kern_rwlock.c revision 1.6.2.7 1 1.6.2.7 ad /* $NetBSD: kern_rwlock.c,v 1.6.2.7 2007/10/09 13:44:28 ad Exp $ */
2 1.2 ad
3 1.2 ad /*-
4 1.2 ad * Copyright (c) 2002, 2006, 2007 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 * 3. All advertising materials mentioning features or use of this software
19 1.2 ad * must display the following acknowledgement:
20 1.2 ad * This product includes software developed by the NetBSD
21 1.2 ad * Foundation, Inc. and its contributors.
22 1.2 ad * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.2 ad * contributors may be used to endorse or promote products derived
24 1.2 ad * from this software without specific prior written permission.
25 1.2 ad *
26 1.2 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.2 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.2 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.2 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.2 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.2 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.2 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.2 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.2 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.2 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.2 ad * POSSIBILITY OF SUCH DAMAGE.
37 1.2 ad */
38 1.2 ad
39 1.2 ad /*
40 1.2 ad * Kernel reader/writer lock implementation, modeled after those
41 1.2 ad * found in Solaris, a description of which can be found in:
42 1.2 ad *
43 1.2 ad * Solaris Internals: Core Kernel Architecture, Jim Mauro and
44 1.2 ad * Richard McDougall.
45 1.2 ad */
46 1.2 ad
47 1.2 ad #include <sys/cdefs.h>
48 1.6.2.7 ad __KERNEL_RCSID(0, "$NetBSD: kern_rwlock.c,v 1.6.2.7 2007/10/09 13:44:28 ad Exp $");
49 1.2 ad
50 1.2 ad #define __RWLOCK_PRIVATE
51 1.2 ad
52 1.2 ad #include <sys/param.h>
53 1.2 ad #include <sys/proc.h>
54 1.2 ad #include <sys/rwlock.h>
55 1.2 ad #include <sys/sched.h>
56 1.2 ad #include <sys/sleepq.h>
57 1.2 ad #include <sys/systm.h>
58 1.2 ad #include <sys/lockdebug.h>
59 1.6.2.4 ad #include <sys/cpu.h>
60 1.2 ad
61 1.2 ad #include <dev/lockstat.h>
62 1.2 ad
63 1.2 ad /*
64 1.2 ad * LOCKDEBUG
65 1.2 ad */
66 1.2 ad
67 1.2 ad #if defined(LOCKDEBUG)
68 1.2 ad
69 1.2 ad #define RW_WANTLOCK(rw, op) \
70 1.2 ad LOCKDEBUG_WANTLOCK(RW_GETID(rw), \
71 1.2 ad (uintptr_t)__builtin_return_address(0), op == RW_READER);
72 1.2 ad #define RW_LOCKED(rw, op) \
73 1.2 ad LOCKDEBUG_LOCKED(RW_GETID(rw), \
74 1.2 ad (uintptr_t)__builtin_return_address(0), op == RW_READER);
75 1.2 ad #define RW_UNLOCKED(rw, op) \
76 1.2 ad LOCKDEBUG_UNLOCKED(RW_GETID(rw), \
77 1.2 ad (uintptr_t)__builtin_return_address(0), op == RW_READER);
78 1.2 ad #define RW_DASSERT(rw, cond) \
79 1.2 ad do { \
80 1.2 ad if (!(cond)) \
81 1.6.2.7 ad rw_abort(rw, __func__, "assertion failed: " #cond); \
82 1.2 ad } while (/* CONSTCOND */ 0);
83 1.2 ad
84 1.2 ad #else /* LOCKDEBUG */
85 1.2 ad
86 1.2 ad #define RW_WANTLOCK(rw, op) /* nothing */
87 1.2 ad #define RW_LOCKED(rw, op) /* nothing */
88 1.2 ad #define RW_UNLOCKED(rw, op) /* nothing */
89 1.2 ad #define RW_DASSERT(rw, cond) /* nothing */
90 1.2 ad
91 1.2 ad #endif /* LOCKDEBUG */
92 1.2 ad
93 1.2 ad /*
94 1.2 ad * DIAGNOSTIC
95 1.2 ad */
96 1.2 ad
97 1.2 ad #if defined(DIAGNOSTIC)
98 1.2 ad
99 1.2 ad #define RW_ASSERT(rw, cond) \
100 1.2 ad do { \
101 1.2 ad if (!(cond)) \
102 1.6.2.7 ad rw_abort(rw, __func__, "assertion failed: " #cond); \
103 1.2 ad } while (/* CONSTCOND */ 0)
104 1.2 ad
105 1.2 ad #else
106 1.2 ad
107 1.2 ad #define RW_ASSERT(rw, cond) /* nothing */
108 1.2 ad
109 1.2 ad #endif /* DIAGNOSTIC */
110 1.2 ad
111 1.2 ad /*
112 1.2 ad * For platforms that use 'simple' RW locks.
113 1.2 ad */
114 1.2 ad #ifdef __HAVE_SIMPLE_RW_LOCKS
115 1.2 ad #define RW_ACQUIRE(rw, old, new) RW_CAS(&(rw)->rw_owner, old, new)
116 1.2 ad #define RW_RELEASE(rw, old, new) RW_CAS(&(rw)->rw_owner, old, new)
117 1.2 ad #define RW_SETID(rw, id) ((rw)->rw_id = id)
118 1.2 ad #define RW_GETID(rw) ((rw)->rw_id)
119 1.2 ad
120 1.2 ad static inline int
121 1.2 ad RW_SET_WAITERS(krwlock_t *rw, uintptr_t need, uintptr_t set)
122 1.2 ad {
123 1.2 ad uintptr_t old;
124 1.2 ad
125 1.2 ad if (((old = rw->rw_owner) & need) == 0)
126 1.2 ad return 0;
127 1.2 ad return RW_CAS(&rw->rw_owner, old, old | set);
128 1.2 ad }
129 1.2 ad #endif /* __HAVE_SIMPLE_RW_LOCKS */
130 1.2 ad
131 1.2 ad /*
132 1.2 ad * For platforms that do not provide stubs, or for the LOCKDEBUG case.
133 1.2 ad */
134 1.2 ad #ifdef LOCKDEBUG
135 1.2 ad #undef __HAVE_RW_STUBS
136 1.2 ad #endif
137 1.2 ad
138 1.2 ad #ifndef __HAVE_RW_STUBS
139 1.6 itohy __strong_alias(rw_enter,rw_vector_enter);
140 1.6 itohy __strong_alias(rw_exit,rw_vector_exit);
141 1.2 ad #endif
142 1.2 ad
143 1.6.2.2 ad static void rw_dump(volatile void *);
144 1.6.2.2 ad static lwp_t *rw_owner(wchan_t);
145 1.2 ad
146 1.2 ad lockops_t rwlock_lockops = {
147 1.2 ad "Reader / writer lock",
148 1.2 ad 1,
149 1.2 ad rw_dump
150 1.2 ad };
151 1.2 ad
152 1.4 yamt syncobj_t rw_syncobj = {
153 1.4 yamt SOBJ_SLEEPQ_SORTED,
154 1.4 yamt turnstile_unsleep,
155 1.4 yamt turnstile_changepri,
156 1.4 yamt sleepq_lendpri,
157 1.4 yamt rw_owner,
158 1.4 yamt };
159 1.4 yamt
160 1.2 ad /*
161 1.2 ad * rw_dump:
162 1.2 ad *
163 1.2 ad * Dump the contents of a rwlock structure.
164 1.2 ad */
165 1.6.2.5 ad static void
166 1.2 ad rw_dump(volatile void *cookie)
167 1.2 ad {
168 1.2 ad volatile krwlock_t *rw = cookie;
169 1.2 ad
170 1.2 ad printf_nolog("owner/count : %#018lx flags : %#018x\n",
171 1.2 ad (long)RW_OWNER(rw), (int)RW_FLAGS(rw));
172 1.2 ad }
173 1.2 ad
174 1.2 ad /*
175 1.6.2.5 ad * rw_abort:
176 1.6.2.5 ad *
177 1.6.2.5 ad * Dump information about an error and panic the system. This
178 1.6.2.5 ad * generates a lot of machine code in the DIAGNOSTIC case, so
179 1.6.2.5 ad * we ask the compiler to not inline it.
180 1.6.2.5 ad */
181 1.6.2.5 ad #if __GNUC_PREREQ__(3, 0)
182 1.6.2.5 ad __attribute ((noinline))
183 1.6.2.5 ad #endif
184 1.6.2.5 ad static void
185 1.6.2.5 ad rw_abort(krwlock_t *rw, const char *func, const char *msg)
186 1.6.2.5 ad {
187 1.6.2.5 ad
188 1.6.2.5 ad if (panicstr != NULL)
189 1.6.2.5 ad return;
190 1.6.2.5 ad
191 1.6.2.5 ad LOCKDEBUG_ABORT(RW_GETID(rw), rw, &rwlock_lockops, func, msg);
192 1.6.2.5 ad }
193 1.6.2.5 ad
194 1.6.2.5 ad /*
195 1.2 ad * rw_init:
196 1.2 ad *
197 1.2 ad * Initialize a rwlock for use.
198 1.2 ad */
199 1.2 ad void
200 1.2 ad rw_init(krwlock_t *rw)
201 1.2 ad {
202 1.2 ad u_int id;
203 1.2 ad
204 1.2 ad memset(rw, 0, sizeof(*rw));
205 1.2 ad
206 1.6.2.6 ad id = LOCKDEBUG_ALLOC(rw, &rwlock_lockops,
207 1.6.2.6 ad (uintptr_t)__builtin_return_address(0));
208 1.2 ad RW_SETID(rw, id);
209 1.2 ad }
210 1.2 ad
211 1.2 ad /*
212 1.2 ad * rw_destroy:
213 1.2 ad *
214 1.2 ad * Tear down a rwlock.
215 1.2 ad */
216 1.2 ad void
217 1.2 ad rw_destroy(krwlock_t *rw)
218 1.2 ad {
219 1.2 ad
220 1.2 ad LOCKDEBUG_FREE(rw, RW_GETID(rw));
221 1.2 ad RW_ASSERT(rw, rw->rw_owner == 0);
222 1.2 ad }
223 1.2 ad
224 1.2 ad /*
225 1.2 ad * rw_vector_enter:
226 1.2 ad *
227 1.2 ad * Acquire a rwlock.
228 1.2 ad */
229 1.2 ad void
230 1.2 ad rw_vector_enter(krwlock_t *rw, const krw_t op)
231 1.2 ad {
232 1.2 ad uintptr_t owner, incr, need_wait, set_wait, curthread;
233 1.2 ad turnstile_t *ts;
234 1.2 ad int queue;
235 1.6.2.2 ad lwp_t *l;
236 1.2 ad LOCKSTAT_TIMER(slptime);
237 1.2 ad LOCKSTAT_FLAG(lsflag);
238 1.2 ad
239 1.2 ad l = curlwp;
240 1.2 ad curthread = (uintptr_t)l;
241 1.2 ad
242 1.6.2.4 ad RW_ASSERT(rw, !cpu_intr_p());
243 1.2 ad RW_ASSERT(rw, curthread != 0);
244 1.2 ad RW_WANTLOCK(rw, op);
245 1.2 ad
246 1.2 ad if (panicstr == NULL) {
247 1.2 ad LOCKDEBUG_BARRIER(&kernel_lock, 1);
248 1.2 ad }
249 1.2 ad
250 1.2 ad /*
251 1.2 ad * We play a slight trick here. If we're a reader, we want
252 1.2 ad * increment the read count. If we're a writer, we want to
253 1.2 ad * set the owner field and whe WRITE_LOCKED bit.
254 1.2 ad *
255 1.2 ad * In the latter case, we expect those bits to be zero,
256 1.2 ad * therefore we can use an add operation to set them, which
257 1.2 ad * means an add operation for both cases.
258 1.2 ad */
259 1.2 ad if (__predict_true(op == RW_READER)) {
260 1.2 ad incr = RW_READ_INCR;
261 1.2 ad set_wait = RW_HAS_WAITERS;
262 1.2 ad need_wait = RW_WRITE_LOCKED | RW_WRITE_WANTED;
263 1.2 ad queue = TS_READER_Q;
264 1.2 ad } else {
265 1.2 ad RW_DASSERT(rw, op == RW_WRITER);
266 1.2 ad incr = curthread | RW_WRITE_LOCKED;
267 1.2 ad set_wait = RW_HAS_WAITERS | RW_WRITE_WANTED;
268 1.2 ad need_wait = RW_WRITE_LOCKED | RW_THREAD;
269 1.2 ad queue = TS_WRITER_Q;
270 1.2 ad }
271 1.2 ad
272 1.2 ad LOCKSTAT_ENTER(lsflag);
273 1.2 ad
274 1.2 ad for (;;) {
275 1.2 ad /*
276 1.2 ad * Read the lock owner field. If the need-to-wait
277 1.2 ad * indicator is clear, then try to acquire the lock.
278 1.2 ad */
279 1.2 ad owner = rw->rw_owner;
280 1.2 ad if ((owner & need_wait) == 0) {
281 1.2 ad if (RW_ACQUIRE(rw, owner, owner + incr)) {
282 1.2 ad /* Got it! */
283 1.2 ad break;
284 1.2 ad }
285 1.2 ad
286 1.2 ad /*
287 1.2 ad * Didn't get it -- spin around again (we'll
288 1.2 ad * probably sleep on the next iteration).
289 1.2 ad */
290 1.2 ad continue;
291 1.2 ad }
292 1.2 ad
293 1.2 ad if (panicstr != NULL)
294 1.2 ad return;
295 1.2 ad if (RW_OWNER(rw) == curthread)
296 1.6.2.7 ad rw_abort(rw, __func__, "locking against myself");
297 1.2 ad
298 1.2 ad /*
299 1.2 ad * Grab the turnstile chain lock. Once we have that, we
300 1.2 ad * can adjust the waiter bits and sleep queue.
301 1.2 ad */
302 1.2 ad ts = turnstile_lookup(rw);
303 1.2 ad
304 1.2 ad /*
305 1.2 ad * Mark the rwlock as having waiters. If the set fails,
306 1.2 ad * then we may not need to sleep and should spin again.
307 1.2 ad */
308 1.2 ad if (!RW_SET_WAITERS(rw, need_wait, set_wait)) {
309 1.2 ad turnstile_exit(rw);
310 1.2 ad continue;
311 1.2 ad }
312 1.2 ad
313 1.2 ad LOCKSTAT_START_TIMER(lsflag, slptime);
314 1.2 ad
315 1.4 yamt turnstile_block(ts, queue, rw, &rw_syncobj);
316 1.2 ad
317 1.2 ad /* If we wake up and arrive here, we've been handed the lock. */
318 1.2 ad RW_RECEIVE(rw);
319 1.2 ad
320 1.2 ad LOCKSTAT_STOP_TIMER(lsflag, slptime);
321 1.2 ad LOCKSTAT_EVENT(lsflag, rw,
322 1.2 ad LB_RWLOCK | (op == RW_WRITER ? LB_SLEEP1 : LB_SLEEP2),
323 1.2 ad 1, slptime);
324 1.2 ad
325 1.2 ad break;
326 1.2 ad }
327 1.2 ad
328 1.2 ad LOCKSTAT_EXIT(lsflag);
329 1.2 ad
330 1.2 ad RW_DASSERT(rw, (op != RW_READER && RW_OWNER(rw) == curthread) ||
331 1.2 ad (op == RW_READER && RW_COUNT(rw) != 0));
332 1.2 ad RW_LOCKED(rw, op);
333 1.2 ad }
334 1.2 ad
335 1.2 ad /*
336 1.2 ad * rw_vector_exit:
337 1.2 ad *
338 1.2 ad * Release a rwlock.
339 1.2 ad */
340 1.2 ad void
341 1.2 ad rw_vector_exit(krwlock_t *rw)
342 1.2 ad {
343 1.2 ad uintptr_t curthread, owner, decr, new;
344 1.2 ad turnstile_t *ts;
345 1.2 ad int rcnt, wcnt;
346 1.6.2.2 ad lwp_t *l;
347 1.2 ad
348 1.2 ad curthread = (uintptr_t)curlwp;
349 1.2 ad RW_ASSERT(rw, curthread != 0);
350 1.2 ad
351 1.6.2.5 ad if (panicstr != NULL)
352 1.2 ad return;
353 1.2 ad
354 1.2 ad /*
355 1.2 ad * Again, we use a trick. Since we used an add operation to
356 1.2 ad * set the required lock bits, we can use a subtract to clear
357 1.2 ad * them, which makes the read-release and write-release path
358 1.2 ad * the same.
359 1.2 ad */
360 1.2 ad owner = rw->rw_owner;
361 1.2 ad if (__predict_false((owner & RW_WRITE_LOCKED) != 0)) {
362 1.2 ad RW_UNLOCKED(rw, RW_WRITER);
363 1.2 ad RW_DASSERT(rw, (rw->rw_owner & RW_WRITE_LOCKED) != 0);
364 1.2 ad RW_ASSERT(rw, RW_OWNER(rw) == curthread);
365 1.2 ad decr = curthread | RW_WRITE_LOCKED;
366 1.2 ad } else {
367 1.2 ad RW_UNLOCKED(rw, RW_READER);
368 1.2 ad RW_ASSERT(rw, (rw->rw_owner & RW_WRITE_LOCKED) == 0);
369 1.2 ad RW_ASSERT(rw, RW_COUNT(rw) != 0);
370 1.2 ad decr = RW_READ_INCR;
371 1.2 ad }
372 1.2 ad
373 1.2 ad /*
374 1.2 ad * Compute what we expect the new value of the lock to be. Only
375 1.2 ad * proceed to do direct handoff if there are waiters, and if the
376 1.2 ad * lock would become unowned.
377 1.2 ad */
378 1.2 ad for (;; owner = rw->rw_owner) {
379 1.2 ad new = (owner - decr);
380 1.2 ad if ((new & (RW_THREAD | RW_HAS_WAITERS)) == RW_HAS_WAITERS)
381 1.2 ad break;
382 1.2 ad if (RW_RELEASE(rw, owner, new))
383 1.2 ad return;
384 1.2 ad }
385 1.2 ad
386 1.2 ad for (;;) {
387 1.2 ad /*
388 1.2 ad * Grab the turnstile chain lock. This gets the interlock
389 1.2 ad * on the sleep queue. Once we have that, we can adjust the
390 1.2 ad * waiter bits.
391 1.2 ad */
392 1.2 ad ts = turnstile_lookup(rw);
393 1.2 ad RW_DASSERT(rw, ts != NULL);
394 1.3 ad RW_DASSERT(rw, (rw->rw_owner & RW_HAS_WAITERS) != 0);
395 1.2 ad
396 1.2 ad owner = rw->rw_owner;
397 1.2 ad wcnt = TS_WAITERS(ts, TS_WRITER_Q);
398 1.2 ad rcnt = TS_WAITERS(ts, TS_READER_Q);
399 1.2 ad
400 1.2 ad /*
401 1.2 ad * Give the lock away.
402 1.2 ad *
403 1.2 ad * If we are releasing a write lock, then wake all
404 1.2 ad * outstanding readers. If we are releasing a read
405 1.2 ad * lock, then wake one writer.
406 1.2 ad */
407 1.2 ad if (rcnt == 0 || (decr == RW_READ_INCR && wcnt != 0)) {
408 1.2 ad RW_DASSERT(rw, wcnt != 0);
409 1.2 ad RW_DASSERT(rw, (rw->rw_owner & RW_WRITE_WANTED) != 0);
410 1.2 ad
411 1.2 ad /*
412 1.2 ad * Give the lock to the longest waiting
413 1.2 ad * writer.
414 1.2 ad */
415 1.2 ad l = TS_FIRST(ts, TS_WRITER_Q);
416 1.2 ad new = (uintptr_t)l | RW_WRITE_LOCKED;
417 1.2 ad
418 1.2 ad if (wcnt > 1)
419 1.2 ad new |= RW_HAS_WAITERS | RW_WRITE_WANTED;
420 1.2 ad else if (rcnt != 0)
421 1.2 ad new |= RW_HAS_WAITERS;
422 1.2 ad
423 1.2 ad RW_GIVE(rw);
424 1.2 ad if (!RW_RELEASE(rw, owner, new)) {
425 1.2 ad /* Oops, try again. */
426 1.2 ad turnstile_exit(rw);
427 1.2 ad continue;
428 1.2 ad }
429 1.2 ad
430 1.2 ad /* Wake the writer. */
431 1.6.2.2 ad turnstile_wakeup(ts, TS_WRITER_Q, 1, l);
432 1.2 ad } else {
433 1.2 ad RW_DASSERT(rw, rcnt != 0);
434 1.2 ad
435 1.2 ad /*
436 1.3 ad * Give the lock to all blocked readers. If there
437 1.3 ad * is a writer waiting, new readers that arrive
438 1.3 ad * after the release will be blocked out.
439 1.2 ad */
440 1.2 ad new = rcnt << RW_READ_COUNT_SHIFT;
441 1.2 ad if (wcnt != 0)
442 1.2 ad new |= RW_HAS_WAITERS | RW_WRITE_WANTED;
443 1.2 ad
444 1.2 ad RW_GIVE(rw);
445 1.2 ad if (!RW_RELEASE(rw, owner, new)) {
446 1.2 ad /* Oops, try again. */
447 1.2 ad turnstile_exit(rw);
448 1.2 ad continue;
449 1.2 ad }
450 1.2 ad
451 1.2 ad /* Wake up all sleeping readers. */
452 1.2 ad turnstile_wakeup(ts, TS_READER_Q, rcnt, NULL);
453 1.2 ad }
454 1.2 ad
455 1.2 ad break;
456 1.2 ad }
457 1.2 ad }
458 1.2 ad
459 1.2 ad /*
460 1.2 ad * rw_tryenter:
461 1.2 ad *
462 1.2 ad * Try to acquire a rwlock.
463 1.2 ad */
464 1.2 ad int
465 1.2 ad rw_tryenter(krwlock_t *rw, const krw_t op)
466 1.2 ad {
467 1.2 ad uintptr_t curthread, owner, incr, need_wait;
468 1.2 ad
469 1.2 ad curthread = (uintptr_t)curlwp;
470 1.2 ad
471 1.2 ad RW_ASSERT(rw, curthread != 0);
472 1.2 ad RW_WANTLOCK(rw, op);
473 1.2 ad
474 1.2 ad if (op == RW_READER) {
475 1.2 ad incr = RW_READ_INCR;
476 1.2 ad need_wait = RW_WRITE_LOCKED | RW_WRITE_WANTED;
477 1.2 ad } else {
478 1.2 ad RW_DASSERT(rw, op == RW_WRITER);
479 1.2 ad incr = curthread | RW_WRITE_LOCKED;
480 1.2 ad need_wait = RW_WRITE_LOCKED | RW_THREAD;
481 1.2 ad }
482 1.2 ad
483 1.2 ad for (;;) {
484 1.2 ad owner = rw->rw_owner;
485 1.2 ad if ((owner & need_wait) == 0) {
486 1.2 ad if (RW_ACQUIRE(rw, owner, owner + incr)) {
487 1.2 ad /* Got it! */
488 1.2 ad break;
489 1.2 ad }
490 1.2 ad continue;
491 1.2 ad }
492 1.2 ad return 0;
493 1.2 ad }
494 1.2 ad
495 1.2 ad RW_LOCKED(rw, op);
496 1.2 ad RW_DASSERT(rw, (op != RW_READER && RW_OWNER(rw) == curthread) ||
497 1.2 ad (op == RW_READER && RW_COUNT(rw) != 0));
498 1.6.2.2 ad
499 1.2 ad return 1;
500 1.2 ad }
501 1.2 ad
502 1.2 ad /*
503 1.2 ad * rw_downgrade:
504 1.2 ad *
505 1.2 ad * Downgrade a write lock to a read lock.
506 1.2 ad */
507 1.2 ad void
508 1.2 ad rw_downgrade(krwlock_t *rw)
509 1.2 ad {
510 1.2 ad uintptr_t owner, curthread, new;
511 1.2 ad turnstile_t *ts;
512 1.2 ad int rcnt, wcnt;
513 1.2 ad
514 1.2 ad curthread = (uintptr_t)curlwp;
515 1.2 ad RW_ASSERT(rw, curthread != 0);
516 1.2 ad RW_DASSERT(rw, (rw->rw_owner & RW_WRITE_LOCKED) != 0);
517 1.2 ad RW_ASSERT(rw, RW_OWNER(rw) == curthread);
518 1.2 ad RW_UNLOCKED(rw, RW_WRITER);
519 1.2 ad
520 1.2 ad owner = rw->rw_owner;
521 1.2 ad if ((owner & RW_HAS_WAITERS) == 0) {
522 1.2 ad /*
523 1.2 ad * There are no waiters, so we can do this the easy way.
524 1.2 ad * Try swapping us down to one read hold. If it fails, the
525 1.2 ad * lock condition has changed and we most likely now have
526 1.2 ad * waiters.
527 1.2 ad */
528 1.2 ad if (RW_RELEASE(rw, owner, RW_READ_INCR)) {
529 1.2 ad RW_LOCKED(rw, RW_READER);
530 1.2 ad RW_DASSERT(rw, (rw->rw_owner & RW_WRITE_LOCKED) == 0);
531 1.2 ad RW_DASSERT(rw, RW_COUNT(rw) != 0);
532 1.2 ad return;
533 1.2 ad }
534 1.2 ad }
535 1.2 ad
536 1.2 ad /*
537 1.2 ad * Grab the turnstile chain lock. This gets the interlock
538 1.2 ad * on the sleep queue. Once we have that, we can adjust the
539 1.2 ad * waiter bits.
540 1.2 ad */
541 1.2 ad for (;;) {
542 1.2 ad ts = turnstile_lookup(rw);
543 1.2 ad RW_DASSERT(rw, ts != NULL);
544 1.2 ad
545 1.2 ad owner = rw->rw_owner;
546 1.2 ad rcnt = TS_WAITERS(ts, TS_READER_Q);
547 1.2 ad wcnt = TS_WAITERS(ts, TS_WRITER_Q);
548 1.2 ad
549 1.2 ad /*
550 1.2 ad * If there are no readers, just preserve the waiters
551 1.2 ad * bits, swap us down to one read hold and return.
552 1.2 ad */
553 1.2 ad if (rcnt == 0) {
554 1.2 ad RW_DASSERT(rw, wcnt != 0);
555 1.2 ad RW_DASSERT(rw, (rw->rw_owner & RW_WRITE_WANTED) != 0);
556 1.2 ad RW_DASSERT(rw, (rw->rw_owner & RW_HAS_WAITERS) != 0);
557 1.2 ad
558 1.2 ad new = RW_READ_INCR | RW_HAS_WAITERS | RW_WRITE_WANTED;
559 1.2 ad if (!RW_RELEASE(rw, owner, new)) {
560 1.2 ad /* Oops, try again. */
561 1.2 ad turnstile_exit(ts);
562 1.2 ad continue;
563 1.2 ad }
564 1.2 ad break;
565 1.2 ad }
566 1.2 ad
567 1.2 ad /*
568 1.2 ad * Give the lock to all blocked readers. We may
569 1.2 ad * retain one read hold if downgrading. If there
570 1.2 ad * is a writer waiting, new readers will be blocked
571 1.2 ad * out.
572 1.2 ad */
573 1.2 ad new = (rcnt << RW_READ_COUNT_SHIFT) + RW_READ_INCR;
574 1.2 ad if (wcnt != 0)
575 1.2 ad new |= RW_HAS_WAITERS | RW_WRITE_WANTED;
576 1.2 ad
577 1.2 ad RW_GIVE(rw);
578 1.2 ad if (!RW_RELEASE(rw, owner, new)) {
579 1.2 ad /* Oops, try again. */
580 1.2 ad turnstile_exit(rw);
581 1.2 ad continue;
582 1.2 ad }
583 1.2 ad
584 1.2 ad /* Wake up all sleeping readers. */
585 1.2 ad turnstile_wakeup(ts, TS_READER_Q, rcnt, NULL);
586 1.2 ad break;
587 1.2 ad }
588 1.2 ad
589 1.2 ad RW_LOCKED(rw, RW_READER);
590 1.2 ad RW_DASSERT(rw, (rw->rw_owner & RW_WRITE_LOCKED) == 0);
591 1.2 ad RW_DASSERT(rw, RW_COUNT(rw) != 0);
592 1.2 ad }
593 1.2 ad
594 1.2 ad /*
595 1.2 ad * rw_tryupgrade:
596 1.2 ad *
597 1.2 ad * Try to upgrade a read lock to a write lock. We must be the
598 1.2 ad * only reader.
599 1.2 ad */
600 1.2 ad int
601 1.2 ad rw_tryupgrade(krwlock_t *rw)
602 1.2 ad {
603 1.2 ad uintptr_t owner, curthread, new;
604 1.2 ad
605 1.2 ad curthread = (uintptr_t)curlwp;
606 1.2 ad RW_ASSERT(rw, curthread != 0);
607 1.2 ad RW_WANTLOCK(rw, RW_WRITER);
608 1.2 ad
609 1.2 ad for (;;) {
610 1.2 ad owner = rw->rw_owner;
611 1.2 ad RW_ASSERT(rw, (owner & RW_WRITE_LOCKED) == 0);
612 1.2 ad if ((owner & RW_THREAD) != RW_READ_INCR) {
613 1.2 ad RW_ASSERT(rw, (owner & RW_THREAD) != 0);
614 1.2 ad return 0;
615 1.2 ad }
616 1.2 ad new = curthread | RW_WRITE_LOCKED | (owner & ~RW_THREAD);
617 1.2 ad if (RW_ACQUIRE(rw, owner, new))
618 1.2 ad break;
619 1.2 ad }
620 1.2 ad
621 1.2 ad RW_UNLOCKED(rw, RW_READER);
622 1.2 ad RW_LOCKED(rw, RW_WRITER);
623 1.2 ad RW_DASSERT(rw, rw->rw_owner & RW_WRITE_LOCKED);
624 1.2 ad RW_DASSERT(rw, RW_OWNER(rw) == curthread);
625 1.2 ad
626 1.2 ad return 1;
627 1.2 ad }
628 1.2 ad
629 1.2 ad /*
630 1.2 ad * rw_read_held:
631 1.2 ad *
632 1.2 ad * Returns true if the rwlock is held for reading. Must only be
633 1.2 ad * used for diagnostic assertions, and never be used to make
634 1.2 ad * decisions about how to use a rwlock.
635 1.2 ad */
636 1.2 ad int
637 1.2 ad rw_read_held(krwlock_t *rw)
638 1.2 ad {
639 1.2 ad uintptr_t owner;
640 1.2 ad
641 1.2 ad if (panicstr != NULL)
642 1.2 ad return 1;
643 1.2 ad
644 1.2 ad owner = rw->rw_owner;
645 1.2 ad return (owner & RW_WRITE_LOCKED) == 0 && (owner & RW_THREAD) != 0;
646 1.2 ad }
647 1.2 ad
648 1.2 ad /*
649 1.2 ad * rw_write_held:
650 1.2 ad *
651 1.2 ad * Returns true if the rwlock is held for writing. Must only be
652 1.2 ad * used for diagnostic assertions, and never be used to make
653 1.2 ad * decisions about how to use a rwlock.
654 1.2 ad */
655 1.2 ad int
656 1.2 ad rw_write_held(krwlock_t *rw)
657 1.2 ad {
658 1.2 ad
659 1.2 ad if (panicstr != NULL)
660 1.2 ad return 1;
661 1.2 ad
662 1.2 ad return (rw->rw_owner & RW_WRITE_LOCKED) != 0;
663 1.2 ad }
664 1.2 ad
665 1.2 ad /*
666 1.2 ad * rw_lock_held:
667 1.2 ad *
668 1.2 ad * Returns true if the rwlock is held for reading or writing. Must
669 1.2 ad * only be used for diagnostic assertions, and never be used to make
670 1.2 ad * decisions about how to use a rwlock.
671 1.2 ad */
672 1.2 ad int
673 1.2 ad rw_lock_held(krwlock_t *rw)
674 1.2 ad {
675 1.2 ad
676 1.2 ad if (panicstr != NULL)
677 1.2 ad return 1;
678 1.2 ad
679 1.2 ad return (rw->rw_owner & RW_THREAD) != 0;
680 1.2 ad }
681 1.4 yamt
682 1.5 ad /*
683 1.5 ad * rw_owner:
684 1.5 ad *
685 1.5 ad * Return the current owner of an RW lock, but only if it is write
686 1.5 ad * held. Used for priority inheritance.
687 1.5 ad */
688 1.6.2.2 ad static lwp_t *
689 1.4 yamt rw_owner(wchan_t obj)
690 1.4 yamt {
691 1.4 yamt krwlock_t *rw = (void *)(uintptr_t)obj; /* discard qualifiers */
692 1.4 yamt uintptr_t owner = rw->rw_owner;
693 1.4 yamt
694 1.4 yamt if ((owner & RW_WRITE_LOCKED) == 0)
695 1.4 yamt return NULL;
696 1.4 yamt
697 1.4 yamt return (void *)(owner & RW_THREAD);
698 1.4 yamt }
699