xref: /linux/drivers/gpu/drm/xe/xe_bo.c (revision 72c181399b01bb4836d1fabaa9f5f6438c82178e)
1 // SPDX-License-Identifier: MIT
2 /*
3  * Copyright © 2021 Intel Corporation
4  */
5 
6 #include "xe_bo.h"
7 
8 #include <linux/dma-buf.h>
9 #include <linux/nospec.h>
10 
11 #include <drm/drm_drv.h>
12 #include <drm/drm_gem_ttm_helper.h>
13 #include <drm/drm_managed.h>
14 #include <drm/ttm/ttm_backup.h>
15 #include <drm/ttm/ttm_device.h>
16 #include <drm/ttm/ttm_placement.h>
17 #include <drm/ttm/ttm_tt.h>
18 #include <uapi/drm/xe_drm.h>
19 
20 #include <kunit/static_stub.h>
21 
22 #include <trace/events/gpu_mem.h>
23 
24 #include "xe_device.h"
25 #include "xe_dma_buf.h"
26 #include "xe_drm_client.h"
27 #include "xe_ggtt.h"
28 #include "xe_gt.h"
29 #include "xe_map.h"
30 #include "xe_migrate.h"
31 #include "xe_pm.h"
32 #include "xe_preempt_fence.h"
33 #include "xe_pxp.h"
34 #include "xe_res_cursor.h"
35 #include "xe_shrinker.h"
36 #include "xe_sriov_vf_ccs.h"
37 #include "xe_trace_bo.h"
38 #include "xe_ttm_stolen_mgr.h"
39 #include "xe_vm.h"
40 #include "xe_vram_types.h"
41 
42 const char *const xe_mem_type_to_name[TTM_NUM_MEM_TYPES]  = {
43 	[XE_PL_SYSTEM] = "system",
44 	[XE_PL_TT] = "gtt",
45 	[XE_PL_VRAM0] = "vram0",
46 	[XE_PL_VRAM1] = "vram1",
47 	[XE_PL_STOLEN] = "stolen"
48 };
49 
50 static const struct ttm_place sys_placement_flags = {
51 	.fpfn = 0,
52 	.lpfn = 0,
53 	.mem_type = XE_PL_SYSTEM,
54 	.flags = 0,
55 };
56 
57 static struct ttm_placement sys_placement = {
58 	.num_placement = 1,
59 	.placement = &sys_placement_flags,
60 };
61 
62 static struct ttm_placement purge_placement;
63 
64 static const struct ttm_place tt_placement_flags[] = {
65 	{
66 		.fpfn = 0,
67 		.lpfn = 0,
68 		.mem_type = XE_PL_TT,
69 		.flags = TTM_PL_FLAG_DESIRED,
70 	},
71 	{
72 		.fpfn = 0,
73 		.lpfn = 0,
74 		.mem_type = XE_PL_SYSTEM,
75 		.flags = TTM_PL_FLAG_FALLBACK,
76 	}
77 };
78 
79 static struct ttm_placement tt_placement = {
80 	.num_placement = 2,
81 	.placement = tt_placement_flags,
82 };
83 
mem_type_is_vram(u32 mem_type)84 bool mem_type_is_vram(u32 mem_type)
85 {
86 	return mem_type >= XE_PL_VRAM0 && mem_type != XE_PL_STOLEN;
87 }
88 
resource_is_stolen_vram(struct xe_device * xe,struct ttm_resource * res)89 static bool resource_is_stolen_vram(struct xe_device *xe, struct ttm_resource *res)
90 {
91 	return res->mem_type == XE_PL_STOLEN && IS_DGFX(xe);
92 }
93 
resource_is_vram(struct ttm_resource * res)94 static bool resource_is_vram(struct ttm_resource *res)
95 {
96 	return mem_type_is_vram(res->mem_type);
97 }
98 
xe_bo_is_vram(struct xe_bo * bo)99 bool xe_bo_is_vram(struct xe_bo *bo)
100 {
101 	return resource_is_vram(bo->ttm.resource) ||
102 		resource_is_stolen_vram(xe_bo_device(bo), bo->ttm.resource);
103 }
104 
xe_bo_is_stolen(struct xe_bo * bo)105 bool xe_bo_is_stolen(struct xe_bo *bo)
106 {
107 	return bo->ttm.resource->mem_type == XE_PL_STOLEN;
108 }
109 
110 /**
111  * xe_bo_has_single_placement - check if BO is placed only in one memory location
112  * @bo: The BO
113  *
114  * This function checks whether a given BO is placed in only one memory location.
115  *
116  * Returns: true if the BO is placed in a single memory location, false otherwise.
117  *
118  */
xe_bo_has_single_placement(struct xe_bo * bo)119 bool xe_bo_has_single_placement(struct xe_bo *bo)
120 {
121 	return bo->placement.num_placement == 1;
122 }
123 
124 /**
125  * xe_bo_is_stolen_devmem - check if BO is of stolen type accessed via PCI BAR
126  * @bo: The BO
127  *
128  * The stolen memory is accessed through the PCI BAR for both DGFX and some
129  * integrated platforms that have a dedicated bit in the PTE for devmem (DM).
130  *
131  * Returns: true if it's stolen memory accessed via PCI BAR, false otherwise.
132  */
xe_bo_is_stolen_devmem(struct xe_bo * bo)133 bool xe_bo_is_stolen_devmem(struct xe_bo *bo)
134 {
135 	return xe_bo_is_stolen(bo) &&
136 		GRAPHICS_VERx100(xe_bo_device(bo)) >= 1270;
137 }
138 
139 /**
140  * xe_bo_is_vm_bound - check if BO has any mappings through VM_BIND
141  * @bo: The BO
142  *
143  * Check if a given bo is bound through VM_BIND. This requires the
144  * reservation lock for the BO to be held.
145  *
146  * Returns: boolean
147  */
xe_bo_is_vm_bound(struct xe_bo * bo)148 bool xe_bo_is_vm_bound(struct xe_bo *bo)
149 {
150 	xe_bo_assert_held(bo);
151 
152 	return !list_empty(&bo->ttm.base.gpuva.list);
153 }
154 
xe_bo_is_user(struct xe_bo * bo)155 static bool xe_bo_is_user(struct xe_bo *bo)
156 {
157 	return bo->flags & XE_BO_FLAG_USER;
158 }
159 
160 static struct xe_migrate *
mem_type_to_migrate(struct xe_device * xe,u32 mem_type)161 mem_type_to_migrate(struct xe_device *xe, u32 mem_type)
162 {
163 	struct xe_tile *tile;
164 
165 	xe_assert(xe, mem_type == XE_PL_STOLEN || mem_type_is_vram(mem_type));
166 	tile = &xe->tiles[mem_type == XE_PL_STOLEN ? 0 : (mem_type - XE_PL_VRAM0)];
167 	return tile->migrate;
168 }
169 
res_to_mem_region(struct ttm_resource * res)170 static struct xe_vram_region *res_to_mem_region(struct ttm_resource *res)
171 {
172 	struct xe_device *xe = ttm_to_xe_device(res->bo->bdev);
173 	struct ttm_resource_manager *mgr;
174 	struct xe_ttm_vram_mgr *vram_mgr;
175 
176 	xe_assert(xe, resource_is_vram(res));
177 	mgr = ttm_manager_type(&xe->ttm, res->mem_type);
178 	vram_mgr = to_xe_ttm_vram_mgr(mgr);
179 
180 	return container_of(vram_mgr, struct xe_vram_region, ttm);
181 }
182 
try_add_system(struct xe_device * xe,struct xe_bo * bo,u32 bo_flags,u32 * c)183 static void try_add_system(struct xe_device *xe, struct xe_bo *bo,
184 			   u32 bo_flags, u32 *c)
185 {
186 	if (bo_flags & XE_BO_FLAG_SYSTEM) {
187 		xe_assert(xe, *c < ARRAY_SIZE(bo->placements));
188 
189 		bo->placements[*c] = (struct ttm_place) {
190 			.mem_type = XE_PL_TT,
191 			.flags = (bo_flags & XE_BO_FLAG_VRAM_MASK) ?
192 			TTM_PL_FLAG_FALLBACK : 0,
193 		};
194 		*c += 1;
195 	}
196 }
197 
force_contiguous(u32 bo_flags)198 static bool force_contiguous(u32 bo_flags)
199 {
200 	if (bo_flags & XE_BO_FLAG_STOLEN)
201 		return true; /* users expect this */
202 	else if (bo_flags & XE_BO_FLAG_PINNED &&
203 		 !(bo_flags & XE_BO_FLAG_PINNED_LATE_RESTORE))
204 		return true; /* needs vmap */
205 	else if (bo_flags & XE_BO_FLAG_CPU_ADDR_MIRROR)
206 		return true;
207 
208 	/*
209 	 * For eviction / restore on suspend / resume objects pinned in VRAM
210 	 * must be contiguous, also only contiguous BOs support xe_bo_vmap.
211 	 */
212 	return bo_flags & XE_BO_FLAG_NEEDS_CPU_ACCESS &&
213 	       bo_flags & XE_BO_FLAG_PINNED;
214 }
215 
add_vram(struct xe_device * xe,struct xe_bo * bo,struct ttm_place * places,u32 bo_flags,u32 mem_type,u32 * c)216 static void add_vram(struct xe_device *xe, struct xe_bo *bo,
217 		     struct ttm_place *places, u32 bo_flags, u32 mem_type, u32 *c)
218 {
219 	struct ttm_place place = { .mem_type = mem_type };
220 	struct ttm_resource_manager *mgr = ttm_manager_type(&xe->ttm, mem_type);
221 	struct xe_ttm_vram_mgr *vram_mgr = to_xe_ttm_vram_mgr(mgr);
222 
223 	struct xe_vram_region *vram;
224 	u64 io_size;
225 
226 	xe_assert(xe, *c < ARRAY_SIZE(bo->placements));
227 
228 	vram = container_of(vram_mgr, struct xe_vram_region, ttm);
229 	xe_assert(xe, vram && vram->usable_size);
230 	io_size = vram->io_size;
231 
232 	if (force_contiguous(bo_flags))
233 		place.flags |= TTM_PL_FLAG_CONTIGUOUS;
234 
235 	if (io_size < vram->usable_size) {
236 		if (bo_flags & XE_BO_FLAG_NEEDS_CPU_ACCESS) {
237 			place.fpfn = 0;
238 			place.lpfn = io_size >> PAGE_SHIFT;
239 		} else {
240 			place.flags |= TTM_PL_FLAG_TOPDOWN;
241 		}
242 	}
243 	places[*c] = place;
244 	*c += 1;
245 }
246 
try_add_vram(struct xe_device * xe,struct xe_bo * bo,u32 bo_flags,u32 * c)247 static void try_add_vram(struct xe_device *xe, struct xe_bo *bo,
248 			 u32 bo_flags, u32 *c)
249 {
250 	if (bo_flags & XE_BO_FLAG_VRAM0)
251 		add_vram(xe, bo, bo->placements, bo_flags, XE_PL_VRAM0, c);
252 	if (bo_flags & XE_BO_FLAG_VRAM1)
253 		add_vram(xe, bo, bo->placements, bo_flags, XE_PL_VRAM1, c);
254 }
255 
try_add_stolen(struct xe_device * xe,struct xe_bo * bo,u32 bo_flags,u32 * c)256 static void try_add_stolen(struct xe_device *xe, struct xe_bo *bo,
257 			   u32 bo_flags, u32 *c)
258 {
259 	if (bo_flags & XE_BO_FLAG_STOLEN) {
260 		xe_assert(xe, *c < ARRAY_SIZE(bo->placements));
261 
262 		bo->placements[*c] = (struct ttm_place) {
263 			.mem_type = XE_PL_STOLEN,
264 			.flags = force_contiguous(bo_flags) ?
265 				TTM_PL_FLAG_CONTIGUOUS : 0,
266 		};
267 		*c += 1;
268 	}
269 }
270 
__xe_bo_placement_for_flags(struct xe_device * xe,struct xe_bo * bo,u32 bo_flags)271 static int __xe_bo_placement_for_flags(struct xe_device *xe, struct xe_bo *bo,
272 				       u32 bo_flags)
273 {
274 	u32 c = 0;
275 
276 	try_add_vram(xe, bo, bo_flags, &c);
277 	try_add_system(xe, bo, bo_flags, &c);
278 	try_add_stolen(xe, bo, bo_flags, &c);
279 
280 	if (!c)
281 		return -EINVAL;
282 
283 	bo->placement = (struct ttm_placement) {
284 		.num_placement = c,
285 		.placement = bo->placements,
286 	};
287 
288 	return 0;
289 }
290 
xe_bo_placement_for_flags(struct xe_device * xe,struct xe_bo * bo,u32 bo_flags)291 int xe_bo_placement_for_flags(struct xe_device *xe, struct xe_bo *bo,
292 			      u32 bo_flags)
293 {
294 	xe_bo_assert_held(bo);
295 	return __xe_bo_placement_for_flags(xe, bo, bo_flags);
296 }
297 
xe_evict_flags(struct ttm_buffer_object * tbo,struct ttm_placement * placement)298 static void xe_evict_flags(struct ttm_buffer_object *tbo,
299 			   struct ttm_placement *placement)
300 {
301 	struct xe_device *xe = container_of(tbo->bdev, typeof(*xe), ttm);
302 	bool device_unplugged = drm_dev_is_unplugged(&xe->drm);
303 	struct xe_bo *bo;
304 
305 	if (!xe_bo_is_xe_bo(tbo)) {
306 		/* Don't handle scatter gather BOs */
307 		if (tbo->type == ttm_bo_type_sg) {
308 			placement->num_placement = 0;
309 			return;
310 		}
311 
312 		*placement = device_unplugged ? purge_placement : sys_placement;
313 		return;
314 	}
315 
316 	bo = ttm_to_xe_bo(tbo);
317 	if (bo->flags & XE_BO_FLAG_CPU_ADDR_MIRROR) {
318 		*placement = sys_placement;
319 		return;
320 	}
321 
322 	if (device_unplugged && !tbo->base.dma_buf) {
323 		*placement = purge_placement;
324 		return;
325 	}
326 
327 	/*
328 	 * For xe, sg bos that are evicted to system just triggers a
329 	 * rebind of the sg list upon subsequent validation to XE_PL_TT.
330 	 */
331 	switch (tbo->resource->mem_type) {
332 	case XE_PL_VRAM0:
333 	case XE_PL_VRAM1:
334 	case XE_PL_STOLEN:
335 		*placement = tt_placement;
336 		break;
337 	case XE_PL_TT:
338 	default:
339 		*placement = sys_placement;
340 		break;
341 	}
342 }
343 
344 /* struct xe_ttm_tt - Subclassed ttm_tt for xe */
345 struct xe_ttm_tt {
346 	struct ttm_tt ttm;
347 	struct sg_table sgt;
348 	struct sg_table *sg;
349 	/** @purgeable: Whether the content of the pages of @ttm is purgeable. */
350 	bool purgeable;
351 };
352 
xe_tt_map_sg(struct xe_device * xe,struct ttm_tt * tt)353 static int xe_tt_map_sg(struct xe_device *xe, struct ttm_tt *tt)
354 {
355 	struct xe_ttm_tt *xe_tt = container_of(tt, struct xe_ttm_tt, ttm);
356 	unsigned long num_pages = tt->num_pages;
357 	int ret;
358 
359 	XE_WARN_ON((tt->page_flags & TTM_TT_FLAG_EXTERNAL) &&
360 		   !(tt->page_flags & TTM_TT_FLAG_EXTERNAL_MAPPABLE));
361 
362 	if (xe_tt->sg)
363 		return 0;
364 
365 	ret = sg_alloc_table_from_pages_segment(&xe_tt->sgt, tt->pages,
366 						num_pages, 0,
367 						(u64)num_pages << PAGE_SHIFT,
368 						xe_sg_segment_size(xe->drm.dev),
369 						GFP_KERNEL);
370 	if (ret)
371 		return ret;
372 
373 	xe_tt->sg = &xe_tt->sgt;
374 	ret = dma_map_sgtable(xe->drm.dev, xe_tt->sg, DMA_BIDIRECTIONAL,
375 			      DMA_ATTR_SKIP_CPU_SYNC);
376 	if (ret) {
377 		sg_free_table(xe_tt->sg);
378 		xe_tt->sg = NULL;
379 		return ret;
380 	}
381 
382 	return 0;
383 }
384 
xe_tt_unmap_sg(struct xe_device * xe,struct ttm_tt * tt)385 static void xe_tt_unmap_sg(struct xe_device *xe, struct ttm_tt *tt)
386 {
387 	struct xe_ttm_tt *xe_tt = container_of(tt, struct xe_ttm_tt, ttm);
388 
389 	if (xe_tt->sg) {
390 		dma_unmap_sgtable(xe->drm.dev, xe_tt->sg,
391 				  DMA_BIDIRECTIONAL, 0);
392 		sg_free_table(xe_tt->sg);
393 		xe_tt->sg = NULL;
394 	}
395 }
396 
xe_bo_sg(struct xe_bo * bo)397 struct sg_table *xe_bo_sg(struct xe_bo *bo)
398 {
399 	struct ttm_tt *tt = bo->ttm.ttm;
400 	struct xe_ttm_tt *xe_tt = container_of(tt, struct xe_ttm_tt, ttm);
401 
402 	return xe_tt->sg;
403 }
404 
405 /*
406  * Account ttm pages against the device shrinker's shrinkable and
407  * purgeable counts.
408  */
xe_ttm_tt_account_add(struct xe_device * xe,struct ttm_tt * tt)409 static void xe_ttm_tt_account_add(struct xe_device *xe, struct ttm_tt *tt)
410 {
411 	struct xe_ttm_tt *xe_tt = container_of(tt, struct xe_ttm_tt, ttm);
412 
413 	if (xe_tt->purgeable)
414 		xe_shrinker_mod_pages(xe->mem.shrinker, 0, tt->num_pages);
415 	else
416 		xe_shrinker_mod_pages(xe->mem.shrinker, tt->num_pages, 0);
417 }
418 
xe_ttm_tt_account_subtract(struct xe_device * xe,struct ttm_tt * tt)419 static void xe_ttm_tt_account_subtract(struct xe_device *xe, struct ttm_tt *tt)
420 {
421 	struct xe_ttm_tt *xe_tt = container_of(tt, struct xe_ttm_tt, ttm);
422 
423 	if (xe_tt->purgeable)
424 		xe_shrinker_mod_pages(xe->mem.shrinker, 0, -(long)tt->num_pages);
425 	else
426 		xe_shrinker_mod_pages(xe->mem.shrinker, -(long)tt->num_pages, 0);
427 }
428 
update_global_total_pages(struct ttm_device * ttm_dev,long num_pages)429 static void update_global_total_pages(struct ttm_device *ttm_dev,
430 				      long num_pages)
431 {
432 #if IS_ENABLED(CONFIG_TRACE_GPU_MEM)
433 	struct xe_device *xe = ttm_to_xe_device(ttm_dev);
434 	u64 global_total_pages =
435 		atomic64_add_return(num_pages, &xe->global_total_pages);
436 
437 	trace_gpu_mem_total(xe->drm.primary->index, 0,
438 			    global_total_pages << PAGE_SHIFT);
439 #endif
440 }
441 
xe_ttm_tt_create(struct ttm_buffer_object * ttm_bo,u32 page_flags)442 static struct ttm_tt *xe_ttm_tt_create(struct ttm_buffer_object *ttm_bo,
443 				       u32 page_flags)
444 {
445 	struct xe_bo *bo = ttm_to_xe_bo(ttm_bo);
446 	struct xe_device *xe = xe_bo_device(bo);
447 	struct xe_ttm_tt *xe_tt;
448 	struct ttm_tt *tt;
449 	unsigned long extra_pages;
450 	enum ttm_caching caching = ttm_cached;
451 	int err;
452 
453 	xe_tt = kzalloc(sizeof(*xe_tt), GFP_KERNEL);
454 	if (!xe_tt)
455 		return NULL;
456 
457 	tt = &xe_tt->ttm;
458 
459 	extra_pages = 0;
460 	if (xe_bo_needs_ccs_pages(bo))
461 		extra_pages = DIV_ROUND_UP(xe_device_ccs_bytes(xe, xe_bo_size(bo)),
462 					   PAGE_SIZE);
463 
464 	/*
465 	 * DGFX system memory is always WB / ttm_cached, since
466 	 * other caching modes are only supported on x86. DGFX
467 	 * GPU system memory accesses are always coherent with the
468 	 * CPU.
469 	 */
470 	if (!IS_DGFX(xe)) {
471 		switch (bo->cpu_caching) {
472 		case DRM_XE_GEM_CPU_CACHING_WC:
473 			caching = ttm_write_combined;
474 			break;
475 		default:
476 			caching = ttm_cached;
477 			break;
478 		}
479 
480 		WARN_ON((bo->flags & XE_BO_FLAG_USER) && !bo->cpu_caching);
481 
482 		/*
483 		 * Display scanout is always non-coherent with the CPU cache.
484 		 *
485 		 * For Xe_LPG and beyond, PPGTT PTE lookups are also
486 		 * non-coherent and require a CPU:WC mapping.
487 		 */
488 		if ((!bo->cpu_caching && bo->flags & XE_BO_FLAG_SCANOUT) ||
489 		    (xe->info.graphics_verx100 >= 1270 &&
490 		     bo->flags & XE_BO_FLAG_PAGETABLE))
491 			caching = ttm_write_combined;
492 	}
493 
494 	if (bo->flags & XE_BO_FLAG_NEEDS_UC) {
495 		/*
496 		 * Valid only for internally-created buffers only, for
497 		 * which cpu_caching is never initialized.
498 		 */
499 		xe_assert(xe, bo->cpu_caching == 0);
500 		caching = ttm_uncached;
501 	}
502 
503 	if (ttm_bo->type != ttm_bo_type_sg)
504 		page_flags |= TTM_TT_FLAG_EXTERNAL | TTM_TT_FLAG_EXTERNAL_MAPPABLE;
505 
506 	err = ttm_tt_init(tt, &bo->ttm, page_flags, caching, extra_pages);
507 	if (err) {
508 		kfree(xe_tt);
509 		return NULL;
510 	}
511 
512 	if (ttm_bo->type != ttm_bo_type_sg) {
513 		err = ttm_tt_setup_backup(tt);
514 		if (err) {
515 			ttm_tt_fini(tt);
516 			kfree(xe_tt);
517 			return NULL;
518 		}
519 	}
520 
521 	return tt;
522 }
523 
xe_ttm_tt_populate(struct ttm_device * ttm_dev,struct ttm_tt * tt,struct ttm_operation_ctx * ctx)524 static int xe_ttm_tt_populate(struct ttm_device *ttm_dev, struct ttm_tt *tt,
525 			      struct ttm_operation_ctx *ctx)
526 {
527 	struct xe_ttm_tt *xe_tt = container_of(tt, struct xe_ttm_tt, ttm);
528 	int err;
529 
530 	/*
531 	 * dma-bufs are not populated with pages, and the dma-
532 	 * addresses are set up when moved to XE_PL_TT.
533 	 */
534 	if ((tt->page_flags & TTM_TT_FLAG_EXTERNAL) &&
535 	    !(tt->page_flags & TTM_TT_FLAG_EXTERNAL_MAPPABLE))
536 		return 0;
537 
538 	if (ttm_tt_is_backed_up(tt) && !xe_tt->purgeable) {
539 		err = ttm_tt_restore(ttm_dev, tt, ctx);
540 	} else {
541 		ttm_tt_clear_backed_up(tt);
542 		err = ttm_pool_alloc(&ttm_dev->pool, tt, ctx);
543 	}
544 	if (err)
545 		return err;
546 
547 	xe_tt->purgeable = false;
548 	xe_ttm_tt_account_add(ttm_to_xe_device(ttm_dev), tt);
549 	update_global_total_pages(ttm_dev, tt->num_pages);
550 
551 	return 0;
552 }
553 
xe_ttm_tt_unpopulate(struct ttm_device * ttm_dev,struct ttm_tt * tt)554 static void xe_ttm_tt_unpopulate(struct ttm_device *ttm_dev, struct ttm_tt *tt)
555 {
556 	struct xe_device *xe = ttm_to_xe_device(ttm_dev);
557 
558 	if ((tt->page_flags & TTM_TT_FLAG_EXTERNAL) &&
559 	    !(tt->page_flags & TTM_TT_FLAG_EXTERNAL_MAPPABLE))
560 		return;
561 
562 	xe_tt_unmap_sg(xe, tt);
563 
564 	ttm_pool_free(&ttm_dev->pool, tt);
565 	xe_ttm_tt_account_subtract(xe, tt);
566 	update_global_total_pages(ttm_dev, -(long)tt->num_pages);
567 }
568 
xe_ttm_tt_destroy(struct ttm_device * ttm_dev,struct ttm_tt * tt)569 static void xe_ttm_tt_destroy(struct ttm_device *ttm_dev, struct ttm_tt *tt)
570 {
571 	ttm_tt_fini(tt);
572 	kfree(tt);
573 }
574 
xe_ttm_resource_visible(struct ttm_resource * mem)575 static bool xe_ttm_resource_visible(struct ttm_resource *mem)
576 {
577 	struct xe_ttm_vram_mgr_resource *vres =
578 		to_xe_ttm_vram_mgr_resource(mem);
579 
580 	return vres->used_visible_size == mem->size;
581 }
582 
xe_ttm_io_mem_reserve(struct ttm_device * bdev,struct ttm_resource * mem)583 static int xe_ttm_io_mem_reserve(struct ttm_device *bdev,
584 				 struct ttm_resource *mem)
585 {
586 	struct xe_device *xe = ttm_to_xe_device(bdev);
587 
588 	switch (mem->mem_type) {
589 	case XE_PL_SYSTEM:
590 	case XE_PL_TT:
591 		return 0;
592 	case XE_PL_VRAM0:
593 	case XE_PL_VRAM1: {
594 		struct xe_vram_region *vram = res_to_mem_region(mem);
595 
596 		if (!xe_ttm_resource_visible(mem))
597 			return -EINVAL;
598 
599 		mem->bus.offset = mem->start << PAGE_SHIFT;
600 
601 		if (vram->mapping &&
602 		    mem->placement & TTM_PL_FLAG_CONTIGUOUS)
603 			mem->bus.addr = (u8 __force *)vram->mapping +
604 				mem->bus.offset;
605 
606 		mem->bus.offset += vram->io_start;
607 		mem->bus.is_iomem = true;
608 
609 #if  !IS_ENABLED(CONFIG_X86)
610 		mem->bus.caching = ttm_write_combined;
611 #endif
612 		return 0;
613 	} case XE_PL_STOLEN:
614 		return xe_ttm_stolen_io_mem_reserve(xe, mem);
615 	default:
616 		return -EINVAL;
617 	}
618 }
619 
xe_bo_trigger_rebind(struct xe_device * xe,struct xe_bo * bo,const struct ttm_operation_ctx * ctx)620 static int xe_bo_trigger_rebind(struct xe_device *xe, struct xe_bo *bo,
621 				const struct ttm_operation_ctx *ctx)
622 {
623 	struct dma_resv_iter cursor;
624 	struct dma_fence *fence;
625 	struct drm_gem_object *obj = &bo->ttm.base;
626 	struct drm_gpuvm_bo *vm_bo;
627 	bool idle = false;
628 	int ret = 0;
629 
630 	dma_resv_assert_held(bo->ttm.base.resv);
631 
632 	if (!list_empty(&bo->ttm.base.gpuva.list)) {
633 		dma_resv_iter_begin(&cursor, bo->ttm.base.resv,
634 				    DMA_RESV_USAGE_BOOKKEEP);
635 		dma_resv_for_each_fence_unlocked(&cursor, fence)
636 			dma_fence_enable_sw_signaling(fence);
637 		dma_resv_iter_end(&cursor);
638 	}
639 
640 	drm_gem_for_each_gpuvm_bo(vm_bo, obj) {
641 		struct xe_vm *vm = gpuvm_to_vm(vm_bo->vm);
642 		struct drm_gpuva *gpuva;
643 
644 		if (!xe_vm_in_fault_mode(vm)) {
645 			drm_gpuvm_bo_evict(vm_bo, true);
646 			continue;
647 		}
648 
649 		if (!idle) {
650 			long timeout;
651 
652 			if (ctx->no_wait_gpu &&
653 			    !dma_resv_test_signaled(bo->ttm.base.resv,
654 						    DMA_RESV_USAGE_BOOKKEEP))
655 				return -EBUSY;
656 
657 			timeout = dma_resv_wait_timeout(bo->ttm.base.resv,
658 							DMA_RESV_USAGE_BOOKKEEP,
659 							ctx->interruptible,
660 							MAX_SCHEDULE_TIMEOUT);
661 			if (!timeout)
662 				return -ETIME;
663 			if (timeout < 0)
664 				return timeout;
665 
666 			idle = true;
667 		}
668 
669 		drm_gpuvm_bo_for_each_va(gpuva, vm_bo) {
670 			struct xe_vma *vma = gpuva_to_vma(gpuva);
671 
672 			trace_xe_vma_evict(vma);
673 			ret = xe_vm_invalidate_vma(vma);
674 			if (XE_WARN_ON(ret))
675 				return ret;
676 		}
677 	}
678 
679 	return ret;
680 }
681 
682 /*
683  * The dma-buf map_attachment() / unmap_attachment() is hooked up here.
684  * Note that unmapping the attachment is deferred to the next
685  * map_attachment time, or to bo destroy (after idling) whichever comes first.
686  * This is to avoid syncing before unmap_attachment(), assuming that the
687  * caller relies on idling the reservation object before moving the
688  * backing store out. Should that assumption not hold, then we will be able
689  * to unconditionally call unmap_attachment() when moving out to system.
690  */
xe_bo_move_dmabuf(struct ttm_buffer_object * ttm_bo,struct ttm_resource * new_res)691 static int xe_bo_move_dmabuf(struct ttm_buffer_object *ttm_bo,
692 			     struct ttm_resource *new_res)
693 {
694 	struct dma_buf_attachment *attach = ttm_bo->base.import_attach;
695 	struct xe_ttm_tt *xe_tt = container_of(ttm_bo->ttm, struct xe_ttm_tt,
696 					       ttm);
697 	struct xe_device *xe = ttm_to_xe_device(ttm_bo->bdev);
698 	bool device_unplugged = drm_dev_is_unplugged(&xe->drm);
699 	struct sg_table *sg;
700 
701 	xe_assert(xe, attach);
702 	xe_assert(xe, ttm_bo->ttm);
703 
704 	if (device_unplugged && new_res->mem_type == XE_PL_SYSTEM &&
705 	    ttm_bo->sg) {
706 		dma_resv_wait_timeout(ttm_bo->base.resv, DMA_RESV_USAGE_BOOKKEEP,
707 				      false, MAX_SCHEDULE_TIMEOUT);
708 		dma_buf_unmap_attachment(attach, ttm_bo->sg, DMA_BIDIRECTIONAL);
709 		ttm_bo->sg = NULL;
710 	}
711 
712 	if (new_res->mem_type == XE_PL_SYSTEM)
713 		goto out;
714 
715 	if (ttm_bo->sg) {
716 		dma_buf_unmap_attachment(attach, ttm_bo->sg, DMA_BIDIRECTIONAL);
717 		ttm_bo->sg = NULL;
718 	}
719 
720 	sg = dma_buf_map_attachment(attach, DMA_BIDIRECTIONAL);
721 	if (IS_ERR(sg))
722 		return PTR_ERR(sg);
723 
724 	ttm_bo->sg = sg;
725 	xe_tt->sg = sg;
726 
727 out:
728 	ttm_bo_move_null(ttm_bo, new_res);
729 
730 	return 0;
731 }
732 
733 /**
734  * xe_bo_move_notify - Notify subsystems of a pending move
735  * @bo: The buffer object
736  * @ctx: The struct ttm_operation_ctx controlling locking and waits.
737  *
738  * This function notifies subsystems of an upcoming buffer move.
739  * Upon receiving such a notification, subsystems should schedule
740  * halting access to the underlying pages and optionally add a fence
741  * to the buffer object's dma_resv object, that signals when access is
742  * stopped. The caller will wait on all dma_resv fences before
743  * starting the move.
744  *
745  * A subsystem may commence access to the object after obtaining
746  * bindings to the new backing memory under the object lock.
747  *
748  * Return: 0 on success, -EINTR or -ERESTARTSYS if interrupted in fault mode,
749  * negative error code on error.
750  */
xe_bo_move_notify(struct xe_bo * bo,const struct ttm_operation_ctx * ctx)751 static int xe_bo_move_notify(struct xe_bo *bo,
752 			     const struct ttm_operation_ctx *ctx)
753 {
754 	struct ttm_buffer_object *ttm_bo = &bo->ttm;
755 	struct xe_device *xe = ttm_to_xe_device(ttm_bo->bdev);
756 	struct ttm_resource *old_mem = ttm_bo->resource;
757 	u32 old_mem_type = old_mem ? old_mem->mem_type : XE_PL_SYSTEM;
758 	int ret;
759 
760 	/*
761 	 * If this starts to call into many components, consider
762 	 * using a notification chain here.
763 	 */
764 
765 	if (xe_bo_is_pinned(bo))
766 		return -EINVAL;
767 
768 	xe_bo_vunmap(bo);
769 	ret = xe_bo_trigger_rebind(xe, bo, ctx);
770 	if (ret)
771 		return ret;
772 
773 	/* Don't call move_notify() for imported dma-bufs. */
774 	if (ttm_bo->base.dma_buf && !ttm_bo->base.import_attach)
775 		dma_buf_move_notify(ttm_bo->base.dma_buf);
776 
777 	/*
778 	 * TTM has already nuked the mmap for us (see ttm_bo_unmap_virtual),
779 	 * so if we moved from VRAM make sure to unlink this from the userfault
780 	 * tracking.
781 	 */
782 	if (mem_type_is_vram(old_mem_type)) {
783 		mutex_lock(&xe->mem_access.vram_userfault.lock);
784 		if (!list_empty(&bo->vram_userfault_link))
785 			list_del_init(&bo->vram_userfault_link);
786 		mutex_unlock(&xe->mem_access.vram_userfault.lock);
787 	}
788 
789 	return 0;
790 }
791 
xe_bo_move(struct ttm_buffer_object * ttm_bo,bool evict,struct ttm_operation_ctx * ctx,struct ttm_resource * new_mem,struct ttm_place * hop)792 static int xe_bo_move(struct ttm_buffer_object *ttm_bo, bool evict,
793 		      struct ttm_operation_ctx *ctx,
794 		      struct ttm_resource *new_mem,
795 		      struct ttm_place *hop)
796 {
797 	struct xe_device *xe = ttm_to_xe_device(ttm_bo->bdev);
798 	struct xe_bo *bo = ttm_to_xe_bo(ttm_bo);
799 	struct ttm_resource *old_mem = ttm_bo->resource;
800 	u32 old_mem_type = old_mem ? old_mem->mem_type : XE_PL_SYSTEM;
801 	struct ttm_tt *ttm = ttm_bo->ttm;
802 	struct xe_migrate *migrate = NULL;
803 	struct dma_fence *fence;
804 	bool move_lacks_source;
805 	bool tt_has_data;
806 	bool needs_clear;
807 	bool handle_system_ccs = (!IS_DGFX(xe) && xe_bo_needs_ccs_pages(bo) &&
808 				  ttm && ttm_tt_is_populated(ttm)) ? true : false;
809 	int ret = 0;
810 
811 	/* Bo creation path, moving to system or TT. */
812 	if ((!old_mem && ttm) && !handle_system_ccs) {
813 		if (new_mem->mem_type == XE_PL_TT)
814 			ret = xe_tt_map_sg(xe, ttm);
815 		if (!ret)
816 			ttm_bo_move_null(ttm_bo, new_mem);
817 		goto out;
818 	}
819 
820 	if (ttm_bo->type == ttm_bo_type_sg) {
821 		if (new_mem->mem_type == XE_PL_SYSTEM)
822 			ret = xe_bo_move_notify(bo, ctx);
823 		if (!ret)
824 			ret = xe_bo_move_dmabuf(ttm_bo, new_mem);
825 		return ret;
826 	}
827 
828 	tt_has_data = ttm && (ttm_tt_is_populated(ttm) || ttm_tt_is_swapped(ttm));
829 
830 	move_lacks_source = !old_mem || (handle_system_ccs ? (!bo->ccs_cleared) :
831 					 (!mem_type_is_vram(old_mem_type) && !tt_has_data));
832 
833 	needs_clear = (ttm && ttm->page_flags & TTM_TT_FLAG_ZERO_ALLOC) ||
834 		(!ttm && ttm_bo->type == ttm_bo_type_device);
835 
836 	if (new_mem->mem_type == XE_PL_TT) {
837 		ret = xe_tt_map_sg(xe, ttm);
838 		if (ret)
839 			goto out;
840 	}
841 
842 	if ((move_lacks_source && !needs_clear)) {
843 		ttm_bo_move_null(ttm_bo, new_mem);
844 		goto out;
845 	}
846 
847 	if (!move_lacks_source && (bo->flags & XE_BO_FLAG_CPU_ADDR_MIRROR) &&
848 	    new_mem->mem_type == XE_PL_SYSTEM) {
849 		ret = xe_svm_bo_evict(bo);
850 		if (!ret) {
851 			drm_dbg(&xe->drm, "Evict system allocator BO success\n");
852 			ttm_bo_move_null(ttm_bo, new_mem);
853 		} else {
854 			drm_dbg(&xe->drm, "Evict system allocator BO failed=%pe\n",
855 				ERR_PTR(ret));
856 		}
857 
858 		goto out;
859 	}
860 
861 	if (old_mem_type == XE_PL_SYSTEM && new_mem->mem_type == XE_PL_TT && !handle_system_ccs) {
862 		ttm_bo_move_null(ttm_bo, new_mem);
863 		goto out;
864 	}
865 
866 	/*
867 	 * Failed multi-hop where the old_mem is still marked as
868 	 * TTM_PL_FLAG_TEMPORARY, should just be a dummy move.
869 	 */
870 	if (old_mem_type == XE_PL_TT &&
871 	    new_mem->mem_type == XE_PL_TT) {
872 		ttm_bo_move_null(ttm_bo, new_mem);
873 		goto out;
874 	}
875 
876 	if (!move_lacks_source && !xe_bo_is_pinned(bo)) {
877 		ret = xe_bo_move_notify(bo, ctx);
878 		if (ret)
879 			goto out;
880 	}
881 
882 	if (old_mem_type == XE_PL_TT &&
883 	    new_mem->mem_type == XE_PL_SYSTEM) {
884 		long timeout = dma_resv_wait_timeout(ttm_bo->base.resv,
885 						     DMA_RESV_USAGE_BOOKKEEP,
886 						     false,
887 						     MAX_SCHEDULE_TIMEOUT);
888 		if (timeout < 0) {
889 			ret = timeout;
890 			goto out;
891 		}
892 
893 		if (!handle_system_ccs) {
894 			ttm_bo_move_null(ttm_bo, new_mem);
895 			goto out;
896 		}
897 	}
898 
899 	if (!move_lacks_source &&
900 	    ((old_mem_type == XE_PL_SYSTEM && resource_is_vram(new_mem)) ||
901 	     (mem_type_is_vram(old_mem_type) &&
902 	      new_mem->mem_type == XE_PL_SYSTEM))) {
903 		hop->fpfn = 0;
904 		hop->lpfn = 0;
905 		hop->mem_type = XE_PL_TT;
906 		hop->flags = TTM_PL_FLAG_TEMPORARY;
907 		ret = -EMULTIHOP;
908 		goto out;
909 	}
910 
911 	if (bo->tile)
912 		migrate = bo->tile->migrate;
913 	else if (resource_is_vram(new_mem))
914 		migrate = mem_type_to_migrate(xe, new_mem->mem_type);
915 	else if (mem_type_is_vram(old_mem_type))
916 		migrate = mem_type_to_migrate(xe, old_mem_type);
917 	else
918 		migrate = xe->tiles[0].migrate;
919 
920 	xe_assert(xe, migrate);
921 	trace_xe_bo_move(bo, new_mem->mem_type, old_mem_type, move_lacks_source);
922 	if (xe_rpm_reclaim_safe(xe)) {
923 		/*
924 		 * We might be called through swapout in the validation path of
925 		 * another TTM device, so acquire rpm here.
926 		 */
927 		xe_pm_runtime_get(xe);
928 	} else {
929 		drm_WARN_ON(&xe->drm, handle_system_ccs);
930 		xe_pm_runtime_get_noresume(xe);
931 	}
932 
933 	if (move_lacks_source) {
934 		u32 flags = 0;
935 
936 		if (mem_type_is_vram(new_mem->mem_type))
937 			flags |= XE_MIGRATE_CLEAR_FLAG_FULL;
938 		else if (handle_system_ccs)
939 			flags |= XE_MIGRATE_CLEAR_FLAG_CCS_DATA;
940 
941 		fence = xe_migrate_clear(migrate, bo, new_mem, flags);
942 	} else {
943 		fence = xe_migrate_copy(migrate, bo, bo, old_mem, new_mem,
944 					handle_system_ccs);
945 	}
946 	if (IS_ERR(fence)) {
947 		ret = PTR_ERR(fence);
948 		xe_pm_runtime_put(xe);
949 		goto out;
950 	}
951 	if (!move_lacks_source) {
952 		ret = ttm_bo_move_accel_cleanup(ttm_bo, fence, evict, true,
953 						new_mem);
954 		if (ret) {
955 			dma_fence_wait(fence, false);
956 			ttm_bo_move_null(ttm_bo, new_mem);
957 			ret = 0;
958 		}
959 	} else {
960 		/*
961 		 * ttm_bo_move_accel_cleanup() may blow up if
962 		 * bo->resource == NULL, so just attach the
963 		 * fence and set the new resource.
964 		 */
965 		dma_resv_add_fence(ttm_bo->base.resv, fence,
966 				   DMA_RESV_USAGE_KERNEL);
967 		ttm_bo_move_null(ttm_bo, new_mem);
968 	}
969 
970 	dma_fence_put(fence);
971 	xe_pm_runtime_put(xe);
972 
973 	/*
974 	 * CCS meta data is migrated from TT -> SMEM. So, let us detach the
975 	 * BBs from BO as it is no longer needed.
976 	 */
977 	if (IS_VF_CCS_READY(xe) && old_mem_type == XE_PL_TT &&
978 	    new_mem->mem_type == XE_PL_SYSTEM)
979 		xe_sriov_vf_ccs_detach_bo(bo);
980 
981 	if (IS_VF_CCS_READY(xe) &&
982 	    ((move_lacks_source && new_mem->mem_type == XE_PL_TT) ||
983 	     (old_mem_type == XE_PL_SYSTEM && new_mem->mem_type == XE_PL_TT)) &&
984 	    handle_system_ccs)
985 		ret = xe_sriov_vf_ccs_attach_bo(bo);
986 
987 out:
988 	if ((!ttm_bo->resource || ttm_bo->resource->mem_type == XE_PL_SYSTEM) &&
989 	    ttm_bo->ttm) {
990 		long timeout = dma_resv_wait_timeout(ttm_bo->base.resv,
991 						     DMA_RESV_USAGE_KERNEL,
992 						     false,
993 						     MAX_SCHEDULE_TIMEOUT);
994 		if (timeout < 0)
995 			ret = timeout;
996 
997 		if (IS_VF_CCS_READY(xe))
998 			xe_sriov_vf_ccs_detach_bo(bo);
999 
1000 		xe_tt_unmap_sg(xe, ttm_bo->ttm);
1001 	}
1002 
1003 	return ret;
1004 }
1005 
xe_bo_shrink_purge(struct ttm_operation_ctx * ctx,struct ttm_buffer_object * bo,unsigned long * scanned)1006 static long xe_bo_shrink_purge(struct ttm_operation_ctx *ctx,
1007 			       struct ttm_buffer_object *bo,
1008 			       unsigned long *scanned)
1009 {
1010 	struct xe_device *xe = ttm_to_xe_device(bo->bdev);
1011 	long lret;
1012 
1013 	/* Fake move to system, without copying data. */
1014 	if (bo->resource->mem_type != XE_PL_SYSTEM) {
1015 		struct ttm_resource *new_resource;
1016 
1017 		lret = ttm_bo_wait_ctx(bo, ctx);
1018 		if (lret)
1019 			return lret;
1020 
1021 		lret = ttm_bo_mem_space(bo, &sys_placement, &new_resource, ctx);
1022 		if (lret)
1023 			return lret;
1024 
1025 		xe_tt_unmap_sg(xe, bo->ttm);
1026 		ttm_bo_move_null(bo, new_resource);
1027 	}
1028 
1029 	*scanned += bo->ttm->num_pages;
1030 	lret = ttm_bo_shrink(ctx, bo, (struct ttm_bo_shrink_flags)
1031 			     {.purge = true,
1032 			      .writeback = false,
1033 			      .allow_move = false});
1034 
1035 	if (lret > 0)
1036 		xe_ttm_tt_account_subtract(xe, bo->ttm);
1037 
1038 	return lret;
1039 }
1040 
1041 static bool
xe_bo_eviction_valuable(struct ttm_buffer_object * bo,const struct ttm_place * place)1042 xe_bo_eviction_valuable(struct ttm_buffer_object *bo, const struct ttm_place *place)
1043 {
1044 	struct drm_gpuvm_bo *vm_bo;
1045 
1046 	if (!ttm_bo_eviction_valuable(bo, place))
1047 		return false;
1048 
1049 	if (!xe_bo_is_xe_bo(bo))
1050 		return true;
1051 
1052 	drm_gem_for_each_gpuvm_bo(vm_bo, &bo->base) {
1053 		if (xe_vm_is_validating(gpuvm_to_vm(vm_bo->vm)))
1054 			return false;
1055 	}
1056 
1057 	return true;
1058 }
1059 
1060 /**
1061  * xe_bo_shrink() - Try to shrink an xe bo.
1062  * @ctx: The struct ttm_operation_ctx used for shrinking.
1063  * @bo: The TTM buffer object whose pages to shrink.
1064  * @flags: Flags governing the shrink behaviour.
1065  * @scanned: Pointer to a counter of the number of pages
1066  * attempted to shrink.
1067  *
1068  * Try to shrink- or purge a bo, and if it succeeds, unmap dma.
1069  * Note that we need to be able to handle also non xe bos
1070  * (ghost bos), but only if the struct ttm_tt is embedded in
1071  * a struct xe_ttm_tt. When the function attempts to shrink
1072  * the pages of a buffer object, The value pointed to by @scanned
1073  * is updated.
1074  *
1075  * Return: The number of pages shrunken or purged, or negative error
1076  * code on failure.
1077  */
xe_bo_shrink(struct ttm_operation_ctx * ctx,struct ttm_buffer_object * bo,const struct xe_bo_shrink_flags flags,unsigned long * scanned)1078 long xe_bo_shrink(struct ttm_operation_ctx *ctx, struct ttm_buffer_object *bo,
1079 		  const struct xe_bo_shrink_flags flags,
1080 		  unsigned long *scanned)
1081 {
1082 	struct ttm_tt *tt = bo->ttm;
1083 	struct xe_ttm_tt *xe_tt = container_of(tt, struct xe_ttm_tt, ttm);
1084 	struct ttm_place place = {.mem_type = bo->resource->mem_type};
1085 	struct xe_bo *xe_bo = ttm_to_xe_bo(bo);
1086 	struct xe_device *xe = ttm_to_xe_device(bo->bdev);
1087 	bool needs_rpm;
1088 	long lret = 0L;
1089 
1090 	if (!(tt->page_flags & TTM_TT_FLAG_EXTERNAL_MAPPABLE) ||
1091 	    (flags.purge && !xe_tt->purgeable))
1092 		return -EBUSY;
1093 
1094 	if (!xe_bo_eviction_valuable(bo, &place))
1095 		return -EBUSY;
1096 
1097 	if (!xe_bo_is_xe_bo(bo) || !xe_bo_get_unless_zero(xe_bo))
1098 		return xe_bo_shrink_purge(ctx, bo, scanned);
1099 
1100 	if (xe_tt->purgeable) {
1101 		if (bo->resource->mem_type != XE_PL_SYSTEM)
1102 			lret = xe_bo_move_notify(xe_bo, ctx);
1103 		if (!lret)
1104 			lret = xe_bo_shrink_purge(ctx, bo, scanned);
1105 		goto out_unref;
1106 	}
1107 
1108 	/* System CCS needs gpu copy when moving PL_TT -> PL_SYSTEM */
1109 	needs_rpm = (!IS_DGFX(xe) && bo->resource->mem_type != XE_PL_SYSTEM &&
1110 		     xe_bo_needs_ccs_pages(xe_bo));
1111 	if (needs_rpm && !xe_pm_runtime_get_if_active(xe))
1112 		goto out_unref;
1113 
1114 	*scanned += tt->num_pages;
1115 	lret = ttm_bo_shrink(ctx, bo, (struct ttm_bo_shrink_flags)
1116 			     {.purge = false,
1117 			      .writeback = flags.writeback,
1118 			      .allow_move = true});
1119 	if (needs_rpm)
1120 		xe_pm_runtime_put(xe);
1121 
1122 	if (lret > 0)
1123 		xe_ttm_tt_account_subtract(xe, tt);
1124 
1125 out_unref:
1126 	xe_bo_put(xe_bo);
1127 
1128 	return lret;
1129 }
1130 
1131 /**
1132  * xe_bo_notifier_prepare_pinned() - Prepare a pinned VRAM object to be backed
1133  * up in system memory.
1134  * @bo: The buffer object to prepare.
1135  *
1136  * On successful completion, the object backup pages are allocated. Expectation
1137  * is that this is called from the PM notifier, prior to suspend/hibernation.
1138  *
1139  * Return: 0 on success. Negative error code on failure.
1140  */
xe_bo_notifier_prepare_pinned(struct xe_bo * bo)1141 int xe_bo_notifier_prepare_pinned(struct xe_bo *bo)
1142 {
1143 	struct xe_device *xe = ttm_to_xe_device(bo->ttm.bdev);
1144 	struct xe_validation_ctx ctx;
1145 	struct drm_exec exec;
1146 	struct xe_bo *backup;
1147 	int ret = 0;
1148 
1149 	xe_validation_guard(&ctx, &xe->val, &exec, (struct xe_val_flags) {.exclusive = true}, ret) {
1150 		ret = drm_exec_lock_obj(&exec, &bo->ttm.base);
1151 		drm_exec_retry_on_contention(&exec);
1152 		xe_assert(xe, !ret);
1153 		xe_assert(xe, !bo->backup_obj);
1154 
1155 		/*
1156 		 * Since this is called from the PM notifier we might have raced with
1157 		 * someone unpinning this after we dropped the pinned list lock and
1158 		 * grabbing the above bo lock.
1159 		 */
1160 		if (!xe_bo_is_pinned(bo))
1161 			break;
1162 
1163 		if (!xe_bo_is_vram(bo))
1164 			break;
1165 
1166 		if (bo->flags & XE_BO_FLAG_PINNED_NORESTORE)
1167 			break;
1168 
1169 		backup = xe_bo_init_locked(xe, NULL, NULL, bo->ttm.base.resv, NULL, xe_bo_size(bo),
1170 					   DRM_XE_GEM_CPU_CACHING_WB, ttm_bo_type_kernel,
1171 					   XE_BO_FLAG_SYSTEM | XE_BO_FLAG_NEEDS_CPU_ACCESS |
1172 					   XE_BO_FLAG_PINNED, &exec);
1173 		if (IS_ERR(backup)) {
1174 			drm_exec_retry_on_contention(&exec);
1175 			ret = PTR_ERR(backup);
1176 			xe_validation_retry_on_oom(&ctx, &ret);
1177 			break;
1178 		}
1179 
1180 		backup->parent_obj = xe_bo_get(bo); /* Released by bo_destroy */
1181 		ttm_bo_pin(&backup->ttm);
1182 		bo->backup_obj = backup;
1183 	}
1184 
1185 	return ret;
1186 }
1187 
1188 /**
1189  * xe_bo_notifier_unprepare_pinned() - Undo the previous prepare operation.
1190  * @bo: The buffer object to undo the prepare for.
1191  *
1192  * Always returns 0. The backup object is removed, if still present. Expectation
1193  * it that this called from the PM notifier when undoing the prepare step.
1194  *
1195  * Return: Always returns 0.
1196  */
xe_bo_notifier_unprepare_pinned(struct xe_bo * bo)1197 int xe_bo_notifier_unprepare_pinned(struct xe_bo *bo)
1198 {
1199 	xe_bo_lock(bo, false);
1200 	if (bo->backup_obj) {
1201 		ttm_bo_unpin(&bo->backup_obj->ttm);
1202 		xe_bo_put(bo->backup_obj);
1203 		bo->backup_obj = NULL;
1204 	}
1205 	xe_bo_unlock(bo);
1206 
1207 	return 0;
1208 }
1209 
xe_bo_evict_pinned_copy(struct xe_bo * bo,struct xe_bo * backup)1210 static int xe_bo_evict_pinned_copy(struct xe_bo *bo, struct xe_bo *backup)
1211 {
1212 	struct xe_device *xe = xe_bo_device(bo);
1213 	bool unmap = false;
1214 	int ret = 0;
1215 
1216 	if (xe_bo_is_user(bo) || (bo->flags & XE_BO_FLAG_PINNED_LATE_RESTORE)) {
1217 		struct xe_migrate *migrate;
1218 		struct dma_fence *fence;
1219 
1220 		if (bo->tile)
1221 			migrate = bo->tile->migrate;
1222 		else
1223 			migrate = mem_type_to_migrate(xe, bo->ttm.resource->mem_type);
1224 
1225 		xe_assert(xe, bo->ttm.base.resv == backup->ttm.base.resv);
1226 		ret = dma_resv_reserve_fences(bo->ttm.base.resv, 1);
1227 		if (ret)
1228 			goto out_backup;
1229 
1230 		fence = xe_migrate_copy(migrate, bo, backup, bo->ttm.resource,
1231 					backup->ttm.resource, false);
1232 		if (IS_ERR(fence)) {
1233 			ret = PTR_ERR(fence);
1234 			goto out_backup;
1235 		}
1236 
1237 		dma_resv_add_fence(bo->ttm.base.resv, fence,
1238 				   DMA_RESV_USAGE_KERNEL);
1239 		dma_fence_put(fence);
1240 	} else {
1241 		ret = xe_bo_vmap(backup);
1242 		if (ret)
1243 			goto out_backup;
1244 
1245 		if (iosys_map_is_null(&bo->vmap)) {
1246 			ret = xe_bo_vmap(bo);
1247 			if (ret)
1248 				goto out_vunmap;
1249 			unmap = true;
1250 		}
1251 
1252 		xe_map_memcpy_from(xe, backup->vmap.vaddr, &bo->vmap, 0,
1253 				   xe_bo_size(bo));
1254 	}
1255 
1256 	if (!bo->backup_obj)
1257 		bo->backup_obj = backup;
1258 out_vunmap:
1259 	xe_bo_vunmap(backup);
1260 out_backup:
1261 	if (unmap)
1262 		xe_bo_vunmap(bo);
1263 
1264 	return ret;
1265 }
1266 
1267 /**
1268  * xe_bo_evict_pinned() - Evict a pinned VRAM object to system memory
1269  * @bo: The buffer object to move.
1270  *
1271  * On successful completion, the object memory will be moved to system memory.
1272  *
1273  * This is needed to for special handling of pinned VRAM object during
1274  * suspend-resume.
1275  *
1276  * Return: 0 on success. Negative error code on failure.
1277  */
xe_bo_evict_pinned(struct xe_bo * bo)1278 int xe_bo_evict_pinned(struct xe_bo *bo)
1279 {
1280 	struct xe_device *xe = ttm_to_xe_device(bo->ttm.bdev);
1281 	struct xe_validation_ctx ctx;
1282 	struct drm_exec exec;
1283 	struct xe_bo *backup = bo->backup_obj;
1284 	bool backup_created = false;
1285 	int ret = 0;
1286 
1287 	xe_validation_guard(&ctx, &xe->val, &exec, (struct xe_val_flags) {.exclusive = true}, ret) {
1288 		ret = drm_exec_lock_obj(&exec, &bo->ttm.base);
1289 		drm_exec_retry_on_contention(&exec);
1290 		xe_assert(xe, !ret);
1291 
1292 		if (WARN_ON(!bo->ttm.resource)) {
1293 			ret = -EINVAL;
1294 			break;
1295 		}
1296 
1297 		if (WARN_ON(!xe_bo_is_pinned(bo))) {
1298 			ret = -EINVAL;
1299 			break;
1300 		}
1301 
1302 		if (!xe_bo_is_vram(bo))
1303 			break;
1304 
1305 		if (bo->flags & XE_BO_FLAG_PINNED_NORESTORE)
1306 			break;
1307 
1308 		if (!backup) {
1309 			backup = xe_bo_init_locked(xe, NULL, NULL, bo->ttm.base.resv, NULL,
1310 						   xe_bo_size(bo),
1311 						   DRM_XE_GEM_CPU_CACHING_WB, ttm_bo_type_kernel,
1312 						   XE_BO_FLAG_SYSTEM | XE_BO_FLAG_NEEDS_CPU_ACCESS |
1313 						   XE_BO_FLAG_PINNED, &exec);
1314 			if (IS_ERR(backup)) {
1315 				drm_exec_retry_on_contention(&exec);
1316 				ret = PTR_ERR(backup);
1317 				xe_validation_retry_on_oom(&ctx, &ret);
1318 				break;
1319 			}
1320 			backup->parent_obj = xe_bo_get(bo); /* Released by bo_destroy */
1321 			backup_created = true;
1322 		}
1323 
1324 		ret = xe_bo_evict_pinned_copy(bo, backup);
1325 	}
1326 
1327 	if (ret && backup_created)
1328 		xe_bo_put(backup);
1329 
1330 	return ret;
1331 }
1332 
1333 /**
1334  * xe_bo_restore_pinned() - Restore a pinned VRAM object
1335  * @bo: The buffer object to move.
1336  *
1337  * On successful completion, the object memory will be moved back to VRAM.
1338  *
1339  * This is needed to for special handling of pinned VRAM object during
1340  * suspend-resume.
1341  *
1342  * Return: 0 on success. Negative error code on failure.
1343  */
xe_bo_restore_pinned(struct xe_bo * bo)1344 int xe_bo_restore_pinned(struct xe_bo *bo)
1345 {
1346 	struct ttm_operation_ctx ctx = {
1347 		.interruptible = false,
1348 		.gfp_retry_mayfail = false,
1349 	};
1350 	struct xe_device *xe = ttm_to_xe_device(bo->ttm.bdev);
1351 	struct xe_bo *backup = bo->backup_obj;
1352 	bool unmap = false;
1353 	int ret;
1354 
1355 	if (!backup)
1356 		return 0;
1357 
1358 	xe_bo_lock(bo, false);
1359 
1360 	if (!xe_bo_is_pinned(backup)) {
1361 		ret = ttm_bo_validate(&backup->ttm, &backup->placement, &ctx);
1362 		if (ret)
1363 			goto out_unlock_bo;
1364 	}
1365 
1366 	if (xe_bo_is_user(bo) || (bo->flags & XE_BO_FLAG_PINNED_LATE_RESTORE)) {
1367 		struct xe_migrate *migrate;
1368 		struct dma_fence *fence;
1369 
1370 		if (bo->tile)
1371 			migrate = bo->tile->migrate;
1372 		else
1373 			migrate = mem_type_to_migrate(xe, bo->ttm.resource->mem_type);
1374 
1375 		ret = dma_resv_reserve_fences(bo->ttm.base.resv, 1);
1376 		if (ret)
1377 			goto out_unlock_bo;
1378 
1379 		fence = xe_migrate_copy(migrate, backup, bo,
1380 					backup->ttm.resource, bo->ttm.resource,
1381 					false);
1382 		if (IS_ERR(fence)) {
1383 			ret = PTR_ERR(fence);
1384 			goto out_unlock_bo;
1385 		}
1386 
1387 		dma_resv_add_fence(bo->ttm.base.resv, fence,
1388 				   DMA_RESV_USAGE_KERNEL);
1389 		dma_fence_put(fence);
1390 	} else {
1391 		ret = xe_bo_vmap(backup);
1392 		if (ret)
1393 			goto out_unlock_bo;
1394 
1395 		if (iosys_map_is_null(&bo->vmap)) {
1396 			ret = xe_bo_vmap(bo);
1397 			if (ret)
1398 				goto out_backup;
1399 			unmap = true;
1400 		}
1401 
1402 		xe_map_memcpy_to(xe, &bo->vmap, 0, backup->vmap.vaddr,
1403 				 xe_bo_size(bo));
1404 	}
1405 
1406 	bo->backup_obj = NULL;
1407 
1408 out_backup:
1409 	xe_bo_vunmap(backup);
1410 	if (!bo->backup_obj) {
1411 		if (xe_bo_is_pinned(backup))
1412 			ttm_bo_unpin(&backup->ttm);
1413 		xe_bo_put(backup);
1414 	}
1415 out_unlock_bo:
1416 	if (unmap)
1417 		xe_bo_vunmap(bo);
1418 	xe_bo_unlock(bo);
1419 	return ret;
1420 }
1421 
xe_bo_dma_unmap_pinned(struct xe_bo * bo)1422 int xe_bo_dma_unmap_pinned(struct xe_bo *bo)
1423 {
1424 	struct ttm_buffer_object *ttm_bo = &bo->ttm;
1425 	struct ttm_tt *tt = ttm_bo->ttm;
1426 
1427 	if (tt) {
1428 		struct xe_ttm_tt *xe_tt = container_of(tt, typeof(*xe_tt), ttm);
1429 
1430 		if (ttm_bo->type == ttm_bo_type_sg && ttm_bo->sg) {
1431 			dma_buf_unmap_attachment(ttm_bo->base.import_attach,
1432 						 ttm_bo->sg,
1433 						 DMA_BIDIRECTIONAL);
1434 			ttm_bo->sg = NULL;
1435 			xe_tt->sg = NULL;
1436 		} else if (xe_tt->sg) {
1437 			dma_unmap_sgtable(ttm_to_xe_device(ttm_bo->bdev)->drm.dev,
1438 					  xe_tt->sg,
1439 					  DMA_BIDIRECTIONAL, 0);
1440 			sg_free_table(xe_tt->sg);
1441 			xe_tt->sg = NULL;
1442 		}
1443 	}
1444 
1445 	return 0;
1446 }
1447 
xe_ttm_io_mem_pfn(struct ttm_buffer_object * ttm_bo,unsigned long page_offset)1448 static unsigned long xe_ttm_io_mem_pfn(struct ttm_buffer_object *ttm_bo,
1449 				       unsigned long page_offset)
1450 {
1451 	struct xe_bo *bo = ttm_to_xe_bo(ttm_bo);
1452 	struct xe_res_cursor cursor;
1453 	struct xe_vram_region *vram;
1454 
1455 	if (ttm_bo->resource->mem_type == XE_PL_STOLEN)
1456 		return xe_ttm_stolen_io_offset(bo, page_offset << PAGE_SHIFT) >> PAGE_SHIFT;
1457 
1458 	vram = res_to_mem_region(ttm_bo->resource);
1459 	xe_res_first(ttm_bo->resource, (u64)page_offset << PAGE_SHIFT, 0, &cursor);
1460 	return (vram->io_start + cursor.start) >> PAGE_SHIFT;
1461 }
1462 
1463 static void __xe_bo_vunmap(struct xe_bo *bo);
1464 
1465 /*
1466  * TODO: Move this function to TTM so we don't rely on how TTM does its
1467  * locking, thereby abusing TTM internals.
1468  */
xe_ttm_bo_lock_in_destructor(struct ttm_buffer_object * ttm_bo)1469 static bool xe_ttm_bo_lock_in_destructor(struct ttm_buffer_object *ttm_bo)
1470 {
1471 	struct xe_device *xe = ttm_to_xe_device(ttm_bo->bdev);
1472 	bool locked;
1473 
1474 	xe_assert(xe, !kref_read(&ttm_bo->kref));
1475 
1476 	/*
1477 	 * We can typically only race with TTM trylocking under the
1478 	 * lru_lock, which will immediately be unlocked again since
1479 	 * the ttm_bo refcount is zero at this point. So trylocking *should*
1480 	 * always succeed here, as long as we hold the lru lock.
1481 	 */
1482 	spin_lock(&ttm_bo->bdev->lru_lock);
1483 	locked = dma_resv_trylock(ttm_bo->base.resv);
1484 	spin_unlock(&ttm_bo->bdev->lru_lock);
1485 	xe_assert(xe, locked);
1486 
1487 	return locked;
1488 }
1489 
xe_ttm_bo_release_notify(struct ttm_buffer_object * ttm_bo)1490 static void xe_ttm_bo_release_notify(struct ttm_buffer_object *ttm_bo)
1491 {
1492 	struct dma_resv_iter cursor;
1493 	struct dma_fence *fence;
1494 	struct dma_fence *replacement = NULL;
1495 	struct xe_bo *bo;
1496 
1497 	if (!xe_bo_is_xe_bo(ttm_bo))
1498 		return;
1499 
1500 	bo = ttm_to_xe_bo(ttm_bo);
1501 	xe_assert(xe_bo_device(bo), !(bo->created && kref_read(&ttm_bo->base.refcount)));
1502 
1503 	/*
1504 	 * Corner case where TTM fails to allocate memory and this BOs resv
1505 	 * still points the VMs resv
1506 	 */
1507 	if (ttm_bo->base.resv != &ttm_bo->base._resv)
1508 		return;
1509 
1510 	if (!xe_ttm_bo_lock_in_destructor(ttm_bo))
1511 		return;
1512 
1513 	/*
1514 	 * Scrub the preempt fences if any. The unbind fence is already
1515 	 * attached to the resv.
1516 	 * TODO: Don't do this for external bos once we scrub them after
1517 	 * unbind.
1518 	 */
1519 	dma_resv_for_each_fence(&cursor, ttm_bo->base.resv,
1520 				DMA_RESV_USAGE_BOOKKEEP, fence) {
1521 		if (xe_fence_is_xe_preempt(fence) &&
1522 		    !dma_fence_is_signaled(fence)) {
1523 			if (!replacement)
1524 				replacement = dma_fence_get_stub();
1525 
1526 			dma_resv_replace_fences(ttm_bo->base.resv,
1527 						fence->context,
1528 						replacement,
1529 						DMA_RESV_USAGE_BOOKKEEP);
1530 		}
1531 	}
1532 	dma_fence_put(replacement);
1533 
1534 	dma_resv_unlock(ttm_bo->base.resv);
1535 }
1536 
xe_ttm_bo_delete_mem_notify(struct ttm_buffer_object * ttm_bo)1537 static void xe_ttm_bo_delete_mem_notify(struct ttm_buffer_object *ttm_bo)
1538 {
1539 	struct xe_bo *bo = ttm_to_xe_bo(ttm_bo);
1540 
1541 	if (!xe_bo_is_xe_bo(ttm_bo))
1542 		return;
1543 
1544 	if (IS_VF_CCS_READY(ttm_to_xe_device(ttm_bo->bdev)))
1545 		xe_sriov_vf_ccs_detach_bo(bo);
1546 
1547 	/*
1548 	 * Object is idle and about to be destroyed. Release the
1549 	 * dma-buf attachment.
1550 	 */
1551 	if (ttm_bo->type == ttm_bo_type_sg && ttm_bo->sg) {
1552 		struct xe_ttm_tt *xe_tt = container_of(ttm_bo->ttm,
1553 						       struct xe_ttm_tt, ttm);
1554 
1555 		dma_buf_unmap_attachment(ttm_bo->base.import_attach, ttm_bo->sg,
1556 					 DMA_BIDIRECTIONAL);
1557 		ttm_bo->sg = NULL;
1558 		xe_tt->sg = NULL;
1559 	}
1560 }
1561 
xe_ttm_bo_purge(struct ttm_buffer_object * ttm_bo,struct ttm_operation_ctx * ctx)1562 static void xe_ttm_bo_purge(struct ttm_buffer_object *ttm_bo, struct ttm_operation_ctx *ctx)
1563 {
1564 	struct xe_device *xe = ttm_to_xe_device(ttm_bo->bdev);
1565 
1566 	if (ttm_bo->ttm) {
1567 		struct ttm_placement place = {};
1568 		int ret = ttm_bo_validate(ttm_bo, &place, ctx);
1569 
1570 		drm_WARN_ON(&xe->drm, ret);
1571 	}
1572 }
1573 
xe_ttm_bo_swap_notify(struct ttm_buffer_object * ttm_bo)1574 static void xe_ttm_bo_swap_notify(struct ttm_buffer_object *ttm_bo)
1575 {
1576 	struct ttm_operation_ctx ctx = {
1577 		.interruptible = false,
1578 		.gfp_retry_mayfail = false,
1579 	};
1580 
1581 	if (ttm_bo->ttm) {
1582 		struct xe_ttm_tt *xe_tt =
1583 			container_of(ttm_bo->ttm, struct xe_ttm_tt, ttm);
1584 
1585 		if (xe_tt->purgeable)
1586 			xe_ttm_bo_purge(ttm_bo, &ctx);
1587 	}
1588 }
1589 
xe_ttm_access_memory(struct ttm_buffer_object * ttm_bo,unsigned long offset,void * buf,int len,int write)1590 static int xe_ttm_access_memory(struct ttm_buffer_object *ttm_bo,
1591 				unsigned long offset, void *buf, int len,
1592 				int write)
1593 {
1594 	struct xe_bo *bo = ttm_to_xe_bo(ttm_bo);
1595 	struct xe_device *xe = ttm_to_xe_device(ttm_bo->bdev);
1596 	struct iosys_map vmap;
1597 	struct xe_res_cursor cursor;
1598 	struct xe_vram_region *vram;
1599 	int bytes_left = len;
1600 	int err = 0;
1601 
1602 	xe_bo_assert_held(bo);
1603 	xe_device_assert_mem_access(xe);
1604 
1605 	if (!mem_type_is_vram(ttm_bo->resource->mem_type))
1606 		return -EIO;
1607 
1608 	if (!xe_ttm_resource_visible(ttm_bo->resource) || len >= SZ_16K) {
1609 		struct xe_migrate *migrate =
1610 			mem_type_to_migrate(xe, ttm_bo->resource->mem_type);
1611 
1612 		err = xe_migrate_access_memory(migrate, bo, offset, buf, len,
1613 					       write);
1614 		goto out;
1615 	}
1616 
1617 	vram = res_to_mem_region(ttm_bo->resource);
1618 	xe_res_first(ttm_bo->resource, offset & PAGE_MASK,
1619 		     xe_bo_size(bo) - (offset & PAGE_MASK), &cursor);
1620 
1621 	do {
1622 		unsigned long page_offset = (offset & ~PAGE_MASK);
1623 		int byte_count = min((int)(PAGE_SIZE - page_offset), bytes_left);
1624 
1625 		iosys_map_set_vaddr_iomem(&vmap, (u8 __iomem *)vram->mapping +
1626 					  cursor.start);
1627 		if (write)
1628 			xe_map_memcpy_to(xe, &vmap, page_offset, buf, byte_count);
1629 		else
1630 			xe_map_memcpy_from(xe, buf, &vmap, page_offset, byte_count);
1631 
1632 		buf += byte_count;
1633 		offset += byte_count;
1634 		bytes_left -= byte_count;
1635 		if (bytes_left)
1636 			xe_res_next(&cursor, PAGE_SIZE);
1637 	} while (bytes_left);
1638 
1639 out:
1640 	return err ?: len;
1641 }
1642 
1643 const struct ttm_device_funcs xe_ttm_funcs = {
1644 	.ttm_tt_create = xe_ttm_tt_create,
1645 	.ttm_tt_populate = xe_ttm_tt_populate,
1646 	.ttm_tt_unpopulate = xe_ttm_tt_unpopulate,
1647 	.ttm_tt_destroy = xe_ttm_tt_destroy,
1648 	.evict_flags = xe_evict_flags,
1649 	.move = xe_bo_move,
1650 	.io_mem_reserve = xe_ttm_io_mem_reserve,
1651 	.io_mem_pfn = xe_ttm_io_mem_pfn,
1652 	.access_memory = xe_ttm_access_memory,
1653 	.release_notify = xe_ttm_bo_release_notify,
1654 	.eviction_valuable = xe_bo_eviction_valuable,
1655 	.delete_mem_notify = xe_ttm_bo_delete_mem_notify,
1656 	.swap_notify = xe_ttm_bo_swap_notify,
1657 };
1658 
xe_ttm_bo_destroy(struct ttm_buffer_object * ttm_bo)1659 static void xe_ttm_bo_destroy(struct ttm_buffer_object *ttm_bo)
1660 {
1661 	struct xe_bo *bo = ttm_to_xe_bo(ttm_bo);
1662 	struct xe_device *xe = ttm_to_xe_device(ttm_bo->bdev);
1663 	struct xe_tile *tile;
1664 	u8 id;
1665 
1666 	if (bo->ttm.base.import_attach)
1667 		drm_prime_gem_destroy(&bo->ttm.base, NULL);
1668 	drm_gem_object_release(&bo->ttm.base);
1669 
1670 	xe_assert(xe, list_empty(&ttm_bo->base.gpuva.list));
1671 
1672 	for_each_tile(tile, xe, id)
1673 		if (bo->ggtt_node[id] && bo->ggtt_node[id]->base.size)
1674 			xe_ggtt_remove_bo(tile->mem.ggtt, bo);
1675 
1676 #ifdef CONFIG_PROC_FS
1677 	if (bo->client)
1678 		xe_drm_client_remove_bo(bo);
1679 #endif
1680 
1681 	if (bo->vm && xe_bo_is_user(bo))
1682 		xe_vm_put(bo->vm);
1683 
1684 	if (bo->parent_obj)
1685 		xe_bo_put(bo->parent_obj);
1686 
1687 	mutex_lock(&xe->mem_access.vram_userfault.lock);
1688 	if (!list_empty(&bo->vram_userfault_link))
1689 		list_del(&bo->vram_userfault_link);
1690 	mutex_unlock(&xe->mem_access.vram_userfault.lock);
1691 
1692 	kfree(bo);
1693 }
1694 
xe_gem_object_free(struct drm_gem_object * obj)1695 static void xe_gem_object_free(struct drm_gem_object *obj)
1696 {
1697 	/* Our BO reference counting scheme works as follows:
1698 	 *
1699 	 * The gem object kref is typically used throughout the driver,
1700 	 * and the gem object holds a ttm_buffer_object refcount, so
1701 	 * that when the last gem object reference is put, which is when
1702 	 * we end up in this function, we put also that ttm_buffer_object
1703 	 * refcount. Anything using gem interfaces is then no longer
1704 	 * allowed to access the object in a way that requires a gem
1705 	 * refcount, including locking the object.
1706 	 *
1707 	 * driver ttm callbacks is allowed to use the ttm_buffer_object
1708 	 * refcount directly if needed.
1709 	 */
1710 	__xe_bo_vunmap(gem_to_xe_bo(obj));
1711 	ttm_bo_put(container_of(obj, struct ttm_buffer_object, base));
1712 }
1713 
xe_gem_object_close(struct drm_gem_object * obj,struct drm_file * file_priv)1714 static void xe_gem_object_close(struct drm_gem_object *obj,
1715 				struct drm_file *file_priv)
1716 {
1717 	struct xe_bo *bo = gem_to_xe_bo(obj);
1718 
1719 	if (bo->vm && !xe_vm_in_fault_mode(bo->vm)) {
1720 		xe_assert(xe_bo_device(bo), xe_bo_is_user(bo));
1721 
1722 		xe_bo_lock(bo, false);
1723 		ttm_bo_set_bulk_move(&bo->ttm, NULL);
1724 		xe_bo_unlock(bo);
1725 	}
1726 }
1727 
should_migrate_to_smem(struct xe_bo * bo)1728 static bool should_migrate_to_smem(struct xe_bo *bo)
1729 {
1730 	/*
1731 	 * NOTE: The following atomic checks are platform-specific. For example,
1732 	 * if a device supports CXL atomics, these may not be necessary or
1733 	 * may behave differently.
1734 	 */
1735 
1736 	return bo->attr.atomic_access == DRM_XE_ATOMIC_GLOBAL ||
1737 	       bo->attr.atomic_access == DRM_XE_ATOMIC_CPU;
1738 }
1739 
1740 /* Populate the bo if swapped out, or migrate if the access mode requires that. */
xe_bo_fault_migrate(struct xe_bo * bo,struct ttm_operation_ctx * ctx,struct drm_exec * exec)1741 static int xe_bo_fault_migrate(struct xe_bo *bo, struct ttm_operation_ctx *ctx,
1742 			       struct drm_exec *exec)
1743 {
1744 	struct ttm_buffer_object *tbo = &bo->ttm;
1745 	int err = 0;
1746 
1747 	if (ttm_manager_type(tbo->bdev, tbo->resource->mem_type)->use_tt) {
1748 		xe_assert(xe_bo_device(bo),
1749 			  dma_resv_test_signaled(tbo->base.resv, DMA_RESV_USAGE_KERNEL) ||
1750 			  (tbo->ttm && ttm_tt_is_populated(tbo->ttm)));
1751 		err = ttm_bo_populate(&bo->ttm, ctx);
1752 	} else if (should_migrate_to_smem(bo)) {
1753 		xe_assert(xe_bo_device(bo), bo->flags & XE_BO_FLAG_SYSTEM);
1754 		err = xe_bo_migrate(bo, XE_PL_TT, ctx, exec);
1755 	}
1756 
1757 	return err;
1758 }
1759 
1760 /* Call into TTM to populate PTEs, and register bo for PTE removal on runtime suspend. */
__xe_bo_cpu_fault(struct vm_fault * vmf,struct xe_device * xe,struct xe_bo * bo)1761 static vm_fault_t __xe_bo_cpu_fault(struct vm_fault *vmf, struct xe_device *xe, struct xe_bo *bo)
1762 {
1763 	vm_fault_t ret;
1764 
1765 	trace_xe_bo_cpu_fault(bo);
1766 
1767 	ret = ttm_bo_vm_fault_reserved(vmf, vmf->vma->vm_page_prot,
1768 				       TTM_BO_VM_NUM_PREFAULT);
1769 	/*
1770 	 * When TTM is actually called to insert PTEs, ensure no blocking conditions
1771 	 * remain, in which case TTM may drop locks and return VM_FAULT_RETRY.
1772 	 */
1773 	xe_assert(xe, ret != VM_FAULT_RETRY);
1774 
1775 	if (ret == VM_FAULT_NOPAGE &&
1776 	    mem_type_is_vram(bo->ttm.resource->mem_type)) {
1777 		mutex_lock(&xe->mem_access.vram_userfault.lock);
1778 		if (list_empty(&bo->vram_userfault_link))
1779 			list_add(&bo->vram_userfault_link,
1780 				 &xe->mem_access.vram_userfault.list);
1781 		mutex_unlock(&xe->mem_access.vram_userfault.lock);
1782 	}
1783 
1784 	return ret;
1785 }
1786 
xe_err_to_fault_t(int err)1787 static vm_fault_t xe_err_to_fault_t(int err)
1788 {
1789 	switch (err) {
1790 	case 0:
1791 	case -EINTR:
1792 	case -ERESTARTSYS:
1793 	case -EAGAIN:
1794 		return VM_FAULT_NOPAGE;
1795 	case -ENOMEM:
1796 	case -ENOSPC:
1797 		return VM_FAULT_OOM;
1798 	default:
1799 		break;
1800 	}
1801 	return VM_FAULT_SIGBUS;
1802 }
1803 
xe_ttm_bo_is_imported(struct ttm_buffer_object * tbo)1804 static bool xe_ttm_bo_is_imported(struct ttm_buffer_object *tbo)
1805 {
1806 	dma_resv_assert_held(tbo->base.resv);
1807 
1808 	return tbo->ttm &&
1809 		(tbo->ttm->page_flags & (TTM_TT_FLAG_EXTERNAL | TTM_TT_FLAG_EXTERNAL_MAPPABLE)) ==
1810 		TTM_TT_FLAG_EXTERNAL;
1811 }
1812 
xe_bo_cpu_fault_fastpath(struct vm_fault * vmf,struct xe_device * xe,struct xe_bo * bo,bool needs_rpm)1813 static vm_fault_t xe_bo_cpu_fault_fastpath(struct vm_fault *vmf, struct xe_device *xe,
1814 					   struct xe_bo *bo, bool needs_rpm)
1815 {
1816 	struct ttm_buffer_object *tbo = &bo->ttm;
1817 	vm_fault_t ret = VM_FAULT_RETRY;
1818 	struct xe_validation_ctx ctx;
1819 	struct ttm_operation_ctx tctx = {
1820 		.interruptible = true,
1821 		.no_wait_gpu = true,
1822 		.gfp_retry_mayfail = true,
1823 
1824 	};
1825 	int err;
1826 
1827 	if (needs_rpm && !xe_pm_runtime_get_if_active(xe))
1828 		return VM_FAULT_RETRY;
1829 
1830 	err = xe_validation_ctx_init(&ctx, &xe->val, NULL,
1831 				     (struct xe_val_flags) {
1832 					     .interruptible = true,
1833 					     .no_block = true
1834 				     });
1835 	if (err)
1836 		goto out_pm;
1837 
1838 	if (!dma_resv_trylock(tbo->base.resv))
1839 		goto out_validation;
1840 
1841 	if (xe_ttm_bo_is_imported(tbo)) {
1842 		ret = VM_FAULT_SIGBUS;
1843 		drm_dbg(&xe->drm, "CPU trying to access an imported buffer object.\n");
1844 		goto out_unlock;
1845 	}
1846 
1847 	err = xe_bo_fault_migrate(bo, &tctx, NULL);
1848 	if (err) {
1849 		/* Return VM_FAULT_RETRY on these errors. */
1850 		if (err != -ENOMEM && err != -ENOSPC && err != -EBUSY)
1851 			ret = xe_err_to_fault_t(err);
1852 		goto out_unlock;
1853 	}
1854 
1855 	if (dma_resv_test_signaled(bo->ttm.base.resv, DMA_RESV_USAGE_KERNEL))
1856 		ret = __xe_bo_cpu_fault(vmf, xe, bo);
1857 
1858 out_unlock:
1859 	dma_resv_unlock(tbo->base.resv);
1860 out_validation:
1861 	xe_validation_ctx_fini(&ctx);
1862 out_pm:
1863 	if (needs_rpm)
1864 		xe_pm_runtime_put(xe);
1865 
1866 	return ret;
1867 }
1868 
xe_bo_cpu_fault(struct vm_fault * vmf)1869 static vm_fault_t xe_bo_cpu_fault(struct vm_fault *vmf)
1870 {
1871 	struct ttm_buffer_object *tbo = vmf->vma->vm_private_data;
1872 	struct drm_device *ddev = tbo->base.dev;
1873 	struct xe_device *xe = to_xe_device(ddev);
1874 	struct xe_bo *bo = ttm_to_xe_bo(tbo);
1875 	bool needs_rpm = bo->flags & XE_BO_FLAG_VRAM_MASK;
1876 	bool retry_after_wait = false;
1877 	struct xe_validation_ctx ctx;
1878 	struct drm_exec exec;
1879 	vm_fault_t ret;
1880 	int err = 0;
1881 	int idx;
1882 
1883 	if (!drm_dev_enter(&xe->drm, &idx))
1884 		return ttm_bo_vm_dummy_page(vmf, vmf->vma->vm_page_prot);
1885 
1886 	ret = xe_bo_cpu_fault_fastpath(vmf, xe, bo, needs_rpm);
1887 	if (ret != VM_FAULT_RETRY)
1888 		goto out;
1889 
1890 	if (fault_flag_allow_retry_first(vmf->flags)) {
1891 		if (vmf->flags & FAULT_FLAG_RETRY_NOWAIT)
1892 			goto out;
1893 		retry_after_wait = true;
1894 		xe_bo_get(bo);
1895 		mmap_read_unlock(vmf->vma->vm_mm);
1896 	} else {
1897 		ret = VM_FAULT_NOPAGE;
1898 	}
1899 
1900 	/*
1901 	 * The fastpath failed and we were not required to return and retry immediately.
1902 	 * We're now running in one of two modes:
1903 	 *
1904 	 * 1) retry_after_wait == true: The mmap_read_lock() is dropped, and we're trying
1905 	 * to resolve blocking waits. But we can't resolve the fault since the
1906 	 * mmap_read_lock() is dropped. After retrying the fault, the aim is that the fastpath
1907 	 * should succeed. But it may fail since we drop the bo lock.
1908 	 *
1909 	 * 2) retry_after_wait == false: The fastpath failed, typically even after
1910 	 * a retry. Do whatever's necessary to resolve the fault.
1911 	 *
1912 	 * This construct is recommended to avoid excessive waits under the mmap_lock.
1913 	 */
1914 
1915 	if (needs_rpm)
1916 		xe_pm_runtime_get(xe);
1917 
1918 	xe_validation_guard(&ctx, &xe->val, &exec, (struct xe_val_flags) {.interruptible = true},
1919 			    err) {
1920 		struct ttm_operation_ctx tctx = {
1921 			.interruptible = true,
1922 			.no_wait_gpu = false,
1923 			.gfp_retry_mayfail = retry_after_wait,
1924 		};
1925 		long lerr;
1926 
1927 		err = drm_exec_lock_obj(&exec, &tbo->base);
1928 		drm_exec_retry_on_contention(&exec);
1929 		if (err)
1930 			break;
1931 
1932 		if (xe_ttm_bo_is_imported(tbo)) {
1933 			err = -EFAULT;
1934 			drm_dbg(&xe->drm, "CPU trying to access an imported buffer object.\n");
1935 			break;
1936 		}
1937 
1938 		err = xe_bo_fault_migrate(bo, &tctx, &exec);
1939 		if (err) {
1940 			drm_exec_retry_on_contention(&exec);
1941 			xe_validation_retry_on_oom(&ctx, &err);
1942 			break;
1943 		}
1944 
1945 		lerr = dma_resv_wait_timeout(tbo->base.resv,
1946 					     DMA_RESV_USAGE_KERNEL, true,
1947 					     MAX_SCHEDULE_TIMEOUT);
1948 		if (lerr < 0) {
1949 			err = lerr;
1950 			break;
1951 		}
1952 
1953 		if (!retry_after_wait)
1954 			ret = __xe_bo_cpu_fault(vmf, xe, bo);
1955 	}
1956 	/* if retry_after_wait == true, we *must* return VM_FAULT_RETRY. */
1957 	if (err && !retry_after_wait)
1958 		ret = xe_err_to_fault_t(err);
1959 
1960 	if (needs_rpm)
1961 		xe_pm_runtime_put(xe);
1962 
1963 	if (retry_after_wait)
1964 		xe_bo_put(bo);
1965 out:
1966 	drm_dev_exit(idx);
1967 
1968 	return ret;
1969 }
1970 
xe_bo_vm_access(struct vm_area_struct * vma,unsigned long addr,void * buf,int len,int write)1971 static int xe_bo_vm_access(struct vm_area_struct *vma, unsigned long addr,
1972 			   void *buf, int len, int write)
1973 {
1974 	struct ttm_buffer_object *ttm_bo = vma->vm_private_data;
1975 	struct xe_bo *bo = ttm_to_xe_bo(ttm_bo);
1976 	struct xe_device *xe = xe_bo_device(bo);
1977 	int ret;
1978 
1979 	xe_pm_runtime_get(xe);
1980 	ret = ttm_bo_vm_access(vma, addr, buf, len, write);
1981 	xe_pm_runtime_put(xe);
1982 
1983 	return ret;
1984 }
1985 
1986 /**
1987  * xe_bo_read() - Read from an xe_bo
1988  * @bo: The buffer object to read from.
1989  * @offset: The byte offset to start reading from.
1990  * @dst: Location to store the read.
1991  * @size: Size in bytes for the read.
1992  *
1993  * Read @size bytes from the @bo, starting from @offset, storing into @dst.
1994  *
1995  * Return: Zero on success, or negative error.
1996  */
xe_bo_read(struct xe_bo * bo,u64 offset,void * dst,int size)1997 int xe_bo_read(struct xe_bo *bo, u64 offset, void *dst, int size)
1998 {
1999 	int ret;
2000 
2001 	ret = ttm_bo_access(&bo->ttm, offset, dst, size, 0);
2002 	if (ret >= 0 && ret != size)
2003 		ret = -EIO;
2004 	else if (ret == size)
2005 		ret = 0;
2006 
2007 	return ret;
2008 }
2009 
2010 static const struct vm_operations_struct xe_gem_vm_ops = {
2011 	.fault = xe_bo_cpu_fault,
2012 	.open = ttm_bo_vm_open,
2013 	.close = ttm_bo_vm_close,
2014 	.access = xe_bo_vm_access,
2015 };
2016 
2017 static const struct drm_gem_object_funcs xe_gem_object_funcs = {
2018 	.free = xe_gem_object_free,
2019 	.close = xe_gem_object_close,
2020 	.mmap = drm_gem_ttm_mmap,
2021 	.export = xe_gem_prime_export,
2022 	.vm_ops = &xe_gem_vm_ops,
2023 };
2024 
2025 /**
2026  * xe_bo_alloc - Allocate storage for a struct xe_bo
2027  *
2028  * This function is intended to allocate storage to be used for input
2029  * to __xe_bo_create_locked(), in the case a pointer to the bo to be
2030  * created is needed before the call to __xe_bo_create_locked().
2031  * If __xe_bo_create_locked ends up never to be called, then the
2032  * storage allocated with this function needs to be freed using
2033  * xe_bo_free().
2034  *
2035  * Return: A pointer to an uninitialized struct xe_bo on success,
2036  * ERR_PTR(-ENOMEM) on error.
2037  */
xe_bo_alloc(void)2038 struct xe_bo *xe_bo_alloc(void)
2039 {
2040 	struct xe_bo *bo = kzalloc(sizeof(*bo), GFP_KERNEL);
2041 
2042 	if (!bo)
2043 		return ERR_PTR(-ENOMEM);
2044 
2045 	return bo;
2046 }
2047 
2048 /**
2049  * xe_bo_free - Free storage allocated using xe_bo_alloc()
2050  * @bo: The buffer object storage.
2051  *
2052  * Refer to xe_bo_alloc() documentation for valid use-cases.
2053  */
xe_bo_free(struct xe_bo * bo)2054 void xe_bo_free(struct xe_bo *bo)
2055 {
2056 	kfree(bo);
2057 }
2058 
2059 /**
2060  * xe_bo_init_locked() - Initialize or create an xe_bo.
2061  * @xe: The xe device.
2062  * @bo: An already allocated buffer object or NULL
2063  * if the function should allocate a new one.
2064  * @tile: The tile to select for migration of this bo, and the tile used for
2065  * GGTT binding if any. Only to be non-NULL for ttm_bo_type_kernel bos.
2066  * @resv: Pointer to a locked shared reservation object to use fo this bo,
2067  * or NULL for the xe_bo to use its own.
2068  * @bulk: The bulk move to use for LRU bumping, or NULL for external bos.
2069  * @size: The storage size to use for the bo.
2070  * @cpu_caching: The cpu caching used for system memory backing store.
2071  * @type: The TTM buffer object type.
2072  * @flags: XE_BO_FLAG_ flags.
2073  * @exec: The drm_exec transaction to use for exhaustive eviction.
2074  *
2075  * Initialize or create an xe buffer object. On failure, any allocated buffer
2076  * object passed in @bo will have been unreferenced.
2077  *
2078  * Return: The buffer object on success. Negative error pointer on failure.
2079  */
xe_bo_init_locked(struct xe_device * xe,struct xe_bo * bo,struct xe_tile * tile,struct dma_resv * resv,struct ttm_lru_bulk_move * bulk,size_t size,u16 cpu_caching,enum ttm_bo_type type,u32 flags,struct drm_exec * exec)2080 struct xe_bo *xe_bo_init_locked(struct xe_device *xe, struct xe_bo *bo,
2081 				struct xe_tile *tile, struct dma_resv *resv,
2082 				struct ttm_lru_bulk_move *bulk, size_t size,
2083 				u16 cpu_caching, enum ttm_bo_type type,
2084 				u32 flags, struct drm_exec *exec)
2085 {
2086 	struct ttm_operation_ctx ctx = {
2087 		.interruptible = true,
2088 		.no_wait_gpu = false,
2089 		.gfp_retry_mayfail = true,
2090 	};
2091 	struct ttm_placement *placement;
2092 	uint32_t alignment;
2093 	size_t aligned_size;
2094 	int err;
2095 
2096 	/* Only kernel objects should set GT */
2097 	xe_assert(xe, !tile || type == ttm_bo_type_kernel);
2098 
2099 	if (XE_WARN_ON(!size)) {
2100 		xe_bo_free(bo);
2101 		return ERR_PTR(-EINVAL);
2102 	}
2103 
2104 	/* XE_BO_FLAG_GGTTx requires XE_BO_FLAG_GGTT also be set */
2105 	if ((flags & XE_BO_FLAG_GGTT_ALL) && !(flags & XE_BO_FLAG_GGTT))
2106 		return ERR_PTR(-EINVAL);
2107 
2108 	if (flags & (XE_BO_FLAG_VRAM_MASK | XE_BO_FLAG_STOLEN) &&
2109 	    !(flags & XE_BO_FLAG_IGNORE_MIN_PAGE_SIZE) &&
2110 	    ((xe->info.vram_flags & XE_VRAM_FLAGS_NEED64K) ||
2111 	     (flags & (XE_BO_FLAG_NEEDS_64K | XE_BO_FLAG_NEEDS_2M)))) {
2112 		size_t align = flags & XE_BO_FLAG_NEEDS_2M ? SZ_2M : SZ_64K;
2113 
2114 		aligned_size = ALIGN(size, align);
2115 		if (type != ttm_bo_type_device)
2116 			size = ALIGN(size, align);
2117 		flags |= XE_BO_FLAG_INTERNAL_64K;
2118 		alignment = align >> PAGE_SHIFT;
2119 	} else {
2120 		aligned_size = ALIGN(size, SZ_4K);
2121 		flags &= ~XE_BO_FLAG_INTERNAL_64K;
2122 		alignment = SZ_4K >> PAGE_SHIFT;
2123 	}
2124 
2125 	if (type == ttm_bo_type_device && aligned_size != size)
2126 		return ERR_PTR(-EINVAL);
2127 
2128 	if (!bo) {
2129 		bo = xe_bo_alloc();
2130 		if (IS_ERR(bo))
2131 			return bo;
2132 	}
2133 
2134 	bo->ccs_cleared = false;
2135 	bo->tile = tile;
2136 	bo->flags = flags;
2137 	bo->cpu_caching = cpu_caching;
2138 	bo->ttm.base.funcs = &xe_gem_object_funcs;
2139 	bo->ttm.priority = XE_BO_PRIORITY_NORMAL;
2140 	INIT_LIST_HEAD(&bo->pinned_link);
2141 #ifdef CONFIG_PROC_FS
2142 	INIT_LIST_HEAD(&bo->client_link);
2143 #endif
2144 	INIT_LIST_HEAD(&bo->vram_userfault_link);
2145 
2146 	drm_gem_private_object_init(&xe->drm, &bo->ttm.base, size);
2147 
2148 	if (resv) {
2149 		ctx.allow_res_evict = !(flags & XE_BO_FLAG_NO_RESV_EVICT);
2150 		ctx.resv = resv;
2151 	}
2152 
2153 	xe_validation_assert_exec(xe, exec, &bo->ttm.base);
2154 	if (!(flags & XE_BO_FLAG_FIXED_PLACEMENT)) {
2155 		err = __xe_bo_placement_for_flags(xe, bo, bo->flags);
2156 		if (WARN_ON(err)) {
2157 			xe_ttm_bo_destroy(&bo->ttm);
2158 			return ERR_PTR(err);
2159 		}
2160 	}
2161 
2162 	/* Defer populating type_sg bos */
2163 	placement = (type == ttm_bo_type_sg ||
2164 		     bo->flags & XE_BO_FLAG_DEFER_BACKING) ? &sys_placement :
2165 		&bo->placement;
2166 	err = ttm_bo_init_reserved(&xe->ttm, &bo->ttm, type,
2167 				   placement, alignment,
2168 				   &ctx, NULL, resv, xe_ttm_bo_destroy);
2169 	if (err)
2170 		return ERR_PTR(err);
2171 
2172 	/*
2173 	 * The VRAM pages underneath are potentially still being accessed by the
2174 	 * GPU, as per async GPU clearing and async evictions. However TTM makes
2175 	 * sure to add any corresponding move/clear fences into the objects
2176 	 * dma-resv using the DMA_RESV_USAGE_KERNEL slot.
2177 	 *
2178 	 * For KMD internal buffers we don't care about GPU clearing, however we
2179 	 * still need to handle async evictions, where the VRAM is still being
2180 	 * accessed by the GPU. Most internal callers are not expecting this,
2181 	 * since they are missing the required synchronisation before accessing
2182 	 * the memory. To keep things simple just sync wait any kernel fences
2183 	 * here, if the buffer is designated KMD internal.
2184 	 *
2185 	 * For normal userspace objects we should already have the required
2186 	 * pipelining or sync waiting elsewhere, since we already have to deal
2187 	 * with things like async GPU clearing.
2188 	 */
2189 	if (type == ttm_bo_type_kernel) {
2190 		long timeout = dma_resv_wait_timeout(bo->ttm.base.resv,
2191 						     DMA_RESV_USAGE_KERNEL,
2192 						     ctx.interruptible,
2193 						     MAX_SCHEDULE_TIMEOUT);
2194 
2195 		if (timeout < 0) {
2196 			if (!resv)
2197 				dma_resv_unlock(bo->ttm.base.resv);
2198 			xe_bo_put(bo);
2199 			return ERR_PTR(timeout);
2200 		}
2201 	}
2202 
2203 	bo->created = true;
2204 	if (bulk)
2205 		ttm_bo_set_bulk_move(&bo->ttm, bulk);
2206 	else
2207 		ttm_bo_move_to_lru_tail_unlocked(&bo->ttm);
2208 
2209 	return bo;
2210 }
2211 
__xe_bo_fixed_placement(struct xe_device * xe,struct xe_bo * bo,u32 flags,u64 start,u64 end,u64 size)2212 static int __xe_bo_fixed_placement(struct xe_device *xe,
2213 				   struct xe_bo *bo,
2214 				   u32 flags,
2215 				   u64 start, u64 end, u64 size)
2216 {
2217 	struct ttm_place *place = bo->placements;
2218 
2219 	if (flags & (XE_BO_FLAG_USER | XE_BO_FLAG_SYSTEM))
2220 		return -EINVAL;
2221 
2222 	place->flags = TTM_PL_FLAG_CONTIGUOUS;
2223 	place->fpfn = start >> PAGE_SHIFT;
2224 	place->lpfn = end >> PAGE_SHIFT;
2225 
2226 	switch (flags & (XE_BO_FLAG_STOLEN | XE_BO_FLAG_VRAM_MASK)) {
2227 	case XE_BO_FLAG_VRAM0:
2228 		place->mem_type = XE_PL_VRAM0;
2229 		break;
2230 	case XE_BO_FLAG_VRAM1:
2231 		place->mem_type = XE_PL_VRAM1;
2232 		break;
2233 	case XE_BO_FLAG_STOLEN:
2234 		place->mem_type = XE_PL_STOLEN;
2235 		break;
2236 
2237 	default:
2238 		/* 0 or multiple of the above set */
2239 		return -EINVAL;
2240 	}
2241 
2242 	bo->placement = (struct ttm_placement) {
2243 		.num_placement = 1,
2244 		.placement = place,
2245 	};
2246 
2247 	return 0;
2248 }
2249 
2250 static struct xe_bo *
__xe_bo_create_locked(struct xe_device * xe,struct xe_tile * tile,struct xe_vm * vm,size_t size,u64 start,u64 end,u16 cpu_caching,enum ttm_bo_type type,u32 flags,u64 alignment,struct drm_exec * exec)2251 __xe_bo_create_locked(struct xe_device *xe,
2252 		      struct xe_tile *tile, struct xe_vm *vm,
2253 		      size_t size, u64 start, u64 end,
2254 		      u16 cpu_caching, enum ttm_bo_type type, u32 flags,
2255 		      u64 alignment, struct drm_exec *exec)
2256 {
2257 	struct xe_bo *bo = NULL;
2258 	int err;
2259 
2260 	if (vm)
2261 		xe_vm_assert_held(vm);
2262 
2263 	if (start || end != ~0ULL) {
2264 		bo = xe_bo_alloc();
2265 		if (IS_ERR(bo))
2266 			return bo;
2267 
2268 		flags |= XE_BO_FLAG_FIXED_PLACEMENT;
2269 		err = __xe_bo_fixed_placement(xe, bo, flags, start, end, size);
2270 		if (err) {
2271 			xe_bo_free(bo);
2272 			return ERR_PTR(err);
2273 		}
2274 	}
2275 
2276 	bo = xe_bo_init_locked(xe, bo, tile, vm ? xe_vm_resv(vm) : NULL,
2277 			       vm && !xe_vm_in_fault_mode(vm) &&
2278 			       flags & XE_BO_FLAG_USER ?
2279 			       &vm->lru_bulk_move : NULL, size,
2280 			       cpu_caching, type, flags, exec);
2281 	if (IS_ERR(bo))
2282 		return bo;
2283 
2284 	bo->min_align = alignment;
2285 
2286 	/*
2287 	 * Note that instead of taking a reference no the drm_gpuvm_resv_bo(),
2288 	 * to ensure the shared resv doesn't disappear under the bo, the bo
2289 	 * will keep a reference to the vm, and avoid circular references
2290 	 * by having all the vm's bo refereferences released at vm close
2291 	 * time.
2292 	 */
2293 	if (vm && xe_bo_is_user(bo))
2294 		xe_vm_get(vm);
2295 	bo->vm = vm;
2296 
2297 	if (bo->flags & XE_BO_FLAG_GGTT) {
2298 		struct xe_tile *t;
2299 		u8 id;
2300 
2301 		if (!(bo->flags & XE_BO_FLAG_GGTT_ALL)) {
2302 			if (!tile && flags & XE_BO_FLAG_STOLEN)
2303 				tile = xe_device_get_root_tile(xe);
2304 
2305 			xe_assert(xe, tile);
2306 		}
2307 
2308 		for_each_tile(t, xe, id) {
2309 			if (t != tile && !(bo->flags & XE_BO_FLAG_GGTTx(t)))
2310 				continue;
2311 
2312 			if (flags & XE_BO_FLAG_FIXED_PLACEMENT) {
2313 				err = xe_ggtt_insert_bo_at(t->mem.ggtt, bo,
2314 							   start + xe_bo_size(bo), U64_MAX,
2315 							   exec);
2316 			} else {
2317 				err = xe_ggtt_insert_bo(t->mem.ggtt, bo, exec);
2318 			}
2319 			if (err)
2320 				goto err_unlock_put_bo;
2321 		}
2322 	}
2323 
2324 	trace_xe_bo_create(bo);
2325 	return bo;
2326 
2327 err_unlock_put_bo:
2328 	__xe_bo_unset_bulk_move(bo);
2329 	xe_bo_unlock_vm_held(bo);
2330 	xe_bo_put(bo);
2331 	return ERR_PTR(err);
2332 }
2333 
2334 /**
2335  * xe_bo_create_locked() - Create a BO
2336  * @xe: The xe device.
2337  * @tile: The tile to select for migration of this bo, and the tile used for
2338  * GGTT binding if any. Only to be non-NULL for ttm_bo_type_kernel bos.
2339  * @vm: The local vm or NULL for external objects.
2340  * @size: The storage size to use for the bo.
2341  * @type: The TTM buffer object type.
2342  * @flags: XE_BO_FLAG_ flags.
2343  * @exec: The drm_exec transaction to use for exhaustive eviction.
2344  *
2345  * Create a locked xe BO with no range- nor alignment restrictions.
2346  *
2347  * Return: The buffer object on success. Negative error pointer on failure.
2348  */
xe_bo_create_locked(struct xe_device * xe,struct xe_tile * tile,struct xe_vm * vm,size_t size,enum ttm_bo_type type,u32 flags,struct drm_exec * exec)2349 struct xe_bo *xe_bo_create_locked(struct xe_device *xe, struct xe_tile *tile,
2350 				  struct xe_vm *vm, size_t size,
2351 				  enum ttm_bo_type type, u32 flags,
2352 				  struct drm_exec *exec)
2353 {
2354 	return __xe_bo_create_locked(xe, tile, vm, size, 0, ~0ULL, 0, type,
2355 				     flags, 0, exec);
2356 }
2357 
xe_bo_create_novm(struct xe_device * xe,struct xe_tile * tile,size_t size,u16 cpu_caching,enum ttm_bo_type type,u32 flags,u64 alignment,bool intr)2358 static struct xe_bo *xe_bo_create_novm(struct xe_device *xe, struct xe_tile *tile,
2359 				       size_t size, u16 cpu_caching,
2360 				       enum ttm_bo_type type, u32 flags,
2361 				       u64 alignment, bool intr)
2362 {
2363 	struct xe_validation_ctx ctx;
2364 	struct drm_exec exec;
2365 	struct xe_bo *bo;
2366 	int ret = 0;
2367 
2368 	xe_validation_guard(&ctx, &xe->val, &exec, (struct xe_val_flags) {.interruptible = intr},
2369 			    ret) {
2370 		bo = __xe_bo_create_locked(xe, tile, NULL, size, 0, ~0ULL,
2371 					   cpu_caching, type, flags, alignment, &exec);
2372 		drm_exec_retry_on_contention(&exec);
2373 		if (IS_ERR(bo)) {
2374 			ret = PTR_ERR(bo);
2375 			xe_validation_retry_on_oom(&ctx, &ret);
2376 		} else {
2377 			xe_bo_unlock(bo);
2378 		}
2379 	}
2380 
2381 	return ret ? ERR_PTR(ret) : bo;
2382 }
2383 
2384 /**
2385  * xe_bo_create_user() - Create a user BO
2386  * @xe: The xe device.
2387  * @vm: The local vm or NULL for external objects.
2388  * @size: The storage size to use for the bo.
2389  * @cpu_caching: The caching mode to be used for system backing store.
2390  * @flags: XE_BO_FLAG_ flags.
2391  * @exec: The drm_exec transaction to use for exhaustive eviction, or NULL
2392  * if such a transaction should be initiated by the call.
2393  *
2394  * Create a bo on behalf of user-space.
2395  *
2396  * Return: The buffer object on success. Negative error pointer on failure.
2397  */
xe_bo_create_user(struct xe_device * xe,struct xe_vm * vm,size_t size,u16 cpu_caching,u32 flags,struct drm_exec * exec)2398 struct xe_bo *xe_bo_create_user(struct xe_device *xe,
2399 				struct xe_vm *vm, size_t size,
2400 				u16 cpu_caching,
2401 				u32 flags, struct drm_exec *exec)
2402 {
2403 	struct xe_bo *bo;
2404 
2405 	flags |= XE_BO_FLAG_USER;
2406 
2407 	if (vm || exec) {
2408 		xe_assert(xe, exec);
2409 		bo = __xe_bo_create_locked(xe, NULL, vm, size, 0, ~0ULL,
2410 					   cpu_caching, ttm_bo_type_device,
2411 					   flags, 0, exec);
2412 		if (!IS_ERR(bo))
2413 			xe_bo_unlock_vm_held(bo);
2414 	} else {
2415 		bo = xe_bo_create_novm(xe, NULL, size, cpu_caching,
2416 				       ttm_bo_type_device, flags, 0, true);
2417 	}
2418 
2419 	return bo;
2420 }
2421 
2422 /**
2423  * xe_bo_create_pin_range_novm() - Create and pin a BO with range options.
2424  * @xe: The xe device.
2425  * @tile: The tile to select for migration of this bo, and the tile used for
2426  * GGTT binding if any. Only to be non-NULL for ttm_bo_type_kernel bos.
2427  * @size: The storage size to use for the bo.
2428  * @start: Start of fixed VRAM range or 0.
2429  * @end: End of fixed VRAM range or ~0ULL.
2430  * @type: The TTM buffer object type.
2431  * @flags: XE_BO_FLAG_ flags.
2432  *
2433  * Create an Xe BO with range- and options. If @start and @end indicate
2434  * a fixed VRAM range, this must be a ttm_bo_type_kernel bo with VRAM placement
2435  * only.
2436  *
2437  * Return: The buffer object on success. Negative error pointer on failure.
2438  */
xe_bo_create_pin_range_novm(struct xe_device * xe,struct xe_tile * tile,size_t size,u64 start,u64 end,enum ttm_bo_type type,u32 flags)2439 struct xe_bo *xe_bo_create_pin_range_novm(struct xe_device *xe, struct xe_tile *tile,
2440 					  size_t size, u64 start, u64 end,
2441 					  enum ttm_bo_type type, u32 flags)
2442 {
2443 	struct xe_validation_ctx ctx;
2444 	struct drm_exec exec;
2445 	struct xe_bo *bo;
2446 	int err = 0;
2447 
2448 	xe_validation_guard(&ctx, &xe->val, &exec, (struct xe_val_flags) {}, err) {
2449 		bo = __xe_bo_create_locked(xe, tile, NULL, size, start, end,
2450 					   0, type, flags, 0, &exec);
2451 		if (IS_ERR(bo)) {
2452 			drm_exec_retry_on_contention(&exec);
2453 			err = PTR_ERR(bo);
2454 			xe_validation_retry_on_oom(&ctx, &err);
2455 			break;
2456 		}
2457 
2458 		err = xe_bo_pin(bo, &exec);
2459 		xe_bo_unlock(bo);
2460 		if (err) {
2461 			xe_bo_put(bo);
2462 			drm_exec_retry_on_contention(&exec);
2463 			xe_validation_retry_on_oom(&ctx, &err);
2464 			break;
2465 		}
2466 	}
2467 
2468 	return err ? ERR_PTR(err) : bo;
2469 }
2470 
xe_bo_create_pin_map_at_aligned(struct xe_device * xe,struct xe_tile * tile,struct xe_vm * vm,size_t size,u64 offset,enum ttm_bo_type type,u32 flags,u64 alignment,struct drm_exec * exec)2471 static struct xe_bo *xe_bo_create_pin_map_at_aligned(struct xe_device *xe,
2472 						     struct xe_tile *tile,
2473 						     struct xe_vm *vm,
2474 						     size_t size, u64 offset,
2475 						     enum ttm_bo_type type, u32 flags,
2476 						     u64 alignment, struct drm_exec *exec)
2477 {
2478 	struct xe_bo *bo;
2479 	int err;
2480 	u64 start = offset == ~0ull ? 0 : offset;
2481 	u64 end = offset == ~0ull ? ~0ull : start + size;
2482 
2483 	if (flags & XE_BO_FLAG_STOLEN &&
2484 	    xe_ttm_stolen_cpu_access_needs_ggtt(xe))
2485 		flags |= XE_BO_FLAG_GGTT;
2486 
2487 	bo = __xe_bo_create_locked(xe, tile, vm, size, start, end, 0, type,
2488 				   flags | XE_BO_FLAG_NEEDS_CPU_ACCESS | XE_BO_FLAG_PINNED,
2489 				   alignment, exec);
2490 	if (IS_ERR(bo))
2491 		return bo;
2492 
2493 	err = xe_bo_pin(bo, exec);
2494 	if (err)
2495 		goto err_put;
2496 
2497 	err = xe_bo_vmap(bo);
2498 	if (err)
2499 		goto err_unpin;
2500 
2501 	xe_bo_unlock_vm_held(bo);
2502 
2503 	return bo;
2504 
2505 err_unpin:
2506 	xe_bo_unpin(bo);
2507 err_put:
2508 	xe_bo_unlock_vm_held(bo);
2509 	xe_bo_put(bo);
2510 	return ERR_PTR(err);
2511 }
2512 
2513 /**
2514  * xe_bo_create_pin_map_at_novm() - Create pinned and mapped bo at optional VRAM offset
2515  * @xe: The xe device.
2516  * @tile: The tile to select for migration of this bo, and the tile used for
2517  * GGTT binding if any. Only to be non-NULL for ttm_bo_type_kernel bos.
2518  * @size: The storage size to use for the bo.
2519  * @offset: Optional VRAM offset or %~0ull for don't care.
2520  * @type: The TTM buffer object type.
2521  * @flags: XE_BO_FLAG_ flags.
2522  * @alignment: GGTT alignment.
2523  * @intr: Whether to execute any waits for backing store interruptible.
2524  *
2525  * Create a pinned and optionally mapped bo with VRAM offset and GGTT alignment
2526  * options. The bo will be external and not associated with a VM.
2527  *
2528  * Return: The buffer object on success. Negative error pointer on failure.
2529  * In particular, the function may return ERR_PTR(%-EINTR) if @intr was set
2530  * to true on entry.
2531  */
2532 struct xe_bo *
xe_bo_create_pin_map_at_novm(struct xe_device * xe,struct xe_tile * tile,size_t size,u64 offset,enum ttm_bo_type type,u32 flags,u64 alignment,bool intr)2533 xe_bo_create_pin_map_at_novm(struct xe_device *xe, struct xe_tile *tile,
2534 			     size_t size, u64 offset, enum ttm_bo_type type, u32 flags,
2535 			     u64 alignment, bool intr)
2536 {
2537 	struct xe_validation_ctx ctx;
2538 	struct drm_exec exec;
2539 	struct xe_bo *bo;
2540 	int ret = 0;
2541 
2542 	xe_validation_guard(&ctx, &xe->val, &exec, (struct xe_val_flags) {.interruptible = intr},
2543 			    ret) {
2544 		bo = xe_bo_create_pin_map_at_aligned(xe, tile, NULL, size, offset,
2545 						     type, flags, alignment, &exec);
2546 		if (IS_ERR(bo)) {
2547 			drm_exec_retry_on_contention(&exec);
2548 			ret = PTR_ERR(bo);
2549 			xe_validation_retry_on_oom(&ctx, &ret);
2550 		}
2551 	}
2552 
2553 	return ret ? ERR_PTR(ret) : bo;
2554 }
2555 
2556 /**
2557  * xe_bo_create_pin_map() - Create pinned and mapped bo
2558  * @xe: The xe device.
2559  * @tile: The tile to select for migration of this bo, and the tile used for
2560  * @vm: The vm to associate the buffer object with. The vm's resv must be locked
2561  * with the transaction represented by @exec.
2562  * GGTT binding if any. Only to be non-NULL for ttm_bo_type_kernel bos.
2563  * @size: The storage size to use for the bo.
2564  * @type: The TTM buffer object type.
2565  * @flags: XE_BO_FLAG_ flags.
2566  * @exec: The drm_exec transaction to use for exhaustive eviction, and
2567  * previously used for locking @vm's resv.
2568  *
2569  * Create a pinned and mapped bo. The bo will be external and not associated
2570  * with a VM.
2571  *
2572  * Return: The buffer object on success. Negative error pointer on failure.
2573  * In particular, the function may return ERR_PTR(%-EINTR) if @exec was
2574  * configured for interruptible locking.
2575  */
xe_bo_create_pin_map(struct xe_device * xe,struct xe_tile * tile,struct xe_vm * vm,size_t size,enum ttm_bo_type type,u32 flags,struct drm_exec * exec)2576 struct xe_bo *xe_bo_create_pin_map(struct xe_device *xe, struct xe_tile *tile,
2577 				   struct xe_vm *vm, size_t size,
2578 				   enum ttm_bo_type type, u32 flags,
2579 				   struct drm_exec *exec)
2580 {
2581 	return xe_bo_create_pin_map_at_aligned(xe, tile, vm, size, ~0ull, type, flags,
2582 					       0, exec);
2583 }
2584 
2585 /**
2586  * xe_bo_create_pin_map_novm() - Create pinned and mapped bo
2587  * @xe: The xe device.
2588  * @tile: The tile to select for migration of this bo, and the tile used for
2589  * GGTT binding if any. Only to be non-NULL for ttm_bo_type_kernel bos.
2590  * @size: The storage size to use for the bo.
2591  * @type: The TTM buffer object type.
2592  * @flags: XE_BO_FLAG_ flags.
2593  * @intr: Whether to execut any waits for backing store interruptible.
2594  *
2595  * Create a pinned and mapped bo. The bo will be external and not associated
2596  * with a VM.
2597  *
2598  * Return: The buffer object on success. Negative error pointer on failure.
2599  * In particular, the function may return ERR_PTR(%-EINTR) if @intr was set
2600  * to true on entry.
2601  */
xe_bo_create_pin_map_novm(struct xe_device * xe,struct xe_tile * tile,size_t size,enum ttm_bo_type type,u32 flags,bool intr)2602 struct xe_bo *xe_bo_create_pin_map_novm(struct xe_device *xe, struct xe_tile *tile,
2603 					size_t size, enum ttm_bo_type type, u32 flags,
2604 					bool intr)
2605 {
2606 	return xe_bo_create_pin_map_at_novm(xe, tile, size, ~0ull, type, flags, 0, intr);
2607 }
2608 
__xe_bo_unpin_map_no_vm(void * arg)2609 static void __xe_bo_unpin_map_no_vm(void *arg)
2610 {
2611 	xe_bo_unpin_map_no_vm(arg);
2612 }
2613 
xe_managed_bo_create_pin_map(struct xe_device * xe,struct xe_tile * tile,size_t size,u32 flags)2614 struct xe_bo *xe_managed_bo_create_pin_map(struct xe_device *xe, struct xe_tile *tile,
2615 					   size_t size, u32 flags)
2616 {
2617 	struct xe_bo *bo;
2618 	int ret;
2619 
2620 	KUNIT_STATIC_STUB_REDIRECT(xe_managed_bo_create_pin_map, xe, tile, size, flags);
2621 	bo = xe_bo_create_pin_map_novm(xe, tile, size, ttm_bo_type_kernel, flags, true);
2622 	if (IS_ERR(bo))
2623 		return bo;
2624 
2625 	ret = devm_add_action_or_reset(xe->drm.dev, __xe_bo_unpin_map_no_vm, bo);
2626 	if (ret)
2627 		return ERR_PTR(ret);
2628 
2629 	return bo;
2630 }
2631 
xe_managed_bo_unpin_map_no_vm(struct xe_bo * bo)2632 void xe_managed_bo_unpin_map_no_vm(struct xe_bo *bo)
2633 {
2634 	devm_release_action(xe_bo_device(bo)->drm.dev, __xe_bo_unpin_map_no_vm, bo);
2635 }
2636 
xe_managed_bo_create_from_data(struct xe_device * xe,struct xe_tile * tile,const void * data,size_t size,u32 flags)2637 struct xe_bo *xe_managed_bo_create_from_data(struct xe_device *xe, struct xe_tile *tile,
2638 					     const void *data, size_t size, u32 flags)
2639 {
2640 	struct xe_bo *bo = xe_managed_bo_create_pin_map(xe, tile, ALIGN(size, PAGE_SIZE), flags);
2641 
2642 	if (IS_ERR(bo))
2643 		return bo;
2644 
2645 	xe_map_memcpy_to(xe, &bo->vmap, 0, data, size);
2646 
2647 	return bo;
2648 }
2649 
2650 /**
2651  * xe_managed_bo_reinit_in_vram
2652  * @xe: xe device
2653  * @tile: Tile where the new buffer will be created
2654  * @src: Managed buffer object allocated in system memory
2655  *
2656  * Replace a managed src buffer object allocated in system memory with a new
2657  * one allocated in vram, copying the data between them.
2658  * Buffer object in VRAM is not going to have the same GGTT address, the caller
2659  * is responsible for making sure that any old references to it are updated.
2660  *
2661  * Returns 0 for success, negative error code otherwise.
2662  */
xe_managed_bo_reinit_in_vram(struct xe_device * xe,struct xe_tile * tile,struct xe_bo ** src)2663 int xe_managed_bo_reinit_in_vram(struct xe_device *xe, struct xe_tile *tile, struct xe_bo **src)
2664 {
2665 	struct xe_bo *bo;
2666 	u32 dst_flags = XE_BO_FLAG_VRAM_IF_DGFX(tile) | XE_BO_FLAG_GGTT;
2667 
2668 	dst_flags |= (*src)->flags & (XE_BO_FLAG_GGTT_INVALIDATE |
2669 				      XE_BO_FLAG_PINNED_NORESTORE);
2670 
2671 	xe_assert(xe, IS_DGFX(xe));
2672 	xe_assert(xe, !(*src)->vmap.is_iomem);
2673 
2674 	bo = xe_managed_bo_create_from_data(xe, tile, (*src)->vmap.vaddr,
2675 					    xe_bo_size(*src), dst_flags);
2676 	if (IS_ERR(bo))
2677 		return PTR_ERR(bo);
2678 
2679 	devm_release_action(xe->drm.dev, __xe_bo_unpin_map_no_vm, *src);
2680 	*src = bo;
2681 
2682 	return 0;
2683 }
2684 
2685 /*
2686  * XXX: This is in the VM bind data path, likely should calculate this once and
2687  * store, with a recalculation if the BO is moved.
2688  */
vram_region_gpu_offset(struct ttm_resource * res)2689 uint64_t vram_region_gpu_offset(struct ttm_resource *res)
2690 {
2691 	struct xe_device *xe = ttm_to_xe_device(res->bo->bdev);
2692 
2693 	switch (res->mem_type) {
2694 	case XE_PL_STOLEN:
2695 		return xe_ttm_stolen_gpu_offset(xe);
2696 	case XE_PL_TT:
2697 	case XE_PL_SYSTEM:
2698 		return 0;
2699 	default:
2700 		return res_to_mem_region(res)->dpa_base;
2701 	}
2702 	return 0;
2703 }
2704 
2705 /**
2706  * xe_bo_pin_external - pin an external BO
2707  * @bo: buffer object to be pinned
2708  * @in_place: Pin in current placement, don't attempt to migrate.
2709  * @exec: The drm_exec transaction to use for exhaustive eviction.
2710  *
2711  * Pin an external (not tied to a VM, can be exported via dma-buf / prime FD)
2712  * BO. Unique call compared to xe_bo_pin as this function has it own set of
2713  * asserts and code to ensure evict / restore on suspend / resume.
2714  *
2715  * Returns 0 for success, negative error code otherwise.
2716  */
xe_bo_pin_external(struct xe_bo * bo,bool in_place,struct drm_exec * exec)2717 int xe_bo_pin_external(struct xe_bo *bo, bool in_place, struct drm_exec *exec)
2718 {
2719 	struct xe_device *xe = xe_bo_device(bo);
2720 	int err;
2721 
2722 	xe_assert(xe, !bo->vm);
2723 	xe_assert(xe, xe_bo_is_user(bo));
2724 
2725 	if (!xe_bo_is_pinned(bo)) {
2726 		if (!in_place) {
2727 			err = xe_bo_validate(bo, NULL, false, exec);
2728 			if (err)
2729 				return err;
2730 		}
2731 
2732 		spin_lock(&xe->pinned.lock);
2733 		list_add_tail(&bo->pinned_link, &xe->pinned.late.external);
2734 		spin_unlock(&xe->pinned.lock);
2735 	}
2736 
2737 	ttm_bo_pin(&bo->ttm);
2738 	if (bo->ttm.ttm && ttm_tt_is_populated(bo->ttm.ttm))
2739 		xe_ttm_tt_account_subtract(xe, bo->ttm.ttm);
2740 
2741 	/*
2742 	 * FIXME: If we always use the reserve / unreserve functions for locking
2743 	 * we do not need this.
2744 	 */
2745 	ttm_bo_move_to_lru_tail_unlocked(&bo->ttm);
2746 
2747 	return 0;
2748 }
2749 
2750 /**
2751  * xe_bo_pin() - Pin a kernel bo after potentially migrating it
2752  * @bo: The kernel bo to pin.
2753  * @exec: The drm_exec transaction to use for exhaustive eviction.
2754  *
2755  * Attempts to migrate a bo to @bo->placement. If that succeeds,
2756  * pins the bo.
2757  *
2758  * Return: %0 on success, negative error code on migration failure.
2759  */
xe_bo_pin(struct xe_bo * bo,struct drm_exec * exec)2760 int xe_bo_pin(struct xe_bo *bo, struct drm_exec *exec)
2761 {
2762 	struct ttm_place *place = &bo->placements[0];
2763 	struct xe_device *xe = xe_bo_device(bo);
2764 	int err;
2765 
2766 	/* We currently don't expect user BO to be pinned */
2767 	xe_assert(xe, !xe_bo_is_user(bo));
2768 
2769 	/* Pinned object must be in GGTT or have pinned flag */
2770 	xe_assert(xe, bo->flags & (XE_BO_FLAG_PINNED |
2771 				   XE_BO_FLAG_GGTT));
2772 
2773 	/*
2774 	 * No reason we can't support pinning imported dma-bufs we just don't
2775 	 * expect to pin an imported dma-buf.
2776 	 */
2777 	xe_assert(xe, !bo->ttm.base.import_attach);
2778 
2779 	/* We only expect at most 1 pin */
2780 	xe_assert(xe, !xe_bo_is_pinned(bo));
2781 
2782 	err = xe_bo_validate(bo, NULL, false, exec);
2783 	if (err)
2784 		return err;
2785 
2786 	if (mem_type_is_vram(place->mem_type) || bo->flags & XE_BO_FLAG_GGTT) {
2787 		spin_lock(&xe->pinned.lock);
2788 		if (bo->flags & XE_BO_FLAG_PINNED_LATE_RESTORE)
2789 			list_add_tail(&bo->pinned_link, &xe->pinned.late.kernel_bo_present);
2790 		else
2791 			list_add_tail(&bo->pinned_link, &xe->pinned.early.kernel_bo_present);
2792 		spin_unlock(&xe->pinned.lock);
2793 	}
2794 
2795 	ttm_bo_pin(&bo->ttm);
2796 	if (bo->ttm.ttm && ttm_tt_is_populated(bo->ttm.ttm))
2797 		xe_ttm_tt_account_subtract(xe, bo->ttm.ttm);
2798 
2799 	/*
2800 	 * FIXME: If we always use the reserve / unreserve functions for locking
2801 	 * we do not need this.
2802 	 */
2803 	ttm_bo_move_to_lru_tail_unlocked(&bo->ttm);
2804 
2805 	return 0;
2806 }
2807 
2808 /**
2809  * xe_bo_unpin_external - unpin an external BO
2810  * @bo: buffer object to be unpinned
2811  *
2812  * Unpin an external (not tied to a VM, can be exported via dma-buf / prime FD)
2813  * BO. Unique call compared to xe_bo_unpin as this function has it own set of
2814  * asserts and code to ensure evict / restore on suspend / resume.
2815  *
2816  * Returns 0 for success, negative error code otherwise.
2817  */
xe_bo_unpin_external(struct xe_bo * bo)2818 void xe_bo_unpin_external(struct xe_bo *bo)
2819 {
2820 	struct xe_device *xe = xe_bo_device(bo);
2821 
2822 	xe_assert(xe, !bo->vm);
2823 	xe_assert(xe, xe_bo_is_pinned(bo));
2824 	xe_assert(xe, xe_bo_is_user(bo));
2825 
2826 	spin_lock(&xe->pinned.lock);
2827 	if (bo->ttm.pin_count == 1 && !list_empty(&bo->pinned_link))
2828 		list_del_init(&bo->pinned_link);
2829 	spin_unlock(&xe->pinned.lock);
2830 
2831 	ttm_bo_unpin(&bo->ttm);
2832 	if (bo->ttm.ttm && ttm_tt_is_populated(bo->ttm.ttm))
2833 		xe_ttm_tt_account_add(xe, bo->ttm.ttm);
2834 
2835 	/*
2836 	 * FIXME: If we always use the reserve / unreserve functions for locking
2837 	 * we do not need this.
2838 	 */
2839 	ttm_bo_move_to_lru_tail_unlocked(&bo->ttm);
2840 }
2841 
xe_bo_unpin(struct xe_bo * bo)2842 void xe_bo_unpin(struct xe_bo *bo)
2843 {
2844 	struct ttm_place *place = &bo->placements[0];
2845 	struct xe_device *xe = xe_bo_device(bo);
2846 
2847 	xe_assert(xe, !bo->ttm.base.import_attach);
2848 	xe_assert(xe, xe_bo_is_pinned(bo));
2849 
2850 	if (mem_type_is_vram(place->mem_type) || bo->flags & XE_BO_FLAG_GGTT) {
2851 		spin_lock(&xe->pinned.lock);
2852 		xe_assert(xe, !list_empty(&bo->pinned_link));
2853 		list_del_init(&bo->pinned_link);
2854 		spin_unlock(&xe->pinned.lock);
2855 
2856 		if (bo->backup_obj) {
2857 			if (xe_bo_is_pinned(bo->backup_obj))
2858 				ttm_bo_unpin(&bo->backup_obj->ttm);
2859 			xe_bo_put(bo->backup_obj);
2860 			bo->backup_obj = NULL;
2861 		}
2862 	}
2863 	ttm_bo_unpin(&bo->ttm);
2864 	if (bo->ttm.ttm && ttm_tt_is_populated(bo->ttm.ttm))
2865 		xe_ttm_tt_account_add(xe, bo->ttm.ttm);
2866 }
2867 
2868 /**
2869  * xe_bo_validate() - Make sure the bo is in an allowed placement
2870  * @bo: The bo,
2871  * @vm: Pointer to a the vm the bo shares a locked dma_resv object with, or
2872  *      NULL. Used together with @allow_res_evict.
2873  * @allow_res_evict: Whether it's allowed to evict bos sharing @vm's
2874  *                   reservation object.
2875  * @exec: The drm_exec transaction to use for exhaustive eviction.
2876  *
2877  * Make sure the bo is in allowed placement, migrating it if necessary. If
2878  * needed, other bos will be evicted. If bos selected for eviction shares
2879  * the @vm's reservation object, they can be evicted iff @allow_res_evict is
2880  * set to true, otherwise they will be bypassed.
2881  *
2882  * Return: 0 on success, negative error code on failure. May return
2883  * -EINTR or -ERESTARTSYS if internal waits are interrupted by a signal.
2884  */
xe_bo_validate(struct xe_bo * bo,struct xe_vm * vm,bool allow_res_evict,struct drm_exec * exec)2885 int xe_bo_validate(struct xe_bo *bo, struct xe_vm *vm, bool allow_res_evict,
2886 		   struct drm_exec *exec)
2887 {
2888 	struct ttm_operation_ctx ctx = {
2889 		.interruptible = true,
2890 		.no_wait_gpu = false,
2891 		.gfp_retry_mayfail = true,
2892 	};
2893 	int ret;
2894 
2895 	if (xe_bo_is_pinned(bo))
2896 		return 0;
2897 
2898 	if (vm) {
2899 		lockdep_assert_held(&vm->lock);
2900 		xe_vm_assert_held(vm);
2901 
2902 		ctx.allow_res_evict = allow_res_evict;
2903 		ctx.resv = xe_vm_resv(vm);
2904 	}
2905 
2906 	xe_vm_set_validating(vm, allow_res_evict);
2907 	trace_xe_bo_validate(bo);
2908 	xe_validation_assert_exec(xe_bo_device(bo), exec, &bo->ttm.base);
2909 	ret = ttm_bo_validate(&bo->ttm, &bo->placement, &ctx);
2910 	xe_vm_clear_validating(vm, allow_res_evict);
2911 
2912 	return ret;
2913 }
2914 
xe_bo_is_xe_bo(struct ttm_buffer_object * bo)2915 bool xe_bo_is_xe_bo(struct ttm_buffer_object *bo)
2916 {
2917 	if (bo->destroy == &xe_ttm_bo_destroy)
2918 		return true;
2919 
2920 	return false;
2921 }
2922 
2923 /*
2924  * Resolve a BO address. There is no assert to check if the proper lock is held
2925  * so it should only be used in cases where it is not fatal to get the wrong
2926  * address, such as printing debug information, but not in cases where memory is
2927  * written based on this result.
2928  */
__xe_bo_addr(struct xe_bo * bo,u64 offset,size_t page_size)2929 dma_addr_t __xe_bo_addr(struct xe_bo *bo, u64 offset, size_t page_size)
2930 {
2931 	struct xe_device *xe = xe_bo_device(bo);
2932 	struct xe_res_cursor cur;
2933 	u64 page;
2934 
2935 	xe_assert(xe, page_size <= PAGE_SIZE);
2936 	page = offset >> PAGE_SHIFT;
2937 	offset &= (PAGE_SIZE - 1);
2938 
2939 	if (!xe_bo_is_vram(bo) && !xe_bo_is_stolen(bo)) {
2940 		xe_assert(xe, bo->ttm.ttm);
2941 
2942 		xe_res_first_sg(xe_bo_sg(bo), page << PAGE_SHIFT,
2943 				page_size, &cur);
2944 		return xe_res_dma(&cur) + offset;
2945 	} else {
2946 		struct xe_res_cursor cur;
2947 
2948 		xe_res_first(bo->ttm.resource, page << PAGE_SHIFT,
2949 			     page_size, &cur);
2950 		return cur.start + offset + vram_region_gpu_offset(bo->ttm.resource);
2951 	}
2952 }
2953 
xe_bo_addr(struct xe_bo * bo,u64 offset,size_t page_size)2954 dma_addr_t xe_bo_addr(struct xe_bo *bo, u64 offset, size_t page_size)
2955 {
2956 	if (!READ_ONCE(bo->ttm.pin_count))
2957 		xe_bo_assert_held(bo);
2958 	return __xe_bo_addr(bo, offset, page_size);
2959 }
2960 
xe_bo_vmap(struct xe_bo * bo)2961 int xe_bo_vmap(struct xe_bo *bo)
2962 {
2963 	struct xe_device *xe = ttm_to_xe_device(bo->ttm.bdev);
2964 	void *virtual;
2965 	bool is_iomem;
2966 	int ret;
2967 
2968 	xe_bo_assert_held(bo);
2969 
2970 	if (drm_WARN_ON(&xe->drm, !(bo->flags & XE_BO_FLAG_NEEDS_CPU_ACCESS) ||
2971 			!force_contiguous(bo->flags)))
2972 		return -EINVAL;
2973 
2974 	if (!iosys_map_is_null(&bo->vmap))
2975 		return 0;
2976 
2977 	/*
2978 	 * We use this more or less deprecated interface for now since
2979 	 * ttm_bo_vmap() doesn't offer the optimization of kmapping
2980 	 * single page bos, which is done here.
2981 	 * TODO: Fix up ttm_bo_vmap to do that, or fix up ttm_bo_kmap
2982 	 * to use struct iosys_map.
2983 	 */
2984 	ret = ttm_bo_kmap(&bo->ttm, 0, xe_bo_size(bo) >> PAGE_SHIFT, &bo->kmap);
2985 	if (ret)
2986 		return ret;
2987 
2988 	virtual = ttm_kmap_obj_virtual(&bo->kmap, &is_iomem);
2989 	if (is_iomem)
2990 		iosys_map_set_vaddr_iomem(&bo->vmap, (void __iomem *)virtual);
2991 	else
2992 		iosys_map_set_vaddr(&bo->vmap, virtual);
2993 
2994 	return 0;
2995 }
2996 
__xe_bo_vunmap(struct xe_bo * bo)2997 static void __xe_bo_vunmap(struct xe_bo *bo)
2998 {
2999 	if (!iosys_map_is_null(&bo->vmap)) {
3000 		iosys_map_clear(&bo->vmap);
3001 		ttm_bo_kunmap(&bo->kmap);
3002 	}
3003 }
3004 
xe_bo_vunmap(struct xe_bo * bo)3005 void xe_bo_vunmap(struct xe_bo *bo)
3006 {
3007 	xe_bo_assert_held(bo);
3008 	__xe_bo_vunmap(bo);
3009 }
3010 
gem_create_set_pxp_type(struct xe_device * xe,struct xe_bo * bo,u64 value)3011 static int gem_create_set_pxp_type(struct xe_device *xe, struct xe_bo *bo, u64 value)
3012 {
3013 	if (value == DRM_XE_PXP_TYPE_NONE)
3014 		return 0;
3015 
3016 	/* we only support DRM_XE_PXP_TYPE_HWDRM for now */
3017 	if (XE_IOCTL_DBG(xe, value != DRM_XE_PXP_TYPE_HWDRM))
3018 		return -EINVAL;
3019 
3020 	return xe_pxp_key_assign(xe->pxp, bo);
3021 }
3022 
3023 typedef int (*xe_gem_create_set_property_fn)(struct xe_device *xe,
3024 					     struct xe_bo *bo,
3025 					     u64 value);
3026 
3027 static const xe_gem_create_set_property_fn gem_create_set_property_funcs[] = {
3028 	[DRM_XE_GEM_CREATE_SET_PROPERTY_PXP_TYPE] = gem_create_set_pxp_type,
3029 };
3030 
gem_create_user_ext_set_property(struct xe_device * xe,struct xe_bo * bo,u64 extension)3031 static int gem_create_user_ext_set_property(struct xe_device *xe,
3032 					    struct xe_bo *bo,
3033 					    u64 extension)
3034 {
3035 	u64 __user *address = u64_to_user_ptr(extension);
3036 	struct drm_xe_ext_set_property ext;
3037 	int err;
3038 	u32 idx;
3039 
3040 	err = copy_from_user(&ext, address, sizeof(ext));
3041 	if (XE_IOCTL_DBG(xe, err))
3042 		return -EFAULT;
3043 
3044 	if (XE_IOCTL_DBG(xe, ext.property >=
3045 			 ARRAY_SIZE(gem_create_set_property_funcs)) ||
3046 	    XE_IOCTL_DBG(xe, ext.pad) ||
3047 	    XE_IOCTL_DBG(xe, ext.property != DRM_XE_GEM_CREATE_EXTENSION_SET_PROPERTY))
3048 		return -EINVAL;
3049 
3050 	idx = array_index_nospec(ext.property, ARRAY_SIZE(gem_create_set_property_funcs));
3051 	if (!gem_create_set_property_funcs[idx])
3052 		return -EINVAL;
3053 
3054 	return gem_create_set_property_funcs[idx](xe, bo, ext.value);
3055 }
3056 
3057 typedef int (*xe_gem_create_user_extension_fn)(struct xe_device *xe,
3058 					       struct xe_bo *bo,
3059 					       u64 extension);
3060 
3061 static const xe_gem_create_user_extension_fn gem_create_user_extension_funcs[] = {
3062 	[DRM_XE_GEM_CREATE_EXTENSION_SET_PROPERTY] = gem_create_user_ext_set_property,
3063 };
3064 
3065 #define MAX_USER_EXTENSIONS	16
gem_create_user_extensions(struct xe_device * xe,struct xe_bo * bo,u64 extensions,int ext_number)3066 static int gem_create_user_extensions(struct xe_device *xe, struct xe_bo *bo,
3067 				      u64 extensions, int ext_number)
3068 {
3069 	u64 __user *address = u64_to_user_ptr(extensions);
3070 	struct drm_xe_user_extension ext;
3071 	int err;
3072 	u32 idx;
3073 
3074 	if (XE_IOCTL_DBG(xe, ext_number >= MAX_USER_EXTENSIONS))
3075 		return -E2BIG;
3076 
3077 	err = copy_from_user(&ext, address, sizeof(ext));
3078 	if (XE_IOCTL_DBG(xe, err))
3079 		return -EFAULT;
3080 
3081 	if (XE_IOCTL_DBG(xe, ext.pad) ||
3082 	    XE_IOCTL_DBG(xe, ext.name >= ARRAY_SIZE(gem_create_user_extension_funcs)))
3083 		return -EINVAL;
3084 
3085 	idx = array_index_nospec(ext.name,
3086 				 ARRAY_SIZE(gem_create_user_extension_funcs));
3087 	err = gem_create_user_extension_funcs[idx](xe, bo, extensions);
3088 	if (XE_IOCTL_DBG(xe, err))
3089 		return err;
3090 
3091 	if (ext.next_extension)
3092 		return gem_create_user_extensions(xe, bo, ext.next_extension,
3093 						  ++ext_number);
3094 
3095 	return 0;
3096 }
3097 
xe_gem_create_ioctl(struct drm_device * dev,void * data,struct drm_file * file)3098 int xe_gem_create_ioctl(struct drm_device *dev, void *data,
3099 			struct drm_file *file)
3100 {
3101 	struct xe_device *xe = to_xe_device(dev);
3102 	struct xe_file *xef = to_xe_file(file);
3103 	struct drm_xe_gem_create *args = data;
3104 	struct xe_validation_ctx ctx;
3105 	struct drm_exec exec;
3106 	struct xe_vm *vm = NULL;
3107 	struct xe_bo *bo;
3108 	unsigned int bo_flags;
3109 	u32 handle;
3110 	int err;
3111 
3112 	if (XE_IOCTL_DBG(xe, args->pad[0] || args->pad[1] || args->pad[2]) ||
3113 	    XE_IOCTL_DBG(xe, args->reserved[0] || args->reserved[1]))
3114 		return -EINVAL;
3115 
3116 	/* at least one valid memory placement must be specified */
3117 	if (XE_IOCTL_DBG(xe, (args->placement & ~xe->info.mem_region_mask) ||
3118 			 !args->placement))
3119 		return -EINVAL;
3120 
3121 	if (XE_IOCTL_DBG(xe, args->flags &
3122 			 ~(DRM_XE_GEM_CREATE_FLAG_DEFER_BACKING |
3123 			   DRM_XE_GEM_CREATE_FLAG_SCANOUT |
3124 			   DRM_XE_GEM_CREATE_FLAG_NEEDS_VISIBLE_VRAM)))
3125 		return -EINVAL;
3126 
3127 	if (XE_IOCTL_DBG(xe, args->handle))
3128 		return -EINVAL;
3129 
3130 	if (XE_IOCTL_DBG(xe, !args->size))
3131 		return -EINVAL;
3132 
3133 	if (XE_IOCTL_DBG(xe, args->size > SIZE_MAX))
3134 		return -EINVAL;
3135 
3136 	if (XE_IOCTL_DBG(xe, args->size & ~PAGE_MASK))
3137 		return -EINVAL;
3138 
3139 	bo_flags = 0;
3140 	if (args->flags & DRM_XE_GEM_CREATE_FLAG_DEFER_BACKING)
3141 		bo_flags |= XE_BO_FLAG_DEFER_BACKING;
3142 
3143 	if (args->flags & DRM_XE_GEM_CREATE_FLAG_SCANOUT)
3144 		bo_flags |= XE_BO_FLAG_SCANOUT;
3145 
3146 	bo_flags |= args->placement << (ffs(XE_BO_FLAG_SYSTEM) - 1);
3147 
3148 	/* CCS formats need physical placement at a 64K alignment in VRAM. */
3149 	if ((bo_flags & XE_BO_FLAG_VRAM_MASK) &&
3150 	    (bo_flags & XE_BO_FLAG_SCANOUT) &&
3151 	    !(xe->info.vram_flags & XE_VRAM_FLAGS_NEED64K) &&
3152 	    IS_ALIGNED(args->size, SZ_64K))
3153 		bo_flags |= XE_BO_FLAG_NEEDS_64K;
3154 
3155 	if (args->flags & DRM_XE_GEM_CREATE_FLAG_NEEDS_VISIBLE_VRAM) {
3156 		if (XE_IOCTL_DBG(xe, !(bo_flags & XE_BO_FLAG_VRAM_MASK)))
3157 			return -EINVAL;
3158 
3159 		bo_flags |= XE_BO_FLAG_NEEDS_CPU_ACCESS;
3160 	}
3161 
3162 	if (XE_IOCTL_DBG(xe, !args->cpu_caching ||
3163 			 args->cpu_caching > DRM_XE_GEM_CPU_CACHING_WC))
3164 		return -EINVAL;
3165 
3166 	if (XE_IOCTL_DBG(xe, bo_flags & XE_BO_FLAG_VRAM_MASK &&
3167 			 args->cpu_caching != DRM_XE_GEM_CPU_CACHING_WC))
3168 		return -EINVAL;
3169 
3170 	if (XE_IOCTL_DBG(xe, bo_flags & XE_BO_FLAG_SCANOUT &&
3171 			 args->cpu_caching == DRM_XE_GEM_CPU_CACHING_WB))
3172 		return -EINVAL;
3173 
3174 	if (args->vm_id) {
3175 		vm = xe_vm_lookup(xef, args->vm_id);
3176 		if (XE_IOCTL_DBG(xe, !vm))
3177 			return -ENOENT;
3178 	}
3179 
3180 	err = 0;
3181 	xe_validation_guard(&ctx, &xe->val, &exec, (struct xe_val_flags) {.interruptible = true},
3182 			    err) {
3183 		if (vm) {
3184 			err = xe_vm_drm_exec_lock(vm, &exec);
3185 			drm_exec_retry_on_contention(&exec);
3186 			if (err)
3187 				break;
3188 		}
3189 		bo = xe_bo_create_user(xe, vm, args->size, args->cpu_caching,
3190 				       bo_flags, &exec);
3191 		drm_exec_retry_on_contention(&exec);
3192 		if (IS_ERR(bo)) {
3193 			err = PTR_ERR(bo);
3194 			xe_validation_retry_on_oom(&ctx, &err);
3195 			break;
3196 		}
3197 	}
3198 	if (err)
3199 		goto out_vm;
3200 
3201 	if (args->extensions) {
3202 		err = gem_create_user_extensions(xe, bo, args->extensions, 0);
3203 		if (err)
3204 			goto out_bulk;
3205 	}
3206 
3207 	err = drm_gem_handle_create(file, &bo->ttm.base, &handle);
3208 	if (err)
3209 		goto out_bulk;
3210 
3211 	args->handle = handle;
3212 	goto out_put;
3213 
3214 out_bulk:
3215 	if (vm && !xe_vm_in_fault_mode(vm)) {
3216 		xe_vm_lock(vm, false);
3217 		__xe_bo_unset_bulk_move(bo);
3218 		xe_vm_unlock(vm);
3219 	}
3220 out_put:
3221 	xe_bo_put(bo);
3222 out_vm:
3223 	if (vm)
3224 		xe_vm_put(vm);
3225 
3226 	return err;
3227 }
3228 
xe_gem_mmap_offset_ioctl(struct drm_device * dev,void * data,struct drm_file * file)3229 int xe_gem_mmap_offset_ioctl(struct drm_device *dev, void *data,
3230 			     struct drm_file *file)
3231 {
3232 	struct xe_device *xe = to_xe_device(dev);
3233 	struct drm_xe_gem_mmap_offset *args = data;
3234 	struct drm_gem_object *gem_obj;
3235 
3236 	if (XE_IOCTL_DBG(xe, args->extensions) ||
3237 	    XE_IOCTL_DBG(xe, args->reserved[0] || args->reserved[1]))
3238 		return -EINVAL;
3239 
3240 	if (XE_IOCTL_DBG(xe, args->flags &
3241 			 ~DRM_XE_MMAP_OFFSET_FLAG_PCI_BARRIER))
3242 		return -EINVAL;
3243 
3244 	if (args->flags & DRM_XE_MMAP_OFFSET_FLAG_PCI_BARRIER) {
3245 		if (XE_IOCTL_DBG(xe, !IS_DGFX(xe)))
3246 			return -EINVAL;
3247 
3248 		if (XE_IOCTL_DBG(xe, args->handle))
3249 			return -EINVAL;
3250 
3251 		if (XE_IOCTL_DBG(xe, PAGE_SIZE > SZ_4K))
3252 			return -EINVAL;
3253 
3254 		BUILD_BUG_ON(((XE_PCI_BARRIER_MMAP_OFFSET >> XE_PTE_SHIFT) +
3255 			      SZ_4K) >= DRM_FILE_PAGE_OFFSET_START);
3256 		args->offset = XE_PCI_BARRIER_MMAP_OFFSET;
3257 		return 0;
3258 	}
3259 
3260 	gem_obj = drm_gem_object_lookup(file, args->handle);
3261 	if (XE_IOCTL_DBG(xe, !gem_obj))
3262 		return -ENOENT;
3263 
3264 	/* The mmap offset was set up at BO allocation time. */
3265 	args->offset = drm_vma_node_offset_addr(&gem_obj->vma_node);
3266 
3267 	xe_bo_put(gem_to_xe_bo(gem_obj));
3268 	return 0;
3269 }
3270 
3271 /**
3272  * xe_bo_lock() - Lock the buffer object's dma_resv object
3273  * @bo: The struct xe_bo whose lock is to be taken
3274  * @intr: Whether to perform any wait interruptible
3275  *
3276  * Locks the buffer object's dma_resv object. If the buffer object is
3277  * pointing to a shared dma_resv object, that shared lock is locked.
3278  *
3279  * Return: 0 on success, -EINTR if @intr is true and the wait for a
3280  * contended lock was interrupted. If @intr is set to false, the
3281  * function always returns 0.
3282  */
xe_bo_lock(struct xe_bo * bo,bool intr)3283 int xe_bo_lock(struct xe_bo *bo, bool intr)
3284 {
3285 	if (intr)
3286 		return dma_resv_lock_interruptible(bo->ttm.base.resv, NULL);
3287 
3288 	dma_resv_lock(bo->ttm.base.resv, NULL);
3289 
3290 	return 0;
3291 }
3292 
3293 /**
3294  * xe_bo_unlock() - Unlock the buffer object's dma_resv object
3295  * @bo: The struct xe_bo whose lock is to be released.
3296  *
3297  * Unlock a buffer object lock that was locked by xe_bo_lock().
3298  */
xe_bo_unlock(struct xe_bo * bo)3299 void xe_bo_unlock(struct xe_bo *bo)
3300 {
3301 	dma_resv_unlock(bo->ttm.base.resv);
3302 }
3303 
3304 /**
3305  * xe_bo_can_migrate - Whether a buffer object likely can be migrated
3306  * @bo: The buffer object to migrate
3307  * @mem_type: The TTM memory type intended to migrate to
3308  *
3309  * Check whether the buffer object supports migration to the
3310  * given memory type. Note that pinning may affect the ability to migrate as
3311  * returned by this function.
3312  *
3313  * This function is primarily intended as a helper for checking the
3314  * possibility to migrate buffer objects and can be called without
3315  * the object lock held.
3316  *
3317  * Return: true if migration is possible, false otherwise.
3318  */
xe_bo_can_migrate(struct xe_bo * bo,u32 mem_type)3319 bool xe_bo_can_migrate(struct xe_bo *bo, u32 mem_type)
3320 {
3321 	unsigned int cur_place;
3322 
3323 	if (bo->ttm.type == ttm_bo_type_kernel)
3324 		return true;
3325 
3326 	if (bo->ttm.type == ttm_bo_type_sg)
3327 		return false;
3328 
3329 	for (cur_place = 0; cur_place < bo->placement.num_placement;
3330 	     cur_place++) {
3331 		if (bo->placements[cur_place].mem_type == mem_type)
3332 			return true;
3333 	}
3334 
3335 	return false;
3336 }
3337 
xe_place_from_ttm_type(u32 mem_type,struct ttm_place * place)3338 static void xe_place_from_ttm_type(u32 mem_type, struct ttm_place *place)
3339 {
3340 	memset(place, 0, sizeof(*place));
3341 	place->mem_type = mem_type;
3342 }
3343 
3344 /**
3345  * xe_bo_migrate - Migrate an object to the desired region id
3346  * @bo: The buffer object to migrate.
3347  * @mem_type: The TTM region type to migrate to.
3348  * @tctx: A pointer to a struct ttm_operation_ctx or NULL if
3349  * a default interruptibe ctx is to be used.
3350  * @exec: The drm_exec transaction to use for exhaustive eviction.
3351  *
3352  * Attempt to migrate the buffer object to the desired memory region. The
3353  * buffer object may not be pinned, and must be locked.
3354  * On successful completion, the object memory type will be updated,
3355  * but an async migration task may not have completed yet, and to
3356  * accomplish that, the object's kernel fences must be signaled with
3357  * the object lock held.
3358  *
3359  * Return: 0 on success. Negative error code on failure. In particular may
3360  * return -EINTR or -ERESTARTSYS if signal pending.
3361  */
xe_bo_migrate(struct xe_bo * bo,u32 mem_type,struct ttm_operation_ctx * tctx,struct drm_exec * exec)3362 int xe_bo_migrate(struct xe_bo *bo, u32 mem_type, struct ttm_operation_ctx *tctx,
3363 		  struct drm_exec *exec)
3364 {
3365 	struct xe_device *xe = ttm_to_xe_device(bo->ttm.bdev);
3366 	struct ttm_operation_ctx ctx = {
3367 		.interruptible = true,
3368 		.no_wait_gpu = false,
3369 		.gfp_retry_mayfail = true,
3370 	};
3371 	struct ttm_placement placement;
3372 	struct ttm_place requested;
3373 
3374 	xe_bo_assert_held(bo);
3375 	tctx = tctx ? tctx : &ctx;
3376 
3377 	if (bo->ttm.resource->mem_type == mem_type)
3378 		return 0;
3379 
3380 	if (xe_bo_is_pinned(bo))
3381 		return -EBUSY;
3382 
3383 	if (!xe_bo_can_migrate(bo, mem_type))
3384 		return -EINVAL;
3385 
3386 	xe_place_from_ttm_type(mem_type, &requested);
3387 	placement.num_placement = 1;
3388 	placement.placement = &requested;
3389 
3390 	/*
3391 	 * Stolen needs to be handled like below VRAM handling if we ever need
3392 	 * to support it.
3393 	 */
3394 	drm_WARN_ON(&xe->drm, mem_type == XE_PL_STOLEN);
3395 
3396 	if (mem_type_is_vram(mem_type)) {
3397 		u32 c = 0;
3398 
3399 		add_vram(xe, bo, &requested, bo->flags, mem_type, &c);
3400 	}
3401 
3402 	if (!tctx->no_wait_gpu)
3403 		xe_validation_assert_exec(xe_bo_device(bo), exec, &bo->ttm.base);
3404 	return ttm_bo_validate(&bo->ttm, &placement, tctx);
3405 }
3406 
3407 /**
3408  * xe_bo_evict - Evict an object to evict placement
3409  * @bo: The buffer object to migrate.
3410  * @exec: The drm_exec transaction to use for exhaustive eviction.
3411  *
3412  * On successful completion, the object memory will be moved to evict
3413  * placement. This function blocks until the object has been fully moved.
3414  *
3415  * Return: 0 on success. Negative error code on failure.
3416  */
xe_bo_evict(struct xe_bo * bo,struct drm_exec * exec)3417 int xe_bo_evict(struct xe_bo *bo, struct drm_exec *exec)
3418 {
3419 	struct ttm_operation_ctx ctx = {
3420 		.interruptible = false,
3421 		.no_wait_gpu = false,
3422 		.gfp_retry_mayfail = true,
3423 	};
3424 	struct ttm_placement placement;
3425 	int ret;
3426 
3427 	xe_evict_flags(&bo->ttm, &placement);
3428 	ret = ttm_bo_validate(&bo->ttm, &placement, &ctx);
3429 	if (ret)
3430 		return ret;
3431 
3432 	dma_resv_wait_timeout(bo->ttm.base.resv, DMA_RESV_USAGE_KERNEL,
3433 			      false, MAX_SCHEDULE_TIMEOUT);
3434 
3435 	return 0;
3436 }
3437 
3438 /**
3439  * xe_bo_needs_ccs_pages - Whether a bo needs to back up CCS pages when
3440  * placed in system memory.
3441  * @bo: The xe_bo
3442  *
3443  * Return: true if extra pages need to be allocated, false otherwise.
3444  */
xe_bo_needs_ccs_pages(struct xe_bo * bo)3445 bool xe_bo_needs_ccs_pages(struct xe_bo *bo)
3446 {
3447 	struct xe_device *xe = xe_bo_device(bo);
3448 
3449 	if (GRAPHICS_VER(xe) >= 20 && IS_DGFX(xe))
3450 		return false;
3451 
3452 	if (!xe_device_has_flat_ccs(xe) || bo->ttm.type != ttm_bo_type_device)
3453 		return false;
3454 
3455 	/* On discrete GPUs, if the GPU can access this buffer from
3456 	 * system memory (i.e., it allows XE_PL_TT placement), FlatCCS
3457 	 * can't be used since there's no CCS storage associated with
3458 	 * non-VRAM addresses.
3459 	 */
3460 	if (IS_DGFX(xe) && (bo->flags & XE_BO_FLAG_SYSTEM))
3461 		return false;
3462 
3463 	/*
3464 	 * Compression implies coh_none, therefore we know for sure that WB
3465 	 * memory can't currently use compression, which is likely one of the
3466 	 * common cases.
3467 	 */
3468 	if (bo->cpu_caching == DRM_XE_GEM_CPU_CACHING_WB)
3469 		return false;
3470 
3471 	return true;
3472 }
3473 
3474 /**
3475  * __xe_bo_release_dummy() - Dummy kref release function
3476  * @kref: The embedded struct kref.
3477  *
3478  * Dummy release function for xe_bo_put_deferred(). Keep off.
3479  */
__xe_bo_release_dummy(struct kref * kref)3480 void __xe_bo_release_dummy(struct kref *kref)
3481 {
3482 }
3483 
3484 /**
3485  * xe_bo_put_commit() - Put bos whose put was deferred by xe_bo_put_deferred().
3486  * @deferred: The lockless list used for the call to xe_bo_put_deferred().
3487  *
3488  * Puts all bos whose put was deferred by xe_bo_put_deferred().
3489  * The @deferred list can be either an onstack local list or a global
3490  * shared list used by a workqueue.
3491  */
xe_bo_put_commit(struct llist_head * deferred)3492 void xe_bo_put_commit(struct llist_head *deferred)
3493 {
3494 	struct llist_node *freed;
3495 	struct xe_bo *bo, *next;
3496 
3497 	if (!deferred)
3498 		return;
3499 
3500 	freed = llist_del_all(deferred);
3501 	if (!freed)
3502 		return;
3503 
3504 	llist_for_each_entry_safe(bo, next, freed, freed)
3505 		drm_gem_object_free(&bo->ttm.base.refcount);
3506 }
3507 
xe_bo_dev_work_func(struct work_struct * work)3508 static void xe_bo_dev_work_func(struct work_struct *work)
3509 {
3510 	struct xe_bo_dev *bo_dev = container_of(work, typeof(*bo_dev), async_free);
3511 
3512 	xe_bo_put_commit(&bo_dev->async_list);
3513 }
3514 
3515 /**
3516  * xe_bo_dev_init() - Initialize BO dev to manage async BO freeing
3517  * @bo_dev: The BO dev structure
3518  */
xe_bo_dev_init(struct xe_bo_dev * bo_dev)3519 void xe_bo_dev_init(struct xe_bo_dev *bo_dev)
3520 {
3521 	INIT_WORK(&bo_dev->async_free, xe_bo_dev_work_func);
3522 }
3523 
3524 /**
3525  * xe_bo_dev_fini() - Finalize BO dev managing async BO freeing
3526  * @bo_dev: The BO dev structure
3527  */
xe_bo_dev_fini(struct xe_bo_dev * bo_dev)3528 void xe_bo_dev_fini(struct xe_bo_dev *bo_dev)
3529 {
3530 	flush_work(&bo_dev->async_free);
3531 }
3532 
xe_bo_put(struct xe_bo * bo)3533 void xe_bo_put(struct xe_bo *bo)
3534 {
3535 	struct xe_tile *tile;
3536 	u8 id;
3537 
3538 	might_sleep();
3539 	if (bo) {
3540 #ifdef CONFIG_PROC_FS
3541 		if (bo->client)
3542 			might_lock(&bo->client->bos_lock);
3543 #endif
3544 		for_each_tile(tile, xe_bo_device(bo), id)
3545 			if (bo->ggtt_node[id] && bo->ggtt_node[id]->ggtt)
3546 				xe_ggtt_might_lock(bo->ggtt_node[id]->ggtt);
3547 		drm_gem_object_put(&bo->ttm.base);
3548 	}
3549 }
3550 
3551 /**
3552  * xe_bo_dumb_create - Create a dumb bo as backing for a fb
3553  * @file_priv: ...
3554  * @dev: ...
3555  * @args: ...
3556  *
3557  * See dumb_create() hook in include/drm/drm_drv.h
3558  *
3559  * Return: ...
3560  */
xe_bo_dumb_create(struct drm_file * file_priv,struct drm_device * dev,struct drm_mode_create_dumb * args)3561 int xe_bo_dumb_create(struct drm_file *file_priv,
3562 		      struct drm_device *dev,
3563 		      struct drm_mode_create_dumb *args)
3564 {
3565 	struct xe_device *xe = to_xe_device(dev);
3566 	struct xe_bo *bo;
3567 	uint32_t handle;
3568 	int cpp = DIV_ROUND_UP(args->bpp, 8);
3569 	int err;
3570 	u32 page_size = max_t(u32, PAGE_SIZE,
3571 		xe->info.vram_flags & XE_VRAM_FLAGS_NEED64K ? SZ_64K : SZ_4K);
3572 
3573 	args->pitch = ALIGN(args->width * cpp, 64);
3574 	args->size = ALIGN(mul_u32_u32(args->pitch, args->height),
3575 			   page_size);
3576 
3577 	bo = xe_bo_create_user(xe, NULL, args->size,
3578 			       DRM_XE_GEM_CPU_CACHING_WC,
3579 			       XE_BO_FLAG_VRAM_IF_DGFX(xe_device_get_root_tile(xe)) |
3580 			       XE_BO_FLAG_SCANOUT |
3581 			       XE_BO_FLAG_NEEDS_CPU_ACCESS, NULL);
3582 	if (IS_ERR(bo))
3583 		return PTR_ERR(bo);
3584 
3585 	err = drm_gem_handle_create(file_priv, &bo->ttm.base, &handle);
3586 	/* drop reference from allocate - handle holds it now */
3587 	drm_gem_object_put(&bo->ttm.base);
3588 	if (!err)
3589 		args->handle = handle;
3590 	return err;
3591 }
3592 
xe_bo_runtime_pm_release_mmap_offset(struct xe_bo * bo)3593 void xe_bo_runtime_pm_release_mmap_offset(struct xe_bo *bo)
3594 {
3595 	struct ttm_buffer_object *tbo = &bo->ttm;
3596 	struct ttm_device *bdev = tbo->bdev;
3597 
3598 	drm_vma_node_unmap(&tbo->base.vma_node, bdev->dev_mapping);
3599 
3600 	list_del_init(&bo->vram_userfault_link);
3601 }
3602 
3603 #if IS_ENABLED(CONFIG_DRM_XE_KUNIT_TEST)
3604 #include "tests/xe_bo.c"
3605 #endif
3606