kern_turnstile.c revision 1.33 1 1.33 ad /* $NetBSD: kern_turnstile.c,v 1.33 2019/11/21 18:56:55 ad Exp $ */
2 1.2 ad
3 1.2 ad /*-
4 1.33 ad * Copyright (c) 2002, 2006, 2007, 2009, 2019 The NetBSD Foundation, Inc.
5 1.2 ad * All rights reserved.
6 1.2 ad *
7 1.2 ad * This code is derived from software contributed to The NetBSD Foundation
8 1.2 ad * by Jason R. Thorpe and Andrew Doran.
9 1.2 ad *
10 1.2 ad * Redistribution and use in source and binary forms, with or without
11 1.2 ad * modification, are permitted provided that the following conditions
12 1.2 ad * are met:
13 1.2 ad * 1. Redistributions of source code must retain the above copyright
14 1.2 ad * notice, this list of conditions and the following disclaimer.
15 1.2 ad * 2. Redistributions in binary form must reproduce the above copyright
16 1.2 ad * notice, this list of conditions and the following disclaimer in the
17 1.2 ad * documentation and/or other materials provided with the distribution.
18 1.2 ad *
19 1.2 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.2 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.2 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.2 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.2 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.2 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.2 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.2 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.2 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.2 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.2 ad * POSSIBILITY OF SUCH DAMAGE.
30 1.2 ad */
31 1.2 ad
32 1.2 ad /*
33 1.2 ad * Turnstiles are described in detail in:
34 1.2 ad *
35 1.2 ad * Solaris Internals: Core Kernel Architecture, Jim Mauro and
36 1.2 ad * Richard McDougall.
37 1.2 ad *
38 1.2 ad * Turnstiles are kept in a hash table. There are likely to be many more
39 1.2 ad * synchronisation objects than there are threads. Since a thread can block
40 1.2 ad * on only one lock at a time, we only need one turnstile per thread, and
41 1.2 ad * so they are allocated at thread creation time.
42 1.2 ad *
43 1.2 ad * When a thread decides it needs to block on a lock, it looks up the
44 1.2 ad * active turnstile for that lock. If no active turnstile exists, then
45 1.2 ad * the process lends its turnstile to the lock. If there is already an
46 1.2 ad * active turnstile for the lock, the thread places its turnstile on a
47 1.2 ad * list of free turnstiles, and references the active one instead.
48 1.2 ad *
49 1.2 ad * The act of looking up the turnstile acquires an interlock on the sleep
50 1.2 ad * queue. If a thread decides it doesn't need to block after all, then this
51 1.2 ad * interlock must be released by explicitly aborting the turnstile
52 1.2 ad * operation.
53 1.2 ad *
54 1.2 ad * When a thread is awakened, it needs to get its turnstile back. If there
55 1.18 alc * are still other threads waiting in the active turnstile, the thread
56 1.2 ad * grabs a free turnstile off the free list. Otherwise, it can take back
57 1.2 ad * the active turnstile from the lock (thus deactivating the turnstile).
58 1.2 ad *
59 1.33 ad * Turnstiles are where we do priority inheritence.
60 1.2 ad */
61 1.2 ad
62 1.2 ad #include <sys/cdefs.h>
63 1.33 ad __KERNEL_RCSID(0, "$NetBSD: kern_turnstile.c,v 1.33 2019/11/21 18:56:55 ad Exp $");
64 1.2 ad
65 1.2 ad #include <sys/param.h>
66 1.4 yamt #include <sys/lockdebug.h>
67 1.2 ad #include <sys/pool.h>
68 1.2 ad #include <sys/proc.h>
69 1.2 ad #include <sys/sleepq.h>
70 1.2 ad #include <sys/systm.h>
71 1.2 ad
72 1.33 ad /*
73 1.33 ad * Shift of 6 aligns to typical cache line size of 64 bytes; there's no
74 1.33 ad * point having two turnstile locks to back two lock objects that share one
75 1.33 ad * cache line.
76 1.33 ad */
77 1.33 ad #define TS_HASH_SIZE 128
78 1.2 ad #define TS_HASH_MASK (TS_HASH_SIZE - 1)
79 1.33 ad #define TS_HASH(obj) (((uintptr_t)(obj) >> 6) & TS_HASH_MASK)
80 1.2 ad
81 1.33 ad /* Keep the chains and mutex pointers apart to prevent false sharing. */
82 1.33 ad static tschain_t turnstile_chains[TS_HASH_SIZE] __cacheline_aligned;
83 1.33 ad static kmutex_t *turnstile_locks[TS_HASH_SIZE] __read_mostly;
84 1.33 ad pool_cache_t turnstile_cache __read_mostly;
85 1.33 ad extern turnstile_t turnstile0 __cacheline_aligned;
86 1.2 ad
87 1.29 rmind static int turnstile_ctor(void *, void *, int);
88 1.2 ad
89 1.2 ad /*
90 1.2 ad * turnstile_init:
91 1.2 ad *
92 1.2 ad * Initialize the turnstile mechanism.
93 1.2 ad */
94 1.2 ad void
95 1.2 ad turnstile_init(void)
96 1.2 ad {
97 1.2 ad int i;
98 1.2 ad
99 1.2 ad for (i = 0; i < TS_HASH_SIZE; i++) {
100 1.33 ad LIST_INIT(&turnstile_chains[i]);
101 1.33 ad turnstile_locks[i] = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SCHED);
102 1.2 ad }
103 1.2 ad
104 1.33 ad turnstile_cache = pool_cache_init(sizeof(turnstile_t), coherency_unit,
105 1.33 ad 0, 0, "tstile", NULL, IPL_NONE, turnstile_ctor, NULL, NULL);
106 1.12 ad KASSERT(turnstile_cache != NULL);
107 1.2 ad
108 1.2 ad (void)turnstile_ctor(NULL, &turnstile0, 0);
109 1.2 ad }
110 1.2 ad
111 1.2 ad /*
112 1.2 ad * turnstile_ctor:
113 1.2 ad *
114 1.2 ad * Constructor for turnstiles.
115 1.2 ad */
116 1.29 rmind static int
117 1.2 ad turnstile_ctor(void *arg, void *obj, int flags)
118 1.2 ad {
119 1.2 ad turnstile_t *ts = obj;
120 1.2 ad
121 1.2 ad memset(ts, 0, sizeof(*ts));
122 1.21 ad sleepq_init(&ts->ts_sleepq[TS_READER_Q]);
123 1.21 ad sleepq_init(&ts->ts_sleepq[TS_WRITER_Q]);
124 1.2 ad return (0);
125 1.2 ad }
126 1.2 ad
127 1.2 ad /*
128 1.2 ad * turnstile_remove:
129 1.2 ad *
130 1.2 ad * Remove an LWP from a turnstile sleep queue and wake it.
131 1.2 ad */
132 1.9 yamt static inline void
133 1.21 ad turnstile_remove(turnstile_t *ts, lwp_t *l, int q)
134 1.2 ad {
135 1.2 ad turnstile_t *nts;
136 1.2 ad
137 1.2 ad KASSERT(l->l_ts == ts);
138 1.2 ad
139 1.2 ad /*
140 1.2 ad * This process is no longer using the active turnstile.
141 1.2 ad * Find an inactive one on the free list to give to it.
142 1.2 ad */
143 1.2 ad if ((nts = ts->ts_free) != NULL) {
144 1.2 ad KASSERT(TS_ALL_WAITERS(ts) > 1);
145 1.2 ad l->l_ts = nts;
146 1.2 ad ts->ts_free = nts->ts_free;
147 1.2 ad nts->ts_free = NULL;
148 1.2 ad } else {
149 1.2 ad /*
150 1.2 ad * If the free list is empty, this is the last
151 1.2 ad * waiter.
152 1.2 ad */
153 1.2 ad KASSERT(TS_ALL_WAITERS(ts) == 1);
154 1.2 ad LIST_REMOVE(ts, ts_chain);
155 1.2 ad }
156 1.2 ad
157 1.21 ad ts->ts_waiters[q]--;
158 1.26 rmind sleepq_remove(&ts->ts_sleepq[q], l);
159 1.2 ad }
160 1.2 ad
161 1.2 ad /*
162 1.2 ad * turnstile_lookup:
163 1.2 ad *
164 1.2 ad * Look up the turnstile for the specified lock. This acquires and
165 1.2 ad * holds the turnstile chain lock (sleep queue interlock).
166 1.2 ad */
167 1.2 ad turnstile_t *
168 1.2 ad turnstile_lookup(wchan_t obj)
169 1.2 ad {
170 1.2 ad turnstile_t *ts;
171 1.2 ad tschain_t *tc;
172 1.33 ad u_int hash;
173 1.2 ad
174 1.33 ad hash = TS_HASH(obj);
175 1.33 ad tc = &turnstile_chains[hash];
176 1.33 ad mutex_spin_enter(turnstile_locks[hash]);
177 1.2 ad
178 1.33 ad LIST_FOREACH(ts, tc, ts_chain)
179 1.2 ad if (ts->ts_obj == obj)
180 1.2 ad return (ts);
181 1.2 ad
182 1.2 ad /*
183 1.2 ad * No turnstile yet for this lock. No problem, turnstile_block()
184 1.2 ad * handles this by fetching the turnstile from the blocking thread.
185 1.2 ad */
186 1.2 ad return (NULL);
187 1.2 ad }
188 1.2 ad
189 1.2 ad /*
190 1.2 ad * turnstile_exit:
191 1.2 ad *
192 1.2 ad * Abort a turnstile operation.
193 1.2 ad */
194 1.2 ad void
195 1.2 ad turnstile_exit(wchan_t obj)
196 1.2 ad {
197 1.2 ad
198 1.33 ad mutex_spin_exit(turnstile_locks[TS_HASH(obj)]);
199 1.2 ad }
200 1.2 ad
201 1.2 ad /*
202 1.31 yamt * turnstile_lendpri:
203 1.31 yamt *
204 1.31 yamt * Lend our priority to lwps on the blocking chain.
205 1.31 yamt *
206 1.32 yamt * If the current owner of the lock (l->l_wchan, set by sleepq_enqueue)
207 1.32 yamt * has a priority lower than ours (lwp_eprio(l)), lend our priority to
208 1.32 yamt * him to avoid priority inversions.
209 1.2 ad */
210 1.31 yamt
211 1.31 yamt static void
212 1.31 yamt turnstile_lendpri(lwp_t *cur)
213 1.2 ad {
214 1.31 yamt lwp_t * l = cur;
215 1.31 yamt pri_t prio;
216 1.19 ad
217 1.19 ad /*
218 1.22 ad * NOTE: if you get a panic in this code block, it is likely that
219 1.22 ad * a lock has been destroyed or corrupted while still in use. Try
220 1.22 ad * compiling a kernel with LOCKDEBUG to pinpoint the problem.
221 1.4 yamt */
222 1.31 yamt
223 1.31 yamt LOCKDEBUG_BARRIER(l->l_mutex, 1);
224 1.31 yamt KASSERT(l == curlwp);
225 1.11 ad prio = lwp_eprio(l);
226 1.4 yamt for (;;) {
227 1.31 yamt lwp_t *owner;
228 1.31 yamt turnstile_t *ts;
229 1.4 yamt bool dolock;
230 1.4 yamt
231 1.4 yamt if (l->l_wchan == NULL)
232 1.4 yamt break;
233 1.4 yamt
234 1.32 yamt /*
235 1.32 yamt * Ask syncobj the owner of the lock.
236 1.32 yamt */
237 1.4 yamt owner = (*l->l_syncobj->sobj_owner)(l->l_wchan);
238 1.4 yamt if (owner == NULL)
239 1.4 yamt break;
240 1.4 yamt
241 1.32 yamt /*
242 1.32 yamt * The owner may have changed as we have dropped the tc lock.
243 1.32 yamt */
244 1.25 bouyer if (cur == owner) {
245 1.25 bouyer /*
246 1.32 yamt * We own the lock: stop here, sleepq_block()
247 1.32 yamt * should wake up immediatly.
248 1.25 bouyer */
249 1.25 bouyer break;
250 1.25 bouyer }
251 1.32 yamt /*
252 1.32 yamt * Acquire owner->l_mutex if we don't have it yet.
253 1.32 yamt * Because we already have another LWP lock (l->l_mutex) held,
254 1.32 yamt * we need to play a try lock dance to avoid deadlock.
255 1.32 yamt */
256 1.32 yamt dolock = l->l_mutex != owner->l_mutex;
257 1.28 yamt if (l == owner || (dolock && !lwp_trylock(owner))) {
258 1.4 yamt /*
259 1.32 yamt * The owner was changed behind us or trylock failed.
260 1.32 yamt * Restart from curlwp.
261 1.32 yamt *
262 1.25 bouyer * Note that there may be a livelock here:
263 1.32 yamt * the owner may try grabing cur's lock (which is the
264 1.32 yamt * tc lock) while we're trying to grab the owner's lock.
265 1.4 yamt */
266 1.4 yamt lwp_unlock(l);
267 1.4 yamt l = cur;
268 1.4 yamt lwp_lock(l);
269 1.4 yamt prio = lwp_eprio(l);
270 1.4 yamt continue;
271 1.4 yamt }
272 1.32 yamt /*
273 1.32 yamt * If the owner's priority is already higher than ours,
274 1.32 yamt * there's nothing to do anymore.
275 1.32 yamt */
276 1.11 ad if (prio <= lwp_eprio(owner)) {
277 1.4 yamt if (dolock)
278 1.4 yamt lwp_unlock(owner);
279 1.4 yamt break;
280 1.4 yamt }
281 1.32 yamt /*
282 1.32 yamt * Lend our priority to the 'owner' LWP.
283 1.32 yamt *
284 1.32 yamt * Update lenders info for turnstile_unlendpri.
285 1.32 yamt */
286 1.4 yamt ts = l->l_ts;
287 1.4 yamt KASSERT(ts->ts_inheritor == owner || ts->ts_inheritor == NULL);
288 1.4 yamt if (ts->ts_inheritor == NULL) {
289 1.4 yamt ts->ts_inheritor = owner;
290 1.4 yamt ts->ts_eprio = prio;
291 1.4 yamt SLIST_INSERT_HEAD(&owner->l_pi_lenders, ts, ts_pichain);
292 1.4 yamt lwp_lendpri(owner, prio);
293 1.11 ad } else if (prio > ts->ts_eprio) {
294 1.4 yamt ts->ts_eprio = prio;
295 1.4 yamt lwp_lendpri(owner, prio);
296 1.4 yamt }
297 1.4 yamt if (dolock)
298 1.4 yamt lwp_unlock(l);
299 1.32 yamt LOCKDEBUG_BARRIER(owner->l_mutex, 1);
300 1.4 yamt l = owner;
301 1.4 yamt }
302 1.4 yamt LOCKDEBUG_BARRIER(l->l_mutex, 1);
303 1.4 yamt if (cur->l_mutex != l->l_mutex) {
304 1.4 yamt lwp_unlock(l);
305 1.4 yamt lwp_lock(cur);
306 1.4 yamt }
307 1.4 yamt LOCKDEBUG_BARRIER(cur->l_mutex, 1);
308 1.31 yamt }
309 1.31 yamt
310 1.31 yamt /*
311 1.31 yamt * turnstile_unlendpri: undo turnstile_lendpri
312 1.31 yamt */
313 1.31 yamt
314 1.31 yamt static void
315 1.31 yamt turnstile_unlendpri(turnstile_t *ts)
316 1.31 yamt {
317 1.31 yamt lwp_t * const l = curlwp;
318 1.31 yamt turnstile_t *iter;
319 1.31 yamt turnstile_t *next;
320 1.31 yamt turnstile_t *prev = NULL;
321 1.31 yamt pri_t prio;
322 1.31 yamt bool dolock;
323 1.31 yamt
324 1.31 yamt KASSERT(ts->ts_inheritor != NULL);
325 1.31 yamt ts->ts_inheritor = NULL;
326 1.31 yamt dolock = l->l_mutex == l->l_cpu->ci_schedstate.spc_lwplock;
327 1.31 yamt if (dolock) {
328 1.31 yamt lwp_lock(l);
329 1.31 yamt }
330 1.31 yamt
331 1.31 yamt /*
332 1.31 yamt * the following loop does two things.
333 1.31 yamt *
334 1.31 yamt * - remove ts from the list.
335 1.31 yamt *
336 1.31 yamt * - from the rest of the list, find the highest priority.
337 1.31 yamt */
338 1.31 yamt
339 1.31 yamt prio = -1;
340 1.31 yamt KASSERT(!SLIST_EMPTY(&l->l_pi_lenders));
341 1.31 yamt for (iter = SLIST_FIRST(&l->l_pi_lenders);
342 1.31 yamt iter != NULL; iter = next) {
343 1.31 yamt KASSERT(lwp_eprio(l) >= ts->ts_eprio);
344 1.31 yamt next = SLIST_NEXT(iter, ts_pichain);
345 1.31 yamt if (iter == ts) {
346 1.31 yamt if (prev == NULL) {
347 1.31 yamt SLIST_REMOVE_HEAD(&l->l_pi_lenders,
348 1.31 yamt ts_pichain);
349 1.31 yamt } else {
350 1.31 yamt SLIST_REMOVE_AFTER(prev, ts_pichain);
351 1.31 yamt }
352 1.31 yamt } else if (prio < iter->ts_eprio) {
353 1.31 yamt prio = iter->ts_eprio;
354 1.31 yamt }
355 1.31 yamt prev = iter;
356 1.31 yamt }
357 1.31 yamt
358 1.31 yamt lwp_lendpri(l, prio);
359 1.4 yamt
360 1.31 yamt if (dolock) {
361 1.31 yamt lwp_unlock(l);
362 1.31 yamt }
363 1.31 yamt }
364 1.31 yamt
365 1.31 yamt /*
366 1.31 yamt * turnstile_block:
367 1.31 yamt *
368 1.31 yamt * Enter an object into the turnstile chain and prepare the current
369 1.31 yamt * LWP for sleep.
370 1.31 yamt */
371 1.31 yamt void
372 1.31 yamt turnstile_block(turnstile_t *ts, int q, wchan_t obj, syncobj_t *sobj)
373 1.31 yamt {
374 1.31 yamt lwp_t * const l = curlwp; /* cached curlwp */
375 1.31 yamt turnstile_t *ots;
376 1.31 yamt tschain_t *tc;
377 1.33 ad kmutex_t *lock;
378 1.31 yamt sleepq_t *sq;
379 1.31 yamt pri_t obase;
380 1.33 ad u_int hash;
381 1.31 yamt
382 1.33 ad hash = TS_HASH(obj);
383 1.33 ad tc = &turnstile_chains[hash];
384 1.33 ad lock = turnstile_locks[hash];
385 1.31 yamt
386 1.31 yamt KASSERT(q == TS_READER_Q || q == TS_WRITER_Q);
387 1.33 ad KASSERT(mutex_owned(lock));
388 1.31 yamt KASSERT(l != NULL && l->l_ts != NULL);
389 1.31 yamt
390 1.31 yamt if (ts == NULL) {
391 1.31 yamt /*
392 1.31 yamt * We are the first thread to wait for this object;
393 1.31 yamt * lend our turnstile to it.
394 1.31 yamt */
395 1.31 yamt ts = l->l_ts;
396 1.31 yamt KASSERT(TS_ALL_WAITERS(ts) == 0);
397 1.31 yamt KASSERT(TAILQ_EMPTY(&ts->ts_sleepq[TS_READER_Q]) &&
398 1.31 yamt TAILQ_EMPTY(&ts->ts_sleepq[TS_WRITER_Q]));
399 1.31 yamt ts->ts_obj = obj;
400 1.31 yamt ts->ts_inheritor = NULL;
401 1.33 ad LIST_INSERT_HEAD(tc, ts, ts_chain);
402 1.31 yamt } else {
403 1.31 yamt /*
404 1.31 yamt * Object already has a turnstile. Put our turnstile
405 1.31 yamt * onto the free list, and reference the existing
406 1.31 yamt * turnstile instead.
407 1.31 yamt */
408 1.31 yamt ots = l->l_ts;
409 1.31 yamt KASSERT(ots->ts_free == NULL);
410 1.31 yamt ots->ts_free = ts->ts_free;
411 1.31 yamt ts->ts_free = ots;
412 1.31 yamt l->l_ts = ts;
413 1.31 yamt
414 1.31 yamt KASSERT(ts->ts_obj == obj);
415 1.31 yamt KASSERT(TS_ALL_WAITERS(ts) != 0);
416 1.31 yamt KASSERT(!TAILQ_EMPTY(&ts->ts_sleepq[TS_READER_Q]) ||
417 1.31 yamt !TAILQ_EMPTY(&ts->ts_sleepq[TS_WRITER_Q]));
418 1.31 yamt }
419 1.31 yamt
420 1.31 yamt sq = &ts->ts_sleepq[q];
421 1.31 yamt ts->ts_waiters[q]++;
422 1.33 ad sleepq_enter(sq, l, lock);
423 1.33 ad LOCKDEBUG_BARRIER(lock, 1);
424 1.31 yamt l->l_kpriority = true;
425 1.31 yamt obase = l->l_kpribase;
426 1.31 yamt if (obase < PRI_KTHREAD)
427 1.31 yamt l->l_kpribase = PRI_KTHREAD;
428 1.31 yamt sleepq_enqueue(sq, obj, "tstile", sobj);
429 1.31 yamt
430 1.31 yamt /*
431 1.31 yamt * Disable preemption across this entire block, as we may drop
432 1.31 yamt * scheduler locks (allowing preemption), and would prefer not
433 1.31 yamt * to be interrupted while in a state of flux.
434 1.31 yamt */
435 1.31 yamt KPREEMPT_DISABLE(l);
436 1.33 ad KASSERT(lock == l->l_mutex);
437 1.31 yamt turnstile_lendpri(l);
438 1.9 yamt sleepq_block(0, false);
439 1.31 yamt l->l_kpribase = obase;
440 1.31 yamt KPREEMPT_ENABLE(l);
441 1.2 ad }
442 1.2 ad
443 1.2 ad /*
444 1.2 ad * turnstile_wakeup:
445 1.2 ad *
446 1.2 ad * Wake up the specified number of threads that are blocked
447 1.2 ad * in a turnstile.
448 1.2 ad */
449 1.2 ad void
450 1.10 ad turnstile_wakeup(turnstile_t *ts, int q, int count, lwp_t *nl)
451 1.2 ad {
452 1.2 ad sleepq_t *sq;
453 1.33 ad kmutex_t *lock;
454 1.33 ad u_int hash;
455 1.10 ad lwp_t *l;
456 1.2 ad
457 1.33 ad hash = TS_HASH(ts->ts_obj);
458 1.33 ad lock = turnstile_locks[hash];
459 1.2 ad sq = &ts->ts_sleepq[q];
460 1.2 ad
461 1.2 ad KASSERT(q == TS_READER_Q || q == TS_WRITER_Q);
462 1.2 ad KASSERT(count > 0 && count <= TS_WAITERS(ts, q));
463 1.33 ad KASSERT(mutex_owned(lock));
464 1.4 yamt KASSERT(ts->ts_inheritor == curlwp || ts->ts_inheritor == NULL);
465 1.4 yamt
466 1.4 yamt /*
467 1.4 yamt * restore inherited priority if necessary.
468 1.4 yamt */
469 1.4 yamt
470 1.4 yamt if (ts->ts_inheritor != NULL) {
471 1.31 yamt turnstile_unlendpri(ts);
472 1.4 yamt }
473 1.2 ad
474 1.2 ad if (nl != NULL) {
475 1.2 ad #if defined(DEBUG) || defined(LOCKDEBUG)
476 1.21 ad TAILQ_FOREACH(l, sq, l_sleepchain) {
477 1.2 ad if (l == nl)
478 1.2 ad break;
479 1.2 ad }
480 1.2 ad if (l == NULL)
481 1.2 ad panic("turnstile_wakeup: nl not on sleepq");
482 1.2 ad #endif
483 1.21 ad turnstile_remove(ts, nl, q);
484 1.2 ad } else {
485 1.2 ad while (count-- > 0) {
486 1.21 ad l = TAILQ_FIRST(sq);
487 1.2 ad KASSERT(l != NULL);
488 1.21 ad turnstile_remove(ts, l, q);
489 1.2 ad }
490 1.2 ad }
491 1.33 ad mutex_spin_exit(lock);
492 1.2 ad }
493 1.2 ad
494 1.2 ad /*
495 1.2 ad * turnstile_unsleep:
496 1.2 ad *
497 1.2 ad * Remove an LWP from the turnstile. This is called when the LWP has
498 1.2 ad * not been awoken normally but instead interrupted: for example, if it
499 1.2 ad * has received a signal. It's not a valid action for turnstiles,
500 1.2 ad * since LWPs blocking on a turnstile are not interruptable.
501 1.2 ad */
502 1.26 rmind void
503 1.16 ad turnstile_unsleep(lwp_t *l, bool cleanup)
504 1.2 ad {
505 1.2 ad
506 1.2 ad lwp_unlock(l);
507 1.2 ad panic("turnstile_unsleep");
508 1.2 ad }
509 1.2 ad
510 1.2 ad /*
511 1.2 ad * turnstile_changepri:
512 1.2 ad *
513 1.4 yamt * Adjust the priority of an LWP residing on a turnstile.
514 1.2 ad */
515 1.2 ad void
516 1.10 ad turnstile_changepri(lwp_t *l, pri_t pri)
517 1.2 ad {
518 1.2 ad
519 1.4 yamt /* XXX priority inheritance */
520 1.4 yamt sleepq_changepri(l, pri);
521 1.2 ad }
522 1.2 ad
523 1.2 ad #if defined(LOCKDEBUG)
524 1.2 ad /*
525 1.2 ad * turnstile_print:
526 1.2 ad *
527 1.2 ad * Given the address of a lock object, print the contents of a
528 1.2 ad * turnstile.
529 1.2 ad */
530 1.2 ad void
531 1.2 ad turnstile_print(volatile void *obj, void (*pr)(const char *, ...))
532 1.2 ad {
533 1.2 ad turnstile_t *ts;
534 1.2 ad tschain_t *tc;
535 1.2 ad sleepq_t *rsq, *wsq;
536 1.33 ad kmutex_t *lock;
537 1.33 ad u_int hash;
538 1.10 ad lwp_t *l;
539 1.2 ad
540 1.33 ad hash = TS_HASH(obj);
541 1.33 ad tc = &turnstile_chains[hash];
542 1.33 ad lock = turnstile_locks[hash];
543 1.2 ad
544 1.33 ad LIST_FOREACH(ts, tc, ts_chain)
545 1.2 ad if (ts->ts_obj == obj)
546 1.2 ad break;
547 1.2 ad
548 1.33 ad (*pr)("Turnstile chain at %p with mutex %p.\n", tc, lock);
549 1.2 ad if (ts == NULL) {
550 1.2 ad (*pr)("=> No active turnstile for this lock.\n");
551 1.2 ad return;
552 1.2 ad }
553 1.2 ad
554 1.2 ad rsq = &ts->ts_sleepq[TS_READER_Q];
555 1.2 ad wsq = &ts->ts_sleepq[TS_WRITER_Q];
556 1.2 ad
557 1.2 ad (*pr)("=> Turnstile at %p (wrq=%p, rdq=%p).\n", ts, rsq, wsq);
558 1.2 ad
559 1.21 ad (*pr)("=> %d waiting readers:", TS_WAITERS(ts, TS_READER_Q));
560 1.21 ad TAILQ_FOREACH(l, rsq, l_sleepchain) {
561 1.2 ad (*pr)(" %p", l);
562 1.2 ad }
563 1.2 ad (*pr)("\n");
564 1.2 ad
565 1.21 ad (*pr)("=> %d waiting writers:", TS_WAITERS(ts, TS_WRITER_Q));
566 1.21 ad TAILQ_FOREACH(l, wsq, l_sleepchain) {
567 1.2 ad (*pr)(" %p", l);
568 1.2 ad }
569 1.2 ad (*pr)("\n");
570 1.2 ad }
571 1.2 ad #endif /* LOCKDEBUG */
572