xref: /linux/drivers/gpu/drm/nouveau/nouveau_fence.c (revision 9bffa1ad25b8b3b95d8f463e5c24dabe3c87d54d)
1 /*
2  * Copyright (C) 2007 Ben Skeggs.
3  * All Rights Reserved.
4  *
5  * Permission is hereby granted, free of charge, to any person obtaining
6  * a copy of this software and associated documentation files (the
7  * "Software"), to deal in the Software without restriction, including
8  * without limitation the rights to use, copy, modify, merge, publish,
9  * distribute, sublicense, and/or sell copies of the Software, and to
10  * permit persons to whom the Software is furnished to do so, subject to
11  * the following conditions:
12  *
13  * The above copyright notice and this permission notice (including the
14  * next paragraph) shall be included in all copies or substantial
15  * portions of the Software.
16  *
17  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
18  * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
19  * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
20  * IN NO EVENT SHALL THE COPYRIGHT OWNER(S) AND/OR ITS SUPPLIERS BE
21  * LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION
22  * OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
23  * WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
24  *
25  */
26 
27 #include <linux/ktime.h>
28 #include <linux/hrtimer.h>
29 #include <linux/sched/signal.h>
30 #include <trace/events/dma_fence.h>
31 
32 #include <nvif/if0020.h>
33 
34 #include "nouveau_drv.h"
35 #include "nouveau_dma.h"
36 #include "nouveau_fence.h"
37 
38 static const struct dma_fence_ops nouveau_fence_ops_uevent;
39 static const struct dma_fence_ops nouveau_fence_ops_legacy;
40 
41 static inline struct nouveau_fence *
from_fence(struct dma_fence * fence)42 from_fence(struct dma_fence *fence)
43 {
44 	return container_of(fence, struct nouveau_fence, base);
45 }
46 
47 static inline struct nouveau_fence_chan *
nouveau_fctx(struct nouveau_fence * fence)48 nouveau_fctx(struct nouveau_fence *fence)
49 {
50 	return container_of(fence->base.lock, struct nouveau_fence_chan, lock);
51 }
52 
53 static int
nouveau_fence_signal(struct nouveau_fence * fence)54 nouveau_fence_signal(struct nouveau_fence *fence)
55 {
56 	int drop = 0;
57 
58 	dma_fence_signal_locked(&fence->base);
59 	list_del(&fence->head);
60 	rcu_assign_pointer(fence->channel, NULL);
61 
62 	if (test_bit(DMA_FENCE_FLAG_USER_BITS, &fence->base.flags)) {
63 		struct nouveau_fence_chan *fctx = nouveau_fctx(fence);
64 
65 		if (!--fctx->notify_ref)
66 			drop = 1;
67 	}
68 
69 	dma_fence_put(&fence->base);
70 	return drop;
71 }
72 
73 static struct nouveau_fence *
nouveau_local_fence(struct dma_fence * fence,struct nouveau_drm * drm)74 nouveau_local_fence(struct dma_fence *fence, struct nouveau_drm *drm)
75 {
76 	if (fence->ops != &nouveau_fence_ops_legacy &&
77 	    fence->ops != &nouveau_fence_ops_uevent)
78 		return NULL;
79 
80 	return from_fence(fence);
81 }
82 
83 void
nouveau_fence_context_kill(struct nouveau_fence_chan * fctx,int error)84 nouveau_fence_context_kill(struct nouveau_fence_chan *fctx, int error)
85 {
86 	struct nouveau_fence *fence;
87 	unsigned long flags;
88 
89 	spin_lock_irqsave(&fctx->lock, flags);
90 	while (!list_empty(&fctx->pending)) {
91 		fence = list_entry(fctx->pending.next, typeof(*fence), head);
92 
93 		if (error)
94 			dma_fence_set_error(&fence->base, error);
95 
96 		if (nouveau_fence_signal(fence))
97 			nvif_event_block(&fctx->event);
98 	}
99 	fctx->killed = 1;
100 	spin_unlock_irqrestore(&fctx->lock, flags);
101 }
102 
103 void
nouveau_fence_context_del(struct nouveau_fence_chan * fctx)104 nouveau_fence_context_del(struct nouveau_fence_chan *fctx)
105 {
106 	cancel_work_sync(&fctx->uevent_work);
107 	nouveau_fence_context_kill(fctx, 0);
108 	nvif_event_dtor(&fctx->event);
109 	fctx->dead = 1;
110 
111 	/*
112 	 * Ensure that all accesses to fence->channel complete before freeing
113 	 * the channel.
114 	 */
115 	synchronize_rcu();
116 }
117 
118 static void
nouveau_fence_context_put(struct kref * fence_ref)119 nouveau_fence_context_put(struct kref *fence_ref)
120 {
121 	kfree(container_of(fence_ref, struct nouveau_fence_chan, fence_ref));
122 }
123 
124 void
nouveau_fence_context_free(struct nouveau_fence_chan * fctx)125 nouveau_fence_context_free(struct nouveau_fence_chan *fctx)
126 {
127 	kref_put(&fctx->fence_ref, nouveau_fence_context_put);
128 }
129 
130 static int
nouveau_fence_update(struct nouveau_channel * chan,struct nouveau_fence_chan * fctx)131 nouveau_fence_update(struct nouveau_channel *chan, struct nouveau_fence_chan *fctx)
132 {
133 	struct nouveau_fence *fence;
134 	int drop = 0;
135 	u32 seq = fctx->read(chan);
136 
137 	while (!list_empty(&fctx->pending)) {
138 		fence = list_entry(fctx->pending.next, typeof(*fence), head);
139 
140 		if ((int)(seq - fence->base.seqno) < 0)
141 			break;
142 
143 		drop |= nouveau_fence_signal(fence);
144 	}
145 
146 	return drop;
147 }
148 
149 static void
nouveau_fence_uevent_work(struct work_struct * work)150 nouveau_fence_uevent_work(struct work_struct *work)
151 {
152 	struct nouveau_fence_chan *fctx = container_of(work, struct nouveau_fence_chan,
153 						       uevent_work);
154 	unsigned long flags;
155 	int drop = 0;
156 
157 	spin_lock_irqsave(&fctx->lock, flags);
158 	if (!list_empty(&fctx->pending)) {
159 		struct nouveau_fence *fence;
160 		struct nouveau_channel *chan;
161 
162 		fence = list_entry(fctx->pending.next, typeof(*fence), head);
163 		chan = rcu_dereference_protected(fence->channel, lockdep_is_held(&fctx->lock));
164 		if (nouveau_fence_update(chan, fctx))
165 			drop = 1;
166 	}
167 	if (drop)
168 		nvif_event_block(&fctx->event);
169 
170 	spin_unlock_irqrestore(&fctx->lock, flags);
171 }
172 
173 static int
nouveau_fence_wait_uevent_handler(struct nvif_event * event,void * repv,u32 repc)174 nouveau_fence_wait_uevent_handler(struct nvif_event *event, void *repv, u32 repc)
175 {
176 	struct nouveau_fence_chan *fctx = container_of(event, typeof(*fctx), event);
177 	schedule_work(&fctx->uevent_work);
178 	return NVIF_EVENT_KEEP;
179 }
180 
181 void
nouveau_fence_context_new(struct nouveau_channel * chan,struct nouveau_fence_chan * fctx)182 nouveau_fence_context_new(struct nouveau_channel *chan, struct nouveau_fence_chan *fctx)
183 {
184 	struct nouveau_cli *cli = chan->cli;
185 	struct nouveau_drm *drm = cli->drm;
186 	struct nouveau_fence_priv *priv = (void*)drm->fence;
187 	struct {
188 		struct nvif_event_v0 base;
189 		struct nvif_chan_event_v0 host;
190 	} args;
191 	int ret;
192 
193 	INIT_WORK(&fctx->uevent_work, nouveau_fence_uevent_work);
194 	INIT_LIST_HEAD(&fctx->flip);
195 	INIT_LIST_HEAD(&fctx->pending);
196 	spin_lock_init(&fctx->lock);
197 	fctx->context = drm->runl[chan->runlist].context_base + chan->chid;
198 
199 	if (chan == drm->cechan)
200 		strcpy(fctx->name, "copy engine channel");
201 	else if (chan == drm->channel)
202 		strcpy(fctx->name, "generic kernel channel");
203 	else
204 		strcpy(fctx->name, cli->name);
205 
206 	kref_init(&fctx->fence_ref);
207 	if (!priv->uevent)
208 		return;
209 
210 	args.host.version = 0;
211 	args.host.type = NVIF_CHAN_EVENT_V0_NON_STALL_INTR;
212 
213 	ret = nvif_event_ctor(&chan->user, "fenceNonStallIntr", (chan->runlist << 16) | chan->chid,
214 			      nouveau_fence_wait_uevent_handler, false,
215 			      &args.base, sizeof(args), &fctx->event);
216 
217 	WARN_ON(ret);
218 }
219 
220 int
nouveau_fence_emit(struct nouveau_fence * fence)221 nouveau_fence_emit(struct nouveau_fence *fence)
222 {
223 	struct nouveau_channel *chan = unrcu_pointer(fence->channel);
224 	struct nouveau_fence_chan *fctx = chan->fence;
225 	struct nouveau_fence_priv *priv = (void*)chan->cli->drm->fence;
226 	int ret;
227 
228 	fence->timeout  = jiffies + (15 * HZ);
229 
230 	if (priv->uevent)
231 		dma_fence_init(&fence->base, &nouveau_fence_ops_uevent,
232 			       &fctx->lock, fctx->context, ++fctx->sequence);
233 	else
234 		dma_fence_init(&fence->base, &nouveau_fence_ops_legacy,
235 			       &fctx->lock, fctx->context, ++fctx->sequence);
236 	kref_get(&fctx->fence_ref);
237 
238 	ret = fctx->emit(fence);
239 	if (!ret) {
240 		dma_fence_get(&fence->base);
241 		spin_lock_irq(&fctx->lock);
242 
243 		if (unlikely(fctx->killed)) {
244 			spin_unlock_irq(&fctx->lock);
245 			dma_fence_put(&fence->base);
246 			return -ENODEV;
247 		}
248 
249 		if (nouveau_fence_update(chan, fctx))
250 			nvif_event_block(&fctx->event);
251 
252 		list_add_tail(&fence->head, &fctx->pending);
253 		spin_unlock_irq(&fctx->lock);
254 	}
255 
256 	return ret;
257 }
258 
259 bool
nouveau_fence_done(struct nouveau_fence * fence)260 nouveau_fence_done(struct nouveau_fence *fence)
261 {
262 	if (fence->base.ops == &nouveau_fence_ops_legacy ||
263 	    fence->base.ops == &nouveau_fence_ops_uevent) {
264 		struct nouveau_fence_chan *fctx = nouveau_fctx(fence);
265 		struct nouveau_channel *chan;
266 		unsigned long flags;
267 
268 		if (test_bit(DMA_FENCE_FLAG_SIGNALED_BIT, &fence->base.flags))
269 			return true;
270 
271 		spin_lock_irqsave(&fctx->lock, flags);
272 		chan = rcu_dereference_protected(fence->channel, lockdep_is_held(&fctx->lock));
273 		if (chan && nouveau_fence_update(chan, fctx))
274 			nvif_event_block(&fctx->event);
275 		spin_unlock_irqrestore(&fctx->lock, flags);
276 	}
277 	return dma_fence_is_signaled(&fence->base);
278 }
279 
280 static long
nouveau_fence_wait_legacy(struct dma_fence * f,bool intr,long wait)281 nouveau_fence_wait_legacy(struct dma_fence *f, bool intr, long wait)
282 {
283 	struct nouveau_fence *fence = from_fence(f);
284 	unsigned long sleep_time = NSEC_PER_MSEC / 1000;
285 	unsigned long t = jiffies, timeout = t + wait;
286 
287 	while (!nouveau_fence_done(fence)) {
288 		ktime_t kt;
289 
290 		t = jiffies;
291 
292 		if (wait != MAX_SCHEDULE_TIMEOUT && time_after_eq(t, timeout)) {
293 			__set_current_state(TASK_RUNNING);
294 			return 0;
295 		}
296 
297 		__set_current_state(intr ? TASK_INTERRUPTIBLE :
298 					   TASK_UNINTERRUPTIBLE);
299 
300 		kt = sleep_time;
301 		schedule_hrtimeout(&kt, HRTIMER_MODE_REL);
302 		sleep_time *= 2;
303 		if (sleep_time > NSEC_PER_MSEC)
304 			sleep_time = NSEC_PER_MSEC;
305 
306 		if (intr && signal_pending(current))
307 			return -ERESTARTSYS;
308 	}
309 
310 	__set_current_state(TASK_RUNNING);
311 
312 	return timeout - t;
313 }
314 
315 static int
nouveau_fence_wait_busy(struct nouveau_fence * fence,bool intr)316 nouveau_fence_wait_busy(struct nouveau_fence *fence, bool intr)
317 {
318 	int ret = 0;
319 
320 	while (!nouveau_fence_done(fence)) {
321 		if (time_after_eq(jiffies, fence->timeout)) {
322 			ret = -EBUSY;
323 			break;
324 		}
325 
326 		__set_current_state(intr ?
327 				    TASK_INTERRUPTIBLE :
328 				    TASK_UNINTERRUPTIBLE);
329 
330 		if (intr && signal_pending(current)) {
331 			ret = -ERESTARTSYS;
332 			break;
333 		}
334 	}
335 
336 	__set_current_state(TASK_RUNNING);
337 	return ret;
338 }
339 
340 int
nouveau_fence_wait(struct nouveau_fence * fence,bool lazy,bool intr)341 nouveau_fence_wait(struct nouveau_fence *fence, bool lazy, bool intr)
342 {
343 	long ret;
344 
345 	if (!lazy)
346 		return nouveau_fence_wait_busy(fence, intr);
347 
348 	ret = dma_fence_wait_timeout(&fence->base, intr, 15 * HZ);
349 	if (ret < 0)
350 		return ret;
351 	else if (!ret)
352 		return -EBUSY;
353 	else
354 		return 0;
355 }
356 
357 int
nouveau_fence_sync(struct nouveau_bo * nvbo,struct nouveau_channel * chan,bool exclusive,bool intr)358 nouveau_fence_sync(struct nouveau_bo *nvbo, struct nouveau_channel *chan,
359 		   bool exclusive, bool intr)
360 {
361 	struct nouveau_fence_chan *fctx = chan->fence;
362 	struct dma_resv *resv = nvbo->bo.base.resv;
363 	int i, ret;
364 
365 	ret = dma_resv_reserve_fences(resv, 1);
366 	if (ret)
367 		return ret;
368 
369 	/* Waiting for the writes first causes performance regressions
370 	 * under some circumstances. So manually wait for the reads first.
371 	 */
372 	for (i = 0; i < 2; ++i) {
373 		struct dma_resv_iter cursor;
374 		struct dma_fence *fence;
375 
376 		dma_resv_for_each_fence(&cursor, resv,
377 					dma_resv_usage_rw(exclusive),
378 					fence) {
379 			enum dma_resv_usage usage;
380 			struct nouveau_fence *f;
381 
382 			usage = dma_resv_iter_usage(&cursor);
383 			if (i == 0 && usage == DMA_RESV_USAGE_WRITE)
384 				continue;
385 
386 			f = nouveau_local_fence(fence, chan->cli->drm);
387 			if (f) {
388 				struct nouveau_channel *prev;
389 				bool must_wait = true;
390 				bool local;
391 
392 				rcu_read_lock();
393 				prev = rcu_dereference(f->channel);
394 				local = prev && prev->cli->drm == chan->cli->drm;
395 				if (local && (prev == chan ||
396 					      fctx->sync(f, prev, chan) == 0))
397 					must_wait = false;
398 				rcu_read_unlock();
399 				if (!must_wait)
400 					continue;
401 			}
402 
403 			ret = dma_fence_wait(fence, intr);
404 			if (ret)
405 				return ret;
406 		}
407 	}
408 
409 	return 0;
410 }
411 
412 void
nouveau_fence_unref(struct nouveau_fence ** pfence)413 nouveau_fence_unref(struct nouveau_fence **pfence)
414 {
415 	if (*pfence)
416 		dma_fence_put(&(*pfence)->base);
417 	*pfence = NULL;
418 }
419 
420 int
nouveau_fence_create(struct nouveau_fence ** pfence,struct nouveau_channel * chan)421 nouveau_fence_create(struct nouveau_fence **pfence,
422 		     struct nouveau_channel *chan)
423 {
424 	struct nouveau_fence *fence;
425 
426 	if (unlikely(!chan->fence))
427 		return -ENODEV;
428 
429 	fence = kzalloc(sizeof(*fence), GFP_KERNEL);
430 	if (!fence)
431 		return -ENOMEM;
432 
433 	fence->channel = chan;
434 
435 	*pfence = fence;
436 	return 0;
437 }
438 
439 int
nouveau_fence_new(struct nouveau_fence ** pfence,struct nouveau_channel * chan)440 nouveau_fence_new(struct nouveau_fence **pfence,
441 		  struct nouveau_channel *chan)
442 {
443 	int ret = 0;
444 
445 	ret = nouveau_fence_create(pfence, chan);
446 	if (ret)
447 		return ret;
448 
449 	ret = nouveau_fence_emit(*pfence);
450 	if (ret)
451 		nouveau_fence_unref(pfence);
452 
453 	return ret;
454 }
455 
nouveau_fence_get_get_driver_name(struct dma_fence * fence)456 static const char *nouveau_fence_get_get_driver_name(struct dma_fence *fence)
457 {
458 	return "nouveau";
459 }
460 
nouveau_fence_get_timeline_name(struct dma_fence * f)461 static const char *nouveau_fence_get_timeline_name(struct dma_fence *f)
462 {
463 	struct nouveau_fence *fence = from_fence(f);
464 	struct nouveau_fence_chan *fctx = nouveau_fctx(fence);
465 
466 	return !fctx->dead ? fctx->name : "dead channel";
467 }
468 
469 /*
470  * In an ideal world, read would not assume the channel context is still alive.
471  * This function may be called from another device, running into free memory as a
472  * result. The drm node should still be there, so we can derive the index from
473  * the fence context.
474  */
nouveau_fence_is_signaled(struct dma_fence * f)475 static bool nouveau_fence_is_signaled(struct dma_fence *f)
476 {
477 	struct nouveau_fence *fence = from_fence(f);
478 	struct nouveau_fence_chan *fctx = nouveau_fctx(fence);
479 	struct nouveau_channel *chan;
480 	bool ret = false;
481 
482 	rcu_read_lock();
483 	chan = rcu_dereference(fence->channel);
484 	if (chan)
485 		ret = (int)(fctx->read(chan) - fence->base.seqno) >= 0;
486 	rcu_read_unlock();
487 
488 	return ret;
489 }
490 
nouveau_fence_no_signaling(struct dma_fence * f)491 static bool nouveau_fence_no_signaling(struct dma_fence *f)
492 {
493 	struct nouveau_fence *fence = from_fence(f);
494 
495 	/*
496 	 * caller should have a reference on the fence,
497 	 * else fence could get freed here
498 	 */
499 	WARN_ON(kref_read(&fence->base.refcount) <= 1);
500 
501 	/*
502 	 * This needs uevents to work correctly, but dma_fence_add_callback relies on
503 	 * being able to enable signaling. It will still get signaled eventually,
504 	 * just not right away.
505 	 */
506 	if (nouveau_fence_is_signaled(f)) {
507 		list_del(&fence->head);
508 
509 		dma_fence_put(&fence->base);
510 		return false;
511 	}
512 
513 	return true;
514 }
515 
nouveau_fence_release(struct dma_fence * f)516 static void nouveau_fence_release(struct dma_fence *f)
517 {
518 	struct nouveau_fence *fence = from_fence(f);
519 	struct nouveau_fence_chan *fctx = nouveau_fctx(fence);
520 
521 	kref_put(&fctx->fence_ref, nouveau_fence_context_put);
522 	dma_fence_free(&fence->base);
523 }
524 
525 static const struct dma_fence_ops nouveau_fence_ops_legacy = {
526 	.get_driver_name = nouveau_fence_get_get_driver_name,
527 	.get_timeline_name = nouveau_fence_get_timeline_name,
528 	.enable_signaling = nouveau_fence_no_signaling,
529 	.signaled = nouveau_fence_is_signaled,
530 	.wait = nouveau_fence_wait_legacy,
531 	.release = nouveau_fence_release
532 };
533 
nouveau_fence_enable_signaling(struct dma_fence * f)534 static bool nouveau_fence_enable_signaling(struct dma_fence *f)
535 {
536 	struct nouveau_fence *fence = from_fence(f);
537 	struct nouveau_fence_chan *fctx = nouveau_fctx(fence);
538 	bool ret;
539 
540 	if (!fctx->notify_ref++)
541 		nvif_event_allow(&fctx->event);
542 
543 	ret = nouveau_fence_no_signaling(f);
544 	if (ret)
545 		set_bit(DMA_FENCE_FLAG_USER_BITS, &fence->base.flags);
546 	else if (!--fctx->notify_ref)
547 		nvif_event_block(&fctx->event);
548 
549 	return ret;
550 }
551 
552 static const struct dma_fence_ops nouveau_fence_ops_uevent = {
553 	.get_driver_name = nouveau_fence_get_get_driver_name,
554 	.get_timeline_name = nouveau_fence_get_timeline_name,
555 	.enable_signaling = nouveau_fence_enable_signaling,
556 	.signaled = nouveau_fence_is_signaled,
557 	.release = nouveau_fence_release
558 };
559