work_pwq(struct work_struct *work)
b1f4ec17 702{
e120153d 703 unsigned long data = atomic_long_read(&work->data);
7a22ad75 704
112202d9 705 if (data & WORK_STRUCT_PWQ)
e120153d
TH
706 return (void *)(data & WORK_STRUCT_WQ_DATA_MASK);
707 else
708 return NULL;
4d707b9f
ON
709}
710
7c3eed5c
TH
711/**
712 * get_work_pool - return the worker_pool a given work was associated with
713 * @work: the work item of interest
714 *
68e13a67 715 * Pools are created and destroyed under wq_pool_mutex, and allows read
24acfb71
TG
716 * access under RCU read lock. As such, this function should be
717 * called under wq_pool_mutex or inside of a rcu_read_lock() region.
fa1b54e6
TH
718 *
719 * All fields of the returned pool are accessible as long as the above
720 * mentioned locking is in effect. If the returned pool needs to be used
721 * beyond the critical section, the caller is responsible for ensuring the
722 * returned pool is and stays online.
d185af30
YB
723 *
724 * Return: The worker_pool @work was last associated with. %NULL if none.
7c3eed5c
TH
725 */
726static struct worker_pool *get_work_pool(struct work_struct *work)
365970a1 727{
e120153d 728 unsigned long data = atomic_long_read(&work->data);
7c3eed5c 729 int pool_id;
7a22ad75 730
68e13a67 731 assert_rcu_or_pool_mutex();
fa1b54e6 732
112202d9
TH
733 if (data & WORK_STRUCT_PWQ)
734 return ((struct pool_workqueue *)
7c3eed5c 735 (data & WORK_STRUCT_WQ_DATA_MASK))->pool;
7a22ad75 736
7c3eed5c
TH
737 pool_id = data >> WORK_OFFQ_POOL_SHIFT;
738 if (pool_id == WORK_OFFQ_POOL_NONE)
7a22ad75
TH
739 return NULL;
740
fa1b54e6 741 return idr_find(&worker_pool_idr, pool_id);
7c3eed5c
TH
742}
743
744/**
745 * get_work_pool_id - return the worker pool ID a given work is associated with
746 * @work: the work item of interest
747 *
d185af30 748 * Return: The worker_pool ID @work was last associated with.
7c3eed5c
TH
749 * %WORK_OFFQ_POOL_NONE if none.
750 */
751static int get_work_pool_id(struct work_struct *work)
752{
54d5b7d0
LJ
753 unsigned long data = atomic_long_read(&work->data);
754
112202d9
TH
755 if (data & WORK_STRUCT_PWQ)
756 return ((struct pool_workqueue *)
54d5b7d0 757 (data & WORK_STRUCT_WQ_DATA_MASK))->pool->id;
7c3eed5c 758
54d5b7d0 759 return data >> WORK_OFFQ_POOL_SHIFT;
7c3eed5c
TH
760}
761
bbb68dfa
TH
762static void mark_work_canceling(struct work_struct *work)
763{
7c3eed5c 764 unsigned long pool_id = get_work_pool_id(work);
bbb68dfa 765
7c3eed5c
TH
766 pool_id <<= WORK_OFFQ_POOL_SHIFT;
767 set_work_data(work, pool_id | WORK_OFFQ_CANCELING, WORK_STRUCT_PENDING);
bbb68dfa
TH
768}
769
770static bool work_is_canceling(struct work_struct *work)
771{
772 unsigned long data = atomic_long_read(&work->data);
773
112202d9 774 return !(data & WORK_STRUCT_PWQ) && (data & WORK_OFFQ_CANCELING);
bbb68dfa
TH
775}
776
e22bee78 777/*
3270476a
TH
778 * Policy functions. These define the policies on how the global worker
779 * pools are managed. Unless noted otherwise, these functions assume that
d565ed63 780 * they're being called with pool->lock held.
e22bee78
TH
781 */
782
63d95a91 783static bool __need_more_worker(struct worker_pool *pool)
a848e3b6 784{
bc35f7ef 785 return !pool->nr_running;
a848e3b6
ON
786}
787
4594bf15 788/*
e22bee78
TH
789 * Need to wake up a worker? Called from anything but currently
790 * running workers.
974271c4
TH
791 *
792 * Note that, because unbound workers never contribute to nr_running, this
706026c2 793 * function will always return %true for unbound pools as long as the
974271c4 794 * worklist isn't empty.
4594bf15 795 */
63d95a91 796static bool need_more_worker(struct worker_pool *pool)
365970a1 797{
63d95a91 798 return !list_empty(&pool->worklist) && __need_more_worker(pool);
e22bee78 799}
4594bf15 800
e22bee78 801/* Can I start working? Called from busy but !running workers. */
63d95a91 802static bool may_start_working(struct worker_pool *pool)
e22bee78 803{
63d95a91 804 return pool->nr_idle;
e22bee78
TH
805}
806
807/* Do I need to keep working? Called from currently running workers. */
63d95a91 808static bool keep_working(struct worker_pool *pool)
e22bee78 809{
bc35f7ef 810 return !list_empty(&pool->worklist) && (pool->nr_running <= 1);
e22bee78
TH
811}
812
813/* Do we need a new worker? Called from manager. */
63d95a91 814static bool need_to_create_worker(struct worker_pool *pool)
e22bee78 815{
63d95a91 816 return need_more_worker(pool) && !may_start_working(pool);
e22bee78 817}
365970a1 818
e22bee78 819/* Do we have too many workers and should some go away? */
63d95a91 820static bool too_many_workers(struct worker_pool *pool)
e22bee78 821{
692b4825 822 bool managing = pool->flags & POOL_MANAGER_ACTIVE;
63d95a91
TH
823 int nr_idle = pool->nr_idle + managing; /* manager is considered idle */
824 int nr_busy = pool->nr_workers - nr_idle;
e22bee78
TH
825
826 return nr_idle > 2 && (nr_idle - 2) * MAX_IDLE_WORKERS_RATIO >= nr_busy;
365970a1
DH
827}
828
4d707b9f 829/*
e22bee78
TH
830 * Wake up functions.
831 */
832
2c1f1a91 833/* Return the first idle worker. Called with pool->lock held. */
1037de36 834static struct worker *first_idle_worker(struct worker_pool *pool)
7e11629d 835{
63d95a91 836 if (unlikely(list_empty(&pool->idle_list)))
7e11629d
TH
837 return NULL;
838
63d95a91 839 return list_first_entry(&pool->idle_list, struct worker, entry);
7e11629d
TH
840}
841
842/**
843 * wake_up_worker - wake up an idle worker
63d95a91 844 * @pool: worker pool to wake worker from
7e11629d 845 *
63d95a91 846 * Wake up the first idle worker of @pool.
7e11629d
TH
847 *
848 * CONTEXT:
a9b8a985 849 * raw_spin_lock_irq(pool->lock).
7e11629d 850 */
63d95a91 851static void wake_up_worker(struct worker_pool *pool)
7e11629d 852{
1037de36 853 struct worker *worker = first_idle_worker(pool);
7e11629d
TH
854
855 if (likely(worker))
856 wake_up_process(worker->task);
857}
858
d302f017 859/**
6d25be57 860 * wq_worker_running - a worker is running again
e22bee78 861 * @task: task waking up
e22bee78 862 *
6d25be57 863 * This function is called when a worker returns from schedule()
e22bee78 864 */
6d25be57 865void wq_worker_running(struct task_struct *task)
e22bee78
TH
866{
867 struct worker *worker = kthread_data(task);
868
6d25be57
TG
869 if (!worker->sleeping)
870 return;
07edfece
FW
871
872 /*
873 * If preempted by unbind_workers() between the WORKER_NOT_RUNNING check
874 * and the nr_running increment below, we may ruin the nr_running reset
875 * and leave with an unexpected pool->nr_running == 1 on the newly unbound
876 * pool. Protect against such race.
877 */
878 preempt_disable();
6d25be57 879 if (!(worker->flags & WORKER_NOT_RUNNING))
bc35f7ef 880 worker->pool->nr_running++;
07edfece 881 preempt_enable();
6d25be57 882 worker->sleeping = 0;
e22bee78
TH
883}
884
885/**
886 * wq_worker_sleeping - a worker is going to sleep
887 * @task: task going to sleep
e22bee78 888 *
6d25be57 889 * This function is called from schedule() when a busy worker is
ccf45156 890 * going to sleep.
e22bee78 891 */
6d25be57 892void wq_worker_sleeping(struct task_struct *task)
e22bee78 893{
cc5bff38 894 struct worker *worker = kthread_data(task);
111c225a 895 struct worker_pool *pool;
e22bee78 896
111c225a
TH
897 /*
898 * Rescuers, which may not have all the fields set up like normal
899 * workers, also reach here, let's not access anything before
900 * checking NOT_RUNNING.
901 */
2d64672e 902 if (worker->flags & WORKER_NOT_RUNNING)
6d25be57 903 return;
e22bee78 904
111c225a 905 pool = worker->pool;
111c225a 906
62849a96
SAS
907 /* Return if preempted before wq_worker_running() was reached */
908 if (worker->sleeping)
6d25be57
TG
909 return;
910
911 worker->sleeping = 1;
a9b8a985 912 raw_spin_lock_irq(&pool->lock);
e22bee78 913
45c753f5
FW
914 /*
915 * Recheck in case unbind_workers() preempted us. We don't
916 * want to decrement nr_running after the worker is unbound
917 * and nr_running has been reset.
918 */
919 if (worker->flags & WORKER_NOT_RUNNING) {
920 raw_spin_unlock_irq(&pool->lock);
921 return;
922 }
923
bc35f7ef
LJ
924 pool->nr_running--;
925 if (need_more_worker(pool))
cc5bff38 926 wake_up_worker(pool);
a9b8a985 927 raw_spin_unlock_irq(&pool->lock);
e22bee78
TH
928}
929
1b69ac6b
JW
930/**
931 * wq_worker_last_func - retrieve worker's last work function
8194fe94 932 * @task: Task to retrieve last work function of.
1b69ac6b
JW
933 *
934 * Determine the last function a worker executed. This is called from
935 * the scheduler to get a worker's last known identity.
936 *
937 * CONTEXT:
a9b8a985 938 * raw_spin_lock_irq(rq->lock)
1b69ac6b 939 *
4b047002
JW
940 * This function is called during schedule() when a kworker is going
941 * to sleep. It's used by psi to identify aggregation workers during
942 * dequeuing, to allow periodic aggregation to shut-off when that
943 * worker is the last task in the system or cgroup to go to sleep.
944 *
945 * As this function doesn't involve any workqueue-related locking, it
946 * only returns stable values when called from inside the scheduler's
947 * queuing and dequeuing paths, when @task, which must be a kworker,
948 * is guaranteed to not be processing any works.
949 *
1b69ac6b
JW
950 * Return:
951 * The last work function %current executed as a worker, NULL if it
952 * hasn't executed any work yet.
953 */
954work_func_t wq_worker_last_func(struct task_struct *task)
955{
956 struct worker *worker = kthread_data(task);
957
958 return worker->last_func;
959}
960
e22bee78
TH
961/**
962 * worker_set_flags - set worker flags and adjust nr_running accordingly
cb444766 963 * @worker: self
d302f017 964 * @flags: flags to set
d302f017 965 *
228f1d00 966 * Set @flags in @worker->flags and adjust nr_running accordingly.
d302f017 967 *
cb444766 968 * CONTEXT:
a9b8a985 969 * raw_spin_lock_irq(pool->lock)
d302f017 970 */
228f1d00 971static inline void worker_set_flags(struct worker *worker, unsigned int flags)
d302f017 972{
bd7bdd43 973 struct worker_pool *pool = worker->pool;
e22bee78 974
cb444766
TH
975 WARN_ON_ONCE(worker->task != current);
976
228f1d00 977 /* If transitioning into NOT_RUNNING, adjust nr_running. */
e22bee78
TH
978 if ((flags & WORKER_NOT_RUNNING) &&
979 !(worker->flags & WORKER_NOT_RUNNING)) {
bc35f7ef 980 pool->nr_running--;
e22bee78
TH
981 }
982
d302f017
TH
983 worker->flags |= flags;
984}
985
986/**
e22bee78 987 * worker_clr_flags - clear worker flags and adjust nr_running accordingly
cb444766 988 * @worker: self
d302f017
TH
989 * @flags: flags to clear
990 *
e22bee78 991 * Clear @flags in @worker->flags and adjust nr_running accordingly.
d302f017 992 *
cb444766 993 * CONTEXT:
a9b8a985 994 * raw_spin_lock_irq(pool->lock)
d302f017
TH
995 */
996static inline void worker_clr_flags(struct worker *worker, unsigned int flags)
997{
63d95a91 998 struct worker_pool *pool = worker->pool;
e22bee78
TH
999 unsigned int oflags = worker->flags;
1000
cb444766
TH
1001 WARN_ON_ONCE(worker->task != current);
1002
d302f017 1003 worker->flags &= ~flags;
e22bee78 1004
42c025f3
TH
1005 /*
1006 * If transitioning out of NOT_RUNNING, increment nr_running. Note
1007 * that the nested NOT_RUNNING is not a noop. NOT_RUNNING is mask
1008 * of multiple flags, not a single flag.
1009 */
e22bee78
TH
1010 if ((flags & WORKER_NOT_RUNNING) && (oflags & WORKER_NOT_RUNNING))
1011 if (!(worker->flags & WORKER_NOT_RUNNING))
bc35f7ef 1012 pool->nr_running++;
d302f017
TH
1013}
1014
8cca0eea
TH
1015/**
1016 * find_worker_executing_work - find worker which is executing a work
c9e7cf27 1017 * @pool: pool of interest
8cca0eea
TH
1018 * @work: work to find worker for
1019 *
c9e7cf27
TH
1020 * Find a worker which is executing @work on @pool by searching
1021 * @pool->busy_hash which is keyed by the address of @work. For a worker
a2c1c57b
TH
1022 * to match, its current execution should match the address of @work and
1023 * its work function. This is to avoid unwanted dependency between
1024 * unrelated work executions through a work item being recycled while still
1025 * being executed.
1026 *
1027 * This is a bit tricky. A work item may be freed once its execution
1028 * starts and nothing prevents the freed area from being recycled for
1029 * another work item. If the same work item address ends up being reused
1030 * before the original execution finishes, workqueue will identify the
1031 * recycled work item as currently executing and make it wait until the
1032 * current execution finishes, introducing an unwanted dependency.
1033 *
c5aa87bb
TH
1034 * This function checks the work item address and work function to avoid
1035 * false positives. Note that this isn't complete as one may construct a
1036 * work function which can introduce dependency onto itself through a
1037 * recycled work item. Well, if somebody wants to shoot oneself in the
1038 * foot that badly, there's only so much we can do, and if such deadlock
1039 * actually occurs, it should be easy to locate the culprit work function.
8cca0eea
TH
1040 *
1041 * CONTEXT:
a9b8a985 1042 * raw_spin_lock_irq(pool->lock).
8cca0eea 1043 *
d185af30
YB
1044 * Return:
1045 * Pointer to worker which is executing @work if found, %NULL
8cca0eea 1046 * otherwise.
4d707b9f 1047 */
c9e7cf27 1048static struct worker *find_worker_executing_work(struct worker_pool *pool,
8cca0eea 1049 struct work_struct *work)
4d707b9f 1050{
42f8570f 1051 struct worker *worker;
42f8570f 1052
b67bfe0d 1053 hash_for_each_possible(pool->busy_hash, worker, hentry,
a2c1c57b
TH
1054 (unsigned long)work)
1055 if (worker->current_work == work &&
1056 worker->current_func == work->func)
42f8570f
SL
1057 return worker;
1058
1059 return NULL;
4d707b9f
ON
1060}
1061
bf4ede01
TH
1062/**
1063 * move_linked_works - move linked works to a list
1064 * @work: start of series of works to be scheduled
1065 * @head: target list to append @work to
402dd89d 1066 * @nextp: out parameter for nested worklist walking
bf4ede01
TH
1067 *
1068 * Schedule linked works starting from @work to @head. Work series to
1069 * be scheduled starts at @work and includes any consecutive work with
1070 * WORK_STRUCT_LINKED set in its predecessor.
1071 *
1072 * If @nextp is not NULL, it's updated to point to the next work of
1073 * the last scheduled work. This allows move_linked_works() to be
1074 * nested inside outer list_for_each_entry_safe().
1075 *
1076 * CONTEXT:
a9b8a985 1077 * raw_spin_lock_irq(pool->lock).
bf4ede01
TH
1078 */
1079static void move_linked_works(struct work_struct *work, struct list_head *head,
1080 struct work_struct **nextp)
1081{
1082 struct work_struct *n;
1083
1084 /*
1085 * Linked worklist will always end before the end of the list,
1086 * use NULL for list head.
1087 */
1088 list_for_each_entry_safe_from(work, n, NULL, entry) {
1089 list_move_tail(&work->entry, head);
1090 if (!(*work_data_bits(work) & WORK_STRUCT_LINKED))
1091 break;
1092 }
1093
1094 /*
1095 * If we're already inside safe list traversal and have moved
1096 * multiple works to the scheduled queue, the next position
1097 * needs to be updated.
1098 */
1099 if (nextp)
1100 *nextp = n;
1101}
1102
8864b4e5
TH
1103/**
1104 * get_pwq - get an extra reference on the specified pool_workqueue
1105 * @pwq: pool_workqueue to get
1106 *
1107 * Obtain an extra reference on @pwq. The caller should guarantee that
1108 * @pwq has positive refcnt and be holding the matching pool->lock.
1109 */
1110static void get_pwq(struct pool_workqueue *pwq)
1111{
1112 lockdep_assert_held(&pwq->pool->lock);
1113 WARN_ON_ONCE(pwq->refcnt <= 0);
1114 pwq->refcnt++;
1115}
1116
1117/**
1118 * put_pwq - put a pool_workqueue reference
1119 * @pwq: pool_workqueue to put
1120 *
1121 * Drop a reference of @pwq. If its refcnt reaches zero, schedule its
1122 * destruction. The caller should be holding the matching pool->lock.
1123 */
1124static void put_pwq(struct pool_workqueue *pwq)
1125{
1126 lockdep_assert_held(&pwq->pool->lock);
1127 if (likely(--pwq->refcnt))
1128 return;
1129 if (WARN_ON_ONCE(!(pwq->wq->flags & WQ_UNBOUND)))
1130 return;
1131 /*
1132 * @pwq can't be released under pool->lock, bounce to
1133 * pwq_unbound_release_workfn(). This never recurses on the same
1134 * pool->lock as this path is taken only for unbound workqueues and
1135 * the release work item is scheduled on a per-cpu workqueue. To
1136 * avoid lockdep warning, unbound pool->locks are given lockdep
1137 * subclass of 1 in get_unbound_pool().
1138 */
1139 schedule_work(&pwq->unbound_release_work);
1140}
1141
dce90d47
TH
1142/**
1143 * put_pwq_unlocked - put_pwq() with surrounding pool lock/unlock
1144 * @pwq: pool_workqueue to put (can be %NULL)
1145 *
1146 * put_pwq() with locking. This function also allows %NULL @pwq.
1147 */
1148static void put_pwq_unlocked(struct pool_workqueue *pwq)
1149{
1150 if (pwq) {
1151 /*
24acfb71 1152 * As both pwqs and pools are RCU protected, the
dce90d47
TH
1153 * following lock operations are safe.
1154 */
a9b8a985 1155 raw_spin_lock_irq(&pwq->pool->lock);
dce90d47 1156 put_pwq(pwq);
a9b8a985 1157 raw_spin_unlock_irq(&pwq->pool->lock);
dce90d47
TH
1158 }
1159}
1160
f97a4a1a 1161static void pwq_activate_inactive_work(struct work_struct *work)
bf4ede01 1162{
112202d9 1163 struct pool_workqueue *pwq = get_work_pwq(work);
bf4ede01
TH
1164
1165 trace_workqueue_activate_work(work);
82607adc
TH
1166 if (list_empty(&pwq->pool->worklist))
1167 pwq->pool->watchdog_ts = jiffies;
112202d9 1168 move_linked_works(work, &pwq->pool->worklist, NULL);
f97a4a1a 1169 __clear_bit(WORK_STRUCT_INACTIVE_BIT, work_data_bits(work));
112202d9 1170 pwq->nr_active++;
bf4ede01
TH
1171}
1172
f97a4a1a 1173static void pwq_activate_first_inactive(struct pool_workqueue *pwq)
3aa62497 1174{
f97a4a1a 1175 struct work_struct *work = list_first_entry(&pwq->inactive_works,
3aa62497
LJ
1176 struct work_struct, entry);
1177
f97a4a1a 1178 pwq_activate_inactive_work(work);
3aa62497
LJ
1179}
1180
bf4ede01 1181/**
112202d9
TH
1182 * pwq_dec_nr_in_flight - decrement pwq's nr_in_flight
1183 * @pwq: pwq of interest
c4560c2c 1184 * @work_data: work_data of work which left the queue
bf4ede01
TH
1185 *
1186 * A work either has completed or is removed from pending queue,
112202d9 1187 * decrement nr_in_flight of its pwq and handle workqueue flushing.
bf4ede01
TH
1188 *
1189 * CONTEXT:
a9b8a985 1190 * raw_spin_lock_irq(pool->lock).
bf4ede01 1191 */
c4560c2c 1192static void pwq_dec_nr_in_flight(struct pool_workqueue *pwq, unsigned long work_data)
bf4ede01 1193{
c4560c2c
LJ
1194 int color = get_work_color(work_data);
1195
018f3a13
LJ
1196 if (!(work_data & WORK_STRUCT_INACTIVE)) {
1197 pwq->nr_active--;
1198 if (!list_empty(&pwq->inactive_works)) {
1199 /* one down, submit an inactive one */
1200 if (pwq->nr_active < pwq->max_active)
1201 pwq_activate_first_inactive(pwq);
1202 }
1203 }
1204
112202d9 1205 pwq->nr_in_flight[color]--;
bf4ede01 1206
bf4ede01 1207 /* is flush in progress and are we at the flushing tip? */
112202d9 1208 if (likely(pwq->flush_color != color))
8864b4e5 1209 goto out_put;
bf4ede01
TH
1210
1211 /* are there still in-flight works? */
112202d9 1212 if (pwq->nr_in_flight[color])
8864b4e5 1213 goto out_put;
bf4ede01 1214
112202d9
TH
1215 /* this pwq is done, clear flush_color */
1216 pwq->flush_color = -1;
bf4ede01
TH
1217
1218 /*
112202d9 1219 * If this was the last pwq, wake up the first flusher. It
bf4ede01
TH
1220 * will handle the rest.
1221 */
112202d9
TH
1222 if (atomic_dec_and_test(&pwq->wq->nr_pwqs_to_flush))
1223 complete(&pwq->wq->first_flusher->done);
8864b4e5
TH
1224out_put:
1225 put_pwq(pwq);
bf4ede01
TH
1226}
1227
36e227d2 1228/**
bbb68dfa 1229 * try_to_grab_pending - steal work item from worklist and disable irq
36e227d2
TH
1230 * @work: work item to steal
1231 * @is_dwork: @work is a delayed_work
bbb68dfa 1232 * @flags: place to store irq state
36e227d2
TH
1233 *
1234 * Try to grab PENDING bit of @work. This function can handle @work in any
d185af30 1235 * stable state - idle, on timer or on worklist.
36e227d2 1236 *
d185af30 1237 * Return:
3eb6b31b
MCC
1238 *
1239 * ======== ================================================================
36e227d2
TH
1240 * 1 if @work was pending and we successfully stole PENDING
1241 * 0 if @work was idle and we claimed PENDING
1242 * -EAGAIN if PENDING couldn't be grabbed at the moment, safe to busy-retry
bbb68dfa
TH
1243 * -ENOENT if someone else is canceling @work, this state may persist
1244 * for arbitrarily long
3eb6b31b 1245 * ======== ================================================================
36e227d2 1246 *
d185af30 1247 * Note:
bbb68dfa 1248 * On >= 0 return, the caller owns @work's PENDING bit. To avoid getting
e0aecdd8
TH
1249 * interrupted while holding PENDING and @work off queue, irq must be
1250 * disabled on entry. This, combined with delayed_work->timer being
1251 * irqsafe, ensures that we return -EAGAIN for finite short period of time.
bbb68dfa
TH
1252 *
1253 * On successful return, >= 0, irq is disabled and the caller is
1254 * responsible for releasing it using local_irq_restore(*@flags).
1255 *
e0aecdd8 1256 * This function is safe to call from any context including IRQ handler.
bf4ede01 1257 */
bbb68dfa
TH
1258static int try_to_grab_pending(struct work_struct *work, bool is_dwork,
1259 unsigned long *flags)
bf4ede01 1260{
d565ed63 1261 struct worker_pool *pool;
112202d9 1262 struct pool_workqueue *pwq;
bf4ede01 1263
bbb68dfa
TH
1264 local_irq_save(*flags);
1265
36e227d2
TH
1266 /* try to steal the timer if it exists */
1267 if (is_dwork) {
1268 struct delayed_work *dwork = to_delayed_work(work);
1269
e0aecdd8
TH
1270 /*
1271 * dwork->timer is irqsafe. If del_timer() fails, it's
1272 * guaranteed that the timer is not queued anywhere and not
1273 * running on the local CPU.
1274 */
36e227d2
TH
1275 if (likely(del_timer(&dwork->timer)))
1276 return 1;
1277 }
1278
1279 /* try to claim PENDING the normal way */
bf4ede01
TH
1280 if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work)))
1281 return 0;
1282
24acfb71 1283 rcu_read_lock();
bf4ede01
TH
1284 /*
1285 * The queueing is in progress, or it is already queued. Try to
1286 * steal it from ->worklist without clearing WORK_STRUCT_PENDING.
1287 */
d565ed63
TH
1288 pool = get_work_pool(work);
1289 if (!pool)
bbb68dfa 1290 goto fail;
bf4ede01 1291
a9b8a985 1292 raw_spin_lock(&pool->lock);
0b3dae68 1293 /*
112202d9
TH
1294 * work->data is guaranteed to point to pwq only while the work
1295 * item is queued on pwq->wq, and both updating work->data to point
1296 * to pwq on queueing and to pool on dequeueing are done under
1297 * pwq->pool->lock. This in turn guarantees that, if work->data
1298 * points to pwq which is associated with a locked pool, the work
0b3dae68
LJ
1299 * item is currently queued on that pool.
1300 */
112202d9
TH
1301 pwq = get_work_pwq(work);
1302 if (pwq && pwq->pool == pool) {
16062836
TH
1303 debug_work_deactivate(work);
1304
1305 /*
018f3a13
LJ
1306 * A cancelable inactive work item must be in the
1307 * pwq->inactive_works since a queued barrier can't be
1308 * canceled (see the comments in insert_wq_barrier()).
1309 *
f97a4a1a 1310 * An inactive work item cannot be grabbed directly because
d812796e 1311 * it might have linked barrier work items which, if left
f97a4a1a 1312 * on the inactive_works list, will confuse pwq->nr_active
16062836
TH
1313 * management later on and cause stall. Make sure the work
1314 * item is activated before grabbing.
1315 */
f97a4a1a
LJ
1316 if (*work_data_bits(work) & WORK_STRUCT_INACTIVE)
1317 pwq_activate_inactive_work(work);
16062836
TH
1318
1319 list_del_init(&work->entry);
c4560c2c 1320 pwq_dec_nr_in_flight(pwq, *work_data_bits(work));
16062836 1321
112202d9 1322 /* work->data points to pwq iff queued, point to pool */
16062836
TH
1323 set_work_pool_and_keep_pending(work, pool->id);
1324
a9b8a985 1325 raw_spin_unlock(&pool->lock);
24acfb71 1326 rcu_read_unlock();
16062836 1327 return 1;
bf4ede01 1328 }
a9b8a985 1329 raw_spin_unlock(&pool->lock);
bbb68dfa 1330fail:
24acfb71 1331 rcu_read_unlock();
bbb68dfa
TH
1332 local_irq_restore(*flags);
1333 if (work_is_canceling(work))
1334 return -ENOENT;
1335 cpu_relax();
36e227d2 1336 return -EAGAIN;
bf4ede01
TH
1337}
1338
4690c4ab 1339/**
706026c2 1340 * insert_work - insert a work into a pool
112202d9 1341 * @pwq: pwq @work belongs to
4690c4ab
TH
1342 * @work: work to insert
1343 * @head: insertion point
1344 * @extra_flags: extra WORK_STRUCT_* flags to set
1345 *
112202d9 1346 * Insert @work which belongs to @pwq after @head. @extra_flags is or'd to
706026c2 1347 * work_struct flags.
4690c4ab
TH
1348 *
1349 * CONTEXT:
a9b8a985 1350 * raw_spin_lock_irq(pool->lock).
4690c4ab 1351 */
112202d9
TH
1352static void insert_work(struct pool_workqueue *pwq, struct work_struct *work,
1353 struct list_head *head, unsigned int extra_flags)
b89deed3 1354{
112202d9 1355 struct worker_pool *pool = pwq->pool;
e22bee78 1356
e89a85d6 1357 /* record the work call stack in order to print it in KASAN reports */
f70da745 1358 kasan_record_aux_stack_noalloc(work);
e89a85d6 1359
4690c4ab 1360 /* we own @work, set data and link */
112202d9 1361 set_work_pwq(work, pwq, extra_flags);
1a4d9b0a 1362 list_add_tail(&work->entry, head);
8864b4e5 1363 get_pwq(pwq);
e22bee78 1364
63d95a91
TH
1365 if (__need_more_worker(pool))
1366 wake_up_worker(pool);
b89deed3
ON
1367}
1368
c8efcc25
TH
1369/*
1370 * Test whether @work is being queued from another work executing on the
8d03ecfe 1371 * same workqueue.
c8efcc25
TH
1372 */
1373static bool is_chained_work(struct workqueue_struct *wq)
1374{
8d03ecfe
TH
1375 struct worker *worker;
1376
1377 worker = current_wq_worker();
1378 /*
bf393fd4 1379 * Return %true iff I'm a worker executing a work item on @wq. If
8d03ecfe
TH
1380 * I'm @worker, it's safe to dereference it without locking.
1381 */
112202d9 1382 return worker && worker->current_pwq->wq == wq;
c8efcc25
TH
1383}
1384
ef557180
MG
1385/*
1386 * When queueing an unbound work item to a wq, prefer local CPU if allowed
1387 * by wq_unbound_cpumask. Otherwise, round robin among the allowed ones to
1388 * avoid perturbing sensitive tasks.
1389 */
1390static int wq_select_unbound_cpu(int cpu)
1391{
f303fccb 1392 static bool printed_dbg_warning;
ef557180
MG
1393 int new_cpu;
1394
f303fccb
TH
1395 if (likely(!wq_debug_force_rr_cpu)) {
1396 if (cpumask_test_cpu(cpu, wq_unbound_cpumask))
1397 return cpu;
1398 } else if (!printed_dbg_warning) {
1399 pr_warn("workqueue: round-robin CPU selection forced, expect performance impact\n");
1400 printed_dbg_warning = true;
1401 }
1402
ef557180
MG
1403 if (cpumask_empty(wq_unbound_cpumask))
1404 return cpu;
1405
1406 new_cpu = __this_cpu_read(wq_rr_cpu_last);
1407 new_cpu = cpumask_next_and(new_cpu, wq_unbound_cpumask, cpu_online_mask);
1408 if (unlikely(new_cpu >= nr_cpu_ids)) {
1409 new_cpu = cpumask_first_and(wq_unbound_cpumask, cpu_online_mask);
1410 if (unlikely(new_cpu >= nr_cpu_ids))
1411 return cpu;
1412 }
1413 __this_cpu_write(wq_rr_cpu_last, new_cpu);
1414
1415 return new_cpu;
1416}
1417
d84ff051 1418static void __queue_work(int cpu, struct workqueue_struct *wq,
1da177e4
LT
1419 struct work_struct *work)
1420{
112202d9 1421 struct pool_workqueue *pwq;
c9178087 1422 struct worker_pool *last_pool;
1e19ffc6 1423 struct list_head *worklist;
8a2e8e5d 1424 unsigned int work_flags;
b75cac93 1425 unsigned int req_cpu = cpu;
8930caba
TH
1426
1427 /*
1428 * While a work item is PENDING && off queue, a task trying to
1429 * steal the PENDING will busy-loop waiting for it to either get
1430 * queued or lose PENDING. Grabbing PENDING and queueing should
1431 * happen with IRQ disabled.
1432 */
8e8eb730 1433 lockdep_assert_irqs_disabled();
1da177e4 1434
1e19ffc6 1435
9ef28a73 1436 /* if draining, only works from the same workqueue are allowed */
618b01eb 1437 if (unlikely(wq->flags & __WQ_DRAINING) &&
c8efcc25 1438 WARN_ON_ONCE(!is_chained_work(wq)))
e41e704b 1439 return;
24acfb71 1440 rcu_read_lock();
9e8cd2f5 1441retry:
c9178087 1442 /* pwq which will be used unless @work is executing elsewhere */
aa202f1f
HD
1443 if (wq->flags & WQ_UNBOUND) {
1444 if (req_cpu == WORK_CPU_UNBOUND)
1445 cpu = wq_select_unbound_cpu(raw_smp_processor_id());
df2d5ae4 1446 pwq = unbound_pwq_by_node(wq, cpu_to_node(cpu));
aa202f1f
HD
1447 } else {
1448 if (req_cpu == WORK_CPU_UNBOUND)
1449 cpu = raw_smp_processor_id();
1450 pwq = per_cpu_ptr(wq->cpu_pwqs, cpu);
1451 }
dbf2576e 1452
c9178087
TH
1453 /*
1454 * If @work was previously on a different pool, it might still be
1455 * running there, in which case the work needs to be queued on that
1456 * pool to guarantee non-reentrancy.
1457 */
1458 last_pool = get_work_pool(work);
1459 if (last_pool && last_pool != pwq->pool) {
1460 struct worker *worker;
18aa9eff 1461
a9b8a985 1462 raw_spin_lock(&last_pool->lock);
18aa9eff 1463
c9178087 1464 worker = find_worker_executing_work(last_pool, work);
18aa9eff 1465
c9178087
TH
1466 if (worker && worker->current_pwq->wq == wq) {
1467 pwq = worker->current_pwq;
8930caba 1468 } else {
c9178087 1469 /* meh... not running there, queue here */
a9b8a985
SAS
1470 raw_spin_unlock(&last_pool->lock);
1471 raw_spin_lock(&pwq->pool->lock);
8930caba 1472 }
f3421797 1473 } else {
a9b8a985 1474 raw_spin_lock(&pwq->pool->lock);
502ca9d8
TH
1475 }
1476
9e8cd2f5
TH
1477 /*
1478 * pwq is determined and locked. For unbound pools, we could have
1479 * raced with pwq release and it could already be dead. If its
1480 * refcnt is zero, repeat pwq selection. Note that pwqs never die
df2d5ae4
TH
1481 * without another pwq replacing it in the numa_pwq_tbl or while
1482 * work items are executing on it, so the retrying is guaranteed to
9e8cd2f5
TH
1483 * make forward-progress.
1484 */
1485 if (unlikely(!pwq->refcnt)) {
1486 if (wq->flags & WQ_UNBOUND) {
a9b8a985 1487 raw_spin_unlock(&pwq->pool->lock);
9e8cd2f5
TH
1488 cpu_relax();
1489 goto retry;
1490 }
1491 /* oops */
1492 WARN_ONCE(true, "workqueue: per-cpu pwq for %s on cpu%d has 0 refcnt",
1493 wq->name, cpu);
1494 }
1495
112202d9
TH
1496 /* pwq determined, queue */
1497 trace_workqueue_queue_work(req_cpu, pwq, work);
502ca9d8 1498
24acfb71
TG
1499 if (WARN_ON(!list_empty(&work->entry)))
1500 goto out;
1e19ffc6 1501
112202d9
TH
1502 pwq->nr_in_flight[pwq->work_color]++;
1503 work_flags = work_color_to_flags(pwq->work_color);
1e19ffc6 1504
112202d9 1505 if (likely(pwq->nr_active < pwq->max_active)) {
cdadf009 1506 trace_workqueue_activate_work(work);
112202d9
TH
1507 pwq->nr_active++;
1508 worklist = &pwq->pool->worklist;
82607adc
TH
1509 if (list_empty(worklist))
1510 pwq->pool->watchdog_ts = jiffies;
8a2e8e5d 1511 } else {
f97a4a1a
LJ
1512 work_flags |= WORK_STRUCT_INACTIVE;
1513 worklist = &pwq->inactive_works;
8a2e8e5d 1514 }
1e19ffc6 1515
0687c66b 1516 debug_work_activate(work);
112202d9 1517 insert_work(pwq, work, worklist, work_flags);
1e19ffc6 1518
24acfb71 1519out:
a9b8a985 1520 raw_spin_unlock(&pwq->pool->lock);
24acfb71 1521 rcu_read_unlock();
1da177e4
LT
1522}
1523
0fcb78c2 1524/**
c1a220e7
ZR
1525 * queue_work_on - queue work on specific cpu
1526 * @cpu: CPU number to execute work on
0fcb78c2
REB
1527 * @wq: workqueue to use
1528 * @work: work to queue
1529 *
c1a220e7 1530 * We queue the work to a specific CPU, the caller must ensure it
443378f0
PM
1531 * can't go away. Callers that fail to ensure that the specified
1532 * CPU cannot go away will execute on a randomly chosen CPU.
d185af30
YB
1533 *
1534 * Return: %false if @work was already on a queue, %true otherwise.
1da177e4 1535 */
d4283e93
TH
1536bool queue_work_on(int cpu, struct workqueue_struct *wq,
1537 struct work_struct *work)
1da177e4 1538{
d4283e93 1539 bool ret = false;
8930caba 1540 unsigned long flags;
ef1ca236 1541
8930caba 1542 local_irq_save(flags);
c1a220e7 1543
22df02bb 1544 if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work))) {
4690c4ab 1545 __queue_work(cpu, wq, work);
d4283e93 1546 ret = true;
c1a220e7 1547 }
ef1ca236 1548
8930caba 1549 local_irq_restore(flags);
1da177e4
LT
1550 return ret;
1551}
ad7b1f84 1552EXPORT_SYMBOL(queue_work_on);
1da177e4 1553
8204e0c1
AD
1554/**
1555 * workqueue_select_cpu_near - Select a CPU based on NUMA node
1556 * @node: NUMA node ID that we want to select a CPU from
1557 *
1558 * This function will attempt to find a "random" cpu available on a given
1559 * node. If there are no CPUs available on the given node it will return
1560 * WORK_CPU_UNBOUND indicating that we should just schedule to any
1561 * available CPU if we need to schedule this work.
1562 */
1563static int workqueue_select_cpu_near(int node)
1564{
1565 int cpu;
1566
1567 /* No point in doing this if NUMA isn't enabled for workqueues */
1568 if (!wq_numa_enabled)
1569 return WORK_CPU_UNBOUND;
1570
1571 /* Delay binding to CPU if node is not valid or online */
1572 if (node < 0 || node >= MAX_NUMNODES || !node_online(node))
1573 return WORK_CPU_UNBOUND;
1574
1575 /* Use local node/cpu if we are already there */
1576 cpu = raw_smp_processor_id();
1577 if (node == cpu_to_node(cpu))
1578 return cpu;
1579
1580 /* Use "random" otherwise know as "first" online CPU of node */
1581 cpu = cpumask_any_and(cpumask_of_node(node), cpu_online_mask);
1582
1583 /* If CPU is valid return that, otherwise just defer */
1584 return cpu < nr_cpu_ids ? cpu : WORK_CPU_UNBOUND;
1585}
1586
1587/**
1588 * queue_work_node - queue work on a "random" cpu for a given NUMA node
1589 * @node: NUMA node that we are targeting the work for
1590 * @wq: workqueue to use
1591 * @work: work to queue
1592 *
1593 * We queue the work to a "random" CPU within a given NUMA node. The basic
1594 * idea here is to provide a way to somehow associate work with a given
1595 * NUMA node.
1596 *
1597 * This function will only make a best effort attempt at getting this onto
1598 * the right NUMA node. If no node is requested or the requested node is
1599 * offline then we just fall back to standard queue_work behavior.
1600 *
1601 * Currently the "random" CPU ends up being the first available CPU in the
1602 * intersection of cpu_online_mask and the cpumask of the node, unless we
1603 * are running on the node. In that case we just use the current CPU.
1604 *
1605 * Return: %false if @work was already on a queue, %true otherwise.
1606 */
1607bool queue_work_node(int node, struct workqueue_struct *wq,
1608 struct work_struct *work)
1609{
1610 unsigned long flags;
1611 bool ret = false;
1612
1613 /*
1614 * This current implementation is specific to unbound workqueues.
1615 * Specifically we only return the first available CPU for a given
1616 * node instead of cycling through individual CPUs within the node.
1617 *
1618 * If this is used with a per-cpu workqueue then the logic in
1619 * workqueue_select_cpu_near would need to be updated to allow for
1620 * some round robin type logic.
1621 */
1622 WARN_ON_ONCE(!(wq->flags & WQ_UNBOUND));
1623
1624 local_irq_save(flags);
1625
1626 if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work))) {
1627 int cpu = workqueue_select_cpu_near(node);
1628
1629 __queue_work(cpu, wq, work);
1630 ret = true;
1631 }
1632
1633 local_irq_restore(flags);
1634 return ret;
1635}
1636EXPORT_SYMBOL_GPL(queue_work_node);
1637
8c20feb6 1638void delayed_work_timer_fn(struct timer_list *t)
1da177e4 1639{
8c20feb6 1640 struct delayed_work *dwork = from_timer(dwork, t, timer);
1da177e4 1641
e0aecdd8 1642 /* should have been called from irqsafe timer with irq already off */
60c057bc 1643 __queue_work(dwork->cpu, dwork->wq, &dwork->work);
1da177e4 1644}
1438ade5 1645EXPORT_SYMBOL(delayed_work_timer_fn);
1da177e4 1646
7beb2edf
TH
1647static void __queue_delayed_work(int cpu, struct workqueue_struct *wq,
1648 struct delayed_work *dwork, unsigned long delay)
1da177e4 1649{
7beb2edf
TH
1650 struct timer_list *timer = &dwork->timer;
1651 struct work_struct *work = &dwork->work;
7beb2edf 1652
637fdbae 1653 WARN_ON_ONCE(!wq);
4b243563 1654 WARN_ON_ONCE(timer->function != delayed_work_timer_fn);
fc4b514f
TH
1655 WARN_ON_ONCE(timer_pending(timer));
1656 WARN_ON_ONCE(!list_empty(&work->entry));
7beb2edf 1657
8852aac2
TH
1658 /*
1659 * If @delay is 0, queue @dwork->work immediately. This is for
1660 * both optimization and correctness. The earliest @timer can
1661 * expire is on the closest next tick and delayed_work users depend
1662 * on that there's no such delay when @delay is 0.
1663 */
1664 if (!delay) {
1665 __queue_work(cpu, wq, &dwork->work);
1666 return;
1667 }
1668
60c057bc 1669 dwork->wq = wq;
1265057f 1670 dwork->cpu = cpu;
7beb2edf
TH
1671 timer->expires = jiffies + delay;
1672
041bd12e
TH
1673 if (unlikely(cpu != WORK_CPU_UNBOUND))
1674 add_timer_on(timer, cpu);
1675 else
1676 add_timer(timer);
1da177e4
LT
1677}
1678
0fcb78c2
REB
1679/**
1680 * queue_delayed_work_on - queue work on specific CPU after delay
1681 * @cpu: CPU number to execute work on
1682 * @wq: workqueue to use
af9997e4 1683 * @dwork: work to queue
0fcb78c2
REB
1684 * @delay: number of jiffies to wait before queueing
1685 *
d185af30 1686 * Return: %false if @work was already on a queue, %true otherwise. If
715f1300
TH
1687 * @delay is zero and @dwork is idle, it will be scheduled for immediate
1688 * execution.
0fcb78c2 1689 */
d4283e93
TH
1690bool queue_delayed_work_on(int cpu, struct workqueue_struct *wq,
1691 struct delayed_work *dwork, unsigned long delay)
7a6bc1cd 1692{
52bad64d 1693 struct work_struct *work = &dwork->work;
d4283e93 1694 bool ret = false;
8930caba 1695 unsigned long flags;
7a6bc1cd 1696
8930caba
TH
1697 /* read the comment in __queue_work() */
1698 local_irq_save(flags);
7a6bc1cd 1699
22df02bb 1700 if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work))) {
7beb2edf 1701 __queue_delayed_work(cpu, wq, dwork, delay);
d4283e93 1702 ret = true;
7a6bc1cd 1703 }
8a3e77cc 1704
8930caba 1705 local_irq_restore(flags);
7a6bc1cd
VP
1706 return ret;
1707}
ad7b1f84 1708EXPORT_SYMBOL(queue_delayed_work_on);
c7fc77f7 1709
8376fe22
TH
1710/**
1711 * mod_delayed_work_on - modify delay of or queue a delayed work on specific CPU
1712 * @cpu: CPU number to execute work on
1713 * @wq: workqueue to use
1714 * @dwork: work to queue
1715 * @delay: number of jiffies to wait before queueing
1716 *
1717 * If @dwork is idle, equivalent to queue_delayed_work_on(); otherwise,
1718 * modify @dwork's timer so that it expires after @delay. If @delay is
1719 * zero, @work is guaranteed to be scheduled immediately regardless of its
1720 * current state.
1721 *
d185af30 1722 * Return: %false if @dwork was idle and queued, %true if @dwork was
8376fe22
TH
1723 * pending and its timer was modified.
1724 *
e0aecdd8 1725 * This function is safe to call from any context including IRQ handler.
8376fe22
TH
1726 * See try_to_grab_pending() for details.
1727 */
1728bool mod_delayed_work_on(int cpu, struct workqueue_struct *wq,
1729 struct delayed_work *dwork, unsigned long delay)
1730{
1731 unsigned long flags;
1732 int ret;
c7fc77f7 1733
8376fe22
TH
1734 do {
1735 ret = try_to_grab_pending(&dwork->work, true, &flags);
1736 } while (unlikely(ret == -EAGAIN));
63bc0362 1737
8376fe22
TH
1738 if (likely(ret >= 0)) {
1739 __queue_delayed_work(cpu, wq, dwork, delay);
1740 local_irq_restore(flags);
7a6bc1cd 1741 }
8376fe22
TH
1742
1743 /* -ENOENT from try_to_grab_pending() becomes %true */
7a6bc1cd
VP
1744 return ret;
1745}
8376fe22
TH
1746EXPORT_SYMBOL_GPL(mod_delayed_work_on);
1747
05f0fe6b
TH
1748static void rcu_work_rcufn(struct rcu_head *rcu)
1749{
1750 struct rcu_work *rwork = container_of(rcu, struct rcu_work, rcu);
1751
1752 /* read the comment in __queue_work() */
1753 local_irq_disable();
1754 __queue_work(WORK_CPU_UNBOUND, rwork->wq, &rwork->work);
1755 local_irq_enable();
1756}
1757
1758/**
1759 * queue_rcu_work - queue work after a RCU grace period
1760 * @wq: workqueue to use
1761 * @rwork: work to queue
1762 *
1763 * Return: %false if @rwork was already pending, %true otherwise. Note
1764 * that a full RCU grace period is guaranteed only after a %true return.
bf393fd4 1765 * While @rwork is guaranteed to be executed after a %false return, the
05f0fe6b
TH
1766 * execution may happen before a full RCU grace period has passed.
1767 */
1768bool queue_rcu_work(struct workqueue_struct *wq, struct rcu_work *rwork)
1769{
1770 struct work_struct *work = &rwork->work;
1771
1772 if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work))) {
1773 rwork->wq = wq;
1774 call_rcu(&rwork->rcu, rcu_work_rcufn);
1775 return true;
1776 }
1777
1778 return false;
1779}
1780EXPORT_SYMBOL(queue_rcu_work);
1781
c8e55f36
TH
1782/**
1783 * worker_enter_idle - enter idle state
1784 * @worker: worker which is entering idle state
1785 *
1786 * @worker is entering idle state. Update stats and idle timer if
1787 * necessary.
1788 *
1789 * LOCKING:
a9b8a985 1790 * raw_spin_lock_irq(pool->lock).
c8e55f36
TH
1791 */
1792static void worker_enter_idle(struct worker *worker)
1da177e4 1793{
bd7bdd43 1794 struct worker_pool *pool = worker->pool;
c8e55f36 1795
6183c009
TH
1796 if (WARN_ON_ONCE(worker->flags & WORKER_IDLE) ||
1797 WARN_ON_ONCE(!list_empty(&worker->entry) &&
1798 (worker->hentry.next || worker->hentry.pprev)))
1799 return;
c8e55f36 1800
051e1850 1801 /* can't use worker_set_flags(), also called from create_worker() */
cb444766 1802 worker->flags |= WORKER_IDLE;
bd7bdd43 1803 pool->nr_idle++;
e22bee78 1804 worker->last_active = jiffies;
c8e55f36
TH
1805
1806 /* idle_list is LIFO */
bd7bdd43 1807 list_add(&worker->entry, &pool->idle_list);
db7bccf4 1808
628c78e7
TH
1809 if (too_many_workers(pool) && !timer_pending(&pool->idle_timer))
1810 mod_timer(&pool->idle_timer, jiffies + IDLE_WORKER_TIMEOUT);
cb444766 1811
989442d7 1812 /* Sanity check nr_running. */
bc35f7ef 1813 WARN_ON_ONCE(pool->nr_workers == pool->nr_idle && pool->nr_running);
c8e55f36
TH
1814}
1815
1816/**
1817 * worker_leave_idle - leave idle state
1818 * @worker: worker which is leaving idle state
1819 *
1820 * @worker is leaving idle state. Update stats.
1821 *
1822 * LOCKING:
a9b8a985 1823 * raw_spin_lock_irq(pool->lock).
c8e55f36
TH
1824 */
1825static void worker_leave_idle(struct worker *worker)
1826{
bd7bdd43 1827 struct worker_pool *pool = worker->pool;
c8e55f36 1828
6183c009
TH
1829 if (WARN_ON_ONCE(!(worker->flags & WORKER_IDLE)))
1830 return;
d302f017 1831 worker_clr_flags(worker, WORKER_IDLE);
bd7bdd43 1832 pool->nr_idle--;
c8e55f36
TH
1833 list_del_init(&worker->entry);
1834}
1835
f7537df5 1836static struct worker *alloc_worker(int node)
c34056a3
TH
1837{
1838 struct worker *worker;
1839
f7537df5 1840 worker = kzalloc_node(sizeof(*worker), GFP_KERNEL, node);
c8e55f36
TH
1841 if (worker) {
1842 INIT_LIST_HEAD(&worker->entry);
affee4b2 1843 INIT_LIST_HEAD(&worker->scheduled);
da028469 1844 INIT_LIST_HEAD(&worker->node);
e22bee78
TH
1845 /* on creation a worker is in !idle && prep state */
1846 worker->flags = WORKER_PREP;
c8e55f36 1847 }
c34056a3
TH
1848 return worker;
1849}
1850
4736cbf7
LJ
1851/**
1852 * worker_attach_to_pool() - attach a worker to a pool
1853 * @worker: worker to be attached
1854 * @pool: the target pool
1855 *
1856 * Attach @worker to @pool. Once attached, the %WORKER_UNBOUND flag and
1857 * cpu-binding of @worker are kept coordinated with the pool across
1858 * cpu-[un]hotplugs.
1859 */
1860static void worker_attach_to_pool(struct worker *worker,
1861 struct worker_pool *pool)
1862{
1258fae7 1863 mutex_lock(&wq_pool_attach_mutex);
4736cbf7 1864
4736cbf7 1865 /*
1258fae7
TH
1866 * The wq_pool_attach_mutex ensures %POOL_DISASSOCIATED remains
1867 * stable across this function. See the comments above the flag
1868 * definition for details.
4736cbf7
LJ
1869 */
1870 if (pool->flags & POOL_DISASSOCIATED)
1871 worker->flags |= WORKER_UNBOUND;
5c25b5ff
PZ
1872 else
1873 kthread_set_per_cpu(worker->task, pool->cpu);
4736cbf7 1874
640f17c8
PZ
1875 if (worker->rescue_wq)
1876 set_cpus_allowed_ptr(worker->task, pool->attrs->cpumask);
1877
4736cbf7 1878 list_add_tail(&worker->node, &pool->workers);
a2d812a2 1879 worker->pool = pool;
4736cbf7 1880
1258fae7 1881 mutex_unlock(&wq_pool_attach_mutex);
4736cbf7
LJ
1882}
1883
60f5a4bc
LJ
1884/**
1885 * worker_detach_from_pool() - detach a worker from its pool
1886 * @worker: worker which is attached to its pool
60f5a4bc 1887 *
4736cbf7
LJ
1888 * Undo the attaching which had been done in worker_attach_to_pool(). The
1889 * caller worker shouldn't access to the pool after detached except it has
1890 * other reference to the pool.
60f5a4bc 1891 */
a2d812a2 1892static void worker_detach_from_pool(struct worker *worker)
60f5a4bc 1893{
a2d812a2 1894 struct worker_pool *pool = worker->pool;
60f5a4bc
LJ
1895 struct completion *detach_completion = NULL;
1896
1258fae7 1897 mutex_lock(&wq_pool_attach_mutex);
a2d812a2 1898
5c25b5ff 1899 kthread_set_per_cpu(worker->task, -1);
da028469 1900 list_del(&worker->node);
a2d812a2
TH
1901 worker->pool = NULL;
1902
da028469 1903 if (list_empty(&pool->workers))
60f5a4bc 1904 detach_completion = pool->detach_completion;
1258fae7 1905 mutex_unlock(&wq_pool_attach_mutex);
60f5a4bc 1906
b62c0751
LJ
1907 /* clear leftover flags without pool->lock after it is detached */
1908 worker->flags &= ~(WORKER_UNBOUND | WORKER_REBOUND);
1909
60f5a4bc
LJ
1910 if (detach_completion)
1911 complete(detach_completion);
1912}
1913
c34056a3
TH
1914/**
1915 * create_worker - create a new workqueue worker
63d95a91 1916 * @pool: pool the new worker will belong to
c34056a3 1917 *
051e1850 1918 * Create and start a new worker which is attached to @pool.
c34056a3
TH
1919 *
1920 * CONTEXT:
1921 * Might sleep. Does GFP_KERNEL allocations.
1922 *
d185af30 1923 * Return:
c34056a3
TH
1924 * Pointer to the newly created worker.
1925 */
bc2ae0f5 1926static struct worker *create_worker(struct worker_pool *pool)
c34056a3 1927{
e441b56f
ZL
1928 struct worker *worker;
1929 int id;
e3c916a4 1930 char id_buf[16];
c34056a3 1931
7cda9aae 1932 /* ID is needed to determine kthread name */
e441b56f 1933 id = ida_alloc(&pool->worker_ida, GFP_KERNEL);
822d8405 1934 if (id < 0)
e441b56f 1935 return NULL;
c34056a3 1936
f7537df5 1937 worker = alloc_worker(pool->node);
c34056a3
TH
1938 if (!worker)
1939 goto fail;
1940
c34056a3
TH
1941 worker->id = id;
1942
29c91e99 1943 if (pool->cpu >= 0)
e3c916a4
TH
1944 snprintf(id_buf, sizeof(id_buf), "%d:%d%s", pool->cpu, id,
1945 pool->attrs->nice < 0 ? "H" : "");
f3421797 1946 else
e3c916a4
TH
1947 snprintf(id_buf, sizeof(id_buf), "u%d:%d", pool->id, id);
1948
f3f90ad4 1949 worker->task = kthread_create_on_node(worker_thread, worker, pool->node,
e3c916a4 1950 "kworker/%s", id_buf);
c34056a3
TH
1951 if (IS_ERR(worker->task))
1952 goto fail;
1953
91151228 1954 set_user_nice(worker->task, pool->attrs->nice);
25834c73 1955 kthread_bind_mask(worker->task, pool->attrs->cpumask);
91151228 1956
da028469 1957 /* successful, attach the worker to the pool */
4736cbf7 1958 worker_attach_to_pool(worker, pool);
822d8405 1959
051e1850 1960 /* start the newly created worker */
a9b8a985 1961 raw_spin_lock_irq(&pool->lock);
051e1850
LJ
1962 worker->pool->nr_workers++;
1963 worker_enter_idle(worker);
1964 wake_up_process(worker->task);
a9b8a985 1965 raw_spin_unlock_irq(&pool->lock);
051e1850 1966
c34056a3 1967 return worker;
822d8405 1968
c34056a3 1969fail:
e441b56f 1970 ida_free(&pool->worker_ida, id);
c34056a3
TH
1971 kfree(worker);
1972 return NULL;
1973}
1974
c34056a3
TH
1975/**
1976 * destroy_worker - destroy a workqueue worker
1977 * @worker: worker to be destroyed
1978 *
73eb7fe7
LJ
1979 * Destroy @worker and adjust @pool stats accordingly. The worker should
1980 * be idle.
c8e55f36
TH
1981 *
1982 * CONTEXT:
a9b8a985 1983 * raw_spin_lock_irq(pool->lock).
c34056a3
TH
1984 */
1985static void destroy_worker(struct worker *worker)
1986{
bd7bdd43 1987 struct worker_pool *pool = worker->pool;
c34056a3 1988
cd549687
TH
1989 lockdep_assert_held(&pool->lock);
1990
c34056a3 1991 /* sanity check frenzy */
6183c009 1992 if (WARN_ON(worker->current_work) ||
73eb7fe7
LJ
1993 WARN_ON(!list_empty(&worker->scheduled)) ||
1994 WARN_ON(!(worker->flags & WORKER_IDLE)))
6183c009 1995 return;
c34056a3 1996
73eb7fe7
LJ
1997 pool->nr_workers--;
1998 pool->nr_idle--;
5bdfff96 1999
c8e55f36 2000 list_del_init(&worker->entry);
cb444766 2001 worker->flags |= WORKER_DIE;
60f5a4bc 2002 wake_up_process(worker->task);
c34056a3
TH
2003}
2004
32a6c723 2005static void idle_worker_timeout(struct timer_list *t)
e22bee78 2006{
32a6c723 2007 struct worker_pool *pool = from_timer(pool, t, idle_timer);
e22bee78 2008
a9b8a985 2009 raw_spin_lock_irq(&pool->lock);
e22bee78 2010
3347fc9f 2011 while (too_many_workers(pool)) {
e22bee78
TH
2012 struct worker *worker;
2013 unsigned long expires;
2014
2015 /* idle_list is kept in LIFO order, check the last one */
63d95a91 2016 worker = list_entry(pool->idle_list.prev, struct worker, entry);
e22bee78
TH
2017 expires = worker->last_active + IDLE_WORKER_TIMEOUT;
2018
3347fc9f 2019 if (time_before(jiffies, expires)) {
63d95a91 2020 mod_timer(&pool->idle_timer, expires);
3347fc9f 2021 break;
d5abe669 2022 }
3347fc9f
LJ
2023
2024 destroy_worker(worker);
e22bee78
TH
2025 }
2026
a9b8a985 2027 raw_spin_unlock_irq(&pool->lock);
e22bee78 2028}
d5abe669 2029
493a1724 2030static void send_mayday(struct work_struct *work)
e22bee78 2031{
112202d9
TH
2032 struct pool_workqueue *pwq = get_work_pwq(work);
2033 struct workqueue_struct *wq = pwq->wq;
493a1724 2034
2e109a28 2035 lockdep_assert_held(&wq_mayday_lock);
e22bee78 2036
493008a8 2037 if (!wq->rescuer)
493a1724 2038 return;
e22bee78
TH
2039
2040 /* mayday mayday mayday */
493a1724 2041 if (list_empty(&pwq->mayday_node)) {
77668c8b
LJ
2042 /*
2043 * If @pwq is for an unbound wq, its base ref may be put at
2044 * any time due to an attribute change. Pin @pwq until the
2045 * rescuer is done with it.
2046 */
2047 get_pwq(pwq);
493a1724 2048 list_add_tail(&pwq->mayday_node, &wq->maydays);
e22bee78 2049 wake_up_process(wq->rescuer->task);
493a1724 2050 }
e22bee78
TH
2051}
2052
32a6c723 2053static void pool_mayday_timeout(struct timer_list *t)
e22bee78 2054{
32a6c723 2055 struct worker_pool *pool = from_timer(pool, t, mayday_timer);
e22bee78
TH
2056 struct work_struct *work;
2057
a9b8a985
SAS
2058 raw_spin_lock_irq(&pool->lock);
2059 raw_spin_lock(&wq_mayday_lock); /* for wq->maydays */
e22bee78 2060
63d95a91 2061 if (need_to_create_worker(pool)) {
e22bee78
TH
2062 /*
2063 * We've been trying to create a new worker but
2064 * haven't been successful. We might be hitting an
2065 * allocation deadlock. Send distress signals to
2066 * rescuers.
2067 */
63d95a91 2068 list_for_each_entry(work, &pool->worklist, entry)
e22bee78 2069 send_mayday(work);
1da177e4 2070 }
e22bee78 2071
a9b8a985
SAS
2072 raw_spin_unlock(&wq_mayday_lock);
2073 raw_spin_unlock_irq(&pool->lock);
e22bee78 2074
63d95a91 2075 mod_timer(&pool->mayday_timer, jiffies + MAYDAY_INTERVAL);
1da177e4
LT
2076}
2077
e22bee78
TH
2078/**
2079 * maybe_create_worker - create a new worker if necessary
63d95a91 2080 * @pool: pool to create a new worker for
e22bee78 2081 *
63d95a91 2082 * Create a new worker for @pool if necessary. @pool is guaranteed to
e22bee78
TH
2083 * have at least one idle worker on return from this function. If
2084 * creating a new worker takes longer than MAYDAY_INTERVAL, mayday is
63d95a91 2085 * sent to all rescuers with works scheduled on @pool to resolve
e22bee78
TH
2086 * possible allocation deadlock.
2087 *
c5aa87bb
TH
2088 * On return, need_to_create_worker() is guaranteed to be %false and
2089 * may_start_working() %true.
e22bee78
TH
2090 *
2091 * LOCKING:
a9b8a985 2092 * raw_spin_lock_irq(pool->lock) which may be released and regrabbed
e22bee78
TH
2093 * multiple times. Does GFP_KERNEL allocations. Called only from
2094 * manager.
e22bee78 2095 */
29187a9e 2096static void maybe_create_worker(struct worker_pool *pool)
d565ed63
TH
2097__releases(&pool->lock)
2098__acquires(&pool->lock)
1da177e4 2099{
e22bee78 2100restart:
a9b8a985 2101 raw_spin_unlock_irq(&pool->lock);
9f9c2364 2102
e22bee78 2103 /* if we don't make progress in MAYDAY_INITIAL_TIMEOUT, call for help */
63d95a91 2104 mod_timer(&pool->mayday_timer, jiffies + MAYDAY_INITIAL_TIMEOUT);
e22bee78
TH
2105
2106 while (true) {
051e1850 2107 if (create_worker(pool) || !need_to_create_worker(pool))
e22bee78 2108 break;
1da177e4 2109
e212f361 2110 schedule_timeout_interruptible(CREATE_COOLDOWN);
9f9c2364 2111
63d95a91 2112 if (!need_to_create_worker(pool))
e22bee78
TH
2113 break;
2114 }
2115
63d95a91 2116 del_timer_sync(&pool->mayday_timer);
a9b8a985 2117 raw_spin_lock_irq(&pool->lock);
051e1850
LJ
2118 /*
2119 * This is necessary even after a new worker was just successfully
2120 * created as @pool->lock was dropped and the new worker might have
2121 * already become busy.
2122 */
63d95a91 2123 if (need_to_create_worker(pool))
e22bee78 2124 goto restart;
e22bee78
TH
2125}
2126
73f53c4a 2127/**
e22bee78
TH
2128 * manage_workers - manage worker pool
2129 * @worker: self
73f53c4a 2130 *
706026c2 2131 * Assume the manager role and manage the worker pool @worker belongs
e22bee78 2132 * to. At any given time, there can be only zero or one manager per
706026c2 2133 * pool. The exclusion is handled automatically by this function.
e22bee78
TH
2134 *
2135 * The caller can safely start processing works on false return. On
2136 * true return, it's guaranteed that need_to_create_worker() is false
2137 * and may_start_working() is true.
73f53c4a
TH
2138 *
2139 * CONTEXT:
a9b8a985 2140 * raw_spin_lock_irq(pool->lock) which may be released and regrabbed
e22bee78
TH
2141 * multiple times. Does GFP_KERNEL allocations.
2142 *
d185af30 2143 * Return:
29187a9e
TH
2144 * %false if the pool doesn't need management and the caller can safely
2145 * start processing works, %true if management function was performed and
2146 * the conditions that the caller verified before calling the function may
2147 * no longer be true.
73f53c4a 2148 */
e22bee78 2149static bool manage_workers(struct worker *worker)
73f53c4a 2150{
63d95a91 2151 struct worker_pool *pool = worker->pool;
73f53c4a 2152
692b4825 2153 if (pool->flags & POOL_MANAGER_ACTIVE)
29187a9e 2154 return false;
692b4825
TH
2155
2156 pool->flags |= POOL_MANAGER_ACTIVE;
2607d7a6 2157 pool->manager = worker;
1e19ffc6 2158
29187a9e 2159 maybe_create_worker(pool);
e22bee78 2160
2607d7a6 2161 pool->manager = NULL;
692b4825 2162 pool->flags &= ~POOL_MANAGER_ACTIVE;
d8bb65ab 2163 rcuwait_wake_up(&manager_wait);
29187a9e 2164 return true;
73f53c4a
TH
2165}
2166
a62428c0
TH
2167/**
2168 * process_one_work - process single work
c34056a3 2169 * @worker: self
a62428c0
TH
2170 * @work: work to process
2171 *
2172 * Process @work. This function contains all the logics necessary to
2173 * process a single work including synchronization against and
2174 * interaction with other workers on the same cpu, queueing and
2175 * flushing. As long as context requirement is met, any worker can
2176 * call this function to process a work.
2177 *
2178 * CONTEXT:
a9b8a985 2179 * raw_spin_lock_irq(pool->lock) which is released and regrabbed.
a62428c0 2180 */
c34056a3 2181static void process_one_work(struct worker *worker, struct work_struct *work)
d565ed63
TH
2182__releases(&pool->lock)
2183__acquires(&pool->lock)
a62428c0 2184{
112202d9 2185 struct pool_workqueue *pwq = get_work_pwq(work);
bd7bdd43 2186 struct worker_pool *pool = worker->pool;
112202d9 2187 bool cpu_intensive = pwq->wq->flags & WQ_CPU_INTENSIVE;
c4560c2c 2188 unsigned long work_data;
7e11629d 2189 struct worker *collision;
a62428c0
TH
2190#ifdef CONFIG_LOCKDEP
2191 /*
2192 * It is permissible to free the struct work_struct from
2193 * inside the function that is called from it, this we need to
2194 * take into account for lockdep too. To avoid bogus "held
2195 * lock freed" warnings as well as problems when looking into
2196 * work->lockdep_map, make a copy and use that here.
2197 */
4d82a1de
PZ
2198 struct lockdep_map lockdep_map;
2199
2200 lockdep_copy_map(&lockdep_map, &work->lockdep_map);
a62428c0 2201#endif
807407c0 2202 /* ensure we're on the correct CPU */
85327af6 2203 WARN_ON_ONCE(!(pool->flags & POOL_DISASSOCIATED) &&
ec22ca5e 2204 raw_smp_processor_id() != pool->cpu);
25511a47 2205
7e11629d
TH
2206 /*
2207 * A single work shouldn't be executed concurrently by
2208 * multiple workers on a single cpu. Check whether anyone is
2209 * already processing the work. If so, defer the work to the
2210 * currently executing one.
2211 */
c9e7cf27 2212 collision = find_worker_executing_work(pool, work);
7e11629d
TH
2213 if (unlikely(collision)) {
2214 move_linked_works(work, &collision->scheduled, NULL);
2215 return;
2216 }
2217
8930caba 2218 /* claim and dequeue */
a62428c0 2219 debug_work_deactivate(work);
c9e7cf27 2220 hash_add(pool->busy_hash, &worker->hentry, (unsigned long)work);
c34056a3 2221 worker->current_work = work;
a2c1c57b 2222 worker->current_func = work->func;
112202d9 2223 worker->current_pwq = pwq;
c4560c2c 2224 work_data = *work_data_bits(work);
d812796e 2225 worker->current_color = get_work_color(work_data);
7a22ad75 2226
8bf89593
TH
2227 /*
2228 * Record wq name for cmdline and debug reporting, may get
2229 * overridden through set_worker_desc().
2230 */
2231 strscpy(worker->desc, pwq->wq->name, WORKER_DESC_LEN);
2232
a62428c0
TH
2233 list_del_init(&work->entry);
2234
fb0e7beb 2235 /*
228f1d00
LJ
2236 * CPU intensive works don't participate in concurrency management.
2237 * They're the scheduler's responsibility. This takes @worker out
2238 * of concurrency management and the next code block will chain
2239 * execution of the pending work items.
fb0e7beb
TH
2240 */
2241 if (unlikely(cpu_intensive))
228f1d00 2242 worker_set_flags(worker, WORKER_CPU_INTENSIVE);
fb0e7beb 2243
974271c4 2244 /*
a489a03e
LJ
2245 * Wake up another worker if necessary. The condition is always
2246 * false for normal per-cpu workers since nr_running would always
2247 * be >= 1 at this point. This is used to chain execution of the
2248 * pending work items for WORKER_NOT_RUNNING workers such as the
228f1d00 2249 * UNBOUND and CPU_INTENSIVE ones.
974271c4 2250 */
a489a03e 2251 if (need_more_worker(pool))
63d95a91 2252 wake_up_worker(pool);
974271c4 2253
8930caba 2254 /*
7c3eed5c 2255 * Record the last pool and clear PENDING which should be the last
d565ed63 2256 * update to @work. Also, do this inside @pool->lock so that
23657bb1
TH
2257 * PENDING and queued state changes happen together while IRQ is
2258 * disabled.
8930caba 2259 */
7c3eed5c 2260 set_work_pool_and_clear_pending(work, pool->id);
a62428c0 2261
a9b8a985 2262 raw_spin_unlock_irq(&pool->lock);
a62428c0 2263
a1d14934 2264 lock_map_acquire(&pwq->wq->lockdep_map);
a62428c0 2265 lock_map_acquire(&lockdep_map);
e6f3faa7 2266 /*
f52be570
PZ
2267 * Strictly speaking we should mark the invariant state without holding
2268 * any locks, that is, before these two lock_map_acquire()'s.
e6f3faa7
PZ
2269 *
2270 * However, that would result in:
2271 *
2272 * A(W1)
2273 * WFC(C)
2274 * A(W1)
2275 * C(C)
2276 *
2277 * Which would create W1->C->W1 dependencies, even though there is no
2278 * actual deadlock possible. There are two solutions, using a
2279 * read-recursive acquire on the work(queue) 'locks', but this will then
f52be570 2280 * hit the lockdep limitation on recursive locks, or simply discard
e6f3faa7
PZ
2281 * these locks.
2282 *
2283 * AFAICT there is no possible deadlock scenario between the
2284 * flush_work() and complete() primitives (except for single-threaded
2285 * workqueues), so hiding them isn't a problem.
2286 */
f52be570 2287 lockdep_invariant_state(true);
e36c886a 2288 trace_workqueue_execute_start(work);
a2c1c57b 2289 worker->current_func(work);
e36c886a
AV
2290 /*
2291 * While we must be careful to not use "work" after this, the trace
2292 * point will only record its address.
2293 */
1c5da0ec 2294 trace_workqueue_execute_end(work, worker->current_func);
a62428c0 2295 lock_map_release(&lockdep_map);
112202d9 2296 lock_map_release(&pwq->wq->lockdep_map);
a62428c0
TH
2297
2298 if (unlikely(in_atomic() || lockdep_depth(current) > 0)) {
044c782c 2299 pr_err("BUG: workqueue leaked lock or atomic: %s/0x%08x/%d\n"
d75f773c 2300 " last function: %ps\n",
a2c1c57b
TH
2301 current->comm, preempt_count(), task_pid_nr(current),
2302 worker->current_func);
a62428c0
TH
2303 debug_show_held_locks(current);
2304 dump_stack();
2305 }
2306
b22ce278 2307 /*
025f50f3 2308 * The following prevents a kworker from hogging CPU on !PREEMPTION
b22ce278
TH
2309 * kernels, where a requeueing work item waiting for something to
2310 * happen could deadlock with stop_machine as such work item could
2311 * indefinitely requeue itself while all other CPUs are trapped in
789cbbec
JL
2312 * stop_machine. At the same time, report a quiescent RCU state so
2313 * the same condition doesn't freeze RCU.
b22ce278 2314 */
a7e6425e 2315 cond_resched();
b22ce278 2316
a9b8a985 2317 raw_spin_lock_irq(&pool->lock);
a62428c0 2318
fb0e7beb
TH
2319 /* clear cpu intensive status */
2320 if (unlikely(cpu_intensive))
2321 worker_clr_flags(worker, WORKER_CPU_INTENSIVE);
2322
1b69ac6b
JW
2323 /* tag the worker for identification in schedule() */
2324 worker->last_func = worker->current_func;
2325
a62428c0 2326 /* we're done with it, release */
42f8570f 2327 hash_del(&worker->hentry);
c34056a3 2328 worker->current_work = NULL;
a2c1c57b 2329 worker->current_func = NULL;
112202d9 2330 worker->current_pwq = NULL;
d812796e 2331 worker->current_color = INT_MAX;
c4560c2c 2332 pwq_dec_nr_in_flight(pwq, work_data);
a62428c0
TH
2333}
2334
affee4b2
TH
2335/**
2336 * process_scheduled_works - process scheduled works
2337 * @worker: self
2338 *
2339 * Process all scheduled works. Please note that the scheduled list
2340 * may change while processing a work, so this function repeatedly
2341 * fetches a work from the top and executes it.
2342 *
2343 * CONTEXT:
a9b8a985 2344 * raw_spin_lock_irq(pool->lock) which may be released and regrabbed
affee4b2
TH
2345 * multiple times.
2346 */
2347static void process_scheduled_works(struct worker *worker)
1da177e4 2348{
affee4b2
TH
2349 while (!list_empty(&worker->scheduled)) {
2350 struct work_struct *work = list_first_entry(&worker->scheduled,
1da177e4 2351 struct work_struct, entry);
c34056a3 2352 process_one_work(worker, work);
1da177e4 2353 }
1da177e4
LT
2354}
2355
197f6acc
TH
2356static void set_pf_worker(bool val)
2357{
2358 mutex_lock(&wq_pool_attach_mutex);
2359 if (val)
2360 current->flags |= PF_WQ_WORKER;
2361 else
2362 current->flags &= ~PF_WQ_WORKER;
2363 mutex_unlock(&wq_pool_attach_mutex);
2364}
2365
4690c4ab
TH
2366/**
2367 * worker_thread - the worker thread function
c34056a3 2368 * @__worker: self
4690c4ab 2369 *
c5aa87bb
TH
2370 * The worker thread function. All workers belong to a worker_pool -
2371 * either a per-cpu one or dynamic unbound one. These workers process all
2372 * work items regardless of their specific target workqueue. The only
2373 * exception is work items which belong to workqueues with a rescuer which
2374 * will be explained in rescuer_thread().
d185af30
YB
2375 *
2376 * Return: 0
4690c4ab 2377 */
c34056a3 2378static int worker_thread(void *__worker)
1da177e4 2379{
c34056a3 2380 struct worker *worker = __worker;
bd7bdd43 2381 struct worker_pool *pool = worker->pool;
1da177e4 2382
e22bee78 2383 /* tell the scheduler that this is a workqueue worker */
197f6acc 2384 set_pf_worker(true);
c8e55f36 2385woke_up:
a9b8a985 2386 raw_spin_lock_irq(&pool->lock);
1da177e4 2387
a9ab775b
TH
2388 /* am I supposed to die? */
2389 if (unlikely(worker->flags & WORKER_DIE)) {
a9b8a985 2390 raw_spin_unlock_irq(&pool->lock);
a9ab775b 2391 WARN_ON_ONCE(!list_empty(&worker->entry));
197f6acc 2392 set_pf_worker(false);
60f5a4bc
LJ
2393
2394 set_task_comm(worker->task, "kworker/dying");
e441b56f 2395 ida_free(&pool->worker_ida, worker->id);
a2d812a2 2396 worker_detach_from_pool(worker);
60f5a4bc 2397 kfree(worker);
a9ab775b 2398 return 0;
c8e55f36 2399 }
affee4b2 2400
c8e55f36 2401 worker_leave_idle(worker);
db7bccf4 2402recheck:
e22bee78 2403 /* no more worker necessary? */
63d95a91 2404 if (!need_more_worker(pool))
e22bee78
TH
2405 goto sleep;
2406
2407 /* do we need to manage? */
63d95a91 2408 if (unlikely(!may_start_working(pool)) && manage_workers(worker))
e22bee78
TH
2409 goto recheck;
2410
c8e55f36
TH
2411 /*
2412 * ->scheduled list can only be filled while a worker is
2413 * preparing to process a work or actually processing it.
2414 * Make sure nobody diddled with it while I was sleeping.
2415 */
6183c009 2416 WARN_ON_ONCE(!list_empty(&worker->scheduled));
c8e55f36 2417
e22bee78 2418 /*
a9ab775b
TH
2419 * Finish PREP stage. We're guaranteed to have at least one idle
2420 * worker or that someone else has already assumed the manager
2421 * role. This is where @worker starts participating in concurrency
2422 * management if applicable and concurrency management is restored
2423 * after being rebound. See rebind_workers() for details.
e22bee78 2424 */
a9ab775b 2425 worker_clr_flags(worker, WORKER_PREP | WORKER_REBOUND);
e22bee78
TH
2426
2427 do {
c8e55f36 2428 struct work_struct *work =
bd7bdd43 2429 list_first_entry(&pool->worklist,
c8e55f36
TH
2430 struct work_struct, entry);
2431
82607adc
TH
2432 pool->watchdog_ts = jiffies;
2433
c8e55f36
TH
2434 if (likely(!(*work_data_bits(work) & WORK_STRUCT_LINKED))) {
2435 /* optimization path, not strictly necessary */
2436 process_one_work(worker, work);
2437 if (unlikely(!list_empty(&worker->scheduled)))
affee4b2 2438 process_scheduled_works(worker);
c8e55f36
TH
2439 } else {
2440 move_linked_works(work, &worker->scheduled, NULL);
2441 process_scheduled_works(worker);
affee4b2 2442 }
63d95a91 2443 } while (keep_working(pool));
e22bee78 2444
228f1d00 2445 worker_set_flags(worker, WORKER_PREP);
d313dd85 2446sleep:
c8e55f36 2447 /*
d565ed63
TH
2448 * pool->lock is held and there's no work to process and no need to
2449 * manage, sleep. Workers are woken up only while holding
2450 * pool->lock or from local cpu, so setting the current state
2451 * before releasing pool->lock is enough to prevent losing any
2452 * event.
c8e55f36
TH
2453 */
2454 worker_enter_idle(worker);
c5a94a61 2455 __set_current_state(TASK_IDLE);
a9b8a985 2456 raw_spin_unlock_irq(&pool->lock);
c8e55f36
TH
2457 schedule();
2458 goto woke_up;
1da177e4
LT
2459}
2460
e22bee78
TH
2461/**
2462 * rescuer_thread - the rescuer thread function
111c225a 2463 * @__rescuer: self
e22bee78
TH
2464 *
2465 * Workqueue rescuer thread function. There's one rescuer for each
493008a8 2466 * workqueue which has WQ_MEM_RECLAIM set.
e22bee78 2467 *
706026c2 2468 * Regular work processing on a pool may block trying to create a new
e22bee78
TH
2469 * worker which uses GFP_KERNEL allocation which has slight chance of
2470 * developing into deadlock if some works currently on the same queue
2471 * need to be processed to satisfy the GFP_KERNEL allocation. This is
2472 * the problem rescuer solves.
2473 *
706026c2
TH
2474 * When such condition is possible, the pool summons rescuers of all
2475 * workqueues which have works queued on the pool and let them process
e22bee78
TH
2476 * those works so that forward progress can be guaranteed.
2477 *
2478 * This should happen rarely.
d185af30
YB
2479 *
2480 * Return: 0
e22bee78 2481 */
111c225a 2482static int rescuer_thread(void *__rescuer)
e22bee78 2483{
111c225a
TH
2484 struct worker *rescuer = __rescuer;
2485 struct workqueue_struct *wq = rescuer->rescue_wq;
e22bee78 2486 struct list_head *scheduled = &rescuer->scheduled;
4d595b86 2487 bool should_stop;
e22bee78
TH
2488
2489 set_user_nice(current, RESCUER_NICE_LEVEL);
111c225a
TH
2490
2491 /*
2492 * Mark rescuer as worker too. As WORKER_PREP is never cleared, it
2493 * doesn't participate in concurrency management.
2494 */
197f6acc 2495 set_pf_worker(true);
e22bee78 2496repeat:
c5a94a61 2497 set_current_state(TASK_IDLE);
e22bee78 2498
4d595b86
LJ
2499 /*
2500 * By the time the rescuer is requested to stop, the workqueue
2501 * shouldn't have any work pending, but @wq->maydays may still have
2502 * pwq(s) queued. This can happen by non-rescuer workers consuming
2503 * all the work items before the rescuer got to them. Go through
2504 * @wq->maydays processing before acting on should_stop so that the
2505 * list is always empty on exit.
2506 */
2507 should_stop = kthread_should_stop();
e22bee78 2508
493a1724 2509 /* see whether any pwq is asking for help */
a9b8a985 2510 raw_spin_lock_irq(&wq_mayday_lock);
493a1724
TH
2511
2512 while (!list_empty(&wq->maydays)) {
2513 struct pool_workqueue *pwq = list_first_entry(&wq->maydays,
2514 struct pool_workqueue, mayday_node);
112202d9 2515 struct worker_pool *pool = pwq->pool;
e22bee78 2516 struct work_struct *work, *n;
82607adc 2517 bool first = true;
e22bee78
TH
2518
2519 __set_current_state(TASK_RUNNING);
493a1724
TH
2520 list_del_init(&pwq->mayday_node);
2521
a9b8a985 2522 raw_spin_unlock_irq(&wq_mayday_lock);
e22bee78 2523
51697d39
LJ
2524 worker_attach_to_pool(rescuer, pool);
2525
a9b8a985 2526 raw_spin_lock_irq(&pool->lock);
e22bee78
TH
2527
2528 /*
2529 * Slurp in all works issued via this workqueue and
2530 * process'em.
2531 */
0479c8c5 2532 WARN_ON_ONCE(!list_empty(scheduled));
82607adc
TH
2533 list_for_each_entry_safe(work, n, &pool->worklist, entry) {
2534 if (get_work_pwq(work) == pwq) {
2535 if (first)
2536 pool->watchdog_ts = jiffies;
e22bee78 2537 move_linked_works(work, scheduled, &n);
82607adc
TH
2538 }
2539 first = false;
2540 }
e22bee78 2541
008847f6
N
2542 if (!list_empty(scheduled)) {
2543 process_scheduled_works(rescuer);
2544
2545 /*
2546 * The above execution of rescued work items could
2547 * have created more to rescue through
f97a4a1a 2548 * pwq_activate_first_inactive() or chained
008847f6
N
2549 * queueing. Let's put @pwq back on mayday list so
2550 * that such back-to-back work items, which may be
2551 * being used to relieve memory pressure, don't
2552 * incur MAYDAY_INTERVAL delay inbetween.
2553 */
4f3f4cf3 2554 if (pwq->nr_active && need_to_create_worker(pool)) {
a9b8a985 2555 raw_spin_lock(&wq_mayday_lock);
e66b39af
TH
2556 /*
2557 * Queue iff we aren't racing destruction
2558 * and somebody else hasn't queued it already.
2559 */
2560 if (wq->rescuer && list_empty(&pwq->mayday_node)) {
2561 get_pwq(pwq);
2562 list_add_tail(&pwq->mayday_node, &wq->maydays);
2563 }
a9b8a985 2564 raw_spin_unlock(&wq_mayday_lock);
008847f6
N
2565 }
2566 }
7576958a 2567
77668c8b
LJ
2568 /*
2569 * Put the reference grabbed by send_mayday(). @pool won't
13b1d625 2570 * go away while we're still attached to it.
77668c8b
LJ
2571 */
2572 put_pwq(pwq);
2573
7576958a 2574 /*
d8ca83e6 2575 * Leave this pool. If need_more_worker() is %true, notify a
7576958a
TH
2576 * regular worker; otherwise, we end up with 0 concurrency
2577 * and stalling the execution.
2578 */
d8ca83e6 2579 if (need_more_worker(pool))
63d95a91 2580 wake_up_worker(pool);
7576958a 2581
a9b8a985 2582 raw_spin_unlock_irq(&pool->lock);
13b1d625 2583
a2d812a2 2584 worker_detach_from_pool(rescuer);
13b1d625 2585
a9b8a985 2586 raw_spin_lock_irq(&wq_mayday_lock);
e22bee78
TH
2587 }
2588
a9b8a985 2589 raw_spin_unlock_irq(&wq_mayday_lock);
493a1724 2590
4d595b86
LJ
2591 if (should_stop) {
2592 __set_current_state(TASK_RUNNING);
197f6acc 2593 set_pf_worker(false);
4d595b86
LJ
2594 return 0;
2595 }
2596
111c225a
TH
2597 /* rescuers should never participate in concurrency management */
2598 WARN_ON_ONCE(!(rescuer->flags & WORKER_NOT_RUNNING));
e22bee78
TH
2599 schedule();
2600 goto repeat;
1da177e4
LT
2601}
2602
fca839c0
TH
2603/**
2604 * check_flush_dependency - check for flush dependency sanity
2605 * @target_wq: workqueue being flushed
2606 * @target_work: work item being flushed (NULL for workqueue flushes)
2607 *
2608 * %current is trying to flush the whole @target_wq or @target_work on it.
2609 * If @target_wq doesn't have %WQ_MEM_RECLAIM, verify that %current is not
2610 * reclaiming memory or running on a workqueue which doesn't have
2611 * %WQ_MEM_RECLAIM as that can break forward-progress guarantee leading to
2612 * a deadlock.
2613 */
2614static void check_flush_dependency(struct workqueue_struct *target_wq,
2615 struct work_struct *target_work)
2616{
2617 work_func_t target_func = target_work ? target_work->func : NULL;
2618 struct worker *worker;
2619
2620 if (target_wq->flags & WQ_MEM_RECLAIM)
2621 return;
2622
2623 worker = current_wq_worker();
2624
2625 WARN_ONCE(current->flags & PF_MEMALLOC,
d75f773c 2626 "workqueue: PF_MEMALLOC task %d(%s) is flushing !WQ_MEM_RECLAIM %s:%ps",
fca839c0 2627 current->pid, current->comm, target_wq->name, target_func);
23d11a58
TH
2628 WARN_ONCE(worker && ((worker->current_pwq->wq->flags &
2629 (WQ_MEM_RECLAIM | __WQ_LEGACY)) == WQ_MEM_RECLAIM),
d75f773c 2630 "workqueue: WQ_MEM_RECLAIM %s:%ps is flushing !WQ_MEM_RECLAIM %s:%ps",
fca839c0
TH
2631 worker->current_pwq->wq->name, worker->current_func,
2632 target_wq->name, target_func);
2633}
2634
fc2e4d70
ON
2635struct wq_barrier {
2636 struct work_struct work;
2637 struct completion done;
2607d7a6 2638 struct task_struct *task; /* purely informational */
fc2e4d70
ON
2639};
2640
2641static void wq_barrier_func(struct work_struct *work)
2642{
2643 struct wq_barrier *barr = container_of(work, struct wq_barrier, work);
2644 complete(&barr->done);
2645}
2646
4690c4ab
TH
2647/**
2648 * insert_wq_barrier - insert a barrier work
112202d9 2649 * @pwq: pwq to insert barrier into
4690c4ab 2650 * @barr: wq_barrier to insert
affee4b2
TH
2651 * @target: target work to attach @barr to
2652 * @worker: worker currently executing @target, NULL if @target is not executing
4690c4ab 2653 *
affee4b2
TH
2654 * @barr is linked to @target such that @barr is completed only after
2655 * @target finishes execution. Please note that the ordering
2656 * guarantee is observed only with respect to @target and on the local
2657 * cpu.
2658 *
2659 * Currently, a queued barrier can't be canceled. This is because
2660 * try_to_grab_pending() can't determine whether the work to be
2661 * grabbed is at the head of the queue and thus can't clear LINKED
2662 * flag of the previous work while there must be a valid next work
2663 * after a work with LINKED flag set.
2664 *
2665 * Note that when @worker is non-NULL, @target may be modified
112202d9 2666 * underneath us, so we can't reliably determine pwq from @target.
4690c4ab
TH
2667 *
2668 * CONTEXT:
a9b8a985 2669 * raw_spin_lock_irq(pool->lock).
4690c4ab 2670 */
112202d9 2671static void insert_wq_barrier(struct pool_workqueue *pwq,
affee4b2
TH
2672 struct wq_barrier *barr,
2673 struct work_struct *target, struct worker *worker)
fc2e4d70 2674{
d812796e
LJ
2675 unsigned int work_flags = 0;
2676 unsigned int work_color;
affee4b2 2677 struct list_head *head;
affee4b2 2678
dc186ad7 2679 /*
d565ed63 2680 * debugobject calls are safe here even with pool->lock locked
dc186ad7
TG
2681 * as we know for sure that this will not trigger any of the
2682 * checks and call back into the fixup functions where we
2683 * might deadlock.
2684 */
ca1cab37 2685 INIT_WORK_ONSTACK(&barr->work, wq_barrier_func);
22df02bb 2686 __set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(&barr->work));
52fa5bc5 2687
fd1a5b04
BP
2688 init_completion_map(&barr->done, &target->lockdep_map);
2689
2607d7a6 2690 barr->task = current;
83c22520 2691
018f3a13
LJ
2692 /* The barrier work item does not participate in pwq->nr_active. */
2693 work_flags |= WORK_STRUCT_INACTIVE;
2694
affee4b2
TH
2695 /*
2696 * If @target is currently being executed, schedule the
2697 * barrier to the worker; otherwise, put it after @target.
2698 */
d812796e 2699 if (worker) {
affee4b2 2700 head = worker->scheduled.next;
d812796e
LJ
2701 work_color = worker->current_color;
2702 } else {
affee4b2
TH
2703 unsigned long *bits = work_data_bits(target);
2704
2705 head = target->entry.next;
2706 /* there can already be other linked works, inherit and set */
d21cece0 2707 work_flags |= *bits & WORK_STRUCT_LINKED;
d812796e 2708 work_color = get_work_color(*bits);
affee4b2
TH
2709 __set_bit(WORK_STRUCT_LINKED_BIT, bits);
2710 }
2711
d812796e
LJ
2712 pwq->nr_in_flight[work_color]++;
2713 work_flags |= work_color_to_flags(work_color);
2714
dc186ad7 2715 debug_work_activate(&barr->work);
d21cece0 2716 insert_work(pwq, &barr->work, head, work_flags);
fc2e4d70
ON
2717}
2718
73f53c4a 2719/**
112202d9 2720 * flush_workqueue_prep_pwqs - prepare pwqs for workqueue flushing
73f53c4a
TH
2721 * @wq: workqueue being flushed
2722 * @flush_color: new flush color, < 0 for no-op
2723 * @work_color: new work color, < 0 for no-op
2724 *
112202d9 2725 * Prepare pwqs for workqueue flushing.
73f53c4a 2726 *
112202d9
TH
2727 * If @flush_color is non-negative, flush_color on all pwqs should be
2728 * -1. If no pwq has in-flight commands at the specified color, all
2729 * pwq->flush_color's stay at -1 and %false is returned. If any pwq
2730 * has in flight commands, its pwq->flush_color is set to
2731 * @flush_color, @wq->nr_pwqs_to_flush is updated accordingly, pwq
73f53c4a
TH
2732 * wakeup logic is armed and %true is returned.
2733 *
2734 * The caller should have initialized @wq->first_flusher prior to
2735 * calling this function with non-negative @flush_color. If
2736 * @flush_color is negative, no flush color update is done and %false
2737 * is returned.
2738 *
112202d9 2739 * If @work_color is non-negative, all pwqs should have the same
73f53c4a
TH
2740 * work_color which is previous to @work_color and all will be
2741 * advanced to @work_color.
2742 *
2743 * CONTEXT:
3c25a55d 2744 * mutex_lock(wq->mutex).
73f53c4a 2745 *
d185af30 2746 * Return:
73f53c4a
TH
2747 * %true if @flush_color >= 0 and there's something to flush. %false
2748 * otherwise.
2749 */
112202d9 2750static bool flush_workqueue_prep_pwqs(struct workqueue_struct *wq,
73f53c4a 2751 int flush_color, int work_color)
1da177e4 2752{
73f53c4a 2753 bool wait = false;
49e3cf44 2754 struct pool_workqueue *pwq;
1da177e4 2755
73f53c4a 2756 if (flush_color >= 0) {
6183c009 2757 WARN_ON_ONCE(atomic_read(&wq->nr_pwqs_to_flush));
112202d9 2758 atomic_set(&wq->nr_pwqs_to_flush, 1);
1da177e4 2759 }
2355b70f 2760
49e3cf44 2761 for_each_pwq(pwq, wq) {
112202d9 2762 struct worker_pool *pool = pwq->pool;
fc2e4d70 2763
a9b8a985 2764 raw_spin_lock_irq(&pool->lock);
83c22520 2765
73f53c4a 2766 if (flush_color >= 0) {
6183c009 2767 WARN_ON_ONCE(pwq->flush_color != -1);
fc2e4d70 2768
112202d9
TH
2769 if (pwq->nr_in_flight[flush_color]) {
2770 pwq->flush_color = flush_color;
2771 atomic_inc(&wq->nr_pwqs_to_flush);
73f53c4a
TH
2772 wait = true;
2773 }
2774 }
1da177e4 2775
73f53c4a 2776 if (work_color >= 0) {
6183c009 2777 WARN_ON_ONCE(work_color != work_next_color(pwq->work_color));
112202d9 2778 pwq->work_color = work_color;
73f53c4a 2779 }
1da177e4 2780
a9b8a985 2781 raw_spin_unlock_irq(&pool->lock);
1da177e4 2782 }
2355b70f 2783
112202d9 2784 if (flush_color >= 0 && atomic_dec_and_test(&wq->nr_pwqs_to_flush))
73f53c4a 2785 complete(&wq->first_flusher->done);
14441960 2786
73f53c4a 2787 return wait;
1da177e4
LT
2788}
2789
0fcb78c2 2790/**
c4f135d6 2791 * __flush_workqueue - ensure that any scheduled work has run to completion.
0fcb78c2 2792 * @wq: workqueue to flush
1da177e4 2793 *
c5aa87bb
TH
2794 * This function sleeps until all work items which were queued on entry
2795 * have finished execution, but it is not livelocked by new incoming ones.
1da177e4 2796 */
c4f135d6 2797void __flush_workqueue(struct workqueue_struct *wq)
1da177e4 2798{
73f53c4a
TH
2799 struct wq_flusher this_flusher = {
2800 .list = LIST_HEAD_INIT(this_flusher.list),
2801 .flush_color = -1,
fd1a5b04 2802 .done = COMPLETION_INITIALIZER_ONSTACK_MAP(this_flusher.done, wq->lockdep_map),
73f53c4a
TH
2803 };
2804 int next_color;
1da177e4 2805
3347fa09
TH
2806 if (WARN_ON(!wq_online))
2807 return;
2808
87915adc
JB
2809 lock_map_acquire(&wq->lockdep_map);
2810 lock_map_release(&wq->lockdep_map);
2811
3c25a55d 2812 mutex_lock(&wq->mutex);
73f53c4a
TH
2813
2814 /*
2815 * Start-to-wait phase
2816 */
2817 next_color = work_next_color(wq->work_color);
2818
2819 if (next_color != wq->flush_color) {
2820 /*
2821 * Color space is not full. The current work_color
2822 * becomes our flush_color and work_color is advanced
2823 * by one.
2824 */
6183c009 2825 WARN_ON_ONCE(!list_empty(&wq->flusher_overflow));
73f53c4a
TH
2826 this_flusher.flush_color = wq->work_color;
2827 wq->work_color = next_color;
2828
2829 if (!wq->first_flusher) {
2830 /* no flush in progress, become the first flusher */
6183c009 2831 WARN_ON_ONCE(wq->flush_color != this_flusher.flush_color);
73f53c4a
TH
2832
2833 wq->first_flusher = &this_flusher;
2834
112202d9 2835 if (!flush_workqueue_prep_pwqs(wq, wq->flush_color,
73f53c4a
TH
2836 wq->work_color)) {
2837 /* nothing to flush, done */
2838 wq->flush_color = next_color;
2839 wq->first_flusher = NULL;
2840 goto out_unlock;
2841 }
2842 } else {
2843 /* wait in queue */
6183c009 2844 WARN_ON_ONCE(wq->flush_color == this_flusher.flush_color);
73f53c4a 2845 list_add_tail(&this_flusher.list, &wq->flusher_queue);
112202d9 2846 flush_workqueue_prep_pwqs(wq, -1, wq->work_color);
73f53c4a
TH
2847 }
2848 } else {
2849 /*
2850 * Oops, color space is full, wait on overflow queue.
2851 * The next flush completion will assign us
2852 * flush_color and transfer to flusher_queue.
2853 */
2854 list_add_tail(&this_flusher.list, &wq->flusher_overflow);
2855 }
2856
fca839c0
TH
2857 check_flush_dependency(wq, NULL);
2858
3c25a55d 2859 mutex_unlock(&wq->mutex);
73f53c4a
TH
2860
2861 wait_for_completion(&this_flusher.done);
2862
2863 /*
2864 * Wake-up-and-cascade phase
2865 *
2866 * First flushers are responsible for cascading flushes and
2867 * handling overflow. Non-first flushers can simply return.
2868 */
00d5d15b 2869 if (READ_ONCE(wq->first_flusher) != &this_flusher)
73f53c4a
TH
2870 return;
2871
3c25a55d 2872 mutex_lock(&wq->mutex);
73f53c4a 2873
4ce48b37
TH
2874 /* we might have raced, check again with mutex held */
2875 if (wq->first_flusher != &this_flusher)
2876 goto out_unlock;
2877
00d5d15b 2878 WRITE_ONCE(wq->first_flusher, NULL);
73f53c4a 2879
6183c009
TH
2880 WARN_ON_ONCE(!list_empty(&this_flusher.list));
2881 WARN_ON_ONCE(wq->flush_color != this_flusher.flush_color);
73f53c4a
TH
2882
2883 while (true) {
2884 struct wq_flusher *next, *tmp;
2885
2886 /* complete all the flushers sharing the current flush color */
2887 list_for_each_entry_safe(next, tmp, &wq->flusher_queue, list) {
2888 if (next->flush_color != wq->flush_color)
2889 break;
2890 list_del_init(&next->list);
2891 complete(&next->done);
2892 }
2893
6183c009
TH
2894 WARN_ON_ONCE(!list_empty(&wq->flusher_overflow) &&
2895 wq->flush_color != work_next_color(wq->work_color));
73f53c4a
TH
2896
2897 /* this flush_color is finished, advance by one */
2898 wq->flush_color = work_next_color(wq->flush_color);
2899
2900 /* one color has been freed, handle overflow queue */
2901 if (!list_empty(&wq->flusher_overflow)) {
2902 /*
2903 * Assign the same color to all overflowed
2904 * flushers, advance work_color and append to
2905 * flusher_queue. This is the start-to-wait
2906 * phase for these overflowed flushers.
2907 */
2908 list_for_each_entry(tmp, &wq->flusher_overflow, list)
2909 tmp->flush_color = wq->work_color;
2910
2911 wq->work_color = work_next_color(wq->work_color);
2912
2913 list_splice_tail_init(&wq->flusher_overflow,
2914 &wq->flusher_queue);
112202d9 2915 flush_workqueue_prep_pwqs(wq, -1, wq->work_color);
73f53c4a
TH
2916 }
2917
2918 if (list_empty(&wq->flusher_queue)) {
6183c009 2919 WARN_ON_ONCE(wq->flush_color != wq->work_color);
73f53c4a
TH
2920 break;
2921 }
2922
2923 /*
2924 * Need to flush more colors. Make the next flusher
112202d9 2925 * the new first flusher and arm pwqs.
73f53c4a 2926 */
6183c009
TH
2927 WARN_ON_ONCE(wq->flush_color == wq->work_color);
2928 WARN_ON_ONCE(wq->flush_color != next->flush_color);
73f53c4a
TH
2929
2930 list_del_init(&next->list);
2931 wq->first_flusher = next;
2932
112202d9 2933 if (flush_workqueue_prep_pwqs(wq, wq->flush_color, -1))
73f53c4a
TH
2934 break;
2935
2936 /*
2937 * Meh... this color is already done, clear first
2938 * flusher and repeat cascading.
2939 */
2940 wq->first_flusher = NULL;
2941 }
2942
2943out_unlock:
3c25a55d 2944 mutex_unlock(&wq->mutex);
1da177e4 2945}
c4f135d6 2946EXPORT_SYMBOL(__flush_workqueue);
1da177e4 2947
9c5a2ba7
TH
2948/**
2949 * drain_workqueue - drain a workqueue
2950 * @wq: workqueue to drain
2951 *
2952 * Wait until the workqueue becomes empty. While draining is in progress,
2953 * only chain queueing is allowed. IOW, only currently pending or running
2954 * work items on @wq can queue further work items on it. @wq is flushed
b749b1b6 2955 * repeatedly until it becomes empty. The number of flushing is determined
9c5a2ba7
TH
2956 * by the depth of chaining and should be relatively short. Whine if it
2957 * takes too long.
2958 */
2959void drain_workqueue(struct workqueue_struct *wq)
2960{
2961 unsigned int flush_cnt = 0;
49e3cf44 2962 struct pool_workqueue *pwq;
9c5a2ba7
TH
2963
2964 /*
2965 * __queue_work() needs to test whether there are drainers, is much
2966 * hotter than drain_workqueue() and already looks at @wq->flags.
618b01eb 2967 * Use __WQ_DRAINING so that queue doesn't have to check nr_drainers.
9c5a2ba7 2968 */
87fc741e 2969 mutex_lock(&wq->mutex);
9c5a2ba7 2970 if (!wq->nr_drainers++)
618b01eb 2971 wq->flags |= __WQ_DRAINING;
87fc741e 2972 mutex_unlock(&wq->mutex);
9c5a2ba7 2973reflush:
c4f135d6 2974 __flush_workqueue(wq);
9c5a2ba7 2975
b09f4fd3 2976 mutex_lock(&wq->mutex);
76af4d93 2977
49e3cf44 2978 for_each_pwq(pwq, wq) {
fa2563e4 2979 bool drained;
9c5a2ba7 2980
a9b8a985 2981 raw_spin_lock_irq(&pwq->pool->lock);
f97a4a1a 2982 drained = !pwq->nr_active && list_empty(&pwq->inactive_works);
a9b8a985 2983 raw_spin_unlock_irq(&pwq->pool->lock);
fa2563e4
TT
2984
2985 if (drained)
9c5a2ba7
TH
2986 continue;
2987
2988 if (++flush_cnt == 10 ||
2989 (flush_cnt % 100 == 0 && flush_cnt <= 1000))
e9ad2eb3
SZ
2990 pr_warn("workqueue %s: %s() isn't complete after %u tries\n",
2991 wq->name, __func__, flush_cnt);
76af4d93 2992
b09f4fd3 2993 mutex_unlock(&wq->mutex);
9c5a2ba7
TH
2994 goto reflush;
2995 }
2996
9c5a2ba7 2997 if (!--wq->nr_drainers)
618b01eb 2998 wq->flags &= ~__WQ_DRAINING;
87fc741e 2999 mutex_unlock(&wq->mutex);
9c5a2ba7
TH
3000}
3001EXPORT_SYMBOL_GPL(drain_workqueue);
3002
d6e89786
JB
3003static bool start_flush_work(struct work_struct *work, struct wq_barrier *barr,
3004 bool from_cancel)
db700897 3005{
affee4b2 3006 struct worker *worker = NULL;
c9e7cf27 3007 struct worker_pool *pool;
112202d9 3008 struct pool_workqueue *pwq;
db700897
ON
3009
3010 might_sleep();
fa1b54e6 3011
24acfb71 3012 rcu_read_lock();
c9e7cf27 3013 pool = get_work_pool(work);
fa1b54e6 3014 if (!pool) {
24acfb71 3015 rcu_read_unlock();
baf59022 3016 return false;
fa1b54e6 3017 }
db700897 3018
a9b8a985 3019 raw_spin_lock_irq(&pool->lock);
0b3dae68 3020 /* see the comment in try_to_grab_pending() with the same code */
112202d9
TH
3021 pwq = get_work_pwq(work);
3022 if (pwq) {
3023 if (unlikely(pwq->pool != pool))
4690c4ab 3024 goto already_gone;
606a5020 3025 } else {
c9e7cf27 3026 worker = find_worker_executing_work(pool, work);
affee4b2 3027 if (!worker)
4690c4ab 3028 goto already_gone;
112202d9 3029 pwq = worker->current_pwq;
606a5020 3030 }
db700897 3031
fca839c0
TH
3032 check_flush_dependency(pwq->wq, work);
3033
112202d9 3034 insert_wq_barrier(pwq, barr, work, worker);
a9b8a985 3035 raw_spin_unlock_irq(&pool->lock);
7a22ad75 3036
e159489b 3037 /*
a1d14934
PZ
3038 * Force a lock recursion deadlock when using flush_work() inside a
3039 * single-threaded or rescuer equipped workqueue.
3040 *
3041 * For single threaded workqueues the deadlock happens when the work
3042 * is after the work issuing the flush_work(). For rescuer equipped
3043 * workqueues the deadlock happens when the rescuer stalls, blocking
3044 * forward progress.
e159489b 3045 */
d6e89786
JB
3046 if (!from_cancel &&
3047 (pwq->wq->saved_max_active == 1 || pwq->wq->rescuer)) {
112202d9 3048 lock_map_acquire(&pwq->wq->lockdep_map);
a1d14934
PZ
3049 lock_map_release(&pwq->wq->lockdep_map);
3050 }
24acfb71 3051 rcu_read_unlock();
401a8d04 3052 return true;
4690c4ab 3053already_gone:
a9b8a985 3054 raw_spin_unlock_irq(&pool->lock);
24acfb71 3055 rcu_read_unlock();
401a8d04 3056 return false;
db700897 3057}
baf59022 3058
d6e89786
JB
3059static bool __flush_work(struct work_struct *work, bool from_cancel)
3060{
3061 struct wq_barrier barr;
3062
3063 if (WARN_ON(!wq_online))
3064 return false;
3065
4d43d395
TH
3066 if (WARN_ON(!work->func))
3067 return false;
3068
c0feea59
TH
3069 lock_map_acquire(&work->lockdep_map);
3070 lock_map_release(&work->lockdep_map);
87915adc 3071
d6e89786
JB
3072 if (start_flush_work(work, &barr, from_cancel)) {
3073 wait_for_completion(&barr.done);
3074 destroy_work_on_stack(&barr.work);
3075 return true;
3076 } else {
3077 return false;
3078 }
3079}
3080
baf59022
TH
3081/**
3082 * flush_work - wait for a work to finish executing the last queueing instance
3083 * @work: the work to flush
3084 *
606a5020
TH
3085 * Wait until @work has finished execution. @work is guaranteed to be idle
3086 * on return if it hasn't been requeued since flush started.
baf59022 3087 *
d185af30 3088 * Return:
baf59022
TH
3089 * %true if flush_work() waited for the work to finish execution,
3090 * %false if it was already idle.
3091 */
3092bool flush_work(struct work_struct *work)
3093{
d6e89786 3094 return __flush_work(work, false);
6e84d644 3095}
606a5020 3096EXPORT_SYMBOL_GPL(flush_work);
6e84d644 3097
8603e1b3 3098struct cwt_wait {
ac6424b9 3099 wait_queue_entry_t wait;
8603e1b3
TH
3100 struct work_struct *work;
3101};
3102
ac6424b9 3103static int cwt_wakefn(wait_queue_entry_t *wait, unsigned mode, int sync, void *key)
8603e1b3
TH
3104{
3105 struct cwt_wait *cwait = container_of(wait, struct cwt_wait, wait);
3106
3107 if (cwait->work != key)
3108 return 0;
3109 return autoremove_wake_function(wait, mode, sync, key);
3110}
3111
36e227d2 3112static bool __cancel_work_timer(struct work_struct *work, bool is_dwork)
1f1f642e 3113{
8603e1b3 3114 static DECLARE_WAIT_QUEUE_HEAD(cancel_waitq);
bbb68dfa 3115 unsigned long flags;
1f1f642e
ON
3116 int ret;
3117
3118 do {
bbb68dfa
TH
3119 ret = try_to_grab_pending(work, is_dwork, &flags);
3120 /*
8603e1b3
TH
3121 * If someone else is already canceling, wait for it to
3122 * finish. flush_work() doesn't work for PREEMPT_NONE
3123 * because we may get scheduled between @work's completion
3124 * and the other canceling task resuming and clearing
3125 * CANCELING - flush_work() will return false immediately
3126 * as @work is no longer busy, try_to_grab_pending() will
3127 * return -ENOENT as @work is still being canceled and the
3128 * other canceling task won't be able to clear CANCELING as
3129 * we're hogging the CPU.
3130 *
3131 * Let's wait for completion using a waitqueue. As this
3132 * may lead to the thundering herd problem, use a custom
3133 * wake function which matches @work along with exclusive
3134 * wait and wakeup.
bbb68dfa 3135 */
8603e1b3
TH
3136 if (unlikely(ret == -ENOENT)) {
3137 struct cwt_wait cwait;
3138
3139 init_wait(&cwait.wait);
3140 cwait.wait.func = cwt_wakefn;
3141 cwait.work = work;
3142
3143 prepare_to_wait_exclusive(&cancel_waitq, &cwait.wait,
3144 TASK_UNINTERRUPTIBLE);
3145 if (work_is_canceling(work))
3146 schedule();
3147 finish_wait(&cancel_waitq, &cwait.wait);
3148 }
1f1f642e
ON
3149 } while (unlikely(ret < 0));
3150
bbb68dfa
TH
3151 /* tell other tasks trying to grab @work to back off */
3152 mark_work_canceling(work);
3153 local_irq_restore(flags);
3154
3347fa09
TH
3155 /*
3156 * This allows canceling during early boot. We know that @work
3157 * isn't executing.
3158 */
3159 if (wq_online)
d6e89786 3160 __flush_work(work, true);
3347fa09 3161
7a22ad75 3162 clear_work_data(work);
8603e1b3
TH
3163
3164 /*
3165 * Paired with prepare_to_wait() above so that either
3166 * waitqueue_active() is visible here or !work_is_canceling() is
3167 * visible there.
3168 */
3169 smp_mb();
3170 if (waitqueue_active(&cancel_waitq))
3171 __wake_up(&cancel_waitq, TASK_NORMAL, 1, work);
3172
1f1f642e
ON
3173 return ret;
3174}
3175
6e84d644 3176/**
401a8d04
TH
3177 * cancel_work_sync - cancel a work and wait for it to finish
3178 * @work: the work to cancel
6e84d644 3179 *
401a8d04
TH
3180 * Cancel @work and wait for its execution to finish. This function
3181 * can be used even if the work re-queues itself or migrates to
3182 * another workqueue. On return from this function, @work is
3183 * guaranteed to be not pending or executing on any CPU.
1f1f642e 3184 *
401a8d04
TH
3185 * cancel_work_sync(&delayed_work->work) must not be used for
3186 * delayed_work's. Use cancel_delayed_work_sync() instead.
6e84d644 3187 *
401a8d04 3188 * The caller must ensure that the workqueue on which @work was last
6e84d644 3189 * queued can't be destroyed before this function returns.
401a8d04 3190 *
d185af30 3191 * Return:
401a8d04 3192 * %true if @work was pending, %false otherwise.
6e84d644 3193 */
401a8d04 3194bool cancel_work_sync(struct work_struct *work)
6e84d644 3195{
36e227d2 3196 return __cancel_work_timer(work, false);
b89deed3 3197}
28e53bdd 3198EXPORT_SYMBOL_GPL(cancel_work_sync);
b89deed3 3199
6e84d644 3200/**
401a8d04
TH
3201 * flush_delayed_work - wait for a dwork to finish executing the last queueing
3202 * @dwork: the delayed work to flush
6e84d644 3203 *
401a8d04
TH
3204 * Delayed timer is cancelled and the pending work is queued for
3205 * immediate execution. Like flush_work(), this function only
3206 * considers the last queueing instance of @dwork.
1f1f642e 3207 *
d185af30 3208 * Return:
401a8d04
TH
3209 * %true if flush_work() waited for the work to finish execution,
3210 * %false if it was already idle.
6e84d644 3211 */
401a8d04
TH
3212bool flush_delayed_work(struct delayed_work *dwork)
3213{
8930caba 3214 local_irq_disable();
401a8d04 3215 if (del_timer_sync(&dwork->timer))
60c057bc 3216 __queue_work(dwork->cpu, dwork->wq, &dwork->work);
8930caba 3217 local_irq_enable();
401a8d04
TH
3218 return flush_work(&dwork->work);
3219}
3220EXPORT_SYMBOL(flush_delayed_work);
3221
05f0fe6b
TH
3222/**
3223 * flush_rcu_work - wait for a rwork to finish executing the last queueing
3224 * @rwork: the rcu work to flush
3225 *
3226 * Return:
3227 * %true if flush_rcu_work() waited for the work to finish execution,
3228 * %false if it was already idle.
3229 */
3230bool flush_rcu_work(struct rcu_work *rwork)
3231{
3232 if (test_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(&rwork->work))) {
3233 rcu_barrier();
3234 flush_work(&rwork->work);
3235 return true;
3236 } else {
3237 return flush_work(&rwork->work);
3238 }
3239}
3240EXPORT_SYMBOL(flush_rcu_work);
3241
f72b8792
JA
3242static bool __cancel_work(struct work_struct *work, bool is_dwork)
3243{
3244 unsigned long flags;
3245 int ret;
3246
3247 do {
3248 ret = try_to_grab_pending(work, is_dwork, &flags);
3249 } while (unlikely(ret == -EAGAIN));
3250
3251 if (unlikely(ret < 0))
3252 return false;
3253
3254 set_work_pool_and_clear_pending(work, get_work_pool_id(work));
3255 local_irq_restore(flags);
3256 return ret;
3257}
3258
73b4b532
AG
3259/*
3260 * See cancel_delayed_work()
3261 */
3262bool cancel_work(struct work_struct *work)
3263{
3264 return __cancel_work(work, false);
3265}
3266EXPORT_SYMBOL(cancel_work);
3267
09383498 3268/**
57b30ae7
TH
3269 * cancel_delayed_work - cancel a delayed work
3270 * @dwork: delayed_work to cancel
09383498 3271 *
d185af30
YB
3272 * Kill off a pending delayed_work.
3273 *
3274 * Return: %true if @dwork was pending and canceled; %false if it wasn't
3275 * pending.
3276 *
3277 * Note:
3278 * The work callback function may still be running on return, unless
3279 * it returns %true and the work doesn't re-arm itself. Explicitly flush or
3280 * use cancel_delayed_work_sync() to wait on it.
09383498 3281 *
57b30ae7 3282 * This function is safe to call from any context including IRQ handler.
09383498 3283 */
57b30ae7 3284bool cancel_delayed_work(struct delayed_work *dwork)
09383498 3285{
f72b8792 3286 return __cancel_work(&dwork->work, true);
09383498 3287}
57b30ae7 3288EXPORT_SYMBOL(cancel_delayed_work);
09383498 3289
401a8d04
TH
3290/**
3291 * cancel_delayed_work_sync - cancel a delayed work and wait for it to finish
3292 * @dwork: the delayed work cancel
3293 *
3294 * This is cancel_work_sync() for delayed works.
3295 *
d185af30 3296 * Return:
401a8d04
TH
3297 * %true if @dwork was pending, %false otherwise.
3298 */
3299bool cancel_delayed_work_sync(struct delayed_work *dwork)
6e84d644 3300{
36e227d2 3301 return __cancel_work_timer(&dwork->work, true);
6e84d644 3302}
f5a421a4 3303EXPORT_SYMBOL(cancel_delayed_work_sync);
1da177e4 3304
b6136773 3305/**
31ddd871 3306 * schedule_on_each_cpu - execute a function synchronously on each online CPU
b6136773 3307 * @func: the function to call
b6136773 3308 *
31ddd871
TH
3309 * schedule_on_each_cpu() executes @func on each online CPU using the
3310 * system workqueue and blocks until all CPUs have completed.
b6136773 3311 * schedule_on_each_cpu() is very slow.
31ddd871 3312 *
d185af30 3313 * Return:
31ddd871 3314 * 0 on success, -errno on failure.
b6136773 3315 */
65f27f38 3316int schedule_on_each_cpu(work_func_t func)
15316ba8
CL
3317{
3318 int cpu;
38f51568 3319 struct work_struct __percpu *works;
15316ba8 3320
b6136773
AM
3321 works = alloc_percpu(struct work_struct);
3322 if (!works)
15316ba8 3323 return -ENOMEM;
b6136773 3324
ffd8bea8 3325 cpus_read_lock();
93981800 3326
15316ba8 3327 for_each_online_cpu(cpu) {
9bfb1839
IM
3328 struct work_struct *work = per_cpu_ptr(works, cpu);
3329
3330 INIT_WORK(work, func);
b71ab8c2 3331 schedule_work_on(cpu, work);
65a64464 3332 }
93981800
TH
3333
3334 for_each_online_cpu(cpu)
3335 flush_work(per_cpu_ptr(works, cpu));
3336
ffd8bea8 3337 cpus_read_unlock();
b6136773 3338 free_percpu(works);
15316ba8
CL
3339 return 0;
3340}
3341
1fa44eca
JB
3342/**
3343 * execute_in_process_context - reliably execute the routine with user context
3344 * @fn: the function to execute
1fa44eca
JB
3345 * @ew: guaranteed storage for the execute work structure (must
3346 * be available when the work executes)
3347 *
3348 * Executes the function immediately if process context is available,
3349 * otherwise schedules the function for delayed execution.
3350 *
d185af30 3351 * Return: 0 - function was executed
1fa44eca
JB
3352 * 1 - function was scheduled for execution
3353 */
65f27f38 3354int execute_in_process_context(work_func_t fn, struct execute_work *ew)
1fa44eca
JB
3355{
3356 if (!in_interrupt()) {
65f27f38 3357 fn(&ew->work);
1fa44eca
JB
3358 return 0;
3359 }
3360
65f27f38 3361 INIT_WORK(&ew->work, fn);
1fa44eca
JB
3362 schedule_work(&ew->work);
3363
3364 return 1;
3365}
3366EXPORT_SYMBOL_GPL(execute_in_process_context);
3367
6ba94429
FW
3368/**
3369 * free_workqueue_attrs - free a workqueue_attrs
3370 * @attrs: workqueue_attrs to free
226223ab 3371 *
6ba94429 3372 * Undo alloc_workqueue_attrs().
226223ab 3373 */
513c98d0 3374void free_workqueue_attrs(struct workqueue_attrs *attrs)
226223ab 3375{
6ba94429
FW
3376 if (attrs) {
3377 free_cpumask_var(attrs->cpumask);
3378 kfree(attrs);
3379 }
226223ab
TH
3380}
3381
6ba94429
FW
3382/**
3383 * alloc_workqueue_attrs - allocate a workqueue_attrs
6ba94429
FW
3384 *
3385 * Allocate a new workqueue_attrs, initialize with default settings and
3386 * return it.
3387 *
3388 * Return: The allocated new workqueue_attr on success. %NULL on failure.
3389 */
513c98d0 3390struct workqueue_attrs *alloc_workqueue_attrs(void)
226223ab 3391{
6ba94429 3392 struct workqueue_attrs *attrs;
226223ab 3393
be69d00d 3394 attrs = kzalloc(sizeof(*attrs), GFP_KERNEL);
6ba94429
FW
3395 if (!attrs)
3396 goto fail;
be69d00d 3397 if (!alloc_cpumask_var(&attrs->cpumask, GFP_KERNEL))
6ba94429
FW
3398 goto fail;
3399
3400 cpumask_copy(attrs->cpumask, cpu_possible_mask);
3401 return attrs;
3402fail:
3403 free_workqueue_attrs(attrs);
3404 return NULL;
226223ab
TH
3405}
3406
6ba94429
FW
3407static void copy_workqueue_attrs(struct workqueue_attrs *to,
3408 const struct workqueue_attrs *from)
226223ab 3409{
6ba94429
FW
3410 to->nice = from->nice;
3411 cpumask_copy(to->cpumask, from->cpumask);
3412 /*
3413 * Unlike hash and equality test, this function doesn't ignore
3414 * ->no_numa as it is used for both pool and wq attrs. Instead,
3415 * get_unbound_pool() explicitly clears ->no_numa after copying.
3416 */
3417 to->no_numa = from->no_numa;
226223ab
TH
3418}
3419
6ba94429
FW
3420/* hash value of the content of @attr */
3421static u32 wqattrs_hash(const struct workqueue_attrs *attrs)
226223ab 3422{
6ba94429 3423 u32 hash = 0;
226223ab 3424
6ba94429
FW
3425 hash = jhash_1word(attrs->nice, hash);
3426 hash = jhash(cpumask_bits(attrs->cpumask),
3427 BITS_TO_LONGS(nr_cpumask_bits) * sizeof(long), hash);
3428 return hash;
226223ab 3429}
226223ab 3430
6ba94429
FW
3431/* content equality test */
3432static bool wqattrs_equal(const struct workqueue_attrs *a,
3433 const struct workqueue_attrs *b)
226223ab 3434{
6ba94429
FW
3435 if (a->nice != b->nice)
3436 return false;
3437 if (!cpumask_equal(a->cpumask, b->cpumask))
3438 return false;
3439 return true;
226223ab
TH
3440}
3441
6ba94429
FW
3442/**
3443 * init_worker_pool - initialize a newly zalloc'd worker_pool
3444 * @pool: worker_pool to initialize
3445 *
402dd89d 3446 * Initialize a newly zalloc'd @pool. It also allocates @pool->attrs.
6ba94429
FW
3447 *
3448 * Return: 0 on success, -errno on failure. Even on failure, all fields
3449 * inside @pool proper are initialized and put_unbound_pool() can be called
3450 * on @pool safely to release it.
3451 */
3452static int init_worker_pool(struct worker_pool *pool)
226223ab 3453{
a9b8a985 3454 raw_spin_lock_init(&pool->lock);
6ba94429
FW
3455 pool->id = -1;
3456 pool->cpu = -1;
3457 pool->node = NUMA_NO_NODE;
3458 pool->flags |= POOL_DISASSOCIATED;
82607adc 3459 pool->watchdog_ts = jiffies;
6ba94429
FW
3460 INIT_LIST_HEAD(&pool->worklist);
3461 INIT_LIST_HEAD(&pool->idle_list);
3462 hash_init(pool->busy_hash);
226223ab 3463
32a6c723 3464 timer_setup(&pool->idle_timer, idle_worker_timeout, TIMER_DEFERRABLE);
226223ab 3465
32a6c723 3466 timer_setup(&pool->mayday_timer, pool_mayday_timeout, 0);
226223ab 3467
6ba94429 3468 INIT_LIST_HEAD(&pool->workers);
226223ab 3469
6ba94429
FW
3470 ida_init(&pool->worker_ida);
3471 INIT_HLIST_NODE(&pool->hash_node);
3472 pool->refcnt = 1;
226223ab 3473
6ba94429 3474 /* shouldn't fail above this point */
be69d00d 3475 pool->attrs = alloc_workqueue_attrs();
6ba94429
FW
3476 if (!pool->attrs)
3477 return -ENOMEM;
3478 return 0;
226223ab
TH
3479}
3480
669de8bd
BVA
3481#ifdef CONFIG_LOCKDEP
3482static void wq_init_lockdep(struct workqueue_struct *wq)
3483{
3484 char *lock_name;
3485
3486 lockdep_register_key(&wq->key);
3487 lock_name = kasprintf(GFP_KERNEL, "%s%s", "(wq_completion)", wq->name);
3488 if (!lock_name)
3489 lock_name = wq->name;
69a106c0
QC
3490
3491 wq->lock_name = lock_name;
669de8bd
BVA
3492 lockdep_init_map(&wq->lockdep_map, lock_name, &wq->key, 0);
3493}
3494
3495static void wq_unregister_lockdep(struct workqueue_struct *wq)
3496{
3497 lockdep_unregister_key(&wq->key);
3498}
3499
3500static void wq_free_lockdep(struct workqueue_struct *wq)
3501{
3502 if (wq->lock_name != wq->name)
3503 kfree(wq->lock_name);
3504}
3505#else
3506static void wq_init_lockdep(struct workqueue_struct *wq)
3507{
3508}
3509
3510static void wq_unregister_lockdep(struct workqueue_struct *wq)
3511{
3512}
3513
3514static void wq_free_lockdep(struct workqueue_struct *wq)
3515{
3516}
3517#endif
3518
6ba94429 3519static void rcu_free_wq(struct rcu_head *rcu)
226223ab 3520{
6ba94429
FW
3521 struct workqueue_struct *wq =
3522 container_of(rcu, struct workqueue_struct, rcu);
226223ab 3523
669de8bd
BVA
3524 wq_free_lockdep(wq);
3525
6ba94429
FW
3526 if (!(wq->flags & WQ_UNBOUND))
3527 free_percpu(wq->cpu_pwqs);
226223ab 3528 else
6ba94429 3529 free_workqueue_attrs(wq->unbound_attrs);
226223ab 3530
6ba94429 3531 kfree(wq);
226223ab
TH
3532}
3533
6ba94429 3534static void rcu_free_pool(struct rcu_head *rcu)
226223ab 3535{
6ba94429 3536 struct worker_pool *pool = container_of(rcu, struct worker_pool, rcu);
226223ab 3537
6ba94429
FW
3538 ida_destroy(&pool->worker_ida);
3539 free_workqueue_attrs(pool->attrs);
3540 kfree(pool);
226223ab
TH
3541}
3542
d8bb65ab
SAS
3543/* This returns with the lock held on success (pool manager is inactive). */
3544static bool wq_manager_inactive(struct worker_pool *pool)
3545{
a9b8a985 3546 raw_spin_lock_irq(&pool->lock);
d8bb65ab
SAS
3547
3548 if (pool->flags & POOL_MANAGER_ACTIVE) {
a9b8a985 3549 raw_spin_unlock_irq(&pool->lock);
d8bb65ab
SAS
3550 return false;
3551 }
3552 return true;
3553}
3554
6ba94429
FW
3555/**
3556 * put_unbound_pool - put a worker_pool
3557 * @pool: worker_pool to put
3558 *
24acfb71 3559 * Put @pool. If its refcnt reaches zero, it gets destroyed in RCU
6ba94429
FW
3560 * safe manner. get_unbound_pool() calls this function on its failure path
3561 * and this function should be able to release pools which went through,
3562 * successfully or not, init_worker_pool().
3563 *
3564 * Should be called with wq_pool_mutex held.
3565 */
3566static void put_unbound_pool(struct worker_pool *pool)
226223ab 3567{
6ba94429
FW
3568 DECLARE_COMPLETION_ONSTACK(detach_completion);
3569 struct worker *worker;
226223ab 3570
6ba94429 3571 lockdep_assert_held(&wq_pool_mutex);
226223ab 3572
6ba94429
FW
3573 if (--pool->refcnt)
3574 return;
226223ab 3575
6ba94429
FW
3576 /* sanity checks */
3577 if (WARN_ON(!(pool->cpu < 0)) ||
3578 WARN_ON(!list_empty(&pool->worklist)))
3579 return;
226223ab 3580
6ba94429
FW
3581 /* release id and unhash */
3582 if (pool->id >= 0)
3583 idr_remove(&worker_pool_idr, pool->id);
3584 hash_del(&pool->hash_node);
d55262c4 3585
6ba94429 3586 /*
692b4825
TH
3587 * Become the manager and destroy all workers. This prevents
3588 * @pool's workers from blocking on attach_mutex. We're the last
3589 * manager and @pool gets freed with the flag set.
d8bb65ab
SAS
3590 * Because of how wq_manager_inactive() works, we will hold the
3591 * spinlock after a successful wait.
6ba94429 3592 */
d8bb65ab
SAS
3593 rcuwait_wait_event(&manager_wait, wq_manager_inactive(pool),
3594 TASK_UNINTERRUPTIBLE);
692b4825
TH
3595 pool->flags |= POOL_MANAGER_ACTIVE;
3596
6ba94429
FW
3597 while ((worker = first_idle_worker(pool)))
3598 destroy_worker(worker);
3599 WARN_ON(pool->nr_workers || pool->nr_idle);
a9b8a985 3600 raw_spin_unlock_irq(&pool->lock);
d55262c4 3601
1258fae7 3602 mutex_lock(&wq_pool_attach_mutex);
6ba94429
FW
3603 if (!list_empty(&pool->workers))
3604 pool->detach_completion = &detach_completion;
1258fae7 3605 mutex_unlock(&wq_pool_attach_mutex);
226223ab 3606
6ba94429
FW
3607 if (pool->detach_completion)
3608 wait_for_completion(pool->detach_completion);
226223ab 3609
6ba94429
FW
3610 /* shut down the timers */
3611 del_timer_sync(&pool->idle_timer);
3612 del_timer_sync(&pool->mayday_timer);
226223ab 3613
24acfb71 3614 /* RCU protected to allow dereferences from get_work_pool() */
25b00775 3615 call_rcu(&pool->rcu, rcu_free_pool);
226223ab
TH
3616}
3617
3618/**
6ba94429
FW
3619 * get_unbound_pool - get a worker_pool with the specified attributes
3620 * @attrs: the attributes of the worker_pool to get
226223ab 3621 *
6ba94429
FW
3622 * Obtain a worker_pool which has the same attributes as @attrs, bump the
3623 * reference count and return it. If there already is a matching
3624 * worker_pool, it will be used; otherwise, this function attempts to
3625 * create a new one.
226223ab 3626 *
6ba94429 3627 * Should be called with wq_pool_mutex held.
226223ab 3628 *
6ba94429
FW
3629 * Return: On success, a worker_pool with the same attributes as @attrs.
3630 * On failure, %NULL.
226223ab 3631 */
6ba94429 3632static struct worker_pool *get_unbound_pool(const struct workqueue_attrs *attrs)
226223ab 3633{
6ba94429
FW
3634 u32 hash = wqattrs_hash(attrs);
3635 struct worker_pool *pool;
3636 int node;
e2273584 3637 int target_node = NUMA_NO_NODE;
226223ab 3638
6ba94429 3639 lockdep_assert_held(&wq_pool_mutex);
226223ab 3640
6ba94429
FW
3641 /* do we already have a matching pool? */
3642 hash_for_each_possible(unbound_pool_hash, pool, hash_node, hash) {
3643 if (wqattrs_equal(pool->attrs, attrs)) {
3644 pool->refcnt++;
3645 return pool;
3646 }
3647 }
226223ab 3648
e2273584
XP
3649 /* if cpumask is contained inside a NUMA node, we belong to that node */
3650 if (wq_numa_enabled) {
3651 for_each_node(node) {
3652 if (cpumask_subset(attrs->cpumask,
3653 wq_numa_possible_cpumask[node])) {
3654 target_node = node;
3655 break;
3656 }
3657 }
3658 }
3659
6ba94429 3660 /* nope, create a new one */
e2273584 3661 pool = kzalloc_node(sizeof(*pool), GFP_KERNEL, target_node);
6ba94429
FW
3662 if (!pool || init_worker_pool(pool) < 0)
3663 goto fail;
3664
3665 lockdep_set_subclass(&pool->lock, 1); /* see put_pwq() */
3666 copy_workqueue_attrs(pool->attrs, attrs);
e2273584 3667 pool->node = target_node;
226223ab
TH
3668
3669 /*
6ba94429
FW
3670 * no_numa isn't a worker_pool attribute, always clear it. See
3671 * 'struct workqueue_attrs' comments for detail.
226223ab 3672 */
6ba94429 3673 pool->attrs->no_numa = false;
226223ab 3674
6ba94429
FW
3675 if (worker_pool_assign_id(pool) < 0)
3676 goto fail;
226223ab 3677
6ba94429 3678 /* create and start the initial worker */
3347fa09 3679 if (wq_online && !create_worker(pool))
6ba94429 3680 goto fail;
226223ab 3681
6ba94429
FW
3682 /* install */
3683 hash_add(unbound_pool_hash, &pool->hash_node, hash);
226223ab 3684
6ba94429
FW
3685 return pool;
3686fail:
3687 if (pool)
3688 put_unbound_pool(pool);
3689 return NULL;
226223ab 3690}
226223ab 3691
6ba94429 3692static void rcu_free_pwq(struct rcu_head *rcu)
7a4e344c 3693{
6ba94429
FW
3694 kmem_cache_free(pwq_cache,
3695 container_of(rcu, struct pool_workqueue, rcu));
7a4e344c
TH
3696}
3697
6ba94429
FW
3698/*
3699 * Scheduled on system_wq by put_pwq() when an unbound pwq hits zero refcnt
3700 * and needs to be destroyed.
7a4e344c 3701 */
6ba94429 3702static void pwq_unbound_release_workfn(struct work_struct *work)
7a4e344c 3703{
6ba94429
FW
3704 struct pool_workqueue *pwq = container_of(work, struct pool_workqueue,
3705 unbound_release_work);
3706 struct workqueue_struct *wq = pwq->wq;
3707 struct worker_pool *pool = pwq->pool;
b42b0bdd 3708 bool is_last = false;
7a4e344c 3709
b42b0bdd
YY
3710 /*
3711 * when @pwq is not linked, it doesn't hold any reference to the
3712 * @wq, and @wq is invalid to access.
3713 */
3714 if (!list_empty(&pwq->pwqs_node)) {
3715 if (WARN_ON_ONCE(!(wq->flags & WQ_UNBOUND)))
3716 return;
7a4e344c 3717
b42b0bdd
YY
3718 mutex_lock(&wq->mutex);
3719 list_del_rcu(&pwq->pwqs_node);
3720 is_last = list_empty(&wq->pwqs);
3721 mutex_unlock(&wq->mutex);
3722 }
6ba94429
FW
3723
3724 mutex_lock(&wq_pool_mutex);
3725 put_unbound_pool(pool);
3726 mutex_unlock(&wq_pool_mutex);
3727
25b00775 3728 call_rcu(&pwq->rcu, rcu_free_pwq);
7a4e344c 3729
2865a8fb 3730 /*
6ba94429
FW
3731 * If we're the last pwq going away, @wq is already dead and no one
3732 * is gonna access it anymore. Schedule RCU free.
2865a8fb 3733 */
669de8bd
BVA
3734 if (is_last) {
3735 wq_unregister_lockdep(wq);
25b00775 3736 call_rcu(&wq->rcu, rcu_free_wq);
669de8bd 3737 }
29c91e99
TH
3738}
3739
7a4e344c 3740/**
6ba94429
FW
3741 * pwq_adjust_max_active - update a pwq's max_active to the current setting
3742 * @pwq: target pool_workqueue
d185af30 3743 *
6ba94429 3744 * If @pwq isn't freezing, set @pwq->max_active to the associated
f97a4a1a 3745 * workqueue's saved_max_active and activate inactive work items
6ba94429 3746 * accordingly. If @pwq is freezing, clear @pwq->max_active to zero.
7a4e344c 3747 */
6ba94429 3748static void pwq_adjust_max_active(struct pool_workqueue *pwq)
4e1a1f9a 3749{
6ba94429
FW
3750 struct workqueue_struct *wq = pwq->wq;
3751 bool freezable = wq->flags & WQ_FREEZABLE;
3347fa09 3752 unsigned long flags;
4e1a1f9a 3753
6ba94429
FW
3754 /* for @wq->saved_max_active */
3755 lockdep_assert_held(&wq->mutex);
4e1a1f9a 3756
6ba94429
FW
3757 /* fast exit for non-freezable wqs */
3758 if (!freezable && pwq->max_active == wq->saved_max_active)
3759 return;
7a4e344c 3760
3347fa09 3761 /* this function can be called during early boot w/ irq disabled */
a9b8a985 3762 raw_spin_lock_irqsave(&pwq->pool->lock, flags);
29c91e99 3763
6ba94429
FW
3764 /*
3765 * During [un]freezing, the caller is responsible for ensuring that
3766 * this function is called at least once after @workqueue_freezing
3767 * is updated and visible.
3768 */
3769 if (!freezable || !workqueue_freezing) {
01341fbd
YY
3770 bool kick = false;
3771
6ba94429 3772 pwq->max_active = wq->saved_max_active;
4e1a1f9a 3773
f97a4a1a 3774 while (!list_empty(&pwq->inactive_works) &&
01341fbd 3775 pwq->nr_active < pwq->max_active) {
f97a4a1a 3776 pwq_activate_first_inactive(pwq);
01341fbd
YY
3777 kick = true;
3778 }
e2dca7ad 3779
6ba94429
FW
3780 /*
3781 * Need to kick a worker after thawed or an unbound wq's
01341fbd
YY
3782 * max_active is bumped. In realtime scenarios, always kicking a
3783 * worker will cause interference on the isolated cpu cores, so
3784 * let's kick iff work items were activated.
6ba94429 3785 */
01341fbd
YY
3786 if (kick)
3787 wake_up_worker(pwq->pool);
6ba94429
FW
3788 } else {
3789 pwq->max_active = 0;
3790 }
e2dca7ad 3791
a9b8a985 3792 raw_spin_unlock_irqrestore(&pwq->pool->lock, flags);
e2dca7ad
TH
3793}
3794
67dc8325 3795/* initialize newly allocated @pwq which is associated with @wq and @pool */
6ba94429
FW
3796static void init_pwq(struct pool_workqueue *pwq, struct workqueue_struct *wq,
3797 struct worker_pool *pool)
29c91e99 3798{
6ba94429 3799 BUG_ON((unsigned long)pwq & WORK_STRUCT_FLAG_MASK);
29c91e99 3800
6ba94429
FW
3801 memset(pwq, 0, sizeof(*pwq));
3802
3803 pwq->pool = pool;
3804 pwq->wq = wq;
3805 pwq->flush_color = -1;
3806 pwq->refcnt = 1;
f97a4a1a 3807 INIT_LIST_HEAD(&pwq->inactive_works);
6ba94429
FW
3808 INIT_LIST_HEAD(&pwq->pwqs_node);
3809 INIT_LIST_HEAD(&pwq->mayday_node);
3810 INIT_WORK(&pwq->unbound_release_work, pwq_unbound_release_workfn);
29c91e99
TH
3811}
3812
6ba94429
FW
3813/* sync @pwq with the current state of its associated wq and link it */
3814static void link_pwq(struct pool_workqueue *pwq)
29c91e99 3815{
6ba94429 3816 struct workqueue_struct *wq = pwq->wq;
29c91e99 3817
6ba94429 3818 lockdep_assert_held(&wq->mutex);
a892cacc 3819
6ba94429
FW
3820 /* may be called multiple times, ignore if already linked */
3821 if (!list_empty(&pwq->pwqs_node))
29c91e99 3822 return;
29c91e99 3823
6ba94429
FW
3824 /* set the matching work_color */
3825 pwq->work_color = wq->work_color;
29c91e99 3826
6ba94429
FW
3827 /* sync max_active to the current setting */
3828 pwq_adjust_max_active(pwq);
29c91e99 3829
6ba94429
FW
3830 /* link in @pwq */
3831 list_add_rcu(&pwq->pwqs_node, &wq->pwqs);
3832}
29c91e99 3833
6ba94429
FW
3834/* obtain a pool matching @attr and create a pwq associating the pool and @wq */
3835static struct pool_workqueue *alloc_unbound_pwq(struct workqueue_struct *wq,
3836 const struct workqueue_attrs *attrs)
3837{
3838 struct worker_pool *pool;
3839 struct pool_workqueue *pwq;
60f5a4bc 3840
6ba94429 3841 lockdep_assert_held(&wq_pool_mutex);
60f5a4bc 3842
6ba94429
FW
3843 pool = get_unbound_pool(attrs);
3844 if (!pool)
3845 return NULL;
60f5a4bc 3846
6ba94429
FW
3847 pwq = kmem_cache_alloc_node(pwq_cache, GFP_KERNEL, pool->node);
3848 if (!pwq) {
3849 put_unbound_pool(pool);
3850 return NULL;
3851 }
29c91e99 3852
6ba94429
FW
3853 init_pwq(pwq, wq, pool);
3854 return pwq;
3855}
29c91e99 3856
29c91e99 3857/**
30186c6f 3858 * wq_calc_node_cpumask - calculate a wq_attrs' cpumask for the specified node
042f7df1 3859 * @attrs: the wq_attrs of the default pwq of the target workqueue
6ba94429
FW
3860 * @node: the target NUMA node
3861 * @cpu_going_down: if >= 0, the CPU to consider as offline
3862 * @cpumask: outarg, the resulting cpumask
29c91e99 3863 *
6ba94429
FW
3864 * Calculate the cpumask a workqueue with @attrs should use on @node. If
3865 * @cpu_going_down is >= 0, that cpu is considered offline during
3866 * calculation. The result is stored in @cpumask.
a892cacc 3867 *
6ba94429
FW
3868 * If NUMA affinity is not enabled, @attrs->cpumask is always used. If
3869 * enabled and @node has online CPUs requested by @attrs, the returned
3870 * cpumask is the intersection of the possible CPUs of @node and
3871 * @attrs->cpumask.
d185af30 3872 *
6ba94429
FW
3873 * The caller is responsible for ensuring that the cpumask of @node stays
3874 * stable.
3875 *
3876 * Return: %true if the resulting @cpumask is different from @attrs->cpumask,
3877 * %false if equal.
29c91e99 3878 */
6ba94429
FW
3879static bool wq_calc_node_cpumask(const struct workqueue_attrs *attrs, int node,
3880 int cpu_going_down, cpumask_t *cpumask)
29c91e99 3881{
6ba94429
FW
3882 if (!wq_numa_enabled || attrs->no_numa)
3883 goto use_dfl;
29c91e99 3884
6ba94429
FW
3885 /* does @node have any online CPUs @attrs wants? */
3886 cpumask_and(cpumask, cpumask_of_node(node), attrs->cpumask);
3887 if (cpu_going_down >= 0)
3888 cpumask_clear_cpu(cpu_going_down, cpumask);
29c91e99 3889
6ba94429
FW
3890 if (cpumask_empty(cpumask))
3891 goto use_dfl;
4c16bd32
TH
3892
3893 /* yeap, return possible CPUs in @node that @attrs wants */
3894 cpumask_and(cpumask, attrs->cpumask, wq_numa_possible_cpumask[node]);
1ad0f0a7
MB
3895
3896 if (cpumask_empty(cpumask)) {
3897 pr_warn_once("WARNING: workqueue cpumask: online intersect > "
3898 "possible intersect\n");
3899 return false;
3900 }
3901
4c16bd32
TH
3902 return !cpumask_equal(cpumask, attrs->cpumask);
3903
3904use_dfl:
3905 cpumask_copy(cpumask, attrs->cpumask);
3906 return false;
3907}
3908
1befcf30
TH
3909/* install @pwq into @wq's numa_pwq_tbl[] for @node and return the old pwq */
3910static struct pool_workqueue *numa_pwq_tbl_install(struct workqueue_struct *wq,
3911 int node,
3912 struct pool_workqueue *pwq)
3913{
3914 struct pool_workqueue *old_pwq;
3915
5b95e1af 3916 lockdep_assert_held(&wq_pool_mutex);
1befcf30
TH
3917 lockdep_assert_held(&wq->mutex);
3918
3919 /* link_pwq() can handle duplicate calls */
3920 link_pwq(pwq);
3921
3922 old_pwq = rcu_access_pointer(wq->numa_pwq_tbl[node]);
3923 rcu_assign_pointer(wq->numa_pwq_tbl[node], pwq);
3924 return old_pwq;
3925}
3926
2d5f0764
LJ
3927/* context to store the prepared attrs & pwqs before applying */
3928struct apply_wqattrs_ctx {
3929 struct workqueue_struct *wq; /* target workqueue */
3930 struct workqueue_attrs *attrs; /* attrs to apply */
042f7df1 3931 struct list_head list; /* queued for batching commit */
2d5f0764
LJ
3932 struct pool_workqueue *dfl_pwq;
3933 struct pool_workqueue *pwq_tbl[];
3934};
3935
3936/* free the resources after success or abort */
3937static void apply_wqattrs_cleanup(struct apply_wqattrs_ctx *ctx)
3938{
3939 if (ctx) {
3940 int node;
3941
3942 for_each_node(node)
3943 put_pwq_unlocked(ctx->pwq_tbl[node]);
3944 put_pwq_unlocked(ctx->dfl_pwq);
3945
3946 free_workqueue_attrs(ctx->attrs);
3947
3948 kfree(ctx);
3949 }
3950}
3951
3952/* allocate the attrs and pwqs for later installation */
3953static struct apply_wqattrs_ctx *
3954apply_wqattrs_prepare(struct workqueue_struct *wq,
3955 const struct workqueue_attrs *attrs)
9e8cd2f5 3956{
2d5f0764 3957 struct apply_wqattrs_ctx *ctx;
4c16bd32 3958 struct workqueue_attrs *new_attrs, *tmp_attrs;
2d5f0764 3959 int node;
9e8cd2f5 3960
2d5f0764 3961 lockdep_assert_held(&wq_pool_mutex);
9e8cd2f5 3962
acafe7e3 3963 ctx = kzalloc(struct_size(ctx, pwq_tbl, nr_node_ids), GFP_KERNEL);
8719dcea 3964
be69d00d
TG
3965 new_attrs = alloc_workqueue_attrs();
3966 tmp_attrs = alloc_workqueue_attrs();
2d5f0764
LJ
3967 if (!ctx || !new_attrs || !tmp_attrs)
3968 goto out_free;
13e2e556 3969
042f7df1
LJ
3970 /*
3971 * Calculate the attrs of the default pwq.
3972 * If the user configured cpumask doesn't overlap with the
3973 * wq_unbound_cpumask, we fallback to the wq_unbound_cpumask.
3974 */
13e2e556 3975 copy_workqueue_attrs(new_attrs, attrs);
b05a7928 3976 cpumask_and(new_attrs->cpumask, new_attrs->cpumask, wq_unbound_cpumask);
042f7df1
LJ
3977 if (unlikely(cpumask_empty(new_attrs->cpumask)))
3978 cpumask_copy(new_attrs->cpumask, wq_unbound_cpumask);
13e2e556 3979
4c16bd32
TH
3980 /*
3981 * We may create multiple pwqs with differing cpumasks. Make a
3982 * copy of @new_attrs which will be modified and used to obtain
3983 * pools.
3984 */
3985 copy_workqueue_attrs(tmp_attrs, new_attrs);
3986
4c16bd32
TH
3987 /*
3988 * If something goes wrong during CPU up/down, we'll fall back to
3989 * the default pwq covering whole @attrs->cpumask. Always create
3990 * it even if we don't use it immediately.
3991 */
2d5f0764
LJ
3992 ctx->dfl_pwq = alloc_unbound_pwq(wq, new_attrs);
3993 if (!ctx->dfl_pwq)
3994 goto out_free;
4c16bd32
TH
3995
3996 for_each_node(node) {
042f7df1 3997 if (wq_calc_node_cpumask(new_attrs, node, -1, tmp_attrs->cpumask)) {
2d5f0764
LJ
3998 ctx->pwq_tbl[node] = alloc_unbound_pwq(wq, tmp_attrs);
3999 if (!ctx->pwq_tbl[node])
4000 goto out_free;
4c16bd32 4001 } else {
2d5f0764
LJ
4002 ctx->dfl_pwq->refcnt++;
4003 ctx->pwq_tbl[node] = ctx->dfl_pwq;
4c16bd32
TH
4004 }
4005 }
4006
042f7df1
LJ
4007 /* save the user configured attrs and sanitize it. */
4008 copy_workqueue_attrs(new_attrs, attrs);
4009 cpumask_and(new_attrs->cpumask, new_attrs->cpumask, cpu_possible_mask);
2d5f0764 4010 ctx->attrs = new_attrs;
042f7df1 4011
2d5f0764
LJ
4012 ctx->wq = wq;
4013 free_workqueue_attrs(tmp_attrs);
4014 return ctx;
4015
4016out_free:
4017 free_workqueue_attrs(tmp_attrs);
4018 free_workqueue_attrs(new_attrs);
4019 apply_wqattrs_cleanup(ctx);
4020 return NULL;
4021}
4022
4023/* set attrs and install prepared pwqs, @ctx points to old pwqs on return */
4024static void apply_wqattrs_commit(struct apply_wqattrs_ctx *ctx)
4025{
4026 int node;
9e8cd2f5 4027
4c16bd32 4028 /* all pwqs have been created successfully, let's install'em */
2d5f0764 4029 mutex_lock(&ctx->wq->mutex);
a892cacc 4030
2d5f0764 4031 copy_workqueue_attrs(ctx->wq->unbound_attrs, ctx->attrs);
4c16bd32
TH
4032
4033 /* save the previous pwq and install the new one */
f147f29e 4034 for_each_node(node)
2d5f0764
LJ
4035 ctx->pwq_tbl[node] = numa_pwq_tbl_install(ctx->wq, node,
4036 ctx->pwq_tbl[node]);
4c16bd32
TH
4037
4038 /* @dfl_pwq might not have been used, ensure it's linked */
2d5f0764
LJ
4039 link_pwq(ctx->dfl_pwq);
4040 swap(ctx->wq->dfl_pwq, ctx->dfl_pwq);
f147f29e 4041
2d5f0764
LJ
4042 mutex_unlock(&ctx->wq->mutex);
4043}
9e8cd2f5 4044
a0111cf6
LJ
4045static void apply_wqattrs_lock(void)
4046{
4047 /* CPUs should stay stable across pwq creations and installations */
ffd8bea8 4048 cpus_read_lock();
a0111cf6
LJ
4049 mutex_lock(&wq_pool_mutex);
4050}
4051
4052static void apply_wqattrs_unlock(void)
4053{
4054 mutex_unlock(&wq_pool_mutex);
ffd8bea8 4055 cpus_read_unlock();
a0111cf6
LJ
4056}
4057
4058static int apply_workqueue_attrs_locked(struct workqueue_struct *wq,
4059 const struct workqueue_attrs *attrs)
2d5f0764
LJ
4060{
4061 struct apply_wqattrs_ctx *ctx;
4c16bd32 4062
2d5f0764
LJ
4063 /* only unbound workqueues can change attributes */
4064 if (WARN_ON(!(wq->flags & WQ_UNBOUND)))
4065 return -EINVAL;
13e2e556 4066
2d5f0764 4067 /* creating multiple pwqs breaks ordering guarantee */
0a94efb5
TH
4068 if (!list_empty(&wq->pwqs)) {
4069 if (WARN_ON(wq->flags & __WQ_ORDERED_EXPLICIT))
4070 return -EINVAL;
4071
4072 wq->flags &= ~__WQ_ORDERED;
4073 }
2d5f0764 4074
2d5f0764 4075 ctx = apply_wqattrs_prepare(wq, attrs);
6201171e 4076 if (!ctx)
4077 return -ENOMEM;
2d5f0764
LJ
4078
4079 /* the ctx has been prepared successfully, let's commit it */
6201171e 4080 apply_wqattrs_commit(ctx);
2d5f0764
LJ
4081 apply_wqattrs_cleanup(ctx);
4082
6201171e 4083 return 0;
9e8cd2f5
TH
4084}
4085
a0111cf6
LJ
4086/**
4087 * apply_workqueue_attrs - apply new workqueue_attrs to an unbound workqueue
4088 * @wq: the target workqueue
4089 * @attrs: the workqueue_attrs to apply, allocated with alloc_workqueue_attrs()
4090 *
4091 * Apply @attrs to an unbound workqueue @wq. Unless disabled, on NUMA
4092 * machines, this function maps a separate pwq to each NUMA node with
4093 * possibles CPUs in @attrs->cpumask so that work items are affine to the
4094 * NUMA node it was issued on. Older pwqs are released as in-flight work
4095 * items finish. Note that a work item which repeatedly requeues itself
4096 * back-to-back will stay on its current pwq.
4097 *
4098 * Performs GFP_KERNEL allocations.
4099 *
ffd8bea8 4100 * Assumes caller has CPU hotplug read exclusion, i.e. cpus_read_lock().
509b3204 4101 *
a0111cf6
LJ
4102 * Return: 0 on success and -errno on failure.
4103 */
513c98d0 4104int apply_workqueue_attrs(struct workqueue_struct *wq,
a0111cf6
LJ
4105 const struct workqueue_attrs *attrs)
4106{
4107 int ret;
4108
509b3204
DJ
4109 lockdep_assert_cpus_held();
4110
4111 mutex_lock(&wq_pool_mutex);
a0111cf6 4112 ret = apply_workqueue_attrs_locked(wq, attrs);
509b3204 4113 mutex_unlock(&wq_pool_mutex);
a0111cf6
LJ
4114
4115 return ret;
4116}
4117
4c16bd32
TH
4118/**
4119 * wq_update_unbound_numa - update NUMA affinity of a wq for CPU hot[un]plug
4120 * @wq: the target workqueue
4121 * @cpu: the CPU coming up or going down
4122 * @online: whether @cpu is coming up or going down
4123 *
4124 * This function is to be called from %CPU_DOWN_PREPARE, %CPU_ONLINE and
4125 * %CPU_DOWN_FAILED. @cpu is being hot[un]plugged, update NUMA affinity of
4126 * @wq accordingly.
4127 *
4128 * If NUMA affinity can't be adjusted due to memory allocation failure, it
4129 * falls back to @wq->dfl_pwq which may not be optimal but is always
4130 * correct.
4131 *
4132 * Note that when the last allowed CPU of a NUMA node goes offline for a
4133 * workqueue with a cpumask spanning multiple nodes, the workers which were
4134 * already executing the work items for the workqueue will lose their CPU
4135 * affinity and may execute on any CPU. This is similar to how per-cpu
4136 * workqueues behave on CPU_DOWN. If a workqueue user wants strict
4137 * affinity, it's the user's responsibility to flush the work item from
4138 * CPU_DOWN_PREPARE.
4139 */
4140static void wq_update_unbound_numa(struct workqueue_struct *wq, int cpu,
4141 bool online)
4142{
4143 int node = cpu_to_node(cpu);
4144 int cpu_off = online ? -1 : cpu;
4145 struct pool_workqueue *old_pwq = NULL, *pwq;
4146 struct workqueue_attrs *target_attrs;
4147 cpumask_t *cpumask;
4148
4149 lockdep_assert_held(&wq_pool_mutex);
4150
f7142ed4
LJ
4151 if (!wq_numa_enabled || !(wq->flags & WQ_UNBOUND) ||
4152 wq->unbound_attrs->no_numa)
4c16bd32
TH
4153 return;
4154
4155 /*
4156 * We don't wanna alloc/free wq_attrs for each wq for each CPU.
4157 * Let's use a preallocated one. The following buf is protected by
4158 * CPU hotplug exclusion.
4159 */
4160 target_attrs = wq_update_unbound_numa_attrs_buf;
4161 cpumask = target_attrs->cpumask;
4162
4c16bd32
TH
4163 copy_workqueue_attrs(target_attrs, wq->unbound_attrs);
4164 pwq = unbound_pwq_by_node(wq, node);
4165
4166 /*
4167 * Let's determine what needs to be done. If the target cpumask is
042f7df1
LJ
4168 * different from the default pwq's, we need to compare it to @pwq's
4169 * and create a new one if they don't match. If the target cpumask
4170 * equals the default pwq's, the default pwq should be used.
4c16bd32 4171 */
042f7df1 4172 if (wq_calc_node_cpumask(wq->dfl_pwq->pool->attrs, node, cpu_off, cpumask)) {
4c16bd32 4173 if (cpumask_equal(cpumask, pwq->pool->attrs->cpumask))
f7142ed4 4174 return;
4c16bd32 4175 } else {
534a3fbb 4176 goto use_dfl_pwq;
4c16bd32
TH
4177 }
4178
4c16bd32
TH
4179 /* create a new pwq */
4180 pwq = alloc_unbound_pwq(wq, target_attrs);
4181 if (!pwq) {
2d916033
FF
4182 pr_warn("workqueue: allocation failed while updating NUMA affinity of \"%s\"\n",
4183 wq->name);
77f300b1 4184 goto use_dfl_pwq;
4c16bd32
TH
4185 }
4186
f7142ed4 4187 /* Install the new pwq. */
4c16bd32
TH
4188 mutex_lock(&wq->mutex);
4189 old_pwq = numa_pwq_tbl_install(wq, node, pwq);
4190 goto out_unlock;
4191
4192use_dfl_pwq:
f7142ed4 4193 mutex_lock(&wq->mutex);
a9b8a985 4194 raw_spin_lock_irq(&wq->dfl_pwq->pool->lock);
4c16bd32 4195 get_pwq(wq->dfl_pwq);
a9b8a985 4196 raw_spin_unlock_irq(&wq->dfl_pwq->pool->lock);
4c16bd32
TH
4197 old_pwq = numa_pwq_tbl_install(wq, node, wq->dfl_pwq);
4198out_unlock:
4199 mutex_unlock(&wq->mutex);
4200 put_pwq_unlocked(old_pwq);
4201}
4202
30cdf249 4203static int alloc_and_link_pwqs(struct workqueue_struct *wq)
0f900049 4204{
49e3cf44 4205 bool highpri = wq->flags & WQ_HIGHPRI;
8a2b7538 4206 int cpu, ret;
30cdf249
TH
4207
4208 if (!(wq->flags & WQ_UNBOUND)) {
420c0ddb
TH
4209 wq->cpu_pwqs = alloc_percpu(struct pool_workqueue);
4210 if (!wq->cpu_pwqs)
30cdf249
TH
4211 return -ENOMEM;
4212
4213 for_each_possible_cpu(cpu) {
7fb98ea7
TH
4214 struct pool_workqueue *pwq =
4215 per_cpu_ptr(wq->cpu_pwqs, cpu);
7a62c2c8 4216 struct worker_pool *cpu_pools =
f02ae73a 4217 per_cpu(cpu_worker_pools, cpu);
f3421797 4218
f147f29e
TH
4219 init_pwq(pwq, wq, &cpu_pools[highpri]);
4220
4221 mutex_lock(&wq->mutex);
1befcf30 4222 link_pwq(pwq);
f147f29e 4223 mutex_unlock(&wq->mutex);
30cdf249 4224 }
9e8cd2f5 4225 return 0;
509b3204
DJ
4226 }
4227
ffd8bea8 4228 cpus_read_lock();
509b3204 4229 if (wq->flags & __WQ_ORDERED) {
8a2b7538
TH
4230 ret = apply_workqueue_attrs(wq, ordered_wq_attrs[highpri]);
4231 /* there should only be single pwq for ordering guarantee */
4232 WARN(!ret && (wq->pwqs.next != &wq->dfl_pwq->pwqs_node ||
4233 wq->pwqs.prev != &wq->dfl_pwq->pwqs_node),
4234 "ordering guarantee broken for workqueue %s\n", wq->name);
30cdf249 4235 } else {
509b3204 4236 ret = apply_workqueue_attrs(wq, unbound_std_wq_attrs[highpri]);
30cdf249 4237 }
ffd8bea8 4238 cpus_read_unlock();
509b3204
DJ
4239
4240 return ret;
0f900049
TH
4241}
4242
f3421797
TH
4243static int wq_clamp_max_active(int max_active, unsigned int flags,
4244 const char *name)
b71ab8c2 4245{
f3421797
TH
4246 int lim = flags & WQ_UNBOUND ? WQ_UNBOUND_MAX_ACTIVE : WQ_MAX_ACTIVE;
4247
4248 if (max_active < 1 || max_active > lim)
044c782c
VI
4249 pr_warn("workqueue: max_active %d requested for %s is out of range, clamping between %d and %d\n",
4250 max_active, name, 1, lim);
b71ab8c2 4251
f3421797 4252 return clamp_val(max_active, 1, lim);
b71ab8c2
TH
4253}
4254
983c7515
TH
4255/*
4256 * Workqueues which may be used during memory reclaim should have a rescuer
4257 * to guarantee forward progress.
4258 */
4259static int init_rescuer(struct workqueue_struct *wq)
4260{
4261 struct worker *rescuer;
b92b36ea 4262 int ret;
983c7515
TH
4263
4264 if (!(wq->flags & WQ_MEM_RECLAIM))
4265 return 0;
4266
4267 rescuer = alloc_worker(NUMA_NO_NODE);
4268 if (!rescuer)
4269 return -ENOMEM;
4270
4271 rescuer->rescue_wq = wq;
4272 rescuer->task = kthread_create(rescuer_thread, rescuer, "%s", wq->name);
f187b697 4273 if (IS_ERR(rescuer->task)) {
b92b36ea 4274 ret = PTR_ERR(rescuer->task);
983c7515 4275 kfree(rescuer);
b92b36ea 4276 return ret;
983c7515
TH
4277 }
4278
4279 wq->rescuer = rescuer;
4280 kthread_bind_mask(rescuer->task, cpu_possible_mask);
4281 wake_up_process(rescuer->task);
4282
4283 return 0;
4284}
4285
a2775bbc 4286__printf(1, 4)
669de8bd
BVA
4287struct workqueue_struct *alloc_workqueue(const char *fmt,
4288 unsigned int flags,
4289 int max_active, ...)
1da177e4 4290{
df2d5ae4 4291 size_t tbl_size = 0;
ecf6881f 4292 va_list args;
1da177e4 4293 struct workqueue_struct *wq;
49e3cf44 4294 struct pool_workqueue *pwq;
b196be89 4295
5c0338c6
TH
4296 /*
4297 * Unbound && max_active == 1 used to imply ordered, which is no
4298 * longer the case on NUMA machines due to per-node pools. While
4299 * alloc_ordered_workqueue() is the right way to create an ordered
4300 * workqueue, keep the previous behavior to avoid subtle breakages
4301 * on NUMA.
4302 */
4303 if ((flags & WQ_UNBOUND) && max_active == 1)
4304 flags |= __WQ_ORDERED;
4305
cee22a15
VK
4306 /* see the comment above the definition of WQ_POWER_EFFICIENT */
4307 if ((flags & WQ_POWER_EFFICIENT) && wq_power_efficient)
4308 flags |= WQ_UNBOUND;
4309
ecf6881f 4310 /* allocate wq and format name */
df2d5ae4 4311 if (flags & WQ_UNBOUND)
ddcb57e2 4312 tbl_size = nr_node_ids * sizeof(wq->numa_pwq_tbl[0]);
df2d5ae4
TH
4313
4314 wq = kzalloc(sizeof(*wq) + tbl_size, GFP_KERNEL);
b196be89 4315 if (!wq)
d2c1d404 4316 return NULL;
b196be89 4317
6029a918 4318 if (flags & WQ_UNBOUND) {
be69d00d 4319 wq->unbound_attrs = alloc_workqueue_attrs();
6029a918
TH
4320 if (!wq->unbound_attrs)
4321 goto err_free_wq;
4322 }
4323
669de8bd 4324 va_start(args, max_active);
ecf6881f 4325 vsnprintf(wq->name, sizeof(wq->name), fmt, args);
b196be89 4326 va_end(args);
1da177e4 4327
d320c038 4328 max_active = max_active ?: WQ_DFL_ACTIVE;
b196be89 4329 max_active = wq_clamp_max_active(max_active, flags, wq->name);
3af24433 4330
b196be89 4331 /* init wq */
97e37d7b 4332 wq->flags = flags;
a0a1a5fd 4333 wq->saved_max_active = max_active;
3c25a55d 4334 mutex_init(&wq->mutex);
112202d9 4335 atomic_set(&wq->nr_pwqs_to_flush, 0);
30cdf249 4336 INIT_LIST_HEAD(&wq->pwqs);
73f53c4a
TH
4337 INIT_LIST_HEAD(&wq->flusher_queue);
4338 INIT_LIST_HEAD(&wq->flusher_overflow);
493a1724 4339 INIT_LIST_HEAD(&wq->maydays);
502ca9d8 4340
669de8bd 4341 wq_init_lockdep(wq);
cce1a165 4342 INIT_LIST_HEAD(&wq->list);
3af24433 4343
30cdf249 4344 if (alloc_and_link_pwqs(wq) < 0)
82efcab3 4345 goto err_unreg_lockdep;
1537663f 4346
40c17f75 4347 if (wq_online && init_rescuer(wq) < 0)
983c7515 4348 goto err_destroy;
3af24433 4349
226223ab
TH
4350 if ((wq->flags & WQ_SYSFS) && workqueue_sysfs_register(wq))
4351 goto err_destroy;
4352
a0a1a5fd 4353 /*
68e13a67
LJ
4354 * wq_pool_mutex protects global freeze state and workqueues list.
4355 * Grab it, adjust max_active and add the new @wq to workqueues
4356 * list.
a0a1a5fd 4357 */
68e13a67 4358 mutex_lock(&wq_pool_mutex);
a0a1a5fd 4359
a357fc03 4360 mutex_lock(&wq->mutex);
699ce097
TH
4361 for_each_pwq(pwq, wq)
4362 pwq_adjust_max_active(pwq);
a357fc03 4363 mutex_unlock(&wq->mutex);
a0a1a5fd 4364
e2dca7ad 4365 list_add_tail_rcu(&wq->list, &workqueues);
a0a1a5fd 4366
68e13a67 4367 mutex_unlock(&wq_pool_mutex);
1537663f 4368
3af24433 4369 return wq;
d2c1d404 4370
82efcab3 4371err_unreg_lockdep:
009bb421
BVA
4372 wq_unregister_lockdep(wq);
4373 wq_free_lockdep(wq);
82efcab3 4374err_free_wq:
6029a918 4375 free_workqueue_attrs(wq->unbound_attrs);
d2c1d404
TH
4376 kfree(wq);
4377 return NULL;
4378err_destroy:
4379 destroy_workqueue(wq);
4690c4ab 4380 return NULL;
3af24433 4381}
669de8bd 4382EXPORT_SYMBOL_GPL(alloc_workqueue);
1da177e4 4383
c29eb853
TH
4384static bool pwq_busy(struct pool_workqueue *pwq)
4385{
4386 int i;
4387
4388 for (i = 0; i < WORK_NR_COLORS; i++)
4389 if (pwq->nr_in_flight[i])
4390 return true;
4391
4392 if ((pwq != pwq->wq->dfl_pwq) && (pwq->refcnt > 1))
4393 return true;
f97a4a1a 4394 if (pwq->nr_active || !list_empty(&pwq->inactive_works))
c29eb853
TH
4395 return true;
4396
4397 return false;
4398}
4399
3af24433
ON
4400/**
4401 * destroy_workqueue - safely terminate a workqueue
4402 * @wq: target workqueue
4403 *
4404 * Safely destroy a workqueue. All work currently pending will be done first.
4405 */
4406void destroy_workqueue(struct workqueue_struct *wq)
4407{
49e3cf44 4408 struct pool_workqueue *pwq;
4c16bd32 4409 int node;
3af24433 4410
def98c84
TH
4411 /*
4412 * Remove it from sysfs first so that sanity check failure doesn't
4413 * lead to sysfs name conflicts.
4414 */
4415 workqueue_sysfs_unregister(wq);
4416
9c5a2ba7
TH
4417 /* drain it before proceeding with destruction */
4418 drain_workqueue(wq);
c8efcc25 4419
def98c84
TH
4420 /* kill rescuer, if sanity checks fail, leave it w/o rescuer */
4421 if (wq->rescuer) {
4422 struct worker *rescuer = wq->rescuer;
4423
4424 /* this prevents new queueing */
a9b8a985 4425 raw_spin_lock_irq(&wq_mayday_lock);
def98c84 4426 wq->rescuer = NULL;
a9b8a985 4427 raw_spin_unlock_irq(&wq_mayday_lock);
def98c84
TH
4428
4429 /* rescuer will empty maydays list before exiting */
4430 kthread_stop(rescuer->task);
8efe1223 4431 kfree(rescuer);
def98c84
TH
4432 }
4433
c29eb853
TH
4434 /*
4435 * Sanity checks - grab all the locks so that we wait for all
4436 * in-flight operations which may do put_pwq().
4437 */
4438 mutex_lock(&wq_pool_mutex);
b09f4fd3 4439 mutex_lock(&wq->mutex);
49e3cf44 4440 for_each_pwq(pwq, wq) {
a9b8a985 4441 raw_spin_lock_irq(&pwq->pool->lock);
c29eb853 4442 if (WARN_ON(pwq_busy(pwq))) {
1d9a6159
KW
4443 pr_warn("%s: %s has the following busy pwq\n",
4444 __func__, wq->name);
c29eb853 4445 show_pwq(pwq);
a9b8a985 4446 raw_spin_unlock_irq(&pwq->pool->lock);
b09f4fd3 4447 mutex_unlock(&wq->mutex);
c29eb853 4448 mutex_unlock(&wq_pool_mutex);
55df0933 4449 show_one_workqueue(wq);
6183c009 4450 return;
76af4d93 4451 }
a9b8a985 4452 raw_spin_unlock_irq(&pwq->pool->lock);
6183c009 4453 }
b09f4fd3 4454 mutex_unlock(&wq->mutex);
6183c009 4455
a0a1a5fd
TH
4456 /*
4457 * wq list is used to freeze wq, remove from list after
4458 * flushing is complete in case freeze races us.
4459 */
e2dca7ad 4460 list_del_rcu(&wq->list);
68e13a67 4461 mutex_unlock(&wq_pool_mutex);
3af24433 4462
8864b4e5 4463 if (!(wq->flags & WQ_UNBOUND)) {
669de8bd 4464 wq_unregister_lockdep(wq);
8864b4e5
TH
4465 /*
4466 * The base ref is never dropped on per-cpu pwqs. Directly
e2dca7ad 4467 * schedule RCU free.
8864b4e5 4468 */
25b00775 4469 call_rcu(&wq->rcu, rcu_free_wq);
8864b4e5
TH
4470 } else {
4471 /*
4472 * We're the sole accessor of @wq at this point. Directly
4c16bd32
TH
4473 * access numa_pwq_tbl[] and dfl_pwq to put the base refs.
4474 * @wq will be freed when the last pwq is released.
8864b4e5 4475 */
4c16bd32
TH
4476 for_each_node(node) {
4477 pwq = rcu_access_pointer(wq->numa_pwq_tbl[node]);
4478 RCU_INIT_POINTER(wq->numa_pwq_tbl[node], NULL);
4479 put_pwq_unlocked(pwq);
4480 }
4481
4482 /*
4483 * Put dfl_pwq. @wq may be freed any time after dfl_pwq is
4484 * put. Don't access it afterwards.
4485 */
4486 pwq = wq->dfl_pwq;
4487 wq->dfl_pwq = NULL;
dce90d47 4488 put_pwq_unlocked(pwq);
29c91e99 4489 }
3af24433
ON
4490}
4491EXPORT_SYMBOL_GPL(destroy_workqueue);
4492
dcd989cb
TH
4493/**
4494 * workqueue_set_max_active - adjust max_active of a workqueue
4495 * @wq: target workqueue
4496 * @max_active: new max_active value.
4497 *
4498 * Set max_active of @wq to @max_active.
4499 *
4500 * CONTEXT:
4501 * Don't call from IRQ context.
4502 */
4503void workqueue_set_max_active(struct workqueue_struct *wq, int max_active)
4504{
49e3cf44 4505 struct pool_workqueue *pwq;
dcd989cb 4506
8719dcea 4507 /* disallow meddling with max_active for ordered workqueues */
0a94efb5 4508 if (WARN_ON(wq->flags & __WQ_ORDERED_EXPLICIT))
8719dcea
TH
4509 return;
4510
f3421797 4511 max_active = wq_clamp_max_active(max_active, wq->flags, wq->name);
dcd989cb 4512
a357fc03 4513 mutex_lock(&wq->mutex);
dcd989cb 4514
0a94efb5 4515 wq->flags &= ~__WQ_ORDERED;
dcd989cb
TH
4516 wq->saved_max_active = max_active;
4517
699ce097
TH
4518 for_each_pwq(pwq, wq)
4519 pwq_adjust_max_active(pwq);
93981800 4520
a357fc03 4521 mutex_unlock(&wq->mutex);
15316ba8 4522}
dcd989cb 4523EXPORT_SYMBOL_GPL(workqueue_set_max_active);
15316ba8 4524
27d4ee03
LW
4525/**
4526 * current_work - retrieve %current task's work struct
4527 *
4528 * Determine if %current task is a workqueue worker and what it's working on.
4529 * Useful to find out the context that the %current task is running in.
4530 *
4531 * Return: work struct if %current task is a workqueue worker, %NULL otherwise.
4532 */
4533struct work_struct *current_work(void)
4534{
4535 struct worker *worker = current_wq_worker();
4536
4537 return worker ? worker->current_work : NULL;
4538}
4539EXPORT_SYMBOL(current_work);
4540
e6267616
TH
4541/**
4542 * current_is_workqueue_rescuer - is %current workqueue rescuer?
4543 *
4544 * Determine whether %current is a workqueue rescuer. Can be used from
4545 * work functions to determine whether it's being run off the rescuer task.
d185af30
YB
4546 *
4547 * Return: %true if %current is a workqueue rescuer. %false otherwise.
e6267616
TH
4548 */
4549bool current_is_workqueue_rescuer(void)
4550{
4551 struct worker *worker = current_wq_worker();
4552
6a092dfd 4553 return worker && worker->rescue_wq;
e6267616
TH
4554}
4555
eef6a7d5 4556/**
dcd989cb
TH
4557 * workqueue_congested - test whether a workqueue is congested
4558 * @cpu: CPU in question
4559 * @wq: target workqueue
eef6a7d5 4560 *
dcd989cb
TH
4561 * Test whether @wq's cpu workqueue for @cpu is congested. There is
4562 * no synchronization around this function and the test result is
4563 * unreliable and only useful as advisory hints or for debugging.
eef6a7d5 4564 *
d3251859
TH
4565 * If @cpu is WORK_CPU_UNBOUND, the test is performed on the local CPU.
4566 * Note that both per-cpu and unbound workqueues may be associated with
4567 * multiple pool_workqueues which have separate congested states. A
4568 * workqueue being congested on one CPU doesn't mean the workqueue is also
4569 * contested on other CPUs / NUMA nodes.
4570 *
d185af30 4571 * Return:
dcd989cb 4572 * %true if congested, %false otherwise.
eef6a7d5 4573 */
d84ff051 4574bool workqueue_congested(int cpu, struct workqueue_struct *wq)
1da177e4 4575{
7fb98ea7 4576 struct pool_workqueue *pwq;
76af4d93
TH
4577 bool ret;
4578
24acfb71
TG
4579 rcu_read_lock();
4580 preempt_disable();
7fb98ea7 4581
d3251859
TH
4582 if (cpu == WORK_CPU_UNBOUND)
4583 cpu = smp_processor_id();
4584
7fb98ea7
TH
4585 if (!(wq->flags & WQ_UNBOUND))
4586 pwq = per_cpu_ptr(wq->cpu_pwqs, cpu);
4587 else
df2d5ae4 4588 pwq = unbound_pwq_by_node(wq, cpu_to_node(cpu));
dcd989cb 4589
f97a4a1a 4590 ret = !list_empty(&pwq->inactive_works);
24acfb71
TG
4591 preempt_enable();
4592 rcu_read_unlock();
76af4d93
TH
4593
4594 return ret;
1da177e4 4595}
dcd989cb 4596EXPORT_SYMBOL_GPL(workqueue_congested);
1da177e4 4597
dcd989cb
TH
4598/**
4599 * work_busy - test whether a work is currently pending or running
4600 * @work: the work to be tested
4601 *
4602 * Test whether @work is currently pending or running. There is no
4603 * synchronization around this function and the test result is
4604 * unreliable and only useful as advisory hints or for debugging.
dcd989cb 4605 *
d185af30 4606 * Return:
dcd989cb
TH
4607 * OR'd bitmask of WORK_BUSY_* bits.
4608 */
4609unsigned int work_busy(struct work_struct *work)
1da177e4 4610{
fa1b54e6 4611 struct worker_pool *pool;
dcd989cb
TH
4612 unsigned long flags;
4613 unsigned int ret = 0;
1da177e4 4614
dcd989cb
TH
4615 if (work_pending(work))
4616 ret |= WORK_BUSY_PENDING;
1da177e4 4617
24acfb71 4618 rcu_read_lock();
fa1b54e6 4619 pool = get_work_pool(work);
038366c5 4620 if (pool) {
a9b8a985 4621 raw_spin_lock_irqsave(&pool->lock, flags);
038366c5
LJ
4622 if (find_worker_executing_work(pool, work))
4623 ret |= WORK_BUSY_RUNNING;
a9b8a985 4624 raw_spin_unlock_irqrestore(&pool->lock, flags);
038366c5 4625 }
24acfb71 4626 rcu_read_unlock();
1da177e4 4627
dcd989cb 4628 return ret;
1da177e4 4629}
dcd989cb 4630EXPORT_SYMBOL_GPL(work_busy);
1da177e4 4631
3d1cb205
TH
4632/**
4633 * set_worker_desc - set description for the current work item
4634 * @fmt: printf-style format string
4635 * @...: arguments for the format string
4636 *
4637 * This function can be called by a running work function to describe what
4638 * the work item is about. If the worker task gets dumped, this
4639 * information will be printed out together to help debugging. The
4640 * description can be at most WORKER_DESC_LEN including the trailing '\0'.
4641 */
4642void set_worker_desc(const char *fmt, ...)
4643{
4644 struct worker *worker = current_wq_worker();
4645 va_list args;
4646
4647 if (worker) {
4648 va_start(args, fmt);
4649 vsnprintf(worker->desc, sizeof(worker->desc), fmt, args);
4650 va_end(args);
3d1cb205
TH
4651 }
4652}
5c750d58 4653EXPORT_SYMBOL_GPL(set_worker_desc);
3d1cb205
TH
4654
4655/**
4656 * print_worker_info - print out worker information and description
4657 * @log_lvl: the log level to use when printing
4658 * @task: target task
4659 *
4660 * If @task is a worker and currently executing a work item, print out the
4661 * name of the workqueue being serviced and worker description set with
4662 * set_worker_desc() by the currently executing work item.
4663 *
4664 * This function can be safely called on any task as long as the
4665 * task_struct itself is accessible. While safe, this function isn't
4666 * synchronized and may print out mixups or garbages of limited length.
4667 */
4668void print_worker_info(const char *log_lvl, struct task_struct *task)
4669{
4670 work_func_t *fn = NULL;
4671 char name[WQ_NAME_LEN] = { };
4672 char desc[WORKER_DESC_LEN] = { };
4673 struct pool_workqueue *pwq = NULL;
4674 struct workqueue_struct *wq = NULL;
3d1cb205
TH
4675 struct worker *worker;
4676
4677 if (!(task->flags & PF_WQ_WORKER))
4678 return;
4679
4680 /*
4681 * This function is called without any synchronization and @task
4682 * could be in any state. Be careful with dereferences.
4683 */
e700591a 4684 worker = kthread_probe_data(task);
3d1cb205
TH
4685
4686 /*
8bf89593
TH
4687 * Carefully copy the associated workqueue's workfn, name and desc.
4688 * Keep the original last '\0' in case the original is garbage.
3d1cb205 4689 */
fe557319
CH
4690 copy_from_kernel_nofault(&fn, &worker->current_func, sizeof(fn));
4691 copy_from_kernel_nofault(&pwq, &worker->current_pwq, sizeof(pwq));
4692 copy_from_kernel_nofault(&wq, &pwq->wq, sizeof(wq));
4693 copy_from_kernel_nofault(name, wq->name, sizeof(name) - 1);
4694 copy_from_kernel_nofault(desc, worker->desc, sizeof(desc) - 1);
3d1cb205
TH
4695
4696 if (fn || name[0] || desc[0]) {
d75f773c 4697 printk("%sWorkqueue: %s %ps", log_lvl, name, fn);
8bf89593 4698 if (strcmp(name, desc))
3d1cb205
TH
4699 pr_cont(" (%s)", desc);
4700 pr_cont("\n");
4701 }
4702}
4703
3494fc30
TH
4704static void pr_cont_pool_info(struct worker_pool *pool)
4705{
4706 pr_cont(" cpus=%*pbl", nr_cpumask_bits, pool->attrs->cpumask);
4707 if (pool->node != NUMA_NO_NODE)
4708 pr_cont(" node=%d", pool->node);
4709 pr_cont(" flags=0x%x nice=%d", pool->flags, pool->attrs->nice);
4710}
4711
4712static void pr_cont_work(bool comma, struct work_struct *work)
4713{
4714 if (work->func == wq_barrier_func) {
4715 struct wq_barrier *barr;
4716
4717 barr = container_of(work, struct wq_barrier, work);
4718
4719 pr_cont("%s BAR(%d)", comma ? "," : "",
4720 task_pid_nr(barr->task));
4721 } else {
d75f773c 4722 pr_cont("%s %ps", comma ? "," : "", work->func);
3494fc30
TH
4723 }
4724}
4725
4726static void show_pwq(struct pool_workqueue *pwq)
4727{
4728 struct worker_pool *pool = pwq->pool;
4729 struct work_struct *work;
4730 struct worker *worker;
4731 bool has_in_flight = false, has_pending = false;
4732 int bkt;
4733
4734 pr_info(" pwq %d:", pool->id);
4735 pr_cont_pool_info(pool);
4736
e66b39af
TH
4737 pr_cont(" active=%d/%d refcnt=%d%s\n",
4738 pwq->nr_active, pwq->max_active, pwq->refcnt,
3494fc30
TH
4739 !list_empty(&pwq->mayday_node) ? " MAYDAY" : "");
4740
4741 hash_for_each(pool->busy_hash, bkt, worker, hentry) {
4742 if (worker->current_pwq == pwq) {
4743 has_in_flight = true;
4744 break;
4745 }
4746 }
4747 if (has_in_flight) {
4748 bool comma = false;
4749
4750 pr_info(" in-flight:");
4751 hash_for_each(pool->busy_hash, bkt, worker, hentry) {
4752 if (worker->current_pwq != pwq)
4753 continue;
4754
d75f773c 4755 pr_cont("%s %d%s:%ps", comma ? "," : "",
3494fc30 4756 task_pid_nr(worker->task),
30ae2fc0 4757 worker->rescue_wq ? "(RESCUER)" : "",
3494fc30
TH
4758 worker->current_func);
4759 list_for_each_entry(work, &worker->scheduled, entry)
4760 pr_cont_work(false, work);
4761 comma = true;
4762 }
4763 pr_cont("\n");
4764 }
4765
4766 list_for_each_entry(work, &pool->worklist, entry) {
4767 if (get_work_pwq(work) == pwq) {
4768 has_pending = true;
4769 break;
4770 }
4771 }
4772 if (has_pending) {
4773 bool comma = false;
4774
4775 pr_info(" pending:");
4776 list_for_each_entry(work, &pool->worklist, entry) {
4777 if (get_work_pwq(work) != pwq)
4778 continue;
4779
4780 pr_cont_work(comma, work);
4781 comma = !(*work_data_bits(work) & WORK_STRUCT_LINKED);
4782 }
4783 pr_cont("\n");
4784 }
4785
f97a4a1a 4786 if (!list_empty(&pwq->inactive_works)) {
3494fc30
TH
4787 bool comma = false;
4788
f97a4a1a
LJ
4789 pr_info(" inactive:");
4790 list_for_each_entry(work, &pwq->inactive_works, entry) {
3494fc30
TH
4791 pr_cont_work(comma, work);
4792 comma = !(*work_data_bits(work) & WORK_STRUCT_LINKED);
4793 }
4794 pr_cont("\n");
4795 }
4796}
4797
4798/**
55df0933
IK
4799 * show_one_workqueue - dump state of specified workqueue
4800 * @wq: workqueue whose state will be printed
3494fc30 4801 */
55df0933 4802void show_one_workqueue(struct workqueue_struct *wq)
3494fc30 4803{
55df0933
IK
4804 struct pool_workqueue *pwq;
4805 bool idle = true;
3494fc30 4806 unsigned long flags;
3494fc30 4807
55df0933
IK
4808 for_each_pwq(pwq, wq) {
4809 if (pwq->nr_active || !list_empty(&pwq->inactive_works)) {
4810 idle = false;
4811 break;
3494fc30 4812 }
55df0933
IK
4813 }
4814 if (idle) /* Nothing to print for idle workqueue */
4815 return;
3494fc30 4816
55df0933 4817 pr_info("workqueue %s: flags=0x%x\n", wq->name, wq->flags);
3494fc30 4818
55df0933
IK
4819 for_each_pwq(pwq, wq) {
4820 raw_spin_lock_irqsave(&pwq->pool->lock, flags);
4821 if (pwq->nr_active || !list_empty(&pwq->inactive_works)) {
62635ea8 4822 /*
55df0933
IK
4823 * Defer printing to avoid deadlocks in console
4824 * drivers that queue work while holding locks
4825 * also taken in their write paths.
62635ea8 4826 */
55df0933
IK
4827 printk_deferred_enter();
4828 show_pwq(pwq);
4829 printk_deferred_exit();
3494fc30 4830 }
55df0933 4831 raw_spin_unlock_irqrestore(&pwq->pool->lock, flags);
62635ea8
SS
4832 /*
4833 * We could be printing a lot from atomic context, e.g.
55df0933 4834 * sysrq-t -> show_all_workqueues(). Avoid triggering
62635ea8
SS
4835 * hard lockup.
4836 */
4837 touch_nmi_watchdog();
3494fc30
TH
4838 }
4839
55df0933
IK
4840}
4841
4842/**
4843 * show_one_worker_pool - dump state of specified worker pool
4844 * @pool: worker pool whose state will be printed
4845 */
4846static void show_one_worker_pool(struct worker_pool *pool)
4847{
4848 struct worker *worker;
4849 bool first = true;
4850 unsigned long flags;
4851
4852 raw_spin_lock_irqsave(&pool->lock, flags);
4853 if (pool->nr_workers == pool->nr_idle)
4854 goto next_pool;
4855 /*
4856 * Defer printing to avoid deadlocks in console drivers that
4857 * queue work while holding locks also taken in their write
4858 * paths.
4859 */
4860 printk_deferred_enter();
4861 pr_info("pool %d:", pool->id);
4862 pr_cont_pool_info(pool);
4863 pr_cont(" hung=%us workers=%d",
4864 jiffies_to_msecs(jiffies - pool->watchdog_ts) / 1000,
4865 pool->nr_workers);
4866 if (pool->manager)
4867 pr_cont(" manager: %d",
4868 task_pid_nr(pool->manager->task));
4869 list_for_each_entry(worker, &pool->idle_list, entry) {
4870 pr_cont(" %s%d", first ? "idle: " : "",
4871 task_pid_nr(worker->task));
4872 first = false;
4873 }
4874 pr_cont("\n");
4875 printk_deferred_exit();
4876next_pool:
4877 raw_spin_unlock_irqrestore(&pool->lock, flags);
4878 /*
4879 * We could be printing a lot from atomic context, e.g.
4880 * sysrq-t -> show_all_workqueues(). Avoid triggering
4881 * hard lockup.
4882 */
4883 touch_nmi_watchdog();
4884
4885}
4886
4887/**
4888 * show_all_workqueues - dump workqueue state
4889 *
4890 * Called from a sysrq handler or try_to_freeze_tasks() and prints out
4891 * all busy workqueues and pools.
4892 */
4893void show_all_workqueues(void)
4894{
4895 struct workqueue_struct *wq;
4896 struct worker_pool *pool;
4897 int pi;
4898
4899 rcu_read_lock();
4900
4901 pr_info("Showing busy workqueues and worker pools:\n");
4902
4903 list_for_each_entry_rcu(wq, &workqueues, list)
4904 show_one_workqueue(wq);
4905
4906 for_each_pool(pool, pi)
4907 show_one_worker_pool(pool);
4908
24acfb71 4909 rcu_read_unlock();
3494fc30
TH
4910}
4911
6b59808b
TH
4912/* used to show worker information through /proc/PID/{comm,stat,status} */
4913void wq_worker_comm(char *buf, size_t size, struct task_struct *task)
4914{
6b59808b
TH
4915 int off;
4916
4917 /* always show the actual comm */
4918 off = strscpy(buf, task->comm, size);
4919 if (off < 0)
4920 return;
4921
197f6acc 4922 /* stabilize PF_WQ_WORKER and worker pool association */
6b59808b
TH
4923 mutex_lock(&wq_pool_attach_mutex);
4924
197f6acc
TH
4925 if (task->flags & PF_WQ_WORKER) {
4926 struct worker *worker = kthread_data(task);
4927 struct worker_pool *pool = worker->pool;
6b59808b 4928
197f6acc 4929 if (pool) {
a9b8a985 4930 raw_spin_lock_irq(&pool->lock);
197f6acc
TH
4931 /*
4932 * ->desc tracks information (wq name or
4933 * set_worker_desc()) for the latest execution. If
4934 * current, prepend '+', otherwise '-'.
4935 */
4936 if (worker->desc[0] != '\0') {
4937 if (worker->current_work)
4938 scnprintf(buf + off, size - off, "+%s",
4939 worker->desc);
4940 else
4941 scnprintf(buf + off, size - off, "-%s",
4942 worker->desc);
4943 }
a9b8a985 4944 raw_spin_unlock_irq(&pool->lock);
6b59808b 4945 }
6b59808b
TH
4946 }
4947
4948 mutex_unlock(&wq_pool_attach_mutex);
4949}
4950
66448bc2
MM
4951#ifdef CONFIG_SMP
4952
db7bccf4
TH
4953/*
4954 * CPU hotplug.
4955 *
e22bee78 4956 * There are two challenges in supporting CPU hotplug. Firstly, there
112202d9 4957 * are a lot of assumptions on strong associations among work, pwq and
706026c2 4958 * pool which make migrating pending and scheduled works very
e22bee78 4959 * difficult to implement without impacting hot paths. Secondly,
94cf58bb 4960 * worker pools serve mix of short, long and very long running works making
e22bee78
TH
4961 * blocked draining impractical.
4962 *
24647570 4963 * This is solved by allowing the pools to be disassociated from the CPU
628c78e7
TH
4964 * running as an unbound one and allowing it to be reattached later if the
4965 * cpu comes back online.
db7bccf4 4966 */
1da177e4 4967
e8b3f8db 4968static void unbind_workers(int cpu)
3af24433 4969{
4ce62e9e 4970 struct worker_pool *pool;
db7bccf4 4971 struct worker *worker;
3af24433 4972
f02ae73a 4973 for_each_cpu_worker_pool(pool, cpu) {
1258fae7 4974 mutex_lock(&wq_pool_attach_mutex);
a9b8a985 4975 raw_spin_lock_irq(&pool->lock);
3af24433 4976
94cf58bb 4977 /*
92f9c5c4 4978 * We've blocked all attach/detach operations. Make all workers
94cf58bb 4979 * unbound and set DISASSOCIATED. Before this, all workers
11b45b0b 4980 * must be on the cpu. After this, they may become diasporas.
b4ac9384
LJ
4981 * And the preemption disabled section in their sched callbacks
4982 * are guaranteed to see WORKER_UNBOUND since the code here
4983 * is on the same cpu.
94cf58bb 4984 */
da028469 4985 for_each_pool_worker(worker, pool)
c9e7cf27 4986 worker->flags |= WORKER_UNBOUND;
06ba38a9 4987
24647570 4988 pool->flags |= POOL_DISASSOCIATED;
f2d5a0ee 4989
eb283428 4990 /*
989442d7
LJ
4991 * The handling of nr_running in sched callbacks are disabled
4992 * now. Zap nr_running. After this, nr_running stays zero and
4993 * need_more_worker() and keep_working() are always true as
4994 * long as the worklist is not empty. This pool now behaves as
4995 * an unbound (in terms of concurrency management) pool which
eb283428
LJ
4996 * are served by workers tied to the pool.
4997 */
bc35f7ef 4998 pool->nr_running = 0;
eb283428
LJ
4999
5000 /*
5001 * With concurrency management just turned off, a busy
5002 * worker blocking could lead to lengthy stalls. Kick off
5003 * unbound chain execution of currently pending work items.
5004 */
eb283428 5005 wake_up_worker(pool);
989442d7 5006
a9b8a985 5007 raw_spin_unlock_irq(&pool->lock);
989442d7
LJ
5008
5009 for_each_pool_worker(worker, pool) {
5010 kthread_set_per_cpu(worker->task, -1);
46a4d679
LJ
5011 if (cpumask_intersects(wq_unbound_cpumask, cpu_active_mask))
5012 WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task, wq_unbound_cpumask) < 0);
5013 else
5014 WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task, cpu_possible_mask) < 0);
989442d7
LJ
5015 }
5016
5017 mutex_unlock(&wq_pool_attach_mutex);
eb283428 5018 }
3af24433 5019}
3af24433 5020
bd7c089e
TH
5021/**
5022 * rebind_workers - rebind all workers of a pool to the associated CPU
5023 * @pool: pool of interest
5024 *
a9ab775b 5025 * @pool->cpu is coming online. Rebind all workers to the CPU.
bd7c089e
TH
5026 */
5027static void rebind_workers(struct worker_pool *pool)
5028{
a9ab775b 5029 struct worker *worker;
bd7c089e 5030
1258fae7 5031 lockdep_assert_held(&wq_pool_attach_mutex);
bd7c089e 5032
a9ab775b
TH
5033 /*
5034 * Restore CPU affinity of all workers. As all idle workers should
5035 * be on the run-queue of the associated CPU before any local
402dd89d 5036 * wake-ups for concurrency management happen, restore CPU affinity
a9ab775b
TH
5037 * of all workers first and then clear UNBOUND. As we're called
5038 * from CPU_ONLINE, the following shouldn't fail.
5039 */
5c25b5ff
PZ
5040 for_each_pool_worker(worker, pool) {
5041 kthread_set_per_cpu(worker->task, pool->cpu);
a9ab775b
TH
5042 WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task,
5043 pool->attrs->cpumask) < 0);
5c25b5ff 5044 }
bd7c089e 5045
a9b8a985 5046 raw_spin_lock_irq(&pool->lock);
f7c17d26 5047
3de5e884 5048 pool->flags &= ~POOL_DISASSOCIATED;
bd7c089e 5049
da028469 5050 for_each_pool_worker(worker, pool) {
a9ab775b 5051 unsigned int worker_flags = worker->flags;
bd7c089e 5052
a9ab775b
TH
5053 /*
5054 * We want to clear UNBOUND but can't directly call
5055 * worker_clr_flags() or adjust nr_running. Atomically
5056 * replace UNBOUND with another NOT_RUNNING flag REBOUND.
5057 * @worker will clear REBOUND using worker_clr_flags() when
5058 * it initiates the next execution cycle thus restoring
5059 * concurrency management. Note that when or whether
5060 * @worker clears REBOUND doesn't affect correctness.
5061 *
c95491ed 5062 * WRITE_ONCE() is necessary because @worker->flags may be
a9ab775b 5063 * tested without holding any lock in
6d25be57 5064 * wq_worker_running(). Without it, NOT_RUNNING test may
a9ab775b
TH
5065 * fail incorrectly leading to premature concurrency
5066 * management operations.
5067 */
5068 WARN_ON_ONCE(!(worker_flags & WORKER_UNBOUND));
5069 worker_flags |= WORKER_REBOUND;
5070 worker_flags &= ~WORKER_UNBOUND;
c95491ed 5071 WRITE_ONCE(worker->flags, worker_flags);
bd7c089e 5072 }
a9ab775b 5073
a9b8a985 5074 raw_spin_unlock_irq(&pool->lock);
bd7c089e
TH
5075}
5076
7dbc725e
TH
5077/**
5078 * restore_unbound_workers_cpumask - restore cpumask of unbound workers
5079 * @pool: unbound pool of interest
5080 * @cpu: the CPU which is coming up
5081 *
5082 * An unbound pool may end up with a cpumask which doesn't have any online
5083 * CPUs. When a worker of such pool get scheduled, the scheduler resets
5084 * its cpus_allowed. If @cpu is in @pool's cpumask which didn't have any
5085 * online CPU before, cpus_allowed of all its workers should be restored.
5086 */
5087static void restore_unbound_workers_cpumask(struct worker_pool *pool, int cpu)
5088{
5089 static cpumask_t cpumask;
5090 struct worker *worker;
7dbc725e 5091
1258fae7 5092 lockdep_assert_held(&wq_pool_attach_mutex);
7dbc725e
TH
5093
5094 /* is @cpu allowed for @pool? */
5095 if (!cpumask_test_cpu(cpu, pool->attrs->cpumask))
5096 return;
5097
7dbc725e 5098 cpumask_and(&cpumask, pool->attrs->cpumask, cpu_online_mask);
7dbc725e
TH
5099
5100 /* as we're called from CPU_ONLINE, the following shouldn't fail */
da028469 5101 for_each_pool_worker(worker, pool)
d945b5e9 5102 WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task, &cpumask) < 0);
7dbc725e
TH
5103}
5104
7ee681b2
TG
5105int workqueue_prepare_cpu(unsigned int cpu)
5106{
5107 struct worker_pool *pool;
5108
5109 for_each_cpu_worker_pool(pool, cpu) {
5110 if (pool->nr_workers)
5111 continue;
5112 if (!create_worker(pool))
5113 return -ENOMEM;
5114 }
5115 return 0;
5116}
5117
5118int workqueue_online_cpu(unsigned int cpu)
3af24433 5119{
4ce62e9e 5120 struct worker_pool *pool;
4c16bd32 5121 struct workqueue_struct *wq;
7dbc725e 5122 int pi;
3ce63377 5123
7ee681b2 5124 mutex_lock(&wq_pool_mutex);
7dbc725e 5125
7ee681b2 5126 for_each_pool(pool, pi) {
1258fae7 5127 mutex_lock(&wq_pool_attach_mutex);
94cf58bb 5128
7ee681b2
TG
5129 if (pool->cpu == cpu)
5130 rebind_workers(pool);
5131 else if (pool->cpu < 0)
5132 restore_unbound_workers_cpumask(pool, cpu);
94cf58bb 5133
1258fae7 5134 mutex_unlock(&wq_pool_attach_mutex);
7ee681b2 5135 }
6ba94429 5136
7ee681b2
TG
5137 /* update NUMA affinity of unbound workqueues */
5138 list_for_each_entry(wq, &workqueues, list)
5139 wq_update_unbound_numa(wq, cpu, true);
6ba94429 5140
7ee681b2
TG
5141 mutex_unlock(&wq_pool_mutex);
5142 return 0;
6ba94429
FW
5143}
5144
7ee681b2 5145int workqueue_offline_cpu(unsigned int cpu)
6ba94429 5146{
6ba94429
FW
5147 struct workqueue_struct *wq;
5148
7ee681b2 5149 /* unbinding per-cpu workers should happen on the local CPU */
e8b3f8db
LJ
5150 if (WARN_ON(cpu != smp_processor_id()))
5151 return -1;
5152
5153 unbind_workers(cpu);
7ee681b2
TG
5154
5155 /* update NUMA affinity of unbound workqueues */
5156 mutex_lock(&wq_pool_mutex);
5157 list_for_each_entry(wq, &workqueues, list)
5158 wq_update_unbound_numa(wq, cpu, false);
5159 mutex_unlock(&wq_pool_mutex);
5160
7ee681b2 5161 return 0;
6ba94429
FW
5162}
5163
6ba94429
FW
5164struct work_for_cpu {
5165 struct work_struct work;
5166 long (*fn)(void *);
5167 void *arg;
5168 long ret;
5169};
5170
5171static void work_for_cpu_fn(struct work_struct *work)
5172{
5173 struct work_for_cpu *wfc = container_of(work, struct work_for_cpu, work);
5174
5175 wfc->ret = wfc->fn(wfc->arg);
5176}
5177
5178/**
22aceb31 5179 * work_on_cpu - run a function in thread context on a particular cpu
6ba94429
FW
5180 * @cpu: the cpu to run on
5181 * @fn: the function to run
5182 * @arg: the function arg
5183 *
5184 * It is up to the caller to ensure that the cpu doesn't go offline.
5185 * The caller must not hold any locks which would prevent @fn from completing.
5186 *
5187 * Return: The value @fn returns.
5188 */
5189long work_on_cpu(int cpu, long (*fn)(void *), void *arg)
5190{
5191 struct work_for_cpu wfc = { .fn = fn, .arg = arg };
5192
5193 INIT_WORK_ONSTACK(&wfc.work, work_for_cpu_fn);
5194 schedule_work_on(cpu, &wfc.work);
5195 flush_work(&wfc.work);
5196 destroy_work_on_stack(&wfc.work);
5197 return wfc.ret;
5198}
5199EXPORT_SYMBOL_GPL(work_on_cpu);
0e8d6a93
TG
5200
5201/**
5202 * work_on_cpu_safe - run a function in thread context on a particular cpu
5203 * @cpu: the cpu to run on
5204 * @fn: the function to run
5205 * @arg: the function argument
5206 *
5207 * Disables CPU hotplug and calls work_on_cpu(). The caller must not hold
5208 * any locks which would prevent @fn from completing.
5209 *
5210 * Return: The value @fn returns.
5211 */
5212long work_on_cpu_safe(int cpu, long (*fn)(void *), void *arg)
5213{
5214 long ret = -ENODEV;
5215
ffd8bea8 5216 cpus_read_lock();
0e8d6a93
TG
5217 if (cpu_online(cpu))
5218 ret = work_on_cpu(cpu, fn, arg);
ffd8bea8 5219 cpus_read_unlock();
0e8d6a93
TG
5220 return ret;
5221}
5222EXPORT_SYMBOL_GPL(work_on_cpu_safe);
6ba94429
FW
5223#endif /* CONFIG_SMP */
5224
5225#ifdef CONFIG_FREEZER
5226
5227/**
5228 * freeze_workqueues_begin - begin freezing workqueues
5229 *
5230 * Start freezing workqueues. After this function returns, all freezable
f97a4a1a 5231 * workqueues will queue new works to their inactive_works list instead of
6ba94429
FW
5232 * pool->worklist.
5233 *
5234 * CONTEXT:
5235 * Grabs and releases wq_pool_mutex, wq->mutex and pool->lock's.
5236 */
5237void freeze_workqueues_begin(void)
5238{
5239 struct workqueue_struct *wq;
5240 struct pool_workqueue *pwq;
5241
5242 mutex_lock(&wq_pool_mutex);
5243
5244 WARN_ON_ONCE(workqueue_freezing);
5245 workqueue_freezing = true;
5246
5247 list_for_each_entry(wq, &workqueues, list) {
5248 mutex_lock(&wq->mutex);
5249 for_each_pwq(pwq, wq)
5250 pwq_adjust_max_active(pwq);
5251 mutex_unlock(&wq->mutex);
5252 }
5253
5254 mutex_unlock(&wq_pool_mutex);
5255}
5256
5257/**
5258 * freeze_workqueues_busy - are freezable workqueues still busy?
5259 *
5260 * Check whether freezing is complete. This function must be called
5261 * between freeze_workqueues_begin() and thaw_workqueues().
5262 *
5263 * CONTEXT:
5264 * Grabs and releases wq_pool_mutex.
5265 *
5266 * Return:
5267 * %true if some freezable workqueues are still busy. %false if freezing
5268 * is complete.
5269 */
5270bool freeze_workqueues_busy(void)
5271{
5272 bool busy = false;
5273 struct workqueue_struct *wq;
5274 struct pool_workqueue *pwq;
5275
5276 mutex_lock(&wq_pool_mutex);
5277
5278 WARN_ON_ONCE(!workqueue_freezing);
5279
5280 list_for_each_entry(wq, &workqueues, list) {
5281 if (!(wq->flags & WQ_FREEZABLE))
5282 continue;
5283 /*
5284 * nr_active is monotonically decreasing. It's safe
5285 * to peek without lock.
5286 */
24acfb71 5287 rcu_read_lock();
6ba94429
FW
5288 for_each_pwq(pwq, wq) {
5289 WARN_ON_ONCE(pwq->nr_active < 0);
5290 if (pwq->nr_active) {
5291 busy = true;
24acfb71 5292 rcu_read_unlock();
6ba94429
FW
5293 goto out_unlock;
5294 }
5295 }
24acfb71 5296 rcu_read_unlock();
6ba94429
FW
5297 }
5298out_unlock:
5299 mutex_unlock(&wq_pool_mutex);
5300 return busy;
5301}
5302
5303/**
5304 * thaw_workqueues - thaw workqueues
5305 *
5306 * Thaw workqueues. Normal queueing is restored and all collected
5307 * frozen works are transferred to their respective pool worklists.
5308 *
5309 * CONTEXT:
5310 * Grabs and releases wq_pool_mutex, wq->mutex and pool->lock's.
5311 */
5312void thaw_workqueues(void)
5313{
5314 struct workqueue_struct *wq;
5315 struct pool_workqueue *pwq;
5316
5317 mutex_lock(&wq_pool_mutex);
5318
5319 if (!workqueue_freezing)
5320 goto out_unlock;
5321
5322 workqueue_freezing = false;
5323
5324 /* restore max_active and repopulate worklist */
5325 list_for_each_entry(wq, &workqueues, list) {
5326 mutex_lock(&wq->mutex);
5327 for_each_pwq(pwq, wq)
5328 pwq_adjust_max_active(pwq);
5329 mutex_unlock(&wq->mutex);
5330 }
5331
5332out_unlock:
5333 mutex_unlock(&wq_pool_mutex);
5334}
5335#endif /* CONFIG_FREEZER */
5336
042f7df1
LJ
5337static int workqueue_apply_unbound_cpumask(void)
5338{
5339 LIST_HEAD(ctxs);
5340 int ret = 0;
5341 struct workqueue_struct *wq;
5342 struct apply_wqattrs_ctx *ctx, *n;
5343
5344 lockdep_assert_held(&wq_pool_mutex);
5345
5346 list_for_each_entry(wq, &workqueues, list) {
5347 if (!(wq->flags & WQ_UNBOUND))
5348 continue;
5349 /* creating multiple pwqs breaks ordering guarantee */
5350 if (wq->flags & __WQ_ORDERED)
5351 continue;
5352
5353 ctx = apply_wqattrs_prepare(wq, wq->unbound_attrs);
5354 if (!ctx) {
5355 ret = -ENOMEM;
5356 break;
5357 }
5358
5359 list_add_tail(&ctx->list, &ctxs);
5360 }
5361
5362 list_for_each_entry_safe(ctx, n, &ctxs, list) {
5363 if (!ret)
5364 apply_wqattrs_commit(ctx);
5365 apply_wqattrs_cleanup(ctx);
5366 }
5367
5368 return ret;
5369}
5370
5371/**
5372 * workqueue_set_unbound_cpumask - Set the low-level unbound cpumask
5373 * @cpumask: the cpumask to set
5374 *
5375 * The low-level workqueues cpumask is a global cpumask that limits
5376 * the affinity of all unbound workqueues. This function check the @cpumask
5377 * and apply it to all unbound workqueues and updates all pwqs of them.
5378 *
67dc8325 5379 * Return: 0 - Success
042f7df1
LJ
5380 * -EINVAL - Invalid @cpumask
5381 * -ENOMEM - Failed to allocate memory for attrs or pwqs.
5382 */
5383int workqueue_set_unbound_cpumask(cpumask_var_t cpumask)
5384{
5385 int ret = -EINVAL;
5386 cpumask_var_t saved_cpumask;
5387
c98a9805
TS
5388 /*
5389 * Not excluding isolated cpus on purpose.
5390 * If the user wishes to include them, we allow that.
5391 */
042f7df1
LJ
5392 cpumask_and(cpumask, cpumask, cpu_possible_mask);
5393 if (!cpumask_empty(cpumask)) {
a0111cf6 5394 apply_wqattrs_lock();
d25302e4
MD
5395 if (cpumask_equal(cpumask, wq_unbound_cpumask)) {
5396 ret = 0;
5397 goto out_unlock;
5398 }
5399
5400 if (!zalloc_cpumask_var(&saved_cpumask, GFP_KERNEL)) {
5401 ret = -ENOMEM;
5402 goto out_unlock;
5403 }
042f7df1
LJ
5404
5405 /* save the old wq_unbound_cpumask. */
5406 cpumask_copy(saved_cpumask, wq_unbound_cpumask);
5407
5408 /* update wq_unbound_cpumask at first and apply it to wqs. */
5409 cpumask_copy(wq_unbound_cpumask, cpumask);
5410 ret = workqueue_apply_unbound_cpumask();
5411
5412 /* restore the wq_unbound_cpumask when failed. */
5413 if (ret < 0)
5414 cpumask_copy(wq_unbound_cpumask, saved_cpumask);
5415
d25302e4
MD
5416 free_cpumask_var(saved_cpumask);
5417out_unlock:
a0111cf6 5418 apply_wqattrs_unlock();
042f7df1 5419 }
042f7df1 5420
042f7df1
LJ
5421 return ret;
5422}
5423
6ba94429
FW
5424#ifdef CONFIG_SYSFS
5425/*
5426 * Workqueues with WQ_SYSFS flag set is visible to userland via
5427 * /sys/bus/workqueue/devices/WQ_NAME. All visible workqueues have the
5428 * following attributes.
5429 *
5430 * per_cpu RO bool : whether the workqueue is per-cpu or unbound
5431 * max_active RW int : maximum number of in-flight work items
5432 *
5433 * Unbound workqueues have the following extra attributes.
5434 *
9a19b463 5435 * pool_ids RO int : the associated pool IDs for each node
6ba94429
FW
5436 * nice RW int : nice value of the workers
5437 * cpumask RW mask : bitmask of allowed CPUs for the workers
9a19b463 5438 * numa RW bool : whether enable NUMA affinity
6ba94429
FW
5439 */
5440struct wq_device {
5441 struct workqueue_struct *wq;
5442 struct device dev;
5443};
5444
5445static struct workqueue_struct *dev_to_wq(struct device *dev)
5446{
5447 struct wq_device *wq_dev = container_of(dev, struct wq_device, dev);
5448
5449 return wq_dev->wq;
5450}
5451
5452static ssize_t per_cpu_show(struct device *dev, struct device_attribute *attr,
5453 char *buf)
5454{
5455 struct workqueue_struct *wq = dev_to_wq(dev);
5456
5457 return scnprintf(buf, PAGE_SIZE, "%d\n", (bool)!(wq->flags & WQ_UNBOUND));
5458}
5459static DEVICE_ATTR_RO(per_cpu);
5460
5461static ssize_t max_active_show(struct device *dev,
5462 struct device_attribute *attr, char *buf)
5463{
5464 struct workqueue_struct *wq = dev_to_wq(dev);
5465
5466 return scnprintf(buf, PAGE_SIZE, "%d\n", wq->saved_max_active);
5467}
5468
5469static ssize_t max_active_store(struct device *dev,
5470 struct device_attribute *attr, const char *buf,
5471 size_t count)
5472{
5473 struct workqueue_struct *wq = dev_to_wq(dev);
5474 int val;
5475
5476 if (sscanf(buf, "%d", &val) != 1 || val <= 0)
5477 return -EINVAL;
5478
5479 workqueue_set_max_active(wq, val);
5480 return count;
5481}
5482static DEVICE_ATTR_RW(max_active);
5483
5484static struct attribute *wq_sysfs_attrs[] = {
5485 &dev_attr_per_cpu.attr,
5486 &dev_attr_max_active.attr,
5487 NULL,
5488};
5489ATTRIBUTE_GROUPS(wq_sysfs);
5490
5491static ssize_t wq_pool_ids_show(struct device *dev,
5492 struct device_attribute *attr, char *buf)
5493{
5494 struct workqueue_struct *wq = dev_to_wq(dev);
5495 const char *delim = "";
5496 int node, written = 0;
5497
ffd8bea8 5498 cpus_read_lock();
24acfb71 5499 rcu_read_lock();
6ba94429
FW
5500 for_each_node(node) {
5501 written += scnprintf(buf + written, PAGE_SIZE - written,
5502 "%s%d:%d", delim, node,
5503 unbound_pwq_by_node(wq, node)->pool->id);
5504 delim = " ";
5505 }
5506 written += scnprintf(buf + written, PAGE_SIZE - written, "\n");
24acfb71 5507 rcu_read_unlock();
ffd8bea8 5508 cpus_read_unlock();
6ba94429
FW
5509
5510 return written;
5511}
5512
5513static ssize_t wq_nice_show(struct device *dev, struct device_attribute *attr,
5514 char *buf)
5515{
5516 struct workqueue_struct *wq = dev_to_wq(dev);
5517 int written;
5518
5519 mutex_lock(&wq->mutex);
5520 written = scnprintf(buf, PAGE_SIZE, "%d\n", wq->unbound_attrs->nice);
5521 mutex_unlock(&wq->mutex);
5522
5523 return written;
5524}
5525
5526/* prepare workqueue_attrs for sysfs store operations */
5527static struct workqueue_attrs *wq_sysfs_prep_attrs(struct workqueue_struct *wq)
5528{
5529 struct workqueue_attrs *attrs;
5530
899a94fe
LJ
5531 lockdep_assert_held(&wq_pool_mutex);
5532
be69d00d 5533 attrs = alloc_workqueue_attrs();
6ba94429
FW
5534 if (!attrs)
5535 return NULL;
5536
6ba94429 5537 copy_workqueue_attrs(attrs, wq->unbound_attrs);
6ba94429
FW
5538 return attrs;
5539}
5540
5541static ssize_t wq_nice_store(struct device *dev, struct device_attribute *attr,
5542 const char *buf, size_t count)
5543{
5544 struct workqueue_struct *wq = dev_to_wq(dev);
5545 struct workqueue_attrs *attrs;
d4d3e257
LJ
5546 int ret = -ENOMEM;
5547
5548 apply_wqattrs_lock();
6ba94429
FW
5549
5550 attrs = wq_sysfs_prep_attrs(wq);
5551 if (!attrs)
d4d3e257 5552 goto out_unlock;
6ba94429
FW
5553
5554 if (sscanf(buf, "%d", &attrs->nice) == 1 &&
5555 attrs->nice >= MIN_NICE && attrs->nice <= MAX_NICE)
d4d3e257 5556 ret = apply_workqueue_attrs_locked(wq, attrs);
6ba94429
FW
5557 else
5558 ret = -EINVAL;
5559
d4d3e257
LJ
5560out_unlock:
5561 apply_wqattrs_unlock();
6ba94429
FW
5562 free_workqueue_attrs(attrs);
5563 return ret ?: count;
5564}
5565
5566static ssize_t wq_cpumask_show(struct device *dev,
5567 struct device_attribute *attr, char *buf)
5568{
5569 struct workqueue_struct *wq = dev_to_wq(dev);
5570 int written;
5571
5572 mutex_lock(&wq->mutex);
5573 written = scnprintf(buf, PAGE_SIZE, "%*pb\n",
5574 cpumask_pr_args(wq->unbound_attrs->cpumask));
5575 mutex_unlock(&wq->mutex);
5576 return written;
5577}
5578
5579static ssize_t wq_cpumask_store(struct device *dev,
5580 struct device_attribute *attr,
5581 const char *buf, size_t count)
5582{
5583 struct workqueue_struct *wq = dev_to_wq(dev);
5584 struct workqueue_attrs *attrs;
d4d3e257
LJ
5585 int ret = -ENOMEM;
5586
5587 apply_wqattrs_lock();
6ba94429
FW
5588
5589 attrs = wq_sysfs_prep_attrs(wq);
5590 if (!attrs)
d4d3e257 5591 goto out_unlock;
6ba94429
FW
5592
5593 ret = cpumask_parse(buf, attrs->cpumask);
5594 if (!ret)
d4d3e257 5595 ret = apply_workqueue_attrs_locked(wq, attrs);
6ba94429 5596
d4d3e257
LJ
5597out_unlock:
5598 apply_wqattrs_unlock();
6ba94429
FW
5599 free_workqueue_attrs(attrs);
5600 return ret ?: count;
5601}
5602
5603static ssize_t wq_numa_show(struct device *dev, struct device_attribute *attr,
5604 char *buf)
5605{
5606 struct workqueue_struct *wq = dev_to_wq(dev);
5607 int written;
7dbc725e 5608
6ba94429
FW
5609 mutex_lock(&wq->mutex);
5610 written = scnprintf(buf, PAGE_SIZE, "%d\n",
5611 !wq->unbound_attrs->no_numa);
5612 mutex_unlock(&wq->mutex);
4c16bd32 5613
6ba94429 5614 return written;
65758202
TH
5615}
5616
6ba94429
FW
5617static ssize_t wq_numa_store(struct device *dev, struct device_attribute *attr,
5618 const char *buf, size_t count)
65758202 5619{
6ba94429
FW
5620 struct workqueue_struct *wq = dev_to_wq(dev);
5621 struct workqueue_attrs *attrs;
d4d3e257
LJ
5622 int v, ret = -ENOMEM;
5623
5624 apply_wqattrs_lock();
4c16bd32 5625
6ba94429
FW
5626 attrs = wq_sysfs_prep_attrs(wq);
5627 if (!attrs)
d4d3e257 5628 goto out_unlock;
4c16bd32 5629
6ba94429
FW
5630 ret = -EINVAL;
5631 if (sscanf(buf, "%d", &v) == 1) {
5632 attrs->no_numa = !v;
d4d3e257 5633 ret = apply_workqueue_attrs_locked(wq, attrs);
65758202 5634 }
6ba94429 5635
d4d3e257
LJ
5636out_unlock:
5637 apply_wqattrs_unlock();
6ba94429
FW
5638 free_workqueue_attrs(attrs);
5639 return ret ?: count;
65758202
TH
5640}
5641
6ba94429
FW
5642static struct device_attribute wq_sysfs_unbound_attrs[] = {
5643 __ATTR(pool_ids, 0444, wq_pool_ids_show, NULL),
5644 __ATTR(nice, 0644, wq_nice_show, wq_nice_store),
5645 __ATTR(cpumask, 0644, wq_cpumask_show, wq_cpumask_store),
5646 __ATTR(numa, 0644, wq_numa_show, wq_numa_store),
5647 __ATTR_NULL,
5648};
8ccad40d 5649
6ba94429
FW
5650static struct bus_type wq_subsys = {
5651 .name = "workqueue",
5652 .dev_groups = wq_sysfs_groups,
2d3854a3
RR
5653};
5654
b05a7928
FW
5655static ssize_t wq_unbound_cpumask_show(struct device *dev,
5656 struct device_attribute *attr, char *buf)
5657{
5658 int written;
5659
042f7df1 5660 mutex_lock(&wq_pool_mutex);
b05a7928
FW
5661 written = scnprintf(buf, PAGE_SIZE, "%*pb\n",
5662 cpumask_pr_args(wq_unbound_cpumask));
042f7df1 5663 mutex_unlock(&wq_pool_mutex);
b05a7928
FW
5664
5665 return written;
5666}
5667
042f7df1
LJ
5668static ssize_t wq_unbound_cpumask_store(struct device *dev,
5669 struct device_attribute *attr, const char *buf, size_t count)
5670{
5671 cpumask_var_t cpumask;
5672 int ret;
5673
5674 if (!zalloc_cpumask_var(&cpumask, GFP_KERNEL))
5675 return -ENOMEM;
5676
5677 ret = cpumask_parse(buf, cpumask);
5678 if (!ret)
5679 ret = workqueue_set_unbound_cpumask(cpumask);
5680
5681 free_cpumask_var(cpumask);
5682 return ret ? ret : count;
5683}
5684
b05a7928 5685static struct device_attribute wq_sysfs_cpumask_attr =
042f7df1
LJ
5686 __ATTR(cpumask, 0644, wq_unbound_cpumask_show,
5687 wq_unbound_cpumask_store);
b05a7928 5688
6ba94429 5689static int __init wq_sysfs_init(void)
2d3854a3 5690{
b05a7928
FW
5691 int err;
5692
5693 err = subsys_virtual_register(&wq_subsys, NULL);
5694 if (err)
5695 return err;
5696
5697 return device_create_file(wq_subsys.dev_root, &wq_sysfs_cpumask_attr);
2d3854a3 5698}
6ba94429 5699core_initcall(wq_sysfs_init);
2d3854a3 5700
6ba94429 5701static void wq_device_release(struct device *dev)
2d3854a3 5702{
6ba94429 5703 struct wq_device *wq_dev = container_of(dev, struct wq_device, dev);
6b44003e 5704
6ba94429 5705 kfree(wq_dev);
2d3854a3 5706}
a0a1a5fd
TH
5707
5708/**
6ba94429
FW
5709 * workqueue_sysfs_register - make a workqueue visible in sysfs
5710 * @wq: the workqueue to register
a0a1a5fd 5711 *
6ba94429
FW
5712 * Expose @wq in sysfs under /sys/bus/workqueue/devices.
5713 * alloc_workqueue*() automatically calls this function if WQ_SYSFS is set
5714 * which is the preferred method.
a0a1a5fd 5715 *
6ba94429
FW
5716 * Workqueue user should use this function directly iff it wants to apply
5717 * workqueue_attrs before making the workqueue visible in sysfs; otherwise,
5718 * apply_workqueue_attrs() may race against userland updating the
5719 * attributes.
5720 *
5721 * Return: 0 on success, -errno on failure.
a0a1a5fd 5722 */
6ba94429 5723int workqueue_sysfs_register(struct workqueue_struct *wq)
a0a1a5fd 5724{
6ba94429
FW
5725 struct wq_device *wq_dev;
5726 int ret;
a0a1a5fd 5727
6ba94429 5728 /*
402dd89d 5729 * Adjusting max_active or creating new pwqs by applying
6ba94429
FW
5730 * attributes breaks ordering guarantee. Disallow exposing ordered
5731 * workqueues.
5732 */
0a94efb5 5733 if (WARN_ON(wq->flags & __WQ_ORDERED_EXPLICIT))
6ba94429 5734 return -EINVAL;
a0a1a5fd 5735
6ba94429
FW
5736 wq->wq_dev = wq_dev = kzalloc(sizeof(*wq_dev), GFP_KERNEL);
5737 if (!wq_dev)
5738 return -ENOMEM;
5bcab335 5739
6ba94429
FW
5740 wq_dev->wq = wq;
5741 wq_dev->dev.bus = &wq_subsys;
6ba94429 5742 wq_dev->dev.release = wq_device_release;
23217b44 5743 dev_set_name(&wq_dev->dev, "%s", wq->name);
a0a1a5fd 5744
6ba94429
FW
5745 /*
5746 * unbound_attrs are created separately. Suppress uevent until
5747 * everything is ready.
5748 */
5749 dev_set_uevent_suppress(&wq_dev->dev, true);
a0a1a5fd 5750
6ba94429
FW
5751 ret = device_register(&wq_dev->dev);
5752 if (ret) {
537f4146 5753 put_device(&wq_dev->dev);
6ba94429
FW
5754 wq->wq_dev = NULL;
5755 return ret;
5756 }
a0a1a5fd 5757
6ba94429
FW
5758 if (wq->flags & WQ_UNBOUND) {
5759 struct device_attribute *attr;
a0a1a5fd 5760
6ba94429
FW
5761 for (attr = wq_sysfs_unbound_attrs; attr->attr.name; attr++) {
5762 ret = device_create_file(&wq_dev->dev, attr);
5763 if (ret) {
5764 device_unregister(&wq_dev->dev);
5765 wq->wq_dev = NULL;
5766 return ret;
a0a1a5fd
TH
5767 }
5768 }
5769 }
6ba94429
FW
5770
5771 dev_set_uevent_suppress(&wq_dev->dev, false);
5772 kobject_uevent(&wq_dev->dev.kobj, KOBJ_ADD);
5773 return 0;
a0a1a5fd
TH
5774}
5775
5776/**
6ba94429
FW
5777 * workqueue_sysfs_unregister - undo workqueue_sysfs_register()
5778 * @wq: the workqueue to unregister
a0a1a5fd 5779 *
6ba94429 5780 * If @wq is registered to sysfs by workqueue_sysfs_register(), unregister.
a0a1a5fd 5781 */
6ba94429 5782static void workqueue_sysfs_unregister(struct workqueue_struct *wq)
a0a1a5fd 5783{
6ba94429 5784 struct wq_device *wq_dev = wq->wq_dev;
8b03ae3c 5785
6ba94429
FW
5786 if (!wq->wq_dev)
5787 return;
a0a1a5fd 5788
6ba94429
FW
5789 wq->wq_dev = NULL;
5790 device_unregister(&wq_dev->dev);
a0a1a5fd 5791}
6ba94429
FW
5792#else /* CONFIG_SYSFS */
5793static void workqueue_sysfs_unregister(struct workqueue_struct *wq) { }
5794#endif /* CONFIG_SYSFS */
a0a1a5fd 5795
82607adc
TH
5796/*
5797 * Workqueue watchdog.
5798 *
5799 * Stall may be caused by various bugs - missing WQ_MEM_RECLAIM, illegal
5800 * flush dependency, a concurrency managed work item which stays RUNNING
5801 * indefinitely. Workqueue stalls can be very difficult to debug as the
5802 * usual warning mechanisms don't trigger and internal workqueue state is
5803 * largely opaque.
5804 *
5805 * Workqueue watchdog monitors all worker pools periodically and dumps
5806 * state if some pools failed to make forward progress for a while where
5807 * forward progress is defined as the first item on ->worklist changing.
5808 *
5809 * This mechanism is controlled through the kernel parameter
5810 * "workqueue.watchdog_thresh" which can be updated at runtime through the
5811 * corresponding sysfs parameter file.
5812 */
5813#ifdef CONFIG_WQ_WATCHDOG
5814
82607adc 5815static unsigned long wq_watchdog_thresh = 30;
5cd79d6a 5816static struct timer_list wq_watchdog_timer;
82607adc
TH
5817
5818static unsigned long wq_watchdog_touched = INITIAL_JIFFIES;
5819static DEFINE_PER_CPU(unsigned long, wq_watchdog_touched_cpu) = INITIAL_JIFFIES;
5820
5821static void wq_watchdog_reset_touched(void)
5822{
5823 int cpu;
5824
5825 wq_watchdog_touched = jiffies;
5826 for_each_possible_cpu(cpu)
5827 per_cpu(wq_watchdog_touched_cpu, cpu) = jiffies;
5828}
5829
5cd79d6a 5830static void wq_watchdog_timer_fn(struct timer_list *unused)
82607adc
TH
5831{
5832 unsigned long thresh = READ_ONCE(wq_watchdog_thresh) * HZ;
5833 bool lockup_detected = false;
940d71c6 5834 unsigned long now = jiffies;
82607adc
TH
5835 struct worker_pool *pool;
5836 int pi;
5837
5838 if (!thresh)
5839 return;
5840
5841 rcu_read_lock();
5842
5843 for_each_pool(pool, pi) {
5844 unsigned long pool_ts, touched, ts;
5845
5846 if (list_empty(&pool->worklist))
5847 continue;
5848
940d71c6
SS
5849 /*
5850 * If a virtual machine is stopped by the host it can look to
5851 * the watchdog like a stall.
5852 */
5853 kvm_check_and_clear_guest_paused();
5854
82607adc 5855 /* get the latest of pool and touched timestamps */
89e28ce6
WQ
5856 if (pool->cpu >= 0)
5857 touched = READ_ONCE(per_cpu(wq_watchdog_touched_cpu, pool->cpu));
5858 else
5859 touched = READ_ONCE(wq_watchdog_touched);
82607adc 5860 pool_ts = READ_ONCE(pool->watchdog_ts);
82607adc
TH
5861
5862 if (time_after(pool_ts, touched))
5863 ts = pool_ts;
5864 else
5865 ts = touched;
5866
82607adc 5867 /* did we stall? */
940d71c6 5868 if (time_after(now, ts + thresh)) {
82607adc
TH
5869 lockup_detected = true;
5870 pr_emerg("BUG: workqueue lockup - pool");
5871 pr_cont_pool_info(pool);
5872 pr_cont(" stuck for %us!\n",
940d71c6 5873 jiffies_to_msecs(now - pool_ts) / 1000);
82607adc
TH
5874 }
5875 }
5876
5877 rcu_read_unlock();
5878
5879 if (lockup_detected)
55df0933 5880 show_all_workqueues();
82607adc
TH
5881
5882 wq_watchdog_reset_touched();
5883 mod_timer(&wq_watchdog_timer, jiffies + thresh);
5884}
5885
cb9d7fd5 5886notrace void wq_watchdog_touch(int cpu)
82607adc
TH
5887{
5888 if (cpu >= 0)
5889 per_cpu(wq_watchdog_touched_cpu, cpu) = jiffies;
89e28ce6
WQ
5890
5891 wq_watchdog_touched = jiffies;
82607adc
TH
5892}
5893
5894static void wq_watchdog_set_thresh(unsigned long thresh)
5895{
5896 wq_watchdog_thresh = 0;
5897 del_timer_sync(&wq_watchdog_timer);
5898
5899 if (thresh) {
5900 wq_watchdog_thresh = thresh;
5901 wq_watchdog_reset_touched();
5902 mod_timer(&wq_watchdog_timer, jiffies + thresh * HZ);
5903 }
5904}
5905
5906static int wq_watchdog_param_set_thresh(const char *val,
5907 const struct kernel_param *kp)
5908{
5909 unsigned long thresh;
5910 int ret;
5911
5912 ret = kstrtoul(val, 0, &thresh);
5913 if (ret)
5914 return ret;
5915
5916 if (system_wq)
5917 wq_watchdog_set_thresh(thresh);
5918 else
5919 wq_watchdog_thresh = thresh;
5920
5921 return 0;
5922}
5923
5924static const struct kernel_param_ops wq_watchdog_thresh_ops = {
5925 .set = wq_watchdog_param_set_thresh,
5926 .get = param_get_ulong,
5927};
5928
5929module_param_cb(watchdog_thresh, &wq_watchdog_thresh_ops, &wq_watchdog_thresh,
5930 0644);
5931
5932static void wq_watchdog_init(void)
5933{
5cd79d6a 5934 timer_setup(&wq_watchdog_timer, wq_watchdog_timer_fn, TIMER_DEFERRABLE);
82607adc
TH
5935 wq_watchdog_set_thresh(wq_watchdog_thresh);
5936}
5937
5938#else /* CONFIG_WQ_WATCHDOG */
5939
5940static inline void wq_watchdog_init(void) { }
5941
5942#endif /* CONFIG_WQ_WATCHDOG */
5943
bce90380
TH
5944static void __init wq_numa_init(void)
5945{
5946 cpumask_var_t *tbl;
5947 int node, cpu;
5948
bce90380
TH
5949 if (num_possible_nodes() <= 1)
5950 return;
5951
d55262c4
TH
5952 if (wq_disable_numa) {
5953 pr_info("workqueue: NUMA affinity support disabled\n");
5954 return;
5955 }
5956
f728c4a9
ZL
5957 for_each_possible_cpu(cpu) {
5958 if (WARN_ON(cpu_to_node(cpu) == NUMA_NO_NODE)) {
5959 pr_warn("workqueue: NUMA node mapping not available for cpu%d, disabling NUMA support\n", cpu);
5960 return;
5961 }
5962 }
5963
be69d00d 5964 wq_update_unbound_numa_attrs_buf = alloc_workqueue_attrs();
4c16bd32
TH
5965 BUG_ON(!wq_update_unbound_numa_attrs_buf);
5966
bce90380
TH
5967 /*
5968 * We want masks of possible CPUs of each node which isn't readily
5969 * available. Build one from cpu_to_node() which should have been
5970 * fully initialized by now.
5971 */
6396bb22 5972 tbl = kcalloc(nr_node_ids, sizeof(tbl[0]), GFP_KERNEL);
bce90380
TH
5973 BUG_ON(!tbl);
5974
5975 for_each_node(node)
5a6024f1 5976 BUG_ON(!zalloc_cpumask_var_node(&tbl[node], GFP_KERNEL,
1be0c25d 5977 node_online(node) ? node : NUMA_NO_NODE));
bce90380
TH
5978
5979 for_each_possible_cpu(cpu) {
5980 node = cpu_to_node(cpu);
bce90380
TH
5981 cpumask_set_cpu(cpu, tbl[node]);
5982 }
5983
5984 wq_numa_possible_cpumask = tbl;
5985 wq_numa_enabled = true;
5986}
5987
3347fa09
TH
5988/**
5989 * workqueue_init_early - early init for workqueue subsystem
5990 *
5991 * This is the first half of two-staged workqueue subsystem initialization
5992 * and invoked as soon as the bare basics - memory allocation, cpumasks and
5993 * idr are up. It sets up all the data structures and system workqueues
5994 * and allows early boot code to create workqueues and queue/cancel work
5995 * items. Actual work item execution starts only after kthreads can be
5996 * created and scheduled right before early initcalls.
5997 */
2333e829 5998void __init workqueue_init_early(void)
1da177e4 5999{
7a4e344c
TH
6000 int std_nice[NR_STD_WORKER_POOLS] = { 0, HIGHPRI_NICE_LEVEL };
6001 int i, cpu;
c34056a3 6002
10cdb157 6003 BUILD_BUG_ON(__alignof__(struct pool_workqueue) < __alignof__(long long));
e904e6c2 6004
b05a7928 6005 BUG_ON(!alloc_cpumask_var(&wq_unbound_cpumask, GFP_KERNEL));
04d4e665
FW
6006 cpumask_copy(wq_unbound_cpumask, housekeeping_cpumask(HK_TYPE_WQ));
6007 cpumask_and(wq_unbound_cpumask, wq_unbound_cpumask, housekeeping_cpumask(HK_TYPE_DOMAIN));
b05a7928 6008
e904e6c2
TH
6009 pwq_cache = KMEM_CACHE(pool_workqueue, SLAB_PANIC);
6010
706026c2 6011 /* initialize CPU pools */
29c91e99 6012 for_each_possible_cpu(cpu) {
4ce62e9e 6013 struct worker_pool *pool;
8b03ae3c 6014
7a4e344c 6015 i = 0;
f02ae73a 6016 for_each_cpu_worker_pool(pool, cpu) {
7a4e344c 6017 BUG_ON(init_worker_pool(pool));
ec22ca5e 6018 pool->cpu = cpu;
29c91e99 6019 cpumask_copy(pool->attrs->cpumask, cpumask_of(cpu));
7a4e344c 6020 pool->attrs->nice = std_nice[i++];
f3f90ad4 6021 pool->node = cpu_to_node(cpu);
7a4e344c 6022
9daf9e67 6023 /* alloc pool ID */
68e13a67 6024 mutex_lock(&wq_pool_mutex);
9daf9e67 6025 BUG_ON(worker_pool_assign_id(pool));
68e13a67 6026 mutex_unlock(&wq_pool_mutex);
4ce62e9e 6027 }
8b03ae3c
TH
6028 }
6029
8a2b7538 6030 /* create default unbound and ordered wq attrs */
29c91e99
TH
6031 for (i = 0; i < NR_STD_WORKER_POOLS; i++) {
6032 struct workqueue_attrs *attrs;
6033
be69d00d 6034 BUG_ON(!(attrs = alloc_workqueue_attrs()));
29c91e99 6035 attrs->nice = std_nice[i];
29c91e99 6036 unbound_std_wq_attrs[i] = attrs;
8a2b7538
TH
6037
6038 /*
6039 * An ordered wq should have only one pwq as ordering is
6040 * guaranteed by max_active which is enforced by pwqs.
6041 * Turn off NUMA so that dfl_pwq is used for all nodes.
6042 */
be69d00d 6043 BUG_ON(!(attrs = alloc_workqueue_attrs()));
8a2b7538
TH
6044 attrs->nice = std_nice[i];
6045 attrs->no_numa = true;
6046 ordered_wq_attrs[i] = attrs;
29c91e99
TH
6047 }
6048
d320c038 6049 system_wq = alloc_workqueue("events", 0, 0);
1aabe902 6050 system_highpri_wq = alloc_workqueue("events_highpri", WQ_HIGHPRI, 0);
d320c038 6051 system_long_wq = alloc_workqueue("events_long", 0, 0);
f3421797
TH
6052 system_unbound_wq = alloc_workqueue("events_unbound", WQ_UNBOUND,
6053 WQ_UNBOUND_MAX_ACTIVE);
24d51add
TH
6054 system_freezable_wq = alloc_workqueue("events_freezable",
6055 WQ_FREEZABLE, 0);
0668106c
VK
6056 system_power_efficient_wq = alloc_workqueue("events_power_efficient",
6057 WQ_POWER_EFFICIENT, 0);
6058 system_freezable_power_efficient_wq = alloc_workqueue("events_freezable_power_efficient",
6059 WQ_FREEZABLE | WQ_POWER_EFFICIENT,
6060 0);
1aabe902 6061 BUG_ON(!system_wq || !system_highpri_wq || !system_long_wq ||
0668106c
VK
6062 !system_unbound_wq || !system_freezable_wq ||
6063 !system_power_efficient_wq ||
6064 !system_freezable_power_efficient_wq);
3347fa09
TH
6065}
6066
6067/**
6068 * workqueue_init - bring workqueue subsystem fully online
6069 *
6070 * This is the latter half of two-staged workqueue subsystem initialization
6071 * and invoked as soon as kthreads can be created and scheduled.
6072 * Workqueues have been created and work items queued on them, but there
6073 * are no kworkers executing the work items yet. Populate the worker pools
6074 * with the initial workers and enable future kworker creations.
6075 */
2333e829 6076void __init workqueue_init(void)
3347fa09 6077{
2186d9f9 6078 struct workqueue_struct *wq;
3347fa09
TH
6079 struct worker_pool *pool;
6080 int cpu, bkt;
6081
2186d9f9
TH
6082 /*
6083 * It'd be simpler to initialize NUMA in workqueue_init_early() but
6084 * CPU to node mapping may not be available that early on some
6085 * archs such as power and arm64. As per-cpu pools created
6086 * previously could be missing node hint and unbound pools NUMA
6087 * affinity, fix them up.
40c17f75
TH
6088 *
6089 * Also, while iterating workqueues, create rescuers if requested.
2186d9f9
TH
6090 */
6091 wq_numa_init();
6092
6093 mutex_lock(&wq_pool_mutex);
6094
6095 for_each_possible_cpu(cpu) {
6096 for_each_cpu_worker_pool(pool, cpu) {
6097 pool->node = cpu_to_node(cpu);
6098 }
6099 }
6100
40c17f75 6101 list_for_each_entry(wq, &workqueues, list) {
2186d9f9 6102 wq_update_unbound_numa(wq, smp_processor_id(), true);
40c17f75
TH
6103 WARN(init_rescuer(wq),
6104 "workqueue: failed to create early rescuer for %s",
6105 wq->name);
6106 }
2186d9f9
TH
6107
6108 mutex_unlock(&wq_pool_mutex);
6109
3347fa09
TH
6110 /* create the initial workers */
6111 for_each_online_cpu(cpu) {
6112 for_each_cpu_worker_pool(pool, cpu) {
6113 pool->flags &= ~POOL_DISASSOCIATED;
6114 BUG_ON(!create_worker(pool));
6115 }
6116 }
6117
6118 hash_for_each(unbound_pool_hash, bkt, pool, hash_node)
6119 BUG_ON(!create_worker(pool));
6120
6121 wq_online = true;
82607adc 6122 wq_watchdog_init();
1da177e4 6123}
c4f135d6
TH
6124
6125/*
6126 * Despite the naming, this is a no-op function which is here only for avoiding
6127 * link error. Since compile-time warning may fail to catch, we will need to
6128 * emit run-time warning from __flush_workqueue().
6129 */
6130void __warn_flushing_systemwide_wq(void) { }
6131EXPORT_SYMBOL(__warn_flushing_systemwide_wq);