xref: /linux/drivers/gpu/drm/amd/amdgpu/amdgpu_cs.c (revision 9e6869be49064915edb6c8776b27c376cfdb0df5)
1 /*
2  * Copyright 2008 Jerome Glisse.
3  * All Rights Reserved.
4  *
5  * Permission is hereby granted, free of charge, to any person obtaining a
6  * copy of this software and associated documentation files (the "Software"),
7  * to deal in the Software without restriction, including without limitation
8  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
9  * and/or sell copies of the Software, and to permit persons to whom the
10  * Software is furnished to do so, subject to the following conditions:
11  *
12  * The above copyright notice and this permission notice (including the next
13  * paragraph) shall be included in all copies or substantial portions of the
14  * Software.
15  *
16  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
19  * PRECISION INSIGHT AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR
20  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
21  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
22  * DEALINGS IN THE SOFTWARE.
23  *
24  * Authors:
25  *    Jerome Glisse <glisse@freedesktop.org>
26  */
27 
28 #include <linux/file.h>
29 #include <linux/pagemap.h>
30 #include <linux/sync_file.h>
31 #include <linux/dma-buf.h>
32 
33 #include <drm/amdgpu_drm.h>
34 #include <drm/drm_syncobj.h>
35 #include <drm/ttm/ttm_tt.h>
36 
37 #include "amdgpu_cs.h"
38 #include "amdgpu.h"
39 #include "amdgpu_trace.h"
40 #include "amdgpu_gmc.h"
41 #include "amdgpu_gem.h"
42 #include "amdgpu_ras.h"
43 #include "amdgpu_hmm.h"
44 
45 static int amdgpu_cs_parser_init(struct amdgpu_cs_parser *p,
46 				 struct amdgpu_device *adev,
47 				 struct drm_file *filp,
48 				 union drm_amdgpu_cs *cs)
49 {
50 	struct amdgpu_fpriv *fpriv = filp->driver_priv;
51 
52 	if (cs->in.num_chunks == 0)
53 		return -EINVAL;
54 
55 	memset(p, 0, sizeof(*p));
56 	p->adev = adev;
57 	p->filp = filp;
58 
59 	p->ctx = amdgpu_ctx_get(fpriv, cs->in.ctx_id);
60 	if (!p->ctx)
61 		return -EINVAL;
62 
63 	amdgpu_sync_create(&p->sync);
64 	drm_exec_init(&p->exec, DRM_EXEC_INTERRUPTIBLE_WAIT |
65 		      DRM_EXEC_IGNORE_DUPLICATES, 0);
66 	return 0;
67 }
68 
69 static int amdgpu_cs_job_idx(struct amdgpu_cs_parser *p,
70 			     struct drm_amdgpu_cs_chunk_ib *chunk_ib)
71 {
72 	struct drm_sched_entity *entity;
73 	unsigned int i;
74 	int r;
75 
76 	r = amdgpu_ctx_get_entity(p->ctx, chunk_ib->ip_type,
77 				  chunk_ib->ip_instance,
78 				  chunk_ib->ring, &entity);
79 	if (r)
80 		return r;
81 
82 	/* Check if we can add this IB to some existing job */
83 	for (i = 0; i < p->gang_size; ++i)
84 		if (p->entities[i] == entity)
85 			return i;
86 
87 	/* If not increase the gang size if possible */
88 	if (i == AMDGPU_CS_GANG_SIZE)
89 		return -EINVAL;
90 
91 	p->entities[i] = entity;
92 	p->gang_size = i + 1;
93 	return i;
94 }
95 
96 static int amdgpu_cs_p1_ib(struct amdgpu_cs_parser *p,
97 			   struct drm_amdgpu_cs_chunk_ib *chunk_ib,
98 			   unsigned int *num_ibs)
99 {
100 	int r;
101 
102 	r = amdgpu_cs_job_idx(p, chunk_ib);
103 	if (r < 0)
104 		return r;
105 
106 	if (num_ibs[r] >= amdgpu_ring_max_ibs(chunk_ib->ip_type))
107 		return -EINVAL;
108 
109 	++(num_ibs[r]);
110 	p->gang_leader_idx = r;
111 	return 0;
112 }
113 
114 static int amdgpu_cs_p1_user_fence(struct amdgpu_cs_parser *p,
115 				   struct drm_amdgpu_cs_chunk_fence *data,
116 				   uint32_t *offset)
117 {
118 	struct drm_gem_object *gobj;
119 	unsigned long size;
120 
121 	gobj = drm_gem_object_lookup(p->filp, data->handle);
122 	if (gobj == NULL)
123 		return -EINVAL;
124 
125 	p->uf_bo = amdgpu_bo_ref(gem_to_amdgpu_bo(gobj));
126 	drm_gem_object_put(gobj);
127 
128 	size = amdgpu_bo_size(p->uf_bo);
129 	if (size != PAGE_SIZE || data->offset > (size - 8))
130 		return -EINVAL;
131 
132 	if (amdgpu_ttm_tt_get_usermm(p->uf_bo->tbo.ttm))
133 		return -EINVAL;
134 
135 	*offset = data->offset;
136 	return 0;
137 }
138 
139 static int amdgpu_cs_p1_bo_handles(struct amdgpu_cs_parser *p,
140 				   struct drm_amdgpu_bo_list_in *data)
141 {
142 	struct drm_amdgpu_bo_list_entry *info;
143 	int r;
144 
145 	r = amdgpu_bo_create_list_entry_array(data, &info);
146 	if (r)
147 		return r;
148 
149 	r = amdgpu_bo_list_create(p->adev, p->filp, info, data->bo_number,
150 				  &p->bo_list);
151 	if (r)
152 		goto error_free;
153 
154 	kvfree(info);
155 	return 0;
156 
157 error_free:
158 	kvfree(info);
159 
160 	return r;
161 }
162 
163 /* Copy the data from userspace and go over it the first time */
164 static int amdgpu_cs_pass1(struct amdgpu_cs_parser *p,
165 			   union drm_amdgpu_cs *cs)
166 {
167 	struct amdgpu_fpriv *fpriv = p->filp->driver_priv;
168 	unsigned int num_ibs[AMDGPU_CS_GANG_SIZE] = { };
169 	struct amdgpu_vm *vm = &fpriv->vm;
170 	uint64_t *chunk_array;
171 	uint32_t uf_offset = 0;
172 	size_t size;
173 	int ret;
174 	int i;
175 
176 	chunk_array = memdup_array_user(u64_to_user_ptr(cs->in.chunks),
177 					cs->in.num_chunks,
178 					sizeof(uint64_t));
179 	if (IS_ERR(chunk_array))
180 		return PTR_ERR(chunk_array);
181 
182 	p->nchunks = cs->in.num_chunks;
183 	p->chunks = kvmalloc_objs(struct amdgpu_cs_chunk, p->nchunks);
184 	if (!p->chunks) {
185 		ret = -ENOMEM;
186 		goto free_chunk;
187 	}
188 
189 	for (i = 0; i < p->nchunks; i++) {
190 		struct drm_amdgpu_cs_chunk __user *chunk_ptr = NULL;
191 		struct drm_amdgpu_cs_chunk user_chunk;
192 
193 		chunk_ptr = u64_to_user_ptr(chunk_array[i]);
194 		if (copy_from_user(&user_chunk, chunk_ptr,
195 				       sizeof(struct drm_amdgpu_cs_chunk))) {
196 			ret = -EFAULT;
197 			i--;
198 			goto free_partial_kdata;
199 		}
200 		p->chunks[i].chunk_id = user_chunk.chunk_id;
201 		p->chunks[i].length_dw = user_chunk.length_dw;
202 
203 		size = p->chunks[i].length_dw;
204 
205 		p->chunks[i].kdata = vmemdup_array_user(u64_to_user_ptr(user_chunk.chunk_data),
206 							size,
207 							sizeof(uint32_t));
208 		if (IS_ERR(p->chunks[i].kdata)) {
209 			ret = PTR_ERR(p->chunks[i].kdata);
210 			i--;
211 			goto free_partial_kdata;
212 		}
213 		size *= sizeof(uint32_t);
214 
215 		/* Assume the worst on the following checks */
216 		ret = -EINVAL;
217 		switch (p->chunks[i].chunk_id) {
218 		case AMDGPU_CHUNK_ID_IB:
219 			if (size < sizeof(struct drm_amdgpu_cs_chunk_ib))
220 				goto free_partial_kdata;
221 
222 			ret = amdgpu_cs_p1_ib(p, p->chunks[i].kdata, num_ibs);
223 			if (ret)
224 				goto free_partial_kdata;
225 			break;
226 
227 		case AMDGPU_CHUNK_ID_FENCE:
228 			if (size < sizeof(struct drm_amdgpu_cs_chunk_fence))
229 				goto free_partial_kdata;
230 
231 			ret = amdgpu_cs_p1_user_fence(p, p->chunks[i].kdata,
232 						      &uf_offset);
233 			if (ret)
234 				goto free_partial_kdata;
235 			break;
236 
237 		case AMDGPU_CHUNK_ID_BO_HANDLES:
238 			if (size < sizeof(struct drm_amdgpu_bo_list_in))
239 				goto free_partial_kdata;
240 
241 			/* Only a single BO list is allowed to simplify handling. */
242 			if (p->bo_list)
243 				goto free_partial_kdata;
244 
245 			ret = amdgpu_cs_p1_bo_handles(p, p->chunks[i].kdata);
246 			if (ret)
247 				goto free_partial_kdata;
248 			break;
249 
250 		case AMDGPU_CHUNK_ID_CP_GFX_SHADOW:
251 			if (size < sizeof(struct drm_amdgpu_cs_chunk_cp_gfx_shadow))
252 				goto free_partial_kdata;
253 			break;
254 
255 		case AMDGPU_CHUNK_ID_DEPENDENCIES:
256 		case AMDGPU_CHUNK_ID_SYNCOBJ_IN:
257 		case AMDGPU_CHUNK_ID_SYNCOBJ_OUT:
258 		case AMDGPU_CHUNK_ID_SCHEDULED_DEPENDENCIES:
259 		case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_WAIT:
260 		case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_SIGNAL:
261 			break;
262 
263 		default:
264 			goto free_partial_kdata;
265 		}
266 	}
267 
268 	if (!p->gang_size || (amdgpu_sriov_vf(p->adev) && p->gang_size > 1)) {
269 		ret = -EINVAL;
270 		goto free_all_kdata;
271 	}
272 
273 	for (i = 0; i < p->gang_size; ++i) {
274 		ret = amdgpu_job_alloc(p->adev, vm, p->entities[i], vm,
275 				       num_ibs[i], &p->jobs[i],
276 				       p->filp->client_id);
277 		if (ret)
278 			goto free_all_kdata;
279 		switch (p->adev->enforce_isolation[fpriv->xcp_id]) {
280 		case AMDGPU_ENFORCE_ISOLATION_DISABLE:
281 		default:
282 			p->jobs[i]->enforce_isolation = false;
283 			p->jobs[i]->run_cleaner_shader = false;
284 			break;
285 		case AMDGPU_ENFORCE_ISOLATION_ENABLE:
286 			p->jobs[i]->enforce_isolation = true;
287 			p->jobs[i]->run_cleaner_shader = true;
288 			break;
289 		case AMDGPU_ENFORCE_ISOLATION_ENABLE_LEGACY:
290 			p->jobs[i]->enforce_isolation = true;
291 			p->jobs[i]->run_cleaner_shader = false;
292 			break;
293 		case AMDGPU_ENFORCE_ISOLATION_NO_CLEANER_SHADER:
294 			p->jobs[i]->enforce_isolation = true;
295 			p->jobs[i]->run_cleaner_shader = false;
296 			break;
297 		}
298 	}
299 	p->gang_leader = p->jobs[p->gang_leader_idx];
300 
301 	if (p->ctx->generation != p->gang_leader->generation) {
302 		ret = -ECANCELED;
303 		goto free_all_kdata;
304 	}
305 
306 	if (p->uf_bo)
307 		p->gang_leader->uf_addr = uf_offset;
308 	kvfree(chunk_array);
309 
310 	/* Use this opportunity to fill in task info for the vm */
311 	amdgpu_vm_set_task_info(vm);
312 
313 	return 0;
314 
315 free_all_kdata:
316 	i = p->nchunks - 1;
317 free_partial_kdata:
318 	for (; i >= 0; i--)
319 		kvfree(p->chunks[i].kdata);
320 	kvfree(p->chunks);
321 	p->chunks = NULL;
322 	p->nchunks = 0;
323 free_chunk:
324 	kvfree(chunk_array);
325 
326 	return ret;
327 }
328 
329 static int amdgpu_cs_p2_ib(struct amdgpu_cs_parser *p,
330 			   struct amdgpu_cs_chunk *chunk,
331 			   unsigned int *ce_preempt,
332 			   unsigned int *de_preempt)
333 {
334 	struct drm_amdgpu_cs_chunk_ib *chunk_ib = chunk->kdata;
335 	struct amdgpu_fpriv *fpriv = p->filp->driver_priv;
336 	struct amdgpu_vm *vm = &fpriv->vm;
337 	struct amdgpu_ring *ring;
338 	struct amdgpu_job *job;
339 	struct amdgpu_ib *ib;
340 	int r;
341 
342 	r = amdgpu_cs_job_idx(p, chunk_ib);
343 	if (r < 0)
344 		return r;
345 
346 	job = p->jobs[r];
347 	ring = amdgpu_job_ring(job);
348 	ib = &job->ibs[job->num_ibs++];
349 
350 	/* submissions to kernel queues are disabled */
351 	if (ring->no_user_submission)
352 		return -EINVAL;
353 
354 	/* MM engine doesn't support user fences */
355 	if (p->uf_bo && ring->funcs->no_user_fence)
356 		return -EINVAL;
357 
358 	if (!p->adev->debug_enable_ce_cs &&
359 	    chunk_ib->flags & AMDGPU_IB_FLAG_CE) {
360 		dev_err_ratelimited(p->adev->dev, "CE CS is blocked, use debug=0x400 to override\n");
361 		return -EINVAL;
362 	}
363 
364 	if (chunk_ib->ip_type == AMDGPU_HW_IP_GFX &&
365 	    chunk_ib->flags & AMDGPU_IB_FLAG_PREEMPT) {
366 		if (chunk_ib->flags & AMDGPU_IB_FLAG_CE)
367 			(*ce_preempt)++;
368 		else
369 			(*de_preempt)++;
370 
371 		/* Each GFX command submit allows only 1 IB max
372 		 * preemptible for CE & DE */
373 		if (*ce_preempt > 1 || *de_preempt > 1)
374 			return -EINVAL;
375 	}
376 
377 	if (chunk_ib->flags & AMDGPU_IB_FLAG_PREAMBLE)
378 		job->preamble_status |= AMDGPU_PREAMBLE_IB_PRESENT;
379 
380 	r =  amdgpu_ib_get(p->adev, vm, ring->funcs->parse_cs ?
381 			   chunk_ib->ib_bytes : 0,
382 			   AMDGPU_IB_POOL_DELAYED, ib);
383 	if (r) {
384 		drm_err(adev_to_drm(p->adev), "Failed to get ib !\n");
385 		return r;
386 	}
387 
388 	ib->gpu_addr = chunk_ib->va_start;
389 	ib->length_dw = chunk_ib->ib_bytes / 4;
390 	ib->flags = chunk_ib->flags;
391 	return 0;
392 }
393 
394 static int amdgpu_cs_p2_dependencies(struct amdgpu_cs_parser *p,
395 				     struct amdgpu_cs_chunk *chunk)
396 {
397 	struct drm_amdgpu_cs_chunk_dep *deps = chunk->kdata;
398 	struct amdgpu_fpriv *fpriv = p->filp->driver_priv;
399 	unsigned int num_deps;
400 	int i, r;
401 
402 	num_deps = chunk->length_dw * 4 /
403 		sizeof(struct drm_amdgpu_cs_chunk_dep);
404 
405 	for (i = 0; i < num_deps; ++i) {
406 		struct amdgpu_ctx *ctx;
407 		struct drm_sched_entity *entity;
408 		struct dma_fence *fence;
409 
410 		ctx = amdgpu_ctx_get(fpriv, deps[i].ctx_id);
411 		if (ctx == NULL)
412 			return -EINVAL;
413 
414 		r = amdgpu_ctx_get_entity(ctx, deps[i].ip_type,
415 					  deps[i].ip_instance,
416 					  deps[i].ring, &entity);
417 		if (r) {
418 			amdgpu_ctx_put(ctx);
419 			return r;
420 		}
421 
422 		fence = amdgpu_ctx_get_fence(ctx, entity, deps[i].handle);
423 		amdgpu_ctx_put(ctx);
424 
425 		if (IS_ERR(fence))
426 			return PTR_ERR(fence);
427 		else if (!fence)
428 			continue;
429 
430 		if (chunk->chunk_id == AMDGPU_CHUNK_ID_SCHEDULED_DEPENDENCIES) {
431 			struct drm_sched_fence *s_fence;
432 			struct dma_fence *old = fence;
433 
434 			s_fence = to_drm_sched_fence(fence);
435 			fence = dma_fence_get(&s_fence->scheduled);
436 			dma_fence_put(old);
437 		}
438 
439 		r = amdgpu_sync_fence(&p->sync, fence, GFP_KERNEL);
440 		dma_fence_put(fence);
441 		if (r)
442 			return r;
443 	}
444 	return 0;
445 }
446 
447 static int amdgpu_syncobj_lookup_and_add(struct amdgpu_cs_parser *p,
448 					 uint32_t handle, u64 point,
449 					 u64 flags)
450 {
451 	struct dma_fence *fence;
452 	int r;
453 
454 	r = drm_syncobj_find_fence(p->filp, handle, point, flags, &fence);
455 	if (r) {
456 		drm_err(adev_to_drm(p->adev), "syncobj %u failed to find fence @ %llu (%d)!\n",
457 			  handle, point, r);
458 		return r;
459 	}
460 
461 	r = amdgpu_sync_fence(&p->sync, fence, GFP_KERNEL);
462 	dma_fence_put(fence);
463 	return r;
464 }
465 
466 static int amdgpu_cs_p2_syncobj_in(struct amdgpu_cs_parser *p,
467 				   struct amdgpu_cs_chunk *chunk)
468 {
469 	struct drm_amdgpu_cs_chunk_sem *deps = chunk->kdata;
470 	unsigned int num_deps;
471 	int i, r;
472 
473 	num_deps = chunk->length_dw * 4 /
474 		sizeof(struct drm_amdgpu_cs_chunk_sem);
475 	for (i = 0; i < num_deps; ++i) {
476 		r = amdgpu_syncobj_lookup_and_add(p, deps[i].handle, 0, 0);
477 		if (r)
478 			return r;
479 	}
480 
481 	return 0;
482 }
483 
484 static int amdgpu_cs_p2_syncobj_timeline_wait(struct amdgpu_cs_parser *p,
485 					      struct amdgpu_cs_chunk *chunk)
486 {
487 	struct drm_amdgpu_cs_chunk_syncobj *syncobj_deps = chunk->kdata;
488 	unsigned int num_deps;
489 	int i, r;
490 
491 	num_deps = chunk->length_dw * 4 /
492 		sizeof(struct drm_amdgpu_cs_chunk_syncobj);
493 	for (i = 0; i < num_deps; ++i) {
494 		r = amdgpu_syncobj_lookup_and_add(p, syncobj_deps[i].handle,
495 						  syncobj_deps[i].point,
496 						  syncobj_deps[i].flags);
497 		if (r)
498 			return r;
499 	}
500 
501 	return 0;
502 }
503 
504 static int amdgpu_cs_p2_syncobj_out(struct amdgpu_cs_parser *p,
505 				    struct amdgpu_cs_chunk *chunk)
506 {
507 	struct drm_amdgpu_cs_chunk_sem *deps = chunk->kdata;
508 	unsigned int num_deps;
509 	int i;
510 
511 	num_deps = chunk->length_dw * 4 /
512 		sizeof(struct drm_amdgpu_cs_chunk_sem);
513 
514 	if (p->post_deps)
515 		return -EINVAL;
516 
517 	p->post_deps = kmalloc_objs(*p->post_deps, num_deps);
518 	p->num_post_deps = 0;
519 
520 	if (!p->post_deps)
521 		return -ENOMEM;
522 
523 
524 	for (i = 0; i < num_deps; ++i) {
525 		p->post_deps[i].syncobj =
526 			drm_syncobj_find(p->filp, deps[i].handle);
527 		if (!p->post_deps[i].syncobj)
528 			return -EINVAL;
529 		p->post_deps[i].chain = NULL;
530 		p->post_deps[i].point = 0;
531 		p->num_post_deps++;
532 	}
533 
534 	return 0;
535 }
536 
537 static int amdgpu_cs_p2_syncobj_timeline_signal(struct amdgpu_cs_parser *p,
538 						struct amdgpu_cs_chunk *chunk)
539 {
540 	struct drm_amdgpu_cs_chunk_syncobj *syncobj_deps = chunk->kdata;
541 	unsigned int num_deps;
542 	int i;
543 
544 	num_deps = chunk->length_dw * 4 /
545 		sizeof(struct drm_amdgpu_cs_chunk_syncobj);
546 
547 	if (p->post_deps)
548 		return -EINVAL;
549 
550 	p->post_deps = kmalloc_objs(*p->post_deps, num_deps);
551 	p->num_post_deps = 0;
552 
553 	if (!p->post_deps)
554 		return -ENOMEM;
555 
556 	for (i = 0; i < num_deps; ++i) {
557 		struct amdgpu_cs_post_dep *dep = &p->post_deps[i];
558 
559 		dep->chain = NULL;
560 		if (syncobj_deps[i].point) {
561 			dep->chain = dma_fence_chain_alloc();
562 			if (!dep->chain)
563 				return -ENOMEM;
564 		}
565 
566 		dep->syncobj = drm_syncobj_find(p->filp,
567 						syncobj_deps[i].handle);
568 		if (!dep->syncobj) {
569 			dma_fence_chain_free(dep->chain);
570 			return -EINVAL;
571 		}
572 		dep->point = syncobj_deps[i].point;
573 		p->num_post_deps++;
574 	}
575 
576 	return 0;
577 }
578 
579 static int amdgpu_cs_p2_shadow(struct amdgpu_cs_parser *p,
580 			       struct amdgpu_cs_chunk *chunk)
581 {
582 	struct drm_amdgpu_cs_chunk_cp_gfx_shadow *shadow = chunk->kdata;
583 	int i;
584 
585 	if (shadow->flags & ~AMDGPU_CS_CHUNK_CP_GFX_SHADOW_FLAGS_INIT_SHADOW)
586 		return -EINVAL;
587 
588 	for (i = 0; i < p->gang_size; ++i) {
589 		p->jobs[i]->shadow_va = shadow->shadow_va;
590 		p->jobs[i]->csa_va = shadow->csa_va;
591 		p->jobs[i]->gds_va = shadow->gds_va;
592 		p->jobs[i]->init_shadow =
593 			shadow->flags & AMDGPU_CS_CHUNK_CP_GFX_SHADOW_FLAGS_INIT_SHADOW;
594 	}
595 
596 	return 0;
597 }
598 
599 static int amdgpu_cs_pass2(struct amdgpu_cs_parser *p)
600 {
601 	unsigned int ce_preempt = 0, de_preempt = 0;
602 	int i, r;
603 
604 	for (i = 0; i < p->nchunks; ++i) {
605 		struct amdgpu_cs_chunk *chunk;
606 
607 		chunk = &p->chunks[i];
608 
609 		switch (chunk->chunk_id) {
610 		case AMDGPU_CHUNK_ID_IB:
611 			r = amdgpu_cs_p2_ib(p, chunk, &ce_preempt, &de_preempt);
612 			if (r)
613 				return r;
614 			break;
615 		case AMDGPU_CHUNK_ID_DEPENDENCIES:
616 		case AMDGPU_CHUNK_ID_SCHEDULED_DEPENDENCIES:
617 			r = amdgpu_cs_p2_dependencies(p, chunk);
618 			if (r)
619 				return r;
620 			break;
621 		case AMDGPU_CHUNK_ID_SYNCOBJ_IN:
622 			r = amdgpu_cs_p2_syncobj_in(p, chunk);
623 			if (r)
624 				return r;
625 			break;
626 		case AMDGPU_CHUNK_ID_SYNCOBJ_OUT:
627 			r = amdgpu_cs_p2_syncobj_out(p, chunk);
628 			if (r)
629 				return r;
630 			break;
631 		case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_WAIT:
632 			r = amdgpu_cs_p2_syncobj_timeline_wait(p, chunk);
633 			if (r)
634 				return r;
635 			break;
636 		case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_SIGNAL:
637 			r = amdgpu_cs_p2_syncobj_timeline_signal(p, chunk);
638 			if (r)
639 				return r;
640 			break;
641 		case AMDGPU_CHUNK_ID_CP_GFX_SHADOW:
642 			r = amdgpu_cs_p2_shadow(p, chunk);
643 			if (r)
644 				return r;
645 			break;
646 		}
647 	}
648 
649 	return 0;
650 }
651 
652 /* Convert microseconds to bytes. */
653 static u64 us_to_bytes(struct amdgpu_device *adev, s64 us)
654 {
655 	if (us <= 0 || !adev->mm_stats.log2_max_MBps)
656 		return 0;
657 
658 	/* Since accum_us is incremented by a million per second, just
659 	 * multiply it by the number of MB/s to get the number of bytes.
660 	 */
661 	return us << adev->mm_stats.log2_max_MBps;
662 }
663 
664 static s64 bytes_to_us(struct amdgpu_device *adev, u64 bytes)
665 {
666 	if (!adev->mm_stats.log2_max_MBps)
667 		return 0;
668 
669 	return bytes >> adev->mm_stats.log2_max_MBps;
670 }
671 
672 /* Returns how many bytes TTM can move right now. If no bytes can be moved,
673  * it returns 0. If it returns non-zero, it's OK to move at least one buffer,
674  * which means it can go over the threshold once. If that happens, the driver
675  * will be in debt and no other buffer migrations can be done until that debt
676  * is repaid.
677  *
678  * This approach allows moving a buffer of any size (it's important to allow
679  * that).
680  *
681  * The currency is simply time in microseconds and it increases as the clock
682  * ticks. The accumulated microseconds (us) are converted to bytes and
683  * returned.
684  */
685 static void amdgpu_cs_get_threshold_for_moves(struct amdgpu_device *adev,
686 					      u64 *max_bytes,
687 					      u64 *max_vis_bytes)
688 {
689 	s64 time_us, increment_us;
690 	u64 free_vram, total_vram, used_vram;
691 	/* Allow a maximum of 200 accumulated ms. This is basically per-IB
692 	 * throttling.
693 	 *
694 	 * It means that in order to get full max MBps, at least 5 IBs per
695 	 * second must be submitted and not more than 200ms apart from each
696 	 * other.
697 	 */
698 	const s64 us_upper_bound = 200000;
699 
700 	if ((!adev->mm_stats.log2_max_MBps) || !ttm_resource_manager_used(&adev->mman.vram_mgr.manager)) {
701 		*max_bytes = 0;
702 		*max_vis_bytes = 0;
703 		return;
704 	}
705 
706 	total_vram = adev->gmc.real_vram_size - atomic64_read(&adev->vram_pin_size);
707 	used_vram = ttm_resource_manager_usage(&adev->mman.vram_mgr.manager);
708 	free_vram = used_vram >= total_vram ? 0 : total_vram - used_vram;
709 
710 	spin_lock(&adev->mm_stats.lock);
711 
712 	/* Increase the amount of accumulated us. */
713 	time_us = ktime_to_us(ktime_get());
714 	increment_us = time_us - adev->mm_stats.last_update_us;
715 	adev->mm_stats.last_update_us = time_us;
716 	adev->mm_stats.accum_us = min(adev->mm_stats.accum_us + increment_us,
717 				      us_upper_bound);
718 
719 	/* This prevents the short period of low performance when the VRAM
720 	 * usage is low and the driver is in debt or doesn't have enough
721 	 * accumulated us to fill VRAM quickly.
722 	 *
723 	 * The situation can occur in these cases:
724 	 * - a lot of VRAM is freed by userspace
725 	 * - the presence of a big buffer causes a lot of evictions
726 	 *   (solution: split buffers into smaller ones)
727 	 *
728 	 * If 128 MB or 1/8th of VRAM is free, start filling it now by setting
729 	 * accum_us to a positive number.
730 	 */
731 	if (free_vram >= 128 * 1024 * 1024 || free_vram >= total_vram / 8) {
732 		s64 min_us;
733 
734 		/* Be more aggressive on dGPUs. Try to fill a portion of free
735 		 * VRAM now.
736 		 */
737 		if (!(adev->flags & AMD_IS_APU))
738 			min_us = bytes_to_us(adev, free_vram / 4);
739 		else
740 			min_us = 0; /* Reset accum_us on APUs. */
741 
742 		adev->mm_stats.accum_us = max(min_us, adev->mm_stats.accum_us);
743 	}
744 
745 	/* This is set to 0 if the driver is in debt to disallow (optional)
746 	 * buffer moves.
747 	 */
748 	*max_bytes = us_to_bytes(adev, adev->mm_stats.accum_us);
749 
750 	/* Do the same for visible VRAM if half of it is free */
751 	if (!amdgpu_gmc_vram_full_visible(&adev->gmc)) {
752 		u64 total_vis_vram = adev->gmc.visible_vram_size;
753 		u64 used_vis_vram =
754 		  amdgpu_vram_mgr_vis_usage(&adev->mman.vram_mgr);
755 
756 		if (used_vis_vram < total_vis_vram) {
757 			u64 free_vis_vram = total_vis_vram - used_vis_vram;
758 
759 			adev->mm_stats.accum_us_vis = min(adev->mm_stats.accum_us_vis +
760 							  increment_us, us_upper_bound);
761 
762 			if (free_vis_vram >= total_vis_vram / 2)
763 				adev->mm_stats.accum_us_vis =
764 					max(bytes_to_us(adev, free_vis_vram / 2),
765 					    adev->mm_stats.accum_us_vis);
766 		}
767 
768 		*max_vis_bytes = us_to_bytes(adev, adev->mm_stats.accum_us_vis);
769 	} else {
770 		*max_vis_bytes = 0;
771 	}
772 
773 	spin_unlock(&adev->mm_stats.lock);
774 }
775 
776 /* Report how many bytes have really been moved for the last command
777  * submission. This can result in a debt that can stop buffer migrations
778  * temporarily.
779  */
780 void amdgpu_cs_report_moved_bytes(struct amdgpu_device *adev, u64 num_bytes,
781 				  u64 num_vis_bytes)
782 {
783 	spin_lock(&adev->mm_stats.lock);
784 	adev->mm_stats.accum_us -= bytes_to_us(adev, num_bytes);
785 	adev->mm_stats.accum_us_vis -= bytes_to_us(adev, num_vis_bytes);
786 	spin_unlock(&adev->mm_stats.lock);
787 }
788 
789 static int amdgpu_cs_bo_validate(void *param, struct amdgpu_bo *bo)
790 {
791 	struct amdgpu_device *adev = amdgpu_ttm_adev(bo->tbo.bdev);
792 	struct amdgpu_cs_parser *p = param;
793 	struct ttm_operation_ctx ctx = {
794 		.interruptible = true,
795 		.no_wait_gpu = false,
796 		.resv = bo->tbo.base.resv
797 	};
798 	uint32_t domain;
799 	int r;
800 
801 	if (bo->tbo.pin_count)
802 		return 0;
803 
804 	/* Don't move this buffer if we have depleted our allowance
805 	 * to move it. Don't move anything if the threshold is zero.
806 	 */
807 	if (p->bytes_moved < p->bytes_moved_threshold &&
808 	    (!bo->tbo.base.dma_buf ||
809 	    list_empty(&bo->tbo.base.dma_buf->attachments))) {
810 		if (!amdgpu_gmc_vram_full_visible(&adev->gmc) &&
811 		    (bo->flags & AMDGPU_GEM_CREATE_CPU_ACCESS_REQUIRED)) {
812 			/* And don't move a CPU_ACCESS_REQUIRED BO to limited
813 			 * visible VRAM if we've depleted our allowance to do
814 			 * that.
815 			 */
816 			if (p->bytes_moved_vis < p->bytes_moved_vis_threshold)
817 				domain = bo->preferred_domains;
818 			else
819 				domain = bo->allowed_domains;
820 		} else {
821 			domain = bo->preferred_domains;
822 		}
823 	} else {
824 		domain = bo->allowed_domains;
825 	}
826 
827 retry:
828 	amdgpu_bo_placement_from_domain(bo, domain);
829 	r = ttm_bo_validate(&bo->tbo, &bo->placement, &ctx);
830 
831 	p->bytes_moved += ctx.bytes_moved;
832 	if (!amdgpu_gmc_vram_full_visible(&adev->gmc) &&
833 	    amdgpu_res_cpu_visible(adev, bo->tbo.resource))
834 		p->bytes_moved_vis += ctx.bytes_moved;
835 
836 	if (unlikely(r == -ENOMEM) && domain != bo->allowed_domains) {
837 		domain = bo->allowed_domains;
838 		goto retry;
839 	}
840 
841 	return r;
842 }
843 
844 static int amdgpu_cs_parser_bos(struct amdgpu_cs_parser *p,
845 				union drm_amdgpu_cs *cs)
846 {
847 	struct amdgpu_fpriv *fpriv = p->filp->driver_priv;
848 	struct ttm_operation_ctx ctx = { true, false };
849 	struct amdgpu_vm *vm = &fpriv->vm;
850 	struct amdgpu_bo_list_entry *e;
851 	struct drm_gem_object *obj;
852 	unsigned int i;
853 	int r;
854 
855 	/* p->bo_list could already be assigned if AMDGPU_CHUNK_ID_BO_HANDLES is present */
856 	if (cs->in.bo_list_handle) {
857 		if (p->bo_list)
858 			return -EINVAL;
859 
860 		r = amdgpu_bo_list_get(fpriv, cs->in.bo_list_handle,
861 				       &p->bo_list);
862 		if (r)
863 			return r;
864 	} else if (!p->bo_list) {
865 		/* Create a empty bo_list when no handle is provided */
866 		r = amdgpu_bo_list_create(p->adev, p->filp, NULL, 0,
867 					  &p->bo_list);
868 		if (r)
869 			return r;
870 	}
871 
872 	mutex_lock(&p->bo_list->bo_list_mutex);
873 
874 	/* Get userptr backing pages. If pages are updated after registered
875 	 * in amdgpu_gem_userptr_ioctl(), amdgpu_cs_list_validate() will do
876 	 * amdgpu_ttm_backend_bind() to flush and invalidate new pages
877 	 */
878 	amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) {
879 		bool userpage_invalidated = false;
880 		struct amdgpu_bo *bo = e->bo;
881 
882 		e->range = amdgpu_hmm_range_alloc(NULL);
883 		if (unlikely(!e->range)) {
884 			r = -ENOMEM;
885 			goto out_free_user_pages;
886 		}
887 
888 		r = amdgpu_ttm_tt_get_user_pages(bo, e->range);
889 		if (r)
890 			goto out_free_user_pages;
891 
892 		for (i = 0; i < bo->tbo.ttm->num_pages; i++) {
893 			if (bo->tbo.ttm->pages[i] !=
894 				hmm_pfn_to_page(e->range->hmm_range.hmm_pfns[i])) {
895 				userpage_invalidated = true;
896 				break;
897 			}
898 		}
899 		e->user_invalidated = userpage_invalidated;
900 	}
901 
902 	drm_exec_until_all_locked(&p->exec) {
903 		r = amdgpu_vm_lock_pd(&fpriv->vm, &p->exec, 1 + p->gang_size);
904 		drm_exec_retry_on_contention(&p->exec);
905 		if (unlikely(r))
906 			goto out_free_user_pages;
907 
908 		amdgpu_bo_list_for_each_entry(e, p->bo_list) {
909 			r = drm_exec_prepare_obj(&p->exec, &e->bo->tbo.base,
910 						 TTM_NUM_MOVE_FENCES + p->gang_size);
911 			drm_exec_retry_on_contention(&p->exec);
912 			if (unlikely(r))
913 				goto out_free_user_pages;
914 
915 			e->bo_va = amdgpu_vm_bo_find(vm, e->bo);
916 		}
917 
918 		if (p->uf_bo) {
919 			r = drm_exec_prepare_obj(&p->exec, &p->uf_bo->tbo.base,
920 						 TTM_NUM_MOVE_FENCES + p->gang_size);
921 			drm_exec_retry_on_contention(&p->exec);
922 			if (unlikely(r))
923 				goto out_free_user_pages;
924 		}
925 	}
926 
927 	amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) {
928 		struct mm_struct *usermm;
929 
930 		usermm = amdgpu_ttm_tt_get_usermm(e->bo->tbo.ttm);
931 		if (usermm && usermm != current->mm) {
932 			r = -EPERM;
933 			goto out_free_user_pages;
934 		}
935 
936 		if (amdgpu_ttm_tt_is_userptr(e->bo->tbo.ttm) &&
937 		    e->user_invalidated) {
938 			amdgpu_bo_placement_from_domain(e->bo,
939 							AMDGPU_GEM_DOMAIN_CPU);
940 			r = ttm_bo_validate(&e->bo->tbo, &e->bo->placement,
941 					    &ctx);
942 			if (r)
943 				goto out_free_user_pages;
944 
945 			amdgpu_ttm_tt_set_user_pages(e->bo->tbo.ttm,
946 						     e->range);
947 		}
948 	}
949 
950 	amdgpu_cs_get_threshold_for_moves(p->adev, &p->bytes_moved_threshold,
951 					  &p->bytes_moved_vis_threshold);
952 	p->bytes_moved = 0;
953 	p->bytes_moved_vis = 0;
954 
955 	r = amdgpu_vm_validate(p->adev, &fpriv->vm, NULL,
956 			       amdgpu_cs_bo_validate, p);
957 	if (r) {
958 		drm_err(adev_to_drm(p->adev), "amdgpu_vm_validate() failed.\n");
959 		goto out_free_user_pages;
960 	}
961 
962 	drm_exec_for_each_locked_object(&p->exec, obj) {
963 		r = amdgpu_cs_bo_validate(p, gem_to_amdgpu_bo(obj));
964 		if (unlikely(r))
965 			goto out_free_user_pages;
966 	}
967 
968 	if (p->uf_bo) {
969 		r = amdgpu_ttm_alloc_gart(&p->uf_bo->tbo);
970 		if (unlikely(r))
971 			goto out_free_user_pages;
972 
973 		p->gang_leader->uf_addr += amdgpu_bo_gpu_offset(p->uf_bo);
974 	}
975 
976 	amdgpu_cs_report_moved_bytes(p->adev, p->bytes_moved,
977 				     p->bytes_moved_vis);
978 
979 	for (i = 0; i < p->gang_size; ++i)
980 		amdgpu_job_set_resources(p->jobs[i], p->bo_list->gds_obj,
981 					 p->bo_list->gws_obj,
982 					 p->bo_list->oa_obj);
983 	return 0;
984 
985 out_free_user_pages:
986 	amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) {
987 		amdgpu_hmm_range_free(e->range);
988 		e->range = NULL;
989 	}
990 	mutex_unlock(&p->bo_list->bo_list_mutex);
991 	return r;
992 }
993 
994 static void trace_amdgpu_cs_ibs(struct amdgpu_cs_parser *p)
995 {
996 	int i, j;
997 
998 	if (!trace_amdgpu_cs_enabled())
999 		return;
1000 
1001 	for (i = 0; i < p->gang_size; ++i) {
1002 		struct amdgpu_job *job = p->jobs[i];
1003 
1004 		for (j = 0; j < job->num_ibs; ++j)
1005 			trace_amdgpu_cs(p, job, &job->ibs[j]);
1006 	}
1007 }
1008 
1009 static int amdgpu_cs_patch_ibs(struct amdgpu_cs_parser *p,
1010 			       struct amdgpu_job *job)
1011 {
1012 	struct amdgpu_ring *ring = amdgpu_job_ring(job);
1013 	struct amdgpu_device *adev = ring->adev;
1014 	unsigned int i;
1015 	int r;
1016 
1017 	/* Only for UVD/VCE VM emulation */
1018 	if (!ring->funcs->parse_cs && !ring->funcs->patch_cs_in_place)
1019 		return 0;
1020 
1021 	for (i = 0; i < job->num_ibs; ++i) {
1022 		struct amdgpu_ib *ib = &job->ibs[i];
1023 		struct amdgpu_bo_va_mapping *m;
1024 		struct amdgpu_bo *aobj;
1025 		uint64_t va_start;
1026 		uint8_t *kptr;
1027 
1028 		va_start = ib->gpu_addr & AMDGPU_GMC_HOLE_MASK;
1029 		r = amdgpu_cs_find_mapping(p, va_start, &aobj, &m);
1030 		if (r) {
1031 			drm_err(adev_to_drm(p->adev), "IB va_start is invalid\n");
1032 			return r;
1033 		}
1034 
1035 		if ((va_start + ib->length_dw * 4) >
1036 		    (m->last + 1) * AMDGPU_GPU_PAGE_SIZE) {
1037 			drm_err(adev_to_drm(p->adev), "IB va_start+ib_bytes is invalid\n");
1038 			return -EINVAL;
1039 		}
1040 
1041 		/* the IB should be reserved at this point */
1042 		r = amdgpu_bo_kmap(aobj, (void **)&kptr);
1043 		if (r)
1044 			return r;
1045 
1046 		kptr += va_start - (m->start * AMDGPU_GPU_PAGE_SIZE);
1047 
1048 		if (ring->funcs->parse_cs) {
1049 			memcpy(ib->ptr, kptr, ib->length_dw * 4);
1050 			amdgpu_bo_kunmap(aobj);
1051 
1052 			r = amdgpu_ring_parse_cs(ring, p, job, ib);
1053 			if (r)
1054 				return r;
1055 
1056 			if (ib->sa_bo)
1057 				ib->gpu_addr =  amdgpu_sa_bo_gpu_addr(ib->sa_bo);
1058 		} else {
1059 			ib->ptr = (uint32_t *)kptr;
1060 			r = amdgpu_ring_patch_cs_in_place(ring, p, job, ib);
1061 			amdgpu_bo_kunmap(aobj);
1062 			if (r)
1063 				return r;
1064 		}
1065 	}
1066 
1067 	return 0;
1068 }
1069 
1070 static int amdgpu_cs_patch_jobs(struct amdgpu_cs_parser *p)
1071 {
1072 	unsigned int i;
1073 	int r;
1074 
1075 	for (i = 0; i < p->gang_size; ++i) {
1076 		r = amdgpu_cs_patch_ibs(p, p->jobs[i]);
1077 		if (r)
1078 			return r;
1079 	}
1080 	return 0;
1081 }
1082 
1083 static int amdgpu_cs_vm_handling(struct amdgpu_cs_parser *p)
1084 {
1085 	struct amdgpu_fpriv *fpriv = p->filp->driver_priv;
1086 	struct amdgpu_job *job = p->gang_leader;
1087 	struct amdgpu_device *adev = p->adev;
1088 	struct amdgpu_vm *vm = &fpriv->vm;
1089 	struct amdgpu_bo_list_entry *e;
1090 	struct amdgpu_bo_va *bo_va;
1091 	unsigned int i;
1092 	int r;
1093 
1094 	/*
1095 	 * We can't use gang submit on with reserved VMIDs when the VM changes
1096 	 * can't be invalidated by more than one engine at the same time.
1097 	 */
1098 	if (p->gang_size > 1 && !adev->vm_manager.concurrent_flush) {
1099 		for (i = 0; i < p->gang_size; ++i) {
1100 			struct drm_sched_entity *entity = p->entities[i];
1101 			struct drm_gpu_scheduler *sched =
1102 				container_of(entity->rq, typeof(*sched), rq);
1103 			struct amdgpu_ring *ring = to_amdgpu_ring(sched);
1104 
1105 			if (amdgpu_vmid_uses_reserved(vm, ring->vm_hub))
1106 				return -EINVAL;
1107 		}
1108 	}
1109 
1110 	if (!amdgpu_vm_ready(vm))
1111 		return -EINVAL;
1112 
1113 	r = amdgpu_vm_clear_freed(adev, vm, NULL);
1114 	if (r)
1115 		return r;
1116 
1117 	r = amdgpu_vm_bo_update(adev, fpriv->prt_va, false);
1118 	if (r)
1119 		return r;
1120 
1121 	r = amdgpu_sync_fence(&p->sync, fpriv->prt_va->last_pt_update,
1122 			      GFP_KERNEL);
1123 	if (r)
1124 		return r;
1125 
1126 	if (fpriv->csa_va) {
1127 		bo_va = fpriv->csa_va;
1128 		BUG_ON(!bo_va);
1129 		r = amdgpu_vm_bo_update(adev, bo_va, false);
1130 		if (r)
1131 			return r;
1132 
1133 		r = amdgpu_sync_fence(&p->sync, bo_va->last_pt_update,
1134 				      GFP_KERNEL);
1135 		if (r)
1136 			return r;
1137 	}
1138 
1139 	/* FIXME: In theory this loop shouldn't be needed any more when
1140 	 * amdgpu_vm_handle_moved handles all moved BOs that are reserved
1141 	 * with p->ticket. But removing it caused test regressions, so I'm
1142 	 * leaving it here for now.
1143 	 */
1144 	amdgpu_bo_list_for_each_entry(e, p->bo_list) {
1145 		bo_va = e->bo_va;
1146 		if (bo_va == NULL)
1147 			continue;
1148 
1149 		r = amdgpu_vm_bo_update(adev, bo_va, false);
1150 		if (r)
1151 			return r;
1152 
1153 		r = amdgpu_sync_fence(&p->sync, bo_va->last_pt_update,
1154 				      GFP_KERNEL);
1155 		if (r)
1156 			return r;
1157 	}
1158 
1159 	r = amdgpu_vm_handle_moved(adev, vm, drm_exec_ticket(&p->exec));
1160 	if (r)
1161 		return r;
1162 
1163 	r = amdgpu_vm_update_pdes(adev, vm, false);
1164 	if (r)
1165 		return r;
1166 
1167 	r = amdgpu_sync_fence(&p->sync, vm->last_update, GFP_KERNEL);
1168 	if (r)
1169 		return r;
1170 
1171 	for (i = 0; i < p->gang_size; ++i) {
1172 		job = p->jobs[i];
1173 
1174 		if (!job->vm)
1175 			continue;
1176 
1177 		job->vm_pd_addr = amdgpu_gmc_pd_addr(vm->root.bo);
1178 	}
1179 
1180 	return 0;
1181 }
1182 
1183 static int amdgpu_cs_sync_rings(struct amdgpu_cs_parser *p)
1184 {
1185 	struct amdgpu_fpriv *fpriv = p->filp->driver_priv;
1186 	struct drm_gpu_scheduler *sched;
1187 	struct drm_gem_object *obj;
1188 	struct dma_fence *fence;
1189 	unsigned int i;
1190 	int r;
1191 
1192 	r = amdgpu_ctx_wait_prev_fence(p->ctx, p->entities[p->gang_leader_idx]);
1193 	if (r) {
1194 		if (r != -ERESTARTSYS)
1195 			drm_err(adev_to_drm(p->adev), "amdgpu_ctx_wait_prev_fence failed.\n");
1196 		return r;
1197 	}
1198 
1199 	drm_exec_for_each_locked_object(&p->exec, obj) {
1200 		struct amdgpu_bo *bo = gem_to_amdgpu_bo(obj);
1201 
1202 		struct dma_resv *resv = bo->tbo.base.resv;
1203 		enum amdgpu_sync_mode sync_mode;
1204 
1205 		sync_mode = amdgpu_bo_explicit_sync(bo) ?
1206 			AMDGPU_SYNC_EXPLICIT : AMDGPU_SYNC_NE_OWNER;
1207 		r = amdgpu_sync_resv(p->adev, &p->sync, resv, sync_mode,
1208 				     &fpriv->vm);
1209 		if (r)
1210 			return r;
1211 	}
1212 
1213 	for (i = 0; i < p->gang_size; ++i) {
1214 		r = amdgpu_sync_push_to_job(&p->sync, p->jobs[i]);
1215 		if (r)
1216 			return r;
1217 	}
1218 
1219 	sched = container_of(p->gang_leader->base.entity->rq, typeof(*sched),
1220 			     rq);
1221 	while ((fence = amdgpu_sync_get_fence(&p->sync))) {
1222 		struct drm_sched_fence *s_fence = to_drm_sched_fence(fence);
1223 
1224 		/*
1225 		 * When we have an dependency it might be necessary to insert a
1226 		 * pipeline sync to make sure that all caches etc are flushed and the
1227 		 * next job actually sees the results from the previous one
1228 		 * before we start executing on the same scheduler ring.
1229 		 */
1230 		if (!s_fence || s_fence->sched != sched) {
1231 			dma_fence_put(fence);
1232 			continue;
1233 		}
1234 
1235 		r = amdgpu_sync_fence(&p->gang_leader->explicit_sync, fence,
1236 				      GFP_KERNEL);
1237 		dma_fence_put(fence);
1238 		if (r)
1239 			return r;
1240 	}
1241 	return 0;
1242 }
1243 
1244 static void amdgpu_cs_post_dependencies(struct amdgpu_cs_parser *p)
1245 {
1246 	int i;
1247 
1248 	for (i = 0; i < p->num_post_deps; ++i) {
1249 		if (p->post_deps[i].chain && p->post_deps[i].point) {
1250 			drm_syncobj_add_point(p->post_deps[i].syncobj,
1251 					      p->post_deps[i].chain,
1252 					      p->fence, p->post_deps[i].point);
1253 			p->post_deps[i].chain = NULL;
1254 		} else {
1255 			drm_syncobj_replace_fence(p->post_deps[i].syncobj,
1256 						  p->fence);
1257 		}
1258 	}
1259 }
1260 
1261 static int amdgpu_cs_submit(struct amdgpu_cs_parser *p,
1262 			    union drm_amdgpu_cs *cs)
1263 {
1264 	struct amdgpu_fpriv *fpriv = p->filp->driver_priv;
1265 	struct amdgpu_job *leader = p->gang_leader;
1266 	struct amdgpu_vm *vm = &fpriv->vm;
1267 	struct amdgpu_bo_list_entry *e;
1268 	struct drm_gem_object *gobj;
1269 	unsigned int i;
1270 	uint64_t seq;
1271 	int r;
1272 
1273 	for (i = 0; i < p->gang_size; ++i)
1274 		drm_sched_job_arm(&p->jobs[i]->base);
1275 
1276 	for (i = 0; i < p->gang_size; ++i) {
1277 		struct dma_fence *fence;
1278 
1279 		if (p->jobs[i] == leader)
1280 			continue;
1281 
1282 		fence = &p->jobs[i]->base.s_fence->scheduled;
1283 		dma_fence_get(fence);
1284 		r = drm_sched_job_add_dependency(&leader->base, fence);
1285 		if (r) {
1286 			dma_fence_put(fence);
1287 			return r;
1288 		}
1289 	}
1290 
1291 	if (p->gang_size > 1) {
1292 		for (i = 0; i < p->gang_size; ++i)
1293 			amdgpu_job_set_gang_leader(p->jobs[i], leader);
1294 	}
1295 
1296 	/* No memory allocation is allowed while holding the notifier lock.
1297 	 * The lock is held until amdgpu_cs_submit is finished and fence is
1298 	 * added to BOs.
1299 	 */
1300 	mutex_lock(&p->adev->notifier_lock);
1301 
1302 	/* If userptr are invalidated after amdgpu_cs_parser_bos(), return
1303 	 * -EAGAIN, drmIoctl in libdrm will restart the amdgpu_cs_ioctl.
1304 	 */
1305 	r = 0;
1306 	amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) {
1307 		r |= !amdgpu_hmm_range_valid(e->range);
1308 		amdgpu_hmm_range_free(e->range);
1309 		e->range = NULL;
1310 	}
1311 
1312 	if (r || !list_empty(&vm->individual.needs_update)) {
1313 		r = -EAGAIN;
1314 		mutex_unlock(&p->adev->notifier_lock);
1315 		return r;
1316 	}
1317 
1318 	p->fence = dma_fence_get(&leader->base.s_fence->finished);
1319 	drm_exec_for_each_locked_object(&p->exec, gobj) {
1320 
1321 		ttm_bo_move_to_lru_tail_unlocked(&gem_to_amdgpu_bo(gobj)->tbo);
1322 
1323 		/* Everybody except for the gang leader uses READ */
1324 		for (i = 0; i < p->gang_size; ++i) {
1325 			if (p->jobs[i] == leader)
1326 				continue;
1327 
1328 			dma_resv_add_fence(gobj->resv,
1329 					   &p->jobs[i]->base.s_fence->finished,
1330 					   DMA_RESV_USAGE_READ);
1331 		}
1332 
1333 		/* The gang leader as remembered as writer */
1334 		dma_resv_add_fence(gobj->resv, p->fence, DMA_RESV_USAGE_WRITE);
1335 	}
1336 
1337 	seq = amdgpu_ctx_add_fence(p->ctx, p->entities[p->gang_leader_idx],
1338 				   p->fence);
1339 	amdgpu_cs_post_dependencies(p);
1340 
1341 	if ((leader->preamble_status & AMDGPU_PREAMBLE_IB_PRESENT) &&
1342 	    !p->ctx->preamble_presented) {
1343 		leader->preamble_status |= AMDGPU_PREAMBLE_IB_PRESENT_FIRST;
1344 		p->ctx->preamble_presented = true;
1345 	}
1346 
1347 	cs->out.handle = seq;
1348 	leader->uf_sequence = seq;
1349 
1350 	amdgpu_vm_bo_trace_cs(&fpriv->vm, drm_exec_ticket(&p->exec));
1351 	for (i = 0; i < p->gang_size; ++i) {
1352 		amdgpu_job_free_resources(p->jobs[i]);
1353 		trace_amdgpu_cs_ioctl(p->jobs[i]);
1354 		drm_sched_entity_push_job(&p->jobs[i]->base);
1355 		p->jobs[i] = NULL;
1356 	}
1357 
1358 	amdgpu_vm_move_to_lru_tail(p->adev, &fpriv->vm);
1359 
1360 	mutex_unlock(&p->adev->notifier_lock);
1361 	mutex_unlock(&p->bo_list->bo_list_mutex);
1362 	return 0;
1363 }
1364 
1365 /* Cleanup the parser structure */
1366 static void amdgpu_cs_parser_fini(struct amdgpu_cs_parser *parser)
1367 {
1368 	struct amdgpu_device *adev = parser->adev;
1369 	struct amdgpu_bo_list_entry *e;
1370 	unsigned int i;
1371 
1372 	amdgpu_sync_free(&parser->sync);
1373 	drm_exec_fini(&parser->exec);
1374 
1375 	for (i = 0; i < parser->num_post_deps; i++) {
1376 		drm_syncobj_put(parser->post_deps[i].syncobj);
1377 		kfree(parser->post_deps[i].chain);
1378 	}
1379 	kfree(parser->post_deps);
1380 
1381 	dma_fence_put(parser->fence);
1382 
1383 	if (parser->ctx)
1384 		amdgpu_ctx_put(parser->ctx);
1385 	if (parser->bo_list) {
1386 		if (adev->debug_vm) {
1387 			/* Invalidate all BOs to test for userspace bugs */
1388 			amdgpu_bo_list_for_each_entry(e, parser->bo_list) {
1389 				struct amdgpu_bo *bo = e->bo;
1390 
1391 				/* ignore duplicates */
1392 				if (!bo)
1393 					continue;
1394 
1395 				amdgpu_vm_bo_invalidate(bo, false);
1396 			}
1397 		}
1398 		amdgpu_bo_list_put(parser->bo_list);
1399 	}
1400 
1401 	for (i = 0; i < parser->nchunks; i++)
1402 		kvfree(parser->chunks[i].kdata);
1403 	kvfree(parser->chunks);
1404 	for (i = 0; i < parser->gang_size; ++i) {
1405 		if (parser->jobs[i])
1406 			amdgpu_job_free(parser->jobs[i]);
1407 	}
1408 	amdgpu_bo_unref(&parser->uf_bo);
1409 }
1410 
1411 int amdgpu_cs_ioctl(struct drm_device *dev, void *data, struct drm_file *filp)
1412 {
1413 	struct amdgpu_device *adev = drm_to_adev(dev);
1414 	struct amdgpu_cs_parser parser;
1415 	int r;
1416 
1417 	if (amdgpu_ras_intr_triggered())
1418 		return -EHWPOISON;
1419 
1420 	if (!adev->accel_working)
1421 		return -EBUSY;
1422 
1423 	r = amdgpu_cs_parser_init(&parser, adev, filp, data);
1424 	if (r) {
1425 		drm_err_ratelimited(dev, "Failed to initialize parser %d!\n", r);
1426 		return r;
1427 	}
1428 
1429 	r = amdgpu_cs_pass1(&parser, data);
1430 	if (r)
1431 		goto error_fini;
1432 
1433 	r = amdgpu_cs_pass2(&parser);
1434 	if (r)
1435 		goto error_fini;
1436 
1437 	r = amdgpu_cs_parser_bos(&parser, data);
1438 	if (r) {
1439 		if (r == -ENOMEM)
1440 			drm_err(dev, "Not enough memory for command submission!\n");
1441 		else if (r != -ERESTARTSYS && r != -EAGAIN)
1442 			drm_dbg(dev, "Failed to process the buffer list %d!\n", r);
1443 		goto error_fini;
1444 	}
1445 
1446 	r = amdgpu_cs_patch_jobs(&parser);
1447 	if (r)
1448 		goto error_backoff;
1449 
1450 	r = amdgpu_cs_vm_handling(&parser);
1451 	if (r)
1452 		goto error_backoff;
1453 
1454 	r = amdgpu_cs_sync_rings(&parser);
1455 	if (r)
1456 		goto error_backoff;
1457 
1458 	trace_amdgpu_cs_ibs(&parser);
1459 
1460 	r = amdgpu_cs_submit(&parser, data);
1461 	if (r)
1462 		goto error_backoff;
1463 
1464 	amdgpu_cs_parser_fini(&parser);
1465 	return 0;
1466 
1467 error_backoff:
1468 	mutex_unlock(&parser.bo_list->bo_list_mutex);
1469 
1470 error_fini:
1471 	amdgpu_cs_parser_fini(&parser);
1472 	return r;
1473 }
1474 
1475 /**
1476  * amdgpu_cs_wait_ioctl - wait for a command submission to finish
1477  *
1478  * @dev: drm device
1479  * @data: data from userspace
1480  * @filp: file private
1481  *
1482  * Wait for the command submission identified by handle to finish.
1483  */
1484 int amdgpu_cs_wait_ioctl(struct drm_device *dev, void *data,
1485 			 struct drm_file *filp)
1486 {
1487 	union drm_amdgpu_wait_cs *wait = data;
1488 	unsigned long timeout = amdgpu_gem_timeout(wait->in.timeout);
1489 	struct drm_sched_entity *entity;
1490 	struct amdgpu_ctx *ctx;
1491 	struct dma_fence *fence;
1492 	long r;
1493 
1494 	ctx = amdgpu_ctx_get(filp->driver_priv, wait->in.ctx_id);
1495 	if (ctx == NULL)
1496 		return -EINVAL;
1497 
1498 	r = amdgpu_ctx_get_entity(ctx, wait->in.ip_type, wait->in.ip_instance,
1499 				  wait->in.ring, &entity);
1500 	if (r) {
1501 		amdgpu_ctx_put(ctx);
1502 		return r;
1503 	}
1504 
1505 	fence = amdgpu_ctx_get_fence(ctx, entity, wait->in.handle);
1506 	if (IS_ERR(fence))
1507 		r = PTR_ERR(fence);
1508 	else if (fence) {
1509 		r = dma_fence_wait_timeout(fence, true, timeout);
1510 		if (r > 0 && fence->error)
1511 			r = fence->error;
1512 		dma_fence_put(fence);
1513 	} else
1514 		r = 1;
1515 
1516 	amdgpu_ctx_put(ctx);
1517 	if (r < 0)
1518 		return r;
1519 
1520 	memset(wait, 0, sizeof(*wait));
1521 	wait->out.status = (r == 0);
1522 
1523 	return 0;
1524 }
1525 
1526 /**
1527  * amdgpu_cs_get_fence - helper to get fence from drm_amdgpu_fence
1528  *
1529  * @adev: amdgpu device
1530  * @filp: file private
1531  * @user: drm_amdgpu_fence copied from user space
1532  */
1533 static struct dma_fence *amdgpu_cs_get_fence(struct amdgpu_device *adev,
1534 					     struct drm_file *filp,
1535 					     struct drm_amdgpu_fence *user)
1536 {
1537 	struct drm_sched_entity *entity;
1538 	struct amdgpu_ctx *ctx;
1539 	struct dma_fence *fence;
1540 	int r;
1541 
1542 	ctx = amdgpu_ctx_get(filp->driver_priv, user->ctx_id);
1543 	if (ctx == NULL)
1544 		return ERR_PTR(-EINVAL);
1545 
1546 	r = amdgpu_ctx_get_entity(ctx, user->ip_type, user->ip_instance,
1547 				  user->ring, &entity);
1548 	if (r) {
1549 		amdgpu_ctx_put(ctx);
1550 		return ERR_PTR(r);
1551 	}
1552 
1553 	fence = amdgpu_ctx_get_fence(ctx, entity, user->seq_no);
1554 	amdgpu_ctx_put(ctx);
1555 
1556 	return fence;
1557 }
1558 
1559 int amdgpu_cs_fence_to_handle_ioctl(struct drm_device *dev, void *data,
1560 				    struct drm_file *filp)
1561 {
1562 	struct amdgpu_device *adev = drm_to_adev(dev);
1563 	union drm_amdgpu_fence_to_handle *info = data;
1564 	struct dma_fence *fence;
1565 	struct drm_syncobj *syncobj;
1566 	struct sync_file *sync_file;
1567 	int fd, r;
1568 
1569 	fence = amdgpu_cs_get_fence(adev, filp, &info->in.fence);
1570 	if (IS_ERR(fence))
1571 		return PTR_ERR(fence);
1572 
1573 	if (!fence)
1574 		fence = dma_fence_get_stub();
1575 
1576 	switch (info->in.what) {
1577 	case AMDGPU_FENCE_TO_HANDLE_GET_SYNCOBJ:
1578 		r = drm_syncobj_create(&syncobj, 0, fence);
1579 		dma_fence_put(fence);
1580 		if (r)
1581 			return r;
1582 		r = drm_syncobj_get_handle(filp, syncobj, &info->out.handle);
1583 		drm_syncobj_put(syncobj);
1584 		return r;
1585 
1586 	case AMDGPU_FENCE_TO_HANDLE_GET_SYNCOBJ_FD:
1587 		r = drm_syncobj_create(&syncobj, 0, fence);
1588 		dma_fence_put(fence);
1589 		if (r)
1590 			return r;
1591 		r = drm_syncobj_get_fd(syncobj, (int *)&info->out.handle);
1592 		drm_syncobj_put(syncobj);
1593 		return r;
1594 
1595 	case AMDGPU_FENCE_TO_HANDLE_GET_SYNC_FILE_FD:
1596 		fd = get_unused_fd_flags(O_CLOEXEC);
1597 		if (fd < 0) {
1598 			dma_fence_put(fence);
1599 			return fd;
1600 		}
1601 
1602 		sync_file = sync_file_create(fence);
1603 		dma_fence_put(fence);
1604 		if (!sync_file) {
1605 			put_unused_fd(fd);
1606 			return -ENOMEM;
1607 		}
1608 
1609 		fd_install(fd, sync_file->file);
1610 		info->out.handle = fd;
1611 		return 0;
1612 
1613 	default:
1614 		dma_fence_put(fence);
1615 		return -EINVAL;
1616 	}
1617 }
1618 
1619 /**
1620  * amdgpu_cs_wait_all_fences - wait on all fences to signal
1621  *
1622  * @adev: amdgpu device
1623  * @filp: file private
1624  * @wait: wait parameters
1625  * @fences: array of drm_amdgpu_fence
1626  */
1627 static int amdgpu_cs_wait_all_fences(struct amdgpu_device *adev,
1628 				     struct drm_file *filp,
1629 				     union drm_amdgpu_wait_fences *wait,
1630 				     struct drm_amdgpu_fence *fences)
1631 {
1632 	uint32_t fence_count = wait->in.fence_count;
1633 	unsigned int i;
1634 	long r = 1;
1635 
1636 	for (i = 0; i < fence_count; i++) {
1637 		struct dma_fence *fence;
1638 		unsigned long timeout = amdgpu_gem_timeout(wait->in.timeout_ns);
1639 
1640 		fence = amdgpu_cs_get_fence(adev, filp, &fences[i]);
1641 		if (IS_ERR(fence))
1642 			return PTR_ERR(fence);
1643 		else if (!fence)
1644 			continue;
1645 
1646 		r = dma_fence_wait_timeout(fence, true, timeout);
1647 		if (r > 0 && fence->error)
1648 			r = fence->error;
1649 
1650 		dma_fence_put(fence);
1651 		if (r < 0)
1652 			return r;
1653 
1654 		if (r == 0)
1655 			break;
1656 	}
1657 
1658 	memset(wait, 0, sizeof(*wait));
1659 	wait->out.status = (r > 0);
1660 
1661 	return 0;
1662 }
1663 
1664 /**
1665  * amdgpu_cs_wait_any_fence - wait on any fence to signal
1666  *
1667  * @adev: amdgpu device
1668  * @filp: file private
1669  * @wait: wait parameters
1670  * @fences: array of drm_amdgpu_fence
1671  */
1672 static int amdgpu_cs_wait_any_fence(struct amdgpu_device *adev,
1673 				    struct drm_file *filp,
1674 				    union drm_amdgpu_wait_fences *wait,
1675 				    struct drm_amdgpu_fence *fences)
1676 {
1677 	unsigned long timeout = amdgpu_gem_timeout(wait->in.timeout_ns);
1678 	uint32_t fence_count = wait->in.fence_count;
1679 	uint32_t first = ~0;
1680 	struct dma_fence **array;
1681 	unsigned int i;
1682 	long r;
1683 
1684 	/* Prepare the fence array */
1685 	array = kzalloc_objs(struct dma_fence *, fence_count);
1686 
1687 	if (array == NULL)
1688 		return -ENOMEM;
1689 
1690 	for (i = 0; i < fence_count; i++) {
1691 		struct dma_fence *fence;
1692 
1693 		fence = amdgpu_cs_get_fence(adev, filp, &fences[i]);
1694 		if (IS_ERR(fence)) {
1695 			r = PTR_ERR(fence);
1696 			goto err_free_fence_array;
1697 		} else if (fence) {
1698 			array[i] = fence;
1699 		} else { /* NULL, the fence has been already signaled */
1700 			r = 1;
1701 			first = i;
1702 			goto out;
1703 		}
1704 	}
1705 
1706 	r = dma_fence_wait_any_timeout(array, fence_count, true, timeout,
1707 				       &first);
1708 	if (r < 0)
1709 		goto err_free_fence_array;
1710 
1711 out:
1712 	memset(wait, 0, sizeof(*wait));
1713 	wait->out.status = (r > 0);
1714 	wait->out.first_signaled = first;
1715 
1716 	if (first < fence_count && array[first])
1717 		r = array[first]->error;
1718 	else
1719 		r = 0;
1720 
1721 err_free_fence_array:
1722 	for (i = 0; i < fence_count; i++)
1723 		dma_fence_put(array[i]);
1724 	kfree(array);
1725 
1726 	return r;
1727 }
1728 
1729 /**
1730  * amdgpu_cs_wait_fences_ioctl - wait for multiple command submissions to finish
1731  *
1732  * @dev: drm device
1733  * @data: data from userspace
1734  * @filp: file private
1735  */
1736 int amdgpu_cs_wait_fences_ioctl(struct drm_device *dev, void *data,
1737 				struct drm_file *filp)
1738 {
1739 	struct amdgpu_device *adev = drm_to_adev(dev);
1740 	union drm_amdgpu_wait_fences *wait = data;
1741 	struct drm_amdgpu_fence *fences;
1742 	int r;
1743 
1744 	/*
1745 	 * fence_count must be non-zero; dma_fence_wait_any_timeout()
1746 	 * does not accept an empty fence array.
1747 	 */
1748 	if (!wait->in.fence_count)
1749 		return -EINVAL;
1750 
1751 	/* Get the fences from userspace */
1752 	fences = memdup_array_user(u64_to_user_ptr(wait->in.fences),
1753 				   wait->in.fence_count,
1754 				   sizeof(struct drm_amdgpu_fence));
1755 	if (IS_ERR(fences))
1756 		return PTR_ERR(fences);
1757 
1758 	if (wait->in.wait_all)
1759 		r = amdgpu_cs_wait_all_fences(adev, filp, wait, fences);
1760 	else
1761 		r = amdgpu_cs_wait_any_fence(adev, filp, wait, fences);
1762 
1763 	kfree(fences);
1764 
1765 	return r;
1766 }
1767 
1768 /**
1769  * amdgpu_cs_find_mapping - find bo_va for VM address
1770  *
1771  * @parser: command submission parser context
1772  * @addr: VM address
1773  * @bo: resulting BO of the mapping found
1774  * @map: Placeholder to return found BO mapping
1775  *
1776  * Search the buffer objects in the command submission context for a certain
1777  * virtual memory address. Returns allocation structure when found, NULL
1778  * otherwise.
1779  */
1780 int amdgpu_cs_find_mapping(struct amdgpu_cs_parser *parser,
1781 			   uint64_t addr, struct amdgpu_bo **bo,
1782 			   struct amdgpu_bo_va_mapping **map)
1783 {
1784 	struct amdgpu_fpriv *fpriv = parser->filp->driver_priv;
1785 	struct ttm_operation_ctx ctx = { false, false };
1786 	struct amdgpu_vm *vm = &fpriv->vm;
1787 	struct amdgpu_bo_va_mapping *mapping;
1788 	int i, r;
1789 
1790 	addr /= AMDGPU_GPU_PAGE_SIZE;
1791 
1792 	mapping = amdgpu_vm_bo_lookup_mapping(vm, addr);
1793 	if (!mapping || !mapping->bo_va || !mapping->bo_va->base.bo)
1794 		return -EINVAL;
1795 
1796 	*bo = mapping->bo_va->base.bo;
1797 	*map = mapping;
1798 
1799 	/* Double check that the BO is reserved by this CS */
1800 	if (dma_resv_locking_ctx((*bo)->tbo.base.resv) != drm_exec_ticket(&parser->exec))
1801 		return -EINVAL;
1802 
1803 	/* Make sure VRAM is allocated contigiously */
1804 	(*bo)->flags |= AMDGPU_GEM_CREATE_VRAM_CONTIGUOUS;
1805 	if ((*bo)->tbo.resource->mem_type == TTM_PL_VRAM &&
1806 	    !((*bo)->tbo.resource->placement & TTM_PL_FLAG_CONTIGUOUS)) {
1807 
1808 		amdgpu_bo_placement_from_domain(*bo, (*bo)->allowed_domains);
1809 		for (i = 0; i < (*bo)->placement.num_placement; i++)
1810 			(*bo)->placements[i].flags |= TTM_PL_FLAG_CONTIGUOUS;
1811 		r = ttm_bo_validate(&(*bo)->tbo, &(*bo)->placement, &ctx);
1812 		if (r)
1813 			return r;
1814 	}
1815 
1816 	return amdgpu_ttm_alloc_gart(&(*bo)->tbo);
1817 }
1818