locks.c revision 1.69.4.2 1 1.69.4.2 skrll /* $NetBSD: locks.c,v 1.69.4.2 2016/03/19 11:30:37 skrll Exp $ */
2 1.1 pooka
3 1.1 pooka /*
4 1.54 pooka * Copyright (c) 2007-2011 Antti Kantee. All Rights Reserved.
5 1.1 pooka *
6 1.1 pooka * Redistribution and use in source and binary forms, with or without
7 1.1 pooka * modification, are permitted provided that the following conditions
8 1.1 pooka * are met:
9 1.1 pooka * 1. Redistributions of source code must retain the above copyright
10 1.1 pooka * notice, this list of conditions and the following disclaimer.
11 1.1 pooka * 2. Redistributions in binary form must reproduce the above copyright
12 1.1 pooka * notice, this list of conditions and the following disclaimer in the
13 1.1 pooka * documentation and/or other materials provided with the distribution.
14 1.1 pooka *
15 1.1 pooka * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS
16 1.1 pooka * OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
17 1.1 pooka * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
18 1.1 pooka * DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
19 1.1 pooka * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
20 1.1 pooka * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
21 1.1 pooka * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
22 1.1 pooka * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
23 1.1 pooka * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
24 1.1 pooka * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
25 1.1 pooka * SUCH DAMAGE.
26 1.1 pooka */
27 1.1 pooka
28 1.23 pooka #include <sys/cdefs.h>
29 1.69.4.2 skrll __KERNEL_RCSID(0, "$NetBSD: locks.c,v 1.69.4.2 2016/03/19 11:30:37 skrll Exp $");
30 1.23 pooka
31 1.1 pooka #include <sys/param.h>
32 1.26 pooka #include <sys/kmem.h>
33 1.1 pooka #include <sys/mutex.h>
34 1.1 pooka #include <sys/rwlock.h>
35 1.1 pooka
36 1.69.4.2 skrll #include <rump-sys/kern.h>
37 1.18 pooka
38 1.69.4.2 skrll #include <rump/rumpuser.h>
39 1.2 pooka
40 1.69 pooka #ifdef LOCKDEBUG
41 1.69 pooka const int rump_lockdebug = 1;
42 1.69 pooka #else
43 1.69 pooka const int rump_lockdebug = 0;
44 1.69 pooka #endif
45 1.69 pooka
46 1.22 pooka /*
47 1.45 pooka * Simple lockdebug. If it's compiled in, it's always active.
48 1.45 pooka * Currently available only for mtx/rwlock.
49 1.45 pooka */
50 1.45 pooka #ifdef LOCKDEBUG
51 1.45 pooka #include <sys/lockdebug.h>
52 1.45 pooka
53 1.45 pooka static lockops_t mutex_lockops = {
54 1.45 pooka "mutex",
55 1.45 pooka LOCKOPS_SLEEP,
56 1.45 pooka NULL
57 1.45 pooka };
58 1.45 pooka static lockops_t rw_lockops = {
59 1.46 pooka "rwlock",
60 1.45 pooka LOCKOPS_SLEEP,
61 1.45 pooka NULL
62 1.45 pooka };
63 1.45 pooka
64 1.45 pooka #define ALLOCK(lock, ops) \
65 1.45 pooka lockdebug_alloc(lock, ops, (uintptr_t)__builtin_return_address(0))
66 1.45 pooka #define FREELOCK(lock) \
67 1.45 pooka lockdebug_free(lock)
68 1.65 njoly #define WANTLOCK(lock, shar) \
69 1.65 njoly lockdebug_wantlock(lock, (uintptr_t)__builtin_return_address(0), shar)
70 1.45 pooka #define LOCKED(lock, shar) \
71 1.45 pooka lockdebug_locked(lock, NULL, (uintptr_t)__builtin_return_address(0), shar)
72 1.45 pooka #define UNLOCKED(lock, shar) \
73 1.45 pooka lockdebug_unlocked(lock, (uintptr_t)__builtin_return_address(0), shar)
74 1.69.4.1 skrll #define BARRIER(lock, slp) \
75 1.69.4.1 skrll lockdebug_barrier(lock, slp)
76 1.45 pooka #else
77 1.45 pooka #define ALLOCK(a, b)
78 1.45 pooka #define FREELOCK(a)
79 1.65 njoly #define WANTLOCK(a, b)
80 1.45 pooka #define LOCKED(a, b)
81 1.45 pooka #define UNLOCKED(a, b)
82 1.69.4.1 skrll #define BARRIER(a, b)
83 1.45 pooka #endif
84 1.45 pooka
85 1.45 pooka /*
86 1.22 pooka * We map locks to pthread routines. The difference between kernel
87 1.22 pooka * and rumpuser routines is that while the kernel uses static
88 1.22 pooka * storage, rumpuser allocates the object from the heap. This
89 1.22 pooka * indirection is necessary because we don't know the size of
90 1.38 snj * pthread objects here. It is also beneficial, since we can
91 1.22 pooka * be easily compatible with the kernel ABI because all kernel
92 1.22 pooka * objects regardless of machine architecture are always at least
93 1.22 pooka * the size of a pointer. The downside, of course, is a performance
94 1.22 pooka * penalty.
95 1.22 pooka */
96 1.22 pooka
97 1.22 pooka #define RUMPMTX(mtx) (*(struct rumpuser_mtx **)(mtx))
98 1.22 pooka
99 1.1 pooka void
100 1.1 pooka mutex_init(kmutex_t *mtx, kmutex_type_t type, int ipl)
101 1.1 pooka {
102 1.57 pooka int ruflags = RUMPUSER_MTX_KMUTEX;
103 1.56 pooka int isspin;
104 1.56 pooka
105 1.57 pooka CTASSERT(sizeof(kmutex_t) >= sizeof(void *));
106 1.57 pooka
107 1.56 pooka /*
108 1.56 pooka * Try to figure out if the caller wanted a spin mutex or
109 1.56 pooka * not with this easy set of conditionals. The difference
110 1.56 pooka * between a spin mutex and an adaptive mutex for a rump
111 1.56 pooka * kernel is that the hypervisor does not relinquish the
112 1.56 pooka * rump kernel CPU context for a spin mutex. The
113 1.56 pooka * hypervisor itself may block even when "spinning".
114 1.56 pooka */
115 1.56 pooka if (type == MUTEX_SPIN) {
116 1.56 pooka isspin = 1;
117 1.56 pooka } else if (ipl == IPL_NONE || ipl == IPL_SOFTCLOCK ||
118 1.56 pooka ipl == IPL_SOFTBIO || ipl == IPL_SOFTNET ||
119 1.56 pooka ipl == IPL_SOFTSERIAL) {
120 1.56 pooka isspin = 0;
121 1.56 pooka } else {
122 1.56 pooka isspin = 1;
123 1.56 pooka }
124 1.1 pooka
125 1.57 pooka if (isspin)
126 1.57 pooka ruflags |= RUMPUSER_MTX_SPIN;
127 1.57 pooka rumpuser_mutex_init((struct rumpuser_mtx **)mtx, ruflags);
128 1.45 pooka ALLOCK(mtx, &mutex_lockops);
129 1.1 pooka }
130 1.1 pooka
131 1.1 pooka void
132 1.1 pooka mutex_destroy(kmutex_t *mtx)
133 1.1 pooka {
134 1.1 pooka
135 1.45 pooka FREELOCK(mtx);
136 1.22 pooka rumpuser_mutex_destroy(RUMPMTX(mtx));
137 1.1 pooka }
138 1.1 pooka
139 1.1 pooka void
140 1.1 pooka mutex_enter(kmutex_t *mtx)
141 1.1 pooka {
142 1.1 pooka
143 1.65 njoly WANTLOCK(mtx, 0);
144 1.69.4.1 skrll BARRIER(mtx, 1);
145 1.22 pooka rumpuser_mutex_enter(RUMPMTX(mtx));
146 1.45 pooka LOCKED(mtx, false);
147 1.1 pooka }
148 1.56 pooka
149 1.56 pooka void
150 1.56 pooka mutex_spin_enter(kmutex_t *mtx)
151 1.56 pooka {
152 1.56 pooka
153 1.65 njoly WANTLOCK(mtx, 0);
154 1.69.4.1 skrll BARRIER(mtx, 1);
155 1.61 pooka rumpuser_mutex_enter_nowrap(RUMPMTX(mtx));
156 1.56 pooka LOCKED(mtx, false);
157 1.56 pooka }
158 1.6 pooka
159 1.1 pooka int
160 1.1 pooka mutex_tryenter(kmutex_t *mtx)
161 1.1 pooka {
162 1.60 pooka int error;
163 1.1 pooka
164 1.60 pooka error = rumpuser_mutex_tryenter(RUMPMTX(mtx));
165 1.60 pooka if (error == 0) {
166 1.65 njoly WANTLOCK(mtx, 0);
167 1.45 pooka LOCKED(mtx, false);
168 1.45 pooka }
169 1.60 pooka return error == 0;
170 1.1 pooka }
171 1.1 pooka
172 1.1 pooka void
173 1.1 pooka mutex_exit(kmutex_t *mtx)
174 1.1 pooka {
175 1.1 pooka
176 1.45 pooka UNLOCKED(mtx, false);
177 1.22 pooka rumpuser_mutex_exit(RUMPMTX(mtx));
178 1.1 pooka }
179 1.45 pooka __strong_alias(mutex_spin_exit,mutex_exit);
180 1.6 pooka
181 1.1 pooka int
182 1.1 pooka mutex_owned(kmutex_t *mtx)
183 1.1 pooka {
184 1.1 pooka
185 1.44 pooka return mutex_owner(mtx) == curlwp;
186 1.44 pooka }
187 1.44 pooka
188 1.44 pooka struct lwp *
189 1.44 pooka mutex_owner(kmutex_t *mtx)
190 1.44 pooka {
191 1.60 pooka struct lwp *l;
192 1.44 pooka
193 1.60 pooka rumpuser_mutex_owner(RUMPMTX(mtx), &l);
194 1.60 pooka return l;
195 1.1 pooka }
196 1.1 pooka
197 1.22 pooka #define RUMPRW(rw) (*(struct rumpuser_rw **)(rw))
198 1.22 pooka
199 1.1 pooka /* reader/writer locks */
200 1.1 pooka
201 1.63 pooka static enum rumprwlock
202 1.63 pooka krw2rumprw(const krw_t op)
203 1.63 pooka {
204 1.63 pooka
205 1.63 pooka switch (op) {
206 1.63 pooka case RW_READER:
207 1.63 pooka return RUMPUSER_RW_READER;
208 1.63 pooka case RW_WRITER:
209 1.63 pooka return RUMPUSER_RW_WRITER;
210 1.63 pooka default:
211 1.63 pooka panic("unknown rwlock type");
212 1.63 pooka }
213 1.63 pooka }
214 1.63 pooka
215 1.1 pooka void
216 1.1 pooka rw_init(krwlock_t *rw)
217 1.1 pooka {
218 1.1 pooka
219 1.22 pooka CTASSERT(sizeof(krwlock_t) >= sizeof(void *));
220 1.22 pooka
221 1.22 pooka rumpuser_rw_init((struct rumpuser_rw **)rw);
222 1.45 pooka ALLOCK(rw, &rw_lockops);
223 1.1 pooka }
224 1.1 pooka
225 1.1 pooka void
226 1.1 pooka rw_destroy(krwlock_t *rw)
227 1.1 pooka {
228 1.1 pooka
229 1.45 pooka FREELOCK(rw);
230 1.22 pooka rumpuser_rw_destroy(RUMPRW(rw));
231 1.1 pooka }
232 1.1 pooka
233 1.1 pooka void
234 1.1 pooka rw_enter(krwlock_t *rw, const krw_t op)
235 1.1 pooka {
236 1.1 pooka
237 1.65 njoly WANTLOCK(rw, op == RW_READER);
238 1.69.4.1 skrll BARRIER(rw, 1);
239 1.64 pooka rumpuser_rw_enter(krw2rumprw(op), RUMPRW(rw));
240 1.45 pooka LOCKED(rw, op == RW_READER);
241 1.1 pooka }
242 1.1 pooka
243 1.1 pooka int
244 1.1 pooka rw_tryenter(krwlock_t *rw, const krw_t op)
245 1.1 pooka {
246 1.60 pooka int error;
247 1.1 pooka
248 1.64 pooka error = rumpuser_rw_tryenter(krw2rumprw(op), RUMPRW(rw));
249 1.60 pooka if (error == 0) {
250 1.65 njoly WANTLOCK(rw, op == RW_READER);
251 1.45 pooka LOCKED(rw, op == RW_READER);
252 1.45 pooka }
253 1.60 pooka return error == 0;
254 1.1 pooka }
255 1.1 pooka
256 1.1 pooka void
257 1.1 pooka rw_exit(krwlock_t *rw)
258 1.1 pooka {
259 1.1 pooka
260 1.45 pooka #ifdef LOCKDEBUG
261 1.45 pooka bool shared = !rw_write_held(rw);
262 1.45 pooka
263 1.45 pooka if (shared)
264 1.45 pooka KASSERT(rw_read_held(rw));
265 1.45 pooka UNLOCKED(rw, shared);
266 1.45 pooka #endif
267 1.22 pooka rumpuser_rw_exit(RUMPRW(rw));
268 1.1 pooka }
269 1.1 pooka
270 1.1 pooka int
271 1.1 pooka rw_tryupgrade(krwlock_t *rw)
272 1.1 pooka {
273 1.63 pooka int rv;
274 1.1 pooka
275 1.63 pooka rv = rumpuser_rw_tryupgrade(RUMPRW(rw));
276 1.63 pooka if (rv == 0) {
277 1.63 pooka UNLOCKED(rw, 1);
278 1.65 njoly WANTLOCK(rw, 0);
279 1.63 pooka LOCKED(rw, 0);
280 1.63 pooka }
281 1.63 pooka return rv == 0;
282 1.1 pooka }
283 1.1 pooka
284 1.48 haad void
285 1.48 haad rw_downgrade(krwlock_t *rw)
286 1.48 haad {
287 1.48 haad
288 1.63 pooka rumpuser_rw_downgrade(RUMPRW(rw));
289 1.63 pooka UNLOCKED(rw, 0);
290 1.65 njoly WANTLOCK(rw, 1);
291 1.63 pooka LOCKED(rw, 1);
292 1.48 haad }
293 1.48 haad
294 1.6 pooka int
295 1.63 pooka rw_read_held(krwlock_t *rw)
296 1.6 pooka {
297 1.60 pooka int rv;
298 1.6 pooka
299 1.64 pooka rumpuser_rw_held(RUMPUSER_RW_READER, RUMPRW(rw), &rv);
300 1.60 pooka return rv;
301 1.10 ad }
302 1.10 ad
303 1.10 ad int
304 1.63 pooka rw_write_held(krwlock_t *rw)
305 1.10 ad {
306 1.60 pooka int rv;
307 1.10 ad
308 1.64 pooka rumpuser_rw_held(RUMPUSER_RW_WRITER, RUMPRW(rw), &rv);
309 1.60 pooka return rv;
310 1.10 ad }
311 1.10 ad
312 1.10 ad int
313 1.10 ad rw_lock_held(krwlock_t *rw)
314 1.10 ad {
315 1.10 ad
316 1.63 pooka return rw_read_held(rw) || rw_write_held(rw);
317 1.6 pooka }
318 1.6 pooka
319 1.1 pooka /* curriculum vitaes */
320 1.1 pooka
321 1.24 pooka #define RUMPCV(cv) (*(struct rumpuser_cv **)(cv))
322 1.1 pooka
323 1.1 pooka void
324 1.1 pooka cv_init(kcondvar_t *cv, const char *msg)
325 1.1 pooka {
326 1.1 pooka
327 1.25 pooka CTASSERT(sizeof(kcondvar_t) >= sizeof(void *));
328 1.25 pooka
329 1.24 pooka rumpuser_cv_init((struct rumpuser_cv **)cv);
330 1.1 pooka }
331 1.1 pooka
332 1.1 pooka void
333 1.1 pooka cv_destroy(kcondvar_t *cv)
334 1.1 pooka {
335 1.1 pooka
336 1.1 pooka rumpuser_cv_destroy(RUMPCV(cv));
337 1.1 pooka }
338 1.1 pooka
339 1.47 pooka static int
340 1.47 pooka docvwait(kcondvar_t *cv, kmutex_t *mtx, struct timespec *ts)
341 1.47 pooka {
342 1.47 pooka struct lwp *l = curlwp;
343 1.47 pooka int rv;
344 1.47 pooka
345 1.51 pooka if (__predict_false(l->l_flag & LW_RUMP_QEXIT)) {
346 1.47 pooka /*
347 1.50 pooka * yield() here, someone might want the cpu
348 1.50 pooka * to set a condition. otherwise we'll just
349 1.50 pooka * loop forever.
350 1.47 pooka */
351 1.50 pooka yield();
352 1.47 pooka return EINTR;
353 1.47 pooka }
354 1.47 pooka
355 1.47 pooka UNLOCKED(mtx, false);
356 1.47 pooka
357 1.47 pooka l->l_private = cv;
358 1.47 pooka rv = 0;
359 1.47 pooka if (ts) {
360 1.47 pooka if (rumpuser_cv_timedwait(RUMPCV(cv), RUMPMTX(mtx),
361 1.47 pooka ts->tv_sec, ts->tv_nsec))
362 1.47 pooka rv = EWOULDBLOCK;
363 1.47 pooka } else {
364 1.47 pooka rumpuser_cv_wait(RUMPCV(cv), RUMPMTX(mtx));
365 1.47 pooka }
366 1.47 pooka
367 1.52 pooka LOCKED(mtx, false);
368 1.52 pooka
369 1.47 pooka /*
370 1.51 pooka * Check for QEXIT. if so, we need to wait here until we
371 1.47 pooka * are allowed to exit.
372 1.47 pooka */
373 1.51 pooka if (__predict_false(l->l_flag & LW_RUMP_QEXIT)) {
374 1.47 pooka struct proc *p = l->l_proc;
375 1.47 pooka
376 1.47 pooka mutex_exit(mtx); /* drop and retake later */
377 1.47 pooka
378 1.47 pooka mutex_enter(p->p_lock);
379 1.51 pooka while ((p->p_sflag & PS_RUMP_LWPEXIT) == 0) {
380 1.47 pooka /* avoid recursion */
381 1.47 pooka rumpuser_cv_wait(RUMPCV(&p->p_waitcv),
382 1.47 pooka RUMPMTX(p->p_lock));
383 1.47 pooka }
384 1.51 pooka KASSERT(p->p_sflag & PS_RUMP_LWPEXIT);
385 1.47 pooka mutex_exit(p->p_lock);
386 1.47 pooka
387 1.47 pooka /* ok, we can exit and remove "reference" to l->private */
388 1.47 pooka
389 1.47 pooka mutex_enter(mtx);
390 1.47 pooka rv = EINTR;
391 1.47 pooka }
392 1.47 pooka l->l_private = NULL;
393 1.47 pooka
394 1.47 pooka return rv;
395 1.47 pooka }
396 1.47 pooka
397 1.1 pooka void
398 1.1 pooka cv_wait(kcondvar_t *cv, kmutex_t *mtx)
399 1.1 pooka {
400 1.1 pooka
401 1.42 pooka if (__predict_false(rump_threads == 0))
402 1.28 pooka panic("cv_wait without threads");
403 1.47 pooka (void) docvwait(cv, mtx, NULL);
404 1.1 pooka }
405 1.1 pooka
406 1.3 pooka int
407 1.5 pooka cv_wait_sig(kcondvar_t *cv, kmutex_t *mtx)
408 1.5 pooka {
409 1.5 pooka
410 1.42 pooka if (__predict_false(rump_threads == 0))
411 1.42 pooka panic("cv_wait without threads");
412 1.47 pooka return docvwait(cv, mtx, NULL);
413 1.5 pooka }
414 1.5 pooka
415 1.5 pooka int
416 1.3 pooka cv_timedwait(kcondvar_t *cv, kmutex_t *mtx, int ticks)
417 1.3 pooka {
418 1.58 pooka struct timespec ts;
419 1.3 pooka extern int hz;
420 1.45 pooka int rv;
421 1.27 pooka
422 1.9 pooka if (ticks == 0) {
423 1.47 pooka rv = cv_wait_sig(cv, mtx);
424 1.9 pooka } else {
425 1.58 pooka ts.tv_sec = ticks / hz;
426 1.58 pooka ts.tv_nsec = (ticks % hz) * (1000000000/hz);
427 1.47 pooka rv = docvwait(cv, mtx, &ts);
428 1.9 pooka }
429 1.5 pooka
430 1.45 pooka return rv;
431 1.5 pooka }
432 1.45 pooka __strong_alias(cv_timedwait_sig,cv_timedwait);
433 1.5 pooka
434 1.1 pooka void
435 1.1 pooka cv_signal(kcondvar_t *cv)
436 1.1 pooka {
437 1.1 pooka
438 1.1 pooka rumpuser_cv_signal(RUMPCV(cv));
439 1.1 pooka }
440 1.2 pooka
441 1.4 pooka void
442 1.4 pooka cv_broadcast(kcondvar_t *cv)
443 1.4 pooka {
444 1.4 pooka
445 1.4 pooka rumpuser_cv_broadcast(RUMPCV(cv));
446 1.4 pooka }
447 1.4 pooka
448 1.17 pooka bool
449 1.17 pooka cv_has_waiters(kcondvar_t *cv)
450 1.17 pooka {
451 1.60 pooka int rv;
452 1.17 pooka
453 1.60 pooka rumpuser_cv_has_waiters(RUMPCV(cv), &rv);
454 1.60 pooka return rv != 0;
455 1.17 pooka }
456 1.17 pooka
457 1.35 pooka /* this is not much of an attempt, but ... */
458 1.35 pooka bool
459 1.35 pooka cv_is_valid(kcondvar_t *cv)
460 1.35 pooka {
461 1.35 pooka
462 1.35 pooka return RUMPCV(cv) != NULL;
463 1.35 pooka }
464