linux_dma_fence.c revision 1.29 1 1.29 riastrad /* $NetBSD: linux_dma_fence.c,v 1.29 2021/12/19 12:30:56 riastradh Exp $ */
2 1.1 riastrad
3 1.1 riastrad /*-
4 1.1 riastrad * Copyright (c) 2018 The NetBSD Foundation, Inc.
5 1.1 riastrad * All rights reserved.
6 1.1 riastrad *
7 1.1 riastrad * This code is derived from software contributed to The NetBSD Foundation
8 1.1 riastrad * by Taylor R. Campbell.
9 1.1 riastrad *
10 1.1 riastrad * Redistribution and use in source and binary forms, with or without
11 1.1 riastrad * modification, are permitted provided that the following conditions
12 1.1 riastrad * are met:
13 1.1 riastrad * 1. Redistributions of source code must retain the above copyright
14 1.1 riastrad * notice, this list of conditions and the following disclaimer.
15 1.1 riastrad * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 riastrad * notice, this list of conditions and the following disclaimer in the
17 1.1 riastrad * documentation and/or other materials provided with the distribution.
18 1.1 riastrad *
19 1.1 riastrad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 riastrad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 riastrad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 riastrad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 riastrad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 riastrad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 riastrad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 riastrad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 riastrad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 riastrad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 riastrad * POSSIBILITY OF SUCH DAMAGE.
30 1.1 riastrad */
31 1.1 riastrad
32 1.1 riastrad #include <sys/cdefs.h>
33 1.29 riastrad __KERNEL_RCSID(0, "$NetBSD: linux_dma_fence.c,v 1.29 2021/12/19 12:30:56 riastradh Exp $");
34 1.1 riastrad
35 1.1 riastrad #include <sys/atomic.h>
36 1.1 riastrad #include <sys/condvar.h>
37 1.1 riastrad #include <sys/queue.h>
38 1.1 riastrad
39 1.1 riastrad #include <linux/atomic.h>
40 1.2 riastrad #include <linux/dma-fence.h>
41 1.1 riastrad #include <linux/errno.h>
42 1.1 riastrad #include <linux/kref.h>
43 1.1 riastrad #include <linux/sched.h>
44 1.1 riastrad #include <linux/spinlock.h>
45 1.1 riastrad
46 1.24 riastrad #define FENCE_MAGIC_GOOD 0x607ba424048c37e5ULL
47 1.24 riastrad #define FENCE_MAGIC_BAD 0x7641ca721344505fULL
48 1.24 riastrad
49 1.1 riastrad /*
50 1.2 riastrad * linux_dma_fence_trace
51 1.1 riastrad *
52 1.2 riastrad * True if we print DMA_FENCE_TRACE messages, false if not. These
53 1.2 riastrad * are extremely noisy, too much even for AB_VERBOSE and AB_DEBUG
54 1.2 riastrad * in boothowto.
55 1.1 riastrad */
56 1.2 riastrad int linux_dma_fence_trace = 0;
57 1.1 riastrad
58 1.1 riastrad /*
59 1.2 riastrad * dma_fence_referenced_p(fence)
60 1.1 riastrad *
61 1.1 riastrad * True if fence has a positive reference count. True after
62 1.2 riastrad * dma_fence_init; after the last dma_fence_put, this becomes
63 1.24 riastrad * false. The fence must have been initialized and must not have
64 1.24 riastrad * been destroyed.
65 1.1 riastrad */
66 1.1 riastrad static inline bool __diagused
67 1.2 riastrad dma_fence_referenced_p(struct dma_fence *fence)
68 1.1 riastrad {
69 1.1 riastrad
70 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
71 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
72 1.24 riastrad
73 1.1 riastrad return kref_referenced_p(&fence->refcount);
74 1.1 riastrad }
75 1.1 riastrad
76 1.1 riastrad /*
77 1.2 riastrad * dma_fence_init(fence, ops, lock, context, seqno)
78 1.1 riastrad *
79 1.2 riastrad * Initialize fence. Caller should call dma_fence_destroy when
80 1.2 riastrad * done, after all references have been released.
81 1.1 riastrad */
82 1.1 riastrad void
83 1.2 riastrad dma_fence_init(struct dma_fence *fence, const struct dma_fence_ops *ops,
84 1.2 riastrad spinlock_t *lock, unsigned context, unsigned seqno)
85 1.1 riastrad {
86 1.1 riastrad
87 1.1 riastrad kref_init(&fence->refcount);
88 1.1 riastrad fence->lock = lock;
89 1.1 riastrad fence->flags = 0;
90 1.1 riastrad fence->context = context;
91 1.1 riastrad fence->seqno = seqno;
92 1.1 riastrad fence->ops = ops;
93 1.18 riastrad fence->error = 0;
94 1.1 riastrad TAILQ_INIT(&fence->f_callbacks);
95 1.2 riastrad cv_init(&fence->f_cv, "dmafence");
96 1.24 riastrad
97 1.24 riastrad #ifdef DIAGNOSTIC
98 1.24 riastrad fence->f_magic = FENCE_MAGIC_GOOD;
99 1.24 riastrad #endif
100 1.1 riastrad }
101 1.1 riastrad
102 1.1 riastrad /*
103 1.18 riastrad * dma_fence_reset(fence)
104 1.18 riastrad *
105 1.18 riastrad * Ensure fence is in a quiescent state. Allowed either for newly
106 1.18 riastrad * initialized or freed fences, but not fences with more than one
107 1.18 riastrad * reference.
108 1.18 riastrad *
109 1.18 riastrad * XXX extension to Linux API
110 1.18 riastrad */
111 1.18 riastrad void
112 1.18 riastrad dma_fence_reset(struct dma_fence *fence, const struct dma_fence_ops *ops,
113 1.18 riastrad spinlock_t *lock, unsigned context, unsigned seqno)
114 1.18 riastrad {
115 1.18 riastrad
116 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
117 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
118 1.18 riastrad KASSERT(kref_read(&fence->refcount) == 0 ||
119 1.18 riastrad kref_read(&fence->refcount) == 1);
120 1.18 riastrad KASSERT(TAILQ_EMPTY(&fence->f_callbacks));
121 1.18 riastrad KASSERT(fence->lock == lock);
122 1.18 riastrad KASSERT(fence->ops == ops);
123 1.18 riastrad
124 1.18 riastrad kref_init(&fence->refcount);
125 1.18 riastrad fence->flags = 0;
126 1.18 riastrad fence->context = context;
127 1.18 riastrad fence->seqno = seqno;
128 1.18 riastrad fence->error = 0;
129 1.18 riastrad }
130 1.18 riastrad
131 1.18 riastrad /*
132 1.2 riastrad * dma_fence_destroy(fence)
133 1.1 riastrad *
134 1.2 riastrad * Clean up memory initialized with dma_fence_init. This is meant
135 1.2 riastrad * to be used after a fence release callback.
136 1.19 riastrad *
137 1.19 riastrad * XXX extension to Linux API
138 1.1 riastrad */
139 1.1 riastrad void
140 1.2 riastrad dma_fence_destroy(struct dma_fence *fence)
141 1.1 riastrad {
142 1.1 riastrad
143 1.2 riastrad KASSERT(!dma_fence_referenced_p(fence));
144 1.1 riastrad
145 1.24 riastrad #ifdef DIAGNOSTIC
146 1.24 riastrad fence->f_magic = FENCE_MAGIC_BAD;
147 1.24 riastrad #endif
148 1.24 riastrad
149 1.1 riastrad KASSERT(TAILQ_EMPTY(&fence->f_callbacks));
150 1.1 riastrad cv_destroy(&fence->f_cv);
151 1.1 riastrad }
152 1.1 riastrad
153 1.1 riastrad static void
154 1.2 riastrad dma_fence_free_cb(struct rcu_head *rcu)
155 1.1 riastrad {
156 1.19 riastrad struct dma_fence *fence = container_of(rcu, struct dma_fence, rcu);
157 1.1 riastrad
158 1.2 riastrad KASSERT(!dma_fence_referenced_p(fence));
159 1.1 riastrad
160 1.2 riastrad dma_fence_destroy(fence);
161 1.1 riastrad kfree(fence);
162 1.1 riastrad }
163 1.1 riastrad
164 1.1 riastrad /*
165 1.2 riastrad * dma_fence_free(fence)
166 1.1 riastrad *
167 1.1 riastrad * Schedule fence to be destroyed and then freed with kfree after
168 1.1 riastrad * any pending RCU read sections on all CPUs have completed.
169 1.1 riastrad * Caller must guarantee all references have been released. This
170 1.1 riastrad * is meant to be used after a fence release callback.
171 1.1 riastrad *
172 1.1 riastrad * NOTE: Callers assume kfree will be used. We don't even use
173 1.1 riastrad * kmalloc to allocate these -- caller is expected to allocate
174 1.2 riastrad * memory with kmalloc to be initialized with dma_fence_init.
175 1.1 riastrad */
176 1.1 riastrad void
177 1.2 riastrad dma_fence_free(struct dma_fence *fence)
178 1.1 riastrad {
179 1.1 riastrad
180 1.2 riastrad KASSERT(!dma_fence_referenced_p(fence));
181 1.1 riastrad
182 1.19 riastrad call_rcu(&fence->rcu, &dma_fence_free_cb);
183 1.1 riastrad }
184 1.1 riastrad
185 1.1 riastrad /*
186 1.2 riastrad * dma_fence_context_alloc(n)
187 1.1 riastrad *
188 1.1 riastrad * Return the first of a contiguous sequence of unique
189 1.1 riastrad * identifiers, at least until the system wraps around.
190 1.1 riastrad */
191 1.1 riastrad unsigned
192 1.2 riastrad dma_fence_context_alloc(unsigned n)
193 1.1 riastrad {
194 1.1 riastrad static volatile unsigned next_context = 0;
195 1.1 riastrad
196 1.1 riastrad return atomic_add_int_nv(&next_context, n) - n;
197 1.1 riastrad }
198 1.1 riastrad
199 1.1 riastrad /*
200 1.2 riastrad * dma_fence_is_later(a, b)
201 1.1 riastrad *
202 1.1 riastrad * True if the sequence number of fence a is later than the
203 1.1 riastrad * sequence number of fence b. Since sequence numbers wrap
204 1.1 riastrad * around, we define this to mean that the sequence number of
205 1.1 riastrad * fence a is no more than INT_MAX past the sequence number of
206 1.1 riastrad * fence b.
207 1.1 riastrad *
208 1.1 riastrad * The two fences must have the same context.
209 1.1 riastrad */
210 1.1 riastrad bool
211 1.2 riastrad dma_fence_is_later(struct dma_fence *a, struct dma_fence *b)
212 1.1 riastrad {
213 1.1 riastrad
214 1.24 riastrad KASSERTMSG(a->f_magic != FENCE_MAGIC_BAD, "fence %p", a);
215 1.24 riastrad KASSERTMSG(a->f_magic == FENCE_MAGIC_GOOD, "fence %p", a);
216 1.24 riastrad KASSERTMSG(b->f_magic != FENCE_MAGIC_BAD, "fence %p", b);
217 1.24 riastrad KASSERTMSG(b->f_magic == FENCE_MAGIC_GOOD, "fence %p", b);
218 1.1 riastrad KASSERTMSG(a->context == b->context, "incommensurate fences"
219 1.1 riastrad ": %u @ %p =/= %u @ %p", a->context, a, b->context, b);
220 1.1 riastrad
221 1.1 riastrad return a->seqno - b->seqno < INT_MAX;
222 1.1 riastrad }
223 1.1 riastrad
224 1.1 riastrad /*
225 1.9 riastrad * dma_fence_get_stub()
226 1.9 riastrad *
227 1.9 riastrad * Return a dma fence that is always already signalled.
228 1.9 riastrad */
229 1.9 riastrad struct dma_fence *
230 1.9 riastrad dma_fence_get_stub(void)
231 1.9 riastrad {
232 1.9 riastrad /*
233 1.9 riastrad * XXX This probably isn't good enough -- caller may try
234 1.9 riastrad * operations on this that require the lock, which will
235 1.9 riastrad * require us to create and destroy the lock on module
236 1.9 riastrad * load/unload.
237 1.9 riastrad */
238 1.9 riastrad static struct dma_fence fence = {
239 1.9 riastrad .refcount = {1}, /* always referenced */
240 1.9 riastrad .flags = 1u << DMA_FENCE_FLAG_SIGNALED_BIT,
241 1.29 riastrad #ifdef DIAGNOSTIC
242 1.29 riastrad .f_magic = FENCE_MAGIC_GOOD,
243 1.29 riastrad #endif
244 1.9 riastrad };
245 1.9 riastrad
246 1.9 riastrad return dma_fence_get(&fence);
247 1.9 riastrad }
248 1.9 riastrad
249 1.9 riastrad /*
250 1.2 riastrad * dma_fence_get(fence)
251 1.1 riastrad *
252 1.26 riastrad * Acquire a reference to fence and return it, or return NULL if
253 1.26 riastrad * fence is NULL. The fence, if nonnull, must not be being
254 1.26 riastrad * destroyed.
255 1.1 riastrad */
256 1.2 riastrad struct dma_fence *
257 1.2 riastrad dma_fence_get(struct dma_fence *fence)
258 1.1 riastrad {
259 1.1 riastrad
260 1.26 riastrad if (fence == NULL)
261 1.26 riastrad return NULL;
262 1.26 riastrad
263 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
264 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
265 1.24 riastrad
266 1.26 riastrad kref_get(&fence->refcount);
267 1.1 riastrad return fence;
268 1.1 riastrad }
269 1.1 riastrad
270 1.1 riastrad /*
271 1.2 riastrad * dma_fence_get_rcu(fence)
272 1.1 riastrad *
273 1.1 riastrad * Attempt to acquire a reference to a fence that may be about to
274 1.1 riastrad * be destroyed, during a read section. Return the fence on
275 1.26 riastrad * success, or NULL on failure. The fence must be nonnull.
276 1.1 riastrad */
277 1.2 riastrad struct dma_fence *
278 1.2 riastrad dma_fence_get_rcu(struct dma_fence *fence)
279 1.1 riastrad {
280 1.1 riastrad
281 1.8 riastrad __insn_barrier();
282 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
283 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
284 1.1 riastrad if (!kref_get_unless_zero(&fence->refcount))
285 1.1 riastrad return NULL;
286 1.1 riastrad return fence;
287 1.1 riastrad }
288 1.1 riastrad
289 1.3 riastrad /*
290 1.3 riastrad * dma_fence_get_rcu_safe(fencep)
291 1.3 riastrad *
292 1.3 riastrad * Attempt to acquire a reference to the fence *fencep, which may
293 1.3 riastrad * be about to be destroyed, during a read section. If the value
294 1.3 riastrad * of *fencep changes after we read *fencep but before we
295 1.3 riastrad * increment its reference count, retry. Return *fencep on
296 1.3 riastrad * success, or NULL on failure.
297 1.3 riastrad */
298 1.3 riastrad struct dma_fence *
299 1.7 riastrad dma_fence_get_rcu_safe(struct dma_fence *volatile const *fencep)
300 1.3 riastrad {
301 1.3 riastrad struct dma_fence *fence, *fence0;
302 1.3 riastrad
303 1.3 riastrad retry:
304 1.3 riastrad fence = *fencep;
305 1.3 riastrad
306 1.3 riastrad /* Load fence only once. */
307 1.3 riastrad __insn_barrier();
308 1.3 riastrad
309 1.3 riastrad /* If there's nothing there, give up. */
310 1.3 riastrad if (fence == NULL)
311 1.3 riastrad return NULL;
312 1.3 riastrad
313 1.3 riastrad /* Make sure we don't load stale fence guts. */
314 1.3 riastrad membar_datadep_consumer();
315 1.3 riastrad
316 1.3 riastrad /* Try to acquire a reference. If we can't, try again. */
317 1.3 riastrad if (!dma_fence_get_rcu(fence))
318 1.3 riastrad goto retry;
319 1.3 riastrad
320 1.3 riastrad /*
321 1.3 riastrad * Confirm that it's still the same fence. If not, release it
322 1.3 riastrad * and retry.
323 1.3 riastrad */
324 1.3 riastrad fence0 = *fencep;
325 1.3 riastrad __insn_barrier();
326 1.3 riastrad if (fence != fence0) {
327 1.3 riastrad dma_fence_put(fence);
328 1.3 riastrad goto retry;
329 1.3 riastrad }
330 1.3 riastrad
331 1.3 riastrad /* Success! */
332 1.24 riastrad KASSERT(dma_fence_referenced_p(fence));
333 1.3 riastrad return fence;
334 1.3 riastrad }
335 1.3 riastrad
336 1.1 riastrad static void
337 1.2 riastrad dma_fence_release(struct kref *refcount)
338 1.1 riastrad {
339 1.2 riastrad struct dma_fence *fence = container_of(refcount, struct dma_fence,
340 1.2 riastrad refcount);
341 1.1 riastrad
342 1.23 riastrad KASSERTMSG(TAILQ_EMPTY(&fence->f_callbacks),
343 1.23 riastrad "fence %p has pending callbacks", fence);
344 1.2 riastrad KASSERT(!dma_fence_referenced_p(fence));
345 1.1 riastrad
346 1.1 riastrad if (fence->ops->release)
347 1.1 riastrad (*fence->ops->release)(fence);
348 1.1 riastrad else
349 1.2 riastrad dma_fence_free(fence);
350 1.1 riastrad }
351 1.1 riastrad
352 1.1 riastrad /*
353 1.2 riastrad * dma_fence_put(fence)
354 1.1 riastrad *
355 1.1 riastrad * Release a reference to fence. If this was the last one, call
356 1.1 riastrad * the fence's release callback.
357 1.1 riastrad */
358 1.1 riastrad void
359 1.2 riastrad dma_fence_put(struct dma_fence *fence)
360 1.1 riastrad {
361 1.1 riastrad
362 1.1 riastrad if (fence == NULL)
363 1.1 riastrad return;
364 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
365 1.2 riastrad kref_put(&fence->refcount, &dma_fence_release);
366 1.1 riastrad }
367 1.1 riastrad
368 1.1 riastrad /*
369 1.2 riastrad * dma_fence_ensure_signal_enabled(fence)
370 1.1 riastrad *
371 1.1 riastrad * Internal subroutine. If the fence was already signalled,
372 1.1 riastrad * return -ENOENT. Otherwise, if the enable signalling callback
373 1.1 riastrad * has not been called yet, call it. If fails, signal the fence
374 1.1 riastrad * and return -ENOENT. If it succeeds, or if it had already been
375 1.1 riastrad * called, return zero to indicate success.
376 1.1 riastrad *
377 1.1 riastrad * Caller must hold the fence's lock.
378 1.1 riastrad */
379 1.1 riastrad static int
380 1.2 riastrad dma_fence_ensure_signal_enabled(struct dma_fence *fence)
381 1.1 riastrad {
382 1.20 riastrad bool already_enabled;
383 1.1 riastrad
384 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
385 1.1 riastrad KASSERT(spin_is_locked(fence->lock));
386 1.1 riastrad
387 1.20 riastrad /* Determine whether signalling was enabled, and enable it. */
388 1.20 riastrad already_enabled = test_and_set_bit(DMA_FENCE_FLAG_ENABLE_SIGNAL_BIT,
389 1.20 riastrad &fence->flags);
390 1.20 riastrad
391 1.1 riastrad /* If the fence was already signalled, fail with -ENOENT. */
392 1.2 riastrad if (fence->flags & (1u << DMA_FENCE_FLAG_SIGNALED_BIT))
393 1.1 riastrad return -ENOENT;
394 1.1 riastrad
395 1.1 riastrad /*
396 1.20 riastrad * Otherwise, if it wasn't enabled yet, try to enable
397 1.20 riastrad * signalling, or fail if the fence doesn't support that.
398 1.1 riastrad */
399 1.20 riastrad if (!already_enabled) {
400 1.20 riastrad if (fence->ops->enable_signaling == NULL)
401 1.20 riastrad return -ENOENT;
402 1.20 riastrad if (!(*fence->ops->enable_signaling)(fence)) {
403 1.20 riastrad /* If it failed, signal and return -ENOENT. */
404 1.20 riastrad dma_fence_signal_locked(fence);
405 1.20 riastrad return -ENOENT;
406 1.20 riastrad }
407 1.1 riastrad }
408 1.1 riastrad
409 1.1 riastrad /* Success! */
410 1.1 riastrad return 0;
411 1.1 riastrad }
412 1.1 riastrad
413 1.1 riastrad /*
414 1.2 riastrad * dma_fence_add_callback(fence, fcb, fn)
415 1.1 riastrad *
416 1.1 riastrad * If fence has been signalled, return -ENOENT. If the enable
417 1.1 riastrad * signalling callback hasn't been called yet, call it; if it
418 1.1 riastrad * fails, return -ENOENT. Otherwise, arrange to call fn(fence,
419 1.1 riastrad * fcb) when it is signalled, and return 0.
420 1.1 riastrad *
421 1.1 riastrad * The fence uses memory allocated by the caller in fcb from the
422 1.2 riastrad * time of dma_fence_add_callback either to the time of
423 1.2 riastrad * dma_fence_remove_callback, or just before calling fn.
424 1.1 riastrad */
425 1.1 riastrad int
426 1.2 riastrad dma_fence_add_callback(struct dma_fence *fence, struct dma_fence_cb *fcb,
427 1.2 riastrad dma_fence_func_t fn)
428 1.1 riastrad {
429 1.1 riastrad int ret;
430 1.1 riastrad
431 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
432 1.1 riastrad
433 1.1 riastrad /* Optimistically try to skip the lock if it's already signalled. */
434 1.2 riastrad if (fence->flags & (1u << DMA_FENCE_FLAG_SIGNALED_BIT)) {
435 1.1 riastrad ret = -ENOENT;
436 1.1 riastrad goto out0;
437 1.1 riastrad }
438 1.1 riastrad
439 1.1 riastrad /* Acquire the lock. */
440 1.1 riastrad spin_lock(fence->lock);
441 1.1 riastrad
442 1.1 riastrad /* Ensure signalling is enabled, or fail if we can't. */
443 1.2 riastrad ret = dma_fence_ensure_signal_enabled(fence);
444 1.1 riastrad if (ret)
445 1.1 riastrad goto out1;
446 1.1 riastrad
447 1.1 riastrad /* Insert the callback. */
448 1.4 riastrad fcb->func = fn;
449 1.1 riastrad TAILQ_INSERT_TAIL(&fence->f_callbacks, fcb, fcb_entry);
450 1.1 riastrad fcb->fcb_onqueue = true;
451 1.21 riastrad ret = 0;
452 1.1 riastrad
453 1.1 riastrad /* Release the lock and we're done. */
454 1.1 riastrad out1: spin_unlock(fence->lock);
455 1.21 riastrad out0: if (ret) {
456 1.21 riastrad fcb->func = NULL;
457 1.21 riastrad fcb->fcb_onqueue = false;
458 1.21 riastrad }
459 1.21 riastrad return ret;
460 1.1 riastrad }
461 1.1 riastrad
462 1.1 riastrad /*
463 1.2 riastrad * dma_fence_remove_callback(fence, fcb)
464 1.1 riastrad *
465 1.1 riastrad * Remove the callback fcb from fence. Return true if it was
466 1.1 riastrad * removed from the list, or false if it had already run and so
467 1.1 riastrad * was no longer queued anyway. Caller must have already called
468 1.2 riastrad * dma_fence_add_callback(fence, fcb).
469 1.1 riastrad */
470 1.1 riastrad bool
471 1.2 riastrad dma_fence_remove_callback(struct dma_fence *fence, struct dma_fence_cb *fcb)
472 1.1 riastrad {
473 1.1 riastrad bool onqueue;
474 1.1 riastrad
475 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
476 1.1 riastrad
477 1.1 riastrad spin_lock(fence->lock);
478 1.1 riastrad onqueue = fcb->fcb_onqueue;
479 1.1 riastrad if (onqueue) {
480 1.1 riastrad TAILQ_REMOVE(&fence->f_callbacks, fcb, fcb_entry);
481 1.1 riastrad fcb->fcb_onqueue = false;
482 1.1 riastrad }
483 1.1 riastrad spin_unlock(fence->lock);
484 1.1 riastrad
485 1.1 riastrad return onqueue;
486 1.1 riastrad }
487 1.1 riastrad
488 1.1 riastrad /*
489 1.2 riastrad * dma_fence_enable_sw_signaling(fence)
490 1.1 riastrad *
491 1.1 riastrad * If it hasn't been called yet and the fence hasn't been
492 1.1 riastrad * signalled yet, call the fence's enable_sw_signaling callback.
493 1.1 riastrad * If when that happens, the callback indicates failure by
494 1.1 riastrad * returning false, signal the fence.
495 1.1 riastrad */
496 1.1 riastrad void
497 1.2 riastrad dma_fence_enable_sw_signaling(struct dma_fence *fence)
498 1.1 riastrad {
499 1.1 riastrad
500 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
501 1.1 riastrad
502 1.1 riastrad spin_lock(fence->lock);
503 1.22 riastrad if ((fence->flags & (1u << DMA_FENCE_FLAG_SIGNALED_BIT)) == 0)
504 1.22 riastrad (void)dma_fence_ensure_signal_enabled(fence);
505 1.1 riastrad spin_unlock(fence->lock);
506 1.1 riastrad }
507 1.1 riastrad
508 1.1 riastrad /*
509 1.2 riastrad * dma_fence_is_signaled(fence)
510 1.1 riastrad *
511 1.1 riastrad * Test whether the fence has been signalled. If it has been
512 1.2 riastrad * signalled by dma_fence_signal(_locked), return true. If the
513 1.1 riastrad * signalled callback returns true indicating that some implicit
514 1.1 riastrad * external condition has changed, call the callbacks as if with
515 1.2 riastrad * dma_fence_signal.
516 1.1 riastrad */
517 1.1 riastrad bool
518 1.2 riastrad dma_fence_is_signaled(struct dma_fence *fence)
519 1.1 riastrad {
520 1.1 riastrad bool signaled;
521 1.1 riastrad
522 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
523 1.1 riastrad
524 1.1 riastrad spin_lock(fence->lock);
525 1.2 riastrad signaled = dma_fence_is_signaled_locked(fence);
526 1.1 riastrad spin_unlock(fence->lock);
527 1.1 riastrad
528 1.1 riastrad return signaled;
529 1.1 riastrad }
530 1.1 riastrad
531 1.1 riastrad /*
532 1.2 riastrad * dma_fence_is_signaled_locked(fence)
533 1.1 riastrad *
534 1.1 riastrad * Test whether the fence has been signalled. Like
535 1.2 riastrad * dma_fence_is_signaleed, but caller already holds the fence's lock.
536 1.1 riastrad */
537 1.1 riastrad bool
538 1.2 riastrad dma_fence_is_signaled_locked(struct dma_fence *fence)
539 1.1 riastrad {
540 1.1 riastrad
541 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
542 1.1 riastrad KASSERT(spin_is_locked(fence->lock));
543 1.1 riastrad
544 1.1 riastrad /* Check whether we already set the signalled bit. */
545 1.2 riastrad if (fence->flags & (1u << DMA_FENCE_FLAG_SIGNALED_BIT))
546 1.1 riastrad return true;
547 1.1 riastrad
548 1.1 riastrad /* If there's a signalled callback, test it. */
549 1.1 riastrad if (fence->ops->signaled) {
550 1.1 riastrad if ((*fence->ops->signaled)(fence)) {
551 1.1 riastrad /*
552 1.1 riastrad * It's been signalled implicitly by some
553 1.1 riastrad * external phenomonen. Act as though someone
554 1.2 riastrad * has called dma_fence_signal.
555 1.1 riastrad */
556 1.2 riastrad dma_fence_signal_locked(fence);
557 1.1 riastrad return true;
558 1.1 riastrad }
559 1.1 riastrad }
560 1.1 riastrad
561 1.1 riastrad return false;
562 1.1 riastrad }
563 1.1 riastrad
564 1.1 riastrad /*
565 1.5 riastrad * dma_fence_set_error(fence, error)
566 1.5 riastrad *
567 1.5 riastrad * Set an error code prior to dma_fence_signal for use by a
568 1.5 riastrad * waiter to learn about success or failure of the fence.
569 1.5 riastrad */
570 1.5 riastrad void
571 1.5 riastrad dma_fence_set_error(struct dma_fence *fence, int error)
572 1.5 riastrad {
573 1.5 riastrad
574 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
575 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
576 1.5 riastrad KASSERT(!(fence->flags & (1u << DMA_FENCE_FLAG_SIGNALED_BIT)));
577 1.6 riastrad KASSERTMSG(error >= -ELAST, "%d", error);
578 1.5 riastrad KASSERTMSG(error < 0, "%d", error);
579 1.5 riastrad
580 1.5 riastrad fence->error = error;
581 1.5 riastrad }
582 1.5 riastrad
583 1.5 riastrad /*
584 1.10 riastrad * dma_fence_get_status(fence)
585 1.10 riastrad *
586 1.10 riastrad * Return 0 if fence has yet to be signalled, 1 if it has been
587 1.10 riastrad * signalled without error, or negative error code if
588 1.10 riastrad * dma_fence_set_error was used.
589 1.10 riastrad */
590 1.10 riastrad int
591 1.10 riastrad dma_fence_get_status(struct dma_fence *fence)
592 1.10 riastrad {
593 1.10 riastrad int ret;
594 1.10 riastrad
595 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
596 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
597 1.24 riastrad
598 1.10 riastrad spin_lock(fence->lock);
599 1.10 riastrad if (!dma_fence_is_signaled_locked(fence)) {
600 1.10 riastrad ret = 0;
601 1.10 riastrad } else if (fence->error) {
602 1.10 riastrad ret = fence->error;
603 1.10 riastrad KASSERTMSG(ret < 0, "%d", ret);
604 1.10 riastrad } else {
605 1.10 riastrad ret = 1;
606 1.10 riastrad }
607 1.10 riastrad spin_unlock(fence->lock);
608 1.10 riastrad
609 1.10 riastrad return ret;
610 1.10 riastrad }
611 1.10 riastrad
612 1.10 riastrad /*
613 1.2 riastrad * dma_fence_signal(fence)
614 1.1 riastrad *
615 1.1 riastrad * Signal the fence. If it has already been signalled, return
616 1.1 riastrad * -EINVAL. If it has not been signalled, call the enable
617 1.1 riastrad * signalling callback if it hasn't been called yet, and remove
618 1.1 riastrad * each registered callback from the queue and call it; then
619 1.1 riastrad * return 0.
620 1.1 riastrad */
621 1.1 riastrad int
622 1.2 riastrad dma_fence_signal(struct dma_fence *fence)
623 1.1 riastrad {
624 1.1 riastrad int ret;
625 1.1 riastrad
626 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
627 1.1 riastrad
628 1.1 riastrad spin_lock(fence->lock);
629 1.2 riastrad ret = dma_fence_signal_locked(fence);
630 1.1 riastrad spin_unlock(fence->lock);
631 1.1 riastrad
632 1.1 riastrad return ret;
633 1.1 riastrad }
634 1.1 riastrad
635 1.1 riastrad /*
636 1.2 riastrad * dma_fence_signal_locked(fence)
637 1.1 riastrad *
638 1.2 riastrad * Signal the fence. Like dma_fence_signal, but caller already
639 1.2 riastrad * holds the fence's lock.
640 1.1 riastrad */
641 1.1 riastrad int
642 1.2 riastrad dma_fence_signal_locked(struct dma_fence *fence)
643 1.1 riastrad {
644 1.2 riastrad struct dma_fence_cb *fcb, *next;
645 1.1 riastrad
646 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
647 1.1 riastrad KASSERT(spin_is_locked(fence->lock));
648 1.1 riastrad
649 1.1 riastrad /* If it's been signalled, fail; otherwise set the signalled bit. */
650 1.2 riastrad if (test_and_set_bit(DMA_FENCE_FLAG_SIGNALED_BIT, &fence->flags))
651 1.1 riastrad return -EINVAL;
652 1.1 riastrad
653 1.25 riastrad /* Set the timestamp. */
654 1.25 riastrad fence->timestamp = ktime_get();
655 1.25 riastrad set_bit(DMA_FENCE_FLAG_TIMESTAMP_BIT, &fence->flags);
656 1.25 riastrad
657 1.1 riastrad /* Wake waiters. */
658 1.1 riastrad cv_broadcast(&fence->f_cv);
659 1.1 riastrad
660 1.1 riastrad /* Remove and call the callbacks. */
661 1.1 riastrad TAILQ_FOREACH_SAFE(fcb, &fence->f_callbacks, fcb_entry, next) {
662 1.1 riastrad TAILQ_REMOVE(&fence->f_callbacks, fcb, fcb_entry);
663 1.1 riastrad fcb->fcb_onqueue = false;
664 1.4 riastrad (*fcb->func)(fence, fcb);
665 1.1 riastrad }
666 1.1 riastrad
667 1.1 riastrad /* Success! */
668 1.1 riastrad return 0;
669 1.1 riastrad }
670 1.1 riastrad
671 1.1 riastrad struct wait_any {
672 1.2 riastrad struct dma_fence_cb fcb;
673 1.1 riastrad struct wait_any1 {
674 1.1 riastrad kmutex_t lock;
675 1.1 riastrad kcondvar_t cv;
676 1.1 riastrad bool done;
677 1.11 riastrad uint32_t *ip;
678 1.11 riastrad struct wait_any *cb;
679 1.1 riastrad } *common;
680 1.1 riastrad };
681 1.1 riastrad
682 1.1 riastrad static void
683 1.2 riastrad wait_any_cb(struct dma_fence *fence, struct dma_fence_cb *fcb)
684 1.1 riastrad {
685 1.1 riastrad struct wait_any *cb = container_of(fcb, struct wait_any, fcb);
686 1.1 riastrad
687 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
688 1.1 riastrad
689 1.1 riastrad mutex_enter(&cb->common->lock);
690 1.1 riastrad cb->common->done = true;
691 1.11 riastrad if (cb->common->ip)
692 1.11 riastrad *cb->common->ip = cb - cb->common->cb;
693 1.1 riastrad cv_broadcast(&cb->common->cv);
694 1.1 riastrad mutex_exit(&cb->common->lock);
695 1.1 riastrad }
696 1.1 riastrad
697 1.1 riastrad /*
698 1.11 riastrad * dma_fence_wait_any_timeout(fence, nfences, intr, timeout, ip)
699 1.1 riastrad *
700 1.1 riastrad * Wait for any of fences[0], fences[1], fences[2], ...,
701 1.13 riastrad * fences[nfences-1] to be signalled. If ip is nonnull, set *ip
702 1.13 riastrad * to the index of the first one.
703 1.1 riastrad */
704 1.1 riastrad long
705 1.2 riastrad dma_fence_wait_any_timeout(struct dma_fence **fences, uint32_t nfences,
706 1.11 riastrad bool intr, long timeout, uint32_t *ip)
707 1.1 riastrad {
708 1.1 riastrad struct wait_any1 common;
709 1.1 riastrad struct wait_any *cb;
710 1.1 riastrad uint32_t i, j;
711 1.1 riastrad int start, end;
712 1.1 riastrad long ret = 0;
713 1.1 riastrad
714 1.1 riastrad /* Allocate an array of callback records. */
715 1.1 riastrad cb = kcalloc(nfences, sizeof(cb[0]), GFP_KERNEL);
716 1.1 riastrad if (cb == NULL) {
717 1.1 riastrad ret = -ENOMEM;
718 1.1 riastrad goto out0;
719 1.1 riastrad }
720 1.1 riastrad
721 1.1 riastrad /* Initialize a mutex and condvar for the common wait. */
722 1.1 riastrad mutex_init(&common.lock, MUTEX_DEFAULT, IPL_VM);
723 1.1 riastrad cv_init(&common.cv, "fence");
724 1.1 riastrad common.done = false;
725 1.11 riastrad common.ip = ip;
726 1.11 riastrad common.cb = cb;
727 1.1 riastrad
728 1.1 riastrad /* Add a callback to each of the fences, or stop here if we can't. */
729 1.1 riastrad for (i = 0; i < nfences; i++) {
730 1.1 riastrad cb[i].common = &common;
731 1.2 riastrad KASSERT(dma_fence_referenced_p(fences[i]));
732 1.2 riastrad ret = dma_fence_add_callback(fences[i], &cb[i].fcb,
733 1.2 riastrad &wait_any_cb);
734 1.1 riastrad if (ret)
735 1.1 riastrad goto out1;
736 1.1 riastrad }
737 1.1 riastrad
738 1.1 riastrad /*
739 1.1 riastrad * Test whether any of the fences has been signalled. If they
740 1.1 riastrad * have, stop here. If the haven't, we are guaranteed to be
741 1.1 riastrad * notified by one of the callbacks when they have.
742 1.1 riastrad */
743 1.1 riastrad for (j = 0; j < nfences; j++) {
744 1.11 riastrad if (test_bit(DMA_FENCE_FLAG_SIGNALED_BIT, &fences[j]->flags)) {
745 1.11 riastrad if (ip)
746 1.11 riastrad *ip = j;
747 1.11 riastrad ret = 0;
748 1.1 riastrad goto out1;
749 1.11 riastrad }
750 1.1 riastrad }
751 1.1 riastrad
752 1.1 riastrad /*
753 1.1 riastrad * None of them was ready immediately. Wait for one of the
754 1.1 riastrad * callbacks to notify us when it is done.
755 1.1 riastrad */
756 1.1 riastrad mutex_enter(&common.lock);
757 1.1 riastrad while (timeout > 0 && !common.done) {
758 1.1 riastrad start = getticks();
759 1.1 riastrad __insn_barrier();
760 1.1 riastrad if (intr) {
761 1.1 riastrad if (timeout != MAX_SCHEDULE_TIMEOUT) {
762 1.1 riastrad ret = -cv_timedwait_sig(&common.cv,
763 1.1 riastrad &common.lock, MIN(timeout, /* paranoia */
764 1.1 riastrad MAX_SCHEDULE_TIMEOUT));
765 1.1 riastrad } else {
766 1.1 riastrad ret = -cv_wait_sig(&common.cv, &common.lock);
767 1.1 riastrad }
768 1.1 riastrad } else {
769 1.1 riastrad if (timeout != MAX_SCHEDULE_TIMEOUT) {
770 1.1 riastrad ret = -cv_timedwait(&common.cv,
771 1.1 riastrad &common.lock, MIN(timeout, /* paranoia */
772 1.1 riastrad MAX_SCHEDULE_TIMEOUT));
773 1.1 riastrad } else {
774 1.1 riastrad cv_wait(&common.cv, &common.lock);
775 1.1 riastrad ret = 0;
776 1.1 riastrad }
777 1.1 riastrad }
778 1.1 riastrad end = getticks();
779 1.1 riastrad __insn_barrier();
780 1.1 riastrad if (ret) {
781 1.1 riastrad if (ret == -ERESTART)
782 1.1 riastrad ret = -ERESTARTSYS;
783 1.1 riastrad break;
784 1.1 riastrad }
785 1.1 riastrad timeout -= MIN(timeout, (unsigned)end - (unsigned)start);
786 1.1 riastrad }
787 1.1 riastrad mutex_exit(&common.lock);
788 1.1 riastrad
789 1.1 riastrad /*
790 1.1 riastrad * Massage the return code: if we were interrupted, return
791 1.1 riastrad * ERESTARTSYS; if cv_timedwait timed out, return 0; otherwise
792 1.1 riastrad * return the remaining time.
793 1.1 riastrad */
794 1.1 riastrad if (ret < 0) {
795 1.1 riastrad if (ret == -EINTR || ret == -ERESTART)
796 1.1 riastrad ret = -ERESTARTSYS;
797 1.1 riastrad if (ret == -EWOULDBLOCK)
798 1.1 riastrad ret = 0;
799 1.1 riastrad } else {
800 1.1 riastrad KASSERT(ret == 0);
801 1.1 riastrad ret = timeout;
802 1.1 riastrad }
803 1.1 riastrad
804 1.1 riastrad out1: while (i --> 0)
805 1.2 riastrad (void)dma_fence_remove_callback(fences[i], &cb[i].fcb);
806 1.1 riastrad cv_destroy(&common.cv);
807 1.1 riastrad mutex_destroy(&common.lock);
808 1.1 riastrad kfree(cb);
809 1.1 riastrad out0: return ret;
810 1.1 riastrad }
811 1.1 riastrad
812 1.1 riastrad /*
813 1.2 riastrad * dma_fence_wait_timeout(fence, intr, timeout)
814 1.1 riastrad *
815 1.1 riastrad * Wait until fence is signalled; or until interrupt, if intr is
816 1.1 riastrad * true; or until timeout, if positive. Return -ERESTARTSYS if
817 1.1 riastrad * interrupted, negative error code on any other error, zero on
818 1.1 riastrad * timeout, or positive number of ticks remaining if the fence is
819 1.1 riastrad * signalled before the timeout. Works by calling the fence wait
820 1.1 riastrad * callback.
821 1.1 riastrad *
822 1.28 riastrad * The timeout must be nonnegative and at most
823 1.28 riastrad * MAX_SCHEDULE_TIMEOUT, which means wait indefinitely.
824 1.1 riastrad */
825 1.1 riastrad long
826 1.2 riastrad dma_fence_wait_timeout(struct dma_fence *fence, bool intr, long timeout)
827 1.1 riastrad {
828 1.1 riastrad
829 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
830 1.27 riastrad KASSERTMSG(timeout >= 0, "timeout %ld", timeout);
831 1.28 riastrad KASSERTMSG(timeout <= MAX_SCHEDULE_TIMEOUT, "timeout %ld", timeout);
832 1.1 riastrad
833 1.14 riastrad if (fence->ops->wait)
834 1.14 riastrad return (*fence->ops->wait)(fence, intr, timeout);
835 1.14 riastrad else
836 1.14 riastrad return dma_fence_default_wait(fence, intr, timeout);
837 1.1 riastrad }
838 1.1 riastrad
839 1.1 riastrad /*
840 1.2 riastrad * dma_fence_wait(fence, intr)
841 1.1 riastrad *
842 1.1 riastrad * Wait until fence is signalled; or until interrupt, if intr is
843 1.1 riastrad * true. Return -ERESTARTSYS if interrupted, negative error code
844 1.1 riastrad * on any other error, zero on sucess. Works by calling the fence
845 1.1 riastrad * wait callback with MAX_SCHEDULE_TIMEOUT.
846 1.1 riastrad */
847 1.1 riastrad long
848 1.2 riastrad dma_fence_wait(struct dma_fence *fence, bool intr)
849 1.1 riastrad {
850 1.1 riastrad long ret;
851 1.1 riastrad
852 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
853 1.1 riastrad
854 1.15 riastrad if (fence->ops->wait)
855 1.15 riastrad ret = (*fence->ops->wait)(fence, intr, MAX_SCHEDULE_TIMEOUT);
856 1.15 riastrad else
857 1.15 riastrad ret = dma_fence_default_wait(fence, intr,
858 1.15 riastrad MAX_SCHEDULE_TIMEOUT);
859 1.1 riastrad KASSERT(ret != 0);
860 1.1 riastrad
861 1.1 riastrad return (ret < 0 ? ret : 0);
862 1.1 riastrad }
863 1.1 riastrad
864 1.1 riastrad /*
865 1.2 riastrad * dma_fence_default_wait(fence, intr, timeout)
866 1.1 riastrad *
867 1.1 riastrad * Default implementation of fence wait callback using a condition
868 1.1 riastrad * variable. If the fence is already signalled, return timeout,
869 1.16 riastrad * or 1 if timeout is zero meaning poll. If the enable signalling
870 1.16 riastrad * callback hasn't been called, call it, and if it fails, act as
871 1.16 riastrad * if the fence had been signalled. Otherwise, wait on the
872 1.16 riastrad * internal condvar. If timeout is MAX_SCHEDULE_TIMEOUT, wait
873 1.16 riastrad * indefinitely.
874 1.1 riastrad */
875 1.1 riastrad long
876 1.2 riastrad dma_fence_default_wait(struct dma_fence *fence, bool intr, long timeout)
877 1.1 riastrad {
878 1.1 riastrad int starttime = 0, now = 0, deadline = 0; /* XXXGCC */
879 1.1 riastrad kmutex_t *lock = &fence->lock->sl_lock;
880 1.1 riastrad long ret = 0;
881 1.1 riastrad
882 1.2 riastrad KASSERT(dma_fence_referenced_p(fence));
883 1.1 riastrad KASSERTMSG(timeout >= 0, "timeout %ld", timeout);
884 1.1 riastrad KASSERTMSG(timeout <= MAX_SCHEDULE_TIMEOUT, "timeout %ld", timeout);
885 1.1 riastrad
886 1.1 riastrad /* Optimistically try to skip the lock if it's already signalled. */
887 1.2 riastrad if (fence->flags & (1u << DMA_FENCE_FLAG_SIGNALED_BIT))
888 1.16 riastrad return (timeout ? timeout : 1);
889 1.1 riastrad
890 1.1 riastrad /* Acquire the lock. */
891 1.1 riastrad spin_lock(fence->lock);
892 1.1 riastrad
893 1.16 riastrad /* Ensure signalling is enabled, or stop if already completed. */
894 1.17 riastrad if (dma_fence_ensure_signal_enabled(fence) != 0) {
895 1.17 riastrad spin_unlock(fence->lock);
896 1.16 riastrad return (timeout ? timeout : 1);
897 1.17 riastrad }
898 1.16 riastrad
899 1.16 riastrad /* If merely polling, stop here. */
900 1.16 riastrad if (timeout == 0) {
901 1.16 riastrad spin_unlock(fence->lock);
902 1.16 riastrad return 0;
903 1.16 riastrad }
904 1.1 riastrad
905 1.1 riastrad /* Find out what our deadline is so we can handle spurious wakeup. */
906 1.1 riastrad if (timeout < MAX_SCHEDULE_TIMEOUT) {
907 1.1 riastrad now = getticks();
908 1.1 riastrad __insn_barrier();
909 1.1 riastrad starttime = now;
910 1.1 riastrad deadline = starttime + timeout;
911 1.1 riastrad }
912 1.1 riastrad
913 1.1 riastrad /* Wait until the signalled bit is set. */
914 1.2 riastrad while (!(fence->flags & (1u << DMA_FENCE_FLAG_SIGNALED_BIT))) {
915 1.1 riastrad /*
916 1.1 riastrad * If there's a timeout and we've passed the deadline,
917 1.1 riastrad * give up.
918 1.1 riastrad */
919 1.1 riastrad if (timeout < MAX_SCHEDULE_TIMEOUT) {
920 1.1 riastrad now = getticks();
921 1.1 riastrad __insn_barrier();
922 1.1 riastrad if (deadline <= now)
923 1.1 riastrad break;
924 1.1 riastrad }
925 1.1 riastrad if (intr) {
926 1.1 riastrad if (timeout < MAX_SCHEDULE_TIMEOUT) {
927 1.1 riastrad ret = -cv_timedwait_sig(&fence->f_cv, lock,
928 1.1 riastrad deadline - now);
929 1.1 riastrad } else {
930 1.1 riastrad ret = -cv_wait_sig(&fence->f_cv, lock);
931 1.1 riastrad }
932 1.1 riastrad } else {
933 1.1 riastrad if (timeout < MAX_SCHEDULE_TIMEOUT) {
934 1.1 riastrad ret = -cv_timedwait(&fence->f_cv, lock,
935 1.1 riastrad deadline - now);
936 1.1 riastrad } else {
937 1.1 riastrad cv_wait(&fence->f_cv, lock);
938 1.1 riastrad ret = 0;
939 1.1 riastrad }
940 1.1 riastrad }
941 1.1 riastrad /* If the wait failed, give up. */
942 1.1 riastrad if (ret) {
943 1.1 riastrad if (ret == -ERESTART)
944 1.1 riastrad ret = -ERESTARTSYS;
945 1.1 riastrad break;
946 1.1 riastrad }
947 1.1 riastrad }
948 1.1 riastrad
949 1.1 riastrad /* All done. Release the lock. */
950 1.1 riastrad spin_unlock(fence->lock);
951 1.1 riastrad
952 1.1 riastrad /* If cv_timedwait gave up, return 0 meaning timeout. */
953 1.1 riastrad if (ret == -EWOULDBLOCK) {
954 1.1 riastrad /* Only cv_timedwait and cv_timedwait_sig can return this. */
955 1.1 riastrad KASSERT(timeout < MAX_SCHEDULE_TIMEOUT);
956 1.1 riastrad return 0;
957 1.1 riastrad }
958 1.1 riastrad
959 1.1 riastrad /* If there was a timeout and the deadline passed, return 0. */
960 1.1 riastrad if (timeout < MAX_SCHEDULE_TIMEOUT) {
961 1.1 riastrad if (deadline <= now)
962 1.1 riastrad return 0;
963 1.1 riastrad }
964 1.1 riastrad
965 1.1 riastrad /* If we were interrupted, return -ERESTARTSYS. */
966 1.1 riastrad if (ret == -EINTR || ret == -ERESTART)
967 1.1 riastrad return -ERESTARTSYS;
968 1.1 riastrad
969 1.1 riastrad /* If there was any other kind of error, fail. */
970 1.1 riastrad if (ret)
971 1.1 riastrad return ret;
972 1.1 riastrad
973 1.1 riastrad /*
974 1.1 riastrad * Success! Return the number of ticks left, at least 1, or 1
975 1.1 riastrad * if no timeout.
976 1.1 riastrad */
977 1.1 riastrad return (timeout < MAX_SCHEDULE_TIMEOUT ? MIN(deadline - now, 1) : 1);
978 1.1 riastrad }
979 1.12 riastrad
980 1.12 riastrad /*
981 1.12 riastrad * __dma_fence_signal(fence)
982 1.12 riastrad *
983 1.12 riastrad * Set fence's signalled bit, without waking waiters yet. Return
984 1.12 riastrad * true if it was newly set, false if it was already set.
985 1.12 riastrad */
986 1.12 riastrad bool
987 1.12 riastrad __dma_fence_signal(struct dma_fence *fence)
988 1.12 riastrad {
989 1.12 riastrad
990 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
991 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
992 1.24 riastrad
993 1.12 riastrad if (test_and_set_bit(DMA_FENCE_FLAG_SIGNALED_BIT, &fence->flags))
994 1.12 riastrad return false;
995 1.12 riastrad
996 1.12 riastrad return true;
997 1.12 riastrad }
998 1.12 riastrad
999 1.12 riastrad /*
1000 1.12 riastrad * __dma_fence_signal_wake(fence)
1001 1.12 riastrad *
1002 1.25 riastrad * Set fence's timestamp and wake fence's waiters. Caller must
1003 1.25 riastrad * have previously called __dma_fence_signal and it must have
1004 1.25 riastrad * previously returned true.
1005 1.12 riastrad */
1006 1.12 riastrad void
1007 1.12 riastrad __dma_fence_signal_wake(struct dma_fence *fence, ktime_t timestamp)
1008 1.12 riastrad {
1009 1.12 riastrad struct dma_fence_cb *fcb, *next;
1010 1.12 riastrad
1011 1.24 riastrad KASSERTMSG(fence->f_magic != FENCE_MAGIC_BAD, "fence %p", fence);
1012 1.24 riastrad KASSERTMSG(fence->f_magic == FENCE_MAGIC_GOOD, "fence %p", fence);
1013 1.24 riastrad
1014 1.12 riastrad spin_lock(fence->lock);
1015 1.12 riastrad
1016 1.12 riastrad KASSERT(fence->flags & DMA_FENCE_FLAG_SIGNALED_BIT);
1017 1.12 riastrad
1018 1.25 riastrad /* Set the timestamp. */
1019 1.25 riastrad fence->timestamp = timestamp;
1020 1.25 riastrad set_bit(DMA_FENCE_FLAG_TIMESTAMP_BIT, &fence->flags);
1021 1.25 riastrad
1022 1.12 riastrad /* Wake waiters. */
1023 1.12 riastrad cv_broadcast(&fence->f_cv);
1024 1.12 riastrad
1025 1.12 riastrad /* Remove and call the callbacks. */
1026 1.12 riastrad TAILQ_FOREACH_SAFE(fcb, &fence->f_callbacks, fcb_entry, next) {
1027 1.12 riastrad TAILQ_REMOVE(&fence->f_callbacks, fcb, fcb_entry);
1028 1.12 riastrad fcb->fcb_onqueue = false;
1029 1.12 riastrad (*fcb->func)(fence, fcb);
1030 1.12 riastrad }
1031 1.12 riastrad
1032 1.12 riastrad spin_unlock(fence->lock);
1033 1.12 riastrad }
1034