1 // SPDX-License-Identifier: GPL-2.0-or-later 2 3 #include <linux/iosys-map.h> 4 #include <linux/module.h> 5 6 #include <drm/drm_debugfs.h> 7 #include <drm/drm_device.h> 8 #include <drm/drm_drv.h> 9 #include <drm/drm_file.h> 10 #include <drm/drm_framebuffer.h> 11 #include <drm/drm_gem_atomic_helper.h> 12 #include <drm/drm_gem_framebuffer_helper.h> 13 #include <drm/drm_gem_ttm_helper.h> 14 #include <drm/drm_gem_vram_helper.h> 15 #include <drm/drm_managed.h> 16 #include <drm/drm_mode.h> 17 #include <drm/drm_plane.h> 18 #include <drm/drm_prime.h> 19 #include <drm/drm_simple_kms_helper.h> 20 21 #include <drm/ttm/ttm_range_manager.h> 22 #include <drm/ttm/ttm_tt.h> 23 24 static const struct drm_gem_object_funcs drm_gem_vram_object_funcs; 25 26 /** 27 * DOC: overview 28 * 29 * This library provides &struct drm_gem_vram_object (GEM VRAM), a GEM 30 * buffer object that is backed by video RAM (VRAM). It can be used for 31 * framebuffer devices with dedicated memory. 32 * 33 * The data structure &struct drm_vram_mm and its helpers implement a memory 34 * manager for simple framebuffer devices with dedicated video memory. GEM 35 * VRAM buffer objects are either placed in the video memory or remain evicted 36 * to system memory. 37 * 38 * With the GEM interface userspace applications create, manage and destroy 39 * graphics buffers, such as an on-screen framebuffer. GEM does not provide 40 * an implementation of these interfaces. It's up to the DRM driver to 41 * provide an implementation that suits the hardware. If the hardware device 42 * contains dedicated video memory, the DRM driver can use the VRAM helper 43 * library. Each active buffer object is stored in video RAM. Active 44 * buffer are used for drawing the current frame, typically something like 45 * the frame's scanout buffer or the cursor image. If there's no more space 46 * left in VRAM, inactive GEM objects can be moved to system memory. 47 * 48 * To initialize the VRAM helper library call drmm_vram_helper_init(). 49 * The function allocates and initializes an instance of &struct drm_vram_mm 50 * in &struct drm_device.vram_mm . Use &DRM_GEM_VRAM_DRIVER to initialize 51 * &struct drm_driver and &DRM_VRAM_MM_FILE_OPERATIONS to initialize 52 * &struct file_operations; as illustrated below. 53 * 54 * .. code-block:: c 55 * 56 * struct file_operations fops ={ 57 * .owner = THIS_MODULE, 58 * DRM_VRAM_MM_FILE_OPERATION 59 * }; 60 * struct drm_driver drv = { 61 * .driver_feature = DRM_ ... , 62 * .fops = &fops, 63 * DRM_GEM_VRAM_DRIVER 64 * }; 65 * 66 * int init_drm_driver() 67 * { 68 * struct drm_device *dev; 69 * uint64_t vram_base; 70 * unsigned long vram_size; 71 * int ret; 72 * 73 * // setup device, vram base and size 74 * // ... 75 * 76 * ret = drmm_vram_helper_init(dev, vram_base, vram_size); 77 * if (ret) 78 * return ret; 79 * return 0; 80 * } 81 * 82 * This creates an instance of &struct drm_vram_mm, exports DRM userspace 83 * interfaces for GEM buffer management and initializes file operations to 84 * allow for accessing created GEM buffers. With this setup, the DRM driver 85 * manages an area of video RAM with VRAM MM and provides GEM VRAM objects 86 * to userspace. 87 * 88 * You don't have to clean up the instance of VRAM MM. 89 * drmm_vram_helper_init() is a managed interface that installs a 90 * clean-up handler to run during the DRM device's release. 91 * 92 * For drawing or scanout operations, rsp. buffer objects have to be pinned 93 * in video RAM. Call drm_gem_vram_pin() with &DRM_GEM_VRAM_PL_FLAG_VRAM or 94 * &DRM_GEM_VRAM_PL_FLAG_SYSTEM to pin a buffer object in video RAM or system 95 * memory. Call drm_gem_vram_unpin() to release the pinned object afterwards. 96 * 97 * A buffer object that is pinned in video RAM has a fixed address within that 98 * memory region. Call drm_gem_vram_offset() to retrieve this value. Typically 99 * it's used to program the hardware's scanout engine for framebuffers, set 100 * the cursor overlay's image for a mouse cursor, or use it as input to the 101 * hardware's drawing engine. 102 * 103 * To access a buffer object's memory from the DRM driver, call 104 * drm_gem_vram_vmap(). It maps the buffer into kernel address 105 * space and returns the memory address. Use drm_gem_vram_vunmap() to 106 * release the mapping. 107 */ 108 109 /* 110 * Buffer-objects helpers 111 */ 112 113 static void drm_gem_vram_cleanup(struct drm_gem_vram_object *gbo) 114 { 115 /* We got here via ttm_bo_put(), which means that the 116 * TTM buffer object in 'bo' has already been cleaned 117 * up; only release the GEM object. 118 */ 119 120 WARN_ON(gbo->vmap_use_count); 121 WARN_ON(iosys_map_is_set(&gbo->map)); 122 123 drm_gem_object_release(&gbo->bo.base); 124 } 125 126 static void drm_gem_vram_destroy(struct drm_gem_vram_object *gbo) 127 { 128 drm_gem_vram_cleanup(gbo); 129 kfree(gbo); 130 } 131 132 static void ttm_buffer_object_destroy(struct ttm_buffer_object *bo) 133 { 134 struct drm_gem_vram_object *gbo = drm_gem_vram_of_bo(bo); 135 136 drm_gem_vram_destroy(gbo); 137 } 138 139 static void drm_gem_vram_placement(struct drm_gem_vram_object *gbo, 140 unsigned long pl_flag) 141 { 142 u32 invariant_flags = 0; 143 unsigned int i; 144 unsigned int c = 0; 145 146 if (pl_flag & DRM_GEM_VRAM_PL_FLAG_TOPDOWN) 147 invariant_flags = TTM_PL_FLAG_TOPDOWN; 148 149 gbo->placement.placement = gbo->placements; 150 gbo->placement.busy_placement = gbo->placements; 151 152 if (pl_flag & DRM_GEM_VRAM_PL_FLAG_VRAM) { 153 gbo->placements[c].mem_type = TTM_PL_VRAM; 154 gbo->placements[c++].flags = invariant_flags; 155 } 156 157 if (pl_flag & DRM_GEM_VRAM_PL_FLAG_SYSTEM || !c) { 158 gbo->placements[c].mem_type = TTM_PL_SYSTEM; 159 gbo->placements[c++].flags = invariant_flags; 160 } 161 162 gbo->placement.num_placement = c; 163 gbo->placement.num_busy_placement = c; 164 165 for (i = 0; i < c; ++i) { 166 gbo->placements[i].fpfn = 0; 167 gbo->placements[i].lpfn = 0; 168 } 169 } 170 171 /** 172 * drm_gem_vram_create() - Creates a VRAM-backed GEM object 173 * @dev: the DRM device 174 * @size: the buffer size in bytes 175 * @pg_align: the buffer's alignment in multiples of the page size 176 * 177 * GEM objects are allocated by calling struct drm_driver.gem_create_object, 178 * if set. Otherwise kzalloc() will be used. Drivers can set their own GEM 179 * object functions in struct drm_driver.gem_create_object. If no functions 180 * are set, the new GEM object will use the default functions from GEM VRAM 181 * helpers. 182 * 183 * Returns: 184 * A new instance of &struct drm_gem_vram_object on success, or 185 * an ERR_PTR()-encoded error code otherwise. 186 */ 187 struct drm_gem_vram_object *drm_gem_vram_create(struct drm_device *dev, 188 size_t size, 189 unsigned long pg_align) 190 { 191 struct drm_gem_vram_object *gbo; 192 struct drm_gem_object *gem; 193 struct drm_vram_mm *vmm = dev->vram_mm; 194 struct ttm_device *bdev; 195 int ret; 196 197 if (WARN_ONCE(!vmm, "VRAM MM not initialized")) 198 return ERR_PTR(-EINVAL); 199 200 if (dev->driver->gem_create_object) { 201 gem = dev->driver->gem_create_object(dev, size); 202 if (IS_ERR(gem)) 203 return ERR_CAST(gem); 204 gbo = drm_gem_vram_of_gem(gem); 205 } else { 206 gbo = kzalloc(sizeof(*gbo), GFP_KERNEL); 207 if (!gbo) 208 return ERR_PTR(-ENOMEM); 209 gem = &gbo->bo.base; 210 } 211 212 if (!gem->funcs) 213 gem->funcs = &drm_gem_vram_object_funcs; 214 215 ret = drm_gem_object_init(dev, gem, size); 216 if (ret) { 217 kfree(gbo); 218 return ERR_PTR(ret); 219 } 220 221 bdev = &vmm->bdev; 222 223 gbo->bo.bdev = bdev; 224 drm_gem_vram_placement(gbo, DRM_GEM_VRAM_PL_FLAG_SYSTEM); 225 226 /* 227 * A failing ttm_bo_init will call ttm_buffer_object_destroy 228 * to release gbo->bo.base and kfree gbo. 229 */ 230 ret = ttm_bo_init_validate(bdev, &gbo->bo, ttm_bo_type_device, 231 &gbo->placement, pg_align, false, NULL, NULL, 232 ttm_buffer_object_destroy); 233 if (ret) 234 return ERR_PTR(ret); 235 236 return gbo; 237 } 238 EXPORT_SYMBOL(drm_gem_vram_create); 239 240 /** 241 * drm_gem_vram_put() - Releases a reference to a VRAM-backed GEM object 242 * @gbo: the GEM VRAM object 243 * 244 * See ttm_bo_put() for more information. 245 */ 246 void drm_gem_vram_put(struct drm_gem_vram_object *gbo) 247 { 248 ttm_bo_put(&gbo->bo); 249 } 250 EXPORT_SYMBOL(drm_gem_vram_put); 251 252 static u64 drm_gem_vram_pg_offset(struct drm_gem_vram_object *gbo) 253 { 254 /* Keep TTM behavior for now, remove when drivers are audited */ 255 if (WARN_ON_ONCE(!gbo->bo.resource || 256 gbo->bo.resource->mem_type == TTM_PL_SYSTEM)) 257 return 0; 258 259 return gbo->bo.resource->start; 260 } 261 262 /** 263 * drm_gem_vram_offset() - Returns a GEM VRAM object's offset in video memory 264 * @gbo: the GEM VRAM object 265 * 266 * This function returns the buffer object's offset in the device's video 267 * memory. The buffer object has to be pinned to %TTM_PL_VRAM. 268 * 269 * Returns: 270 * The buffer object's offset in video memory on success, or 271 * a negative errno code otherwise. 272 */ 273 s64 drm_gem_vram_offset(struct drm_gem_vram_object *gbo) 274 { 275 if (WARN_ON_ONCE(!gbo->bo.pin_count)) 276 return (s64)-ENODEV; 277 return drm_gem_vram_pg_offset(gbo) << PAGE_SHIFT; 278 } 279 EXPORT_SYMBOL(drm_gem_vram_offset); 280 281 static int drm_gem_vram_pin_locked(struct drm_gem_vram_object *gbo, 282 unsigned long pl_flag) 283 { 284 struct ttm_operation_ctx ctx = { false, false }; 285 int ret; 286 287 if (gbo->bo.pin_count) 288 goto out; 289 290 if (pl_flag) 291 drm_gem_vram_placement(gbo, pl_flag); 292 293 ret = ttm_bo_validate(&gbo->bo, &gbo->placement, &ctx); 294 if (ret < 0) 295 return ret; 296 297 out: 298 ttm_bo_pin(&gbo->bo); 299 300 return 0; 301 } 302 303 /** 304 * drm_gem_vram_pin() - Pins a GEM VRAM object in a region. 305 * @gbo: the GEM VRAM object 306 * @pl_flag: a bitmask of possible memory regions 307 * 308 * Pinning a buffer object ensures that it is not evicted from 309 * a memory region. A pinned buffer object has to be unpinned before 310 * it can be pinned to another region. If the pl_flag argument is 0, 311 * the buffer is pinned at its current location (video RAM or system 312 * memory). 313 * 314 * Small buffer objects, such as cursor images, can lead to memory 315 * fragmentation if they are pinned in the middle of video RAM. This 316 * is especially a problem on devices with only a small amount of 317 * video RAM. Fragmentation can prevent the primary framebuffer from 318 * fitting in, even though there's enough memory overall. The modifier 319 * DRM_GEM_VRAM_PL_FLAG_TOPDOWN marks the buffer object to be pinned 320 * at the high end of the memory region to avoid fragmentation. 321 * 322 * Returns: 323 * 0 on success, or 324 * a negative error code otherwise. 325 */ 326 int drm_gem_vram_pin(struct drm_gem_vram_object *gbo, unsigned long pl_flag) 327 { 328 int ret; 329 330 ret = ttm_bo_reserve(&gbo->bo, true, false, NULL); 331 if (ret) 332 return ret; 333 ret = drm_gem_vram_pin_locked(gbo, pl_flag); 334 ttm_bo_unreserve(&gbo->bo); 335 336 return ret; 337 } 338 EXPORT_SYMBOL(drm_gem_vram_pin); 339 340 static void drm_gem_vram_unpin_locked(struct drm_gem_vram_object *gbo) 341 { 342 ttm_bo_unpin(&gbo->bo); 343 } 344 345 /** 346 * drm_gem_vram_unpin() - Unpins a GEM VRAM object 347 * @gbo: the GEM VRAM object 348 * 349 * Returns: 350 * 0 on success, or 351 * a negative error code otherwise. 352 */ 353 int drm_gem_vram_unpin(struct drm_gem_vram_object *gbo) 354 { 355 int ret; 356 357 ret = ttm_bo_reserve(&gbo->bo, true, false, NULL); 358 if (ret) 359 return ret; 360 361 drm_gem_vram_unpin_locked(gbo); 362 ttm_bo_unreserve(&gbo->bo); 363 364 return 0; 365 } 366 EXPORT_SYMBOL(drm_gem_vram_unpin); 367 368 static int drm_gem_vram_kmap_locked(struct drm_gem_vram_object *gbo, 369 struct iosys_map *map) 370 { 371 int ret; 372 373 if (gbo->vmap_use_count > 0) 374 goto out; 375 376 /* 377 * VRAM helpers unmap the BO only on demand. So the previous 378 * page mapping might still be around. Only vmap if the there's 379 * no mapping present. 380 */ 381 if (iosys_map_is_null(&gbo->map)) { 382 ret = ttm_bo_vmap(&gbo->bo, &gbo->map); 383 if (ret) 384 return ret; 385 } 386 387 out: 388 ++gbo->vmap_use_count; 389 *map = gbo->map; 390 391 return 0; 392 } 393 394 static void drm_gem_vram_kunmap_locked(struct drm_gem_vram_object *gbo, 395 struct iosys_map *map) 396 { 397 struct drm_device *dev = gbo->bo.base.dev; 398 399 if (drm_WARN_ON_ONCE(dev, !gbo->vmap_use_count)) 400 return; 401 402 if (drm_WARN_ON_ONCE(dev, !iosys_map_is_equal(&gbo->map, map))) 403 return; /* BUG: map not mapped from this BO */ 404 405 if (--gbo->vmap_use_count > 0) 406 return; 407 408 /* 409 * Permanently mapping and unmapping buffers adds overhead from 410 * updating the page tables and creates debugging output. Therefore, 411 * we delay the actual unmap operation until the BO gets evicted 412 * from memory. See drm_gem_vram_bo_driver_move_notify(). 413 */ 414 } 415 416 /** 417 * drm_gem_vram_vmap() - Pins and maps a GEM VRAM object into kernel address 418 * space 419 * @gbo: The GEM VRAM object to map 420 * @map: Returns the kernel virtual address of the VRAM GEM object's backing 421 * store. 422 * 423 * The vmap function pins a GEM VRAM object to its current location, either 424 * system or video memory, and maps its buffer into kernel address space. 425 * As pinned object cannot be relocated, you should avoid pinning objects 426 * permanently. Call drm_gem_vram_vunmap() with the returned address to 427 * unmap and unpin the GEM VRAM object. 428 * 429 * Returns: 430 * 0 on success, or a negative error code otherwise. 431 */ 432 int drm_gem_vram_vmap(struct drm_gem_vram_object *gbo, struct iosys_map *map) 433 { 434 int ret; 435 436 dma_resv_assert_held(gbo->bo.base.resv); 437 438 ret = drm_gem_vram_pin_locked(gbo, 0); 439 if (ret) 440 return ret; 441 ret = drm_gem_vram_kmap_locked(gbo, map); 442 if (ret) 443 goto err_drm_gem_vram_unpin_locked; 444 445 return 0; 446 447 err_drm_gem_vram_unpin_locked: 448 drm_gem_vram_unpin_locked(gbo); 449 return ret; 450 } 451 EXPORT_SYMBOL(drm_gem_vram_vmap); 452 453 /** 454 * drm_gem_vram_vunmap() - Unmaps and unpins a GEM VRAM object 455 * @gbo: The GEM VRAM object to unmap 456 * @map: Kernel virtual address where the VRAM GEM object was mapped 457 * 458 * A call to drm_gem_vram_vunmap() unmaps and unpins a GEM VRAM buffer. See 459 * the documentation for drm_gem_vram_vmap() for more information. 460 */ 461 void drm_gem_vram_vunmap(struct drm_gem_vram_object *gbo, 462 struct iosys_map *map) 463 { 464 dma_resv_assert_held(gbo->bo.base.resv); 465 466 drm_gem_vram_kunmap_locked(gbo, map); 467 drm_gem_vram_unpin_locked(gbo); 468 } 469 EXPORT_SYMBOL(drm_gem_vram_vunmap); 470 471 /** 472 * drm_gem_vram_fill_create_dumb() - Helper for implementing 473 * &struct drm_driver.dumb_create 474 * 475 * @file: the DRM file 476 * @dev: the DRM device 477 * @pg_align: the buffer's alignment in multiples of the page size 478 * @pitch_align: the scanline's alignment in powers of 2 479 * @args: the arguments as provided to 480 * &struct drm_driver.dumb_create 481 * 482 * This helper function fills &struct drm_mode_create_dumb, which is used 483 * by &struct drm_driver.dumb_create. Implementations of this interface 484 * should forwards their arguments to this helper, plus the driver-specific 485 * parameters. 486 * 487 * Returns: 488 * 0 on success, or 489 * a negative error code otherwise. 490 */ 491 int drm_gem_vram_fill_create_dumb(struct drm_file *file, 492 struct drm_device *dev, 493 unsigned long pg_align, 494 unsigned long pitch_align, 495 struct drm_mode_create_dumb *args) 496 { 497 size_t pitch, size; 498 struct drm_gem_vram_object *gbo; 499 int ret; 500 u32 handle; 501 502 pitch = args->width * DIV_ROUND_UP(args->bpp, 8); 503 if (pitch_align) { 504 if (WARN_ON_ONCE(!is_power_of_2(pitch_align))) 505 return -EINVAL; 506 pitch = ALIGN(pitch, pitch_align); 507 } 508 size = pitch * args->height; 509 510 size = roundup(size, PAGE_SIZE); 511 if (!size) 512 return -EINVAL; 513 514 gbo = drm_gem_vram_create(dev, size, pg_align); 515 if (IS_ERR(gbo)) 516 return PTR_ERR(gbo); 517 518 ret = drm_gem_handle_create(file, &gbo->bo.base, &handle); 519 if (ret) 520 goto err_drm_gem_object_put; 521 522 drm_gem_object_put(&gbo->bo.base); 523 524 args->pitch = pitch; 525 args->size = size; 526 args->handle = handle; 527 528 return 0; 529 530 err_drm_gem_object_put: 531 drm_gem_object_put(&gbo->bo.base); 532 return ret; 533 } 534 EXPORT_SYMBOL(drm_gem_vram_fill_create_dumb); 535 536 /* 537 * Helpers for struct ttm_device_funcs 538 */ 539 540 static bool drm_is_gem_vram(struct ttm_buffer_object *bo) 541 { 542 return (bo->destroy == ttm_buffer_object_destroy); 543 } 544 545 static void drm_gem_vram_bo_driver_evict_flags(struct drm_gem_vram_object *gbo, 546 struct ttm_placement *pl) 547 { 548 drm_gem_vram_placement(gbo, DRM_GEM_VRAM_PL_FLAG_SYSTEM); 549 *pl = gbo->placement; 550 } 551 552 static void drm_gem_vram_bo_driver_move_notify(struct drm_gem_vram_object *gbo) 553 { 554 struct ttm_buffer_object *bo = &gbo->bo; 555 struct drm_device *dev = bo->base.dev; 556 557 if (drm_WARN_ON_ONCE(dev, gbo->vmap_use_count)) 558 return; 559 560 ttm_bo_vunmap(bo, &gbo->map); 561 iosys_map_clear(&gbo->map); /* explicitly clear mapping for next vmap call */ 562 } 563 564 static int drm_gem_vram_bo_driver_move(struct drm_gem_vram_object *gbo, 565 bool evict, 566 struct ttm_operation_ctx *ctx, 567 struct ttm_resource *new_mem) 568 { 569 drm_gem_vram_bo_driver_move_notify(gbo); 570 return ttm_bo_move_memcpy(&gbo->bo, ctx, new_mem); 571 } 572 573 /* 574 * Helpers for struct drm_gem_object_funcs 575 */ 576 577 /** 578 * drm_gem_vram_object_free() - Implements &struct drm_gem_object_funcs.free 579 * @gem: GEM object. Refers to &struct drm_gem_vram_object.gem 580 */ 581 static void drm_gem_vram_object_free(struct drm_gem_object *gem) 582 { 583 struct drm_gem_vram_object *gbo = drm_gem_vram_of_gem(gem); 584 585 drm_gem_vram_put(gbo); 586 } 587 588 /* 589 * Helpers for dump buffers 590 */ 591 592 /** 593 * drm_gem_vram_driver_dumb_create() - Implements &struct drm_driver.dumb_create 594 * @file: the DRM file 595 * @dev: the DRM device 596 * @args: the arguments as provided to 597 * &struct drm_driver.dumb_create 598 * 599 * This function requires the driver to use @drm_device.vram_mm for its 600 * instance of VRAM MM. 601 * 602 * Returns: 603 * 0 on success, or 604 * a negative error code otherwise. 605 */ 606 int drm_gem_vram_driver_dumb_create(struct drm_file *file, 607 struct drm_device *dev, 608 struct drm_mode_create_dumb *args) 609 { 610 if (WARN_ONCE(!dev->vram_mm, "VRAM MM not initialized")) 611 return -EINVAL; 612 613 return drm_gem_vram_fill_create_dumb(file, dev, 0, 0, args); 614 } 615 EXPORT_SYMBOL(drm_gem_vram_driver_dumb_create); 616 617 /* 618 * Helpers for struct drm_plane_helper_funcs 619 */ 620 621 static void __drm_gem_vram_plane_helper_cleanup_fb(struct drm_plane *plane, 622 struct drm_plane_state *state, 623 unsigned int num_planes) 624 { 625 struct drm_gem_object *obj; 626 struct drm_gem_vram_object *gbo; 627 struct drm_framebuffer *fb = state->fb; 628 629 while (num_planes) { 630 --num_planes; 631 obj = drm_gem_fb_get_obj(fb, num_planes); 632 if (!obj) 633 continue; 634 gbo = drm_gem_vram_of_gem(obj); 635 drm_gem_vram_unpin(gbo); 636 } 637 } 638 639 /** 640 * drm_gem_vram_plane_helper_prepare_fb() - Implements &struct 641 * drm_plane_helper_funcs.prepare_fb 642 * @plane: a DRM plane 643 * @new_state: the plane's new state 644 * 645 * During plane updates, this function sets the plane's fence and 646 * pins the GEM VRAM objects of the plane's new framebuffer to VRAM. 647 * Call drm_gem_vram_plane_helper_cleanup_fb() to unpin them. 648 * 649 * Returns: 650 * 0 on success, or 651 * a negative errno code otherwise. 652 */ 653 int 654 drm_gem_vram_plane_helper_prepare_fb(struct drm_plane *plane, 655 struct drm_plane_state *new_state) 656 { 657 struct drm_framebuffer *fb = new_state->fb; 658 struct drm_gem_vram_object *gbo; 659 struct drm_gem_object *obj; 660 unsigned int i; 661 int ret; 662 663 if (!fb) 664 return 0; 665 666 for (i = 0; i < fb->format->num_planes; ++i) { 667 obj = drm_gem_fb_get_obj(fb, i); 668 if (!obj) { 669 ret = -EINVAL; 670 goto err_drm_gem_vram_unpin; 671 } 672 gbo = drm_gem_vram_of_gem(obj); 673 ret = drm_gem_vram_pin(gbo, DRM_GEM_VRAM_PL_FLAG_VRAM); 674 if (ret) 675 goto err_drm_gem_vram_unpin; 676 } 677 678 ret = drm_gem_plane_helper_prepare_fb(plane, new_state); 679 if (ret) 680 goto err_drm_gem_vram_unpin; 681 682 return 0; 683 684 err_drm_gem_vram_unpin: 685 __drm_gem_vram_plane_helper_cleanup_fb(plane, new_state, i); 686 return ret; 687 } 688 EXPORT_SYMBOL(drm_gem_vram_plane_helper_prepare_fb); 689 690 /** 691 * drm_gem_vram_plane_helper_cleanup_fb() - Implements &struct 692 * drm_plane_helper_funcs.cleanup_fb 693 * @plane: a DRM plane 694 * @old_state: the plane's old state 695 * 696 * During plane updates, this function unpins the GEM VRAM 697 * objects of the plane's old framebuffer from VRAM. Complements 698 * drm_gem_vram_plane_helper_prepare_fb(). 699 */ 700 void 701 drm_gem_vram_plane_helper_cleanup_fb(struct drm_plane *plane, 702 struct drm_plane_state *old_state) 703 { 704 struct drm_framebuffer *fb = old_state->fb; 705 706 if (!fb) 707 return; 708 709 __drm_gem_vram_plane_helper_cleanup_fb(plane, old_state, fb->format->num_planes); 710 } 711 EXPORT_SYMBOL(drm_gem_vram_plane_helper_cleanup_fb); 712 713 /* 714 * Helpers for struct drm_simple_display_pipe_funcs 715 */ 716 717 /** 718 * drm_gem_vram_simple_display_pipe_prepare_fb() - Implements &struct 719 * drm_simple_display_pipe_funcs.prepare_fb 720 * @pipe: a simple display pipe 721 * @new_state: the plane's new state 722 * 723 * During plane updates, this function pins the GEM VRAM 724 * objects of the plane's new framebuffer to VRAM. Call 725 * drm_gem_vram_simple_display_pipe_cleanup_fb() to unpin them. 726 * 727 * Returns: 728 * 0 on success, or 729 * a negative errno code otherwise. 730 */ 731 int drm_gem_vram_simple_display_pipe_prepare_fb( 732 struct drm_simple_display_pipe *pipe, 733 struct drm_plane_state *new_state) 734 { 735 return drm_gem_vram_plane_helper_prepare_fb(&pipe->plane, new_state); 736 } 737 EXPORT_SYMBOL(drm_gem_vram_simple_display_pipe_prepare_fb); 738 739 /** 740 * drm_gem_vram_simple_display_pipe_cleanup_fb() - Implements &struct 741 * drm_simple_display_pipe_funcs.cleanup_fb 742 * @pipe: a simple display pipe 743 * @old_state: the plane's old state 744 * 745 * During plane updates, this function unpins the GEM VRAM 746 * objects of the plane's old framebuffer from VRAM. Complements 747 * drm_gem_vram_simple_display_pipe_prepare_fb(). 748 */ 749 void drm_gem_vram_simple_display_pipe_cleanup_fb( 750 struct drm_simple_display_pipe *pipe, 751 struct drm_plane_state *old_state) 752 { 753 drm_gem_vram_plane_helper_cleanup_fb(&pipe->plane, old_state); 754 } 755 EXPORT_SYMBOL(drm_gem_vram_simple_display_pipe_cleanup_fb); 756 757 /* 758 * PRIME helpers 759 */ 760 761 /** 762 * drm_gem_vram_object_pin() - Implements &struct drm_gem_object_funcs.pin 763 * @gem: The GEM object to pin 764 * 765 * Returns: 766 * 0 on success, or 767 * a negative errno code otherwise. 768 */ 769 static int drm_gem_vram_object_pin(struct drm_gem_object *gem) 770 { 771 struct drm_gem_vram_object *gbo = drm_gem_vram_of_gem(gem); 772 773 /* Fbdev console emulation is the use case of these PRIME 774 * helpers. This may involve updating a hardware buffer from 775 * a shadow FB. We pin the buffer to it's current location 776 * (either video RAM or system memory) to prevent it from 777 * being relocated during the update operation. If you require 778 * the buffer to be pinned to VRAM, implement a callback that 779 * sets the flags accordingly. 780 */ 781 return drm_gem_vram_pin(gbo, 0); 782 } 783 784 /** 785 * drm_gem_vram_object_unpin() - Implements &struct drm_gem_object_funcs.unpin 786 * @gem: The GEM object to unpin 787 */ 788 static void drm_gem_vram_object_unpin(struct drm_gem_object *gem) 789 { 790 struct drm_gem_vram_object *gbo = drm_gem_vram_of_gem(gem); 791 792 drm_gem_vram_unpin(gbo); 793 } 794 795 /** 796 * drm_gem_vram_object_vmap() - 797 * Implements &struct drm_gem_object_funcs.vmap 798 * @gem: The GEM object to map 799 * @map: Returns the kernel virtual address of the VRAM GEM object's backing 800 * store. 801 * 802 * Returns: 803 * 0 on success, or a negative error code otherwise. 804 */ 805 static int drm_gem_vram_object_vmap(struct drm_gem_object *gem, 806 struct iosys_map *map) 807 { 808 struct drm_gem_vram_object *gbo = drm_gem_vram_of_gem(gem); 809 810 return drm_gem_vram_vmap(gbo, map); 811 } 812 813 /** 814 * drm_gem_vram_object_vunmap() - 815 * Implements &struct drm_gem_object_funcs.vunmap 816 * @gem: The GEM object to unmap 817 * @map: Kernel virtual address where the VRAM GEM object was mapped 818 */ 819 static void drm_gem_vram_object_vunmap(struct drm_gem_object *gem, 820 struct iosys_map *map) 821 { 822 struct drm_gem_vram_object *gbo = drm_gem_vram_of_gem(gem); 823 824 drm_gem_vram_vunmap(gbo, map); 825 } 826 827 /* 828 * GEM object funcs 829 */ 830 831 static const struct drm_gem_object_funcs drm_gem_vram_object_funcs = { 832 .free = drm_gem_vram_object_free, 833 .pin = drm_gem_vram_object_pin, 834 .unpin = drm_gem_vram_object_unpin, 835 .vmap = drm_gem_vram_object_vmap, 836 .vunmap = drm_gem_vram_object_vunmap, 837 .mmap = drm_gem_ttm_mmap, 838 .print_info = drm_gem_ttm_print_info, 839 }; 840 841 /* 842 * VRAM memory manager 843 */ 844 845 /* 846 * TTM TT 847 */ 848 849 static void bo_driver_ttm_tt_destroy(struct ttm_device *bdev, struct ttm_tt *tt) 850 { 851 ttm_tt_fini(tt); 852 kfree(tt); 853 } 854 855 /* 856 * TTM BO device 857 */ 858 859 static struct ttm_tt *bo_driver_ttm_tt_create(struct ttm_buffer_object *bo, 860 uint32_t page_flags) 861 { 862 struct ttm_tt *tt; 863 int ret; 864 865 tt = kzalloc(sizeof(*tt), GFP_KERNEL); 866 if (!tt) 867 return NULL; 868 869 ret = ttm_tt_init(tt, bo, page_flags, ttm_cached, 0); 870 if (ret < 0) 871 goto err_ttm_tt_init; 872 873 return tt; 874 875 err_ttm_tt_init: 876 kfree(tt); 877 return NULL; 878 } 879 880 static void bo_driver_evict_flags(struct ttm_buffer_object *bo, 881 struct ttm_placement *placement) 882 { 883 struct drm_gem_vram_object *gbo; 884 885 /* TTM may pass BOs that are not GEM VRAM BOs. */ 886 if (!drm_is_gem_vram(bo)) 887 return; 888 889 gbo = drm_gem_vram_of_bo(bo); 890 891 drm_gem_vram_bo_driver_evict_flags(gbo, placement); 892 } 893 894 static void bo_driver_delete_mem_notify(struct ttm_buffer_object *bo) 895 { 896 struct drm_gem_vram_object *gbo; 897 898 /* TTM may pass BOs that are not GEM VRAM BOs. */ 899 if (!drm_is_gem_vram(bo)) 900 return; 901 902 gbo = drm_gem_vram_of_bo(bo); 903 904 drm_gem_vram_bo_driver_move_notify(gbo); 905 } 906 907 static int bo_driver_move(struct ttm_buffer_object *bo, 908 bool evict, 909 struct ttm_operation_ctx *ctx, 910 struct ttm_resource *new_mem, 911 struct ttm_place *hop) 912 { 913 struct drm_gem_vram_object *gbo; 914 915 if (!bo->resource) { 916 if (new_mem->mem_type != TTM_PL_SYSTEM) { 917 hop->mem_type = TTM_PL_SYSTEM; 918 hop->flags = TTM_PL_FLAG_TEMPORARY; 919 return -EMULTIHOP; 920 } 921 922 ttm_bo_move_null(bo, new_mem); 923 return 0; 924 } 925 926 gbo = drm_gem_vram_of_bo(bo); 927 928 return drm_gem_vram_bo_driver_move(gbo, evict, ctx, new_mem); 929 } 930 931 static int bo_driver_io_mem_reserve(struct ttm_device *bdev, 932 struct ttm_resource *mem) 933 { 934 struct drm_vram_mm *vmm = drm_vram_mm_of_bdev(bdev); 935 936 switch (mem->mem_type) { 937 case TTM_PL_SYSTEM: /* nothing to do */ 938 break; 939 case TTM_PL_VRAM: 940 mem->bus.offset = (mem->start << PAGE_SHIFT) + vmm->vram_base; 941 mem->bus.is_iomem = true; 942 mem->bus.caching = ttm_write_combined; 943 break; 944 default: 945 return -EINVAL; 946 } 947 948 return 0; 949 } 950 951 static struct ttm_device_funcs bo_driver = { 952 .ttm_tt_create = bo_driver_ttm_tt_create, 953 .ttm_tt_destroy = bo_driver_ttm_tt_destroy, 954 .eviction_valuable = ttm_bo_eviction_valuable, 955 .evict_flags = bo_driver_evict_flags, 956 .move = bo_driver_move, 957 .delete_mem_notify = bo_driver_delete_mem_notify, 958 .io_mem_reserve = bo_driver_io_mem_reserve, 959 }; 960 961 /* 962 * struct drm_vram_mm 963 */ 964 965 static int drm_vram_mm_debugfs(struct seq_file *m, void *data) 966 { 967 struct drm_debugfs_entry *entry = m->private; 968 struct drm_vram_mm *vmm = entry->dev->vram_mm; 969 struct ttm_resource_manager *man = ttm_manager_type(&vmm->bdev, TTM_PL_VRAM); 970 struct drm_printer p = drm_seq_file_printer(m); 971 972 ttm_resource_manager_debug(man, &p); 973 return 0; 974 } 975 976 static const struct drm_debugfs_info drm_vram_mm_debugfs_list[] = { 977 { "vram-mm", drm_vram_mm_debugfs, 0, NULL }, 978 }; 979 980 /** 981 * drm_vram_mm_debugfs_init() - Register VRAM MM debugfs file. 982 * 983 * @minor: drm minor device. 984 * 985 */ 986 void drm_vram_mm_debugfs_init(struct drm_minor *minor) 987 { 988 drm_debugfs_add_files(minor->dev, drm_vram_mm_debugfs_list, 989 ARRAY_SIZE(drm_vram_mm_debugfs_list)); 990 } 991 EXPORT_SYMBOL(drm_vram_mm_debugfs_init); 992 993 static int drm_vram_mm_init(struct drm_vram_mm *vmm, struct drm_device *dev, 994 uint64_t vram_base, size_t vram_size) 995 { 996 int ret; 997 998 vmm->vram_base = vram_base; 999 vmm->vram_size = vram_size; 1000 1001 ret = ttm_device_init(&vmm->bdev, &bo_driver, dev->dev, 1002 dev->anon_inode->i_mapping, 1003 dev->vma_offset_manager, 1004 false, true); 1005 if (ret) 1006 return ret; 1007 1008 ret = ttm_range_man_init(&vmm->bdev, TTM_PL_VRAM, 1009 false, vram_size >> PAGE_SHIFT); 1010 if (ret) 1011 return ret; 1012 1013 return 0; 1014 } 1015 1016 static void drm_vram_mm_cleanup(struct drm_vram_mm *vmm) 1017 { 1018 ttm_range_man_fini(&vmm->bdev, TTM_PL_VRAM); 1019 ttm_device_fini(&vmm->bdev); 1020 } 1021 1022 /* 1023 * Helpers for integration with struct drm_device 1024 */ 1025 1026 static struct drm_vram_mm *drm_vram_helper_alloc_mm(struct drm_device *dev, uint64_t vram_base, 1027 size_t vram_size) 1028 { 1029 int ret; 1030 1031 if (WARN_ON(dev->vram_mm)) 1032 return dev->vram_mm; 1033 1034 dev->vram_mm = kzalloc(sizeof(*dev->vram_mm), GFP_KERNEL); 1035 if (!dev->vram_mm) 1036 return ERR_PTR(-ENOMEM); 1037 1038 ret = drm_vram_mm_init(dev->vram_mm, dev, vram_base, vram_size); 1039 if (ret) 1040 goto err_kfree; 1041 1042 return dev->vram_mm; 1043 1044 err_kfree: 1045 kfree(dev->vram_mm); 1046 dev->vram_mm = NULL; 1047 return ERR_PTR(ret); 1048 } 1049 1050 static void drm_vram_helper_release_mm(struct drm_device *dev) 1051 { 1052 if (!dev->vram_mm) 1053 return; 1054 1055 drm_vram_mm_cleanup(dev->vram_mm); 1056 kfree(dev->vram_mm); 1057 dev->vram_mm = NULL; 1058 } 1059 1060 static void drm_vram_mm_release(struct drm_device *dev, void *ptr) 1061 { 1062 drm_vram_helper_release_mm(dev); 1063 } 1064 1065 /** 1066 * drmm_vram_helper_init - Initializes a device's instance of 1067 * &struct drm_vram_mm 1068 * @dev: the DRM device 1069 * @vram_base: the base address of the video memory 1070 * @vram_size: the size of the video memory in bytes 1071 * 1072 * Creates a new instance of &struct drm_vram_mm and stores it in 1073 * struct &drm_device.vram_mm. The instance is auto-managed and cleaned 1074 * up as part of device cleanup. Calling this function multiple times 1075 * will generate an error message. 1076 * 1077 * Returns: 1078 * 0 on success, or a negative errno code otherwise. 1079 */ 1080 int drmm_vram_helper_init(struct drm_device *dev, uint64_t vram_base, 1081 size_t vram_size) 1082 { 1083 struct drm_vram_mm *vram_mm; 1084 1085 if (drm_WARN_ON_ONCE(dev, dev->vram_mm)) 1086 return 0; 1087 1088 vram_mm = drm_vram_helper_alloc_mm(dev, vram_base, vram_size); 1089 if (IS_ERR(vram_mm)) 1090 return PTR_ERR(vram_mm); 1091 return drmm_add_action_or_reset(dev, drm_vram_mm_release, NULL); 1092 } 1093 EXPORT_SYMBOL(drmm_vram_helper_init); 1094 1095 /* 1096 * Mode-config helpers 1097 */ 1098 1099 static enum drm_mode_status 1100 drm_vram_helper_mode_valid_internal(struct drm_device *dev, 1101 const struct drm_display_mode *mode, 1102 unsigned long max_bpp) 1103 { 1104 struct drm_vram_mm *vmm = dev->vram_mm; 1105 unsigned long fbsize, fbpages, max_fbpages; 1106 1107 if (WARN_ON(!dev->vram_mm)) 1108 return MODE_BAD; 1109 1110 max_fbpages = (vmm->vram_size / 2) >> PAGE_SHIFT; 1111 1112 fbsize = mode->hdisplay * mode->vdisplay * max_bpp; 1113 fbpages = DIV_ROUND_UP(fbsize, PAGE_SIZE); 1114 1115 if (fbpages > max_fbpages) 1116 return MODE_MEM; 1117 1118 return MODE_OK; 1119 } 1120 1121 /** 1122 * drm_vram_helper_mode_valid - Tests if a display mode's 1123 * framebuffer fits into the available video memory. 1124 * @dev: the DRM device 1125 * @mode: the mode to test 1126 * 1127 * This function tests if enough video memory is available for using the 1128 * specified display mode. Atomic modesetting requires importing the 1129 * designated framebuffer into video memory before evicting the active 1130 * one. Hence, any framebuffer may consume at most half of the available 1131 * VRAM. Display modes that require a larger framebuffer can not be used, 1132 * even if the CRTC does support them. Each framebuffer is assumed to 1133 * have 32-bit color depth. 1134 * 1135 * Note: 1136 * The function can only test if the display mode is supported in 1137 * general. If there are too many framebuffers pinned to video memory, 1138 * a display mode may still not be usable in practice. The color depth of 1139 * 32-bit fits all current use case. A more flexible test can be added 1140 * when necessary. 1141 * 1142 * Returns: 1143 * MODE_OK if the display mode is supported, or an error code of type 1144 * enum drm_mode_status otherwise. 1145 */ 1146 enum drm_mode_status 1147 drm_vram_helper_mode_valid(struct drm_device *dev, 1148 const struct drm_display_mode *mode) 1149 { 1150 static const unsigned long max_bpp = 4; /* DRM_FORMAT_XRGB8888 */ 1151 1152 return drm_vram_helper_mode_valid_internal(dev, mode, max_bpp); 1153 } 1154 EXPORT_SYMBOL(drm_vram_helper_mode_valid); 1155 1156 MODULE_DESCRIPTION("DRM VRAM memory-management helpers"); 1157 MODULE_LICENSE("GPL"); 1158