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 /* 46 * Maximum IB length (dwords) for rings whose emit_ib packet format 47 * documents a 20-bit size field. 48 */ 49 #define AMDGPU_GFX_SDMA_IB_PACKET_SIZE_MAX_DW 0xFFFFF 50 #define AMDGPU_MM_IB_PACKET_SIZE_MAX_DW 0x7FFFF0 51 52 static u32 amdgpu_cs_ib_packet_size_max_dw(enum amdgpu_ring_type type) 53 { 54 switch (type) { 55 case AMDGPU_RING_TYPE_GFX: 56 case AMDGPU_RING_TYPE_COMPUTE: 57 case AMDGPU_RING_TYPE_SDMA: 58 case AMDGPU_RING_TYPE_VPE: 59 return AMDGPU_GFX_SDMA_IB_PACKET_SIZE_MAX_DW; 60 default: 61 return AMDGPU_MM_IB_PACKET_SIZE_MAX_DW; 62 } 63 } 64 65 static int amdgpu_cs_parser_init(struct amdgpu_cs_parser *p, 66 struct amdgpu_device *adev, 67 struct drm_file *filp, 68 union drm_amdgpu_cs *cs) 69 { 70 struct amdgpu_fpriv *fpriv = filp->driver_priv; 71 72 if (cs->in.num_chunks == 0) 73 return -EINVAL; 74 75 memset(p, 0, sizeof(*p)); 76 p->adev = adev; 77 p->filp = filp; 78 79 p->ctx = amdgpu_ctx_get(fpriv, cs->in.ctx_id); 80 if (!p->ctx) 81 return -EINVAL; 82 83 amdgpu_sync_create(&p->sync); 84 drm_exec_init(&p->exec, DRM_EXEC_INTERRUPTIBLE_WAIT | 85 DRM_EXEC_IGNORE_DUPLICATES, 0); 86 return 0; 87 } 88 89 static int amdgpu_cs_job_idx(struct amdgpu_cs_parser *p, 90 struct drm_amdgpu_cs_chunk_ib *chunk_ib) 91 { 92 struct drm_sched_entity *entity; 93 unsigned int i; 94 int r; 95 96 r = amdgpu_ctx_get_entity(p->ctx, chunk_ib->ip_type, 97 chunk_ib->ip_instance, 98 chunk_ib->ring, &entity); 99 if (r) 100 return r; 101 102 /* Check if we can add this IB to some existing job */ 103 for (i = 0; i < p->gang_size; ++i) 104 if (p->entities[i] == entity) 105 return i; 106 107 /* If not increase the gang size if possible */ 108 if (i == AMDGPU_CS_GANG_SIZE) 109 return -EINVAL; 110 111 p->entities[i] = entity; 112 p->gang_size = i + 1; 113 return i; 114 } 115 116 static int amdgpu_cs_p1_ib(struct amdgpu_cs_parser *p, 117 struct drm_amdgpu_cs_chunk_ib *chunk_ib, 118 unsigned int *num_ibs) 119 { 120 int r; 121 122 r = amdgpu_cs_job_idx(p, chunk_ib); 123 if (r < 0) 124 return r; 125 126 if (num_ibs[r] >= amdgpu_ring_max_ibs(chunk_ib->ip_type)) 127 return -EINVAL; 128 129 ++(num_ibs[r]); 130 p->gang_leader_idx = r; 131 return 0; 132 } 133 134 static int amdgpu_cs_p1_user_fence(struct amdgpu_cs_parser *p, 135 struct drm_amdgpu_cs_chunk_fence *data, 136 uint32_t *offset) 137 { 138 struct drm_gem_object *gobj; 139 unsigned long size; 140 141 gobj = drm_gem_object_lookup(p->filp, data->handle); 142 if (gobj == NULL) 143 return -EINVAL; 144 145 p->uf_bo = amdgpu_bo_ref(gem_to_amdgpu_bo(gobj)); 146 drm_gem_object_put(gobj); 147 148 size = amdgpu_bo_size(p->uf_bo); 149 if (size != PAGE_SIZE || data->offset > (size - 8)) 150 return -EINVAL; 151 152 if (amdgpu_ttm_tt_get_usermm(p->uf_bo->tbo.ttm)) 153 return -EINVAL; 154 155 *offset = data->offset; 156 return 0; 157 } 158 159 static int amdgpu_cs_p1_bo_handles(struct amdgpu_cs_parser *p, 160 struct drm_amdgpu_bo_list_in *data) 161 { 162 struct drm_amdgpu_bo_list_entry *info; 163 int r; 164 165 r = amdgpu_bo_create_list_entry_array(data, &info); 166 if (r) 167 return r; 168 169 r = amdgpu_bo_list_create(p->adev, p->filp, info, data->bo_number, 170 &p->bo_list); 171 if (r) 172 goto error_free; 173 174 kvfree(info); 175 return 0; 176 177 error_free: 178 kvfree(info); 179 180 return r; 181 } 182 183 /* Copy the data from userspace and go over it the first time */ 184 static int amdgpu_cs_pass1(struct amdgpu_cs_parser *p, 185 union drm_amdgpu_cs *cs) 186 { 187 struct amdgpu_fpriv *fpriv = p->filp->driver_priv; 188 unsigned int num_ibs[AMDGPU_CS_GANG_SIZE] = { }; 189 struct amdgpu_vm *vm = &fpriv->vm; 190 uint64_t *chunk_array; 191 uint32_t uf_offset = 0; 192 size_t size; 193 int ret; 194 int i; 195 196 chunk_array = memdup_array_user(u64_to_user_ptr(cs->in.chunks), 197 cs->in.num_chunks, 198 sizeof(uint64_t)); 199 if (IS_ERR(chunk_array)) 200 return PTR_ERR(chunk_array); 201 202 p->nchunks = cs->in.num_chunks; 203 p->chunks = kvmalloc_objs(struct amdgpu_cs_chunk, p->nchunks); 204 if (!p->chunks) { 205 ret = -ENOMEM; 206 goto free_chunk; 207 } 208 209 for (i = 0; i < p->nchunks; i++) { 210 struct drm_amdgpu_cs_chunk __user *chunk_ptr = NULL; 211 struct drm_amdgpu_cs_chunk user_chunk; 212 213 chunk_ptr = u64_to_user_ptr(chunk_array[i]); 214 if (copy_from_user(&user_chunk, chunk_ptr, 215 sizeof(struct drm_amdgpu_cs_chunk))) { 216 ret = -EFAULT; 217 i--; 218 goto free_partial_kdata; 219 } 220 p->chunks[i].chunk_id = user_chunk.chunk_id; 221 p->chunks[i].length_dw = user_chunk.length_dw; 222 223 size = p->chunks[i].length_dw; 224 225 p->chunks[i].kdata = vmemdup_array_user(u64_to_user_ptr(user_chunk.chunk_data), 226 size, 227 sizeof(uint32_t)); 228 if (IS_ERR(p->chunks[i].kdata)) { 229 ret = PTR_ERR(p->chunks[i].kdata); 230 i--; 231 goto free_partial_kdata; 232 } 233 size *= sizeof(uint32_t); 234 235 /* Assume the worst on the following checks */ 236 ret = -EINVAL; 237 switch (p->chunks[i].chunk_id) { 238 case AMDGPU_CHUNK_ID_IB: 239 if (size < sizeof(struct drm_amdgpu_cs_chunk_ib)) 240 goto free_partial_kdata; 241 242 ret = amdgpu_cs_p1_ib(p, p->chunks[i].kdata, num_ibs); 243 if (ret) 244 goto free_partial_kdata; 245 break; 246 247 case AMDGPU_CHUNK_ID_FENCE: 248 if (size < sizeof(struct drm_amdgpu_cs_chunk_fence)) 249 goto free_partial_kdata; 250 251 /* Only a single user fence is allowed to simplify handling. */ 252 if (p->uf_bo) 253 goto free_partial_kdata; 254 255 ret = amdgpu_cs_p1_user_fence(p, p->chunks[i].kdata, 256 &uf_offset); 257 if (ret) 258 goto free_partial_kdata; 259 break; 260 261 case AMDGPU_CHUNK_ID_BO_HANDLES: 262 if (size < sizeof(struct drm_amdgpu_bo_list_in)) 263 goto free_partial_kdata; 264 265 /* Only a single BO list is allowed to simplify handling. */ 266 if (p->bo_list) 267 goto free_partial_kdata; 268 269 ret = amdgpu_cs_p1_bo_handles(p, p->chunks[i].kdata); 270 if (ret) 271 goto free_partial_kdata; 272 break; 273 274 case AMDGPU_CHUNK_ID_CP_GFX_SHADOW: 275 if (size < sizeof(struct drm_amdgpu_cs_chunk_cp_gfx_shadow)) 276 goto free_partial_kdata; 277 break; 278 279 case AMDGPU_CHUNK_ID_DEPENDENCIES: 280 case AMDGPU_CHUNK_ID_SYNCOBJ_IN: 281 case AMDGPU_CHUNK_ID_SYNCOBJ_OUT: 282 case AMDGPU_CHUNK_ID_SCHEDULED_DEPENDENCIES: 283 case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_WAIT: 284 case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_SIGNAL: 285 break; 286 287 default: 288 goto free_partial_kdata; 289 } 290 } 291 292 if (!p->gang_size || (amdgpu_sriov_vf(p->adev) && p->gang_size > 1)) { 293 ret = -EINVAL; 294 goto free_all_kdata; 295 } 296 297 for (i = 0; i < p->gang_size; ++i) { 298 ret = amdgpu_job_alloc(p->adev, vm, p->entities[i], vm, 299 num_ibs[i], &p->jobs[i], 300 p->filp->client_id); 301 if (ret) 302 goto free_all_kdata; 303 switch (p->adev->enforce_isolation[fpriv->xcp_id]) { 304 case AMDGPU_ENFORCE_ISOLATION_DISABLE: 305 default: 306 p->jobs[i]->enforce_isolation = false; 307 p->jobs[i]->run_cleaner_shader = false; 308 break; 309 case AMDGPU_ENFORCE_ISOLATION_ENABLE: 310 p->jobs[i]->enforce_isolation = true; 311 p->jobs[i]->run_cleaner_shader = true; 312 break; 313 case AMDGPU_ENFORCE_ISOLATION_ENABLE_LEGACY: 314 p->jobs[i]->enforce_isolation = true; 315 p->jobs[i]->run_cleaner_shader = false; 316 break; 317 case AMDGPU_ENFORCE_ISOLATION_NO_CLEANER_SHADER: 318 p->jobs[i]->enforce_isolation = true; 319 p->jobs[i]->run_cleaner_shader = false; 320 break; 321 } 322 } 323 p->gang_leader = p->jobs[p->gang_leader_idx]; 324 325 if (p->ctx->generation != p->gang_leader->generation) { 326 ret = -ECANCELED; 327 goto free_all_kdata; 328 } 329 330 if (p->uf_bo) 331 p->gang_leader->uf_addr = uf_offset; 332 kvfree(chunk_array); 333 334 /* Use this opportunity to fill in task info for the vm */ 335 amdgpu_vm_set_task_info(vm); 336 337 return 0; 338 339 free_all_kdata: 340 i = p->nchunks - 1; 341 free_partial_kdata: 342 for (; i >= 0; i--) 343 kvfree(p->chunks[i].kdata); 344 kvfree(p->chunks); 345 p->chunks = NULL; 346 p->nchunks = 0; 347 free_chunk: 348 kvfree(chunk_array); 349 350 return ret; 351 } 352 353 static int amdgpu_cs_p2_ib(struct amdgpu_cs_parser *p, 354 struct amdgpu_cs_chunk *chunk, 355 unsigned int *ce_preempt, 356 unsigned int *de_preempt) 357 { 358 struct drm_amdgpu_cs_chunk_ib *chunk_ib = chunk->kdata; 359 struct amdgpu_fpriv *fpriv = p->filp->driver_priv; 360 struct amdgpu_vm *vm = &fpriv->vm; 361 struct amdgpu_ring *ring; 362 struct amdgpu_job *job; 363 struct amdgpu_ib *ib; 364 int r; 365 366 r = amdgpu_cs_job_idx(p, chunk_ib); 367 if (r < 0) 368 return r; 369 370 job = p->jobs[r]; 371 ring = amdgpu_job_ring(job); 372 373 /* submissions to kernel queues are disabled */ 374 if (ring->no_user_submission) 375 return -EINVAL; 376 377 /* MM engine doesn't support user fences */ 378 if (p->uf_bo && ring->funcs->no_user_fence) 379 return -EINVAL; 380 381 if (!p->adev->debug_enable_ce_cs && 382 chunk_ib->flags & AMDGPU_IB_FLAG_CE) { 383 dev_err_ratelimited(p->adev->dev, "CE CS is blocked, use debug=0x400 to override\n"); 384 return -EINVAL; 385 } 386 387 if (chunk_ib->ip_type == AMDGPU_HW_IP_GFX && 388 chunk_ib->flags & AMDGPU_IB_FLAG_PREEMPT) { 389 if (chunk_ib->flags & AMDGPU_IB_FLAG_CE) 390 (*ce_preempt)++; 391 else 392 (*de_preempt)++; 393 394 /* Each GFX command submit allows only 1 IB max 395 * preemptible for CE & DE */ 396 if (*ce_preempt > 1 || *de_preempt > 1) 397 return -EINVAL; 398 } 399 400 if (chunk_ib->ib_bytes / 4 > 401 amdgpu_cs_ib_packet_size_max_dw(ring->funcs->type)) 402 return -EINVAL; 403 404 ib = &job->ibs[job->num_ibs++]; 405 406 if (chunk_ib->flags & AMDGPU_IB_FLAG_PREAMBLE) 407 job->preamble_status |= AMDGPU_PREAMBLE_IB_PRESENT; 408 409 r = amdgpu_ib_get(p->adev, vm, ring->funcs->parse_cs ? 410 chunk_ib->ib_bytes : 0, 411 AMDGPU_IB_POOL_DELAYED, ib); 412 if (r) { 413 drm_err(adev_to_drm(p->adev), "Failed to get ib !\n"); 414 return r; 415 } 416 417 ib->gpu_addr = chunk_ib->va_start; 418 ib->length_dw = chunk_ib->ib_bytes / 4; 419 ib->flags = chunk_ib->flags; 420 return 0; 421 } 422 423 static int amdgpu_cs_p2_dependencies(struct amdgpu_cs_parser *p, 424 struct amdgpu_cs_chunk *chunk) 425 { 426 struct drm_amdgpu_cs_chunk_dep *deps = chunk->kdata; 427 struct amdgpu_fpriv *fpriv = p->filp->driver_priv; 428 unsigned int num_deps; 429 int i, r; 430 431 num_deps = chunk->length_dw * 4 / 432 sizeof(struct drm_amdgpu_cs_chunk_dep); 433 434 for (i = 0; i < num_deps; ++i) { 435 struct amdgpu_ctx *ctx; 436 struct drm_sched_entity *entity; 437 struct dma_fence *fence; 438 439 ctx = amdgpu_ctx_get(fpriv, deps[i].ctx_id); 440 if (ctx == NULL) 441 return -EINVAL; 442 443 r = amdgpu_ctx_get_entity(ctx, deps[i].ip_type, 444 deps[i].ip_instance, 445 deps[i].ring, &entity); 446 if (r) { 447 amdgpu_ctx_put(ctx); 448 return r; 449 } 450 451 fence = amdgpu_ctx_get_fence(ctx, entity, deps[i].handle); 452 amdgpu_ctx_put(ctx); 453 454 if (IS_ERR(fence)) 455 return PTR_ERR(fence); 456 else if (!fence) 457 continue; 458 459 if (chunk->chunk_id == AMDGPU_CHUNK_ID_SCHEDULED_DEPENDENCIES) { 460 struct drm_sched_fence *s_fence; 461 struct dma_fence *old = fence; 462 463 s_fence = to_drm_sched_fence(fence); 464 fence = dma_fence_get(&s_fence->scheduled); 465 dma_fence_put(old); 466 } 467 468 r = amdgpu_sync_fence(&p->sync, fence, GFP_KERNEL); 469 dma_fence_put(fence); 470 if (r) 471 return r; 472 } 473 return 0; 474 } 475 476 static int amdgpu_syncobj_lookup_and_add(struct amdgpu_cs_parser *p, 477 uint32_t handle, u64 point, 478 u64 flags) 479 { 480 struct dma_fence *fence; 481 int r; 482 483 r = drm_syncobj_find_fence(p->filp, handle, point, flags, &fence); 484 if (r) { 485 drm_err(adev_to_drm(p->adev), "syncobj %u failed to find fence @ %llu (%d)!\n", 486 handle, point, r); 487 return r; 488 } 489 490 r = amdgpu_sync_fence(&p->sync, fence, GFP_KERNEL); 491 dma_fence_put(fence); 492 return r; 493 } 494 495 static int amdgpu_cs_p2_syncobj_in(struct amdgpu_cs_parser *p, 496 struct amdgpu_cs_chunk *chunk) 497 { 498 struct drm_amdgpu_cs_chunk_sem *deps = chunk->kdata; 499 unsigned int num_deps; 500 int i, r; 501 502 num_deps = chunk->length_dw * 4 / 503 sizeof(struct drm_amdgpu_cs_chunk_sem); 504 for (i = 0; i < num_deps; ++i) { 505 r = amdgpu_syncobj_lookup_and_add(p, deps[i].handle, 0, 0); 506 if (r) 507 return r; 508 } 509 510 return 0; 511 } 512 513 static int amdgpu_cs_p2_syncobj_timeline_wait(struct amdgpu_cs_parser *p, 514 struct amdgpu_cs_chunk *chunk) 515 { 516 struct drm_amdgpu_cs_chunk_syncobj *syncobj_deps = chunk->kdata; 517 unsigned int num_deps; 518 int i, r; 519 520 num_deps = chunk->length_dw * 4 / 521 sizeof(struct drm_amdgpu_cs_chunk_syncobj); 522 for (i = 0; i < num_deps; ++i) { 523 r = amdgpu_syncobj_lookup_and_add(p, syncobj_deps[i].handle, 524 syncobj_deps[i].point, 525 syncobj_deps[i].flags); 526 if (r) 527 return r; 528 } 529 530 return 0; 531 } 532 533 static int amdgpu_cs_p2_syncobj_out(struct amdgpu_cs_parser *p, 534 struct amdgpu_cs_chunk *chunk) 535 { 536 struct drm_amdgpu_cs_chunk_sem *deps = chunk->kdata; 537 unsigned int num_deps; 538 int i; 539 540 num_deps = chunk->length_dw * 4 / 541 sizeof(struct drm_amdgpu_cs_chunk_sem); 542 543 if (p->post_deps) 544 return -EINVAL; 545 546 p->post_deps = kmalloc_objs(*p->post_deps, num_deps); 547 p->num_post_deps = 0; 548 549 if (!p->post_deps) 550 return -ENOMEM; 551 552 553 for (i = 0; i < num_deps; ++i) { 554 p->post_deps[i].syncobj = 555 drm_syncobj_find(p->filp, deps[i].handle); 556 if (!p->post_deps[i].syncobj) 557 return -EINVAL; 558 p->post_deps[i].chain = NULL; 559 p->post_deps[i].point = 0; 560 p->num_post_deps++; 561 } 562 563 return 0; 564 } 565 566 static int amdgpu_cs_p2_syncobj_timeline_signal(struct amdgpu_cs_parser *p, 567 struct amdgpu_cs_chunk *chunk) 568 { 569 struct drm_amdgpu_cs_chunk_syncobj *syncobj_deps = chunk->kdata; 570 unsigned int num_deps; 571 int i; 572 573 num_deps = chunk->length_dw * 4 / 574 sizeof(struct drm_amdgpu_cs_chunk_syncobj); 575 576 if (p->post_deps) 577 return -EINVAL; 578 579 p->post_deps = kmalloc_objs(*p->post_deps, num_deps); 580 p->num_post_deps = 0; 581 582 if (!p->post_deps) 583 return -ENOMEM; 584 585 for (i = 0; i < num_deps; ++i) { 586 struct amdgpu_cs_post_dep *dep = &p->post_deps[i]; 587 588 dep->chain = NULL; 589 if (syncobj_deps[i].point) { 590 dep->chain = dma_fence_chain_alloc(); 591 if (!dep->chain) 592 return -ENOMEM; 593 } 594 595 dep->syncobj = drm_syncobj_find(p->filp, 596 syncobj_deps[i].handle); 597 if (!dep->syncobj) { 598 dma_fence_chain_free(dep->chain); 599 return -EINVAL; 600 } 601 dep->point = syncobj_deps[i].point; 602 p->num_post_deps++; 603 } 604 605 return 0; 606 } 607 608 static int amdgpu_cs_p2_shadow(struct amdgpu_cs_parser *p, 609 struct amdgpu_cs_chunk *chunk) 610 { 611 struct drm_amdgpu_cs_chunk_cp_gfx_shadow *shadow = chunk->kdata; 612 int i; 613 614 if (shadow->flags & ~AMDGPU_CS_CHUNK_CP_GFX_SHADOW_FLAGS_INIT_SHADOW) 615 return -EINVAL; 616 617 for (i = 0; i < p->gang_size; ++i) { 618 p->jobs[i]->shadow_va = shadow->shadow_va; 619 p->jobs[i]->csa_va = shadow->csa_va; 620 p->jobs[i]->gds_va = shadow->gds_va; 621 p->jobs[i]->init_shadow = 622 shadow->flags & AMDGPU_CS_CHUNK_CP_GFX_SHADOW_FLAGS_INIT_SHADOW; 623 } 624 625 return 0; 626 } 627 628 static int amdgpu_cs_pass2(struct amdgpu_cs_parser *p) 629 { 630 unsigned int ce_preempt = 0, de_preempt = 0; 631 int i, r; 632 633 for (i = 0; i < p->nchunks; ++i) { 634 struct amdgpu_cs_chunk *chunk; 635 636 chunk = &p->chunks[i]; 637 638 switch (chunk->chunk_id) { 639 case AMDGPU_CHUNK_ID_IB: 640 r = amdgpu_cs_p2_ib(p, chunk, &ce_preempt, &de_preempt); 641 if (r) 642 return r; 643 break; 644 case AMDGPU_CHUNK_ID_DEPENDENCIES: 645 case AMDGPU_CHUNK_ID_SCHEDULED_DEPENDENCIES: 646 r = amdgpu_cs_p2_dependencies(p, chunk); 647 if (r) 648 return r; 649 break; 650 case AMDGPU_CHUNK_ID_SYNCOBJ_IN: 651 r = amdgpu_cs_p2_syncobj_in(p, chunk); 652 if (r) 653 return r; 654 break; 655 case AMDGPU_CHUNK_ID_SYNCOBJ_OUT: 656 r = amdgpu_cs_p2_syncobj_out(p, chunk); 657 if (r) 658 return r; 659 break; 660 case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_WAIT: 661 r = amdgpu_cs_p2_syncobj_timeline_wait(p, chunk); 662 if (r) 663 return r; 664 break; 665 case AMDGPU_CHUNK_ID_SYNCOBJ_TIMELINE_SIGNAL: 666 r = amdgpu_cs_p2_syncobj_timeline_signal(p, chunk); 667 if (r) 668 return r; 669 break; 670 case AMDGPU_CHUNK_ID_CP_GFX_SHADOW: 671 r = amdgpu_cs_p2_shadow(p, chunk); 672 if (r) 673 return r; 674 break; 675 } 676 } 677 678 return 0; 679 } 680 681 /* Convert microseconds to bytes. */ 682 static u64 us_to_bytes(struct amdgpu_device *adev, s64 us) 683 { 684 if (us <= 0 || !adev->mm_stats.log2_max_MBps) 685 return 0; 686 687 /* Since accum_us is incremented by a million per second, just 688 * multiply it by the number of MB/s to get the number of bytes. 689 */ 690 return us << adev->mm_stats.log2_max_MBps; 691 } 692 693 static s64 bytes_to_us(struct amdgpu_device *adev, u64 bytes) 694 { 695 if (!adev->mm_stats.log2_max_MBps) 696 return 0; 697 698 return bytes >> adev->mm_stats.log2_max_MBps; 699 } 700 701 /* Returns how many bytes TTM can move right now. If no bytes can be moved, 702 * it returns 0. If it returns non-zero, it's OK to move at least one buffer, 703 * which means it can go over the threshold once. If that happens, the driver 704 * will be in debt and no other buffer migrations can be done until that debt 705 * is repaid. 706 * 707 * This approach allows moving a buffer of any size (it's important to allow 708 * that). 709 * 710 * The currency is simply time in microseconds and it increases as the clock 711 * ticks. The accumulated microseconds (us) are converted to bytes and 712 * returned. 713 */ 714 static void amdgpu_cs_get_threshold_for_moves(struct amdgpu_device *adev, 715 u64 *max_bytes, 716 u64 *max_vis_bytes) 717 { 718 s64 time_us, increment_us; 719 u64 free_vram, total_vram, used_vram; 720 /* Allow a maximum of 200 accumulated ms. This is basically per-IB 721 * throttling. 722 * 723 * It means that in order to get full max MBps, at least 5 IBs per 724 * second must be submitted and not more than 200ms apart from each 725 * other. 726 */ 727 const s64 us_upper_bound = 200000; 728 729 if ((!adev->mm_stats.log2_max_MBps) || !ttm_resource_manager_used(&adev->mman.vram_mgr.manager)) { 730 *max_bytes = 0; 731 *max_vis_bytes = 0; 732 return; 733 } 734 735 total_vram = adev->gmc.real_vram_size - atomic64_read(&adev->vram_pin_size); 736 used_vram = ttm_resource_manager_usage(&adev->mman.vram_mgr.manager); 737 free_vram = used_vram >= total_vram ? 0 : total_vram - used_vram; 738 739 spin_lock(&adev->mm_stats.lock); 740 741 /* Increase the amount of accumulated us. */ 742 time_us = ktime_to_us(ktime_get()); 743 increment_us = time_us - adev->mm_stats.last_update_us; 744 adev->mm_stats.last_update_us = time_us; 745 adev->mm_stats.accum_us = min(adev->mm_stats.accum_us + increment_us, 746 us_upper_bound); 747 748 /* This prevents the short period of low performance when the VRAM 749 * usage is low and the driver is in debt or doesn't have enough 750 * accumulated us to fill VRAM quickly. 751 * 752 * The situation can occur in these cases: 753 * - a lot of VRAM is freed by userspace 754 * - the presence of a big buffer causes a lot of evictions 755 * (solution: split buffers into smaller ones) 756 * 757 * If 128 MB or 1/8th of VRAM is free, start filling it now by setting 758 * accum_us to a positive number. 759 */ 760 if (free_vram >= 128 * 1024 * 1024 || free_vram >= total_vram / 8) { 761 s64 min_us; 762 763 /* Be more aggressive on dGPUs. Try to fill a portion of free 764 * VRAM now. 765 */ 766 if (!(adev->flags & AMD_IS_APU)) 767 min_us = bytes_to_us(adev, free_vram / 4); 768 else 769 min_us = 0; /* Reset accum_us on APUs. */ 770 771 adev->mm_stats.accum_us = max(min_us, adev->mm_stats.accum_us); 772 } 773 774 /* This is set to 0 if the driver is in debt to disallow (optional) 775 * buffer moves. 776 */ 777 *max_bytes = us_to_bytes(adev, adev->mm_stats.accum_us); 778 779 /* Do the same for visible VRAM if half of it is free */ 780 if (!amdgpu_gmc_vram_full_visible(&adev->gmc)) { 781 u64 total_vis_vram = adev->gmc.visible_vram_size; 782 u64 used_vis_vram = 783 amdgpu_vram_mgr_vis_usage(&adev->mman.vram_mgr); 784 785 if (used_vis_vram < total_vis_vram) { 786 u64 free_vis_vram = total_vis_vram - used_vis_vram; 787 788 adev->mm_stats.accum_us_vis = min(adev->mm_stats.accum_us_vis + 789 increment_us, us_upper_bound); 790 791 if (free_vis_vram >= total_vis_vram / 2) 792 adev->mm_stats.accum_us_vis = 793 max(bytes_to_us(adev, free_vis_vram / 2), 794 adev->mm_stats.accum_us_vis); 795 } 796 797 *max_vis_bytes = us_to_bytes(adev, adev->mm_stats.accum_us_vis); 798 } else { 799 *max_vis_bytes = 0; 800 } 801 802 spin_unlock(&adev->mm_stats.lock); 803 } 804 805 /* Report how many bytes have really been moved for the last command 806 * submission. This can result in a debt that can stop buffer migrations 807 * temporarily. 808 */ 809 void amdgpu_cs_report_moved_bytes(struct amdgpu_device *adev, u64 num_bytes, 810 u64 num_vis_bytes) 811 { 812 spin_lock(&adev->mm_stats.lock); 813 adev->mm_stats.accum_us -= bytes_to_us(adev, num_bytes); 814 adev->mm_stats.accum_us_vis -= bytes_to_us(adev, num_vis_bytes); 815 spin_unlock(&adev->mm_stats.lock); 816 } 817 818 static int amdgpu_cs_bo_validate(void *param, struct amdgpu_bo *bo) 819 { 820 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->tbo.bdev); 821 struct amdgpu_cs_parser *p = param; 822 struct ttm_operation_ctx ctx = { 823 .interruptible = true, 824 .no_wait_gpu = false, 825 .resv = bo->tbo.base.resv 826 }; 827 uint32_t domain; 828 int r; 829 830 if (bo->tbo.pin_count) 831 return 0; 832 833 /* Don't move this buffer if we have depleted our allowance 834 * to move it. Don't move anything if the threshold is zero. 835 */ 836 if (p->bytes_moved < p->bytes_moved_threshold && 837 (!bo->tbo.base.dma_buf || 838 list_empty(&bo->tbo.base.dma_buf->attachments))) { 839 if (!amdgpu_gmc_vram_full_visible(&adev->gmc) && 840 (bo->flags & AMDGPU_GEM_CREATE_CPU_ACCESS_REQUIRED)) { 841 /* And don't move a CPU_ACCESS_REQUIRED BO to limited 842 * visible VRAM if we've depleted our allowance to do 843 * that. 844 */ 845 if (p->bytes_moved_vis < p->bytes_moved_vis_threshold) 846 domain = bo->preferred_domains; 847 else 848 domain = bo->allowed_domains; 849 } else { 850 domain = bo->preferred_domains; 851 } 852 } else { 853 domain = bo->allowed_domains; 854 } 855 856 retry: 857 amdgpu_bo_placement_from_domain(bo, domain); 858 r = ttm_bo_validate(&bo->tbo, &bo->placement, &ctx); 859 860 p->bytes_moved += ctx.bytes_moved; 861 if (!amdgpu_gmc_vram_full_visible(&adev->gmc) && 862 amdgpu_res_cpu_visible(adev, bo->tbo.resource)) 863 p->bytes_moved_vis += ctx.bytes_moved; 864 865 if (unlikely(r == -ENOMEM) && domain != bo->allowed_domains) { 866 domain = bo->allowed_domains; 867 goto retry; 868 } 869 870 return r; 871 } 872 873 static int amdgpu_cs_parser_bos(struct amdgpu_cs_parser *p, 874 union drm_amdgpu_cs *cs) 875 { 876 struct amdgpu_fpriv *fpriv = p->filp->driver_priv; 877 struct ttm_operation_ctx ctx = { true, false }; 878 struct amdgpu_vm *vm = &fpriv->vm; 879 struct amdgpu_bo_list_entry *e; 880 struct drm_gem_object *obj; 881 unsigned int i; 882 int r; 883 884 /* p->bo_list could already be assigned if AMDGPU_CHUNK_ID_BO_HANDLES is present */ 885 if (cs->in.bo_list_handle) { 886 if (p->bo_list) 887 return -EINVAL; 888 889 r = amdgpu_bo_list_get(fpriv, cs->in.bo_list_handle, 890 &p->bo_list); 891 if (r) 892 return r; 893 } else if (!p->bo_list) { 894 /* Create a empty bo_list when no handle is provided */ 895 r = amdgpu_bo_list_create(p->adev, p->filp, NULL, 0, 896 &p->bo_list); 897 if (r) 898 return r; 899 } 900 901 mutex_lock(&p->bo_list->bo_list_mutex); 902 903 /* Get userptr backing pages. If pages are updated after registered 904 * in amdgpu_gem_userptr_ioctl(), amdgpu_cs_list_validate() will do 905 * amdgpu_ttm_backend_bind() to flush and invalidate new pages 906 */ 907 amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) { 908 bool userpage_invalidated = false; 909 struct amdgpu_bo *bo = e->bo; 910 911 e->range = amdgpu_hmm_range_alloc(NULL); 912 if (unlikely(!e->range)) { 913 r = -ENOMEM; 914 goto out_free_user_pages; 915 } 916 917 r = amdgpu_ttm_tt_get_user_pages(bo, e->range); 918 if (r) 919 goto out_free_user_pages; 920 921 for (i = 0; i < bo->tbo.ttm->num_pages; i++) { 922 if (bo->tbo.ttm->pages[i] != 923 hmm_pfn_to_page(e->range->hmm_range.hmm_pfns[i])) { 924 userpage_invalidated = true; 925 break; 926 } 927 } 928 e->user_invalidated = userpage_invalidated; 929 } 930 931 drm_exec_until_all_locked(&p->exec) { 932 r = amdgpu_vm_lock_pd(&fpriv->vm, &p->exec, 1 + p->gang_size); 933 drm_exec_retry_on_contention(&p->exec); 934 if (unlikely(r)) 935 goto out_free_user_pages; 936 937 amdgpu_bo_list_for_each_entry(e, p->bo_list) { 938 r = drm_exec_prepare_obj(&p->exec, &e->bo->tbo.base, 939 TTM_NUM_MOVE_FENCES + p->gang_size); 940 drm_exec_retry_on_contention(&p->exec); 941 if (unlikely(r)) 942 goto out_free_user_pages; 943 944 e->bo_va = amdgpu_vm_bo_find(vm, e->bo); 945 } 946 947 if (p->uf_bo) { 948 r = drm_exec_prepare_obj(&p->exec, &p->uf_bo->tbo.base, 949 TTM_NUM_MOVE_FENCES + p->gang_size); 950 drm_exec_retry_on_contention(&p->exec); 951 if (unlikely(r)) 952 goto out_free_user_pages; 953 } 954 } 955 956 amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) { 957 struct mm_struct *usermm; 958 959 usermm = amdgpu_ttm_tt_get_usermm(e->bo->tbo.ttm); 960 if (usermm && usermm != current->mm) { 961 r = -EPERM; 962 goto out_free_user_pages; 963 } 964 965 if (amdgpu_ttm_tt_is_userptr(e->bo->tbo.ttm) && 966 e->user_invalidated) { 967 amdgpu_bo_placement_from_domain(e->bo, 968 AMDGPU_GEM_DOMAIN_CPU); 969 r = ttm_bo_validate(&e->bo->tbo, &e->bo->placement, 970 &ctx); 971 if (r) 972 goto out_free_user_pages; 973 974 amdgpu_ttm_tt_set_user_pages(e->bo->tbo.ttm, 975 e->range); 976 } 977 } 978 979 amdgpu_cs_get_threshold_for_moves(p->adev, &p->bytes_moved_threshold, 980 &p->bytes_moved_vis_threshold); 981 p->bytes_moved = 0; 982 p->bytes_moved_vis = 0; 983 984 r = amdgpu_vm_validate(p->adev, &fpriv->vm, NULL, 985 amdgpu_cs_bo_validate, p); 986 if (r) { 987 drm_err(adev_to_drm(p->adev), "amdgpu_vm_validate() failed.\n"); 988 goto out_free_user_pages; 989 } 990 991 drm_exec_for_each_locked_object(&p->exec, obj) { 992 r = amdgpu_cs_bo_validate(p, gem_to_amdgpu_bo(obj)); 993 if (unlikely(r)) 994 goto out_free_user_pages; 995 } 996 997 if (p->uf_bo) { 998 r = amdgpu_ttm_alloc_gart(&p->uf_bo->tbo); 999 if (unlikely(r)) 1000 goto out_free_user_pages; 1001 1002 p->gang_leader->uf_addr += amdgpu_bo_gpu_offset(p->uf_bo); 1003 } 1004 1005 amdgpu_cs_report_moved_bytes(p->adev, p->bytes_moved, 1006 p->bytes_moved_vis); 1007 1008 for (i = 0; i < p->gang_size; ++i) 1009 amdgpu_job_set_resources(p->jobs[i], p->bo_list->gds_obj, 1010 p->bo_list->gws_obj, 1011 p->bo_list->oa_obj); 1012 return 0; 1013 1014 out_free_user_pages: 1015 amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) { 1016 amdgpu_hmm_range_free(e->range); 1017 e->range = NULL; 1018 } 1019 mutex_unlock(&p->bo_list->bo_list_mutex); 1020 return r; 1021 } 1022 1023 static void trace_amdgpu_cs_ibs(struct amdgpu_cs_parser *p) 1024 { 1025 int i, j; 1026 1027 if (!trace_amdgpu_cs_enabled()) 1028 return; 1029 1030 for (i = 0; i < p->gang_size; ++i) { 1031 struct amdgpu_job *job = p->jobs[i]; 1032 1033 for (j = 0; j < job->num_ibs; ++j) 1034 trace_amdgpu_cs(p, job, &job->ibs[j]); 1035 } 1036 } 1037 1038 static int amdgpu_cs_patch_ibs(struct amdgpu_cs_parser *p, 1039 struct amdgpu_job *job) 1040 { 1041 struct amdgpu_ring *ring = amdgpu_job_ring(job); 1042 struct amdgpu_device *adev = ring->adev; 1043 unsigned int i; 1044 int r; 1045 1046 /* Only for UVD/VCE VM emulation */ 1047 if (!ring->funcs->parse_cs && !ring->funcs->patch_cs_in_place) 1048 return 0; 1049 1050 for (i = 0; i < job->num_ibs; ++i) { 1051 struct amdgpu_ib *ib = &job->ibs[i]; 1052 struct amdgpu_bo_va_mapping *m; 1053 struct amdgpu_bo *aobj; 1054 uint64_t va_start; 1055 uint8_t *kptr; 1056 1057 va_start = ib->gpu_addr & AMDGPU_GMC_HOLE_MASK; 1058 r = amdgpu_cs_find_mapping(p, va_start, &aobj, &m); 1059 if (r) { 1060 drm_err(adev_to_drm(p->adev), "IB va_start is invalid\n"); 1061 return r; 1062 } 1063 1064 if ((va_start + ib->length_dw * 4) > 1065 (m->last + 1) * AMDGPU_GPU_PAGE_SIZE) { 1066 drm_err(adev_to_drm(p->adev), "IB va_start+ib_bytes is invalid\n"); 1067 return -EINVAL; 1068 } 1069 1070 /* the IB should be reserved at this point */ 1071 r = amdgpu_bo_kmap(aobj, (void **)&kptr); 1072 if (r) 1073 return r; 1074 1075 kptr += va_start - (m->start * AMDGPU_GPU_PAGE_SIZE); 1076 1077 if (ring->funcs->parse_cs) { 1078 memcpy(ib->ptr, kptr, ib->length_dw * 4); 1079 amdgpu_bo_kunmap(aobj); 1080 1081 r = amdgpu_ring_parse_cs(ring, p, job, ib); 1082 if (r) 1083 return r; 1084 1085 if (ib->sa_bo) 1086 ib->gpu_addr = amdgpu_sa_bo_gpu_addr(ib->sa_bo); 1087 } else { 1088 ib->ptr = (uint32_t *)kptr; 1089 r = amdgpu_ring_patch_cs_in_place(ring, p, job, ib); 1090 amdgpu_bo_kunmap(aobj); 1091 if (r) 1092 return r; 1093 } 1094 } 1095 1096 return 0; 1097 } 1098 1099 static int amdgpu_cs_patch_jobs(struct amdgpu_cs_parser *p) 1100 { 1101 unsigned int i; 1102 int r; 1103 1104 for (i = 0; i < p->gang_size; ++i) { 1105 r = amdgpu_cs_patch_ibs(p, p->jobs[i]); 1106 if (r) 1107 return r; 1108 } 1109 return 0; 1110 } 1111 1112 static int amdgpu_cs_vm_handling(struct amdgpu_cs_parser *p) 1113 { 1114 struct amdgpu_fpriv *fpriv = p->filp->driver_priv; 1115 struct amdgpu_job *job = p->gang_leader; 1116 struct amdgpu_device *adev = p->adev; 1117 struct amdgpu_vm *vm = &fpriv->vm; 1118 struct amdgpu_bo_list_entry *e; 1119 struct amdgpu_bo_va *bo_va; 1120 unsigned int i; 1121 int r; 1122 1123 /* 1124 * We can't use gang submit on with reserved VMIDs when the VM changes 1125 * can't be invalidated by more than one engine at the same time. 1126 */ 1127 if (p->gang_size > 1 && !adev->vm_manager.concurrent_flush) { 1128 for (i = 0; i < p->gang_size; ++i) { 1129 struct drm_sched_entity *entity = p->entities[i]; 1130 struct drm_gpu_scheduler *sched = entity->rq->sched; 1131 struct amdgpu_ring *ring = to_amdgpu_ring(sched); 1132 1133 if (amdgpu_vmid_uses_reserved(vm, ring->vm_hub)) 1134 return -EINVAL; 1135 } 1136 } 1137 1138 if (!amdgpu_vm_ready(vm)) 1139 return -EINVAL; 1140 1141 r = amdgpu_vm_clear_freed(adev, vm, NULL); 1142 if (r) 1143 return r; 1144 1145 r = amdgpu_vm_bo_update(adev, fpriv->prt_va, false); 1146 if (r) 1147 return r; 1148 1149 r = amdgpu_sync_fence(&p->sync, fpriv->prt_va->last_pt_update, 1150 GFP_KERNEL); 1151 if (r) 1152 return r; 1153 1154 if (fpriv->csa_va) { 1155 bo_va = fpriv->csa_va; 1156 BUG_ON(!bo_va); 1157 r = amdgpu_vm_bo_update(adev, bo_va, false); 1158 if (r) 1159 return r; 1160 1161 r = amdgpu_sync_fence(&p->sync, bo_va->last_pt_update, 1162 GFP_KERNEL); 1163 if (r) 1164 return r; 1165 } 1166 1167 /* FIXME: In theory this loop shouldn't be needed any more when 1168 * amdgpu_vm_handle_moved handles all moved BOs that are reserved 1169 * with p->ticket. But removing it caused test regressions, so I'm 1170 * leaving it here for now. 1171 */ 1172 amdgpu_bo_list_for_each_entry(e, p->bo_list) { 1173 bo_va = e->bo_va; 1174 if (bo_va == NULL) 1175 continue; 1176 1177 r = amdgpu_vm_bo_update(adev, bo_va, false); 1178 if (r) 1179 return r; 1180 1181 r = amdgpu_sync_fence(&p->sync, bo_va->last_pt_update, 1182 GFP_KERNEL); 1183 if (r) 1184 return r; 1185 } 1186 1187 r = amdgpu_vm_handle_moved(adev, vm, drm_exec_ticket(&p->exec)); 1188 if (r) 1189 return r; 1190 1191 r = amdgpu_vm_update_pdes(adev, vm, false); 1192 if (r) 1193 return r; 1194 1195 r = amdgpu_sync_fence(&p->sync, vm->last_update, GFP_KERNEL); 1196 if (r) 1197 return r; 1198 1199 for (i = 0; i < p->gang_size; ++i) { 1200 job = p->jobs[i]; 1201 1202 if (!job->vm) 1203 continue; 1204 1205 job->vm_pd_addr = amdgpu_gmc_pd_addr(vm->root.bo); 1206 } 1207 1208 return 0; 1209 } 1210 1211 static int amdgpu_cs_sync_rings(struct amdgpu_cs_parser *p) 1212 { 1213 struct amdgpu_fpriv *fpriv = p->filp->driver_priv; 1214 struct drm_gpu_scheduler *sched; 1215 struct drm_gem_object *obj; 1216 struct dma_fence *fence; 1217 unsigned int i; 1218 int r; 1219 1220 r = amdgpu_ctx_wait_prev_fence(p->ctx, p->entities[p->gang_leader_idx]); 1221 if (r) { 1222 if (r != -ERESTARTSYS) 1223 drm_err(adev_to_drm(p->adev), "amdgpu_ctx_wait_prev_fence failed.\n"); 1224 return r; 1225 } 1226 1227 drm_exec_for_each_locked_object(&p->exec, obj) { 1228 struct amdgpu_bo *bo = gem_to_amdgpu_bo(obj); 1229 1230 struct dma_resv *resv = bo->tbo.base.resv; 1231 enum amdgpu_sync_mode sync_mode; 1232 1233 sync_mode = amdgpu_bo_explicit_sync(bo) ? 1234 AMDGPU_SYNC_EXPLICIT : AMDGPU_SYNC_NE_OWNER; 1235 r = amdgpu_sync_resv(p->adev, &p->sync, resv, sync_mode, 1236 &fpriv->vm); 1237 if (r) 1238 return r; 1239 } 1240 1241 for (i = 0; i < p->gang_size; ++i) { 1242 r = amdgpu_sync_push_to_job(&p->sync, p->jobs[i]); 1243 if (r) 1244 return r; 1245 } 1246 1247 sched = p->gang_leader->base.entity->rq->sched; 1248 while ((fence = amdgpu_sync_get_fence(&p->sync))) { 1249 struct drm_sched_fence *s_fence = to_drm_sched_fence(fence); 1250 1251 /* 1252 * When we have an dependency it might be necessary to insert a 1253 * pipeline sync to make sure that all caches etc are flushed and the 1254 * next job actually sees the results from the previous one 1255 * before we start executing on the same scheduler ring. 1256 */ 1257 if (!s_fence || s_fence->sched != sched) { 1258 dma_fence_put(fence); 1259 continue; 1260 } 1261 1262 r = amdgpu_sync_fence(&p->gang_leader->explicit_sync, fence, 1263 GFP_KERNEL); 1264 dma_fence_put(fence); 1265 if (r) 1266 return r; 1267 } 1268 return 0; 1269 } 1270 1271 static void amdgpu_cs_post_dependencies(struct amdgpu_cs_parser *p) 1272 { 1273 int i; 1274 1275 for (i = 0; i < p->num_post_deps; ++i) { 1276 if (p->post_deps[i].chain && p->post_deps[i].point) { 1277 drm_syncobj_add_point(p->post_deps[i].syncobj, 1278 p->post_deps[i].chain, 1279 p->fence, p->post_deps[i].point); 1280 p->post_deps[i].chain = NULL; 1281 } else { 1282 drm_syncobj_replace_fence(p->post_deps[i].syncobj, 1283 p->fence); 1284 } 1285 } 1286 } 1287 1288 static int amdgpu_cs_submit(struct amdgpu_cs_parser *p, 1289 union drm_amdgpu_cs *cs) 1290 { 1291 struct amdgpu_fpriv *fpriv = p->filp->driver_priv; 1292 struct amdgpu_job *leader = p->gang_leader; 1293 struct amdgpu_vm *vm = &fpriv->vm; 1294 struct amdgpu_bo_list_entry *e; 1295 struct drm_gem_object *gobj; 1296 unsigned int i; 1297 uint64_t seq; 1298 int r; 1299 1300 for (i = 0; i < p->gang_size; ++i) 1301 drm_sched_job_arm(&p->jobs[i]->base); 1302 1303 for (i = 0; i < p->gang_size; ++i) { 1304 struct dma_fence *fence; 1305 1306 if (p->jobs[i] == leader) 1307 continue; 1308 1309 fence = &p->jobs[i]->base.s_fence->scheduled; 1310 dma_fence_get(fence); 1311 r = drm_sched_job_add_dependency(&leader->base, fence); 1312 if (r) { 1313 dma_fence_put(fence); 1314 return r; 1315 } 1316 } 1317 1318 if (p->gang_size > 1) { 1319 for (i = 0; i < p->gang_size; ++i) 1320 amdgpu_job_set_gang_leader(p->jobs[i], leader); 1321 } 1322 1323 /* No memory allocation is allowed while holding the notifier lock. 1324 * The lock is held until amdgpu_cs_submit is finished and fence is 1325 * added to BOs. 1326 */ 1327 mutex_lock(&p->adev->notifier_lock); 1328 1329 /* If userptr are invalidated after amdgpu_cs_parser_bos(), return 1330 * -EAGAIN, drmIoctl in libdrm will restart the amdgpu_cs_ioctl. 1331 */ 1332 r = 0; 1333 amdgpu_bo_list_for_each_userptr_entry(e, p->bo_list) { 1334 r |= !amdgpu_hmm_range_valid(e->range); 1335 amdgpu_hmm_range_free(e->range); 1336 e->range = NULL; 1337 } 1338 1339 if (r || !list_empty(&vm->individual.needs_update)) { 1340 r = -EAGAIN; 1341 mutex_unlock(&p->adev->notifier_lock); 1342 return r; 1343 } 1344 1345 p->fence = dma_fence_get(&leader->base.s_fence->finished); 1346 drm_exec_for_each_locked_object(&p->exec, gobj) { 1347 1348 ttm_bo_move_to_lru_tail_unlocked(&gem_to_amdgpu_bo(gobj)->tbo); 1349 1350 /* Everybody except for the gang leader uses READ */ 1351 for (i = 0; i < p->gang_size; ++i) { 1352 if (p->jobs[i] == leader) 1353 continue; 1354 1355 dma_resv_add_fence(gobj->resv, 1356 &p->jobs[i]->base.s_fence->finished, 1357 DMA_RESV_USAGE_READ); 1358 } 1359 1360 /* The gang leader as remembered as writer */ 1361 dma_resv_add_fence(gobj->resv, p->fence, DMA_RESV_USAGE_WRITE); 1362 } 1363 1364 seq = amdgpu_ctx_add_fence(p->ctx, p->entities[p->gang_leader_idx], 1365 p->fence); 1366 amdgpu_cs_post_dependencies(p); 1367 1368 if ((leader->preamble_status & AMDGPU_PREAMBLE_IB_PRESENT) && 1369 !p->ctx->preamble_presented) { 1370 leader->preamble_status |= AMDGPU_PREAMBLE_IB_PRESENT_FIRST; 1371 p->ctx->preamble_presented = true; 1372 } 1373 1374 cs->out.handle = seq; 1375 leader->uf_sequence = seq; 1376 1377 amdgpu_vm_bo_trace_cs(&fpriv->vm, drm_exec_ticket(&p->exec)); 1378 for (i = 0; i < p->gang_size; ++i) { 1379 amdgpu_job_free_resources(p->jobs[i]); 1380 trace_amdgpu_cs_ioctl(p->jobs[i]); 1381 drm_sched_entity_push_job(&p->jobs[i]->base); 1382 p->jobs[i] = NULL; 1383 } 1384 1385 amdgpu_vm_move_to_lru_tail(p->adev, &fpriv->vm); 1386 1387 mutex_unlock(&p->adev->notifier_lock); 1388 mutex_unlock(&p->bo_list->bo_list_mutex); 1389 return 0; 1390 } 1391 1392 /* Cleanup the parser structure */ 1393 static void amdgpu_cs_parser_fini(struct amdgpu_cs_parser *parser) 1394 { 1395 struct amdgpu_device *adev = parser->adev; 1396 struct amdgpu_bo_list_entry *e; 1397 unsigned int i; 1398 1399 amdgpu_sync_free(&parser->sync); 1400 drm_exec_fini(&parser->exec); 1401 1402 for (i = 0; i < parser->num_post_deps; i++) { 1403 drm_syncobj_put(parser->post_deps[i].syncobj); 1404 kfree(parser->post_deps[i].chain); 1405 } 1406 kfree(parser->post_deps); 1407 1408 dma_fence_put(parser->fence); 1409 1410 if (parser->ctx) 1411 amdgpu_ctx_put(parser->ctx); 1412 if (parser->bo_list) { 1413 if (adev->debug_vm) { 1414 /* Invalidate all BOs to test for userspace bugs */ 1415 amdgpu_bo_list_for_each_entry(e, parser->bo_list) { 1416 struct amdgpu_bo *bo = e->bo; 1417 1418 /* ignore duplicates */ 1419 if (!bo) 1420 continue; 1421 1422 amdgpu_vm_bo_invalidate(bo, false); 1423 } 1424 } 1425 amdgpu_bo_list_put(parser->bo_list); 1426 } 1427 1428 for (i = 0; i < parser->nchunks; i++) 1429 kvfree(parser->chunks[i].kdata); 1430 kvfree(parser->chunks); 1431 for (i = 0; i < parser->gang_size; ++i) { 1432 if (parser->jobs[i]) 1433 amdgpu_job_free(parser->jobs[i]); 1434 } 1435 amdgpu_bo_unref(&parser->uf_bo); 1436 } 1437 1438 int amdgpu_cs_ioctl(struct drm_device *dev, void *data, struct drm_file *filp) 1439 { 1440 struct amdgpu_device *adev = drm_to_adev(dev); 1441 struct amdgpu_cs_parser parser; 1442 int r; 1443 1444 if (amdgpu_ras_intr_triggered()) 1445 return -EHWPOISON; 1446 1447 if (!adev->accel_working) 1448 return -EBUSY; 1449 1450 r = amdgpu_cs_parser_init(&parser, adev, filp, data); 1451 if (r) { 1452 drm_err_ratelimited(dev, "Failed to initialize parser %d!\n", r); 1453 return r; 1454 } 1455 1456 r = amdgpu_cs_pass1(&parser, data); 1457 if (r) 1458 goto error_fini; 1459 1460 r = amdgpu_cs_pass2(&parser); 1461 if (r) 1462 goto error_fini; 1463 1464 r = amdgpu_cs_parser_bos(&parser, data); 1465 if (r) { 1466 if (r == -ENOMEM) 1467 drm_err(dev, "Not enough memory for command submission!\n"); 1468 else if (r != -ERESTARTSYS && r != -EAGAIN) 1469 drm_dbg(dev, "Failed to process the buffer list %d!\n", r); 1470 goto error_fini; 1471 } 1472 1473 r = amdgpu_cs_patch_jobs(&parser); 1474 if (r) 1475 goto error_backoff; 1476 1477 r = amdgpu_cs_vm_handling(&parser); 1478 if (r) 1479 goto error_backoff; 1480 1481 r = amdgpu_cs_sync_rings(&parser); 1482 if (r) 1483 goto error_backoff; 1484 1485 trace_amdgpu_cs_ibs(&parser); 1486 1487 r = amdgpu_cs_submit(&parser, data); 1488 if (r) 1489 goto error_backoff; 1490 1491 amdgpu_cs_parser_fini(&parser); 1492 return 0; 1493 1494 error_backoff: 1495 mutex_unlock(&parser.bo_list->bo_list_mutex); 1496 1497 error_fini: 1498 amdgpu_cs_parser_fini(&parser); 1499 return r; 1500 } 1501 1502 /** 1503 * amdgpu_cs_wait_ioctl - wait for a command submission to finish 1504 * 1505 * @dev: drm device 1506 * @data: data from userspace 1507 * @filp: file private 1508 * 1509 * Wait for the command submission identified by handle to finish. 1510 */ 1511 int amdgpu_cs_wait_ioctl(struct drm_device *dev, void *data, 1512 struct drm_file *filp) 1513 { 1514 union drm_amdgpu_wait_cs *wait = data; 1515 unsigned long timeout = amdgpu_gem_timeout(wait->in.timeout); 1516 struct drm_sched_entity *entity; 1517 struct amdgpu_ctx *ctx; 1518 struct dma_fence *fence; 1519 long r; 1520 1521 ctx = amdgpu_ctx_get(filp->driver_priv, wait->in.ctx_id); 1522 if (ctx == NULL) 1523 return -EINVAL; 1524 1525 r = amdgpu_ctx_get_entity(ctx, wait->in.ip_type, wait->in.ip_instance, 1526 wait->in.ring, &entity); 1527 if (r) { 1528 amdgpu_ctx_put(ctx); 1529 return r; 1530 } 1531 1532 fence = amdgpu_ctx_get_fence(ctx, entity, wait->in.handle); 1533 if (IS_ERR(fence)) 1534 r = PTR_ERR(fence); 1535 else if (fence) { 1536 r = dma_fence_wait_timeout(fence, true, timeout); 1537 if (r > 0 && fence->error) 1538 r = fence->error; 1539 dma_fence_put(fence); 1540 } else 1541 r = 1; 1542 1543 amdgpu_ctx_put(ctx); 1544 if (r < 0) 1545 return r; 1546 1547 memset(wait, 0, sizeof(*wait)); 1548 wait->out.status = (r == 0); 1549 1550 return 0; 1551 } 1552 1553 /** 1554 * amdgpu_cs_get_fence - helper to get fence from drm_amdgpu_fence 1555 * 1556 * @adev: amdgpu device 1557 * @filp: file private 1558 * @user: drm_amdgpu_fence copied from user space 1559 */ 1560 static struct dma_fence *amdgpu_cs_get_fence(struct amdgpu_device *adev, 1561 struct drm_file *filp, 1562 struct drm_amdgpu_fence *user) 1563 { 1564 struct drm_sched_entity *entity; 1565 struct amdgpu_ctx *ctx; 1566 struct dma_fence *fence; 1567 int r; 1568 1569 ctx = amdgpu_ctx_get(filp->driver_priv, user->ctx_id); 1570 if (ctx == NULL) 1571 return ERR_PTR(-EINVAL); 1572 1573 r = amdgpu_ctx_get_entity(ctx, user->ip_type, user->ip_instance, 1574 user->ring, &entity); 1575 if (r) { 1576 amdgpu_ctx_put(ctx); 1577 return ERR_PTR(r); 1578 } 1579 1580 fence = amdgpu_ctx_get_fence(ctx, entity, user->seq_no); 1581 amdgpu_ctx_put(ctx); 1582 1583 return fence; 1584 } 1585 1586 int amdgpu_cs_fence_to_handle_ioctl(struct drm_device *dev, void *data, 1587 struct drm_file *filp) 1588 { 1589 struct amdgpu_device *adev = drm_to_adev(dev); 1590 union drm_amdgpu_fence_to_handle *info = data; 1591 struct dma_fence *fence; 1592 struct drm_syncobj *syncobj; 1593 struct sync_file *sync_file; 1594 int fd, r; 1595 1596 fence = amdgpu_cs_get_fence(adev, filp, &info->in.fence); 1597 if (IS_ERR(fence)) 1598 return PTR_ERR(fence); 1599 1600 if (!fence) 1601 fence = dma_fence_get_stub(); 1602 1603 switch (info->in.what) { 1604 case AMDGPU_FENCE_TO_HANDLE_GET_SYNCOBJ: 1605 r = drm_syncobj_create(&syncobj, 0, fence); 1606 dma_fence_put(fence); 1607 if (r) 1608 return r; 1609 r = drm_syncobj_get_handle(filp, syncobj, &info->out.handle); 1610 drm_syncobj_put(syncobj); 1611 return r; 1612 1613 case AMDGPU_FENCE_TO_HANDLE_GET_SYNCOBJ_FD: 1614 r = drm_syncobj_create(&syncobj, 0, fence); 1615 dma_fence_put(fence); 1616 if (r) 1617 return r; 1618 r = drm_syncobj_get_fd(syncobj, (int *)&info->out.handle); 1619 drm_syncobj_put(syncobj); 1620 return r; 1621 1622 case AMDGPU_FENCE_TO_HANDLE_GET_SYNC_FILE_FD: 1623 fd = get_unused_fd_flags(O_CLOEXEC); 1624 if (fd < 0) { 1625 dma_fence_put(fence); 1626 return fd; 1627 } 1628 1629 sync_file = sync_file_create(fence); 1630 dma_fence_put(fence); 1631 if (!sync_file) { 1632 put_unused_fd(fd); 1633 return -ENOMEM; 1634 } 1635 1636 fd_install(fd, sync_file->file); 1637 info->out.handle = fd; 1638 return 0; 1639 1640 default: 1641 dma_fence_put(fence); 1642 return -EINVAL; 1643 } 1644 } 1645 1646 /** 1647 * amdgpu_cs_wait_all_fences - wait on all fences to signal 1648 * 1649 * @adev: amdgpu device 1650 * @filp: file private 1651 * @wait: wait parameters 1652 * @fences: array of drm_amdgpu_fence 1653 */ 1654 static int amdgpu_cs_wait_all_fences(struct amdgpu_device *adev, 1655 struct drm_file *filp, 1656 union drm_amdgpu_wait_fences *wait, 1657 struct drm_amdgpu_fence *fences) 1658 { 1659 uint32_t fence_count = wait->in.fence_count; 1660 unsigned int i; 1661 long r = 1; 1662 1663 for (i = 0; i < fence_count; i++) { 1664 struct dma_fence *fence; 1665 unsigned long timeout = amdgpu_gem_timeout(wait->in.timeout_ns); 1666 1667 fence = amdgpu_cs_get_fence(adev, filp, &fences[i]); 1668 if (IS_ERR(fence)) 1669 return PTR_ERR(fence); 1670 else if (!fence) 1671 continue; 1672 1673 r = dma_fence_wait_timeout(fence, true, timeout); 1674 if (r > 0 && fence->error) 1675 r = fence->error; 1676 1677 dma_fence_put(fence); 1678 if (r < 0) 1679 return r; 1680 1681 if (r == 0) 1682 break; 1683 } 1684 1685 memset(wait, 0, sizeof(*wait)); 1686 wait->out.status = (r > 0); 1687 1688 return 0; 1689 } 1690 1691 /** 1692 * amdgpu_cs_wait_any_fence - wait on any fence to signal 1693 * 1694 * @adev: amdgpu device 1695 * @filp: file private 1696 * @wait: wait parameters 1697 * @fences: array of drm_amdgpu_fence 1698 */ 1699 static int amdgpu_cs_wait_any_fence(struct amdgpu_device *adev, 1700 struct drm_file *filp, 1701 union drm_amdgpu_wait_fences *wait, 1702 struct drm_amdgpu_fence *fences) 1703 { 1704 unsigned long timeout = amdgpu_gem_timeout(wait->in.timeout_ns); 1705 uint32_t fence_count = wait->in.fence_count; 1706 uint32_t first = ~0; 1707 struct dma_fence **array; 1708 unsigned int i; 1709 long r; 1710 1711 /* Prepare the fence array */ 1712 array = kzalloc_objs(struct dma_fence *, fence_count); 1713 1714 if (array == NULL) 1715 return -ENOMEM; 1716 1717 for (i = 0; i < fence_count; i++) { 1718 struct dma_fence *fence; 1719 1720 fence = amdgpu_cs_get_fence(adev, filp, &fences[i]); 1721 if (IS_ERR(fence)) { 1722 r = PTR_ERR(fence); 1723 goto err_free_fence_array; 1724 } else if (fence) { 1725 array[i] = fence; 1726 } else { /* NULL, the fence has been already signaled */ 1727 r = 1; 1728 first = i; 1729 goto out; 1730 } 1731 } 1732 1733 r = dma_fence_wait_any_timeout(array, fence_count, true, timeout, 1734 &first); 1735 if (r < 0) 1736 goto err_free_fence_array; 1737 1738 out: 1739 memset(wait, 0, sizeof(*wait)); 1740 wait->out.status = (r > 0); 1741 wait->out.first_signaled = first; 1742 1743 if (first < fence_count && array[first]) 1744 r = array[first]->error; 1745 else 1746 r = 0; 1747 1748 err_free_fence_array: 1749 for (i = 0; i < fence_count; i++) 1750 dma_fence_put(array[i]); 1751 kfree(array); 1752 1753 return r; 1754 } 1755 1756 /** 1757 * amdgpu_cs_wait_fences_ioctl - wait for multiple command submissions to finish 1758 * 1759 * @dev: drm device 1760 * @data: data from userspace 1761 * @filp: file private 1762 */ 1763 int amdgpu_cs_wait_fences_ioctl(struct drm_device *dev, void *data, 1764 struct drm_file *filp) 1765 { 1766 struct amdgpu_device *adev = drm_to_adev(dev); 1767 union drm_amdgpu_wait_fences *wait = data; 1768 struct drm_amdgpu_fence *fences; 1769 int r; 1770 1771 /* 1772 * fence_count must be non-zero; dma_fence_wait_any_timeout() 1773 * does not accept an empty fence array. 1774 */ 1775 if (!wait->in.fence_count) 1776 return -EINVAL; 1777 1778 /* Get the fences from userspace */ 1779 fences = memdup_array_user(u64_to_user_ptr(wait->in.fences), 1780 wait->in.fence_count, 1781 sizeof(struct drm_amdgpu_fence)); 1782 if (IS_ERR(fences)) 1783 return PTR_ERR(fences); 1784 1785 if (wait->in.wait_all) 1786 r = amdgpu_cs_wait_all_fences(adev, filp, wait, fences); 1787 else 1788 r = amdgpu_cs_wait_any_fence(adev, filp, wait, fences); 1789 1790 kfree(fences); 1791 1792 return r; 1793 } 1794 1795 /** 1796 * amdgpu_cs_find_mapping - find bo_va for VM address 1797 * 1798 * @parser: command submission parser context 1799 * @addr: VM address 1800 * @bo: resulting BO of the mapping found 1801 * @map: Placeholder to return found BO mapping 1802 * 1803 * Search the buffer objects in the command submission context for a certain 1804 * virtual memory address. Returns allocation structure when found, NULL 1805 * otherwise. 1806 */ 1807 int amdgpu_cs_find_mapping(struct amdgpu_cs_parser *parser, 1808 uint64_t addr, struct amdgpu_bo **bo, 1809 struct amdgpu_bo_va_mapping **map) 1810 { 1811 struct amdgpu_fpriv *fpriv = parser->filp->driver_priv; 1812 struct ttm_operation_ctx ctx = { false, false }; 1813 struct amdgpu_vm *vm = &fpriv->vm; 1814 struct amdgpu_bo_va_mapping *mapping; 1815 int i, r; 1816 1817 addr /= AMDGPU_GPU_PAGE_SIZE; 1818 1819 mapping = amdgpu_vm_bo_lookup_mapping(vm, addr); 1820 if (!mapping || !mapping->bo_va || !mapping->bo_va->base.bo) 1821 return -EINVAL; 1822 1823 *bo = mapping->bo_va->base.bo; 1824 *map = mapping; 1825 1826 /* Double check that the BO is reserved by this CS */ 1827 if (dma_resv_locking_ctx((*bo)->tbo.base.resv) != drm_exec_ticket(&parser->exec)) 1828 return -EINVAL; 1829 1830 /* Make sure VRAM is allocated contigiously */ 1831 (*bo)->flags |= AMDGPU_GEM_CREATE_VRAM_CONTIGUOUS; 1832 if ((*bo)->tbo.resource->mem_type == TTM_PL_VRAM && 1833 !((*bo)->tbo.resource->placement & TTM_PL_FLAG_CONTIGUOUS)) { 1834 1835 amdgpu_bo_placement_from_domain(*bo, (*bo)->allowed_domains); 1836 for (i = 0; i < (*bo)->placement.num_placement; i++) 1837 (*bo)->placements[i].flags |= TTM_PL_FLAG_CONTIGUOUS; 1838 r = ttm_bo_validate(&(*bo)->tbo, &(*bo)->placement, &ctx); 1839 if (r) 1840 return r; 1841 } 1842 1843 return amdgpu_ttm_alloc_gart(&(*bo)->tbo); 1844 } 1845