1 /* SPDX-License-Identifier: GPL-2.0 OR MIT */ 2 /************************************************************************** 3 * 4 * Copyright (c) 2006-2009 VMware, Inc., Palo Alto, CA., USA 5 * All Rights Reserved. 6 * 7 * Permission is hereby granted, free of charge, to any person obtaining a 8 * copy of this software and associated documentation files (the 9 * "Software"), to deal in the Software without restriction, including 10 * without limitation the rights to use, copy, modify, merge, publish, 11 * distribute, sub license, and/or sell copies of the Software, and to 12 * permit persons to whom the Software is furnished to do so, subject to 13 * the following conditions: 14 * 15 * The above copyright notice and this permission notice (including the 16 * next paragraph) shall be included in all copies or substantial portions 17 * of the Software. 18 * 19 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 20 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 21 * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL 22 * THE COPYRIGHT HOLDERS, AUTHORS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, 23 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR 24 * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE 25 * USE OR OTHER DEALINGS IN THE SOFTWARE. 26 * 27 **************************************************************************/ 28 /* 29 * Authors: Thomas Hellstrom <thellstrom-at-vmware-dot-com> 30 */ 31 32 #define pr_fmt(fmt) "[TTM] " fmt 33 34 #include <drm/ttm/ttm_bo.h> 35 #include <drm/ttm/ttm_placement.h> 36 #include <drm/ttm/ttm_tt.h> 37 38 #include <linux/jiffies.h> 39 #include <linux/slab.h> 40 #include <linux/sched.h> 41 #include <linux/mm.h> 42 #include <linux/file.h> 43 #include <linux/module.h> 44 #include <linux/atomic.h> 45 #include <linux/dma-resv.h> 46 47 #include "ttm_module.h" 48 49 static void ttm_bo_mem_space_debug(struct ttm_buffer_object *bo, 50 struct ttm_placement *placement) 51 { 52 struct drm_printer p = drm_dbg_printer(NULL, DRM_UT_CORE, TTM_PFX); 53 struct ttm_resource_manager *man; 54 int i, mem_type; 55 56 for (i = 0; i < placement->num_placement; i++) { 57 mem_type = placement->placement[i].mem_type; 58 drm_printf(&p, " placement[%d]=0x%08X (%d)\n", 59 i, placement->placement[i].flags, mem_type); 60 man = ttm_manager_type(bo->bdev, mem_type); 61 ttm_resource_manager_debug(man, &p); 62 } 63 } 64 65 /** 66 * ttm_bo_move_to_lru_tail 67 * 68 * @bo: The buffer object. 69 * 70 * Move this BO to the tail of all lru lists used to lookup and reserve an 71 * object. This function must be called with struct ttm_global::lru_lock 72 * held, and is used to make a BO less likely to be considered for eviction. 73 */ 74 void ttm_bo_move_to_lru_tail(struct ttm_buffer_object *bo) 75 { 76 dma_resv_assert_held(bo->base.resv); 77 78 if (bo->resource) 79 ttm_resource_move_to_lru_tail(bo->resource); 80 } 81 EXPORT_SYMBOL(ttm_bo_move_to_lru_tail); 82 83 /** 84 * ttm_bo_set_bulk_move - update BOs bulk move object 85 * 86 * @bo: The buffer object. 87 * @bulk: bulk move structure 88 * 89 * Update the BOs bulk move object, making sure that resources are added/removed 90 * as well. A bulk move allows to move many resource on the LRU at once, 91 * resulting in much less overhead of maintaining the LRU. 92 * The only requirement is that the resources stay together on the LRU and are 93 * never separated. This is enforces by setting the bulk_move structure on a BO. 94 * ttm_lru_bulk_move_tail() should be used to move all resources to the tail of 95 * their LRU list. 96 */ 97 void ttm_bo_set_bulk_move(struct ttm_buffer_object *bo, 98 struct ttm_lru_bulk_move *bulk) 99 { 100 dma_resv_assert_held(bo->base.resv); 101 102 if (bo->bulk_move == bulk) 103 return; 104 105 spin_lock(&bo->bdev->lru_lock); 106 if (bo->resource) 107 ttm_resource_del_bulk_move(bo->resource, bo); 108 bo->bulk_move = bulk; 109 if (bo->resource) 110 ttm_resource_add_bulk_move(bo->resource, bo); 111 spin_unlock(&bo->bdev->lru_lock); 112 } 113 EXPORT_SYMBOL(ttm_bo_set_bulk_move); 114 115 static int ttm_bo_handle_move_mem(struct ttm_buffer_object *bo, 116 struct ttm_resource *mem, bool evict, 117 struct ttm_operation_ctx *ctx, 118 struct ttm_place *hop) 119 { 120 struct ttm_device *bdev = bo->bdev; 121 bool old_use_tt, new_use_tt; 122 int ret; 123 124 old_use_tt = !bo->resource || ttm_manager_type(bdev, bo->resource->mem_type)->use_tt; 125 new_use_tt = ttm_manager_type(bdev, mem->mem_type)->use_tt; 126 127 ttm_bo_unmap_virtual(bo); 128 129 /* 130 * Create and bind a ttm if required. 131 */ 132 133 if (new_use_tt) { 134 /* Zero init the new TTM structure if the old location should 135 * have used one as well. 136 */ 137 ret = ttm_tt_create(bo, old_use_tt); 138 if (ret) 139 goto out_err; 140 141 if (mem->mem_type != TTM_PL_SYSTEM) { 142 ret = ttm_tt_populate(bo->bdev, bo->ttm, ctx); 143 if (ret) 144 goto out_err; 145 } 146 } 147 148 ret = dma_resv_reserve_fences(bo->base.resv, 1); 149 if (ret) 150 goto out_err; 151 152 ret = bdev->funcs->move(bo, evict, ctx, mem, hop); 153 if (ret) { 154 if (ret == -EMULTIHOP) 155 return ret; 156 goto out_err; 157 } 158 159 ctx->bytes_moved += bo->base.size; 160 return 0; 161 162 out_err: 163 if (!old_use_tt) 164 ttm_bo_tt_destroy(bo); 165 166 return ret; 167 } 168 169 /* 170 * Call bo::reserved. 171 * Will release GPU memory type usage on destruction. 172 * This is the place to put in driver specific hooks to release 173 * driver private resources. 174 * Will release the bo::reserved lock. 175 */ 176 177 static void ttm_bo_cleanup_memtype_use(struct ttm_buffer_object *bo) 178 { 179 if (bo->bdev->funcs->delete_mem_notify) 180 bo->bdev->funcs->delete_mem_notify(bo); 181 182 ttm_bo_tt_destroy(bo); 183 ttm_resource_free(bo, &bo->resource); 184 } 185 186 static int ttm_bo_individualize_resv(struct ttm_buffer_object *bo) 187 { 188 int r; 189 190 if (bo->base.resv == &bo->base._resv) 191 return 0; 192 193 BUG_ON(!dma_resv_trylock(&bo->base._resv)); 194 195 r = dma_resv_copy_fences(&bo->base._resv, bo->base.resv); 196 dma_resv_unlock(&bo->base._resv); 197 if (r) 198 return r; 199 200 if (bo->type != ttm_bo_type_sg) { 201 /* This works because the BO is about to be destroyed and nobody 202 * reference it any more. The only tricky case is the trylock on 203 * the resv object while holding the lru_lock. 204 */ 205 spin_lock(&bo->bdev->lru_lock); 206 bo->base.resv = &bo->base._resv; 207 spin_unlock(&bo->bdev->lru_lock); 208 } 209 210 return r; 211 } 212 213 static void ttm_bo_flush_all_fences(struct ttm_buffer_object *bo) 214 { 215 struct dma_resv *resv = &bo->base._resv; 216 struct dma_resv_iter cursor; 217 struct dma_fence *fence; 218 219 dma_resv_iter_begin(&cursor, resv, DMA_RESV_USAGE_BOOKKEEP); 220 dma_resv_for_each_fence_unlocked(&cursor, fence) { 221 if (!fence->ops->signaled) 222 dma_fence_enable_sw_signaling(fence); 223 } 224 dma_resv_iter_end(&cursor); 225 } 226 227 /** 228 * ttm_bo_cleanup_refs 229 * If bo idle, remove from lru lists, and unref. 230 * If not idle, block if possible. 231 * 232 * Must be called with lru_lock and reservation held, this function 233 * will drop the lru lock and optionally the reservation lock before returning. 234 * 235 * @bo: The buffer object to clean-up 236 * @interruptible: Any sleeps should occur interruptibly. 237 * @no_wait_gpu: Never wait for gpu. Return -EBUSY instead. 238 * @unlock_resv: Unlock the reservation lock as well. 239 */ 240 241 static int ttm_bo_cleanup_refs(struct ttm_buffer_object *bo, 242 bool interruptible, bool no_wait_gpu, 243 bool unlock_resv) 244 { 245 struct dma_resv *resv = &bo->base._resv; 246 int ret; 247 248 if (dma_resv_test_signaled(resv, DMA_RESV_USAGE_BOOKKEEP)) 249 ret = 0; 250 else 251 ret = -EBUSY; 252 253 if (ret && !no_wait_gpu) { 254 long lret; 255 256 if (unlock_resv) 257 dma_resv_unlock(bo->base.resv); 258 spin_unlock(&bo->bdev->lru_lock); 259 260 lret = dma_resv_wait_timeout(resv, DMA_RESV_USAGE_BOOKKEEP, 261 interruptible, 262 30 * HZ); 263 264 if (lret < 0) 265 return lret; 266 else if (lret == 0) 267 return -EBUSY; 268 269 spin_lock(&bo->bdev->lru_lock); 270 if (unlock_resv && !dma_resv_trylock(bo->base.resv)) { 271 /* 272 * We raced, and lost, someone else holds the reservation now, 273 * and is probably busy in ttm_bo_cleanup_memtype_use. 274 * 275 * Even if it's not the case, because we finished waiting any 276 * delayed destruction would succeed, so just return success 277 * here. 278 */ 279 spin_unlock(&bo->bdev->lru_lock); 280 return 0; 281 } 282 ret = 0; 283 } 284 285 if (ret) { 286 if (unlock_resv) 287 dma_resv_unlock(bo->base.resv); 288 spin_unlock(&bo->bdev->lru_lock); 289 return ret; 290 } 291 292 spin_unlock(&bo->bdev->lru_lock); 293 ttm_bo_cleanup_memtype_use(bo); 294 295 if (unlock_resv) 296 dma_resv_unlock(bo->base.resv); 297 298 return 0; 299 } 300 301 /* 302 * Block for the dma_resv object to become idle, lock the buffer and clean up 303 * the resource and tt object. 304 */ 305 static void ttm_bo_delayed_delete(struct work_struct *work) 306 { 307 struct ttm_buffer_object *bo; 308 309 bo = container_of(work, typeof(*bo), delayed_delete); 310 311 dma_resv_wait_timeout(bo->base.resv, DMA_RESV_USAGE_BOOKKEEP, false, 312 MAX_SCHEDULE_TIMEOUT); 313 dma_resv_lock(bo->base.resv, NULL); 314 ttm_bo_cleanup_memtype_use(bo); 315 dma_resv_unlock(bo->base.resv); 316 ttm_bo_put(bo); 317 } 318 319 static void ttm_bo_release(struct kref *kref) 320 { 321 struct ttm_buffer_object *bo = 322 container_of(kref, struct ttm_buffer_object, kref); 323 struct ttm_device *bdev = bo->bdev; 324 int ret; 325 326 WARN_ON_ONCE(bo->pin_count); 327 WARN_ON_ONCE(bo->bulk_move); 328 329 if (!bo->deleted) { 330 ret = ttm_bo_individualize_resv(bo); 331 if (ret) { 332 /* Last resort, if we fail to allocate memory for the 333 * fences block for the BO to become idle 334 */ 335 dma_resv_wait_timeout(bo->base.resv, 336 DMA_RESV_USAGE_BOOKKEEP, false, 337 30 * HZ); 338 } 339 340 if (bo->bdev->funcs->release_notify) 341 bo->bdev->funcs->release_notify(bo); 342 343 drm_vma_offset_remove(bdev->vma_manager, &bo->base.vma_node); 344 ttm_mem_io_free(bdev, bo->resource); 345 346 if (!dma_resv_test_signaled(bo->base.resv, 347 DMA_RESV_USAGE_BOOKKEEP) || 348 (want_init_on_free() && (bo->ttm != NULL)) || 349 bo->type == ttm_bo_type_sg || 350 !dma_resv_trylock(bo->base.resv)) { 351 /* The BO is not idle, resurrect it for delayed destroy */ 352 ttm_bo_flush_all_fences(bo); 353 bo->deleted = true; 354 355 spin_lock(&bo->bdev->lru_lock); 356 357 /* 358 * Make pinned bos immediately available to 359 * shrinkers, now that they are queued for 360 * destruction. 361 * 362 * FIXME: QXL is triggering this. Can be removed when the 363 * driver is fixed. 364 */ 365 if (bo->pin_count) { 366 bo->pin_count = 0; 367 ttm_resource_move_to_lru_tail(bo->resource); 368 } 369 370 kref_init(&bo->kref); 371 spin_unlock(&bo->bdev->lru_lock); 372 373 INIT_WORK(&bo->delayed_delete, ttm_bo_delayed_delete); 374 375 /* Schedule the worker on the closest NUMA node. This 376 * improves performance since system memory might be 377 * cleared on free and that is best done on a CPU core 378 * close to it. 379 */ 380 queue_work_node(bdev->pool.nid, bdev->wq, &bo->delayed_delete); 381 return; 382 } 383 384 ttm_bo_cleanup_memtype_use(bo); 385 dma_resv_unlock(bo->base.resv); 386 } 387 388 atomic_dec(&ttm_glob.bo_count); 389 bo->destroy(bo); 390 } 391 392 /** 393 * ttm_bo_put 394 * 395 * @bo: The buffer object. 396 * 397 * Unreference a buffer object. 398 */ 399 void ttm_bo_put(struct ttm_buffer_object *bo) 400 { 401 kref_put(&bo->kref, ttm_bo_release); 402 } 403 EXPORT_SYMBOL(ttm_bo_put); 404 405 static int ttm_bo_bounce_temp_buffer(struct ttm_buffer_object *bo, 406 struct ttm_operation_ctx *ctx, 407 struct ttm_place *hop) 408 { 409 struct ttm_placement hop_placement; 410 struct ttm_resource *hop_mem; 411 int ret; 412 413 hop_placement.num_placement = 1; 414 hop_placement.placement = hop; 415 416 /* find space in the bounce domain */ 417 ret = ttm_bo_mem_space(bo, &hop_placement, &hop_mem, ctx); 418 if (ret) 419 return ret; 420 /* move to the bounce domain */ 421 ret = ttm_bo_handle_move_mem(bo, hop_mem, false, ctx, NULL); 422 if (ret) { 423 ttm_resource_free(bo, &hop_mem); 424 return ret; 425 } 426 return 0; 427 } 428 429 static int ttm_bo_evict(struct ttm_buffer_object *bo, 430 struct ttm_operation_ctx *ctx) 431 { 432 struct ttm_device *bdev = bo->bdev; 433 struct ttm_resource *evict_mem; 434 struct ttm_placement placement; 435 struct ttm_place hop; 436 int ret = 0; 437 438 memset(&hop, 0, sizeof(hop)); 439 440 dma_resv_assert_held(bo->base.resv); 441 442 placement.num_placement = 0; 443 bdev->funcs->evict_flags(bo, &placement); 444 445 if (!placement.num_placement) { 446 ret = ttm_bo_wait_ctx(bo, ctx); 447 if (ret) 448 return ret; 449 450 /* 451 * Since we've already synced, this frees backing store 452 * immediately. 453 */ 454 return ttm_bo_pipeline_gutting(bo); 455 } 456 457 ret = ttm_bo_mem_space(bo, &placement, &evict_mem, ctx); 458 if (ret) { 459 if (ret != -ERESTARTSYS) { 460 pr_err("Failed to find memory space for buffer 0x%p eviction\n", 461 bo); 462 ttm_bo_mem_space_debug(bo, &placement); 463 } 464 goto out; 465 } 466 467 do { 468 ret = ttm_bo_handle_move_mem(bo, evict_mem, true, ctx, &hop); 469 if (ret != -EMULTIHOP) 470 break; 471 472 ret = ttm_bo_bounce_temp_buffer(bo, ctx, &hop); 473 } while (!ret); 474 475 if (ret) { 476 ttm_resource_free(bo, &evict_mem); 477 if (ret != -ERESTARTSYS && ret != -EINTR) 478 pr_err("Buffer eviction failed\n"); 479 } 480 out: 481 return ret; 482 } 483 484 /** 485 * ttm_bo_eviction_valuable 486 * 487 * @bo: The buffer object to evict 488 * @place: the placement we need to make room for 489 * 490 * Check if it is valuable to evict the BO to make room for the given placement. 491 */ 492 bool ttm_bo_eviction_valuable(struct ttm_buffer_object *bo, 493 const struct ttm_place *place) 494 { 495 struct ttm_resource *res = bo->resource; 496 struct ttm_device *bdev = bo->bdev; 497 498 dma_resv_assert_held(bo->base.resv); 499 if (bo->resource->mem_type == TTM_PL_SYSTEM) 500 return true; 501 502 /* Don't evict this BO if it's outside of the 503 * requested placement range 504 */ 505 return ttm_resource_intersects(bdev, res, place, bo->base.size); 506 } 507 EXPORT_SYMBOL(ttm_bo_eviction_valuable); 508 509 /* 510 * Check the target bo is allowable to be evicted or swapout, including cases: 511 * 512 * a. if share same reservation object with ctx->resv, have assumption 513 * reservation objects should already be locked, so not lock again and 514 * return true directly when either the opreation allow_reserved_eviction 515 * or the target bo already is in delayed free list; 516 * 517 * b. Otherwise, trylock it. 518 */ 519 static bool ttm_bo_evict_swapout_allowable(struct ttm_buffer_object *bo, 520 struct ttm_operation_ctx *ctx, 521 const struct ttm_place *place, 522 bool *locked, bool *busy) 523 { 524 bool ret = false; 525 526 if (bo->pin_count) { 527 *locked = false; 528 if (busy) 529 *busy = false; 530 return false; 531 } 532 533 if (bo->base.resv == ctx->resv) { 534 dma_resv_assert_held(bo->base.resv); 535 if (ctx->allow_res_evict) 536 ret = true; 537 *locked = false; 538 if (busy) 539 *busy = false; 540 } else { 541 ret = dma_resv_trylock(bo->base.resv); 542 *locked = ret; 543 if (busy) 544 *busy = !ret; 545 } 546 547 if (ret && place && (bo->resource->mem_type != place->mem_type || 548 !bo->bdev->funcs->eviction_valuable(bo, place))) { 549 ret = false; 550 if (*locked) { 551 dma_resv_unlock(bo->base.resv); 552 *locked = false; 553 } 554 } 555 556 return ret; 557 } 558 559 /** 560 * ttm_mem_evict_wait_busy - wait for a busy BO to become available 561 * 562 * @busy_bo: BO which couldn't be locked with trylock 563 * @ctx: operation context 564 * @ticket: acquire ticket 565 * 566 * Try to lock a busy buffer object to avoid failing eviction. 567 */ 568 static int ttm_mem_evict_wait_busy(struct ttm_buffer_object *busy_bo, 569 struct ttm_operation_ctx *ctx, 570 struct ww_acquire_ctx *ticket) 571 { 572 int r; 573 574 if (!busy_bo || !ticket) 575 return -EBUSY; 576 577 if (ctx->interruptible) 578 r = dma_resv_lock_interruptible(busy_bo->base.resv, 579 ticket); 580 else 581 r = dma_resv_lock(busy_bo->base.resv, ticket); 582 583 /* 584 * TODO: It would be better to keep the BO locked until allocation is at 585 * least tried one more time, but that would mean a much larger rework 586 * of TTM. 587 */ 588 if (!r) 589 dma_resv_unlock(busy_bo->base.resv); 590 591 return r == -EDEADLK ? -EBUSY : r; 592 } 593 594 int ttm_mem_evict_first(struct ttm_device *bdev, 595 struct ttm_resource_manager *man, 596 const struct ttm_place *place, 597 struct ttm_operation_ctx *ctx, 598 struct ww_acquire_ctx *ticket) 599 { 600 struct ttm_buffer_object *bo = NULL, *busy_bo = NULL; 601 struct ttm_resource_cursor cursor; 602 struct ttm_resource *res; 603 bool locked = false; 604 int ret; 605 606 spin_lock(&bdev->lru_lock); 607 ttm_resource_manager_for_each_res(man, &cursor, res) { 608 bool busy; 609 610 if (!ttm_bo_evict_swapout_allowable(res->bo, ctx, place, 611 &locked, &busy)) { 612 if (busy && !busy_bo && ticket != 613 dma_resv_locking_ctx(res->bo->base.resv)) 614 busy_bo = res->bo; 615 continue; 616 } 617 618 if (ttm_bo_get_unless_zero(res->bo)) { 619 bo = res->bo; 620 break; 621 } 622 if (locked) 623 dma_resv_unlock(res->bo->base.resv); 624 } 625 626 if (!bo) { 627 if (busy_bo && !ttm_bo_get_unless_zero(busy_bo)) 628 busy_bo = NULL; 629 spin_unlock(&bdev->lru_lock); 630 ret = ttm_mem_evict_wait_busy(busy_bo, ctx, ticket); 631 if (busy_bo) 632 ttm_bo_put(busy_bo); 633 return ret; 634 } 635 636 if (bo->deleted) { 637 ret = ttm_bo_cleanup_refs(bo, ctx->interruptible, 638 ctx->no_wait_gpu, locked); 639 ttm_bo_put(bo); 640 return ret; 641 } 642 643 spin_unlock(&bdev->lru_lock); 644 645 ret = ttm_bo_evict(bo, ctx); 646 if (locked) 647 ttm_bo_unreserve(bo); 648 else 649 ttm_bo_move_to_lru_tail_unlocked(bo); 650 651 ttm_bo_put(bo); 652 return ret; 653 } 654 655 /** 656 * ttm_bo_pin - Pin the buffer object. 657 * @bo: The buffer object to pin 658 * 659 * Make sure the buffer is not evicted any more during memory pressure. 660 * @bo must be unpinned again by calling ttm_bo_unpin(). 661 */ 662 void ttm_bo_pin(struct ttm_buffer_object *bo) 663 { 664 dma_resv_assert_held(bo->base.resv); 665 WARN_ON_ONCE(!kref_read(&bo->kref)); 666 spin_lock(&bo->bdev->lru_lock); 667 if (bo->resource) 668 ttm_resource_del_bulk_move(bo->resource, bo); 669 ++bo->pin_count; 670 spin_unlock(&bo->bdev->lru_lock); 671 } 672 EXPORT_SYMBOL(ttm_bo_pin); 673 674 /** 675 * ttm_bo_unpin - Unpin the buffer object. 676 * @bo: The buffer object to unpin 677 * 678 * Allows the buffer object to be evicted again during memory pressure. 679 */ 680 void ttm_bo_unpin(struct ttm_buffer_object *bo) 681 { 682 dma_resv_assert_held(bo->base.resv); 683 WARN_ON_ONCE(!kref_read(&bo->kref)); 684 if (WARN_ON_ONCE(!bo->pin_count)) 685 return; 686 687 spin_lock(&bo->bdev->lru_lock); 688 --bo->pin_count; 689 if (bo->resource) 690 ttm_resource_add_bulk_move(bo->resource, bo); 691 spin_unlock(&bo->bdev->lru_lock); 692 } 693 EXPORT_SYMBOL(ttm_bo_unpin); 694 695 /* 696 * Add the last move fence to the BO as kernel dependency and reserve a new 697 * fence slot. 698 */ 699 static int ttm_bo_add_move_fence(struct ttm_buffer_object *bo, 700 struct ttm_resource_manager *man, 701 bool no_wait_gpu) 702 { 703 struct dma_fence *fence; 704 int ret; 705 706 spin_lock(&man->move_lock); 707 fence = dma_fence_get(man->move); 708 spin_unlock(&man->move_lock); 709 710 if (!fence) 711 return 0; 712 713 if (no_wait_gpu) { 714 ret = dma_fence_is_signaled(fence) ? 0 : -EBUSY; 715 dma_fence_put(fence); 716 return ret; 717 } 718 719 dma_resv_add_fence(bo->base.resv, fence, DMA_RESV_USAGE_KERNEL); 720 721 ret = dma_resv_reserve_fences(bo->base.resv, 1); 722 dma_fence_put(fence); 723 return ret; 724 } 725 726 /** 727 * ttm_bo_alloc_resource - Allocate backing store for a BO 728 * 729 * @bo: Pointer to a struct ttm_buffer_object of which we want a resource for 730 * @placement: Proposed new placement for the buffer object 731 * @ctx: if and how to sleep, lock buffers and alloc memory 732 * @force_space: If we should evict buffers to force space 733 * @res: The resulting struct ttm_resource. 734 * 735 * Allocates a resource for the buffer object pointed to by @bo, using the 736 * placement flags in @placement, potentially evicting other buffer objects when 737 * @force_space is true. 738 * This function may sleep while waiting for resources to become available. 739 * Returns: 740 * -EBUSY: No space available (only if no_wait == true). 741 * -ENOSPC: Could not allocate space for the buffer object, either due to 742 * fragmentation or concurrent allocators. 743 * -ERESTARTSYS: An interruptible sleep was interrupted by a signal. 744 */ 745 static int ttm_bo_alloc_resource(struct ttm_buffer_object *bo, 746 struct ttm_placement *placement, 747 struct ttm_operation_ctx *ctx, 748 bool force_space, 749 struct ttm_resource **res) 750 { 751 struct ttm_device *bdev = bo->bdev; 752 struct ww_acquire_ctx *ticket; 753 int i, ret; 754 755 ticket = dma_resv_locking_ctx(bo->base.resv); 756 ret = dma_resv_reserve_fences(bo->base.resv, 1); 757 if (unlikely(ret)) 758 return ret; 759 760 for (i = 0; i < placement->num_placement; ++i) { 761 const struct ttm_place *place = &placement->placement[i]; 762 struct ttm_resource_manager *man; 763 764 man = ttm_manager_type(bdev, place->mem_type); 765 if (!man || !ttm_resource_manager_used(man)) 766 continue; 767 768 if (place->flags & (force_space ? TTM_PL_FLAG_DESIRED : 769 TTM_PL_FLAG_FALLBACK)) 770 continue; 771 772 do { 773 ret = ttm_resource_alloc(bo, place, res); 774 if (unlikely(ret && ret != -ENOSPC)) 775 return ret; 776 if (likely(!ret) || !force_space) 777 break; 778 779 ret = ttm_mem_evict_first(bdev, man, place, ctx, 780 ticket); 781 if (unlikely(ret == -EBUSY)) 782 break; 783 if (unlikely(ret)) 784 return ret; 785 } while (1); 786 if (ret) 787 continue; 788 789 ret = ttm_bo_add_move_fence(bo, man, ctx->no_wait_gpu); 790 if (unlikely(ret)) { 791 ttm_resource_free(bo, res); 792 if (ret == -EBUSY) 793 continue; 794 795 return ret; 796 } 797 return 0; 798 } 799 800 return -ENOSPC; 801 } 802 803 /* 804 * ttm_bo_mem_space - Wrapper around ttm_bo_alloc_resource 805 * 806 * @bo: Pointer to a struct ttm_buffer_object of which we want a resource for 807 * @placement: Proposed new placement for the buffer object 808 * @res: The resulting struct ttm_resource. 809 * @ctx: if and how to sleep, lock buffers and alloc memory 810 * 811 * Tries both idle allocation and forcefully eviction of buffers. See 812 * ttm_bo_alloc_resource for details. 813 */ 814 int ttm_bo_mem_space(struct ttm_buffer_object *bo, 815 struct ttm_placement *placement, 816 struct ttm_resource **res, 817 struct ttm_operation_ctx *ctx) 818 { 819 bool force_space = false; 820 int ret; 821 822 do { 823 ret = ttm_bo_alloc_resource(bo, placement, ctx, 824 force_space, res); 825 force_space = !force_space; 826 } while (ret == -ENOSPC && force_space); 827 828 return ret; 829 } 830 EXPORT_SYMBOL(ttm_bo_mem_space); 831 832 /** 833 * ttm_bo_validate 834 * 835 * @bo: The buffer object. 836 * @placement: Proposed placement for the buffer object. 837 * @ctx: validation parameters. 838 * 839 * Changes placement and caching policy of the buffer object 840 * according proposed placement. 841 * Returns 842 * -EINVAL on invalid proposed placement. 843 * -ENOMEM on out-of-memory condition. 844 * -EBUSY if no_wait is true and buffer busy. 845 * -ERESTARTSYS if interrupted by a signal. 846 */ 847 int ttm_bo_validate(struct ttm_buffer_object *bo, 848 struct ttm_placement *placement, 849 struct ttm_operation_ctx *ctx) 850 { 851 struct ttm_resource *res; 852 struct ttm_place hop; 853 bool force_space; 854 int ret; 855 856 dma_resv_assert_held(bo->base.resv); 857 858 /* 859 * Remove the backing store if no placement is given. 860 */ 861 if (!placement->num_placement) 862 return ttm_bo_pipeline_gutting(bo); 863 864 force_space = false; 865 do { 866 /* Check whether we need to move buffer. */ 867 if (bo->resource && 868 ttm_resource_compatible(bo->resource, placement, 869 force_space)) 870 return 0; 871 872 /* Moving of pinned BOs is forbidden */ 873 if (bo->pin_count) 874 return -EINVAL; 875 876 /* 877 * Determine where to move the buffer. 878 * 879 * If driver determines move is going to need 880 * an extra step then it will return -EMULTIHOP 881 * and the buffer will be moved to the temporary 882 * stop and the driver will be called to make 883 * the second hop. 884 */ 885 ret = ttm_bo_alloc_resource(bo, placement, ctx, force_space, 886 &res); 887 force_space = !force_space; 888 if (ret == -ENOSPC) 889 continue; 890 if (ret) 891 return ret; 892 893 bounce: 894 ret = ttm_bo_handle_move_mem(bo, res, false, ctx, &hop); 895 if (ret == -EMULTIHOP) { 896 ret = ttm_bo_bounce_temp_buffer(bo, ctx, &hop); 897 /* try and move to final place now. */ 898 if (!ret) 899 goto bounce; 900 } 901 if (ret) { 902 ttm_resource_free(bo, &res); 903 return ret; 904 } 905 906 } while (ret && force_space); 907 908 /* For backward compatibility with userspace */ 909 if (ret == -ENOSPC) 910 return -ENOMEM; 911 912 /* 913 * We might need to add a TTM. 914 */ 915 if (!bo->resource || bo->resource->mem_type == TTM_PL_SYSTEM) { 916 ret = ttm_tt_create(bo, true); 917 if (ret) 918 return ret; 919 } 920 return 0; 921 } 922 EXPORT_SYMBOL(ttm_bo_validate); 923 924 /** 925 * ttm_bo_init_reserved 926 * 927 * @bdev: Pointer to a ttm_device struct. 928 * @bo: Pointer to a ttm_buffer_object to be initialized. 929 * @type: Requested type of buffer object. 930 * @placement: Initial placement for buffer object. 931 * @alignment: Data alignment in pages. 932 * @ctx: TTM operation context for memory allocation. 933 * @sg: Scatter-gather table. 934 * @resv: Pointer to a dma_resv, or NULL to let ttm allocate one. 935 * @destroy: Destroy function. Use NULL for kfree(). 936 * 937 * This function initializes a pre-allocated struct ttm_buffer_object. 938 * As this object may be part of a larger structure, this function, 939 * together with the @destroy function, enables driver-specific objects 940 * derived from a ttm_buffer_object. 941 * 942 * On successful return, the caller owns an object kref to @bo. The kref and 943 * list_kref are usually set to 1, but note that in some situations, other 944 * tasks may already be holding references to @bo as well. 945 * Furthermore, if resv == NULL, the buffer's reservation lock will be held, 946 * and it is the caller's responsibility to call ttm_bo_unreserve. 947 * 948 * If a failure occurs, the function will call the @destroy function. Thus, 949 * after a failure, dereferencing @bo is illegal and will likely cause memory 950 * corruption. 951 * 952 * Returns 953 * -ENOMEM: Out of memory. 954 * -EINVAL: Invalid placement flags. 955 * -ERESTARTSYS: Interrupted by signal while sleeping waiting for resources. 956 */ 957 int ttm_bo_init_reserved(struct ttm_device *bdev, struct ttm_buffer_object *bo, 958 enum ttm_bo_type type, struct ttm_placement *placement, 959 uint32_t alignment, struct ttm_operation_ctx *ctx, 960 struct sg_table *sg, struct dma_resv *resv, 961 void (*destroy) (struct ttm_buffer_object *)) 962 { 963 int ret; 964 965 kref_init(&bo->kref); 966 bo->bdev = bdev; 967 bo->type = type; 968 bo->page_alignment = alignment; 969 bo->destroy = destroy; 970 bo->pin_count = 0; 971 bo->sg = sg; 972 bo->bulk_move = NULL; 973 if (resv) 974 bo->base.resv = resv; 975 else 976 bo->base.resv = &bo->base._resv; 977 atomic_inc(&ttm_glob.bo_count); 978 979 /* 980 * For ttm_bo_type_device buffers, allocate 981 * address space from the device. 982 */ 983 if (bo->type == ttm_bo_type_device || bo->type == ttm_bo_type_sg) { 984 ret = drm_vma_offset_add(bdev->vma_manager, &bo->base.vma_node, 985 PFN_UP(bo->base.size)); 986 if (ret) 987 goto err_put; 988 } 989 990 /* passed reservation objects should already be locked, 991 * since otherwise lockdep will be angered in radeon. 992 */ 993 if (!resv) 994 WARN_ON(!dma_resv_trylock(bo->base.resv)); 995 else 996 dma_resv_assert_held(resv); 997 998 ret = ttm_bo_validate(bo, placement, ctx); 999 if (unlikely(ret)) 1000 goto err_unlock; 1001 1002 return 0; 1003 1004 err_unlock: 1005 if (!resv) 1006 dma_resv_unlock(bo->base.resv); 1007 1008 err_put: 1009 ttm_bo_put(bo); 1010 return ret; 1011 } 1012 EXPORT_SYMBOL(ttm_bo_init_reserved); 1013 1014 /** 1015 * ttm_bo_init_validate 1016 * 1017 * @bdev: Pointer to a ttm_device struct. 1018 * @bo: Pointer to a ttm_buffer_object to be initialized. 1019 * @type: Requested type of buffer object. 1020 * @placement: Initial placement for buffer object. 1021 * @alignment: Data alignment in pages. 1022 * @interruptible: If needing to sleep to wait for GPU resources, 1023 * sleep interruptible. 1024 * pinned in physical memory. If this behaviour is not desired, this member 1025 * holds a pointer to a persistent shmem object. Typically, this would 1026 * point to the shmem object backing a GEM object if TTM is used to back a 1027 * GEM user interface. 1028 * @sg: Scatter-gather table. 1029 * @resv: Pointer to a dma_resv, or NULL to let ttm allocate one. 1030 * @destroy: Destroy function. Use NULL for kfree(). 1031 * 1032 * This function initializes a pre-allocated struct ttm_buffer_object. 1033 * As this object may be part of a larger structure, this function, 1034 * together with the @destroy function, 1035 * enables driver-specific objects derived from a ttm_buffer_object. 1036 * 1037 * On successful return, the caller owns an object kref to @bo. The kref and 1038 * list_kref are usually set to 1, but note that in some situations, other 1039 * tasks may already be holding references to @bo as well. 1040 * 1041 * If a failure occurs, the function will call the @destroy function, Thus, 1042 * after a failure, dereferencing @bo is illegal and will likely cause memory 1043 * corruption. 1044 * 1045 * Returns 1046 * -ENOMEM: Out of memory. 1047 * -EINVAL: Invalid placement flags. 1048 * -ERESTARTSYS: Interrupted by signal while sleeping waiting for resources. 1049 */ 1050 int ttm_bo_init_validate(struct ttm_device *bdev, struct ttm_buffer_object *bo, 1051 enum ttm_bo_type type, struct ttm_placement *placement, 1052 uint32_t alignment, bool interruptible, 1053 struct sg_table *sg, struct dma_resv *resv, 1054 void (*destroy) (struct ttm_buffer_object *)) 1055 { 1056 struct ttm_operation_ctx ctx = { interruptible, false }; 1057 int ret; 1058 1059 ret = ttm_bo_init_reserved(bdev, bo, type, placement, alignment, &ctx, 1060 sg, resv, destroy); 1061 if (ret) 1062 return ret; 1063 1064 if (!resv) 1065 ttm_bo_unreserve(bo); 1066 1067 return 0; 1068 } 1069 EXPORT_SYMBOL(ttm_bo_init_validate); 1070 1071 /* 1072 * buffer object vm functions. 1073 */ 1074 1075 /** 1076 * ttm_bo_unmap_virtual 1077 * 1078 * @bo: tear down the virtual mappings for this BO 1079 */ 1080 void ttm_bo_unmap_virtual(struct ttm_buffer_object *bo) 1081 { 1082 struct ttm_device *bdev = bo->bdev; 1083 1084 drm_vma_node_unmap(&bo->base.vma_node, bdev->dev_mapping); 1085 ttm_mem_io_free(bdev, bo->resource); 1086 } 1087 EXPORT_SYMBOL(ttm_bo_unmap_virtual); 1088 1089 /** 1090 * ttm_bo_wait_ctx - wait for buffer idle. 1091 * 1092 * @bo: The buffer object. 1093 * @ctx: defines how to wait 1094 * 1095 * Waits for the buffer to be idle. Used timeout depends on the context. 1096 * Returns -EBUSY if wait timed outt, -ERESTARTSYS if interrupted by a signal or 1097 * zero on success. 1098 */ 1099 int ttm_bo_wait_ctx(struct ttm_buffer_object *bo, struct ttm_operation_ctx *ctx) 1100 { 1101 long ret; 1102 1103 if (ctx->no_wait_gpu) { 1104 if (dma_resv_test_signaled(bo->base.resv, 1105 DMA_RESV_USAGE_BOOKKEEP)) 1106 return 0; 1107 else 1108 return -EBUSY; 1109 } 1110 1111 ret = dma_resv_wait_timeout(bo->base.resv, DMA_RESV_USAGE_BOOKKEEP, 1112 ctx->interruptible, 15 * HZ); 1113 if (unlikely(ret < 0)) 1114 return ret; 1115 if (unlikely(ret == 0)) 1116 return -EBUSY; 1117 return 0; 1118 } 1119 EXPORT_SYMBOL(ttm_bo_wait_ctx); 1120 1121 int ttm_bo_swapout(struct ttm_buffer_object *bo, struct ttm_operation_ctx *ctx, 1122 gfp_t gfp_flags) 1123 { 1124 struct ttm_place place; 1125 bool locked; 1126 long ret; 1127 1128 /* 1129 * While the bo may already reside in SYSTEM placement, set 1130 * SYSTEM as new placement to cover also the move further below. 1131 * The driver may use the fact that we're moving from SYSTEM 1132 * as an indication that we're about to swap out. 1133 */ 1134 memset(&place, 0, sizeof(place)); 1135 place.mem_type = bo->resource->mem_type; 1136 if (!ttm_bo_evict_swapout_allowable(bo, ctx, &place, &locked, NULL)) 1137 return -EBUSY; 1138 1139 if (!bo->ttm || !ttm_tt_is_populated(bo->ttm) || 1140 bo->ttm->page_flags & TTM_TT_FLAG_EXTERNAL || 1141 bo->ttm->page_flags & TTM_TT_FLAG_SWAPPED || 1142 !ttm_bo_get_unless_zero(bo)) { 1143 if (locked) 1144 dma_resv_unlock(bo->base.resv); 1145 return -EBUSY; 1146 } 1147 1148 if (bo->deleted) { 1149 ret = ttm_bo_cleanup_refs(bo, false, false, locked); 1150 ttm_bo_put(bo); 1151 return ret == -EBUSY ? -ENOSPC : ret; 1152 } 1153 1154 /* TODO: Cleanup the locking */ 1155 spin_unlock(&bo->bdev->lru_lock); 1156 1157 /* 1158 * Move to system cached 1159 */ 1160 if (bo->resource->mem_type != TTM_PL_SYSTEM) { 1161 struct ttm_resource *evict_mem; 1162 struct ttm_place hop; 1163 1164 memset(&hop, 0, sizeof(hop)); 1165 place.mem_type = TTM_PL_SYSTEM; 1166 ret = ttm_resource_alloc(bo, &place, &evict_mem); 1167 if (unlikely(ret)) 1168 goto out; 1169 1170 ret = ttm_bo_handle_move_mem(bo, evict_mem, true, ctx, &hop); 1171 if (unlikely(ret != 0)) { 1172 WARN(ret == -EMULTIHOP, "Unexpected multihop in swaput - likely driver bug.\n"); 1173 ttm_resource_free(bo, &evict_mem); 1174 goto out; 1175 } 1176 } 1177 1178 /* 1179 * Make sure BO is idle. 1180 */ 1181 ret = ttm_bo_wait_ctx(bo, ctx); 1182 if (unlikely(ret != 0)) 1183 goto out; 1184 1185 ttm_bo_unmap_virtual(bo); 1186 1187 /* 1188 * Swap out. Buffer will be swapped in again as soon as 1189 * anyone tries to access a ttm page. 1190 */ 1191 if (bo->bdev->funcs->swap_notify) 1192 bo->bdev->funcs->swap_notify(bo); 1193 1194 if (ttm_tt_is_populated(bo->ttm)) 1195 ret = ttm_tt_swapout(bo->bdev, bo->ttm, gfp_flags); 1196 out: 1197 1198 /* 1199 * Unreserve without putting on LRU to avoid swapping out an 1200 * already swapped buffer. 1201 */ 1202 if (locked) 1203 dma_resv_unlock(bo->base.resv); 1204 ttm_bo_put(bo); 1205 return ret == -EBUSY ? -ENOSPC : ret; 1206 } 1207 1208 void ttm_bo_tt_destroy(struct ttm_buffer_object *bo) 1209 { 1210 if (bo->ttm == NULL) 1211 return; 1212 1213 ttm_tt_unpopulate(bo->bdev, bo->ttm); 1214 ttm_tt_destroy(bo->bdev, bo->ttm); 1215 bo->ttm = NULL; 1216 } 1217