subr_workqueue.c revision 1.39 1 /* $NetBSD: subr_workqueue.c,v 1.39 2020/09/08 17:02:18 riastradh Exp $ */
2
3 /*-
4 * Copyright (c)2002, 2005, 2006, 2007 YAMAMOTO Takashi,
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
17 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
20 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26 * SUCH DAMAGE.
27 */
28
29 #include <sys/cdefs.h>
30 __KERNEL_RCSID(0, "$NetBSD: subr_workqueue.c,v 1.39 2020/09/08 17:02:18 riastradh Exp $");
31
32 #include <sys/param.h>
33 #include <sys/cpu.h>
34 #include <sys/systm.h>
35 #include <sys/kthread.h>
36 #include <sys/kmem.h>
37 #include <sys/proc.h>
38 #include <sys/workqueue.h>
39 #include <sys/mutex.h>
40 #include <sys/condvar.h>
41 #include <sys/queue.h>
42
43 typedef struct work_impl {
44 SIMPLEQ_ENTRY(work_impl) wk_entry;
45 } work_impl_t;
46
47 SIMPLEQ_HEAD(workqhead, work_impl);
48
49 struct workqueue_queue {
50 kmutex_t q_mutex;
51 kcondvar_t q_cv;
52 struct workqhead q_queue_pending;
53 struct workqhead q_queue_running;
54 lwp_t *q_worker;
55 };
56
57 struct workqueue {
58 void (*wq_func)(struct work *, void *);
59 void *wq_arg;
60 int wq_flags;
61
62 char wq_name[MAXCOMLEN];
63 pri_t wq_prio;
64 void *wq_ptr;
65 };
66
67 #define WQ_SIZE (roundup2(sizeof(struct workqueue), coherency_unit))
68 #define WQ_QUEUE_SIZE (roundup2(sizeof(struct workqueue_queue), coherency_unit))
69
70 #define POISON 0xaabbccdd
71
72 static size_t
73 workqueue_size(int flags)
74 {
75
76 return WQ_SIZE
77 + ((flags & WQ_PERCPU) != 0 ? ncpu : 1) * WQ_QUEUE_SIZE
78 + coherency_unit;
79 }
80
81 static struct workqueue_queue *
82 workqueue_queue_lookup(struct workqueue *wq, struct cpu_info *ci)
83 {
84 u_int idx = 0;
85
86 if (wq->wq_flags & WQ_PERCPU) {
87 idx = ci ? cpu_index(ci) : cpu_index(curcpu());
88 }
89
90 return (void *)((uintptr_t)(wq) + WQ_SIZE + (idx * WQ_QUEUE_SIZE));
91 }
92
93 static void
94 workqueue_runlist(struct workqueue *wq, struct workqhead *list)
95 {
96 work_impl_t *wk;
97 work_impl_t *next;
98
99 /*
100 * note that "list" is not a complete SIMPLEQ.
101 */
102
103 for (wk = SIMPLEQ_FIRST(list); wk != NULL; wk = next) {
104 next = SIMPLEQ_NEXT(wk, wk_entry);
105 (*wq->wq_func)((void *)wk, wq->wq_arg);
106 }
107 }
108
109 static void
110 workqueue_worker(void *cookie)
111 {
112 struct workqueue *wq = cookie;
113 struct workqueue_queue *q;
114 int s;
115
116 /* find the workqueue of this kthread */
117 q = workqueue_queue_lookup(wq, curlwp->l_cpu);
118
119 if (wq->wq_flags & WQ_FPU)
120 s = kthread_fpu_enter();
121 for (;;) {
122 /*
123 * we violate abstraction of SIMPLEQ.
124 */
125
126 mutex_enter(&q->q_mutex);
127 while (SIMPLEQ_EMPTY(&q->q_queue_pending))
128 cv_wait(&q->q_cv, &q->q_mutex);
129 KASSERT(SIMPLEQ_EMPTY(&q->q_queue_running));
130 q->q_queue_running.sqh_first =
131 q->q_queue_pending.sqh_first; /* XXX */
132 SIMPLEQ_INIT(&q->q_queue_pending);
133 mutex_exit(&q->q_mutex);
134
135 workqueue_runlist(wq, &q->q_queue_running);
136
137 mutex_enter(&q->q_mutex);
138 KASSERT(!SIMPLEQ_EMPTY(&q->q_queue_running));
139 SIMPLEQ_INIT(&q->q_queue_running);
140 /* Wake up workqueue_wait */
141 cv_broadcast(&q->q_cv);
142 mutex_exit(&q->q_mutex);
143 }
144 if (wq->wq_flags & WQ_FPU)
145 kthread_fpu_exit(s);
146 }
147
148 static void
149 workqueue_init(struct workqueue *wq, const char *name,
150 void (*callback_func)(struct work *, void *), void *callback_arg,
151 pri_t prio, int ipl)
152 {
153
154 KASSERT(sizeof(wq->wq_name) > strlen(name));
155 strncpy(wq->wq_name, name, sizeof(wq->wq_name));
156
157 wq->wq_prio = prio;
158 wq->wq_func = callback_func;
159 wq->wq_arg = callback_arg;
160 }
161
162 static int
163 workqueue_initqueue(struct workqueue *wq, struct workqueue_queue *q,
164 int ipl, struct cpu_info *ci)
165 {
166 int error, ktf;
167
168 KASSERT(q->q_worker == NULL);
169
170 mutex_init(&q->q_mutex, MUTEX_DEFAULT, ipl);
171 cv_init(&q->q_cv, wq->wq_name);
172 SIMPLEQ_INIT(&q->q_queue_pending);
173 SIMPLEQ_INIT(&q->q_queue_running);
174 ktf = ((wq->wq_flags & WQ_MPSAFE) != 0 ? KTHREAD_MPSAFE : 0);
175 if (wq->wq_prio < PRI_KERNEL)
176 ktf |= KTHREAD_TS;
177 if (ci) {
178 error = kthread_create(wq->wq_prio, ktf, ci, workqueue_worker,
179 wq, &q->q_worker, "%s/%u", wq->wq_name, ci->ci_index);
180 } else {
181 error = kthread_create(wq->wq_prio, ktf, ci, workqueue_worker,
182 wq, &q->q_worker, "%s", wq->wq_name);
183 }
184 if (error != 0) {
185 mutex_destroy(&q->q_mutex);
186 cv_destroy(&q->q_cv);
187 KASSERT(q->q_worker == NULL);
188 }
189 return error;
190 }
191
192 struct workqueue_exitargs {
193 work_impl_t wqe_wk;
194 struct workqueue_queue *wqe_q;
195 };
196
197 static void
198 workqueue_exit(struct work *wk, void *arg)
199 {
200 struct workqueue_exitargs *wqe = (void *)wk;
201 struct workqueue_queue *q = wqe->wqe_q;
202
203 /*
204 * only competition at this point is workqueue_finiqueue.
205 */
206
207 KASSERT(q->q_worker == curlwp);
208 KASSERT(SIMPLEQ_EMPTY(&q->q_queue_pending));
209 mutex_enter(&q->q_mutex);
210 q->q_worker = NULL;
211 cv_broadcast(&q->q_cv);
212 mutex_exit(&q->q_mutex);
213 kthread_exit(0);
214 }
215
216 static void
217 workqueue_finiqueue(struct workqueue *wq, struct workqueue_queue *q)
218 {
219 struct workqueue_exitargs wqe;
220
221 KASSERT(wq->wq_func == workqueue_exit);
222
223 wqe.wqe_q = q;
224 KASSERT(SIMPLEQ_EMPTY(&q->q_queue_pending));
225 KASSERT(q->q_worker != NULL);
226 mutex_enter(&q->q_mutex);
227 SIMPLEQ_INSERT_TAIL(&q->q_queue_pending, &wqe.wqe_wk, wk_entry);
228 cv_broadcast(&q->q_cv);
229 while (q->q_worker != NULL) {
230 cv_wait(&q->q_cv, &q->q_mutex);
231 }
232 mutex_exit(&q->q_mutex);
233 mutex_destroy(&q->q_mutex);
234 cv_destroy(&q->q_cv);
235 }
236
237 /* --- */
238
239 int
240 workqueue_create(struct workqueue **wqp, const char *name,
241 void (*callback_func)(struct work *, void *), void *callback_arg,
242 pri_t prio, int ipl, int flags)
243 {
244 struct workqueue *wq;
245 struct workqueue_queue *q;
246 void *ptr;
247 int error = 0;
248
249 CTASSERT(sizeof(work_impl_t) <= sizeof(struct work));
250
251 ptr = kmem_zalloc(workqueue_size(flags), KM_SLEEP);
252 wq = (void *)roundup2((uintptr_t)ptr, coherency_unit);
253 wq->wq_ptr = ptr;
254 wq->wq_flags = flags;
255
256 workqueue_init(wq, name, callback_func, callback_arg, prio, ipl);
257
258 if (flags & WQ_PERCPU) {
259 struct cpu_info *ci;
260 CPU_INFO_ITERATOR cii;
261
262 /* create the work-queue for each CPU */
263 for (CPU_INFO_FOREACH(cii, ci)) {
264 q = workqueue_queue_lookup(wq, ci);
265 error = workqueue_initqueue(wq, q, ipl, ci);
266 if (error) {
267 break;
268 }
269 }
270 } else {
271 /* initialize a work-queue */
272 q = workqueue_queue_lookup(wq, NULL);
273 error = workqueue_initqueue(wq, q, ipl, NULL);
274 }
275
276 if (error != 0) {
277 workqueue_destroy(wq);
278 } else {
279 *wqp = wq;
280 }
281
282 return error;
283 }
284
285 static bool
286 workqueue_q_wait(struct workqueue_queue *q, work_impl_t *wk_target)
287 {
288 work_impl_t *wk;
289 bool found = false;
290
291 mutex_enter(&q->q_mutex);
292 if (q->q_worker == curlwp)
293 goto out;
294 again:
295 SIMPLEQ_FOREACH(wk, &q->q_queue_pending, wk_entry) {
296 if (wk == wk_target)
297 goto found;
298 }
299 SIMPLEQ_FOREACH(wk, &q->q_queue_running, wk_entry) {
300 if (wk == wk_target)
301 goto found;
302 }
303 found:
304 if (wk != NULL) {
305 found = true;
306 cv_wait(&q->q_cv, &q->q_mutex);
307 goto again;
308 }
309 out:
310 mutex_exit(&q->q_mutex);
311
312 return found;
313 }
314
315 /*
316 * Wait for a specified work to finish. The caller must ensure that no new
317 * work will be enqueued before calling workqueue_wait. Note that if the
318 * workqueue is WQ_PERCPU, the caller can enqueue a new work to another queue
319 * other than the waiting queue.
320 */
321 void
322 workqueue_wait(struct workqueue *wq, struct work *wk)
323 {
324 struct workqueue_queue *q;
325 bool found;
326
327 if (ISSET(wq->wq_flags, WQ_PERCPU)) {
328 struct cpu_info *ci;
329 CPU_INFO_ITERATOR cii;
330 for (CPU_INFO_FOREACH(cii, ci)) {
331 q = workqueue_queue_lookup(wq, ci);
332 found = workqueue_q_wait(q, (work_impl_t *)wk);
333 if (found)
334 break;
335 }
336 } else {
337 q = workqueue_queue_lookup(wq, NULL);
338 (void) workqueue_q_wait(q, (work_impl_t *)wk);
339 }
340 }
341
342 void
343 workqueue_destroy(struct workqueue *wq)
344 {
345 struct workqueue_queue *q;
346 struct cpu_info *ci;
347 CPU_INFO_ITERATOR cii;
348
349 wq->wq_func = workqueue_exit;
350 for (CPU_INFO_FOREACH(cii, ci)) {
351 q = workqueue_queue_lookup(wq, ci);
352 if (q->q_worker != NULL) {
353 workqueue_finiqueue(wq, q);
354 }
355 }
356 kmem_free(wq->wq_ptr, workqueue_size(wq->wq_flags));
357 }
358
359 #ifdef DEBUG
360 static void
361 workqueue_check_duplication(struct workqueue_queue *q, work_impl_t *wk)
362 {
363 work_impl_t *_wk;
364
365 SIMPLEQ_FOREACH(_wk, &q->q_queue_pending, wk_entry) {
366 if (_wk == wk)
367 panic("%s: tried to enqueue a queued work", __func__);
368 }
369 }
370 #endif
371
372 void
373 workqueue_enqueue(struct workqueue *wq, struct work *wk0, struct cpu_info *ci)
374 {
375 struct workqueue_queue *q;
376 work_impl_t *wk = (void *)wk0;
377
378 KASSERT(wq->wq_flags & WQ_PERCPU || ci == NULL);
379 q = workqueue_queue_lookup(wq, ci);
380
381 mutex_enter(&q->q_mutex);
382 #ifdef DEBUG
383 workqueue_check_duplication(q, wk);
384 #endif
385 SIMPLEQ_INSERT_TAIL(&q->q_queue_pending, wk, wk_entry);
386 cv_broadcast(&q->q_cv);
387 mutex_exit(&q->q_mutex);
388 }
389