1 // SPDX-License-Identifier: GPL-2.0-only OR MIT 2 /* 3 * Copyright © 2024-2025 Intel Corporation 4 */ 5 6 #include <linux/dma-fence.h> 7 #include <linux/dma-mapping.h> 8 #include <linux/migrate.h> 9 #include <linux/pagemap.h> 10 #include <drm/drm_drv.h> 11 #include <drm/drm_pagemap.h> 12 #include <drm/drm_pagemap_util.h> 13 #include <drm/drm_print.h> 14 15 /** 16 * DOC: Overview 17 * 18 * The DRM pagemap layer is intended to augment the dev_pagemap functionality by 19 * providing a way to populate a struct mm_struct virtual range with device 20 * private pages and to provide helpers to abstract device memory allocations, 21 * to migrate memory back and forth between device memory and system RAM and 22 * to handle access (and in the future migration) between devices implementing 23 * a fast interconnect that is not necessarily visible to the rest of the 24 * system. 25 * 26 * Typically the DRM pagemap receives requests from one or more DRM GPU SVM 27 * instances to populate struct mm_struct virtual ranges with memory, and the 28 * migration is best effort only and may thus fail. The implementation should 29 * also handle device unbinding by blocking (return an -ENODEV) error for new 30 * population requests and after that migrate all device pages to system ram. 31 */ 32 33 /** 34 * DOC: Migration 35 * 36 * Migration granularity typically follows the GPU SVM range requests, but 37 * if there are clashes, due to races or due to the fact that multiple GPU 38 * SVM instances have different views of the ranges used, and because of that 39 * parts of a requested range is already present in the requested device memory, 40 * the implementation has a variety of options. It can fail and it can choose 41 * to populate only the part of the range that isn't already in device memory, 42 * and it can evict the range to system before trying to migrate. Ideally an 43 * implementation would just try to migrate the missing part of the range and 44 * allocate just enough memory to do so. 45 * 46 * When migrating to system memory as a response to a cpu fault or a device 47 * memory eviction request, currently a full device memory allocation is 48 * migrated back to system. Moving forward this might need improvement for 49 * situations where a single page needs bouncing between system memory and 50 * device memory due to, for example, atomic operations. 51 * 52 * Key DRM pagemap components: 53 * 54 * - Device Memory Allocations: 55 * Embedded structure containing enough information for the drm_pagemap to 56 * migrate to / from device memory. 57 * 58 * - Device Memory Operations: 59 * Define the interface for driver-specific device memory operations 60 * release memory, populate pfns, and copy to / from device memory. 61 */ 62 63 /** 64 * struct drm_pagemap_zdd - GPU SVM zone device data 65 * 66 * @refcount: Reference count for the zdd 67 * @devmem_allocation: device memory allocation 68 * @dpagemap: Refcounted pointer to the underlying struct drm_pagemap. 69 * 70 * This structure serves as a generic wrapper installed in 71 * page->zone_device_data. It provides infrastructure for looking up a device 72 * memory allocation upon CPU page fault and asynchronously releasing device 73 * memory once the CPU has no page references. Asynchronous release is useful 74 * because CPU page references can be dropped in IRQ contexts, while releasing 75 * device memory likely requires sleeping locks. 76 */ 77 struct drm_pagemap_zdd { 78 struct kref refcount; 79 struct drm_pagemap_devmem *devmem_allocation; 80 struct drm_pagemap *dpagemap; 81 }; 82 83 /** 84 * drm_pagemap_zdd_alloc() - Allocate a zdd structure. 85 * @dpagemap: Pointer to the underlying struct drm_pagemap. 86 * 87 * This function allocates and initializes a new zdd structure. It sets up the 88 * reference count and initializes the destroy work. 89 * 90 * Return: Pointer to the allocated zdd on success, ERR_PTR() on failure. 91 */ 92 static struct drm_pagemap_zdd * 93 drm_pagemap_zdd_alloc(struct drm_pagemap *dpagemap) 94 { 95 struct drm_pagemap_zdd *zdd; 96 97 zdd = kmalloc_obj(*zdd); 98 if (!zdd) 99 return NULL; 100 101 kref_init(&zdd->refcount); 102 zdd->devmem_allocation = NULL; 103 zdd->dpagemap = drm_pagemap_get(dpagemap); 104 105 return zdd; 106 } 107 108 /** 109 * drm_pagemap_zdd_get() - Get a reference to a zdd structure. 110 * @zdd: Pointer to the zdd structure. 111 * 112 * This function increments the reference count of the provided zdd structure. 113 * 114 * Return: Pointer to the zdd structure. 115 */ 116 static struct drm_pagemap_zdd *drm_pagemap_zdd_get(struct drm_pagemap_zdd *zdd) 117 { 118 kref_get(&zdd->refcount); 119 return zdd; 120 } 121 122 /** 123 * drm_pagemap_zdd_destroy() - Destroy a zdd structure. 124 * @ref: Pointer to the reference count structure. 125 * 126 * This function queues the destroy_work of the zdd for asynchronous destruction. 127 */ 128 static void drm_pagemap_zdd_destroy(struct kref *ref) 129 { 130 struct drm_pagemap_zdd *zdd = 131 container_of(ref, struct drm_pagemap_zdd, refcount); 132 struct drm_pagemap_devmem *devmem = zdd->devmem_allocation; 133 struct drm_pagemap *dpagemap = zdd->dpagemap; 134 135 if (devmem) { 136 complete_all(&devmem->detached); 137 if (devmem->ops->devmem_release) 138 devmem->ops->devmem_release(devmem); 139 } 140 kfree(zdd); 141 drm_pagemap_put(dpagemap); 142 } 143 144 /** 145 * drm_pagemap_zdd_put() - Put a zdd reference. 146 * @zdd: Pointer to the zdd structure. 147 * 148 * This function decrements the reference count of the provided zdd structure 149 * and schedules its destruction if the count drops to zero. 150 */ 151 static void drm_pagemap_zdd_put(struct drm_pagemap_zdd *zdd) 152 { 153 kref_put(&zdd->refcount, drm_pagemap_zdd_destroy); 154 } 155 156 /** 157 * drm_pagemap_migration_unlock_put_folio() - Put a migration folio 158 * @folio: Pointer to the folio to put 159 * 160 * This function unlocks and puts a folio. 161 */ 162 static void drm_pagemap_migration_unlock_put_folio(struct folio *folio) 163 { 164 folio_unlock(folio); 165 folio_put(folio); 166 } 167 168 /** 169 * drm_pagemap_migration_unlock_put_pages() - Put migration pages 170 * @npages: Number of pages 171 * @migrate_pfn: Array of migrate page frame numbers 172 * 173 * This function unlocks and puts an array of pages. 174 */ 175 static void drm_pagemap_migration_unlock_put_pages(unsigned long npages, 176 unsigned long *migrate_pfn) 177 { 178 unsigned long i; 179 180 for (i = 0; i < npages;) { 181 struct page *page; 182 struct folio *folio; 183 unsigned int order = 0; 184 185 if (!migrate_pfn[i]) 186 goto next; 187 188 page = migrate_pfn_to_page(migrate_pfn[i]); 189 folio = page_folio(page); 190 order = folio_order(folio); 191 192 drm_pagemap_migration_unlock_put_folio(folio); 193 migrate_pfn[i] = 0; 194 195 next: 196 i += NR_PAGES(order); 197 } 198 } 199 200 /** 201 * drm_pagemap_get_devmem_page() - Get a reference to a device memory page 202 * @page: Pointer to the page 203 * @order: Order 204 * @zdd: Pointer to the GPU SVM zone device data 205 * 206 * This function associates the given page with the specified GPU SVM zone 207 * device data and initializes it for zone device usage. 208 */ 209 static void drm_pagemap_get_devmem_page(struct page *page, 210 unsigned int order, 211 struct drm_pagemap_zdd *zdd) 212 { 213 zone_device_folio_init((struct folio *)page, zdd->dpagemap->pagemap, 214 order); 215 folio_set_zone_device_data(page_folio(page), drm_pagemap_zdd_get(zdd)); 216 } 217 218 /** 219 * drm_pagemap_migrate_map_device_private_pages() - Map device private migration 220 * pages for GPU SVM migration 221 * @dev: The device performing the migration. 222 * @local_dpagemap: The drm_pagemap local to the migrating device. 223 * @pagemap_addr: Array to store DMA information corresponding to mapped pages. 224 * @migrate_pfn: Array of page frame numbers of system pages or peer pages to map. 225 * @npages: Number of system pages or peer pages to map. 226 * @dir: Direction of data transfer (e.g., DMA_BIDIRECTIONAL) 227 * @mdetails: Details governing the migration behaviour. 228 * 229 * This function maps pages of memory for migration usage in GPU SVM. It 230 * iterates over each page frame number provided in @migrate_pfn, maps the 231 * corresponding page, and stores the DMA address in the provided @dma_addr 232 * array. 233 * 234 * Returns: 0 on success, -EFAULT if an error occurs during mapping. 235 */ 236 static int 237 drm_pagemap_migrate_map_device_private_pages(struct device *dev, 238 struct drm_pagemap *local_dpagemap, 239 struct drm_pagemap_addr *pagemap_addr, 240 unsigned long *migrate_pfn, 241 unsigned long npages, 242 enum dma_data_direction dir, 243 const struct drm_pagemap_migrate_details *mdetails) 244 { 245 unsigned long num_peer_pages = 0, num_local_pages = 0, i; 246 247 for (i = 0; i < npages;) { 248 struct page *page = migrate_pfn_to_page(migrate_pfn[i]); 249 struct drm_pagemap_zdd *zdd; 250 struct drm_pagemap *dpagemap; 251 struct drm_pagemap_addr addr; 252 struct folio *folio; 253 unsigned int order = 0; 254 255 if (!page) 256 goto next; 257 258 WARN_ON_ONCE(!is_device_private_page(page)); 259 folio = page_folio(page); 260 order = folio_order(folio); 261 262 zdd = drm_pagemap_page_zone_device_data(page); 263 dpagemap = zdd->dpagemap; 264 265 if (dpagemap == local_dpagemap) { 266 if (!mdetails->can_migrate_same_pagemap) 267 goto next; 268 269 num_local_pages += NR_PAGES(order); 270 } else { 271 num_peer_pages += NR_PAGES(order); 272 } 273 274 addr = dpagemap->ops->device_map(dpagemap, dev, page, order, dir); 275 if (dma_mapping_error(dev, addr.addr)) 276 return -EFAULT; 277 278 pagemap_addr[i] = addr; 279 280 next: 281 i += NR_PAGES(order); 282 } 283 284 if (num_peer_pages) 285 drm_dbg(local_dpagemap->drm, "Migrating %lu peer pages over interconnect.\n", 286 num_peer_pages); 287 if (num_local_pages) 288 drm_dbg(local_dpagemap->drm, "Migrating %lu local pages over interconnect.\n", 289 num_local_pages); 290 291 return 0; 292 } 293 294 /** 295 * struct drm_pagemap_iova_state - DRM pagemap IOVA state 296 * @dma_state: DMA IOVA state. 297 * @offset: Current offset in IOVA. 298 * 299 * This structure acts as an iterator for packing all IOVA addresses within a 300 * contiguous range. 301 */ 302 struct drm_pagemap_iova_state { 303 struct dma_iova_state dma_state; 304 unsigned long offset; 305 }; 306 307 /** 308 * drm_pagemap_migrate_map_system_pages() - Map system or device coherent 309 * migration pages for GPU SVM migration 310 * @dev: The device performing the migration. 311 * @pagemap_addr: Array to store DMA information corresponding to mapped pages. 312 * @migrate_pfn: Array of page frame numbers of system pages or peer pages to map. 313 * @npages: Number of system or device coherent pages to map. 314 * @dir: Direction of data transfer (e.g., DMA_BIDIRECTIONAL) 315 * @state: DMA IOVA state for mapping. 316 * 317 * This function maps pages of memory for migration usage in GPU SVM. It 318 * iterates over each page frame number provided in @migrate_pfn, maps the 319 * corresponding page, and stores the DMA address in the provided @dma_addr 320 * array. 321 * 322 * Returns: 0 on success, negative error code on failure. 323 */ 324 static int 325 drm_pagemap_migrate_map_system_pages(struct device *dev, 326 struct drm_pagemap_addr *pagemap_addr, 327 unsigned long *migrate_pfn, 328 unsigned long npages, 329 enum dma_data_direction dir, 330 struct drm_pagemap_iova_state *state) 331 { 332 unsigned long i; 333 bool try_alloc = false; 334 335 for (i = 0; i < npages;) { 336 struct page *page = migrate_pfn_to_page(migrate_pfn[i]); 337 dma_addr_t dma_addr; 338 struct folio *folio; 339 unsigned int order = 0; 340 341 if (!page) 342 goto next; 343 344 WARN_ON_ONCE(is_device_private_page(page)); 345 folio = page_folio(page); 346 order = folio_order(folio); 347 348 if (!try_alloc) { 349 dma_iova_try_alloc(dev, &state->dma_state, 350 0, npages * PAGE_SIZE); 351 try_alloc = true; 352 } 353 354 if (dma_use_iova(&state->dma_state)) { 355 int err = dma_iova_link(dev, &state->dma_state, 356 page_to_phys(page), 357 state->offset, page_size(page), 358 dir, 0); 359 if (err) 360 return err; 361 362 dma_addr = state->dma_state.addr + state->offset; 363 state->offset += page_size(page); 364 } else { 365 dma_addr = dma_map_page(dev, page, 0, page_size(page), 366 dir); 367 if (dma_mapping_error(dev, dma_addr)) 368 return -EFAULT; 369 } 370 371 pagemap_addr[i] = 372 drm_pagemap_addr_encode(dma_addr, 373 DRM_INTERCONNECT_SYSTEM, 374 order, dir); 375 376 next: 377 i += NR_PAGES(order); 378 } 379 380 if (dma_use_iova(&state->dma_state)) 381 return dma_iova_sync(dev, &state->dma_state, 0, state->offset); 382 383 return 0; 384 } 385 386 /** 387 * drm_pagemap_migrate_unmap_pages() - Unmap pages previously mapped for GPU SVM migration 388 * @dev: The device for which the pages were mapped 389 * @migrate_pfn: Array of migrate pfns set up for the mapped pages. Used to 390 * determine the drm_pagemap of a peer device private page. 391 * @pagemap_addr: Array of DMA information corresponding to mapped pages 392 * @npages: Number of pages to unmap 393 * @dir: Direction of data transfer (e.g., DMA_BIDIRECTIONAL) 394 * @state: DMA IOVA state for mapping. 395 * 396 * This function unmaps previously mapped pages of memory for GPU Shared Virtual 397 * Memory (SVM). It iterates over each DMA address provided in @pagemap_addr, 398 * checks if it's valid and not already unmapped, and unmaps the corresponding 399 * page. 400 */ 401 static void drm_pagemap_migrate_unmap_pages(struct device *dev, 402 struct drm_pagemap_addr *pagemap_addr, 403 unsigned long *migrate_pfn, 404 unsigned long npages, 405 enum dma_data_direction dir, 406 struct drm_pagemap_iova_state *state) 407 { 408 unsigned long i; 409 410 if (state && dma_use_iova(&state->dma_state)) { 411 dma_iova_destroy(dev, &state->dma_state, state->offset, dir, 0); 412 return; 413 } 414 415 for (i = 0; i < npages;) { 416 struct page *page = migrate_pfn_to_page(migrate_pfn[i]); 417 418 if (!page || !pagemap_addr[i].addr || dma_mapping_error(dev, pagemap_addr[i].addr)) 419 goto next; 420 421 if (is_zone_device_page(page)) { 422 struct drm_pagemap_zdd *zdd = drm_pagemap_page_zone_device_data(page); 423 struct drm_pagemap *dpagemap = zdd->dpagemap; 424 425 dpagemap->ops->device_unmap(dpagemap, dev, &pagemap_addr[i]); 426 } else { 427 dma_unmap_page(dev, pagemap_addr[i].addr, 428 PAGE_SIZE << pagemap_addr[i].order, dir); 429 } 430 431 next: 432 i += NR_PAGES(pagemap_addr[i].order); 433 } 434 } 435 436 static unsigned long 437 npages_in_range(unsigned long start, unsigned long end) 438 { 439 return (end - start) >> PAGE_SHIFT; 440 } 441 442 static int 443 drm_pagemap_migrate_remote_to_local(struct drm_pagemap_devmem *devmem, 444 struct device *remote_device, 445 struct drm_pagemap *remote_dpagemap, 446 unsigned long local_pfns[], 447 struct page *remote_pages[], 448 struct drm_pagemap_addr pagemap_addr[], 449 unsigned long npages, 450 const struct drm_pagemap_devmem_ops *ops, 451 const struct drm_pagemap_migrate_details *mdetails) 452 453 { 454 int err = drm_pagemap_migrate_map_device_private_pages(remote_device, 455 remote_dpagemap, 456 pagemap_addr, 457 local_pfns, 458 npages, 459 DMA_FROM_DEVICE, 460 mdetails); 461 462 if (err) 463 goto out; 464 465 err = ops->copy_to_ram(remote_pages, pagemap_addr, npages, 466 devmem->pre_migrate_fence); 467 out: 468 drm_pagemap_migrate_unmap_pages(remote_device, pagemap_addr, local_pfns, 469 npages, DMA_FROM_DEVICE, NULL); 470 return err; 471 } 472 473 static int 474 drm_pagemap_migrate_sys_to_dev(struct drm_pagemap_devmem *devmem, 475 unsigned long sys_pfns[], 476 struct page *local_pages[], 477 struct drm_pagemap_addr pagemap_addr[], 478 unsigned long npages, 479 const struct drm_pagemap_devmem_ops *ops, 480 struct drm_pagemap_iova_state *state) 481 { 482 int err = drm_pagemap_migrate_map_system_pages(devmem->dev, 483 pagemap_addr, sys_pfns, 484 npages, DMA_TO_DEVICE, 485 state); 486 487 if (err) 488 goto out; 489 490 err = ops->copy_to_devmem(local_pages, pagemap_addr, npages, 491 devmem->pre_migrate_fence); 492 out: 493 drm_pagemap_migrate_unmap_pages(devmem->dev, pagemap_addr, sys_pfns, npages, 494 DMA_TO_DEVICE, state); 495 return err; 496 } 497 498 /** 499 * struct migrate_range_loc - Cursor into the loop over migrate_pfns for migrating to 500 * device. 501 * @start: The current loop index. 502 * @device: migrating device. 503 * @dpagemap: Pointer to struct drm_pagemap used by the migrating device. 504 * @ops: The copy ops to be used for the migrating device. 505 */ 506 struct migrate_range_loc { 507 unsigned long start; 508 struct device *device; 509 struct drm_pagemap *dpagemap; 510 const struct drm_pagemap_devmem_ops *ops; 511 }; 512 513 static int drm_pagemap_migrate_range(struct drm_pagemap_devmem *devmem, 514 unsigned long src_pfns[], 515 unsigned long dst_pfns[], 516 struct page *pages[], 517 struct drm_pagemap_addr pagemap_addr[], 518 struct migrate_range_loc *last, 519 const struct migrate_range_loc *cur, 520 const struct drm_pagemap_migrate_details *mdetails) 521 { 522 struct drm_pagemap_iova_state state = {}; 523 int ret = 0; 524 525 if (cur->start == 0) 526 goto out; 527 528 if (cur->start <= last->start) 529 return 0; 530 531 if (cur->dpagemap == last->dpagemap && cur->ops == last->ops) 532 return 0; 533 534 if (last->dpagemap) 535 ret = drm_pagemap_migrate_remote_to_local(devmem, 536 last->device, 537 last->dpagemap, 538 &dst_pfns[last->start], 539 &pages[last->start], 540 &pagemap_addr[last->start], 541 cur->start - last->start, 542 last->ops, mdetails); 543 544 else 545 ret = drm_pagemap_migrate_sys_to_dev(devmem, 546 &src_pfns[last->start], 547 &pages[last->start], 548 &pagemap_addr[last->start], 549 cur->start - last->start, 550 last->ops, &state); 551 552 out: 553 *last = *cur; 554 return ret; 555 } 556 557 /** 558 * drm_pagemap_cpages() - Count collected pages 559 * @migrate_pfn: Array of migrate_pfn entries to account 560 * @npages: Number of entries in @migrate_pfn 561 * 562 * Compute the total number of minimum-sized pages represented by the 563 * collected entries in @migrate_pfn. The total is derived from the 564 * order encoded in each entry. 565 * 566 * Return: Total number of minimum-sized pages. 567 */ 568 static int drm_pagemap_cpages(unsigned long *migrate_pfn, unsigned long npages) 569 { 570 unsigned long i, cpages = 0; 571 572 for (i = 0; i < npages;) { 573 struct page *page = migrate_pfn_to_page(migrate_pfn[i]); 574 struct folio *folio; 575 unsigned int order = 0; 576 577 if (page) { 578 folio = page_folio(page); 579 order = folio_order(folio); 580 cpages += NR_PAGES(order); 581 } else if (migrate_pfn[i] & MIGRATE_PFN_COMPOUND) { 582 order = HPAGE_PMD_ORDER; 583 cpages += NR_PAGES(order); 584 } 585 586 i += NR_PAGES(order); 587 } 588 589 return cpages; 590 } 591 592 /** 593 * drm_pagemap_migrate_to_devmem() - Migrate a struct mm_struct range to device memory 594 * @devmem_allocation: The device memory allocation to migrate to. 595 * The caller should hold a reference to the device memory allocation, 596 * and the reference is consumed by this function even if it returns with 597 * an error. 598 * @mm: Pointer to the struct mm_struct. 599 * @start: Start of the virtual address range to migrate. 600 * @end: End of the virtual address range to migrate. 601 * @mdetails: Details to govern the migration. 602 * 603 * This function migrates the specified virtual address range to device memory. 604 * It performs the necessary setup and invokes the driver-specific operations for 605 * migration to device memory. Expected to be called while holding the mmap lock in 606 * at least read mode. 607 * 608 * Note: The @timeslice_ms parameter can typically be used to force data to 609 * remain in pagemap pages long enough for a GPU to perform a task and to prevent 610 * a migration livelock. One alternative would be for the GPU driver to block 611 * in a mmu_notifier for the specified amount of time, but adding the 612 * functionality to the pagemap is likely nicer to the system as a whole. 613 * 614 * Return: %0 on success, negative error code on failure. 615 */ 616 int drm_pagemap_migrate_to_devmem(struct drm_pagemap_devmem *devmem_allocation, 617 struct mm_struct *mm, 618 unsigned long start, unsigned long end, 619 const struct drm_pagemap_migrate_details *mdetails) 620 { 621 const struct drm_pagemap_devmem_ops *ops = devmem_allocation->ops; 622 struct drm_pagemap *dpagemap = devmem_allocation->dpagemap; 623 struct dev_pagemap *pagemap = dpagemap->pagemap; 624 struct migrate_vma migrate = { 625 .start = start, 626 .end = end, 627 .pgmap_owner = pagemap->owner, 628 .flags = MIGRATE_VMA_SELECT_SYSTEM | MIGRATE_VMA_SELECT_DEVICE_COHERENT | 629 MIGRATE_VMA_SELECT_DEVICE_PRIVATE | MIGRATE_VMA_SELECT_COMPOUND, 630 }; 631 unsigned long i, npages = npages_in_range(start, end); 632 unsigned long own_pages = 0, migrated_pages = 0; 633 struct migrate_range_loc cur, last = {.device = dpagemap->drm->dev, .ops = ops}; 634 struct vm_area_struct *vas; 635 struct drm_pagemap_zdd *zdd = NULL; 636 struct page **pages; 637 struct drm_pagemap_addr *pagemap_addr; 638 void *buf; 639 int err; 640 641 mmap_assert_locked(mm); 642 643 if (!ops->populate_devmem_pfn || !ops->copy_to_devmem || 644 !ops->copy_to_ram) 645 return -EOPNOTSUPP; 646 647 vas = vma_lookup(mm, start); 648 if (!vas) { 649 err = -ENOENT; 650 goto err_out; 651 } 652 653 if (end > vas->vm_end || start < vas->vm_start) { 654 err = -EINVAL; 655 goto err_out; 656 } 657 658 if (!vma_is_anonymous(vas)) { 659 err = -EBUSY; 660 goto err_out; 661 } 662 663 buf = kvcalloc(npages, 2 * sizeof(*migrate.src) + sizeof(*pagemap_addr) + 664 sizeof(*pages), GFP_KERNEL); 665 if (!buf) { 666 err = -ENOMEM; 667 goto err_out; 668 } 669 pagemap_addr = buf + (2 * sizeof(*migrate.src) * npages); 670 pages = buf + (2 * sizeof(*migrate.src) + sizeof(*pagemap_addr)) * npages; 671 672 zdd = drm_pagemap_zdd_alloc(dpagemap); 673 if (!zdd) { 674 err = -ENOMEM; 675 kvfree(buf); 676 goto err_out; 677 } 678 zdd->devmem_allocation = devmem_allocation; /* Owns ref */ 679 680 migrate.vma = vas; 681 migrate.src = buf; 682 migrate.dst = migrate.src + npages; 683 684 err = migrate_vma_setup(&migrate); 685 if (err) 686 goto err_free; 687 688 if (!migrate.cpages) { 689 /* No pages to migrate. Raced or unknown device pages. */ 690 err = -EBUSY; 691 goto err_free; 692 } 693 694 if (migrate.cpages != npages && 695 drm_pagemap_cpages(migrate.src, npages) != npages) { 696 /* 697 * Some pages to migrate. But we want to migrate all or 698 * nothing. Raced or unknown device pages. 699 */ 700 err = -EBUSY; 701 goto err_aborted_migration; 702 } 703 704 /* Count device-private pages to migrate */ 705 for (i = 0; i < npages;) { 706 struct page *src_page = migrate_pfn_to_page(migrate.src[i]); 707 unsigned long nr_pages = src_page ? NR_PAGES(folio_order(page_folio(src_page))) : 1; 708 709 if (src_page && is_zone_device_page(src_page)) { 710 if (page_pgmap(src_page) == pagemap) 711 own_pages += nr_pages; 712 } 713 714 i += nr_pages; 715 } 716 717 drm_dbg(dpagemap->drm, "Total pages %lu; Own pages: %lu.\n", 718 npages, own_pages); 719 if (own_pages == npages) { 720 err = 0; 721 drm_dbg(dpagemap->drm, "Migration wasn't necessary.\n"); 722 goto err_aborted_migration; 723 } else if (own_pages && !mdetails->can_migrate_same_pagemap) { 724 err = -EBUSY; 725 drm_dbg(dpagemap->drm, "Migration aborted due to fragmentation.\n"); 726 goto err_aborted_migration; 727 } 728 729 err = ops->populate_devmem_pfn(devmem_allocation, npages, migrate.dst); 730 if (err) { 731 npages = 0; 732 goto err_finalize; 733 } 734 735 own_pages = 0; 736 737 for (i = 0; i < npages;) { 738 unsigned long j; 739 struct page *page = pfn_to_page(migrate.dst[i]); 740 struct page *src_page = migrate_pfn_to_page(migrate.src[i]); 741 unsigned int order = 0; 742 743 cur.start = i; 744 pages[i] = NULL; 745 if (src_page && is_device_private_page(src_page)) { 746 struct drm_pagemap_zdd *src_zdd = 747 drm_pagemap_page_zone_device_data(src_page); 748 749 if (page_pgmap(src_page) == pagemap && 750 !mdetails->can_migrate_same_pagemap) { 751 migrate.dst[i] = 0; 752 own_pages++; 753 goto next; 754 } 755 cur.dpagemap = src_zdd->dpagemap; 756 cur.ops = src_zdd->devmem_allocation->ops; 757 cur.device = cur.dpagemap->drm->dev; 758 pages[i] = src_page; 759 } 760 if (!pages[i]) { 761 cur.dpagemap = NULL; 762 cur.ops = ops; 763 cur.device = dpagemap->drm->dev; 764 pages[i] = page; 765 } 766 migrate.dst[i] = migrate_pfn(migrate.dst[i]); 767 768 if (migrate.src[i] & MIGRATE_PFN_COMPOUND) { 769 drm_WARN_ONCE(dpagemap->drm, src_page && 770 folio_order(page_folio(src_page)) != HPAGE_PMD_ORDER, 771 "Unexpected folio order\n"); 772 773 order = HPAGE_PMD_ORDER; 774 migrate.dst[i] |= MIGRATE_PFN_COMPOUND; 775 776 for (j = 1; j < NR_PAGES(order) && i + j < npages; j++) 777 migrate.dst[i + j] = 0; 778 } 779 780 drm_pagemap_get_devmem_page(page, order, zdd); 781 782 /* If we switched the migrating drm_pagemap, migrate previous pages now */ 783 err = drm_pagemap_migrate_range(devmem_allocation, migrate.src, migrate.dst, 784 pages, pagemap_addr, &last, &cur, 785 mdetails); 786 if (err) { 787 npages = i + 1; 788 goto err_finalize; 789 } 790 791 next: 792 i += NR_PAGES(order); 793 } 794 795 cur.start = npages; 796 cur.ops = NULL; /* Force migration */ 797 err = drm_pagemap_migrate_range(devmem_allocation, migrate.src, migrate.dst, 798 pages, pagemap_addr, &last, &cur, mdetails); 799 if (err) 800 goto err_finalize; 801 802 drm_WARN_ON(dpagemap->drm, !!own_pages); 803 804 dma_fence_put(devmem_allocation->pre_migrate_fence); 805 devmem_allocation->pre_migrate_fence = NULL; 806 807 /* Upon success bind devmem allocation to range and zdd */ 808 devmem_allocation->timeslice_expiration = get_jiffies_64() + 809 msecs_to_jiffies(mdetails->timeslice_ms); 810 811 err_finalize: 812 if (err) { 813 drm_pagemap_migration_unlock_put_pages(npages, migrate.dst); 814 for (i = npages; i < npages_in_range(start, end); ++i) 815 migrate.dst[i] = 0; 816 } 817 err_aborted_migration: 818 migrate_vma_pages(&migrate); 819 820 for (i = 0; !err && i < npages;) { 821 struct page *page = migrate_pfn_to_page(migrate.src[i]); 822 unsigned long nr_pages = page ? NR_PAGES(folio_order(page_folio(page))) : 1; 823 824 if (migrate.src[i] & MIGRATE_PFN_MIGRATE) 825 migrated_pages += nr_pages; 826 827 i += nr_pages; 828 } 829 830 if (!err && migrated_pages < npages - own_pages) { 831 drm_dbg(dpagemap->drm, "Raced while finalizing migration.\n"); 832 err = -EBUSY; 833 } 834 835 migrate_vma_finalize(&migrate); 836 err_free: 837 drm_pagemap_zdd_put(zdd); 838 kvfree(buf); 839 return err; 840 841 err_out: 842 devmem_allocation->ops->devmem_release(devmem_allocation); 843 return err; 844 } 845 EXPORT_SYMBOL_GPL(drm_pagemap_migrate_to_devmem); 846 847 /** 848 * drm_pagemap_migrate_populate_ram_pfn() - Populate RAM PFNs for a VM area 849 * @vas: Pointer to the VM area structure, can be NULL 850 * @fault_page: Fault page 851 * @npages: Number of pages to populate 852 * @mpages: Number of pages to migrate 853 * @src_mpfn: Source array of migrate PFNs 854 * @mpfn: Array of migrate PFNs to populate 855 * @addr: Start address for PFN allocation 856 * 857 * This function populates the RAM migrate page frame numbers (PFNs) for the 858 * specified VM area structure. It allocates and locks pages in the VM area for 859 * RAM usage. If vas is non-NULL use alloc_page_vma for allocation, if NULL use 860 * alloc_page for allocation. 861 * 862 * Return: 0 on success, negative error code on failure. 863 */ 864 static int drm_pagemap_migrate_populate_ram_pfn(struct vm_area_struct *vas, 865 struct page *fault_page, 866 unsigned long npages, 867 unsigned long *mpages, 868 unsigned long *src_mpfn, 869 unsigned long *mpfn, 870 unsigned long addr) 871 { 872 unsigned long i; 873 874 for (i = 0; i < npages;) { 875 struct page *page = NULL, *src_page; 876 struct folio *folio; 877 unsigned int order = 0; 878 879 if (!(src_mpfn[i] & MIGRATE_PFN_MIGRATE)) 880 goto next; 881 882 src_page = migrate_pfn_to_page(src_mpfn[i]); 883 if (!src_page) 884 goto next; 885 886 if (fault_page) { 887 if (drm_pagemap_page_zone_device_data(src_page) != 888 drm_pagemap_page_zone_device_data(fault_page)) 889 goto next; 890 } 891 892 order = folio_order(page_folio(src_page)); 893 894 /* TODO: Support fallback to single pages if THP allocation fails */ 895 if (vas) 896 folio = vma_alloc_folio(GFP_HIGHUSER, order, vas, addr); 897 else 898 folio = folio_alloc(GFP_HIGHUSER, order); 899 900 if (!folio) 901 goto free_pages; 902 903 page = folio_page(folio, 0); 904 mpfn[i] = migrate_pfn(page_to_pfn(page)); 905 906 if (order) 907 mpfn[i] |= MIGRATE_PFN_COMPOUND; 908 next: 909 if (page) 910 addr += page_size(page); 911 else 912 addr += PAGE_SIZE; 913 914 i += NR_PAGES(order); 915 } 916 917 for (i = 0; i < npages;) { 918 struct page *page = migrate_pfn_to_page(mpfn[i]); 919 unsigned int order = 0; 920 921 if (!page) 922 goto next_lock; 923 924 WARN_ON_ONCE(!folio_trylock(page_folio(page))); 925 926 order = folio_order(page_folio(page)); 927 *mpages += NR_PAGES(order); 928 929 next_lock: 930 i += NR_PAGES(order); 931 } 932 933 return 0; 934 935 free_pages: 936 for (i = 0; i < npages;) { 937 struct page *page = migrate_pfn_to_page(mpfn[i]); 938 unsigned int order = 0; 939 940 if (!page) 941 goto next_put; 942 943 put_page(page); 944 mpfn[i] = 0; 945 946 order = folio_order(page_folio(page)); 947 948 next_put: 949 i += NR_PAGES(order); 950 } 951 return -ENOMEM; 952 } 953 954 static void drm_pagemap_dev_unhold_work(struct work_struct *work); 955 static LLIST_HEAD(drm_pagemap_unhold_list); 956 static DECLARE_WORK(drm_pagemap_work, drm_pagemap_dev_unhold_work); 957 958 /** 959 * struct drm_pagemap_dev_hold - Struct to aid in drm_device release. 960 * @link: Link into drm_pagemap_unhold_list for deferred reference releases. 961 * @drm: drm device to put. 962 * 963 * When a struct drm_pagemap is released, we also need to release the 964 * reference it holds on the drm device. However, typically that needs 965 * to be done separately from a system-wide workqueue. 966 * Each time a struct drm_pagemap is initialized 967 * (or re-initialized if cached) therefore allocate a separate 968 * drm_pagemap_dev_hold item, from which we put the drm device and 969 * associated module. 970 */ 971 struct drm_pagemap_dev_hold { 972 struct llist_node link; 973 struct drm_device *drm; 974 }; 975 976 static void drm_pagemap_release(struct kref *ref) 977 { 978 struct drm_pagemap *dpagemap = container_of(ref, typeof(*dpagemap), ref); 979 struct drm_pagemap_dev_hold *dev_hold = dpagemap->dev_hold; 980 981 /* 982 * We know the pagemap provider is alive at this point, since 983 * the struct drm_pagemap_dev_hold holds a reference to the 984 * pagemap provider drm_device and its module. 985 */ 986 dpagemap->dev_hold = NULL; 987 drm_pagemap_shrinker_add(dpagemap); 988 llist_add(&dev_hold->link, &drm_pagemap_unhold_list); 989 schedule_work(&drm_pagemap_work); 990 /* 991 * Here, either the provider device is still alive, since if called from 992 * page_free(), the caller is holding a reference on the dev_pagemap, 993 * or if called from drm_pagemap_put(), the direct caller is still alive. 994 * This ensures we can't race with THIS module unload. 995 */ 996 } 997 998 static void drm_pagemap_dev_unhold_work(struct work_struct *work) 999 { 1000 struct llist_node *node = llist_del_all(&drm_pagemap_unhold_list); 1001 struct drm_pagemap_dev_hold *dev_hold, *next; 1002 1003 /* 1004 * Deferred release of drm_pagemap provider device and module. 1005 * THIS module is kept alive during the release by the 1006 * flush_work() in the drm_pagemap_exit() function. 1007 */ 1008 llist_for_each_entry_safe(dev_hold, next, node, link) { 1009 struct drm_device *drm = dev_hold->drm; 1010 struct module *module = drm->driver->fops->owner; 1011 1012 drm_dbg(drm, "Releasing reference on provider device and module.\n"); 1013 drm_dev_put(drm); 1014 module_put(module); 1015 kfree(dev_hold); 1016 } 1017 } 1018 1019 static struct drm_pagemap_dev_hold * 1020 drm_pagemap_dev_hold(struct drm_pagemap *dpagemap) 1021 { 1022 struct drm_pagemap_dev_hold *dev_hold; 1023 struct drm_device *drm = dpagemap->drm; 1024 1025 dev_hold = kzalloc_obj(*dev_hold); 1026 if (!dev_hold) 1027 return ERR_PTR(-ENOMEM); 1028 1029 init_llist_node(&dev_hold->link); 1030 dev_hold->drm = drm; 1031 (void)try_module_get(drm->driver->fops->owner); 1032 drm_dev_get(drm); 1033 1034 return dev_hold; 1035 } 1036 1037 /** 1038 * drm_pagemap_reinit() - Reinitialize a drm_pagemap 1039 * @dpagemap: The drm_pagemap to reinitialize 1040 * 1041 * Reinitialize a drm_pagemap, for which drm_pagemap_release 1042 * has already been called. This interface is intended for the 1043 * situation where the driver caches a destroyed drm_pagemap. 1044 * 1045 * Return: 0 on success, negative error code on failure. 1046 */ 1047 int drm_pagemap_reinit(struct drm_pagemap *dpagemap) 1048 { 1049 dpagemap->dev_hold = drm_pagemap_dev_hold(dpagemap); 1050 if (IS_ERR(dpagemap->dev_hold)) 1051 return PTR_ERR(dpagemap->dev_hold); 1052 1053 kref_init(&dpagemap->ref); 1054 return 0; 1055 } 1056 EXPORT_SYMBOL(drm_pagemap_reinit); 1057 1058 /** 1059 * drm_pagemap_init() - Initialize a pre-allocated drm_pagemap 1060 * @dpagemap: The drm_pagemap to initialize. 1061 * @pagemap: The associated dev_pagemap providing the device 1062 * private pages. 1063 * @drm: The drm device. The drm_pagemap holds a reference on the 1064 * drm_device and the module owning the drm_device until 1065 * drm_pagemap_release(). This facilitates drm_pagemap exporting. 1066 * @ops: The drm_pagemap ops. 1067 * 1068 * Initialize and take an initial reference on a drm_pagemap. 1069 * After successful return, use drm_pagemap_put() to destroy. 1070 * 1071 ** Return: 0 on success, negative error code on error. 1072 */ 1073 int drm_pagemap_init(struct drm_pagemap *dpagemap, 1074 struct dev_pagemap *pagemap, 1075 struct drm_device *drm, 1076 const struct drm_pagemap_ops *ops) 1077 { 1078 kref_init(&dpagemap->ref); 1079 dpagemap->ops = ops; 1080 dpagemap->pagemap = pagemap; 1081 dpagemap->drm = drm; 1082 dpagemap->cache = NULL; 1083 INIT_LIST_HEAD(&dpagemap->shrink_link); 1084 1085 return drm_pagemap_reinit(dpagemap); 1086 } 1087 EXPORT_SYMBOL(drm_pagemap_init); 1088 1089 /** 1090 * drm_pagemap_put() - Put a struct drm_pagemap reference 1091 * @dpagemap: Pointer to a struct drm_pagemap object. 1092 * 1093 * Puts a struct drm_pagemap reference and frees the drm_pagemap object 1094 * if the refount reaches zero. 1095 */ 1096 void drm_pagemap_put(struct drm_pagemap *dpagemap) 1097 { 1098 if (likely(dpagemap)) { 1099 drm_pagemap_shrinker_might_lock(dpagemap); 1100 kref_put(&dpagemap->ref, drm_pagemap_release); 1101 } 1102 } 1103 EXPORT_SYMBOL(drm_pagemap_put); 1104 1105 /** 1106 * drm_pagemap_evict_to_ram() - Evict GPU SVM range to RAM 1107 * @devmem_allocation: Pointer to the device memory allocation 1108 * 1109 * Similar to __drm_pagemap_migrate_to_ram but does not require mmap lock and 1110 * migration done via migrate_device_* functions. 1111 * 1112 * Return: 0 on success, negative error code on failure. 1113 */ 1114 int drm_pagemap_evict_to_ram(struct drm_pagemap_devmem *devmem_allocation) 1115 { 1116 const struct drm_pagemap_devmem_ops *ops = devmem_allocation->ops; 1117 struct drm_pagemap_iova_state state = {}; 1118 unsigned long npages, mpages = 0; 1119 struct page **pages; 1120 unsigned long *src, *dst; 1121 struct drm_pagemap_addr *pagemap_addr; 1122 void *buf; 1123 int i, err = 0; 1124 unsigned int retry_count = 2; 1125 1126 npages = devmem_allocation->size >> PAGE_SHIFT; 1127 1128 retry: 1129 if (!mmget_not_zero(devmem_allocation->mm)) 1130 return -EFAULT; 1131 1132 buf = kvcalloc(npages, 2 * sizeof(*src) + sizeof(*pagemap_addr) + 1133 sizeof(*pages), GFP_KERNEL); 1134 if (!buf) { 1135 err = -ENOMEM; 1136 goto err_out; 1137 } 1138 src = buf; 1139 dst = buf + (sizeof(*src) * npages); 1140 pagemap_addr = buf + (2 * sizeof(*src) * npages); 1141 pages = buf + (2 * sizeof(*src) + sizeof(*pagemap_addr)) * npages; 1142 1143 err = ops->populate_devmem_pfn(devmem_allocation, npages, src); 1144 if (err) 1145 goto err_free; 1146 1147 err = migrate_device_pfns(src, npages); 1148 if (err) 1149 goto err_free; 1150 1151 err = drm_pagemap_migrate_populate_ram_pfn(NULL, NULL, npages, &mpages, 1152 src, dst, 0); 1153 if (err || !mpages) 1154 goto err_finalize; 1155 1156 err = drm_pagemap_migrate_map_system_pages(devmem_allocation->dev, 1157 pagemap_addr, 1158 dst, npages, 1159 DMA_FROM_DEVICE, &state); 1160 if (err) 1161 goto err_finalize; 1162 1163 for (i = 0; i < npages;) { 1164 unsigned int order = 0; 1165 1166 pages[i] = migrate_pfn_to_page(src[i]); 1167 if (pages[i]) 1168 order = folio_order(page_folio(pages[i])); 1169 1170 i += NR_PAGES(order); 1171 } 1172 1173 err = ops->copy_to_ram(pages, pagemap_addr, npages, NULL); 1174 if (err) 1175 goto err_finalize; 1176 1177 err_finalize: 1178 if (err) 1179 drm_pagemap_migration_unlock_put_pages(npages, dst); 1180 migrate_device_pages(src, dst, npages); 1181 migrate_device_finalize(src, dst, npages); 1182 drm_pagemap_migrate_unmap_pages(devmem_allocation->dev, pagemap_addr, dst, npages, 1183 DMA_FROM_DEVICE, &state); 1184 1185 err_free: 1186 kvfree(buf); 1187 err_out: 1188 mmput_async(devmem_allocation->mm); 1189 1190 if (completion_done(&devmem_allocation->detached)) 1191 return 0; 1192 1193 if (retry_count--) { 1194 cond_resched(); 1195 state = (struct drm_pagemap_iova_state){}; 1196 goto retry; 1197 } 1198 1199 return err ?: -EBUSY; 1200 } 1201 EXPORT_SYMBOL_GPL(drm_pagemap_evict_to_ram); 1202 1203 /** 1204 * __drm_pagemap_migrate_to_ram() - Migrate GPU SVM range to RAM (internal) 1205 * @vas: Pointer to the VM area structure 1206 * @page: Pointer to the page for fault handling. 1207 * @fault_addr: Fault address 1208 * @size: Size of migration 1209 * 1210 * This internal function performs the migration of the specified GPU SVM range 1211 * to RAM. It sets up the migration, populates + dma maps RAM PFNs, and 1212 * invokes the driver-specific operations for migration to RAM. 1213 * 1214 * Return: 0 on success, negative error code on failure. 1215 */ 1216 static int __drm_pagemap_migrate_to_ram(struct vm_area_struct *vas, 1217 struct page *page, 1218 unsigned long fault_addr, 1219 unsigned long size) 1220 { 1221 struct migrate_vma migrate = { 1222 .vma = vas, 1223 .pgmap_owner = page_pgmap(page)->owner, 1224 .flags = MIGRATE_VMA_SELECT_DEVICE_PRIVATE | 1225 MIGRATE_VMA_SELECT_DEVICE_COHERENT | 1226 MIGRATE_VMA_SELECT_COMPOUND, 1227 .fault_page = page, 1228 }; 1229 struct drm_pagemap_iova_state state = {}; 1230 struct drm_pagemap_zdd *zdd; 1231 const struct drm_pagemap_devmem_ops *ops; 1232 struct device *dev = NULL; 1233 unsigned long npages, mpages = 0; 1234 struct page **pages; 1235 struct drm_pagemap_addr *pagemap_addr; 1236 unsigned long start, end; 1237 void *buf; 1238 int i, err = 0; 1239 1240 zdd = drm_pagemap_page_zone_device_data(page); 1241 if (time_before64(get_jiffies_64(), zdd->devmem_allocation->timeslice_expiration)) 1242 return 0; 1243 1244 start = ALIGN_DOWN(fault_addr, size); 1245 end = ALIGN(fault_addr + 1, size); 1246 1247 /* Corner where VMA area struct has been partially unmapped */ 1248 if (start < vas->vm_start) 1249 start = vas->vm_start; 1250 if (end > vas->vm_end) 1251 end = vas->vm_end; 1252 1253 migrate.start = start; 1254 migrate.end = end; 1255 npages = npages_in_range(start, end); 1256 1257 buf = kvcalloc(npages, 2 * sizeof(*migrate.src) + sizeof(*pagemap_addr) + 1258 sizeof(*pages), GFP_KERNEL); 1259 if (!buf) { 1260 err = -ENOMEM; 1261 goto err_out; 1262 } 1263 pagemap_addr = buf + (2 * sizeof(*migrate.src) * npages); 1264 pages = buf + (2 * sizeof(*migrate.src) + sizeof(*pagemap_addr)) * npages; 1265 1266 migrate.vma = vas; 1267 migrate.src = buf; 1268 migrate.dst = migrate.src + npages; 1269 1270 err = migrate_vma_setup(&migrate); 1271 if (err) 1272 goto err_free; 1273 1274 /* Raced with another CPU fault, nothing to do */ 1275 if (!migrate.cpages) 1276 goto err_free; 1277 1278 ops = zdd->devmem_allocation->ops; 1279 dev = zdd->devmem_allocation->dev; 1280 1281 err = drm_pagemap_migrate_populate_ram_pfn(vas, page, npages, &mpages, 1282 migrate.src, migrate.dst, 1283 start); 1284 if (err) 1285 goto err_finalize; 1286 1287 err = drm_pagemap_migrate_map_system_pages(dev, pagemap_addr, 1288 migrate.dst, npages, 1289 DMA_FROM_DEVICE, &state); 1290 if (err) 1291 goto err_finalize; 1292 1293 for (i = 0; i < npages;) { 1294 unsigned int order = 0; 1295 1296 pages[i] = migrate_pfn_to_page(migrate.src[i]); 1297 if (pages[i]) 1298 order = folio_order(page_folio(pages[i])); 1299 1300 i += NR_PAGES(order); 1301 } 1302 1303 err = ops->copy_to_ram(pages, pagemap_addr, npages, NULL); 1304 if (err) 1305 goto err_finalize; 1306 1307 err_finalize: 1308 if (err) 1309 drm_pagemap_migration_unlock_put_pages(npages, migrate.dst); 1310 migrate_vma_pages(&migrate); 1311 migrate_vma_finalize(&migrate); 1312 if (dev) 1313 drm_pagemap_migrate_unmap_pages(dev, pagemap_addr, migrate.dst, 1314 npages, DMA_FROM_DEVICE, 1315 &state); 1316 err_free: 1317 kvfree(buf); 1318 err_out: 1319 1320 return err; 1321 } 1322 1323 /** 1324 * drm_pagemap_folio_free() - Put GPU SVM zone device data associated with a folio 1325 * @folio: Pointer to the folio 1326 * 1327 * This function is a callback used to put the GPU SVM zone device data 1328 * associated with a page when it is being released. 1329 */ 1330 static void drm_pagemap_folio_free(struct folio *folio) 1331 { 1332 struct page *page = folio_page(folio, 0); 1333 1334 drm_pagemap_zdd_put(drm_pagemap_page_zone_device_data(page)); 1335 } 1336 1337 /** 1338 * drm_pagemap_migrate_to_ram() - Migrate a virtual range to RAM (page fault handler) 1339 * @vmf: Pointer to the fault information structure 1340 * 1341 * This function is a page fault handler used to migrate a virtual range 1342 * to ram. The device memory allocation in which the device page is found is 1343 * migrated in its entirety. 1344 * 1345 * Returns: 1346 * VM_FAULT_SIGBUS on failure, 0 on success. 1347 */ 1348 static vm_fault_t drm_pagemap_migrate_to_ram(struct vm_fault *vmf) 1349 { 1350 struct drm_pagemap_zdd *zdd = drm_pagemap_page_zone_device_data(vmf->page); 1351 int err; 1352 1353 err = __drm_pagemap_migrate_to_ram(vmf->vma, 1354 vmf->page, vmf->address, 1355 zdd->devmem_allocation->size); 1356 1357 return err ? VM_FAULT_SIGBUS : 0; 1358 } 1359 1360 static void drm_pagemap_folio_split(struct folio *orig_folio, struct folio *new_folio) 1361 { 1362 struct drm_pagemap_zdd *zdd; 1363 1364 if (!new_folio) 1365 return; 1366 1367 new_folio->pgmap = orig_folio->pgmap; 1368 zdd = folio_zone_device_data(orig_folio); 1369 folio_set_zone_device_data(new_folio, drm_pagemap_zdd_get(zdd)); 1370 } 1371 1372 static const struct dev_pagemap_ops drm_pagemap_pagemap_ops = { 1373 .folio_free = drm_pagemap_folio_free, 1374 .migrate_to_ram = drm_pagemap_migrate_to_ram, 1375 .folio_split = drm_pagemap_folio_split, 1376 }; 1377 1378 /** 1379 * drm_pagemap_pagemap_ops_get() - Retrieve GPU SVM device page map operations 1380 * 1381 * Returns: 1382 * Pointer to the GPU SVM device page map operations structure. 1383 */ 1384 const struct dev_pagemap_ops *drm_pagemap_pagemap_ops_get(void) 1385 { 1386 return &drm_pagemap_pagemap_ops; 1387 } 1388 EXPORT_SYMBOL_GPL(drm_pagemap_pagemap_ops_get); 1389 1390 /** 1391 * drm_pagemap_devmem_init() - Initialize a drm_pagemap device memory allocation 1392 * 1393 * @devmem_allocation: The struct drm_pagemap_devmem to initialize. 1394 * @dev: Pointer to the device structure which device memory allocation belongs to 1395 * @mm: Pointer to the mm_struct for the address space 1396 * @ops: Pointer to the operations structure for GPU SVM device memory 1397 * @dpagemap: The struct drm_pagemap we're allocating from. 1398 * @size: Size of device memory allocation 1399 * @pre_migrate_fence: Fence to wait for or pipeline behind before migration starts. 1400 * (May be NULL). 1401 */ 1402 void drm_pagemap_devmem_init(struct drm_pagemap_devmem *devmem_allocation, 1403 struct device *dev, struct mm_struct *mm, 1404 const struct drm_pagemap_devmem_ops *ops, 1405 struct drm_pagemap *dpagemap, size_t size, 1406 struct dma_fence *pre_migrate_fence) 1407 { 1408 init_completion(&devmem_allocation->detached); 1409 devmem_allocation->dev = dev; 1410 devmem_allocation->mm = mm; 1411 devmem_allocation->ops = ops; 1412 devmem_allocation->dpagemap = dpagemap; 1413 devmem_allocation->size = size; 1414 devmem_allocation->pre_migrate_fence = pre_migrate_fence; 1415 } 1416 EXPORT_SYMBOL_GPL(drm_pagemap_devmem_init); 1417 1418 /** 1419 * drm_pagemap_page_to_dpagemap() - Return a pointer the drm_pagemap of a page 1420 * @page: The struct page. 1421 * 1422 * Return: A pointer to the struct drm_pagemap of a device private page that 1423 * was populated from the struct drm_pagemap. If the page was *not* populated 1424 * from a struct drm_pagemap, the result is undefined and the function call 1425 * may result in dereferencing and invalid address. 1426 */ 1427 struct drm_pagemap *drm_pagemap_page_to_dpagemap(struct page *page) 1428 { 1429 struct drm_pagemap_zdd *zdd = drm_pagemap_page_zone_device_data(page); 1430 1431 return zdd->devmem_allocation->dpagemap; 1432 } 1433 EXPORT_SYMBOL_GPL(drm_pagemap_page_to_dpagemap); 1434 1435 /** 1436 * drm_pagemap_populate_mm() - Populate a virtual range with device memory pages 1437 * @dpagemap: Pointer to the drm_pagemap managing the device memory 1438 * @start: Start of the virtual range to populate. 1439 * @end: End of the virtual range to populate. 1440 * @mm: Pointer to the virtual address space. 1441 * @timeslice_ms: The time requested for the migrated pagemap pages to 1442 * be present in @mm before being allowed to be migrated back. 1443 * 1444 * Attempt to populate a virtual range with device memory pages, 1445 * clearing them or migrating data from the existing pages if necessary. 1446 * The function is best effort only, and implementations may vary 1447 * in how hard they try to satisfy the request. 1448 * 1449 * Return: %0 on success, negative error code on error. If the hardware 1450 * device was removed / unbound the function will return %-ENODEV. 1451 */ 1452 int drm_pagemap_populate_mm(struct drm_pagemap *dpagemap, 1453 unsigned long start, unsigned long end, 1454 struct mm_struct *mm, 1455 unsigned long timeslice_ms) 1456 { 1457 int err; 1458 1459 if (!mmget_not_zero(mm)) 1460 return -EFAULT; 1461 mmap_read_lock(mm); 1462 err = dpagemap->ops->populate_mm(dpagemap, start, end, mm, 1463 timeslice_ms); 1464 mmap_read_unlock(mm); 1465 mmput(mm); 1466 1467 return err; 1468 } 1469 EXPORT_SYMBOL(drm_pagemap_populate_mm); 1470 1471 void drm_pagemap_destroy(struct drm_pagemap *dpagemap, bool is_atomic_or_reclaim) 1472 { 1473 if (dpagemap->ops->destroy) 1474 dpagemap->ops->destroy(dpagemap, is_atomic_or_reclaim); 1475 else 1476 kfree(dpagemap); 1477 } 1478 1479 static void drm_pagemap_exit(void) 1480 { 1481 flush_work(&drm_pagemap_work); 1482 if (WARN_ON(!llist_empty(&drm_pagemap_unhold_list))) 1483 disable_work_sync(&drm_pagemap_work); 1484 } 1485 module_exit(drm_pagemap_exit); 1486