1 1.61 riastrad /* $NetBSD: linux_work.c,v 1.61 2022/04/09 23:43:31 riastradh Exp $ */ 2 1.1 skrll 3 1.1 skrll /*- 4 1.12 riastrad * Copyright (c) 2018 The NetBSD Foundation, Inc. 5 1.1 skrll * All rights reserved. 6 1.1 skrll * 7 1.1 skrll * This code is derived from software contributed to The NetBSD Foundation 8 1.1 skrll * by Taylor R. Campbell. 9 1.1 skrll * 10 1.1 skrll * Redistribution and use in source and binary forms, with or without 11 1.1 skrll * modification, are permitted provided that the following conditions 12 1.1 skrll * are met: 13 1.1 skrll * 1. Redistributions of source code must retain the above copyright 14 1.1 skrll * notice, this list of conditions and the following disclaimer. 15 1.1 skrll * 2. Redistributions in binary form must reproduce the above copyright 16 1.1 skrll * notice, this list of conditions and the following disclaimer in the 17 1.1 skrll * documentation and/or other materials provided with the distribution. 18 1.1 skrll * 19 1.1 skrll * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 20 1.1 skrll * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 21 1.1 skrll * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 22 1.1 skrll * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 23 1.1 skrll * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 24 1.1 skrll * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 25 1.1 skrll * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 26 1.1 skrll * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 27 1.1 skrll * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 28 1.1 skrll * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 29 1.1 skrll * POSSIBILITY OF SUCH DAMAGE. 30 1.1 skrll */ 31 1.1 skrll 32 1.1 skrll #include <sys/cdefs.h> 33 1.61 riastrad __KERNEL_RCSID(0, "$NetBSD: linux_work.c,v 1.61 2022/04/09 23:43:31 riastradh Exp $"); 34 1.1 skrll 35 1.1 skrll #include <sys/types.h> 36 1.1 skrll #include <sys/atomic.h> 37 1.1 skrll #include <sys/callout.h> 38 1.1 skrll #include <sys/condvar.h> 39 1.1 skrll #include <sys/errno.h> 40 1.1 skrll #include <sys/kmem.h> 41 1.12 riastrad #include <sys/kthread.h> 42 1.12 riastrad #include <sys/lwp.h> 43 1.1 skrll #include <sys/mutex.h> 44 1.44 ryo #ifndef _MODULE 45 1.44 ryo #include <sys/once.h> 46 1.44 ryo #endif 47 1.1 skrll #include <sys/queue.h> 48 1.41 riastrad #include <sys/sdt.h> 49 1.1 skrll 50 1.1 skrll #include <linux/workqueue.h> 51 1.1 skrll 52 1.39 riastrad TAILQ_HEAD(work_head, work_struct); 53 1.39 riastrad TAILQ_HEAD(dwork_head, delayed_work); 54 1.39 riastrad 55 1.1 skrll struct workqueue_struct { 56 1.39 riastrad kmutex_t wq_lock; 57 1.39 riastrad kcondvar_t wq_cv; 58 1.39 riastrad struct dwork_head wq_delayed; /* delayed work scheduled */ 59 1.55 riastrad struct work_head wq_rcu; /* RCU work scheduled */ 60 1.39 riastrad struct work_head wq_queue; /* work to run */ 61 1.39 riastrad struct work_head wq_dqueue; /* delayed work to run now */ 62 1.39 riastrad struct work_struct *wq_current_work; 63 1.39 riastrad int wq_flags; 64 1.39 riastrad bool wq_dying; 65 1.39 riastrad uint64_t wq_gen; 66 1.39 riastrad struct lwp *wq_lwp; 67 1.50 riastrad const char *wq_name; 68 1.1 skrll }; 69 1.1 skrll 70 1.12 riastrad static void __dead linux_workqueue_thread(void *); 71 1.12 riastrad static void linux_workqueue_timeout(void *); 72 1.39 riastrad static bool work_claimed(struct work_struct *, 73 1.39 riastrad struct workqueue_struct *); 74 1.17 riastrad static struct workqueue_struct * 75 1.39 riastrad work_queue(struct work_struct *); 76 1.39 riastrad static bool acquire_work(struct work_struct *, 77 1.17 riastrad struct workqueue_struct *); 78 1.17 riastrad static void release_work(struct work_struct *, 79 1.17 riastrad struct workqueue_struct *); 80 1.33 riastrad static void wait_for_current_work(struct work_struct *, 81 1.33 riastrad struct workqueue_struct *); 82 1.30 riastrad static void dw_callout_init(struct workqueue_struct *, 83 1.30 riastrad struct delayed_work *); 84 1.31 riastrad static void dw_callout_destroy(struct workqueue_struct *, 85 1.31 riastrad struct delayed_work *); 86 1.23 riastrad static void cancel_delayed_work_done(struct workqueue_struct *, 87 1.23 riastrad struct delayed_work *); 88 1.12 riastrad 89 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, acquire, 90 1.41 riastrad "struct work_struct *"/*work*/, "struct workqueue_struct *"/*wq*/); 91 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, release, 92 1.41 riastrad "struct work_struct *"/*work*/, "struct workqueue_struct *"/*wq*/); 93 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, queue, 94 1.41 riastrad "struct work_struct *"/*work*/, "struct workqueue_struct *"/*wq*/); 95 1.55 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, rcu, 96 1.55 riastrad "struct rcu_work *"/*work*/, "struct workqueue_struct *"/*wq*/); 97 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, cancel, 98 1.41 riastrad "struct work_struct *"/*work*/, "struct workqueue_struct *"/*wq*/); 99 1.41 riastrad SDT_PROBE_DEFINE3(sdt, linux, work, schedule, 100 1.41 riastrad "struct delayed_work *"/*dw*/, "struct workqueue_struct *"/*wq*/, 101 1.41 riastrad "unsigned long"/*ticks*/); 102 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, timer, 103 1.41 riastrad "struct delayed_work *"/*dw*/, "struct workqueue_struct *"/*wq*/); 104 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, wait__start, 105 1.41 riastrad "struct delayed_work *"/*dw*/, "struct workqueue_struct *"/*wq*/); 106 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, wait__done, 107 1.41 riastrad "struct delayed_work *"/*dw*/, "struct workqueue_struct *"/*wq*/); 108 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, run, 109 1.41 riastrad "struct work_struct *"/*work*/, "struct workqueue_struct *"/*wq*/); 110 1.41 riastrad SDT_PROBE_DEFINE2(sdt, linux, work, done, 111 1.41 riastrad "struct work_struct *"/*work*/, "struct workqueue_struct *"/*wq*/); 112 1.41 riastrad SDT_PROBE_DEFINE1(sdt, linux, work, batch__start, 113 1.41 riastrad "struct workqueue_struct *"/*wq*/); 114 1.41 riastrad SDT_PROBE_DEFINE1(sdt, linux, work, batch__done, 115 1.41 riastrad "struct workqueue_struct *"/*wq*/); 116 1.60 riastrad SDT_PROBE_DEFINE1(sdt, linux, work, flush__self, 117 1.60 riastrad "struct workqueue_struct *"/*wq*/); 118 1.41 riastrad SDT_PROBE_DEFINE1(sdt, linux, work, flush__start, 119 1.41 riastrad "struct workqueue_struct *"/*wq*/); 120 1.41 riastrad SDT_PROBE_DEFINE1(sdt, linux, work, flush__done, 121 1.41 riastrad "struct workqueue_struct *"/*wq*/); 122 1.41 riastrad 123 1.12 riastrad static specificdata_key_t workqueue_key __read_mostly; 124 1.12 riastrad 125 1.53 riastrad struct workqueue_struct *system_highpri_wq __read_mostly; 126 1.12 riastrad struct workqueue_struct *system_long_wq __read_mostly; 127 1.12 riastrad struct workqueue_struct *system_power_efficient_wq __read_mostly; 128 1.47 riastrad struct workqueue_struct *system_unbound_wq __read_mostly; 129 1.53 riastrad struct workqueue_struct *system_wq __read_mostly; 130 1.3 riastrad 131 1.39 riastrad static inline uintptr_t 132 1.39 riastrad atomic_cas_uintptr(volatile uintptr_t *p, uintptr_t old, uintptr_t new) 133 1.39 riastrad { 134 1.39 riastrad 135 1.39 riastrad return (uintptr_t)atomic_cas_ptr(p, (void *)old, (void *)new); 136 1.39 riastrad } 137 1.39 riastrad 138 1.36 riastrad /* 139 1.36 riastrad * linux_workqueue_init() 140 1.36 riastrad * 141 1.36 riastrad * Initialize the Linux workqueue subsystem. Return 0 on success, 142 1.36 riastrad * NetBSD error on failure. 143 1.36 riastrad */ 144 1.44 ryo static int 145 1.44 ryo linux_workqueue_init0(void) 146 1.1 skrll { 147 1.12 riastrad int error; 148 1.3 riastrad 149 1.12 riastrad error = lwp_specific_key_create(&workqueue_key, NULL); 150 1.12 riastrad if (error) 151 1.53 riastrad goto out; 152 1.1 skrll 153 1.53 riastrad system_highpri_wq = alloc_ordered_workqueue("lnxhipwq", 0); 154 1.53 riastrad if (system_highpri_wq == NULL) { 155 1.12 riastrad error = ENOMEM; 156 1.53 riastrad goto out; 157 1.12 riastrad } 158 1.2 riastrad 159 1.2 riastrad system_long_wq = alloc_ordered_workqueue("lnxlngwq", 0); 160 1.12 riastrad if (system_long_wq == NULL) { 161 1.12 riastrad error = ENOMEM; 162 1.53 riastrad goto out; 163 1.12 riastrad } 164 1.1 skrll 165 1.6 riastrad system_power_efficient_wq = alloc_ordered_workqueue("lnxpwrwq", 0); 166 1.46 riastrad if (system_power_efficient_wq == NULL) { 167 1.12 riastrad error = ENOMEM; 168 1.53 riastrad goto out; 169 1.12 riastrad } 170 1.6 riastrad 171 1.47 riastrad system_unbound_wq = alloc_ordered_workqueue("lnxubdwq", 0); 172 1.47 riastrad if (system_unbound_wq == NULL) { 173 1.47 riastrad error = ENOMEM; 174 1.53 riastrad goto out; 175 1.47 riastrad } 176 1.47 riastrad 177 1.53 riastrad system_wq = alloc_ordered_workqueue("lnxsyswq", 0); 178 1.53 riastrad if (system_wq == NULL) { 179 1.53 riastrad error = ENOMEM; 180 1.53 riastrad goto out; 181 1.53 riastrad } 182 1.53 riastrad 183 1.53 riastrad /* Success! */ 184 1.53 riastrad error = 0; 185 1.53 riastrad 186 1.53 riastrad out: if (error) { 187 1.53 riastrad if (system_highpri_wq) 188 1.53 riastrad destroy_workqueue(system_highpri_wq); 189 1.53 riastrad if (system_long_wq) 190 1.53 riastrad destroy_workqueue(system_long_wq); 191 1.53 riastrad if (system_power_efficient_wq) 192 1.53 riastrad destroy_workqueue(system_power_efficient_wq); 193 1.53 riastrad if (system_unbound_wq) 194 1.53 riastrad destroy_workqueue(system_unbound_wq); 195 1.53 riastrad if (system_wq) 196 1.53 riastrad destroy_workqueue(system_wq); 197 1.53 riastrad if (workqueue_key) 198 1.53 riastrad lwp_specific_key_delete(workqueue_key); 199 1.53 riastrad } 200 1.2 riastrad 201 1.12 riastrad return error; 202 1.1 skrll } 203 1.1 skrll 204 1.36 riastrad /* 205 1.36 riastrad * linux_workqueue_fini() 206 1.36 riastrad * 207 1.36 riastrad * Destroy the Linux workqueue subsystem. Never fails. 208 1.36 riastrad */ 209 1.44 ryo static void 210 1.44 ryo linux_workqueue_fini0(void) 211 1.1 skrll { 212 1.2 riastrad 213 1.12 riastrad destroy_workqueue(system_power_efficient_wq); 214 1.2 riastrad destroy_workqueue(system_long_wq); 215 1.1 skrll destroy_workqueue(system_wq); 216 1.12 riastrad lwp_specific_key_delete(workqueue_key); 217 1.1 skrll } 218 1.44 ryo 219 1.44 ryo #ifndef _MODULE 220 1.44 ryo static ONCE_DECL(linux_workqueue_init_once); 221 1.44 ryo #endif 222 1.44 ryo 223 1.44 ryo int 224 1.44 ryo linux_workqueue_init(void) 225 1.44 ryo { 226 1.44 ryo #ifdef _MODULE 227 1.44 ryo return linux_workqueue_init0(); 228 1.44 ryo #else 229 1.44 ryo return INIT_ONCE(&linux_workqueue_init_once, &linux_workqueue_init0); 230 1.44 ryo #endif 231 1.44 ryo } 232 1.44 ryo 233 1.44 ryo void 234 1.44 ryo linux_workqueue_fini(void) 235 1.44 ryo { 236 1.44 ryo #ifdef _MODULE 237 1.44 ryo return linux_workqueue_fini0(); 238 1.44 ryo #else 239 1.44 ryo return FINI_ONCE(&linux_workqueue_init_once, &linux_workqueue_fini0); 240 1.44 ryo #endif 241 1.44 ryo } 242 1.1 skrll 243 1.1 skrll /* 245 1.1 skrll * Workqueues 246 1.1 skrll */ 247 1.36 riastrad 248 1.52 riastrad /* 249 1.36 riastrad * alloc_workqueue(name, flags, max_active) 250 1.52 riastrad * 251 1.52 riastrad * Create a workqueue of the given name. max_active is the 252 1.52 riastrad * maximum number of work items in flight, or 0 for the default. 253 1.52 riastrad * Return NULL on failure, pointer to struct workqueue_struct 254 1.36 riastrad * object on success. 255 1.1 skrll */ 256 1.52 riastrad struct workqueue_struct * 257 1.1 skrll alloc_workqueue(const char *name, int flags, unsigned max_active) 258 1.1 skrll { 259 1.1 skrll struct workqueue_struct *wq; 260 1.1 skrll int error; 261 1.52 riastrad 262 1.1 skrll KASSERT(max_active == 0 || max_active == 1); 263 1.25 riastrad 264 1.1 skrll wq = kmem_zalloc(sizeof(*wq), KM_SLEEP); 265 1.43 riastrad 266 1.1 skrll mutex_init(&wq->wq_lock, MUTEX_DEFAULT, IPL_VM); 267 1.1 skrll cv_init(&wq->wq_cv, name); 268 1.55 riastrad TAILQ_INIT(&wq->wq_delayed); 269 1.12 riastrad TAILQ_INIT(&wq->wq_rcu); 270 1.39 riastrad TAILQ_INIT(&wq->wq_queue); 271 1.1 skrll TAILQ_INIT(&wq->wq_dqueue); 272 1.25 riastrad wq->wq_current_work = NULL; 273 1.25 riastrad wq->wq_flags = 0; 274 1.37 riastrad wq->wq_dying = false; 275 1.37 riastrad wq->wq_gen = 0; 276 1.50 riastrad wq->wq_lwp = NULL; 277 1.1 skrll wq->wq_name = name; 278 1.12 riastrad 279 1.12 riastrad error = kthread_create(PRI_NONE, 280 1.12 riastrad KTHREAD_MPSAFE|KTHREAD_TS|KTHREAD_MUSTJOIN, NULL, 281 1.12 riastrad &linux_workqueue_thread, wq, &wq->wq_lwp, "%s", name); 282 1.12 riastrad if (error) 283 1.3 riastrad goto fail0; 284 1.1 skrll 285 1.12 riastrad return wq; 286 1.39 riastrad 287 1.39 riastrad fail0: KASSERT(TAILQ_EMPTY(&wq->wq_dqueue)); 288 1.55 riastrad KASSERT(TAILQ_EMPTY(&wq->wq_queue)); 289 1.12 riastrad KASSERT(TAILQ_EMPTY(&wq->wq_rcu)); 290 1.12 riastrad KASSERT(TAILQ_EMPTY(&wq->wq_delayed)); 291 1.12 riastrad cv_destroy(&wq->wq_cv); 292 1.12 riastrad mutex_destroy(&wq->wq_lock); 293 1.12 riastrad kmem_free(wq, sizeof(*wq)); 294 1.1 skrll return NULL; 295 1.1 skrll } 296 1.36 riastrad 297 1.52 riastrad /* 298 1.52 riastrad * alloc_ordered_workqueue(name, flags) 299 1.52 riastrad * 300 1.52 riastrad * Same as alloc_workqueue(name, flags, 1). 301 1.52 riastrad */ 302 1.52 riastrad struct workqueue_struct * 303 1.52 riastrad alloc_ordered_workqueue(const char *name, int flags) 304 1.52 riastrad { 305 1.52 riastrad 306 1.52 riastrad return alloc_workqueue(name, flags, 1); 307 1.52 riastrad } 308 1.52 riastrad 309 1.36 riastrad /* 310 1.36 riastrad * destroy_workqueue(wq) 311 1.36 riastrad * 312 1.36 riastrad * Destroy a workqueue created with wq. Cancel any pending 313 1.36 riastrad * delayed work. Wait for all queued work to complete. 314 1.36 riastrad * 315 1.36 riastrad * May sleep. 316 1.1 skrll */ 317 1.1 skrll void 318 1.1 skrll destroy_workqueue(struct workqueue_struct *wq) 319 1.1 skrll { 320 1.1 skrll 321 1.12 riastrad /* 322 1.12 riastrad * Cancel all delayed work. We do this first because any 323 1.12 riastrad * delayed work that that has already timed out, which we can't 324 1.1 skrll * cancel, may have queued new work. 325 1.26 riastrad */ 326 1.26 riastrad mutex_enter(&wq->wq_lock); 327 1.26 riastrad while (!TAILQ_EMPTY(&wq->wq_delayed)) { 328 1.1 skrll struct delayed_work *const dw = TAILQ_FIRST(&wq->wq_delayed); 329 1.39 riastrad 330 1.26 riastrad KASSERT(work_queue(&dw->work) == wq); 331 1.26 riastrad KASSERTMSG((dw->dw_state == DELAYED_WORK_SCHEDULED || 332 1.26 riastrad dw->dw_state == DELAYED_WORK_RESCHEDULED || 333 1.26 riastrad dw->dw_state == DELAYED_WORK_CANCELLED), 334 1.26 riastrad "delayed work %p in bad state: %d", 335 1.26 riastrad dw, dw->dw_state); 336 1.26 riastrad 337 1.26 riastrad /* 338 1.26 riastrad * Mark it cancelled and try to stop the callout before 339 1.26 riastrad * it starts. 340 1.26 riastrad * 341 1.26 riastrad * If it's too late and the callout has already begun 342 1.26 riastrad * to execute, then it will notice that we asked to 343 1.26 riastrad * cancel it and remove itself from the queue before 344 1.26 riastrad * returning. 345 1.26 riastrad * 346 1.26 riastrad * If we stopped the callout before it started, 347 1.26 riastrad * however, then we can safely destroy the callout and 348 1.26 riastrad * dissociate it from the workqueue ourselves. 349 1.41 riastrad */ 350 1.26 riastrad SDT_PROBE2(sdt, linux, work, cancel, &dw->work, wq); 351 1.26 riastrad dw->dw_state = DELAYED_WORK_CANCELLED; 352 1.26 riastrad if (!callout_halt(&dw->dw_callout, &wq->wq_lock)) 353 1.26 riastrad cancel_delayed_work_done(wq, dw); 354 1.26 riastrad } 355 1.1 skrll mutex_exit(&wq->wq_lock); 356 1.55 riastrad 357 1.55 riastrad /* Wait for all scheduled RCU work to complete. */ 358 1.55 riastrad mutex_enter(&wq->wq_lock); 359 1.55 riastrad while (!TAILQ_EMPTY(&wq->wq_rcu)) 360 1.55 riastrad cv_wait(&wq->wq_cv, &wq->wq_lock); 361 1.55 riastrad mutex_exit(&wq->wq_lock); 362 1.26 riastrad 363 1.26 riastrad /* 364 1.26 riastrad * At this point, no new work can be put on the queue. 365 1.1 skrll */ 366 1.12 riastrad 367 1.12 riastrad /* Tell the thread to exit. */ 368 1.12 riastrad mutex_enter(&wq->wq_lock); 369 1.12 riastrad wq->wq_dying = true; 370 1.12 riastrad cv_broadcast(&wq->wq_cv); 371 1.12 riastrad mutex_exit(&wq->wq_lock); 372 1.12 riastrad 373 1.12 riastrad /* Wait for it to exit. */ 374 1.12 riastrad (void)kthread_join(wq->wq_lwp); 375 1.25 riastrad 376 1.25 riastrad KASSERT(wq->wq_dying); 377 1.1 skrll KASSERT(wq->wq_flags == 0); 378 1.39 riastrad KASSERT(wq->wq_current_work == NULL); 379 1.12 riastrad KASSERT(TAILQ_EMPTY(&wq->wq_dqueue)); 380 1.55 riastrad KASSERT(TAILQ_EMPTY(&wq->wq_queue)); 381 1.12 riastrad KASSERT(TAILQ_EMPTY(&wq->wq_rcu)); 382 1.1 skrll KASSERT(TAILQ_EMPTY(&wq->wq_delayed)); 383 1.1 skrll cv_destroy(&wq->wq_cv); 384 1.1 skrll mutex_destroy(&wq->wq_lock); 385 1.1 skrll 386 1.1 skrll kmem_free(wq, sizeof(*wq)); 387 1.1 skrll } 388 1.1 skrll 389 1.12 riastrad /* 391 1.1 skrll * Work thread and callout 392 1.36 riastrad */ 393 1.36 riastrad 394 1.36 riastrad /* 395 1.36 riastrad * linux_workqueue_thread(cookie) 396 1.36 riastrad * 397 1.36 riastrad * Main function for a workqueue's worker thread. Waits until 398 1.36 riastrad * there is work queued, grabs a batch of work off the queue, 399 1.36 riastrad * executes it all, bumps the generation number, and repeats, 400 1.12 riastrad * until dying. 401 1.12 riastrad */ 402 1.1 skrll static void __dead 403 1.12 riastrad linux_workqueue_thread(void *cookie) 404 1.45 riastrad { 405 1.45 riastrad struct workqueue_struct *const wq = cookie; 406 1.39 riastrad struct work_head *const q[2] = { &wq->wq_queue, &wq->wq_dqueue }; 407 1.1 skrll struct work_struct marker, *work; 408 1.12 riastrad unsigned i; 409 1.1 skrll 410 1.12 riastrad lwp_setspecific(workqueue_key, wq); 411 1.12 riastrad 412 1.26 riastrad mutex_enter(&wq->wq_lock); 413 1.26 riastrad for (;;) { 414 1.26 riastrad /* 415 1.26 riastrad * Wait until there's activity. If there's no work and 416 1.42 riastrad * we're dying, stop here. 417 1.42 riastrad */ 418 1.42 riastrad if (TAILQ_EMPTY(&wq->wq_queue) && 419 1.42 riastrad TAILQ_EMPTY(&wq->wq_dqueue)) { 420 1.12 riastrad if (wq->wq_dying) 421 1.42 riastrad break; 422 1.26 riastrad cv_wait(&wq->wq_cv, &wq->wq_lock); 423 1.1 skrll continue; 424 1.45 riastrad } 425 1.45 riastrad 426 1.45 riastrad /* 427 1.45 riastrad * Start a batch of work. Use a marker to delimit when 428 1.45 riastrad * the batch ends so we can advance the generation 429 1.41 riastrad * after the batch. 430 1.39 riastrad */ 431 1.45 riastrad SDT_PROBE1(sdt, linux, work, batch__start, wq); 432 1.45 riastrad for (i = 0; i < 2; i++) { 433 1.45 riastrad if (TAILQ_EMPTY(q[i])) 434 1.45 riastrad continue; 435 1.39 riastrad TAILQ_INSERT_TAIL(q[i], &marker, work_entry); 436 1.39 riastrad while ((work = TAILQ_FIRST(q[i])) != &marker) { 437 1.39 riastrad void (*func)(struct work_struct *); 438 1.39 riastrad 439 1.45 riastrad KASSERT(work_queue(work) == wq); 440 1.39 riastrad KASSERT(work_claimed(work, wq)); 441 1.39 riastrad KASSERTMSG((q[i] != &wq->wq_dqueue || 442 1.39 riastrad container_of(work, struct delayed_work, 443 1.39 riastrad work)->dw_state == 444 1.39 riastrad DELAYED_WORK_IDLE), 445 1.39 riastrad "delayed work %p queued and scheduled", 446 1.39 riastrad work); 447 1.39 riastrad 448 1.39 riastrad TAILQ_REMOVE(q[i], work, work_entry); 449 1.39 riastrad KASSERT(wq->wq_current_work == NULL); 450 1.39 riastrad wq->wq_current_work = work; 451 1.39 riastrad func = work->func; 452 1.12 riastrad release_work(work, wq); 453 1.39 riastrad /* Can't dereference work after this point. */ 454 1.41 riastrad 455 1.39 riastrad mutex_exit(&wq->wq_lock); 456 1.41 riastrad SDT_PROBE2(sdt, linux, work, run, work, wq); 457 1.39 riastrad (*func)(work); 458 1.39 riastrad SDT_PROBE2(sdt, linux, work, done, work, wq); 459 1.39 riastrad mutex_enter(&wq->wq_lock); 460 1.39 riastrad 461 1.39 riastrad KASSERT(wq->wq_current_work == work); 462 1.39 riastrad wq->wq_current_work = NULL; 463 1.45 riastrad cv_broadcast(&wq->wq_cv); 464 1.12 riastrad } 465 1.1 skrll TAILQ_REMOVE(q[i], &marker, work_entry); 466 1.57 riastrad } 467 1.12 riastrad 468 1.12 riastrad /* Notify cancel that we've completed a batch of work. */ 469 1.41 riastrad wq->wq_gen++; 470 1.1 skrll cv_broadcast(&wq->wq_cv); 471 1.12 riastrad SDT_PROBE1(sdt, linux, work, batch__done, wq); 472 1.1 skrll } 473 1.12 riastrad mutex_exit(&wq->wq_lock); 474 1.1 skrll 475 1.1 skrll kthread_exit(0); 476 1.36 riastrad } 477 1.36 riastrad 478 1.36 riastrad /* 479 1.36 riastrad * linux_workqueue_timeout(cookie) 480 1.36 riastrad * 481 1.36 riastrad * Delayed work timeout callback. 482 1.36 riastrad * 483 1.36 riastrad * - If scheduled, queue it. 484 1.36 riastrad * - If rescheduled, callout_schedule ourselves again. 485 1.36 riastrad * - If cancelled, destroy the callout and release the work from 486 1.1 skrll * the workqueue. 487 1.12 riastrad */ 488 1.1 skrll static void 489 1.12 riastrad linux_workqueue_timeout(void *cookie) 490 1.39 riastrad { 491 1.1 skrll struct delayed_work *const dw = cookie; 492 1.39 riastrad struct workqueue_struct *const wq = work_queue(&dw->work); 493 1.39 riastrad 494 1.39 riastrad KASSERTMSG(wq != NULL, 495 1.14 riastrad "delayed work %p state %d resched %d", 496 1.41 riastrad dw, dw->dw_state, dw->dw_resched); 497 1.41 riastrad 498 1.12 riastrad SDT_PROBE2(sdt, linux, work, timer, dw, wq); 499 1.39 riastrad 500 1.12 riastrad mutex_enter(&wq->wq_lock); 501 1.12 riastrad KASSERT(work_queue(&dw->work) == wq); 502 1.12 riastrad switch (dw->dw_state) { 503 1.12 riastrad case DELAYED_WORK_IDLE: 504 1.31 riastrad panic("delayed work callout uninitialized: %p", dw); 505 1.39 riastrad case DELAYED_WORK_SCHEDULED: 506 1.12 riastrad dw_callout_destroy(wq, dw); 507 1.41 riastrad TAILQ_INSERT_TAIL(&wq->wq_dqueue, &dw->work, work_entry); 508 1.12 riastrad cv_broadcast(&wq->wq_cv); 509 1.12 riastrad SDT_PROBE2(sdt, linux, work, queue, &dw->work, wq); 510 1.35 riastrad break; 511 1.35 riastrad case DELAYED_WORK_RESCHEDULED: 512 1.12 riastrad KASSERT(dw->dw_resched >= 0); 513 1.35 riastrad callout_schedule(&dw->dw_callout, dw->dw_resched); 514 1.12 riastrad dw->dw_state = DELAYED_WORK_SCHEDULED; 515 1.12 riastrad dw->dw_resched = -1; 516 1.23 riastrad break; 517 1.39 riastrad case DELAYED_WORK_CANCELLED: 518 1.22 riastrad cancel_delayed_work_done(wq, dw); 519 1.12 riastrad /* Can't dereference dw after this point. */ 520 1.12 riastrad goto out; 521 1.12 riastrad default: 522 1.15 riastrad panic("delayed work callout in bad state: %p", dw); 523 1.15 riastrad } 524 1.22 riastrad KASSERT(dw->dw_state == DELAYED_WORK_IDLE || 525 1.1 skrll dw->dw_state == DELAYED_WORK_SCHEDULED); 526 1.1 skrll out: mutex_exit(&wq->wq_lock); 527 1.36 riastrad } 528 1.36 riastrad 529 1.36 riastrad /* 530 1.36 riastrad * current_work() 531 1.36 riastrad * 532 1.36 riastrad * If in a workqueue worker thread, return the work it is 533 1.12 riastrad * currently executing. Otherwise return NULL. 534 1.12 riastrad */ 535 1.1 skrll struct work_struct * 536 1.12 riastrad current_work(void) 537 1.1 skrll { 538 1.12 riastrad struct workqueue_struct *wq = lwp_getspecific(workqueue_key); 539 1.12 riastrad 540 1.12 riastrad /* If we're not a workqueue thread, then there's no work. */ 541 1.1 skrll if (wq == NULL) 542 1.12 riastrad return NULL; 543 1.12 riastrad 544 1.12 riastrad /* 545 1.12 riastrad * Otherwise, this should be possible only while work is in 546 1.12 riastrad * progress. Return the current work item. 547 1.12 riastrad */ 548 1.1 skrll KASSERT(wq->wq_current_work != NULL); 549 1.1 skrll return wq->wq_current_work; 550 1.1 skrll } 551 1.1 skrll 552 1.1 skrll /* 554 1.36 riastrad * Work 555 1.36 riastrad */ 556 1.36 riastrad 557 1.36 riastrad /* 558 1.36 riastrad * INIT_WORK(work, fn) 559 1.36 riastrad * 560 1.1 skrll * Initialize work for use with a workqueue to call fn in a worker 561 1.1 skrll * thread. There is no corresponding destruction operation. 562 1.1 skrll */ 563 1.1 skrll void 564 1.39 riastrad INIT_WORK(struct work_struct *work, void (*fn)(struct work_struct *)) 565 1.4 riastrad { 566 1.1 skrll 567 1.1 skrll work->work_owner = 0; 568 1.36 riastrad work->func = fn; 569 1.39 riastrad } 570 1.39 riastrad 571 1.39 riastrad /* 572 1.39 riastrad * work_claimed(work, wq) 573 1.39 riastrad * 574 1.39 riastrad * True if work is currently claimed by a workqueue, meaning it is 575 1.39 riastrad * either on the queue or scheduled in a callout. The workqueue 576 1.39 riastrad * must be wq, and caller must hold wq's lock. 577 1.39 riastrad */ 578 1.39 riastrad static bool 579 1.39 riastrad work_claimed(struct work_struct *work, struct workqueue_struct *wq) 580 1.39 riastrad { 581 1.39 riastrad 582 1.54 riastrad KASSERT(work_queue(work) == wq); 583 1.39 riastrad KASSERT(mutex_owned(&wq->wq_lock)); 584 1.39 riastrad 585 1.39 riastrad return atomic_load_relaxed(&work->work_owner) & 1; 586 1.49 riastrad } 587 1.49 riastrad 588 1.49 riastrad /* 589 1.49 riastrad * work_pending(work) 590 1.49 riastrad * 591 1.49 riastrad * True if work is currently claimed by any workqueue, scheduled 592 1.51 riastrad * to run on that workqueue. 593 1.49 riastrad */ 594 1.49 riastrad bool 595 1.54 riastrad work_pending(const struct work_struct *work) 596 1.49 riastrad { 597 1.49 riastrad 598 1.49 riastrad return atomic_load_relaxed(&work->work_owner) & 1; 599 1.39 riastrad } 600 1.39 riastrad 601 1.39 riastrad /* 602 1.39 riastrad * work_queue(work) 603 1.39 riastrad * 604 1.39 riastrad * Return the last queue that work was queued on, or NULL if it 605 1.39 riastrad * was never queued. 606 1.39 riastrad */ 607 1.39 riastrad static struct workqueue_struct * 608 1.54 riastrad work_queue(struct work_struct *work) 609 1.54 riastrad { 610 1.39 riastrad 611 1.39 riastrad return (struct workqueue_struct *) 612 1.39 riastrad (atomic_load_relaxed(&work->work_owner) & ~(uintptr_t)1); 613 1.36 riastrad } 614 1.36 riastrad 615 1.39 riastrad /* 616 1.39 riastrad * acquire_work(work, wq) 617 1.39 riastrad * 618 1.39 riastrad * Try to claim work for wq. If work is already claimed, it must 619 1.36 riastrad * be claimed by wq; return false. If work is not already 620 1.36 riastrad * claimed, claim it, issue a memory barrier to match any prior 621 1.36 riastrad * release_work, and return true. 622 1.39 riastrad * 623 1.17 riastrad * Caller must hold wq's lock. 624 1.17 riastrad */ 625 1.39 riastrad static bool 626 1.17 riastrad acquire_work(struct work_struct *work, struct workqueue_struct *wq) 627 1.17 riastrad { 628 1.39 riastrad uintptr_t owner0, owner; 629 1.17 riastrad 630 1.39 riastrad KASSERT(mutex_owned(&wq->wq_lock)); 631 1.39 riastrad KASSERT(((uintptr_t)wq & 1) == 0); 632 1.54 riastrad 633 1.39 riastrad owner = (uintptr_t)wq | 1; 634 1.39 riastrad do { 635 1.39 riastrad owner0 = atomic_load_relaxed(&work->work_owner); 636 1.39 riastrad if (owner0 & 1) { 637 1.39 riastrad KASSERT((owner0 & ~(uintptr_t)1) == (uintptr_t)wq); 638 1.39 riastrad return false; 639 1.39 riastrad } 640 1.39 riastrad KASSERT(owner0 == (uintptr_t)NULL || owner0 == (uintptr_t)wq); 641 1.39 riastrad } while (atomic_cas_uintptr(&work->work_owner, owner0, owner) != 642 1.61 riastrad owner0); 643 1.41 riastrad 644 1.39 riastrad KASSERT(work_queue(work) == wq); 645 1.17 riastrad membar_acquire(); 646 1.17 riastrad SDT_PROBE2(sdt, linux, work, acquire, work, wq); 647 1.36 riastrad return true; 648 1.36 riastrad } 649 1.36 riastrad 650 1.36 riastrad /* 651 1.36 riastrad * release_work(work, wq) 652 1.36 riastrad * 653 1.36 riastrad * Issue a memory barrier to match any subsequent acquire_work and 654 1.36 riastrad * dissociate work from wq. 655 1.17 riastrad * 656 1.17 riastrad * Caller must hold wq's lock and work must be associated with wq. 657 1.17 riastrad */ 658 1.17 riastrad static void 659 1.39 riastrad release_work(struct work_struct *work, struct workqueue_struct *wq) 660 1.17 riastrad { 661 1.17 riastrad 662 1.41 riastrad KASSERT(work_queue(work) == wq); 663 1.61 riastrad KASSERT(mutex_owned(&wq->wq_lock)); 664 1.39 riastrad 665 1.39 riastrad SDT_PROBE2(sdt, linux, work, release, work, wq); 666 1.39 riastrad membar_release(); 667 1.54 riastrad 668 1.39 riastrad /* 669 1.39 riastrad * Non-interlocked r/m/w is safe here because nobody else can 670 1.54 riastrad * write to this while the claimed bit is set and the workqueue 671 1.54 riastrad * lock is held. 672 1.17 riastrad */ 673 1.17 riastrad atomic_store_relaxed(&work->work_owner, 674 1.36 riastrad atomic_load_relaxed(&work->work_owner) & ~(uintptr_t)1); 675 1.36 riastrad } 676 1.36 riastrad 677 1.36 riastrad /* 678 1.36 riastrad * schedule_work(work) 679 1.36 riastrad * 680 1.36 riastrad * If work is not already queued on system_wq, queue it to be run 681 1.36 riastrad * by system_wq's worker thread when it next can. True if it was 682 1.36 riastrad * newly queued, false if it was already queued. If the work was 683 1.36 riastrad * already running, queue it to run again. 684 1.36 riastrad * 685 1.1 skrll * Caller must ensure work is not queued to run on a different 686 1.1 skrll * workqueue. 687 1.1 skrll */ 688 1.12 riastrad bool 689 1.1 skrll schedule_work(struct work_struct *work) 690 1.1 skrll { 691 1.1 skrll 692 1.36 riastrad return queue_work(system_wq, work); 693 1.36 riastrad } 694 1.36 riastrad 695 1.36 riastrad /* 696 1.36 riastrad * queue_work(wq, work) 697 1.36 riastrad * 698 1.36 riastrad * If work is not already queued on wq, queue it to be run by wq's 699 1.36 riastrad * worker thread when it next can. True if it was newly queued, 700 1.36 riastrad * false if it was already queued. If the work was already 701 1.36 riastrad * running, queue it to run again. 702 1.36 riastrad * 703 1.1 skrll * Caller must ensure work is not queued to run on a different 704 1.1 skrll * workqueue. 705 1.1 skrll */ 706 1.1 skrll bool 707 1.1 skrll queue_work(struct workqueue_struct *wq, struct work_struct *work) 708 1.1 skrll { 709 1.1 skrll bool newly_queued; 710 1.12 riastrad 711 1.39 riastrad KASSERT(wq != NULL); 712 1.29 riastrad 713 1.29 riastrad mutex_enter(&wq->wq_lock); 714 1.29 riastrad if (__predict_true(acquire_work(work, wq))) { 715 1.29 riastrad /* 716 1.29 riastrad * It wasn't on any workqueue at all. Put it on this 717 1.12 riastrad * one, and signal the worker thread that there is work 718 1.39 riastrad * to do. 719 1.41 riastrad */ 720 1.1 skrll TAILQ_INSERT_TAIL(&wq->wq_queue, work, work_entry); 721 1.12 riastrad cv_broadcast(&wq->wq_cv); 722 1.29 riastrad SDT_PROBE2(sdt, linux, work, queue, work, wq); 723 1.39 riastrad newly_queued = true; 724 1.39 riastrad } else { 725 1.29 riastrad /* 726 1.39 riastrad * It was already on this workqueue. Nothing to do 727 1.1 skrll * since it is already queued. 728 1.12 riastrad */ 729 1.1 skrll newly_queued = false; 730 1.1 skrll } 731 1.1 skrll mutex_exit(&wq->wq_lock); 732 1.1 skrll 733 1.36 riastrad return newly_queued; 734 1.36 riastrad } 735 1.36 riastrad 736 1.36 riastrad /* 737 1.39 riastrad * cancel_work(work) 738 1.39 riastrad * 739 1.36 riastrad * If work was queued, remove it from the queue and return true. 740 1.1 skrll * If work was not queued, return false. Work may still be 741 1.12 riastrad * running when this returns. 742 1.1 skrll */ 743 1.12 riastrad bool 744 1.1 skrll cancel_work(struct work_struct *work) 745 1.1 skrll { 746 1.13 riastrad struct workqueue_struct *wq; 747 1.39 riastrad bool cancelled_p = false; 748 1.13 riastrad 749 1.13 riastrad /* If there's no workqueue, nothing to cancel. */ 750 1.12 riastrad if ((wq = work_queue(work)) == NULL) 751 1.39 riastrad goto out; 752 1.29 riastrad 753 1.29 riastrad mutex_enter(&wq->wq_lock); 754 1.29 riastrad if (__predict_false(work_queue(work) != wq)) { 755 1.29 riastrad /* 756 1.29 riastrad * It has finished execution or been cancelled by 757 1.12 riastrad * another thread, and has been moved off the 758 1.12 riastrad * workqueue, so it's too to cancel. 759 1.39 riastrad */ 760 1.39 riastrad cancelled_p = false; 761 1.39 riastrad } else { 762 1.39 riastrad /* Check whether it's on the queue. */ 763 1.39 riastrad if (work_claimed(work, wq)) { 764 1.39 riastrad /* 765 1.39 riastrad * It is still on the queue. Take it off the 766 1.41 riastrad * queue and report successful cancellation. 767 1.39 riastrad */ 768 1.39 riastrad TAILQ_REMOVE(&wq->wq_queue, work, work_entry); 769 1.39 riastrad SDT_PROBE2(sdt, linux, work, cancel, work, wq); 770 1.39 riastrad release_work(work, wq); 771 1.39 riastrad /* Can't dereference work after this point. */ 772 1.39 riastrad cancelled_p = true; 773 1.39 riastrad } else { 774 1.1 skrll /* Not on the queue. Couldn't cancel it. */ 775 1.12 riastrad cancelled_p = false; 776 1.1 skrll } 777 1.13 riastrad } 778 1.1 skrll mutex_exit(&wq->wq_lock); 779 1.1 skrll 780 1.36 riastrad out: return cancelled_p; 781 1.36 riastrad } 782 1.36 riastrad 783 1.36 riastrad /* 784 1.39 riastrad * cancel_work_sync(work) 785 1.36 riastrad * 786 1.36 riastrad * If work was queued, remove it from the queue and return true. 787 1.36 riastrad * If work was not queued, return false. Either way, if work is 788 1.36 riastrad * currently running, wait for it to complete. 789 1.12 riastrad * 790 1.12 riastrad * May sleep. 791 1.1 skrll */ 792 1.1 skrll bool 793 1.12 riastrad cancel_work_sync(struct work_struct *work) 794 1.1 skrll { 795 1.13 riastrad struct workqueue_struct *wq; 796 1.39 riastrad bool cancelled_p = false; 797 1.13 riastrad 798 1.13 riastrad /* If there's no workqueue, nothing to cancel. */ 799 1.1 skrll if ((wq = work_queue(work)) == NULL) 800 1.39 riastrad goto out; 801 1.29 riastrad 802 1.29 riastrad mutex_enter(&wq->wq_lock); 803 1.29 riastrad if (__predict_false(work_queue(work) != wq)) { 804 1.39 riastrad /* 805 1.29 riastrad * It has finished execution or been cancelled by 806 1.12 riastrad * another thread, and has been moved off the 807 1.12 riastrad * workqueue, so it's too late to cancel. 808 1.39 riastrad */ 809 1.39 riastrad cancelled_p = false; 810 1.39 riastrad } else { 811 1.39 riastrad /* Check whether it's on the queue. */ 812 1.39 riastrad if (work_claimed(work, wq)) { 813 1.39 riastrad /* 814 1.39 riastrad * It is still on the queue. Take it off the 815 1.41 riastrad * queue and report successful cancellation. 816 1.39 riastrad */ 817 1.39 riastrad TAILQ_REMOVE(&wq->wq_queue, work, work_entry); 818 1.39 riastrad SDT_PROBE2(sdt, linux, work, cancel, work, wq); 819 1.39 riastrad release_work(work, wq); 820 1.39 riastrad /* Can't dereference work after this point. */ 821 1.39 riastrad cancelled_p = true; 822 1.39 riastrad } else { 823 1.39 riastrad /* Not on the queue. Couldn't cancel it. */ 824 1.39 riastrad cancelled_p = false; 825 1.39 riastrad } 826 1.12 riastrad /* If it's still running, wait for it to complete. */ 827 1.1 skrll if (wq->wq_current_work == work) 828 1.1 skrll wait_for_current_work(work, wq); 829 1.13 riastrad } 830 1.1 skrll mutex_exit(&wq->wq_lock); 831 1.33 riastrad 832 1.33 riastrad out: return cancelled_p; 833 1.33 riastrad } 834 1.33 riastrad 835 1.33 riastrad /* 836 1.39 riastrad * wait_for_current_work(work, wq) 837 1.39 riastrad * 838 1.33 riastrad * wq must be currently executing work. Wait for it to finish. 839 1.33 riastrad * 840 1.33 riastrad * Does not dereference work. 841 1.33 riastrad */ 842 1.33 riastrad static void 843 1.33 riastrad wait_for_current_work(struct work_struct *work, struct workqueue_struct *wq) 844 1.33 riastrad { 845 1.33 riastrad uint64_t gen; 846 1.33 riastrad 847 1.33 riastrad KASSERT(mutex_owned(&wq->wq_lock)); 848 1.41 riastrad KASSERT(wq->wq_current_work == work); 849 1.33 riastrad 850 1.33 riastrad /* Wait only one generation in case it gets requeued quickly. */ 851 1.33 riastrad SDT_PROBE2(sdt, linux, work, wait__start, work, wq); 852 1.33 riastrad gen = wq->wq_gen; 853 1.41 riastrad do { 854 1.33 riastrad cv_wait(&wq->wq_cv, &wq->wq_lock); 855 1.1 skrll } while (wq->wq_current_work == work && wq->wq_gen == gen); 856 1.1 skrll SDT_PROBE2(sdt, linux, work, wait__done, work, wq); 857 1.1 skrll } 858 1.1 skrll 859 1.1 skrll /* 861 1.36 riastrad * Delayed work 862 1.36 riastrad */ 863 1.36 riastrad 864 1.36 riastrad /* 865 1.36 riastrad * INIT_DELAYED_WORK(dw, fn) 866 1.36 riastrad * 867 1.1 skrll * Initialize dw for use with a workqueue to call fn in a worker 868 1.1 skrll * thread after a delay. There is no corresponding destruction 869 1.1 skrll * operation. 870 1.12 riastrad */ 871 1.1 skrll void 872 1.12 riastrad INIT_DELAYED_WORK(struct delayed_work *dw, void (*fn)(struct work_struct *)) 873 1.35 riastrad { 874 1.12 riastrad 875 1.12 riastrad INIT_WORK(&dw->work, fn); 876 1.12 riastrad dw->dw_state = DELAYED_WORK_IDLE; 877 1.12 riastrad dw->dw_resched = -1; 878 1.12 riastrad 879 1.12 riastrad /* 880 1.12 riastrad * Defer callout_init until we are going to schedule the 881 1.1 skrll * callout, which can then callout_destroy it, because 882 1.1 skrll * otherwise since there's no DESTROY_DELAYED_WORK or anything 883 1.36 riastrad * we have no opportunity to call callout_destroy. 884 1.36 riastrad */ 885 1.36 riastrad } 886 1.36 riastrad 887 1.36 riastrad /* 888 1.36 riastrad * schedule_delayed_work(dw, ticks) 889 1.36 riastrad * 890 1.36 riastrad * If it is not currently scheduled, schedule dw to run after 891 1.36 riastrad * ticks on system_wq. If currently executing and not already 892 1.36 riastrad * rescheduled, reschedule it. True if it was newly scheduled, 893 1.36 riastrad * false if it was already scheduled. 894 1.1 skrll * 895 1.1 skrll * If ticks == 0, queue it to run as soon as the worker can, 896 1.1 skrll * without waiting for the next callout tick to run. 897 1.12 riastrad */ 898 1.1 skrll bool 899 1.1 skrll schedule_delayed_work(struct delayed_work *dw, unsigned long ticks) 900 1.1 skrll { 901 1.29 riastrad 902 1.30 riastrad return queue_delayed_work(system_wq, dw, ticks); 903 1.30 riastrad } 904 1.30 riastrad 905 1.30 riastrad /* 906 1.30 riastrad * dw_callout_init(wq, dw) 907 1.30 riastrad * 908 1.30 riastrad * Initialize the callout of dw and transition to 909 1.30 riastrad * DELAYED_WORK_SCHEDULED. Caller must use callout_schedule. 910 1.30 riastrad */ 911 1.30 riastrad static void 912 1.39 riastrad dw_callout_init(struct workqueue_struct *wq, struct delayed_work *dw) 913 1.30 riastrad { 914 1.30 riastrad 915 1.30 riastrad KASSERT(mutex_owned(&wq->wq_lock)); 916 1.30 riastrad KASSERT(work_queue(&dw->work) == wq); 917 1.30 riastrad KASSERT(dw->dw_state == DELAYED_WORK_IDLE); 918 1.30 riastrad 919 1.30 riastrad callout_init(&dw->dw_callout, CALLOUT_MPSAFE); 920 1.30 riastrad callout_setfunc(&dw->dw_callout, &linux_workqueue_timeout, dw); 921 1.30 riastrad TAILQ_INSERT_HEAD(&wq->wq_delayed, dw, dw_entry); 922 1.31 riastrad dw->dw_state = DELAYED_WORK_SCHEDULED; 923 1.31 riastrad } 924 1.31 riastrad 925 1.31 riastrad /* 926 1.31 riastrad * dw_callout_destroy(wq, dw) 927 1.31 riastrad * 928 1.31 riastrad * Destroy the callout of dw and transition to DELAYED_WORK_IDLE. 929 1.31 riastrad */ 930 1.31 riastrad static void 931 1.39 riastrad dw_callout_destroy(struct workqueue_struct *wq, struct delayed_work *dw) 932 1.31 riastrad { 933 1.31 riastrad 934 1.31 riastrad KASSERT(mutex_owned(&wq->wq_lock)); 935 1.31 riastrad KASSERT(work_queue(&dw->work) == wq); 936 1.31 riastrad KASSERT(dw->dw_state == DELAYED_WORK_SCHEDULED || 937 1.31 riastrad dw->dw_state == DELAYED_WORK_RESCHEDULED || 938 1.35 riastrad dw->dw_state == DELAYED_WORK_CANCELLED); 939 1.31 riastrad 940 1.31 riastrad TAILQ_REMOVE(&wq->wq_delayed, dw, dw_entry); 941 1.31 riastrad callout_destroy(&dw->dw_callout); 942 1.31 riastrad dw->dw_resched = -1; 943 1.29 riastrad dw->dw_state = DELAYED_WORK_IDLE; 944 1.29 riastrad } 945 1.29 riastrad 946 1.29 riastrad /* 947 1.39 riastrad * cancel_delayed_work_done(wq, dw) 948 1.29 riastrad * 949 1.23 riastrad * Complete cancellation of a delayed work: transition from 950 1.23 riastrad * DELAYED_WORK_CANCELLED to DELAYED_WORK_IDLE and off the 951 1.23 riastrad * workqueue. Caller must not dereference dw after this returns. 952 1.23 riastrad */ 953 1.23 riastrad static void 954 1.39 riastrad cancel_delayed_work_done(struct workqueue_struct *wq, struct delayed_work *dw) 955 1.23 riastrad { 956 1.31 riastrad 957 1.31 riastrad KASSERT(mutex_owned(&wq->wq_lock)); 958 1.23 riastrad KASSERT(work_queue(&dw->work) == wq); 959 1.39 riastrad KASSERT(dw->dw_state == DELAYED_WORK_CANCELLED); 960 1.23 riastrad 961 1.23 riastrad dw_callout_destroy(wq, dw); 962 1.29 riastrad release_work(&dw->work, wq); 963 1.29 riastrad /* Can't dereference dw after this point. */ 964 1.29 riastrad } 965 1.29 riastrad 966 1.39 riastrad /* 967 1.39 riastrad * queue_delayed_work(wq, dw, ticks) 968 1.36 riastrad * 969 1.36 riastrad * If it is not currently scheduled, schedule dw to run after 970 1.36 riastrad * ticks on wq. If currently queued, remove it from the queue 971 1.29 riastrad * first. 972 1.12 riastrad * 973 1.12 riastrad * If ticks == 0, queue it to run as soon as the worker can, 974 1.12 riastrad * without waiting for the next callout tick to run. 975 1.12 riastrad */ 976 1.12 riastrad bool 977 1.1 skrll queue_delayed_work(struct workqueue_struct *wq, struct delayed_work *dw, 978 1.12 riastrad unsigned long ticks) 979 1.39 riastrad { 980 1.29 riastrad bool newly_queued; 981 1.29 riastrad 982 1.29 riastrad mutex_enter(&wq->wq_lock); 983 1.29 riastrad if (__predict_true(acquire_work(&dw->work, wq))) { 984 1.12 riastrad /* 985 1.29 riastrad * It wasn't on any workqueue at all. Schedule it to 986 1.39 riastrad * run on this one. 987 1.29 riastrad */ 988 1.29 riastrad KASSERT(dw->dw_state == DELAYED_WORK_IDLE); 989 1.41 riastrad if (ticks == 0) { 990 1.29 riastrad TAILQ_INSERT_TAIL(&wq->wq_dqueue, &dw->work, 991 1.29 riastrad work_entry); 992 1.29 riastrad cv_broadcast(&wq->wq_cv); 993 1.29 riastrad SDT_PROBE2(sdt, linux, work, queue, &dw->work, wq); 994 1.29 riastrad } else { 995 1.30 riastrad /* 996 1.29 riastrad * Initialize a callout and schedule to run 997 1.41 riastrad * after a delay. 998 1.29 riastrad */ 999 1.12 riastrad dw_callout_init(wq, dw); 1000 1.12 riastrad callout_schedule(&dw->dw_callout, MIN(INT_MAX, ticks)); 1001 1.39 riastrad SDT_PROBE3(sdt, linux, work, schedule, dw, wq, ticks); 1002 1.39 riastrad } 1003 1.39 riastrad newly_queued = true; 1004 1.39 riastrad } else { 1005 1.39 riastrad /* It was already on this workqueue. */ 1006 1.39 riastrad switch (dw->dw_state) { 1007 1.39 riastrad case DELAYED_WORK_IDLE: 1008 1.39 riastrad case DELAYED_WORK_SCHEDULED: 1009 1.39 riastrad case DELAYED_WORK_RESCHEDULED: 1010 1.29 riastrad /* On the queue or already scheduled. Leave it. */ 1011 1.39 riastrad newly_queued = false; 1012 1.39 riastrad break; 1013 1.29 riastrad case DELAYED_WORK_CANCELLED: 1014 1.40 riastrad /* 1015 1.40 riastrad * Scheduled and the callout began, but it was 1016 1.41 riastrad * cancelled. Reschedule it. 1017 1.41 riastrad */ 1018 1.40 riastrad if (ticks == 0) { 1019 1.40 riastrad dw->dw_state = DELAYED_WORK_SCHEDULED; 1020 1.40 riastrad SDT_PROBE2(sdt, linux, work, queue, 1021 1.41 riastrad &dw->work, wq); 1022 1.41 riastrad } else { 1023 1.40 riastrad dw->dw_state = DELAYED_WORK_RESCHEDULED; 1024 1.39 riastrad dw->dw_resched = MIN(INT_MAX, ticks); 1025 1.39 riastrad SDT_PROBE3(sdt, linux, work, schedule, 1026 1.39 riastrad dw, wq, ticks); 1027 1.39 riastrad } 1028 1.39 riastrad newly_queued = true; 1029 1.29 riastrad break; 1030 1.1 skrll default: 1031 1.12 riastrad panic("invalid delayed work state: %d", 1032 1.1 skrll dw->dw_state); 1033 1.1 skrll } 1034 1.1 skrll } 1035 1.1 skrll mutex_exit(&wq->wq_lock); 1036 1.29 riastrad 1037 1.29 riastrad return newly_queued; 1038 1.29 riastrad } 1039 1.39 riastrad 1040 1.39 riastrad /* 1041 1.36 riastrad * mod_delayed_work(wq, dw, ticks) 1042 1.36 riastrad * 1043 1.36 riastrad * Schedule dw to run after ticks. If scheduled or queued, 1044 1.29 riastrad * reschedule. If ticks == 0, run without delay. 1045 1.1 skrll * 1046 1.1 skrll * True if it modified the timer of an already scheduled work, 1047 1.1 skrll * false if it newly scheduled the work. 1048 1.1 skrll */ 1049 1.1 skrll bool 1050 1.1 skrll mod_delayed_work(struct workqueue_struct *wq, struct delayed_work *dw, 1051 1.12 riastrad unsigned long ticks) 1052 1.39 riastrad { 1053 1.29 riastrad bool timer_modified; 1054 1.29 riastrad 1055 1.29 riastrad mutex_enter(&wq->wq_lock); 1056 1.29 riastrad if (acquire_work(&dw->work, wq)) { 1057 1.12 riastrad /* 1058 1.29 riastrad * It wasn't on any workqueue at all. Schedule it to 1059 1.29 riastrad * run on this one. 1060 1.29 riastrad */ 1061 1.29 riastrad KASSERT(dw->dw_state == DELAYED_WORK_IDLE); 1062 1.29 riastrad if (ticks == 0) { 1063 1.39 riastrad /* 1064 1.29 riastrad * Run immediately: put it on the queue and 1065 1.29 riastrad * signal the worker thread. 1066 1.41 riastrad */ 1067 1.29 riastrad TAILQ_INSERT_TAIL(&wq->wq_dqueue, &dw->work, 1068 1.29 riastrad work_entry); 1069 1.29 riastrad cv_broadcast(&wq->wq_cv); 1070 1.29 riastrad SDT_PROBE2(sdt, linux, work, queue, &dw->work, wq); 1071 1.29 riastrad } else { 1072 1.30 riastrad /* 1073 1.30 riastrad * Initialize a callout and schedule to run 1074 1.41 riastrad * after a delay. 1075 1.29 riastrad */ 1076 1.12 riastrad dw_callout_init(wq, dw); 1077 1.12 riastrad callout_schedule(&dw->dw_callout, MIN(INT_MAX, ticks)); 1078 1.39 riastrad SDT_PROBE3(sdt, linux, work, schedule, dw, wq, ticks); 1079 1.12 riastrad } 1080 1.12 riastrad timer_modified = false; 1081 1.39 riastrad } else { 1082 1.39 riastrad /* It was already on this workqueue. */ 1083 1.39 riastrad switch (dw->dw_state) { 1084 1.41 riastrad case DELAYED_WORK_IDLE: 1085 1.41 riastrad /* On the queue. */ 1086 1.41 riastrad if (ticks == 0) { 1087 1.41 riastrad /* Leave it be. */ 1088 1.29 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1089 1.39 riastrad &dw->work, wq); 1090 1.39 riastrad SDT_PROBE2(sdt, linux, work, queue, 1091 1.39 riastrad &dw->work, wq); 1092 1.39 riastrad } else { 1093 1.39 riastrad /* Remove from the queue and schedule. */ 1094 1.39 riastrad TAILQ_REMOVE(&wq->wq_dqueue, &dw->work, 1095 1.41 riastrad work_entry); 1096 1.41 riastrad dw_callout_init(wq, dw); 1097 1.41 riastrad callout_schedule(&dw->dw_callout, 1098 1.41 riastrad MIN(INT_MAX, ticks)); 1099 1.12 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1100 1.39 riastrad &dw->work, wq); 1101 1.12 riastrad SDT_PROBE3(sdt, linux, work, schedule, 1102 1.12 riastrad dw, wq, ticks); 1103 1.29 riastrad } 1104 1.29 riastrad timer_modified = true; 1105 1.29 riastrad break; 1106 1.29 riastrad case DELAYED_WORK_SCHEDULED: 1107 1.29 riastrad /* 1108 1.29 riastrad * It is scheduled to run after a delay. Try 1109 1.12 riastrad * to stop it and reschedule it; if we can't, 1110 1.29 riastrad * either reschedule it or cancel it to put it 1111 1.29 riastrad * on the queue, and inform the callout. 1112 1.29 riastrad */ 1113 1.29 riastrad if (callout_stop(&dw->dw_callout)) { 1114 1.29 riastrad /* Can't stop, callout has begun. */ 1115 1.29 riastrad if (ticks == 0) { 1116 1.29 riastrad /* 1117 1.29 riastrad * We don't actually need to do 1118 1.41 riastrad * anything. The callout will 1119 1.41 riastrad * queue it as soon as it gets 1120 1.41 riastrad * the lock. 1121 1.41 riastrad */ 1122 1.29 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1123 1.35 riastrad &dw->work, wq); 1124 1.29 riastrad SDT_PROBE2(sdt, linux, work, queue, 1125 1.35 riastrad &dw->work, wq); 1126 1.41 riastrad } else { 1127 1.41 riastrad /* Ask the callout to reschedule. */ 1128 1.41 riastrad dw->dw_state = DELAYED_WORK_RESCHEDULED; 1129 1.41 riastrad dw->dw_resched = MIN(INT_MAX, ticks); 1130 1.29 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1131 1.12 riastrad &dw->work, wq); 1132 1.35 riastrad SDT_PROBE3(sdt, linux, work, schedule, 1133 1.29 riastrad dw, wq, ticks); 1134 1.29 riastrad } 1135 1.29 riastrad } else { 1136 1.29 riastrad /* We stopped the callout before it began. */ 1137 1.29 riastrad if (ticks == 0) { 1138 1.29 riastrad /* 1139 1.29 riastrad * Run immediately: destroy the 1140 1.31 riastrad * callout, put it on the 1141 1.39 riastrad * queue, and signal the worker 1142 1.29 riastrad * thread. 1143 1.29 riastrad */ 1144 1.41 riastrad dw_callout_destroy(wq, dw); 1145 1.41 riastrad TAILQ_INSERT_TAIL(&wq->wq_dqueue, 1146 1.41 riastrad &dw->work, work_entry); 1147 1.41 riastrad cv_broadcast(&wq->wq_cv); 1148 1.29 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1149 1.29 riastrad &dw->work, wq); 1150 1.29 riastrad SDT_PROBE2(sdt, linux, work, queue, 1151 1.29 riastrad &dw->work, wq); 1152 1.29 riastrad } else { 1153 1.29 riastrad /* 1154 1.29 riastrad * Reschedule the callout. No 1155 1.41 riastrad * state change. 1156 1.41 riastrad */ 1157 1.41 riastrad callout_schedule(&dw->dw_callout, 1158 1.41 riastrad MIN(INT_MAX, ticks)); 1159 1.29 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1160 1.12 riastrad &dw->work, wq); 1161 1.12 riastrad SDT_PROBE3(sdt, linux, work, schedule, 1162 1.12 riastrad dw, wq, ticks); 1163 1.12 riastrad } 1164 1.35 riastrad } 1165 1.35 riastrad timer_modified = true; 1166 1.35 riastrad break; 1167 1.35 riastrad case DELAYED_WORK_RESCHEDULED: 1168 1.35 riastrad /* 1169 1.35 riastrad * Someone rescheduled it after the callout 1170 1.35 riastrad * started but before the poor thing even had a 1171 1.35 riastrad * chance to acquire the lock. 1172 1.35 riastrad */ 1173 1.35 riastrad if (ticks == 0) { 1174 1.35 riastrad /* 1175 1.35 riastrad * We can just switch back to 1176 1.35 riastrad * DELAYED_WORK_SCHEDULED so that the 1177 1.35 riastrad * callout will queue the work as soon 1178 1.41 riastrad * as it gets the lock. 1179 1.41 riastrad */ 1180 1.41 riastrad dw->dw_state = DELAYED_WORK_SCHEDULED; 1181 1.41 riastrad dw->dw_resched = -1; 1182 1.35 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1183 1.35 riastrad &dw->work, wq); 1184 1.35 riastrad SDT_PROBE2(sdt, linux, work, queue, 1185 1.41 riastrad &dw->work, wq); 1186 1.41 riastrad } else { 1187 1.41 riastrad /* Change the rescheduled time. */ 1188 1.41 riastrad dw->dw_resched = ticks; 1189 1.35 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1190 1.35 riastrad &dw->work, wq); 1191 1.35 riastrad SDT_PROBE3(sdt, linux, work, schedule, 1192 1.12 riastrad dw, wq, ticks); 1193 1.12 riastrad } 1194 1.35 riastrad timer_modified = true; 1195 1.35 riastrad break; 1196 1.35 riastrad case DELAYED_WORK_CANCELLED: 1197 1.12 riastrad /* 1198 1.29 riastrad * Someone cancelled it after the callout 1199 1.29 riastrad * started but before the poor thing even had a 1200 1.29 riastrad * chance to acquire the lock. 1201 1.29 riastrad */ 1202 1.29 riastrad if (ticks == 0) { 1203 1.29 riastrad /* 1204 1.29 riastrad * We can just switch back to 1205 1.29 riastrad * DELAYED_WORK_SCHEDULED so that the 1206 1.41 riastrad * callout will queue the work as soon 1207 1.41 riastrad * as it gets the lock. 1208 1.29 riastrad */ 1209 1.39 riastrad dw->dw_state = DELAYED_WORK_SCHEDULED; 1210 1.29 riastrad SDT_PROBE2(sdt, linux, work, queue, 1211 1.35 riastrad &dw->work, wq); 1212 1.41 riastrad } else { 1213 1.41 riastrad /* Ask it to reschedule. */ 1214 1.29 riastrad dw->dw_state = DELAYED_WORK_RESCHEDULED; 1215 1.39 riastrad dw->dw_resched = MIN(INT_MAX, ticks); 1216 1.12 riastrad SDT_PROBE3(sdt, linux, work, schedule, 1217 1.12 riastrad dw, wq, ticks); 1218 1.29 riastrad } 1219 1.1 skrll timer_modified = false; 1220 1.1 skrll break; 1221 1.12 riastrad default: 1222 1.1 skrll panic("invalid delayed work state: %d", dw->dw_state); 1223 1.1 skrll } 1224 1.1 skrll } 1225 1.1 skrll mutex_exit(&wq->wq_lock); 1226 1.36 riastrad 1227 1.36 riastrad return timer_modified; 1228 1.36 riastrad } 1229 1.36 riastrad 1230 1.36 riastrad /* 1231 1.36 riastrad * cancel_delayed_work(dw) 1232 1.36 riastrad * 1233 1.36 riastrad * If work was scheduled or queued, remove it from the schedule or 1234 1.36 riastrad * queue and return true. If work was not scheduled or queued, 1235 1.36 riastrad * return false. Note that work may already be running; if it 1236 1.1 skrll * hasn't been rescheduled or requeued, then cancel_delayed_work 1237 1.1 skrll * will return false, and either way, cancel_delayed_work will NOT 1238 1.1 skrll * wait for the work to complete. 1239 1.12 riastrad */ 1240 1.12 riastrad bool 1241 1.1 skrll cancel_delayed_work(struct delayed_work *dw) 1242 1.14 riastrad { 1243 1.39 riastrad struct workqueue_struct *wq; 1244 1.14 riastrad bool cancelled_p; 1245 1.14 riastrad 1246 1.12 riastrad /* If there's no workqueue, nothing to cancel. */ 1247 1.39 riastrad if ((wq = work_queue(&dw->work)) == NULL) 1248 1.12 riastrad return false; 1249 1.12 riastrad 1250 1.12 riastrad mutex_enter(&wq->wq_lock); 1251 1.12 riastrad if (__predict_false(work_queue(&dw->work) != wq)) { 1252 1.35 riastrad cancelled_p = false; 1253 1.35 riastrad } else { 1254 1.35 riastrad switch (dw->dw_state) { 1255 1.35 riastrad case DELAYED_WORK_IDLE: 1256 1.39 riastrad /* 1257 1.39 riastrad * It is either on the queue or already running 1258 1.39 riastrad * or both. 1259 1.12 riastrad */ 1260 1.41 riastrad if (work_claimed(&dw->work, wq)) { 1261 1.41 riastrad /* On the queue. Remove and release. */ 1262 1.39 riastrad TAILQ_REMOVE(&wq->wq_dqueue, &dw->work, 1263 1.39 riastrad work_entry); 1264 1.12 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1265 1.35 riastrad &dw->work, wq); 1266 1.39 riastrad release_work(&dw->work, wq); 1267 1.35 riastrad /* Can't dereference dw after this point. */ 1268 1.12 riastrad cancelled_p = true; 1269 1.12 riastrad } else { 1270 1.12 riastrad /* Not on the queue, so didn't cancel. */ 1271 1.21 riastrad cancelled_p = false; 1272 1.21 riastrad } 1273 1.21 riastrad break; 1274 1.21 riastrad case DELAYED_WORK_SCHEDULED: 1275 1.21 riastrad /* 1276 1.21 riastrad * If it is scheduled, mark it cancelled and 1277 1.21 riastrad * try to stop the callout before it starts. 1278 1.21 riastrad * 1279 1.21 riastrad * If it's too late and the callout has already 1280 1.21 riastrad * begun to execute, tough. 1281 1.21 riastrad * 1282 1.21 riastrad * If we stopped the callout before it started, 1283 1.12 riastrad * however, then destroy the callout and 1284 1.41 riastrad * dissociate it from the workqueue ourselves. 1285 1.27 riastrad */ 1286 1.27 riastrad dw->dw_state = DELAYED_WORK_CANCELLED; 1287 1.16 riastrad cancelled_p = true; 1288 1.34 riastrad SDT_PROBE2(sdt, linux, work, cancel, &dw->work, wq); 1289 1.34 riastrad if (!callout_stop(&dw->dw_callout)) 1290 1.34 riastrad cancel_delayed_work_done(wq, dw); 1291 1.34 riastrad break; 1292 1.34 riastrad case DELAYED_WORK_RESCHEDULED: 1293 1.34 riastrad /* 1294 1.35 riastrad * If it is being rescheduled, the callout has 1295 1.34 riastrad * already fired. We must ask it to cancel. 1296 1.41 riastrad */ 1297 1.34 riastrad dw->dw_state = DELAYED_WORK_CANCELLED; 1298 1.34 riastrad dw->dw_resched = -1; 1299 1.34 riastrad cancelled_p = true; 1300 1.34 riastrad SDT_PROBE2(sdt, linux, work, cancel, &dw->work, wq); 1301 1.34 riastrad break; 1302 1.34 riastrad case DELAYED_WORK_CANCELLED: 1303 1.34 riastrad /* 1304 1.34 riastrad * If it is being cancelled, the callout has 1305 1.34 riastrad * already fired. There is nothing more for us 1306 1.34 riastrad * to do. Someone else claims credit for 1307 1.12 riastrad * cancelling it. 1308 1.12 riastrad */ 1309 1.12 riastrad cancelled_p = false; 1310 1.12 riastrad break; 1311 1.1 skrll default: 1312 1.12 riastrad panic("invalid delayed work state: %d", 1313 1.1 skrll dw->dw_state); 1314 1.1 skrll } 1315 1.1 skrll } 1316 1.1 skrll mutex_exit(&wq->wq_lock); 1317 1.36 riastrad 1318 1.36 riastrad return cancelled_p; 1319 1.36 riastrad } 1320 1.36 riastrad 1321 1.36 riastrad /* 1322 1.36 riastrad * cancel_delayed_work_sync(dw) 1323 1.36 riastrad * 1324 1.36 riastrad * If work was scheduled or queued, remove it from the schedule or 1325 1.36 riastrad * queue and return true. If work was not scheduled or queued, 1326 1.1 skrll * return false. Note that work may already be running; if it 1327 1.1 skrll * hasn't been rescheduled or requeued, then cancel_delayed_work 1328 1.1 skrll * will return false; either way, wait for it to complete. 1329 1.12 riastrad */ 1330 1.24 riastrad bool 1331 1.1 skrll cancel_delayed_work_sync(struct delayed_work *dw) 1332 1.24 riastrad { 1333 1.39 riastrad struct workqueue_struct *wq; 1334 1.24 riastrad bool cancelled_p; 1335 1.14 riastrad 1336 1.12 riastrad /* If there's no workqueue, nothing to cancel. */ 1337 1.39 riastrad if ((wq = work_queue(&dw->work)) == NULL) 1338 1.12 riastrad return false; 1339 1.12 riastrad 1340 1.20 riastrad mutex_enter(&wq->wq_lock); 1341 1.12 riastrad if (__predict_false(work_queue(&dw->work) != wq)) { 1342 1.35 riastrad cancelled_p = false; 1343 1.35 riastrad } else { 1344 1.35 riastrad switch (dw->dw_state) { 1345 1.35 riastrad case DELAYED_WORK_IDLE: 1346 1.39 riastrad /* 1347 1.39 riastrad * It is either on the queue or already running 1348 1.39 riastrad * or both. 1349 1.12 riastrad */ 1350 1.41 riastrad if (work_claimed(&dw->work, wq)) { 1351 1.41 riastrad /* On the queue. Remove and release. */ 1352 1.39 riastrad TAILQ_REMOVE(&wq->wq_dqueue, &dw->work, 1353 1.39 riastrad work_entry); 1354 1.12 riastrad SDT_PROBE2(sdt, linux, work, cancel, 1355 1.39 riastrad &dw->work, wq); 1356 1.39 riastrad release_work(&dw->work, wq); 1357 1.39 riastrad /* Can't dereference dw after this point. */ 1358 1.12 riastrad cancelled_p = true; 1359 1.39 riastrad } else { 1360 1.39 riastrad /* Not on the queue, so didn't cancel. */ 1361 1.39 riastrad cancelled_p = false; 1362 1.12 riastrad } 1363 1.12 riastrad /* If it's still running, wait for it to complete. */ 1364 1.12 riastrad if (wq->wq_current_work == &dw->work) 1365 1.20 riastrad wait_for_current_work(&dw->work, wq); 1366 1.20 riastrad break; 1367 1.20 riastrad case DELAYED_WORK_SCHEDULED: 1368 1.20 riastrad /* 1369 1.20 riastrad * If it is scheduled, mark it cancelled and 1370 1.24 riastrad * try to stop the callout before it starts. 1371 1.24 riastrad * 1372 1.24 riastrad * If it's too late and the callout has already 1373 1.20 riastrad * begun to execute, we must wait for it to 1374 1.20 riastrad * complete. But we got in soon enough to ask 1375 1.35 riastrad * the callout not to run, so we successfully 1376 1.20 riastrad * cancelled it in that case. 1377 1.12 riastrad * 1378 1.12 riastrad * If we stopped the callout before it started, 1379 1.41 riastrad * then we must destroy the callout and 1380 1.27 riastrad * dissociate it from the workqueue ourselves. 1381 1.27 riastrad */ 1382 1.34 riastrad dw->dw_state = DELAYED_WORK_CANCELLED; 1383 1.34 riastrad SDT_PROBE2(sdt, linux, work, cancel, &dw->work, wq); 1384 1.34 riastrad if (!callout_halt(&dw->dw_callout, &wq->wq_lock)) 1385 1.34 riastrad cancel_delayed_work_done(wq, dw); 1386 1.34 riastrad cancelled_p = true; 1387 1.34 riastrad break; 1388 1.34 riastrad case DELAYED_WORK_RESCHEDULED: 1389 1.34 riastrad /* 1390 1.34 riastrad * If it is being rescheduled, the callout has 1391 1.35 riastrad * already fired. We must ask it to cancel and 1392 1.41 riastrad * wait for it to complete. 1393 1.34 riastrad */ 1394 1.34 riastrad dw->dw_state = DELAYED_WORK_CANCELLED; 1395 1.34 riastrad dw->dw_resched = -1; 1396 1.34 riastrad SDT_PROBE2(sdt, linux, work, cancel, &dw->work, wq); 1397 1.34 riastrad (void)callout_halt(&dw->dw_callout, &wq->wq_lock); 1398 1.34 riastrad cancelled_p = true; 1399 1.34 riastrad break; 1400 1.34 riastrad case DELAYED_WORK_CANCELLED: 1401 1.34 riastrad /* 1402 1.34 riastrad * If it is being cancelled, the callout has 1403 1.34 riastrad * already fired. We need only wait for it to 1404 1.34 riastrad * complete. Someone else, however, claims 1405 1.20 riastrad * credit for cancelling it. 1406 1.12 riastrad */ 1407 1.12 riastrad (void)callout_halt(&dw->dw_callout, &wq->wq_lock); 1408 1.12 riastrad cancelled_p = false; 1409 1.12 riastrad break; 1410 1.1 skrll default: 1411 1.12 riastrad panic("invalid delayed work state: %d", 1412 1.1 skrll dw->dw_state); 1413 1.1 skrll } 1414 1.1 skrll } 1415 1.12 riastrad mutex_exit(&wq->wq_lock); 1416 1.12 riastrad 1417 1.12 riastrad return cancelled_p; 1418 1.12 riastrad } 1419 1.1 skrll 1420 1.36 riastrad /* 1422 1.36 riastrad * Flush 1423 1.36 riastrad */ 1424 1.36 riastrad 1425 1.36 riastrad /* 1426 1.5 riastrad * flush_scheduled_work() 1427 1.12 riastrad * 1428 1.5 riastrad * Wait for all work queued on system_wq to complete. This does 1429 1.5 riastrad * not include delayed work. 1430 1.12 riastrad */ 1431 1.5 riastrad void 1432 1.5 riastrad flush_scheduled_work(void) 1433 1.57 riastrad { 1434 1.57 riastrad 1435 1.57 riastrad flush_workqueue(system_wq); 1436 1.57 riastrad } 1437 1.57 riastrad 1438 1.57 riastrad struct flush_work { 1439 1.57 riastrad kmutex_t fw_lock; 1440 1.57 riastrad kcondvar_t fw_cv; 1441 1.57 riastrad struct work_struct fw_work; 1442 1.28 riastrad bool fw_done; 1443 1.57 riastrad }; 1444 1.28 riastrad 1445 1.57 riastrad static void 1446 1.57 riastrad flush_work_cb(struct work_struct *work) 1447 1.57 riastrad { 1448 1.57 riastrad struct flush_work *fw = container_of(work, struct flush_work, fw_work); 1449 1.28 riastrad 1450 1.28 riastrad mutex_enter(&fw->fw_lock); 1451 1.36 riastrad fw->fw_done = true; 1452 1.36 riastrad cv_broadcast(&fw->fw_cv); 1453 1.36 riastrad mutex_exit(&fw->fw_lock); 1454 1.36 riastrad } 1455 1.36 riastrad 1456 1.36 riastrad /* 1457 1.12 riastrad * flush_workqueue(wq) 1458 1.12 riastrad * 1459 1.1 skrll * Wait for all work queued on wq to complete. This does not 1460 1.57 riastrad * include delayed work. 1461 1.57 riastrad */ 1462 1.58 riastrad void 1463 1.60 riastrad flush_workqueue(struct workqueue_struct *wq) 1464 1.58 riastrad { 1465 1.58 riastrad struct flush_work fw; 1466 1.58 riastrad 1467 1.57 riastrad if (lwp_getspecific(workqueue_key) == wq) { 1468 1.57 riastrad SDT_PROBE1(sdt, linux, work, flush__self, wq); 1469 1.57 riastrad return; 1470 1.57 riastrad } 1471 1.57 riastrad 1472 1.57 riastrad mutex_init(&fw.fw_lock, MUTEX_DEFAULT, IPL_VM); 1473 1.57 riastrad cv_init(&fw.fw_cv, "lxwqflsh"); 1474 1.1 skrll INIT_WORK(&fw.fw_work, &flush_work_cb); 1475 1.57 riastrad fw.fw_done = false; 1476 1.57 riastrad 1477 1.57 riastrad SDT_PROBE1(sdt, linux, work, flush__start, wq); 1478 1.57 riastrad queue_work(wq, &fw.fw_work); 1479 1.57 riastrad 1480 1.57 riastrad mutex_enter(&fw.fw_lock); 1481 1.57 riastrad while (!fw.fw_done) 1482 1.57 riastrad cv_wait(&fw.fw_cv, &fw.fw_lock); 1483 1.57 riastrad mutex_exit(&fw.fw_lock); 1484 1.57 riastrad SDT_PROBE1(sdt, linux, work, flush__done, wq); 1485 1.50 riastrad 1486 1.50 riastrad KASSERT(fw.fw_done); 1487 1.50 riastrad /* no DESTROY_WORK */ 1488 1.50 riastrad cv_destroy(&fw.fw_cv); 1489 1.50 riastrad mutex_destroy(&fw.fw_lock); 1490 1.50 riastrad } 1491 1.50 riastrad 1492 1.50 riastrad /* 1493 1.50 riastrad * drain_workqueue(wq) 1494 1.50 riastrad * 1495 1.50 riastrad * Repeatedly flush wq until there is no more work. 1496 1.57 riastrad */ 1497 1.50 riastrad void 1498 1.57 riastrad drain_workqueue(struct workqueue_struct *wq) 1499 1.50 riastrad { 1500 1.50 riastrad unsigned ntries = 0; 1501 1.50 riastrad bool done; 1502 1.50 riastrad 1503 1.57 riastrad do { 1504 1.57 riastrad if (ntries++ == 10 || (ntries % 100) == 0) 1505 1.57 riastrad printf("linux workqueue %s" 1506 1.57 riastrad ": still clogged after %u flushes", 1507 1.57 riastrad wq->wq_name, ntries); 1508 1.57 riastrad flush_workqueue(wq); 1509 1.57 riastrad mutex_enter(&wq->wq_lock); 1510 1.1 skrll done = wq->wq_current_work == NULL; 1511 1.1 skrll done &= TAILQ_EMPTY(&wq->wq_queue); 1512 1.36 riastrad done &= TAILQ_EMPTY(&wq->wq_dqueue); 1513 1.36 riastrad mutex_exit(&wq->wq_lock); 1514 1.36 riastrad } while (!done); 1515 1.36 riastrad } 1516 1.36 riastrad 1517 1.48 riastrad /* 1518 1.48 riastrad * flush_work(work) 1519 1.48 riastrad * 1520 1.36 riastrad * If work is queued or currently executing, wait for it to 1521 1.48 riastrad * complete. 1522 1.12 riastrad * 1523 1.1 skrll * Return true if we waited to flush it, false if it was already 1524 1.14 riastrad * idle. 1525 1.1 skrll */ 1526 1.14 riastrad bool 1527 1.39 riastrad flush_work(struct work_struct *work) 1528 1.48 riastrad { 1529 1.1 skrll struct workqueue_struct *wq; 1530 1.12 riastrad 1531 1.48 riastrad /* If there's no workqueue, nothing to flush. */ 1532 1.1 skrll if ((wq = work_queue(work)) == NULL) 1533 1.1 skrll return false; 1534 1.36 riastrad 1535 1.36 riastrad flush_workqueue(wq); 1536 1.36 riastrad return true; 1537 1.38 riastrad } 1538 1.38 riastrad 1539 1.38 riastrad /* 1540 1.36 riastrad * flush_delayed_work(dw) 1541 1.48 riastrad * 1542 1.12 riastrad * If dw is scheduled to run after a delay, queue it immediately 1543 1.1 skrll * instead. Then, if dw is queued or currently executing, wait 1544 1.14 riastrad * for it to complete. 1545 1.48 riastrad */ 1546 1.1 skrll bool 1547 1.14 riastrad flush_delayed_work(struct delayed_work *dw) 1548 1.39 riastrad { 1549 1.48 riastrad struct workqueue_struct *wq; 1550 1.1 skrll bool waited = false; 1551 1.1 skrll 1552 1.39 riastrad /* If there's no workqueue, nothing to flush. */ 1553 1.38 riastrad if ((wq = work_queue(&dw->work)) == NULL) 1554 1.38 riastrad return false; 1555 1.38 riastrad 1556 1.38 riastrad mutex_enter(&wq->wq_lock); 1557 1.38 riastrad if (__predict_false(work_queue(&dw->work) != wq)) { 1558 1.48 riastrad /* 1559 1.38 riastrad * Moved off the queue already (and possibly to another 1560 1.28 riastrad * queue, though that would be ill-advised), so it must 1561 1.12 riastrad * have completed, and we have nothing more to do. 1562 1.28 riastrad */ 1563 1.28 riastrad waited = false; 1564 1.28 riastrad } else { 1565 1.38 riastrad switch (dw->dw_state) { 1566 1.38 riastrad case DELAYED_WORK_IDLE: 1567 1.28 riastrad /* 1568 1.12 riastrad * It has a workqueue assigned and the callout 1569 1.12 riastrad * is idle, so it must be in progress or on the 1570 1.35 riastrad * queue. In that case, we'll wait for it to 1571 1.35 riastrad * complete. 1572 1.35 riastrad */ 1573 1.38 riastrad break; 1574 1.38 riastrad case DELAYED_WORK_SCHEDULED: 1575 1.38 riastrad case DELAYED_WORK_RESCHEDULED: 1576 1.38 riastrad case DELAYED_WORK_CANCELLED: 1577 1.38 riastrad /* 1578 1.38 riastrad * The callout is scheduled, and may have even 1579 1.38 riastrad * started. Mark it as scheduled so that if 1580 1.35 riastrad * the callout has fired it will queue the work 1581 1.38 riastrad * itself. Try to stop the callout -- if we 1582 1.38 riastrad * can, queue the work now; if we can't, wait 1583 1.38 riastrad * for the callout to complete, which entails 1584 1.38 riastrad * queueing it. 1585 1.38 riastrad */ 1586 1.38 riastrad dw->dw_state = DELAYED_WORK_SCHEDULED; 1587 1.38 riastrad if (!callout_halt(&dw->dw_callout, &wq->wq_lock)) { 1588 1.38 riastrad /* 1589 1.38 riastrad * We stopped it before it ran. No 1590 1.38 riastrad * state change in the interim is 1591 1.38 riastrad * possible. Destroy the callout and 1592 1.39 riastrad * queue it ourselves. 1593 1.38 riastrad */ 1594 1.38 riastrad KASSERT(dw->dw_state == 1595 1.41 riastrad DELAYED_WORK_SCHEDULED); 1596 1.41 riastrad dw_callout_destroy(wq, dw); 1597 1.38 riastrad TAILQ_INSERT_TAIL(&wq->wq_dqueue, &dw->work, 1598 1.35 riastrad work_entry); 1599 1.12 riastrad cv_broadcast(&wq->wq_cv); 1600 1.38 riastrad SDT_PROBE2(sdt, linux, work, queue, 1601 1.12 riastrad &dw->work, wq); 1602 1.38 riastrad } 1603 1.38 riastrad break; 1604 1.38 riastrad default: 1605 1.38 riastrad panic("invalid delayed work state: %d", dw->dw_state); 1606 1.57 riastrad } 1607 1.57 riastrad /* 1608 1.57 riastrad * Waiting for the whole queue to flush is overkill, 1609 1.48 riastrad * but doesn't hurt. 1610 1.1 skrll */ 1611 1.12 riastrad mutex_exit(&wq->wq_lock); 1612 1.48 riastrad flush_workqueue(wq); 1613 1.48 riastrad mutex_enter(&wq->wq_lock); 1614 1.1 skrll waited = true; 1615 1.49 riastrad } 1616 1.49 riastrad mutex_exit(&wq->wq_lock); 1617 1.49 riastrad 1618 1.49 riastrad return waited; 1619 1.49 riastrad } 1620 1.49 riastrad 1621 1.49 riastrad /* 1622 1.51 riastrad * delayed_work_pending(dw) 1623 1.49 riastrad * 1624 1.49 riastrad * True if dw is currently scheduled to execute, false if not. 1625 1.49 riastrad */ 1626 1.49 riastrad bool 1627 1.55 riastrad delayed_work_pending(const struct delayed_work *dw) 1628 1.55 riastrad { 1629 1.55 riastrad 1630 1.55 riastrad return work_pending(&dw->work); 1631 1.55 riastrad } 1632 1.55 riastrad 1633 1.55 riastrad /* 1634 1.55 riastrad * INIT_RCU_WORK(rw, fn) 1635 1.55 riastrad * 1636 1.55 riastrad * Initialize rw for use with a workqueue to call fn in a worker 1637 1.55 riastrad * thread after an RCU grace period. There is no corresponding 1638 1.55 riastrad * destruction operation. 1639 1.55 riastrad */ 1640 1.55 riastrad void 1641 1.55 riastrad INIT_RCU_WORK(struct rcu_work *rw, void (*fn)(struct work_struct *)) 1642 1.55 riastrad { 1643 1.55 riastrad 1644 1.55 riastrad INIT_WORK(&rw->work, fn); 1645 1.55 riastrad } 1646 1.55 riastrad 1647 1.55 riastrad static void 1648 1.55 riastrad queue_rcu_work_cb(struct rcu_head *r) 1649 1.55 riastrad { 1650 1.55 riastrad struct rcu_work *rw = container_of(r, struct rcu_work, rw_rcu); 1651 1.55 riastrad struct workqueue_struct *wq = work_queue(&rw->work); 1652 1.55 riastrad 1653 1.55 riastrad mutex_enter(&wq->wq_lock); 1654 1.55 riastrad KASSERT(work_pending(&rw->work)); 1655 1.55 riastrad KASSERT(work_queue(&rw->work) == wq); 1656 1.55 riastrad destroy_rcu_head(&rw->rw_rcu); 1657 1.55 riastrad TAILQ_REMOVE(&wq->wq_rcu, &rw->work, work_entry); 1658 1.55 riastrad TAILQ_INSERT_TAIL(&wq->wq_queue, &rw->work, work_entry); 1659 1.55 riastrad cv_broadcast(&wq->wq_cv); 1660 1.55 riastrad SDT_PROBE2(sdt, linux, work, queue, &rw->work, wq); 1661 1.55 riastrad mutex_exit(&wq->wq_lock); 1662 1.55 riastrad } 1663 1.55 riastrad 1664 1.55 riastrad /* 1665 1.55 riastrad * queue_rcu_work(wq, rw) 1666 1.55 riastrad * 1667 1.55 riastrad * Schedule rw to run on wq after an RCU grace period. 1668 1.55 riastrad */ 1669 1.55 riastrad void 1670 1.55 riastrad queue_rcu_work(struct workqueue_struct *wq, struct rcu_work *rw) 1671 1.55 riastrad { 1672 1.55 riastrad 1673 1.55 riastrad mutex_enter(&wq->wq_lock); 1674 1.55 riastrad if (acquire_work(&rw->work, wq)) { 1675 1.55 riastrad init_rcu_head(&rw->rw_rcu); 1676 1.55 riastrad SDT_PROBE2(sdt, linux, work, rcu, rw, wq); 1677 TAILQ_INSERT_TAIL(&wq->wq_rcu, &rw->work, work_entry); 1678 call_rcu(&rw->rw_rcu, &queue_rcu_work_cb); 1679 } 1680 mutex_exit(&wq->wq_lock); 1681 } 1682