1 // SPDX-License-Identifier: MIT 2 /* 3 * Copyright © 2022 Intel Corporation 4 */ 5 6 #include "xe_pt.h" 7 8 #include "regs/xe_gtt_defs.h" 9 #include "xe_bo.h" 10 #include "xe_device.h" 11 #include "xe_drm_client.h" 12 #include "xe_exec_queue.h" 13 #include "xe_gt.h" 14 #include "xe_gt_stats.h" 15 #include "xe_migrate.h" 16 #include "xe_page_reclaim.h" 17 #include "xe_pat.h" 18 #include "xe_pt_types.h" 19 #include "xe_pt_walk.h" 20 #include "xe_res_cursor.h" 21 #include "xe_sched_job.h" 22 #include "xe_svm.h" 23 #include "xe_sync.h" 24 #include "xe_tlb_inval_job.h" 25 #include "xe_trace.h" 26 #include "xe_ttm_stolen_mgr.h" 27 #include "xe_userptr.h" 28 #include "xe_vm.h" 29 30 struct xe_pt_dir { 31 struct xe_pt pt; 32 /** @children: Array of page-table child nodes */ 33 struct xe_ptw *children[XE_PDES]; 34 /** @staging: Array of page-table staging nodes */ 35 struct xe_ptw *staging[XE_PDES]; 36 }; 37 38 #if IS_ENABLED(CONFIG_DRM_XE_DEBUG_VM) 39 #define xe_pt_set_addr(__xe_pt, __addr) ((__xe_pt)->addr = (__addr)) 40 #define xe_pt_addr(__xe_pt) ((__xe_pt)->addr) 41 #else 42 #define xe_pt_set_addr(__xe_pt, __addr) 43 #define xe_pt_addr(__xe_pt) 0ull 44 #endif 45 46 static const u64 xe_normal_pt_shifts[] = {12, 21, 30, 39, 48}; 47 static const u64 xe_compact_pt_shifts[] = {16, 21, 30, 39, 48}; 48 49 #define XE_PT_HIGHEST_LEVEL (ARRAY_SIZE(xe_normal_pt_shifts) - 1) 50 51 static struct xe_pt_dir *as_xe_pt_dir(struct xe_pt *pt) 52 { 53 return container_of(pt, struct xe_pt_dir, pt); 54 } 55 56 static struct xe_pt * 57 xe_pt_entry_staging(struct xe_pt_dir *pt_dir, unsigned int index) 58 { 59 return container_of(pt_dir->staging[index], struct xe_pt, base); 60 } 61 62 static u64 __xe_pt_empty_pte(struct xe_tile *tile, struct xe_vm *vm, 63 unsigned int level) 64 { 65 struct xe_device *xe = tile_to_xe(tile); 66 u16 pat_index = xe_cache_pat_idx(xe, XE_CACHE_WB); 67 u8 id = tile->id; 68 69 if (!xe_vm_has_scratch(vm)) 70 return 0; 71 72 if (level > MAX_HUGEPTE_LEVEL) 73 return vm->pt_ops->pde_encode_bo(vm->scratch_pt[id][level - 1]->bo, 74 0); 75 76 return vm->pt_ops->pte_encode_addr(xe, 0, pat_index, level, IS_DGFX(xe), 0) | 77 XE_PTE_NULL; 78 } 79 80 static void xe_pt_free(struct xe_pt *pt) 81 { 82 if (pt->level) 83 kfree(as_xe_pt_dir(pt)); 84 else 85 kfree(pt); 86 } 87 88 /** 89 * xe_pt_create() - Create a page-table. 90 * @vm: The vm to create for. 91 * @tile: The tile to create for. 92 * @level: The page-table level. 93 * @exec: The drm_exec object used to lock the vm. 94 * 95 * Allocate and initialize a single struct xe_pt metadata structure. Also 96 * create the corresponding page-table bo, but don't initialize it. If the 97 * level is grater than zero, then it's assumed to be a directory page- 98 * table and the directory structure is also allocated and initialized to 99 * NULL pointers. 100 * 101 * Return: A valid struct xe_pt pointer on success, Pointer error code on 102 * error. 103 */ 104 struct xe_pt *xe_pt_create(struct xe_vm *vm, struct xe_tile *tile, 105 unsigned int level, struct drm_exec *exec) 106 { 107 struct xe_pt *pt; 108 struct xe_bo *bo; 109 u32 bo_flags; 110 int err; 111 112 if (level) { 113 struct xe_pt_dir *dir = kzalloc_obj(*dir); 114 115 pt = (dir) ? &dir->pt : NULL; 116 } else { 117 pt = kzalloc_obj(*pt); 118 } 119 if (!pt) 120 return ERR_PTR(-ENOMEM); 121 122 bo_flags = XE_BO_FLAG_VRAM_IF_DGFX(tile) | 123 XE_BO_FLAG_IGNORE_MIN_PAGE_SIZE | 124 XE_BO_FLAG_NO_RESV_EVICT | XE_BO_FLAG_PAGETABLE; 125 if (vm->xef) /* userspace */ 126 bo_flags |= XE_BO_FLAG_PINNED_LATE_RESTORE | XE_BO_FLAG_FORCE_USER_VRAM; 127 128 pt->level = level; 129 130 drm_WARN_ON(&vm->xe->drm, IS_ERR_OR_NULL(exec)); 131 bo = xe_bo_create_pin_map(vm->xe, tile, vm, SZ_4K, 132 ttm_bo_type_kernel, 133 bo_flags, exec); 134 if (IS_ERR(bo)) { 135 err = PTR_ERR(bo); 136 goto err_kfree; 137 } 138 pt->bo = bo; 139 pt->base.children = level ? as_xe_pt_dir(pt)->children : NULL; 140 pt->base.staging = level ? as_xe_pt_dir(pt)->staging : NULL; 141 142 if (vm->xef) 143 xe_drm_client_add_bo(vm->xef->client, pt->bo); 144 xe_tile_assert(tile, level <= XE_VM_MAX_LEVEL); 145 146 return pt; 147 148 err_kfree: 149 xe_pt_free(pt); 150 return ERR_PTR(err); 151 } 152 ALLOW_ERROR_INJECTION(xe_pt_create, ERRNO); 153 154 /** 155 * xe_pt_populate_empty() - Populate a page-table bo with scratch- or zero 156 * entries. 157 * @tile: The tile the scratch pagetable of which to use. 158 * @vm: The vm we populate for. 159 * @pt: The pagetable the bo of which to initialize. 160 * 161 * Populate the page-table bo of @pt with entries pointing into the tile's 162 * scratch page-table tree if any. Otherwise populate with zeros. 163 */ 164 void xe_pt_populate_empty(struct xe_tile *tile, struct xe_vm *vm, 165 struct xe_pt *pt) 166 { 167 struct iosys_map *map = &pt->bo->vmap; 168 u64 empty; 169 int i; 170 171 if (!xe_vm_has_scratch(vm)) { 172 /* 173 * FIXME: Some memory is allocated already allocated to zero? 174 * Find out which memory that is and avoid this memset... 175 */ 176 xe_map_memset(vm->xe, map, 0, 0, SZ_4K); 177 } else { 178 empty = __xe_pt_empty_pte(tile, vm, pt->level); 179 for (i = 0; i < XE_PDES; i++) 180 xe_pt_write(vm->xe, map, i, empty); 181 } 182 } 183 184 /** 185 * xe_pt_shift() - Return the ilog2 value of the size of the address range of 186 * a page-table at a certain level. 187 * @level: The level. 188 * 189 * Return: The ilog2 value of the size of the address range of a page-table 190 * at level @level. 191 */ 192 unsigned int xe_pt_shift(unsigned int level) 193 { 194 return XE_PTE_SHIFT + XE_PDE_SHIFT * level; 195 } 196 197 /** 198 * xe_pt_destroy() - Destroy a page-table tree. 199 * @pt: The root of the page-table tree to destroy. 200 * @flags: vm flags. Currently unused. 201 * @deferred: List head of lockless list for deferred putting. NULL for 202 * immediate putting. 203 * 204 * Puts the page-table bo, recursively calls xe_pt_destroy on all children 205 * and finally frees @pt. TODO: Can we remove the @flags argument? 206 */ 207 void xe_pt_destroy(struct xe_pt *pt, u32 flags, struct llist_head *deferred) 208 { 209 int i; 210 211 if (!pt) 212 return; 213 214 XE_WARN_ON(!list_empty(&pt->bo->ttm.base.gpuva.list)); 215 xe_bo_unpin(pt->bo); 216 xe_bo_put_deferred(pt->bo, deferred); 217 218 if (pt->level > 0 && pt->num_live) { 219 struct xe_pt_dir *pt_dir = as_xe_pt_dir(pt); 220 221 for (i = 0; i < XE_PDES; i++) { 222 if (xe_pt_entry_staging(pt_dir, i)) 223 xe_pt_destroy(xe_pt_entry_staging(pt_dir, i), flags, 224 deferred); 225 } 226 } 227 xe_pt_free(pt); 228 } 229 230 /** 231 * xe_pt_clear() - Clear a page-table. 232 * @xe: xe device. 233 * @pt: The page-table. 234 * 235 * Clears page-table by setting to zero. 236 */ 237 void xe_pt_clear(struct xe_device *xe, struct xe_pt *pt) 238 { 239 struct iosys_map *map = &pt->bo->vmap; 240 241 xe_map_memset(xe, map, 0, 0, SZ_4K); 242 } 243 244 /** 245 * DOC: Pagetable building 246 * 247 * Below we use the term "page-table" for both page-directories, containing 248 * pointers to lower level page-directories or page-tables, and level 0 249 * page-tables that contain only page-table-entries pointing to memory pages. 250 * 251 * When inserting an address range in an already existing page-table tree 252 * there will typically be a set of page-tables that are shared with other 253 * address ranges, and a set that are private to this address range. 254 * The set of shared page-tables can be at most two per level, 255 * and those can't be updated immediately because the entries of those 256 * page-tables may still be in use by the gpu for other mappings. Therefore 257 * when inserting entries into those, we instead stage those insertions by 258 * adding insertion data into struct xe_vm_pgtable_update structures. This 259 * data, (subtrees for the cpu and page-table-entries for the gpu) is then 260 * added in a separate commit step. CPU-data is committed while still under the 261 * vm lock, the object lock and for userptr, the notifier lock in read mode. 262 * The GPU async data is committed either by the GPU or CPU after fulfilling 263 * relevant dependencies. 264 * For non-shared page-tables (and, in fact, for shared ones that aren't 265 * existing at the time of staging), we add the data in-place without the 266 * special update structures. This private part of the page-table tree will 267 * remain disconnected from the vm page-table tree until data is committed to 268 * the shared page tables of the vm tree in the commit phase. 269 */ 270 271 struct xe_pt_update { 272 /** @update: The update structure we're building for this parent. */ 273 struct xe_vm_pgtable_update *update; 274 /** @parent: The parent. Used to detect a parent change. */ 275 struct xe_pt *parent; 276 /** @preexisting: Whether the parent was pre-existing or allocated */ 277 bool preexisting; 278 }; 279 280 /** 281 * struct xe_pt_stage_bind_walk - Walk state for the stage_bind walk. 282 */ 283 struct xe_pt_stage_bind_walk { 284 /** @base: The base class. */ 285 struct xe_pt_walk base; 286 287 /* Input parameters for the walk */ 288 /** @vm: The vm we're building for. */ 289 struct xe_vm *vm; 290 /** @tile: The tile we're building for. */ 291 struct xe_tile *tile; 292 /** @default_vram_pte: PTE flag only template for VRAM. No address is associated */ 293 u64 default_vram_pte; 294 /** @default_system_pte: PTE flag only template for System. No address is associated */ 295 u64 default_system_pte; 296 /** @dma_offset: DMA offset to add to the PTE. */ 297 u64 dma_offset; 298 /** 299 * @needs_64K: This address range enforces 64K alignment and 300 * granularity on VRAM. 301 */ 302 bool needs_64K; 303 /** @clear_pt: clear page table entries during the bind walk */ 304 bool clear_pt; 305 /** 306 * @vma: VMA being mapped 307 */ 308 struct xe_vma *vma; 309 310 /* Also input, but is updated during the walk*/ 311 /** @curs: The DMA address cursor. */ 312 struct xe_res_cursor *curs; 313 /** @va_curs_start: The Virtual address corresponding to @curs->start */ 314 u64 va_curs_start; 315 316 /* Output */ 317 /** @wupd: Walk output data for page-table updates. */ 318 struct xe_walk_update { 319 /** @wupd.entries: Caller provided storage. */ 320 struct xe_vm_pgtable_update *entries; 321 /** @wupd.num_used_entries: Number of update @entries used. */ 322 unsigned int num_used_entries; 323 /** @wupd.updates: Tracks the update entry at a given level */ 324 struct xe_pt_update updates[XE_VM_MAX_LEVEL + 1]; 325 } wupd; 326 327 /* Walk state */ 328 /** 329 * @l0_end_addr: The end address of the current l0 leaf. Used for 330 * 64K granularity detection. 331 */ 332 u64 l0_end_addr; 333 /** @addr_64K: The start address of the current 64K chunk. */ 334 u64 addr_64K; 335 /** @found_64K: Whether @add_64K actually points to a 64K chunk. */ 336 bool found_64K; 337 }; 338 339 static int 340 xe_pt_new_shared(struct xe_walk_update *wupd, struct xe_pt *parent, 341 pgoff_t offset, bool alloc_entries) 342 { 343 struct xe_pt_update *upd = &wupd->updates[parent->level]; 344 struct xe_vm_pgtable_update *entry; 345 346 /* 347 * For *each level*, we could only have one active 348 * struct xt_pt_update at any one time. Once we move on to a 349 * new parent and page-directory, the old one is complete, and 350 * updates are either already stored in the build tree or in 351 * @wupd->entries 352 */ 353 if (likely(upd->parent == parent)) 354 return 0; 355 356 upd->parent = parent; 357 upd->preexisting = true; 358 359 if (wupd->num_used_entries == XE_VM_MAX_LEVEL * 2 + 1) 360 return -EINVAL; 361 362 entry = wupd->entries + wupd->num_used_entries++; 363 upd->update = entry; 364 entry->ofs = offset; 365 entry->pt_bo = parent->bo; 366 entry->pt = parent; 367 entry->flags = 0; 368 entry->qwords = 0; 369 entry->pt_bo->update_index = -1; 370 371 if (alloc_entries) { 372 entry->pt_entries = kmalloc_objs(*entry->pt_entries, XE_PDES); 373 if (!entry->pt_entries) 374 return -ENOMEM; 375 } 376 377 return 0; 378 } 379 380 /* 381 * NOTE: This is a very frequently called function so we allow ourselves 382 * to annotate (using branch prediction hints) the fastpath of updating a 383 * non-pre-existing pagetable with leaf ptes. 384 */ 385 static int 386 xe_pt_insert_entry(struct xe_pt_stage_bind_walk *xe_walk, struct xe_pt *parent, 387 pgoff_t offset, struct xe_pt *xe_child, u64 pte) 388 { 389 struct xe_pt_update *upd = &xe_walk->wupd.updates[parent->level]; 390 struct xe_pt_update *child_upd = xe_child ? 391 &xe_walk->wupd.updates[xe_child->level] : NULL; 392 int ret; 393 394 ret = xe_pt_new_shared(&xe_walk->wupd, parent, offset, true); 395 if (unlikely(ret)) 396 return ret; 397 398 /* 399 * Register this new pagetable so that it won't be recognized as 400 * a shared pagetable by a subsequent insertion. 401 */ 402 if (unlikely(child_upd)) { 403 child_upd->update = NULL; 404 child_upd->parent = xe_child; 405 child_upd->preexisting = false; 406 } 407 408 if (likely(!upd->preexisting)) { 409 /* Continue building a non-connected subtree. */ 410 struct iosys_map *map = &parent->bo->vmap; 411 412 if (unlikely(xe_child)) { 413 parent->base.children[offset] = &xe_child->base; 414 parent->base.staging[offset] = &xe_child->base; 415 } 416 417 xe_pt_write(xe_walk->vm->xe, map, offset, pte); 418 parent->num_live++; 419 } else { 420 /* Shared pt. Stage update. */ 421 unsigned int idx; 422 struct xe_vm_pgtable_update *entry = upd->update; 423 424 idx = offset - entry->ofs; 425 entry->pt_entries[idx].pt = xe_child; 426 entry->pt_entries[idx].pte = pte; 427 entry->qwords++; 428 } 429 430 return 0; 431 } 432 433 static bool xe_pt_hugepte_possible(u64 addr, u64 next, unsigned int level, 434 struct xe_pt_stage_bind_walk *xe_walk) 435 { 436 struct xe_bo *bo = xe_vma_bo(xe_walk->vma); 437 u64 size, dma; 438 439 if (level > MAX_HUGEPTE_LEVEL) 440 return false; 441 442 /* Does the virtual range requested cover a huge pte? */ 443 if (!xe_pt_covers(addr, next, level, &xe_walk->base)) 444 return false; 445 446 /* null VMA's and purged BO's do not have dma addresses */ 447 if (xe_vma_is_null(xe_walk->vma) || (bo && xe_bo_is_purged(bo))) 448 return true; 449 450 /* if we are clearing page table, no dma addresses*/ 451 if (xe_walk->clear_pt) 452 return true; 453 454 /* Does the DMA segment cover the whole pte? */ 455 if (next - xe_walk->va_curs_start > xe_walk->curs->size) 456 return false; 457 458 /* Is the DMA address huge PTE size aligned? */ 459 size = next - addr; 460 dma = addr - xe_walk->va_curs_start + xe_res_dma(xe_walk->curs); 461 462 return IS_ALIGNED(dma, size); 463 } 464 465 /* 466 * Scan the requested mapping to check whether it can be done entirely 467 * with 64K PTEs. 468 */ 469 static bool 470 xe_pt_scan_64K(u64 addr, u64 next, struct xe_pt_stage_bind_walk *xe_walk) 471 { 472 struct xe_bo *bo = xe_vma_bo(xe_walk->vma); 473 struct xe_res_cursor curs = *xe_walk->curs; 474 475 if (!IS_ALIGNED(addr, SZ_64K)) 476 return false; 477 478 if (next > xe_walk->l0_end_addr) 479 return false; 480 481 /* null VMA's and purged BO's do not have dma addresses */ 482 if (xe_vma_is_null(xe_walk->vma) || (bo && xe_bo_is_purged(bo))) 483 return true; 484 485 xe_res_next(&curs, addr - xe_walk->va_curs_start); 486 for (; addr < next; addr += SZ_64K) { 487 if (!IS_ALIGNED(xe_res_dma(&curs), SZ_64K) || curs.size < SZ_64K) 488 return false; 489 490 xe_res_next(&curs, SZ_64K); 491 } 492 493 return addr == next; 494 } 495 496 /* 497 * For non-compact "normal" 4K level-0 pagetables, we want to try to group 498 * addresses together in 64K-contigous regions to add a 64K TLB hint for the 499 * device to the PTE. 500 * This function determines whether the address is part of such a 501 * segment. For VRAM in normal pagetables, this is strictly necessary on 502 * some devices. 503 */ 504 static bool 505 xe_pt_is_pte_ps64K(u64 addr, u64 next, struct xe_pt_stage_bind_walk *xe_walk) 506 { 507 /* Address is within an already found 64k region */ 508 if (xe_walk->found_64K && addr - xe_walk->addr_64K < SZ_64K) 509 return true; 510 511 xe_walk->found_64K = xe_pt_scan_64K(addr, addr + SZ_64K, xe_walk); 512 xe_walk->addr_64K = addr; 513 514 return xe_walk->found_64K; 515 } 516 517 static int 518 xe_pt_stage_bind_entry(struct xe_ptw *parent, pgoff_t offset, 519 unsigned int level, u64 addr, u64 next, 520 struct xe_ptw **child, 521 enum page_walk_action *action, 522 struct xe_pt_walk *walk) 523 { 524 struct xe_pt_stage_bind_walk *xe_walk = 525 container_of(walk, typeof(*xe_walk), base); 526 u16 pat_index = xe_walk->vma->attr.pat_index; 527 struct xe_pt *xe_parent = container_of(parent, typeof(*xe_parent), base); 528 struct xe_vm *vm = xe_walk->vm; 529 struct xe_pt *xe_child; 530 bool covers; 531 int ret = 0; 532 u64 pte; 533 534 /* Is this a leaf entry ?*/ 535 if (level == 0 || xe_pt_hugepte_possible(addr, next, level, xe_walk)) { 536 struct xe_res_cursor *curs = xe_walk->curs; 537 struct xe_bo *bo = xe_vma_bo(xe_walk->vma); 538 bool is_null_or_purged = xe_vma_is_null(xe_walk->vma) || 539 (bo && xe_bo_is_purged(bo)); 540 bool is_vram = is_null_or_purged ? false : xe_res_is_vram(curs); 541 542 XE_WARN_ON(xe_walk->va_curs_start != addr); 543 544 if (xe_walk->clear_pt) { 545 pte = 0; 546 } else { 547 /* 548 * For purged BOs, treat like null VMAs - pass address 0. 549 * The pte_encode_vma will set XE_PTE_NULL flag for scratch mapping. 550 */ 551 pte = vm->pt_ops->pte_encode_vma(is_null_or_purged ? 0 : 552 xe_res_dma(curs) + 553 xe_walk->dma_offset, 554 xe_walk->vma, 555 pat_index, level); 556 if (!is_null_or_purged) 557 pte |= is_vram ? xe_walk->default_vram_pte : 558 xe_walk->default_system_pte; 559 560 /* 561 * Set the XE_PTE_PS64 hint if possible, otherwise if 562 * this device *requires* 64K PTE size for VRAM, fail. 563 */ 564 if (level == 0 && !xe_parent->is_compact) { 565 if (xe_pt_is_pte_ps64K(addr, next, xe_walk)) { 566 xe_walk->vma->gpuva.flags |= 567 XE_VMA_PTE_64K; 568 pte |= XE_PTE_PS64; 569 } else if (XE_WARN_ON(xe_walk->needs_64K && 570 is_vram)) { 571 return -EINVAL; 572 } 573 } 574 } 575 576 ret = xe_pt_insert_entry(xe_walk, xe_parent, offset, NULL, pte); 577 if (unlikely(ret)) 578 return ret; 579 580 if (!is_null_or_purged && !xe_walk->clear_pt) 581 xe_res_next(curs, next - addr); 582 xe_walk->va_curs_start = next; 583 xe_walk->vma->gpuva.flags |= (XE_VMA_PTE_4K << level); 584 *action = ACTION_CONTINUE; 585 586 return ret; 587 } 588 589 /* 590 * Descending to lower level. Determine if we need to allocate a 591 * new page table or -directory, which we do if there is no 592 * previous one or there is one we can completely replace. 593 */ 594 if (level == 1) { 595 walk->shifts = xe_normal_pt_shifts; 596 xe_walk->l0_end_addr = next; 597 } 598 599 covers = xe_pt_covers(addr, next, level, &xe_walk->base); 600 if (covers || !*child) { 601 u64 flags = 0; 602 603 xe_child = xe_pt_create(xe_walk->vm, xe_walk->tile, level - 1, 604 xe_vm_validation_exec(vm)); 605 if (IS_ERR(xe_child)) 606 return PTR_ERR(xe_child); 607 608 xe_pt_set_addr(xe_child, 609 round_down(addr, 1ull << walk->shifts[level])); 610 611 if (!covers) 612 xe_pt_populate_empty(xe_walk->tile, xe_walk->vm, xe_child); 613 614 *child = &xe_child->base; 615 616 /* 617 * Prefer the compact pagetable layout for L0 if possible. Only 618 * possible if VMA covers entire 2MB region as compact 64k and 619 * 4k pages cannot be mixed within a 2MB region. 620 * TODO: Suballocate the pt bo to avoid wasting a lot of 621 * memory. 622 */ 623 if (GRAPHICS_VERx100(tile_to_xe(xe_walk->tile)) >= 1250 && level == 1 && 624 covers && xe_pt_scan_64K(addr, next, xe_walk)) { 625 walk->shifts = xe_compact_pt_shifts; 626 xe_walk->vma->gpuva.flags |= XE_VMA_PTE_COMPACT; 627 flags |= XE_PDE_64K; 628 xe_child->is_compact = true; 629 } 630 631 pte = vm->pt_ops->pde_encode_bo(xe_child->bo, 0) | flags; 632 ret = xe_pt_insert_entry(xe_walk, xe_parent, offset, xe_child, 633 pte); 634 } 635 636 *action = ACTION_SUBTREE; 637 return ret; 638 } 639 640 static const struct xe_pt_walk_ops xe_pt_stage_bind_ops = { 641 .pt_entry = xe_pt_stage_bind_entry, 642 }; 643 644 /* 645 * Default atomic expectations for different allocation scenarios are as follows: 646 * 647 * 1. Traditional API: When the VM is not in LR mode: 648 * - Device atomics are expected to function with all allocations. 649 * 650 * 2. Compute/SVM API: When the VM is in LR mode: 651 * - Device atomics are the default behavior when the bo is placed in a single region. 652 * - In all other cases device atomics will be disabled with AE=0 until an application 653 * request differently using a ioctl like madvise. 654 */ 655 static bool xe_atomic_for_vram(struct xe_vm *vm, struct xe_vma *vma) 656 { 657 if (vma->attr.atomic_access == DRM_XE_ATOMIC_CPU) 658 return false; 659 660 return true; 661 } 662 663 static bool xe_atomic_for_system(struct xe_vm *vm, struct xe_vma *vma) 664 { 665 struct xe_device *xe = vm->xe; 666 struct xe_bo *bo = xe_vma_bo(vma); 667 668 if (!xe->info.has_device_atomics_on_smem || 669 vma->attr.atomic_access == DRM_XE_ATOMIC_CPU) 670 return false; 671 672 if (vma->attr.atomic_access == DRM_XE_ATOMIC_DEVICE) 673 return true; 674 675 /* 676 * If a SMEM+LMEM allocation is backed by SMEM, a device 677 * atomics will cause a gpu page fault and which then 678 * gets migrated to LMEM, bind such allocations with 679 * device atomics enabled. 680 */ 681 return (!IS_DGFX(xe) || (!xe_vm_in_lr_mode(vm) || 682 (bo && xe_bo_has_single_placement(bo)))); 683 } 684 685 /** 686 * xe_pt_stage_bind() - Build a disconnected page-table tree for a given address 687 * range. 688 * @tile: The tile we're building for. 689 * @vma: The vma indicating the address range. 690 * @range: The range indicating the address range. 691 * @entries: Storage for the update entries used for connecting the tree to 692 * the main tree at commit time. 693 * @num_entries: On output contains the number of @entries used. 694 * @clear_pt: Clear the page table entries. 695 * 696 * This function builds a disconnected page-table tree for a given address 697 * range. The tree is connected to the main vm tree for the gpu using 698 * xe_migrate_update_pgtables() and for the cpu using xe_pt_commit_bind(). 699 * The function builds xe_vm_pgtable_update structures for already existing 700 * shared page-tables, and non-existing shared and non-shared page-tables 701 * are built and populated directly. 702 * 703 * Return 0 on success, negative error code on error. 704 */ 705 static int 706 xe_pt_stage_bind(struct xe_tile *tile, struct xe_vma *vma, 707 struct xe_svm_range *range, 708 struct xe_vm_pgtable_update *entries, 709 u32 *num_entries, bool clear_pt) 710 { 711 struct xe_device *xe = tile_to_xe(tile); 712 struct xe_bo *bo = xe_vma_bo(vma); 713 struct xe_res_cursor curs = {}; 714 struct xe_vm *vm = xe_vma_vm(vma); 715 struct xe_pt_stage_bind_walk xe_walk = { 716 .base = { 717 .ops = &xe_pt_stage_bind_ops, 718 .shifts = xe_normal_pt_shifts, 719 .max_level = XE_PT_HIGHEST_LEVEL, 720 .staging = true, 721 }, 722 .vm = vm, 723 .tile = tile, 724 .curs = &curs, 725 .va_curs_start = range ? xe_svm_range_start(range) : 726 xe_vma_start(vma), 727 .vma = vma, 728 .wupd.entries = entries, 729 .clear_pt = clear_pt, 730 }; 731 struct xe_pt *pt = vm->pt_root[tile->id]; 732 int ret; 733 bool is_purged = false; 734 735 /* 736 * Check if BO is purged: 737 * - Scratch VMs: Use scratch PTEs (XE_PTE_NULL) for safe zero reads 738 * - Non-scratch VMs: Clear PTEs to zero (non-present) to avoid mapping to phys addr 0 739 * 740 * For non-scratch VMs, we force clear_pt=true so leaf PTEs become completely 741 * zero instead of creating a PRESENT mapping to physical address 0. 742 */ 743 if (bo && xe_bo_is_purged(bo)) { 744 is_purged = true; 745 746 /* 747 * For non-scratch VMs, a NULL rebind should use zero PTEs 748 * (non-present), not a present PTE to phys 0. 749 */ 750 if (!xe_vm_has_scratch(vm)) 751 xe_walk.clear_pt = true; 752 } 753 754 if (range) { 755 /* Move this entire thing to xe_svm.c? */ 756 xe_svm_notifier_lock(vm); 757 if (!xe_svm_range_pages_valid(range)) { 758 xe_svm_range_debug(range, "BIND PREPARE - RETRY"); 759 xe_svm_notifier_unlock(vm); 760 return -EAGAIN; 761 } 762 if (xe_svm_range_has_dma_mapping(range)) { 763 xe_res_first_dma(range->base.pages.dma_addr, 0, 764 xe_svm_range_size(range), 765 &curs); 766 xe_svm_range_debug(range, "BIND PREPARE - MIXED"); 767 } else { 768 xe_assert(xe, false); 769 } 770 /* 771 * Note, when unlocking the resource cursor dma addresses may become 772 * stale, but the bind will be aborted anyway at commit time. 773 */ 774 xe_svm_notifier_unlock(vm); 775 } 776 777 xe_walk.needs_64K = (vm->flags & XE_VM_FLAG_64K); 778 if (clear_pt) { 779 xe_assert(xe, !range); 780 curs.size = xe_vma_size(vma); 781 goto walk_pt; 782 } 783 784 if (vma->gpuva.flags & XE_VMA_ATOMIC_PTE_BIT) { 785 xe_walk.default_vram_pte = xe_atomic_for_vram(vm, vma) ? XE_USM_PPGTT_PTE_AE : 0; 786 xe_walk.default_system_pte = xe_atomic_for_system(vm, vma) ? 787 XE_USM_PPGTT_PTE_AE : 0; 788 } 789 790 xe_walk.default_vram_pte |= XE_PPGTT_PTE_DM; 791 xe_walk.dma_offset = (bo && !is_purged) ? vram_region_gpu_offset(bo->ttm.resource) : 0; 792 if (!range) 793 xe_bo_assert_held(bo); 794 795 if (!xe_vma_is_null(vma) && !range && !is_purged) { 796 if (xe_vma_is_userptr(vma)) 797 xe_res_first_dma(to_userptr_vma(vma)->userptr.pages.dma_addr, 0, 798 xe_vma_size(vma), &curs); 799 else if (xe_bo_is_vram(bo) || xe_bo_is_stolen(bo)) 800 xe_res_first(bo->ttm.resource, xe_vma_bo_offset(vma), 801 xe_vma_size(vma), &curs); 802 else 803 xe_res_first_sg(xe_bo_sg(bo), xe_vma_bo_offset(vma), 804 xe_vma_size(vma), &curs); 805 } else if (!range) { 806 curs.size = xe_vma_size(vma); 807 } 808 809 walk_pt: 810 ret = xe_pt_walk_range(&pt->base, pt->level, 811 range ? xe_svm_range_start(range) : xe_vma_start(vma), 812 range ? xe_svm_range_end(range) : xe_vma_end(vma), 813 &xe_walk.base); 814 815 *num_entries = xe_walk.wupd.num_used_entries; 816 return ret; 817 } 818 819 /** 820 * xe_pt_nonshared_offsets() - Determine the non-shared entry offsets of a 821 * shared pagetable. 822 * @addr: The start address within the non-shared pagetable. 823 * @end: The end address within the non-shared pagetable. 824 * @level: The level of the non-shared pagetable. 825 * @walk: Walk info. The function adjusts the walk action. 826 * @action: next action to perform (see enum page_walk_action) 827 * @offset: Ignored on input, First non-shared entry on output. 828 * @end_offset: Ignored on input, Last non-shared entry + 1 on output. 829 * 830 * A non-shared page-table has some entries that belong to the address range 831 * and others that don't. This function determines the entries that belong 832 * fully to the address range. Depending on level, some entries may 833 * partially belong to the address range (that can't happen at level 0). 834 * The function detects that and adjust those offsets to not include those 835 * partial entries. Iff it does detect partial entries, we know that there must 836 * be shared page tables also at lower levels, so it adjusts the walk action 837 * accordingly. 838 * 839 * Return: true if there were non-shared entries, false otherwise. 840 */ 841 static bool xe_pt_nonshared_offsets(u64 addr, u64 end, unsigned int level, 842 struct xe_pt_walk *walk, 843 enum page_walk_action *action, 844 pgoff_t *offset, pgoff_t *end_offset) 845 { 846 u64 size = 1ull << walk->shifts[level]; 847 848 *offset = xe_pt_offset(addr, level, walk); 849 *end_offset = xe_pt_num_entries(addr, end, level, walk) + *offset; 850 851 if (!level) 852 return true; 853 854 /* 855 * If addr or next are not size aligned, there are shared pts at lower 856 * level, so in that case traverse down the subtree 857 */ 858 *action = ACTION_CONTINUE; 859 if (!IS_ALIGNED(addr, size)) { 860 *action = ACTION_SUBTREE; 861 (*offset)++; 862 } 863 864 if (!IS_ALIGNED(end, size)) { 865 *action = ACTION_SUBTREE; 866 (*end_offset)--; 867 } 868 869 return *end_offset > *offset; 870 } 871 872 struct xe_pt_zap_ptes_walk { 873 /** @base: The walk base-class */ 874 struct xe_pt_walk base; 875 876 /* Input parameters for the walk */ 877 /** @tile: The tile we're building for */ 878 struct xe_tile *tile; 879 880 /* Output */ 881 /** @needs_invalidate: Whether we need to invalidate TLB*/ 882 bool needs_invalidate; 883 }; 884 885 static int xe_pt_zap_ptes_entry(struct xe_ptw *parent, pgoff_t offset, 886 unsigned int level, u64 addr, u64 next, 887 struct xe_ptw **child, 888 enum page_walk_action *action, 889 struct xe_pt_walk *walk) 890 { 891 struct xe_pt_zap_ptes_walk *xe_walk = 892 container_of(walk, typeof(*xe_walk), base); 893 struct xe_pt *xe_child; 894 pgoff_t end_offset; 895 896 XE_WARN_ON(!level); 897 898 /* 899 * Below would be unexpected behavior that needs to be root caused 900 * but better warn and bail than crash the driver. 901 */ 902 if (XE_WARN_ON(!*child)) 903 return 0; 904 905 xe_child = container_of(*child, typeof(*xe_child), base); 906 907 /* 908 * Note that we're called from an entry callback, and we're dealing 909 * with the child of that entry rather than the parent, so need to 910 * adjust level down. 911 */ 912 if (xe_pt_nonshared_offsets(addr, next, --level, walk, action, &offset, 913 &end_offset)) { 914 xe_map_memset(tile_to_xe(xe_walk->tile), &xe_child->bo->vmap, 915 offset * sizeof(u64), 0, 916 (end_offset - offset) * sizeof(u64)); 917 xe_walk->needs_invalidate = true; 918 } 919 920 return 0; 921 } 922 923 static const struct xe_pt_walk_ops xe_pt_zap_ptes_ops = { 924 .pt_entry = xe_pt_zap_ptes_entry, 925 }; 926 927 /** 928 * xe_pt_zap_ptes() - Zap (zero) gpu ptes of an address range 929 * @tile: The tile we're zapping for. 930 * @vma: GPU VMA detailing address range. 931 * 932 * Eviction and Userptr invalidation needs to be able to zap the 933 * gpu ptes of a given address range in pagefaulting mode. 934 * In order to be able to do that, that function needs access to the shared 935 * page-table entrieaso it can either clear the leaf PTEs or 936 * clear the pointers to lower-level page-tables. The caller is required 937 * to hold the necessary locks to ensure neither the page-table connectivity 938 * nor the page-table entries of the range is updated from under us. 939 * 940 * Return: Whether ptes were actually updated and a TLB invalidation is 941 * required. 942 */ 943 bool xe_pt_zap_ptes(struct xe_tile *tile, struct xe_vma *vma) 944 { 945 struct xe_pt_zap_ptes_walk xe_walk = { 946 .base = { 947 .ops = &xe_pt_zap_ptes_ops, 948 .shifts = xe_normal_pt_shifts, 949 .max_level = XE_PT_HIGHEST_LEVEL, 950 }, 951 .tile = tile, 952 }; 953 struct xe_pt *pt = xe_vma_vm(vma)->pt_root[tile->id]; 954 u8 pt_mask = (vma->tile_present & ~vma->tile_invalidated); 955 956 if (xe_vma_bo(vma)) 957 xe_bo_assert_held(xe_vma_bo(vma)); 958 else if (xe_vma_is_userptr(vma)) 959 lockdep_assert_held(&xe_vma_vm(vma)->svm.gpusvm.notifier_lock); 960 961 if (!(pt_mask & BIT(tile->id))) 962 return false; 963 964 (void)xe_pt_walk_shared(&pt->base, pt->level, xe_vma_start(vma), 965 xe_vma_end(vma), &xe_walk.base); 966 967 return xe_walk.needs_invalidate; 968 } 969 970 /** 971 * xe_pt_zap_ptes_range() - Zap (zero) gpu ptes of a SVM range 972 * @tile: The tile we're zapping for. 973 * @vm: The VM we're zapping for. 974 * @range: The SVM range we're zapping for. 975 * 976 * SVM invalidation needs to be able to zap the gpu ptes of a given address 977 * range. In order to be able to do that, that function needs access to the 978 * shared page-table entries so it can either clear the leaf PTEs or 979 * clear the pointers to lower-level page-tables. The caller is required 980 * to hold the SVM notifier lock. 981 * 982 * Return: Whether ptes were actually updated and a TLB invalidation is 983 * required. 984 */ 985 bool xe_pt_zap_ptes_range(struct xe_tile *tile, struct xe_vm *vm, 986 struct xe_svm_range *range) 987 { 988 struct xe_pt_zap_ptes_walk xe_walk = { 989 .base = { 990 .ops = &xe_pt_zap_ptes_ops, 991 .shifts = xe_normal_pt_shifts, 992 .max_level = XE_PT_HIGHEST_LEVEL, 993 }, 994 .tile = tile, 995 }; 996 struct xe_pt *pt = vm->pt_root[tile->id]; 997 u8 pt_mask = (range->tile_present & ~range->tile_invalidated); 998 999 /* 1000 * Locking rules: 1001 * 1002 * - notifier_lock (write): full protection against page table changes 1003 * and MMU notifier invalidations. 1004 * 1005 * - notifier_lock (read) + vm_lock (write): combined protection against 1006 * invalidations and concurrent page table modifications. (e.g., madvise) 1007 * 1008 */ 1009 lockdep_assert(lockdep_is_held_type(&vm->svm.gpusvm.notifier_lock, 0) || 1010 (lockdep_is_held_type(&vm->svm.gpusvm.notifier_lock, 1) && 1011 lockdep_is_held_type(&vm->lock, 0))); 1012 1013 if (!(pt_mask & BIT(tile->id))) 1014 return false; 1015 1016 (void)xe_pt_walk_shared(&pt->base, pt->level, xe_svm_range_start(range), 1017 xe_svm_range_end(range), &xe_walk.base); 1018 1019 return xe_walk.needs_invalidate; 1020 } 1021 1022 static void 1023 xe_vm_populate_pgtable(struct xe_migrate_pt_update *pt_update, struct xe_tile *tile, 1024 struct iosys_map *map, void *data, 1025 u32 qword_ofs, u32 num_qwords, 1026 const struct xe_vm_pgtable_update *update) 1027 { 1028 struct xe_pt_entry *ptes = update->pt_entries; 1029 u64 *ptr = data; 1030 u32 i; 1031 1032 /* 1033 * @qword_ofs is the absolute entry offset within the page table, while 1034 * @ptes is indexed relative to @update->ofs (its first entry). The GPU 1035 * path (write_pgtable) splits a single update into MAX_PTE_PER_SDI-sized 1036 * chunks, calling this with an advancing @qword_ofs but a fresh @data 1037 * pointer per chunk, so translate back into a @ptes index rather than 1038 * assuming the chunk starts at ptes[0]. 1039 */ 1040 for (i = 0; i < num_qwords; i++) { 1041 u32 idx = qword_ofs - update->ofs + i; 1042 1043 if (map) 1044 xe_map_wr(tile_to_xe(tile), map, (qword_ofs + i) * 1045 sizeof(u64), u64, ptes[idx].pte); 1046 else 1047 ptr[i] = ptes[idx].pte; 1048 } 1049 } 1050 1051 static void xe_pt_cancel_bind(struct xe_vma *vma, 1052 struct xe_vm_pgtable_update *entries, 1053 u32 num_entries) 1054 { 1055 u32 i, j; 1056 1057 for (i = 0; i < num_entries; i++) { 1058 struct xe_pt *pt = entries[i].pt; 1059 1060 if (!pt) 1061 continue; 1062 1063 if (pt->level) { 1064 for (j = 0; j < entries[i].qwords; j++) 1065 xe_pt_destroy(entries[i].pt_entries[j].pt, 1066 xe_vma_vm(vma)->flags, NULL); 1067 } 1068 1069 kfree(entries[i].pt_entries); 1070 entries[i].pt_entries = NULL; 1071 entries[i].qwords = 0; 1072 } 1073 } 1074 1075 #define XE_INVALID_VMA ((struct xe_vma *)(0xdeaddeadull)) 1076 1077 static void xe_pt_commit_prepare_locks_assert(struct xe_vma *vma) 1078 { 1079 struct xe_vm *vm; 1080 1081 if (vma == XE_INVALID_VMA) 1082 return; 1083 1084 vm = xe_vma_vm(vma); 1085 lockdep_assert_held(&vm->lock); 1086 1087 if (!xe_vma_has_no_bo(vma)) 1088 dma_resv_assert_held(xe_vma_bo(vma)->ttm.base.resv); 1089 1090 xe_vm_assert_held(vm); 1091 } 1092 1093 static void xe_pt_commit_locks_assert(struct xe_vma *vma) 1094 { 1095 struct xe_vm *vm; 1096 1097 if (vma == XE_INVALID_VMA) 1098 return; 1099 1100 vm = xe_vma_vm(vma); 1101 xe_pt_commit_prepare_locks_assert(vma); 1102 1103 if (xe_vma_is_userptr(vma)) 1104 xe_svm_assert_held_read_or_inject_write(vm); 1105 } 1106 1107 static void xe_pt_commit(struct xe_vma *vma, 1108 struct xe_vm_pgtable_update *entries, 1109 u32 num_entries, struct llist_head *deferred) 1110 { 1111 u32 i, j; 1112 1113 xe_pt_commit_locks_assert(vma); 1114 1115 for (i = 0; i < num_entries; i++) { 1116 struct xe_pt *pt = entries[i].pt; 1117 struct xe_pt_dir *pt_dir; 1118 1119 if (!pt->level) 1120 continue; 1121 1122 pt_dir = as_xe_pt_dir(pt); 1123 for (j = 0; j < entries[i].qwords; j++) { 1124 struct xe_pt *oldpte = entries[i].pt_entries[j].pt; 1125 int j_ = j + entries[i].ofs; 1126 1127 pt_dir->children[j_] = pt_dir->staging[j_]; 1128 xe_pt_destroy(oldpte, (vma == XE_INVALID_VMA) ? 0 : 1129 xe_vma_vm(vma)->flags, deferred); 1130 } 1131 } 1132 } 1133 1134 static void xe_pt_abort_bind(struct xe_vma *vma, 1135 struct xe_vm_pgtable_update *entries, 1136 u32 num_entries, bool rebind) 1137 { 1138 int i, j; 1139 1140 xe_pt_commit_prepare_locks_assert(vma); 1141 1142 for (i = num_entries - 1; i >= 0; --i) { 1143 struct xe_pt *pt = entries[i].pt; 1144 struct xe_pt_dir *pt_dir; 1145 1146 if (!rebind) 1147 pt->num_live -= entries[i].qwords; 1148 1149 if (!pt->level) 1150 continue; 1151 1152 pt_dir = as_xe_pt_dir(pt); 1153 for (j = 0; j < entries[i].qwords; j++) { 1154 u32 j_ = j + entries[i].ofs; 1155 struct xe_pt *newpte = xe_pt_entry_staging(pt_dir, j_); 1156 struct xe_pt *oldpte = entries[i].pt_entries[j].pt; 1157 1158 pt_dir->staging[j_] = oldpte ? &oldpte->base : 0; 1159 xe_pt_destroy(newpte, xe_vma_vm(vma)->flags, NULL); 1160 } 1161 } 1162 } 1163 1164 static void xe_pt_commit_prepare_bind(struct xe_vma *vma, 1165 struct xe_vm_pgtable_update *entries, 1166 u32 num_entries, bool rebind) 1167 { 1168 u32 i, j; 1169 1170 xe_pt_commit_prepare_locks_assert(vma); 1171 1172 for (i = 0; i < num_entries; i++) { 1173 struct xe_pt *pt = entries[i].pt; 1174 struct xe_pt_dir *pt_dir; 1175 1176 if (!rebind) 1177 pt->num_live += entries[i].qwords; 1178 1179 if (!pt->level) 1180 continue; 1181 1182 pt_dir = as_xe_pt_dir(pt); 1183 for (j = 0; j < entries[i].qwords; j++) { 1184 u32 j_ = j + entries[i].ofs; 1185 struct xe_pt *newpte = entries[i].pt_entries[j].pt; 1186 struct xe_pt *oldpte = NULL; 1187 1188 if (xe_pt_entry_staging(pt_dir, j_)) 1189 oldpte = xe_pt_entry_staging(pt_dir, j_); 1190 1191 pt_dir->staging[j_] = &newpte->base; 1192 entries[i].pt_entries[j].pt = oldpte; 1193 } 1194 } 1195 } 1196 1197 static void xe_pt_free_bind(struct xe_vm_pgtable_update *entries, 1198 u32 num_entries) 1199 { 1200 u32 i; 1201 1202 for (i = 0; i < num_entries; i++) 1203 kfree(entries[i].pt_entries); 1204 } 1205 1206 static int 1207 xe_pt_prepare_bind(struct xe_tile *tile, struct xe_vma *vma, 1208 struct xe_svm_range *range, 1209 struct xe_vm_pgtable_update *entries, 1210 u32 *num_entries, bool invalidate_on_bind) 1211 { 1212 int err; 1213 1214 *num_entries = 0; 1215 err = xe_pt_stage_bind(tile, vma, range, entries, num_entries, 1216 invalidate_on_bind); 1217 if (!err) 1218 xe_tile_assert(tile, *num_entries); 1219 1220 return err; 1221 } 1222 1223 static void xe_vm_dbg_print_entries(struct xe_device *xe, 1224 const struct xe_vm_pgtable_update *entries, 1225 unsigned int num_entries, bool bind) 1226 #if (IS_ENABLED(CONFIG_DRM_XE_DEBUG_VM)) 1227 { 1228 unsigned int i; 1229 1230 vm_dbg(&xe->drm, "%s: %u entries to update\n", bind ? "bind" : "unbind", 1231 num_entries); 1232 for (i = 0; i < num_entries; i++) { 1233 const struct xe_vm_pgtable_update *entry = &entries[i]; 1234 struct xe_pt *xe_pt = entry->pt; 1235 u64 page_size = 1ull << xe_pt_shift(xe_pt->level); 1236 u64 end; 1237 u64 start; 1238 1239 xe_assert(xe, !entry->pt->is_compact); 1240 start = entry->ofs * page_size; 1241 end = start + page_size * entry->qwords; 1242 vm_dbg(&xe->drm, 1243 "\t%u: Update level %u at (%u + %u) [%llx...%llx) f:%x\n", 1244 i, xe_pt->level, entry->ofs, entry->qwords, 1245 xe_pt_addr(xe_pt) + start, xe_pt_addr(xe_pt) + end, 0); 1246 } 1247 } 1248 #else 1249 {} 1250 #endif 1251 1252 static bool no_in_syncs(struct xe_sync_entry *syncs, u32 num_syncs) 1253 { 1254 int i; 1255 1256 for (i = 0; i < num_syncs; i++) { 1257 struct dma_fence *fence = syncs[i].fence; 1258 1259 if (fence && !test_bit(DMA_FENCE_FLAG_SIGNALED_BIT, 1260 &fence->flags)) 1261 return false; 1262 } 1263 1264 return true; 1265 } 1266 1267 static int job_test_add_deps(struct xe_sched_job *job, 1268 struct dma_resv *resv, 1269 enum dma_resv_usage usage) 1270 { 1271 if (!job) { 1272 if (!dma_resv_test_signaled(resv, usage)) 1273 return -ETIME; 1274 1275 return 0; 1276 } 1277 1278 return xe_sched_job_add_deps(job, resv, usage); 1279 } 1280 1281 static int vma_add_deps(struct xe_vma *vma, struct xe_sched_job *job) 1282 { 1283 struct xe_bo *bo = xe_vma_bo(vma); 1284 1285 xe_bo_assert_held(bo); 1286 1287 if (bo && !bo->vm) 1288 return job_test_add_deps(job, bo->ttm.base.resv, 1289 DMA_RESV_USAGE_KERNEL); 1290 1291 return 0; 1292 } 1293 1294 static int op_add_deps(struct xe_vm *vm, struct xe_vma_op *op, 1295 struct xe_sched_job *job) 1296 { 1297 int err = 0; 1298 1299 /* 1300 * No need to check for is_cpu_addr_mirror here as vma_add_deps is a 1301 * NOP if VMA is_cpu_addr_mirror 1302 */ 1303 1304 switch (op->base.op) { 1305 case DRM_GPUVA_OP_MAP: 1306 if (!op->map.immediate && xe_vm_in_fault_mode(vm)) 1307 break; 1308 1309 err = vma_add_deps(op->map.vma, job); 1310 break; 1311 case DRM_GPUVA_OP_REMAP: 1312 if (op->remap.prev) 1313 err = vma_add_deps(op->remap.prev, job); 1314 if (!err && op->remap.next) 1315 err = vma_add_deps(op->remap.next, job); 1316 break; 1317 case DRM_GPUVA_OP_UNMAP: 1318 break; 1319 case DRM_GPUVA_OP_PREFETCH: 1320 err = vma_add_deps(gpuva_to_vma(op->base.prefetch.va), job); 1321 break; 1322 case DRM_GPUVA_OP_DRIVER: 1323 break; 1324 default: 1325 drm_warn(&vm->xe->drm, "NOT POSSIBLE"); 1326 } 1327 1328 return err; 1329 } 1330 1331 static int xe_pt_vm_dependencies(struct xe_sched_job *job, 1332 struct xe_tlb_inval_job *ijob, 1333 struct xe_tlb_inval_job *mjob, 1334 struct xe_vm *vm, 1335 struct xe_vma_ops *vops, 1336 struct xe_vm_pgtable_update_ops *pt_update_ops, 1337 struct xe_range_fence_tree *rftree) 1338 { 1339 struct xe_range_fence *rtfence; 1340 struct dma_fence *fence; 1341 struct xe_vma_op *op; 1342 int err = 0, i; 1343 1344 xe_vm_assert_held(vm); 1345 1346 if (!job && !no_in_syncs(vops->syncs, vops->num_syncs)) 1347 return -ETIME; 1348 1349 if (!job && !xe_exec_queue_is_idle(pt_update_ops->q)) 1350 return -ETIME; 1351 1352 if (pt_update_ops->wait_vm_bookkeep || pt_update_ops->wait_vm_kernel) { 1353 err = job_test_add_deps(job, xe_vm_resv(vm), 1354 pt_update_ops->wait_vm_bookkeep ? 1355 DMA_RESV_USAGE_BOOKKEEP : 1356 DMA_RESV_USAGE_KERNEL); 1357 if (err) 1358 return err; 1359 } 1360 1361 rtfence = xe_range_fence_tree_first(rftree, pt_update_ops->start, 1362 pt_update_ops->last); 1363 while (rtfence) { 1364 fence = rtfence->fence; 1365 1366 if (!dma_fence_is_signaled(fence)) { 1367 /* 1368 * Is this a CPU update? GPU is busy updating, so return 1369 * an error 1370 */ 1371 if (!job) 1372 return -ETIME; 1373 1374 dma_fence_get(fence); 1375 err = drm_sched_job_add_dependency(&job->drm, fence); 1376 if (err) 1377 return err; 1378 } 1379 1380 rtfence = xe_range_fence_tree_next(rtfence, 1381 pt_update_ops->start, 1382 pt_update_ops->last); 1383 } 1384 1385 list_for_each_entry(op, &vops->list, link) { 1386 err = op_add_deps(vm, op, job); 1387 if (err) 1388 return err; 1389 } 1390 1391 for (i = 0; job && !err && i < vops->num_syncs; i++) 1392 err = xe_sync_entry_add_deps(&vops->syncs[i], job); 1393 1394 if (job) { 1395 if (ijob) { 1396 err = xe_tlb_inval_job_alloc_dep(ijob); 1397 if (err) 1398 return err; 1399 } 1400 1401 if (mjob) { 1402 err = xe_tlb_inval_job_alloc_dep(mjob); 1403 if (err) 1404 return err; 1405 } 1406 } 1407 1408 return err; 1409 } 1410 1411 static int xe_pt_pre_commit(struct xe_migrate_pt_update *pt_update) 1412 { 1413 struct xe_vma_ops *vops = pt_update->vops; 1414 struct xe_vm *vm = vops->vm; 1415 struct xe_range_fence_tree *rftree = &vm->rftree[pt_update->tile_id]; 1416 struct xe_vm_pgtable_update_ops *pt_update_ops = 1417 &vops->pt_update_ops[pt_update->tile_id]; 1418 1419 return xe_pt_vm_dependencies(pt_update->job, pt_update->ijob, 1420 pt_update->mjob, vm, pt_update->vops, 1421 pt_update_ops, rftree); 1422 } 1423 1424 #if IS_ENABLED(CONFIG_DRM_GPUSVM) 1425 /* 1426 * Acquire/release the svm notifier_lock around xe_pt_svm_userptr_pre_commit() 1427 * and the matching late release in xe_pt_update_ops_run(). Read mode by 1428 * default; write mode when CONFIG_DRM_XE_USERPTR_INVAL_INJECT is on, 1429 * because a userptr op in this critical section may invoke the injected 1430 * xe_vma_userptr_force_invalidate() path that calls 1431 * drm_gpusvm_unmap_pages() with ctx->in_notifier=true, which requires the 1432 * lock held for write. 1433 */ 1434 static void xe_pt_svm_userptr_notifier_lock(struct xe_vm *vm) 1435 { 1436 #if IS_ENABLED(CONFIG_DRM_XE_USERPTR_INVAL_INJECT) 1437 down_write(&vm->svm.gpusvm.notifier_lock); 1438 #else 1439 xe_svm_notifier_lock(vm); 1440 #endif 1441 } 1442 1443 static void xe_pt_svm_userptr_notifier_unlock(struct xe_vm *vm) 1444 { 1445 #if IS_ENABLED(CONFIG_DRM_XE_USERPTR_INVAL_INJECT) 1446 up_write(&vm->svm.gpusvm.notifier_lock); 1447 #else 1448 xe_svm_notifier_unlock(vm); 1449 #endif 1450 } 1451 #else 1452 static inline void xe_pt_svm_userptr_notifier_lock(struct xe_vm *vm) { } 1453 static inline void xe_pt_svm_userptr_notifier_unlock(struct xe_vm *vm) { } 1454 #endif 1455 1456 #if IS_ENABLED(CONFIG_DRM_GPUSVM) 1457 #ifdef CONFIG_DRM_XE_USERPTR_INVAL_INJECT 1458 1459 static bool xe_pt_userptr_inject_eagain(struct xe_userptr_vma *uvma) 1460 { 1461 u32 divisor = uvma->userptr.divisor ? uvma->userptr.divisor : 2; 1462 static u32 count; 1463 1464 if (count++ % divisor == divisor - 1) { 1465 uvma->userptr.divisor = divisor << 1; 1466 return true; 1467 } 1468 1469 return false; 1470 } 1471 1472 #else 1473 1474 static bool xe_pt_userptr_inject_eagain(struct xe_userptr_vma *uvma) 1475 { 1476 return false; 1477 } 1478 1479 #endif 1480 1481 static int vma_check_userptr(struct xe_vm *vm, struct xe_vma *vma, 1482 struct xe_vm_pgtable_update_ops *pt_update) 1483 { 1484 struct xe_userptr_vma *uvma; 1485 unsigned long notifier_seq; 1486 1487 xe_svm_assert_held_read_or_inject_write(vm); 1488 1489 if (!xe_vma_is_userptr(vma)) 1490 return 0; 1491 1492 uvma = to_userptr_vma(vma); 1493 if (xe_pt_userptr_inject_eagain(uvma)) 1494 xe_vma_userptr_force_invalidate(uvma); 1495 1496 notifier_seq = uvma->userptr.pages.notifier_seq; 1497 1498 if (!mmu_interval_read_retry(&uvma->userptr.notifier, 1499 notifier_seq)) 1500 return 0; 1501 1502 if (xe_vm_in_fault_mode(vm)) 1503 return -EAGAIN; 1504 1505 /* 1506 * Just continue the operation since exec or rebind worker 1507 * will take care of rebinding. 1508 */ 1509 return 0; 1510 } 1511 1512 static int op_check_svm_userptr(struct xe_vm *vm, struct xe_vma_op *op, 1513 struct xe_vm_pgtable_update_ops *pt_update) 1514 { 1515 int err = 0; 1516 1517 xe_svm_assert_held_read_or_inject_write(vm); 1518 1519 switch (op->base.op) { 1520 case DRM_GPUVA_OP_MAP: 1521 if (!op->map.immediate && xe_vm_in_fault_mode(vm)) 1522 break; 1523 1524 err = vma_check_userptr(vm, op->map.vma, pt_update); 1525 break; 1526 case DRM_GPUVA_OP_REMAP: 1527 if (op->remap.prev && !op->remap.skip_prev) 1528 err = vma_check_userptr(vm, op->remap.prev, pt_update); 1529 if (!err && op->remap.next && !op->remap.skip_next) 1530 err = vma_check_userptr(vm, op->remap.next, pt_update); 1531 break; 1532 case DRM_GPUVA_OP_UNMAP: 1533 break; 1534 case DRM_GPUVA_OP_PREFETCH: 1535 if (xe_vma_is_cpu_addr_mirror(gpuva_to_vma(op->base.prefetch.va))) { 1536 struct xe_svm_range *range = op->map_range.range; 1537 unsigned long i; 1538 1539 xe_assert(vm->xe, 1540 xe_vma_is_cpu_addr_mirror(gpuva_to_vma(op->base.prefetch.va))); 1541 xa_for_each(&op->prefetch_range.range, i, range) { 1542 xe_svm_range_debug(range, "PRE-COMMIT"); 1543 1544 if (!xe_svm_range_pages_valid(range)) { 1545 xe_svm_range_debug(range, "PRE-COMMIT - RETRY"); 1546 return -ENODATA; 1547 } 1548 } 1549 } else { 1550 err = vma_check_userptr(vm, gpuva_to_vma(op->base.prefetch.va), pt_update); 1551 } 1552 break; 1553 #if IS_ENABLED(CONFIG_DRM_XE_GPUSVM) 1554 case DRM_GPUVA_OP_DRIVER: 1555 if (op->subop == XE_VMA_SUBOP_MAP_RANGE) { 1556 struct xe_svm_range *range = op->map_range.range; 1557 1558 xe_assert(vm->xe, xe_vma_is_cpu_addr_mirror(op->map_range.vma)); 1559 1560 xe_svm_range_debug(range, "PRE-COMMIT"); 1561 1562 if (!xe_svm_range_pages_valid(range)) { 1563 xe_svm_range_debug(range, "PRE-COMMIT - RETRY"); 1564 return -EAGAIN; 1565 } 1566 } 1567 break; 1568 #endif 1569 default: 1570 drm_warn(&vm->xe->drm, "NOT POSSIBLE"); 1571 } 1572 1573 return err; 1574 } 1575 1576 static int xe_pt_svm_userptr_pre_commit(struct xe_migrate_pt_update *pt_update) 1577 { 1578 struct xe_vm *vm = pt_update->vops->vm; 1579 struct xe_vma_ops *vops = pt_update->vops; 1580 struct xe_vm_pgtable_update_ops *pt_update_ops = 1581 &vops->pt_update_ops[pt_update->tile_id]; 1582 struct xe_vma_op *op; 1583 int err; 1584 1585 err = xe_pt_pre_commit(pt_update); 1586 if (err) 1587 return err; 1588 1589 xe_pt_svm_userptr_notifier_lock(vm); 1590 1591 list_for_each_entry(op, &vops->list, link) { 1592 err = op_check_svm_userptr(vm, op, pt_update_ops); 1593 if (err) { 1594 xe_pt_svm_userptr_notifier_unlock(vm); 1595 break; 1596 } 1597 } 1598 1599 return err; 1600 } 1601 #endif 1602 1603 struct xe_pt_stage_unbind_walk { 1604 /** @base: The pagewalk base-class. */ 1605 struct xe_pt_walk base; 1606 1607 /* Input parameters for the walk */ 1608 /** @tile: The tile we're unbinding from. */ 1609 struct xe_tile *tile; 1610 1611 /** 1612 * @modified_start: Walk range start, modified to include any 1613 * shared pagetables that we're the only user of and can thus 1614 * treat as private. 1615 */ 1616 u64 modified_start; 1617 /** @modified_end: Walk range start, modified like @modified_start. */ 1618 u64 modified_end; 1619 1620 /** @prl: Backing pointer to page reclaim list in pt_update_ops */ 1621 struct xe_page_reclaim_list *prl; 1622 1623 /* Output */ 1624 /* @wupd: Structure to track the page-table updates we're building */ 1625 struct xe_walk_update wupd; 1626 }; 1627 1628 /* 1629 * Check whether this range is the only one populating this pagetable, 1630 * and in that case, update the walk range checks so that higher levels don't 1631 * view us as a shared pagetable. 1632 */ 1633 static bool xe_pt_check_kill(u64 addr, u64 next, unsigned int level, 1634 const struct xe_pt *child, 1635 enum page_walk_action *action, 1636 struct xe_pt_walk *walk) 1637 { 1638 struct xe_pt_stage_unbind_walk *xe_walk = 1639 container_of(walk, typeof(*xe_walk), base); 1640 unsigned int shift = walk->shifts[level]; 1641 u64 size = 1ull << shift; 1642 1643 if (IS_ALIGNED(addr, size) && IS_ALIGNED(next, size) && 1644 ((next - addr) >> shift) == child->num_live) { 1645 u64 size = 1ull << walk->shifts[level + 1]; 1646 1647 *action = ACTION_CONTINUE; 1648 1649 if (xe_walk->modified_start >= addr) 1650 xe_walk->modified_start = round_down(addr, size); 1651 if (xe_walk->modified_end <= next) 1652 xe_walk->modified_end = round_up(next, size); 1653 1654 return true; 1655 } 1656 1657 return false; 1658 } 1659 1660 static int generate_reclaim_entry(struct xe_tile *tile, 1661 struct xe_page_reclaim_list *prl, 1662 u64 pte, struct xe_pt *xe_child) 1663 { 1664 struct xe_gt *gt = tile->primary_gt; 1665 struct xe_guc_page_reclaim_entry *reclaim_entries = prl->entries; 1666 bool is_2m = xe_child->level == 1 && (pte & XE_PDE_PS_2M); 1667 bool is_64k = xe_child->level == 0 && ((pte & XE_PTE_PS64) || xe_child->is_compact); 1668 u32 page_shift = is_2m ? ilog2(SZ_2M) : is_64k ? ilog2(SZ_64K) : ilog2(SZ_4K); 1669 /* Physical address bits start at page shift: 2M->[51:21], 64K->[51:16], 4K->[51:12] */ 1670 u64 phys_addr = pte & XE_PAGE_ADDR_MASK(page_shift); 1671 /* Page address is relative to 4K page regardless of entry level */ 1672 u64 phys_page = phys_addr >> XE_PTE_SHIFT; 1673 int num_entries = prl->num_entries; 1674 u32 reclamation_size = page_shift - XE_PTE_SHIFT; 1675 1676 xe_tile_assert(tile, xe_child->level <= MAX_HUGEPTE_LEVEL); 1677 xe_tile_assert(tile, reclaim_entries); 1678 xe_tile_assert(tile, num_entries < XE_PAGE_RECLAIM_MAX_ENTRIES - 1); 1679 1680 if (!xe_page_reclaim_list_valid(prl)) 1681 return -EINVAL; 1682 1683 /** 1684 * reclamation_size indicates the size of the page to be 1685 * invalidated and flushed from non-coherent cache. 1686 * Page size is computed as 2^(reclamation_size + XE_PTE_SHIFT) bytes. 1687 * Only 4K, 64K (level 0), and 2M pages are supported by hardware for page reclaim 1688 */ 1689 if (is_2m) { 1690 xe_gt_stats_incr(gt, XE_GT_STATS_ID_PRL_2M_ENTRY_COUNT, 1); 1691 } else if (is_64k) { 1692 xe_gt_stats_incr(gt, XE_GT_STATS_ID_PRL_64K_ENTRY_COUNT, 1); 1693 } else if (xe_child->level == 0) { 1694 xe_gt_stats_incr(gt, XE_GT_STATS_ID_PRL_4K_ENTRY_COUNT, 1); 1695 } else { 1696 xe_page_reclaim_list_abort(tile->primary_gt, prl, 1697 "unsupported PTE level=%u pte=%#llx", 1698 xe_child->level, pte); 1699 return -EINVAL; 1700 } 1701 1702 reclaim_entries[num_entries].qw = 1703 FIELD_PREP(XE_PAGE_RECLAIM_VALID, 1) | 1704 FIELD_PREP(XE_PAGE_RECLAIM_SIZE, reclamation_size) | 1705 FIELD_PREP(XE_PAGE_RECLAIM_ADDR_LO, phys_page) | 1706 FIELD_PREP(XE_PAGE_RECLAIM_ADDR_HI, phys_page >> 20); 1707 prl->num_entries++; 1708 vm_dbg(&tile_to_xe(tile)->drm, 1709 "PRL add entry: level=%u pte=%#llx reclamation_size=%u prl_idx=%d\n", 1710 xe_child->level, pte, reclamation_size, num_entries); 1711 1712 return 0; 1713 } 1714 1715 static int add_pte_to_prl(struct xe_tile *tile, struct xe_page_reclaim_list *prl, 1716 struct xe_pt *xe_child, u64 pte, u64 addr) 1717 { 1718 /* 1719 * In rare scenarios, pte may not be written yet due to racy conditions. 1720 * In such cases, invalidate the PRL and fallback to full PPC invalidation. 1721 */ 1722 if (!pte) { 1723 xe_page_reclaim_list_abort(tile->primary_gt, prl, 1724 "found zero pte at addr=%#llx", addr); 1725 return -EINVAL; 1726 } 1727 1728 /* Ensure it is a defined page */ 1729 xe_tile_assert(tile, xe_child->level == 0 || 1730 (pte & (XE_PDE_PS_2M | XE_PDPE_PS_1G))); 1731 1732 /* Account for NULL terminated entry on end (-1) */ 1733 if (prl->num_entries >= XE_PAGE_RECLAIM_MAX_ENTRIES - 1) { 1734 xe_page_reclaim_list_abort(tile->primary_gt, prl, 1735 "overflow while adding pte=%#llx", pte); 1736 return -ENOSPC; 1737 } 1738 1739 return generate_reclaim_entry(tile, prl, pte, xe_child); 1740 } 1741 1742 static bool add_compact_pt_prl(struct xe_tile *tile, struct xe_page_reclaim_list *prl, 1743 struct xe_device *xe, struct xe_pt *compact_pt, u64 addr) 1744 { 1745 struct iosys_map *map = &compact_pt->bo->vmap; 1746 1747 for (pgoff_t i = 0; i < SZ_2M / SZ_64K && xe_page_reclaim_list_valid(prl); i++) { 1748 u64 pte = xe_map_rd(xe, map, i * sizeof(u64), u64); 1749 1750 if (add_pte_to_prl(tile, prl, compact_pt, pte, addr + i * SZ_64K)) 1751 break; 1752 } 1753 1754 return xe_page_reclaim_list_valid(prl); 1755 } 1756 1757 static int xe_pt_stage_unbind_entry(struct xe_ptw *parent, pgoff_t offset, 1758 unsigned int level, u64 addr, u64 next, 1759 struct xe_ptw **child, 1760 enum page_walk_action *action, 1761 struct xe_pt_walk *walk) 1762 { 1763 struct xe_pt *xe_child = container_of(*child, typeof(*xe_child), base); 1764 struct xe_pt_stage_unbind_walk *xe_walk = 1765 container_of(walk, typeof(*xe_walk), base); 1766 struct xe_page_reclaim_list *prl = xe_walk->prl; 1767 struct xe_tile *tile = xe_walk->tile; 1768 struct xe_device *xe = tile_to_xe(tile); 1769 pgoff_t first = xe_pt_offset(addr, xe_child->level, walk); 1770 bool killed; 1771 1772 XE_WARN_ON(!*child); 1773 XE_WARN_ON(!level); 1774 /* Check for leaf node */ 1775 if (prl && xe_page_reclaim_list_valid(prl) && 1776 xe_child->level <= MAX_HUGEPTE_LEVEL) { 1777 struct iosys_map *leaf_map = &xe_child->bo->vmap; 1778 pgoff_t count = xe_pt_num_entries(addr, next, xe_child->level, walk); 1779 1780 for (pgoff_t i = 0; i < count; i++) { 1781 u64 pte; 1782 1783 /* 1784 * If not a leaf pt, skip unless non-leaf pt is interleaved between 1785 * leaf ptes which causes the page walk to skip over the child leaves 1786 */ 1787 if (xe_child->base.children && xe_child->base.children[first + i]) { 1788 u64 pt_size = 1ULL << walk->shifts[xe_child->level]; 1789 bool edge_pt = (i == 0 && !IS_ALIGNED(addr, pt_size)) || 1790 (i == count - 1 && !IS_ALIGNED(next, pt_size)); 1791 struct xe_pt *child_pt = 1792 container_of(xe_child->base.children[first + i], 1793 struct xe_pt, base); 1794 1795 /* Compact PTs always fill a full 2M-aligned slot, never an edge. */ 1796 XE_WARN_ON(child_pt->is_compact && edge_pt); 1797 if (edge_pt) 1798 continue; 1799 1800 /* Walker never descends into compact PTs, descend now */ 1801 if (child_pt->is_compact) { 1802 if (!add_compact_pt_prl(tile, prl, xe, child_pt, 1803 addr + (u64)i * pt_size)) 1804 break; 1805 } else { 1806 xe_page_reclaim_list_abort(tile->primary_gt, 1807 prl, 1808 "PT is skipped by walk at level=%u offset=%lu", 1809 xe_child->level, first + i); 1810 break; 1811 } 1812 continue; 1813 } 1814 1815 pte = xe_map_rd(xe, leaf_map, (first + i) * sizeof(u64), u64); 1816 1817 if (add_pte_to_prl(tile, prl, xe_child, pte, addr)) 1818 break; 1819 1820 /* An entry should be added for 64KB but contigious 4K have XE_PTE_PS64 */ 1821 if (pte & XE_PTE_PS64) 1822 i += 15; /* Skip other 15 consecutive 4K pages in the 64K page */ 1823 } 1824 } 1825 1826 killed = xe_pt_check_kill(addr, next, level - 1, xe_child, action, walk); 1827 1828 /* 1829 * Verify if any PTE are potentially dropped at non-leaf levels, either from being 1830 * killed or the page walk covers the region. 1831 */ 1832 if (prl && xe_page_reclaim_list_valid(prl) && 1833 xe_child->level > MAX_HUGEPTE_LEVEL && xe_child->num_live) { 1834 bool covered = xe_pt_covers(addr, next, xe_child->level, &xe_walk->base); 1835 1836 /* 1837 * If aborting page walk early (kill) or page walk completes the full range 1838 * we need to invalidate the PRL. 1839 */ 1840 if (killed || covered) 1841 xe_page_reclaim_list_abort(tile->primary_gt, prl, 1842 "kill at level=%u addr=%#llx next=%#llx num_live=%u", 1843 level, addr, next, xe_child->num_live); 1844 } 1845 1846 return 0; 1847 } 1848 1849 static int 1850 xe_pt_stage_unbind_post_descend(struct xe_ptw *parent, pgoff_t offset, 1851 unsigned int level, u64 addr, u64 next, 1852 struct xe_ptw **child, 1853 enum page_walk_action *action, 1854 struct xe_pt_walk *walk) 1855 { 1856 struct xe_pt_stage_unbind_walk *xe_walk = 1857 container_of(walk, typeof(*xe_walk), base); 1858 struct xe_pt *xe_child = container_of(*child, typeof(*xe_child), base); 1859 pgoff_t end_offset; 1860 u64 size = 1ull << walk->shifts[--level]; 1861 int err; 1862 1863 if (!IS_ALIGNED(addr, size)) 1864 addr = xe_walk->modified_start; 1865 if (!IS_ALIGNED(next, size)) 1866 next = xe_walk->modified_end; 1867 1868 /* Parent == *child is the root pt. Don't kill it. */ 1869 if (parent != *child && 1870 xe_pt_check_kill(addr, next, level, xe_child, action, walk)) 1871 return 0; 1872 1873 if (!xe_pt_nonshared_offsets(addr, next, level, walk, action, &offset, 1874 &end_offset)) 1875 return 0; 1876 1877 err = xe_pt_new_shared(&xe_walk->wupd, xe_child, offset, true); 1878 if (err) 1879 return err; 1880 1881 xe_walk->wupd.updates[level].update->qwords = end_offset - offset; 1882 1883 return 0; 1884 } 1885 1886 static const struct xe_pt_walk_ops xe_pt_stage_unbind_ops = { 1887 .pt_entry = xe_pt_stage_unbind_entry, 1888 .pt_post_descend = xe_pt_stage_unbind_post_descend, 1889 }; 1890 1891 /** 1892 * xe_pt_stage_unbind() - Build page-table update structures for an unbind 1893 * operation 1894 * @tile: The tile we're unbinding for. 1895 * @vm: The vm 1896 * @vma: The vma we're unbinding. 1897 * @range: The range we're unbinding. 1898 * @entries: Caller-provided storage for the update structures. 1899 * 1900 * Builds page-table update structures for an unbind operation. The function 1901 * will attempt to remove all page-tables that we're the only user 1902 * of, and for that to work, the unbind operation must be committed in the 1903 * same critical section that blocks racing binds to the same page-table tree. 1904 * 1905 * Return: The number of entries used. 1906 */ 1907 static unsigned int xe_pt_stage_unbind(struct xe_tile *tile, 1908 struct xe_vm *vm, 1909 struct xe_vma *vma, 1910 struct xe_svm_range *range, 1911 struct xe_vm_pgtable_update *entries) 1912 { 1913 u64 start = range ? xe_svm_range_start(range) : xe_vma_start(vma); 1914 u64 end = range ? xe_svm_range_end(range) : xe_vma_end(vma); 1915 struct xe_vm_pgtable_update_op *pt_update_op = 1916 container_of(entries, struct xe_vm_pgtable_update_op, entries[0]); 1917 struct xe_pt_stage_unbind_walk xe_walk = { 1918 .base = { 1919 .ops = &xe_pt_stage_unbind_ops, 1920 .shifts = xe_normal_pt_shifts, 1921 .max_level = XE_PT_HIGHEST_LEVEL, 1922 .staging = true, 1923 }, 1924 .tile = tile, 1925 .modified_start = start, 1926 .modified_end = end, 1927 .wupd.entries = entries, 1928 .prl = pt_update_op->prl, 1929 }; 1930 struct xe_pt *pt = vm->pt_root[tile->id]; 1931 1932 (void)xe_pt_walk_shared(&pt->base, pt->level, start, end, 1933 &xe_walk.base); 1934 1935 return xe_walk.wupd.num_used_entries; 1936 } 1937 1938 static void 1939 xe_migrate_clear_pgtable_callback(struct xe_migrate_pt_update *pt_update, 1940 struct xe_tile *tile, struct iosys_map *map, 1941 void *ptr, u32 qword_ofs, u32 num_qwords, 1942 const struct xe_vm_pgtable_update *update) 1943 { 1944 struct xe_vm *vm = pt_update->vops->vm; 1945 u64 empty = __xe_pt_empty_pte(tile, vm, update->pt->level); 1946 int i; 1947 1948 if (map && map->is_iomem) 1949 for (i = 0; i < num_qwords; ++i) 1950 xe_map_wr(tile_to_xe(tile), map, (qword_ofs + i) * 1951 sizeof(u64), u64, empty); 1952 else if (map) 1953 memset64(map->vaddr + qword_ofs * sizeof(u64), empty, 1954 num_qwords); 1955 else 1956 memset64(ptr, empty, num_qwords); 1957 } 1958 1959 static void xe_pt_abort_unbind(struct xe_vma *vma, 1960 struct xe_vm_pgtable_update *entries, 1961 u32 num_entries) 1962 { 1963 int i, j; 1964 1965 xe_pt_commit_prepare_locks_assert(vma); 1966 1967 for (i = num_entries - 1; i >= 0; --i) { 1968 struct xe_vm_pgtable_update *entry = &entries[i]; 1969 struct xe_pt *pt = entry->pt; 1970 struct xe_pt_dir *pt_dir = as_xe_pt_dir(pt); 1971 1972 pt->num_live += entry->qwords; 1973 1974 if (!pt->level) 1975 continue; 1976 1977 for (j = entry->ofs; j < entry->ofs + entry->qwords; j++) 1978 pt_dir->staging[j] = 1979 entries[i].pt_entries[j - entry->ofs].pt ? 1980 &entries[i].pt_entries[j - entry->ofs].pt->base : NULL; 1981 } 1982 } 1983 1984 static void 1985 xe_pt_commit_prepare_unbind(struct xe_vma *vma, 1986 struct xe_vm_pgtable_update *entries, 1987 u32 num_entries) 1988 { 1989 int i, j; 1990 1991 xe_pt_commit_prepare_locks_assert(vma); 1992 1993 for (i = 0; i < num_entries; ++i) { 1994 struct xe_vm_pgtable_update *entry = &entries[i]; 1995 struct xe_pt *pt = entry->pt; 1996 struct xe_pt_dir *pt_dir; 1997 1998 pt->num_live -= entry->qwords; 1999 if (!pt->level) 2000 continue; 2001 2002 pt_dir = as_xe_pt_dir(pt); 2003 for (j = entry->ofs; j < entry->ofs + entry->qwords; j++) { 2004 entry->pt_entries[j - entry->ofs].pt = 2005 xe_pt_entry_staging(pt_dir, j); 2006 pt_dir->staging[j] = NULL; 2007 } 2008 } 2009 } 2010 2011 static void 2012 xe_pt_update_ops_rfence_interval(struct xe_vm_pgtable_update_ops *pt_update_ops, 2013 u64 start, u64 end) 2014 { 2015 u64 last; 2016 u32 current_op = pt_update_ops->current_op; 2017 struct xe_vm_pgtable_update_op *pt_op = &pt_update_ops->ops[current_op]; 2018 int i, level = 0; 2019 2020 for (i = 0; i < pt_op->num_entries; i++) { 2021 const struct xe_vm_pgtable_update *entry = &pt_op->entries[i]; 2022 2023 if (entry->pt->level > level) 2024 level = entry->pt->level; 2025 } 2026 2027 /* Greedy (non-optimal) calculation but simple */ 2028 start = ALIGN_DOWN(start, 0x1ull << xe_pt_shift(level)); 2029 last = ALIGN(end, 0x1ull << xe_pt_shift(level)) - 1; 2030 2031 if (start < pt_update_ops->start) 2032 pt_update_ops->start = start; 2033 if (last > pt_update_ops->last) 2034 pt_update_ops->last = last; 2035 } 2036 2037 static int vma_reserve_fences(struct xe_device *xe, struct xe_vma *vma) 2038 { 2039 int shift = xe_device_get_root_tile(xe)->media_gt ? 1 : 0; 2040 2041 if (!xe_vma_has_no_bo(vma) && !xe_vma_bo(vma)->vm) 2042 return dma_resv_reserve_fences(xe_vma_bo(vma)->ttm.base.resv, 2043 xe->info.tile_count << shift); 2044 2045 return 0; 2046 } 2047 2048 static int bind_op_prepare(struct xe_vm *vm, struct xe_tile *tile, 2049 struct xe_vm_pgtable_update_ops *pt_update_ops, 2050 struct xe_vma *vma, bool invalidate_on_bind) 2051 { 2052 u32 current_op = pt_update_ops->current_op; 2053 struct xe_vm_pgtable_update_op *pt_op = &pt_update_ops->ops[current_op]; 2054 int err; 2055 2056 xe_tile_assert(tile, !xe_vma_is_cpu_addr_mirror(vma)); 2057 xe_bo_assert_held(xe_vma_bo(vma)); 2058 2059 vm_dbg(&xe_vma_vm(vma)->xe->drm, 2060 "Preparing bind, with range [%llx...%llx)\n", 2061 xe_vma_start(vma), xe_vma_end(vma) - 1); 2062 2063 pt_op->vma = NULL; 2064 pt_op->bind = true; 2065 pt_op->rebind = BIT(tile->id) & vma->tile_present; 2066 2067 err = vma_reserve_fences(tile_to_xe(tile), vma); 2068 if (err) 2069 return err; 2070 2071 err = xe_pt_prepare_bind(tile, vma, NULL, pt_op->entries, 2072 &pt_op->num_entries, invalidate_on_bind); 2073 if (!err) { 2074 xe_tile_assert(tile, pt_op->num_entries <= 2075 ARRAY_SIZE(pt_op->entries)); 2076 xe_vm_dbg_print_entries(tile_to_xe(tile), pt_op->entries, 2077 pt_op->num_entries, true); 2078 2079 xe_pt_update_ops_rfence_interval(pt_update_ops, 2080 xe_vma_start(vma), 2081 xe_vma_end(vma)); 2082 ++pt_update_ops->current_op; 2083 pt_update_ops->needs_svm_lock |= xe_vma_is_userptr(vma); 2084 2085 /* 2086 * If rebind, we have to invalidate TLB on !LR vms to invalidate 2087 * cached PTEs point to freed memory. On LR vms this is done 2088 * automatically when the context is re-enabled by the rebind worker, 2089 * or in fault mode it was invalidated on PTE zapping. 2090 * 2091 * If !rebind, and scratch enabled VMs, there is a chance the scratch 2092 * PTE is already cached in the TLB so it needs to be invalidated. 2093 * On !LR VMs this is done in the ring ops preceding a batch, but on 2094 * LR, in particular on user-space batch buffer chaining, it needs to 2095 * be done here. 2096 */ 2097 if ((!pt_op->rebind && xe_vm_has_scratch(vm) && 2098 xe_vm_in_lr_mode(vm))) 2099 pt_update_ops->needs_invalidation = true; 2100 else if (pt_op->rebind && !xe_vm_in_lr_mode(vm)) 2101 /* We bump also if batch_invalidate_tlb is true */ 2102 vm->tlb_flush_seqno++; 2103 2104 vma->tile_staged |= BIT(tile->id); 2105 pt_op->vma = vma; 2106 xe_pt_commit_prepare_bind(vma, pt_op->entries, 2107 pt_op->num_entries, pt_op->rebind); 2108 } else { 2109 xe_pt_cancel_bind(vma, pt_op->entries, pt_op->num_entries); 2110 } 2111 2112 return err; 2113 } 2114 2115 static int bind_range_prepare(struct xe_vm *vm, struct xe_tile *tile, 2116 struct xe_vm_pgtable_update_ops *pt_update_ops, 2117 struct xe_vma *vma, struct xe_svm_range *range) 2118 { 2119 u32 current_op = pt_update_ops->current_op; 2120 struct xe_vm_pgtable_update_op *pt_op = &pt_update_ops->ops[current_op]; 2121 int err; 2122 2123 xe_tile_assert(tile, xe_vma_is_cpu_addr_mirror(vma)); 2124 2125 vm_dbg(&xe_vma_vm(vma)->xe->drm, 2126 "Preparing bind, with range [%lx...%lx)\n", 2127 xe_svm_range_start(range), xe_svm_range_end(range) - 1); 2128 2129 pt_op->vma = NULL; 2130 pt_op->bind = true; 2131 pt_op->rebind = BIT(tile->id) & range->tile_present; 2132 2133 err = xe_pt_prepare_bind(tile, vma, range, pt_op->entries, 2134 &pt_op->num_entries, false); 2135 if (!err) { 2136 xe_tile_assert(tile, pt_op->num_entries <= 2137 ARRAY_SIZE(pt_op->entries)); 2138 xe_vm_dbg_print_entries(tile_to_xe(tile), pt_op->entries, 2139 pt_op->num_entries, true); 2140 2141 xe_pt_update_ops_rfence_interval(pt_update_ops, 2142 xe_svm_range_start(range), 2143 xe_svm_range_end(range)); 2144 ++pt_update_ops->current_op; 2145 pt_update_ops->needs_svm_lock = true; 2146 2147 pt_op->vma = vma; 2148 xe_pt_commit_prepare_bind(vma, pt_op->entries, 2149 pt_op->num_entries, pt_op->rebind); 2150 } else { 2151 xe_pt_cancel_bind(vma, pt_op->entries, pt_op->num_entries); 2152 } 2153 2154 return err; 2155 } 2156 2157 static int unbind_op_prepare(struct xe_tile *tile, 2158 struct xe_vm_pgtable_update_ops *pt_update_ops, 2159 struct xe_vma *vma) 2160 { 2161 struct xe_device *xe = tile_to_xe(tile); 2162 u32 current_op = pt_update_ops->current_op; 2163 struct xe_vm_pgtable_update_op *pt_op = &pt_update_ops->ops[current_op]; 2164 int err; 2165 2166 if (!((vma->tile_present | vma->tile_staged) & BIT(tile->id))) 2167 return 0; 2168 2169 xe_tile_assert(tile, !xe_vma_is_cpu_addr_mirror(vma)); 2170 xe_bo_assert_held(xe_vma_bo(vma)); 2171 2172 vm_dbg(&xe_vma_vm(vma)->xe->drm, 2173 "Preparing unbind, with range [%llx...%llx)\n", 2174 xe_vma_start(vma), xe_vma_end(vma) - 1); 2175 2176 pt_op->vma = vma; 2177 pt_op->bind = false; 2178 pt_op->rebind = false; 2179 /* 2180 * Maintain one PRL located in pt_update_ops that all others in unbind op reference. 2181 * Ensure that PRL is allocated only once, and if invalidated, remains an invalidated PRL. 2182 */ 2183 if (xe->info.has_page_reclaim_hw_assist && 2184 xe_page_reclaim_list_is_new(&pt_update_ops->prl)) 2185 xe_page_reclaim_list_alloc_entries(&pt_update_ops->prl); 2186 2187 /* Page reclaim may not be needed due to other features, so skip the corresponding VMA */ 2188 pt_op->prl = (xe_page_reclaim_list_valid(&pt_update_ops->prl) && 2189 !xe_page_reclaim_skip(tile, vma)) ? &pt_update_ops->prl : NULL; 2190 2191 err = vma_reserve_fences(tile_to_xe(tile), vma); 2192 if (err) 2193 return err; 2194 2195 pt_op->num_entries = xe_pt_stage_unbind(tile, xe_vma_vm(vma), 2196 vma, NULL, pt_op->entries); 2197 2198 xe_vm_dbg_print_entries(tile_to_xe(tile), pt_op->entries, 2199 pt_op->num_entries, false); 2200 xe_pt_update_ops_rfence_interval(pt_update_ops, xe_vma_start(vma), 2201 xe_vma_end(vma)); 2202 ++pt_update_ops->current_op; 2203 pt_update_ops->needs_svm_lock |= xe_vma_is_userptr(vma); 2204 pt_update_ops->needs_invalidation = true; 2205 2206 xe_pt_commit_prepare_unbind(vma, pt_op->entries, pt_op->num_entries); 2207 2208 return 0; 2209 } 2210 2211 static bool 2212 xe_pt_op_check_range_skip_invalidation(struct xe_vm_pgtable_update_op *pt_op, 2213 struct xe_svm_range *range) 2214 { 2215 struct xe_vm_pgtable_update *update = pt_op->entries; 2216 2217 XE_WARN_ON(!pt_op->num_entries); 2218 2219 /* 2220 * We can't skip the invalidation if we are removing PTEs that span more 2221 * than the range, do some checks to ensure we are removing PTEs that 2222 * are invalid. 2223 */ 2224 2225 if (pt_op->num_entries > 1) 2226 return false; 2227 2228 if (update->pt->level == 0) 2229 return true; 2230 2231 if (update->pt->level == 1) 2232 return xe_svm_range_size(range) >= SZ_2M; 2233 2234 return false; 2235 } 2236 2237 static int unbind_range_prepare(struct xe_vm *vm, 2238 struct xe_tile *tile, 2239 struct xe_vm_pgtable_update_ops *pt_update_ops, 2240 struct xe_svm_range *range) 2241 { 2242 u32 current_op = pt_update_ops->current_op; 2243 struct xe_vm_pgtable_update_op *pt_op = &pt_update_ops->ops[current_op]; 2244 2245 if (!(range->tile_present & BIT(tile->id))) 2246 return 0; 2247 2248 vm_dbg(&vm->xe->drm, 2249 "Preparing unbind, with range [%lx...%lx)\n", 2250 xe_svm_range_start(range), xe_svm_range_end(range) - 1); 2251 2252 pt_op->vma = XE_INVALID_VMA; 2253 pt_op->bind = false; 2254 pt_op->rebind = false; 2255 pt_op->prl = NULL; 2256 2257 pt_op->num_entries = xe_pt_stage_unbind(tile, vm, NULL, range, 2258 pt_op->entries); 2259 2260 xe_vm_dbg_print_entries(tile_to_xe(tile), pt_op->entries, 2261 pt_op->num_entries, false); 2262 xe_pt_update_ops_rfence_interval(pt_update_ops, xe_svm_range_start(range), 2263 xe_svm_range_end(range)); 2264 ++pt_update_ops->current_op; 2265 pt_update_ops->needs_svm_lock = true; 2266 pt_update_ops->needs_invalidation |= xe_vm_has_scratch(vm) || 2267 xe_vm_has_valid_gpu_mapping(tile, range->tile_present, 2268 range->tile_invalidated) || 2269 !xe_pt_op_check_range_skip_invalidation(pt_op, range); 2270 2271 xe_pt_commit_prepare_unbind(XE_INVALID_VMA, pt_op->entries, 2272 pt_op->num_entries); 2273 2274 return 0; 2275 } 2276 2277 static int op_prepare(struct xe_vm *vm, 2278 struct xe_tile *tile, 2279 struct xe_vm_pgtable_update_ops *pt_update_ops, 2280 struct xe_vma_op *op) 2281 { 2282 int err = 0; 2283 2284 xe_vm_assert_held(vm); 2285 2286 switch (op->base.op) { 2287 case DRM_GPUVA_OP_MAP: 2288 if ((!op->map.immediate && xe_vm_in_fault_mode(vm) && 2289 !op->map.invalidate_on_bind) || 2290 (op->map.vma_flags & XE_VMA_SYSTEM_ALLOCATOR)) 2291 break; 2292 2293 err = bind_op_prepare(vm, tile, pt_update_ops, op->map.vma, 2294 op->map.invalidate_on_bind); 2295 pt_update_ops->wait_vm_kernel = true; 2296 break; 2297 case DRM_GPUVA_OP_REMAP: 2298 { 2299 struct xe_vma *old = gpuva_to_vma(op->base.remap.unmap->va); 2300 2301 if (xe_vma_is_cpu_addr_mirror(old)) 2302 break; 2303 2304 err = unbind_op_prepare(tile, pt_update_ops, old); 2305 2306 if (!err && op->remap.prev && !op->remap.skip_prev) { 2307 err = bind_op_prepare(vm, tile, pt_update_ops, 2308 op->remap.prev, false); 2309 pt_update_ops->wait_vm_bookkeep = true; 2310 } 2311 if (!err && op->remap.next && !op->remap.skip_next) { 2312 err = bind_op_prepare(vm, tile, pt_update_ops, 2313 op->remap.next, false); 2314 pt_update_ops->wait_vm_bookkeep = true; 2315 } 2316 break; 2317 } 2318 case DRM_GPUVA_OP_UNMAP: 2319 { 2320 struct xe_vma *vma = gpuva_to_vma(op->base.unmap.va); 2321 2322 if (xe_vma_is_cpu_addr_mirror(vma)) 2323 break; 2324 2325 err = unbind_op_prepare(tile, pt_update_ops, vma); 2326 break; 2327 } 2328 case DRM_GPUVA_OP_PREFETCH: 2329 { 2330 struct xe_vma *vma = gpuva_to_vma(op->base.prefetch.va); 2331 2332 if (xe_vma_is_cpu_addr_mirror(vma)) { 2333 struct xe_svm_range *range; 2334 unsigned long i; 2335 2336 xa_for_each(&op->prefetch_range.range, i, range) { 2337 err = bind_range_prepare(vm, tile, pt_update_ops, 2338 vma, range); 2339 if (err) 2340 return err; 2341 } 2342 } else { 2343 err = bind_op_prepare(vm, tile, pt_update_ops, vma, false); 2344 pt_update_ops->wait_vm_kernel = true; 2345 } 2346 break; 2347 } 2348 case DRM_GPUVA_OP_DRIVER: 2349 if (op->subop == XE_VMA_SUBOP_MAP_RANGE) { 2350 xe_assert(vm->xe, xe_vma_is_cpu_addr_mirror(op->map_range.vma)); 2351 2352 err = bind_range_prepare(vm, tile, pt_update_ops, 2353 op->map_range.vma, 2354 op->map_range.range); 2355 } else if (op->subop == XE_VMA_SUBOP_UNMAP_RANGE) { 2356 err = unbind_range_prepare(vm, tile, pt_update_ops, 2357 op->unmap_range.range); 2358 } 2359 break; 2360 default: 2361 drm_warn(&vm->xe->drm, "NOT POSSIBLE"); 2362 } 2363 2364 return err; 2365 } 2366 2367 static void 2368 xe_pt_update_ops_init(struct xe_vm_pgtable_update_ops *pt_update_ops) 2369 { 2370 init_llist_head(&pt_update_ops->deferred); 2371 pt_update_ops->current_op = 0; 2372 pt_update_ops->start = ~0x0ull; 2373 pt_update_ops->last = 0x0ull; 2374 pt_update_ops->needs_svm_lock = false; 2375 pt_update_ops->needs_invalidation = false; 2376 xe_page_reclaim_list_init(&pt_update_ops->prl); 2377 } 2378 2379 /** 2380 * xe_pt_update_ops_prepare() - Prepare PT update operations 2381 * @tile: Tile of PT update operations 2382 * @vops: VMA operationa 2383 * 2384 * Prepare PT update operations which includes updating internal PT state, 2385 * allocate memory for page tables, populate page table being pruned in, and 2386 * create PT update operations for leaf insertion / removal. 2387 * 2388 * Return: 0 on success, negative error code on error. 2389 */ 2390 int xe_pt_update_ops_prepare(struct xe_tile *tile, struct xe_vma_ops *vops) 2391 { 2392 struct xe_vm_pgtable_update_ops *pt_update_ops = 2393 &vops->pt_update_ops[tile->id]; 2394 struct xe_vma_op *op; 2395 int shift = tile->media_gt ? 1 : 0; 2396 int err; 2397 2398 lockdep_assert_held(&vops->vm->lock); 2399 xe_vm_assert_held(vops->vm); 2400 2401 xe_pt_update_ops_init(pt_update_ops); 2402 2403 err = dma_resv_reserve_fences(xe_vm_resv(vops->vm), 2404 tile_to_xe(tile)->info.tile_count << shift); 2405 if (err) 2406 return err; 2407 2408 list_for_each_entry(op, &vops->list, link) { 2409 err = op_prepare(vops->vm, tile, pt_update_ops, op); 2410 2411 if (err) 2412 return err; 2413 } 2414 2415 xe_tile_assert(tile, pt_update_ops->current_op <= 2416 pt_update_ops->num_ops); 2417 2418 #ifdef TEST_VM_OPS_ERROR 2419 if (vops->inject_error && 2420 vops->vm->xe->vm_inject_error_position == FORCE_OP_ERROR_PREPARE) 2421 return -ENOSPC; 2422 #endif 2423 2424 return 0; 2425 } 2426 ALLOW_ERROR_INJECTION(xe_pt_update_ops_prepare, ERRNO); 2427 2428 static void bind_op_commit(struct xe_vm *vm, struct xe_tile *tile, 2429 struct xe_vm_pgtable_update_ops *pt_update_ops, 2430 struct xe_vma *vma, struct dma_fence *fence, 2431 struct dma_fence *fence2, bool invalidate_on_bind) 2432 { 2433 xe_tile_assert(tile, !xe_vma_is_cpu_addr_mirror(vma)); 2434 2435 if (!xe_vma_has_no_bo(vma) && !xe_vma_bo(vma)->vm) { 2436 dma_resv_add_fence(xe_vma_bo(vma)->ttm.base.resv, fence, 2437 pt_update_ops->wait_vm_bookkeep ? 2438 DMA_RESV_USAGE_KERNEL : 2439 DMA_RESV_USAGE_BOOKKEEP); 2440 if (fence2) 2441 dma_resv_add_fence(xe_vma_bo(vma)->ttm.base.resv, fence2, 2442 pt_update_ops->wait_vm_bookkeep ? 2443 DMA_RESV_USAGE_KERNEL : 2444 DMA_RESV_USAGE_BOOKKEEP); 2445 } 2446 /* All WRITE_ONCE pair with READ_ONCE in xe_vm_has_valid_gpu_mapping() */ 2447 WRITE_ONCE(vma->tile_present, vma->tile_present | BIT(tile->id)); 2448 if (invalidate_on_bind) 2449 WRITE_ONCE(vma->tile_invalidated, 2450 vma->tile_invalidated | BIT(tile->id)); 2451 else 2452 WRITE_ONCE(vma->tile_invalidated, 2453 vma->tile_invalidated & ~BIT(tile->id)); 2454 vma->tile_staged &= ~BIT(tile->id); 2455 if (xe_vma_is_userptr(vma)) { 2456 xe_svm_assert_held_read_or_inject_write(vm); 2457 to_userptr_vma(vma)->userptr.initial_bind = true; 2458 } 2459 2460 /* 2461 * Kick rebind worker if this bind triggers preempt fences and not in 2462 * the rebind worker 2463 */ 2464 if (pt_update_ops->wait_vm_bookkeep && 2465 xe_vm_in_preempt_fence_mode(vm) && 2466 !current->mm) 2467 xe_vm_queue_rebind_worker(vm); 2468 } 2469 2470 static void unbind_op_commit(struct xe_vm *vm, struct xe_tile *tile, 2471 struct xe_vm_pgtable_update_ops *pt_update_ops, 2472 struct xe_vma *vma, struct dma_fence *fence, 2473 struct dma_fence *fence2) 2474 { 2475 xe_tile_assert(tile, !xe_vma_is_cpu_addr_mirror(vma)); 2476 2477 if (!xe_vma_has_no_bo(vma) && !xe_vma_bo(vma)->vm) { 2478 dma_resv_add_fence(xe_vma_bo(vma)->ttm.base.resv, fence, 2479 pt_update_ops->wait_vm_bookkeep ? 2480 DMA_RESV_USAGE_KERNEL : 2481 DMA_RESV_USAGE_BOOKKEEP); 2482 if (fence2) 2483 dma_resv_add_fence(xe_vma_bo(vma)->ttm.base.resv, fence2, 2484 pt_update_ops->wait_vm_bookkeep ? 2485 DMA_RESV_USAGE_KERNEL : 2486 DMA_RESV_USAGE_BOOKKEEP); 2487 } 2488 vma->tile_present &= ~BIT(tile->id); 2489 if (!vma->tile_present) { 2490 list_del_init(&vma->combined_links.rebind); 2491 if (xe_vma_is_userptr(vma)) { 2492 xe_svm_assert_held_read_or_inject_write(vm); 2493 2494 spin_lock(&vm->userptr.invalidated_lock); 2495 list_del_init(&to_userptr_vma(vma)->userptr.invalidate_link); 2496 spin_unlock(&vm->userptr.invalidated_lock); 2497 } 2498 } 2499 } 2500 2501 static void range_present_and_invalidated_tile(struct xe_vm *vm, 2502 struct xe_svm_range *range, 2503 u8 tile_id) 2504 { 2505 /* All WRITE_ONCE pair with READ_ONCE in xe_vm_has_valid_gpu_mapping() */ 2506 2507 lockdep_assert_held(&vm->svm.gpusvm.notifier_lock); 2508 2509 WRITE_ONCE(range->tile_present, range->tile_present | BIT(tile_id)); 2510 WRITE_ONCE(range->tile_invalidated, range->tile_invalidated & ~BIT(tile_id)); 2511 } 2512 2513 static void op_commit(struct xe_vm *vm, 2514 struct xe_tile *tile, 2515 struct xe_vm_pgtable_update_ops *pt_update_ops, 2516 struct xe_vma_op *op, struct dma_fence *fence, 2517 struct dma_fence *fence2) 2518 { 2519 xe_vm_assert_held(vm); 2520 2521 switch (op->base.op) { 2522 case DRM_GPUVA_OP_MAP: 2523 if ((!op->map.immediate && xe_vm_in_fault_mode(vm)) || 2524 (op->map.vma_flags & XE_VMA_SYSTEM_ALLOCATOR)) 2525 break; 2526 2527 bind_op_commit(vm, tile, pt_update_ops, op->map.vma, fence, 2528 fence2, op->map.invalidate_on_bind); 2529 break; 2530 case DRM_GPUVA_OP_REMAP: 2531 { 2532 struct xe_vma *old = gpuva_to_vma(op->base.remap.unmap->va); 2533 2534 if (xe_vma_is_cpu_addr_mirror(old)) 2535 break; 2536 2537 unbind_op_commit(vm, tile, pt_update_ops, old, fence, fence2); 2538 2539 if (op->remap.prev && !op->remap.skip_prev) 2540 bind_op_commit(vm, tile, pt_update_ops, op->remap.prev, 2541 fence, fence2, false); 2542 if (op->remap.next && !op->remap.skip_next) 2543 bind_op_commit(vm, tile, pt_update_ops, op->remap.next, 2544 fence, fence2, false); 2545 break; 2546 } 2547 case DRM_GPUVA_OP_UNMAP: 2548 { 2549 struct xe_vma *vma = gpuva_to_vma(op->base.unmap.va); 2550 2551 if (!xe_vma_is_cpu_addr_mirror(vma)) 2552 unbind_op_commit(vm, tile, pt_update_ops, vma, fence, 2553 fence2); 2554 break; 2555 } 2556 case DRM_GPUVA_OP_PREFETCH: 2557 { 2558 struct xe_vma *vma = gpuva_to_vma(op->base.prefetch.va); 2559 2560 if (xe_vma_is_cpu_addr_mirror(vma)) { 2561 struct xe_svm_range *range = NULL; 2562 unsigned long i; 2563 2564 xa_for_each(&op->prefetch_range.range, i, range) 2565 range_present_and_invalidated_tile(vm, range, tile->id); 2566 } else { 2567 bind_op_commit(vm, tile, pt_update_ops, vma, fence, 2568 fence2, false); 2569 } 2570 break; 2571 } 2572 case DRM_GPUVA_OP_DRIVER: 2573 { 2574 /* WRITE_ONCE pairs with READ_ONCE in xe_vm_has_valid_gpu_mapping() */ 2575 if (op->subop == XE_VMA_SUBOP_MAP_RANGE) 2576 range_present_and_invalidated_tile(vm, op->map_range.range, tile->id); 2577 else if (op->subop == XE_VMA_SUBOP_UNMAP_RANGE) 2578 WRITE_ONCE(op->unmap_range.range->tile_present, 2579 op->unmap_range.range->tile_present & 2580 ~BIT(tile->id)); 2581 2582 break; 2583 } 2584 default: 2585 drm_warn(&vm->xe->drm, "NOT POSSIBLE"); 2586 } 2587 } 2588 2589 static const struct xe_migrate_pt_update_ops migrate_ops = { 2590 .populate = xe_vm_populate_pgtable, 2591 .clear = xe_migrate_clear_pgtable_callback, 2592 .pre_commit = xe_pt_pre_commit, 2593 }; 2594 2595 #if IS_ENABLED(CONFIG_DRM_GPUSVM) 2596 static const struct xe_migrate_pt_update_ops svm_userptr_migrate_ops = { 2597 .populate = xe_vm_populate_pgtable, 2598 .clear = xe_migrate_clear_pgtable_callback, 2599 .pre_commit = xe_pt_svm_userptr_pre_commit, 2600 }; 2601 #else 2602 static const struct xe_migrate_pt_update_ops svm_userptr_migrate_ops; 2603 #endif 2604 2605 static struct xe_dep_scheduler *to_dep_scheduler(struct xe_exec_queue *q, 2606 struct xe_gt *gt) 2607 { 2608 if (xe_gt_is_media_type(gt)) 2609 return q->tlb_inval[XE_EXEC_QUEUE_TLB_INVAL_MEDIA_GT].dep_scheduler; 2610 2611 return q->tlb_inval[XE_EXEC_QUEUE_TLB_INVAL_PRIMARY_GT].dep_scheduler; 2612 } 2613 2614 /** 2615 * xe_pt_update_ops_run() - Run PT update operations 2616 * @tile: Tile of PT update operations 2617 * @vops: VMA operationa 2618 * 2619 * Run PT update operations which includes committing internal PT state changes, 2620 * creating job for PT update operations for leaf insertion / removal, and 2621 * installing job fence in various places. 2622 * 2623 * Return: fence on success, negative ERR_PTR on error. 2624 */ 2625 struct dma_fence * 2626 xe_pt_update_ops_run(struct xe_tile *tile, struct xe_vma_ops *vops) 2627 { 2628 struct xe_vm *vm = vops->vm; 2629 struct xe_vm_pgtable_update_ops *pt_update_ops = 2630 &vops->pt_update_ops[tile->id]; 2631 struct xe_exec_queue *q = pt_update_ops->q; 2632 struct dma_fence *fence, *ifence = NULL, *mfence = NULL; 2633 struct xe_tlb_inval_job *ijob = NULL, *mjob = NULL; 2634 struct xe_range_fence *rfence; 2635 struct xe_vma_op *op; 2636 int err = 0, i; 2637 struct xe_migrate_pt_update update = { 2638 .ops = pt_update_ops->needs_svm_lock ? 2639 &svm_userptr_migrate_ops : 2640 &migrate_ops, 2641 .vops = vops, 2642 .tile_id = tile->id, 2643 }; 2644 2645 lockdep_assert_held(&vm->lock); 2646 xe_vm_assert_held(vm); 2647 2648 if (!pt_update_ops->current_op) { 2649 xe_tile_assert(tile, xe_vm_in_fault_mode(vm)); 2650 2651 return dma_fence_get_stub(); 2652 } 2653 2654 #ifdef TEST_VM_OPS_ERROR 2655 if (vops->inject_error && 2656 vm->xe->vm_inject_error_position == FORCE_OP_ERROR_RUN) 2657 return ERR_PTR(-ENOSPC); 2658 #endif 2659 2660 if (pt_update_ops->needs_invalidation) { 2661 struct xe_dep_scheduler *dep_scheduler = 2662 to_dep_scheduler(q, tile->primary_gt); 2663 2664 ijob = xe_tlb_inval_job_create(q, &tile->primary_gt->tlb_inval, 2665 dep_scheduler, vm, 2666 pt_update_ops->start, 2667 pt_update_ops->last, 2668 XE_EXEC_QUEUE_TLB_INVAL_PRIMARY_GT); 2669 if (IS_ERR(ijob)) { 2670 err = PTR_ERR(ijob); 2671 goto kill_vm_tile1; 2672 } 2673 update.ijob = ijob; 2674 /* 2675 * Only add page reclaim for the primary GT. Media GT does not have 2676 * any PPC to flush, so enabling the PPC flush bit for media is 2677 * effectively a NOP and provides no performance benefit nor 2678 * interfere with primary GT. 2679 */ 2680 if (xe_page_reclaim_list_valid(&pt_update_ops->prl)) { 2681 xe_tlb_inval_job_add_page_reclaim(ijob, &pt_update_ops->prl); 2682 /* Release ref from alloc, job will now handle it */ 2683 xe_page_reclaim_list_invalidate(&pt_update_ops->prl); 2684 } 2685 2686 if (tile->media_gt) { 2687 dep_scheduler = to_dep_scheduler(q, tile->media_gt); 2688 2689 mjob = xe_tlb_inval_job_create(q, 2690 &tile->media_gt->tlb_inval, 2691 dep_scheduler, vm, 2692 pt_update_ops->start, 2693 pt_update_ops->last, 2694 XE_EXEC_QUEUE_TLB_INVAL_MEDIA_GT); 2695 if (IS_ERR(mjob)) { 2696 err = PTR_ERR(mjob); 2697 goto free_ijob; 2698 } 2699 update.mjob = mjob; 2700 } 2701 } 2702 2703 rfence = kzalloc_obj(*rfence); 2704 if (!rfence) { 2705 err = -ENOMEM; 2706 goto free_ijob; 2707 } 2708 2709 fence = xe_migrate_update_pgtables(tile->migrate, &update); 2710 if (IS_ERR(fence)) { 2711 err = PTR_ERR(fence); 2712 goto free_rfence; 2713 } 2714 2715 /* Point of no return - VM killed if failure after this */ 2716 for (i = 0; i < pt_update_ops->current_op; ++i) { 2717 struct xe_vm_pgtable_update_op *pt_op = &pt_update_ops->ops[i]; 2718 2719 xe_pt_commit(pt_op->vma, pt_op->entries, 2720 pt_op->num_entries, &pt_update_ops->deferred); 2721 pt_op->vma = NULL; /* skip in xe_pt_update_ops_abort */ 2722 } 2723 2724 if (xe_range_fence_insert(&vm->rftree[tile->id], rfence, 2725 &xe_range_fence_kfree_ops, 2726 pt_update_ops->start, 2727 pt_update_ops->last, fence)) 2728 dma_fence_wait(fence, false); 2729 2730 if (ijob) 2731 ifence = xe_tlb_inval_job_push(ijob, tile->migrate, fence); 2732 if (mjob) 2733 mfence = xe_tlb_inval_job_push(mjob, tile->migrate, fence); 2734 2735 if (!mjob && !ijob) { 2736 dma_resv_add_fence(xe_vm_resv(vm), fence, 2737 pt_update_ops->wait_vm_bookkeep ? 2738 DMA_RESV_USAGE_KERNEL : 2739 DMA_RESV_USAGE_BOOKKEEP); 2740 2741 list_for_each_entry(op, &vops->list, link) 2742 op_commit(vops->vm, tile, pt_update_ops, op, fence, NULL); 2743 } else if (ijob && !mjob) { 2744 dma_resv_add_fence(xe_vm_resv(vm), ifence, 2745 pt_update_ops->wait_vm_bookkeep ? 2746 DMA_RESV_USAGE_KERNEL : 2747 DMA_RESV_USAGE_BOOKKEEP); 2748 2749 list_for_each_entry(op, &vops->list, link) 2750 op_commit(vops->vm, tile, pt_update_ops, op, ifence, NULL); 2751 } else { 2752 dma_resv_add_fence(xe_vm_resv(vm), ifence, 2753 pt_update_ops->wait_vm_bookkeep ? 2754 DMA_RESV_USAGE_KERNEL : 2755 DMA_RESV_USAGE_BOOKKEEP); 2756 2757 dma_resv_add_fence(xe_vm_resv(vm), mfence, 2758 pt_update_ops->wait_vm_bookkeep ? 2759 DMA_RESV_USAGE_KERNEL : 2760 DMA_RESV_USAGE_BOOKKEEP); 2761 2762 list_for_each_entry(op, &vops->list, link) 2763 op_commit(vops->vm, tile, pt_update_ops, op, ifence, 2764 mfence); 2765 } 2766 2767 if (pt_update_ops->needs_svm_lock) 2768 xe_pt_svm_userptr_notifier_unlock(vm); 2769 2770 /* 2771 * The last fence is only used for zero bind queue idling; migrate 2772 * queues are not exposed to user space. 2773 */ 2774 if (!(q->flags & EXEC_QUEUE_FLAG_MIGRATE)) 2775 xe_exec_queue_last_fence_set(q, vm, fence); 2776 2777 xe_tlb_inval_job_put(mjob); 2778 xe_tlb_inval_job_put(ijob); 2779 dma_fence_put(ifence); 2780 dma_fence_put(mfence); 2781 2782 return fence; 2783 2784 free_rfence: 2785 kfree(rfence); 2786 free_ijob: 2787 xe_tlb_inval_job_put(mjob); 2788 xe_tlb_inval_job_put(ijob); 2789 kill_vm_tile1: 2790 if (err != -EAGAIN && err != -ENODATA && tile->id) 2791 xe_vm_kill(vops->vm, false); 2792 2793 return ERR_PTR(err); 2794 } 2795 ALLOW_ERROR_INJECTION(xe_pt_update_ops_run, ERRNO); 2796 2797 /** 2798 * xe_pt_update_ops_fini() - Finish PT update operations 2799 * @tile: Tile of PT update operations 2800 * @vops: VMA operations 2801 * 2802 * Finish PT update operations by committing to destroy page table memory 2803 */ 2804 void xe_pt_update_ops_fini(struct xe_tile *tile, struct xe_vma_ops *vops) 2805 { 2806 struct xe_vm_pgtable_update_ops *pt_update_ops = 2807 &vops->pt_update_ops[tile->id]; 2808 int i; 2809 2810 xe_page_reclaim_entries_put(pt_update_ops->prl.entries); 2811 2812 lockdep_assert_held(&vops->vm->lock); 2813 xe_vm_assert_held(vops->vm); 2814 2815 for (i = 0; i < pt_update_ops->current_op; ++i) { 2816 struct xe_vm_pgtable_update_op *pt_op = &pt_update_ops->ops[i]; 2817 2818 xe_pt_free_bind(pt_op->entries, pt_op->num_entries); 2819 } 2820 xe_bo_put_commit(&vops->pt_update_ops[tile->id].deferred); 2821 } 2822 2823 /** 2824 * xe_pt_update_ops_abort() - Abort PT update operations 2825 * @tile: Tile of PT update operations 2826 * @vops: VMA operationa 2827 * 2828 * Abort PT update operations by unwinding internal PT state 2829 */ 2830 void xe_pt_update_ops_abort(struct xe_tile *tile, struct xe_vma_ops *vops) 2831 { 2832 struct xe_vm_pgtable_update_ops *pt_update_ops = 2833 &vops->pt_update_ops[tile->id]; 2834 int i; 2835 2836 lockdep_assert_held(&vops->vm->lock); 2837 xe_vm_assert_held(vops->vm); 2838 2839 for (i = pt_update_ops->num_ops - 1; i >= 0; --i) { 2840 struct xe_vm_pgtable_update_op *pt_op = 2841 &pt_update_ops->ops[i]; 2842 2843 if (!pt_op->vma || i >= pt_update_ops->current_op) 2844 continue; 2845 2846 if (pt_op->bind) 2847 xe_pt_abort_bind(pt_op->vma, pt_op->entries, 2848 pt_op->num_entries, 2849 pt_op->rebind); 2850 else 2851 xe_pt_abort_unbind(pt_op->vma, pt_op->entries, 2852 pt_op->num_entries); 2853 } 2854 2855 xe_pt_update_ops_fini(tile, vops); 2856 } 2857