xref: /linux/drivers/gpu/drm/i915/gem/i915_gem_ttm.c (revision bf4afc53b77aeaa48b5409da5c8da6bb4eff7f43)
1 // SPDX-License-Identifier: MIT
2 /*
3  * Copyright © 2021 Intel Corporation
4  */
5 
6 #include <linux/shmem_fs.h>
7 
8 #include <drm/drm_buddy.h>
9 #include <drm/drm_print.h>
10 #include <drm/ttm/ttm_placement.h>
11 #include <drm/ttm/ttm_tt.h>
12 
13 #include "i915_drv.h"
14 #include "i915_jiffies.h"
15 #include "i915_ttm_buddy_manager.h"
16 #include "intel_memory_region.h"
17 #include "intel_region_ttm.h"
18 
19 #include "gem/i915_gem_mman.h"
20 #include "gem/i915_gem_object.h"
21 #include "gem/i915_gem_region.h"
22 #include "gem/i915_gem_ttm.h"
23 #include "gem/i915_gem_ttm_move.h"
24 #include "gem/i915_gem_ttm_pm.h"
25 #include "gt/intel_gpu_commands.h"
26 
27 #define I915_TTM_PRIO_PURGE     0
28 #define I915_TTM_PRIO_NO_PAGES  1
29 #define I915_TTM_PRIO_HAS_PAGES 2
30 #define I915_TTM_PRIO_NEEDS_CPU_ACCESS 3
31 
32 /*
33  * Size of struct ttm_place vector in on-stack struct ttm_placement allocs
34  */
35 #define I915_TTM_MAX_PLACEMENTS INTEL_REGION_UNKNOWN
36 
37 /**
38  * struct i915_ttm_tt - TTM page vector with additional private information
39  * @ttm: The base TTM page vector.
40  * @dev: The struct device used for dma mapping and unmapping.
41  * @cached_rsgt: The cached scatter-gather table.
42  * @is_shmem: Set if using shmem.
43  * @filp: The shmem file, if using shmem backend.
44  *
45  * Note that DMA may be going on right up to the point where the page-
46  * vector is unpopulated in delayed destroy. Hence keep the
47  * scatter-gather table mapped and cached up to that point. This is
48  * different from the cached gem object io scatter-gather table which
49  * doesn't have an associated dma mapping.
50  */
51 struct i915_ttm_tt {
52 	struct ttm_tt ttm;
53 	struct device *dev;
54 	struct i915_refct_sgt cached_rsgt;
55 
56 	bool is_shmem;
57 	struct file *filp;
58 };
59 
60 static const struct ttm_place sys_placement_flags = {
61 	.fpfn = 0,
62 	.lpfn = 0,
63 	.mem_type = I915_PL_SYSTEM,
64 	.flags = 0,
65 };
66 
67 static struct ttm_placement i915_sys_placement = {
68 	.num_placement = 1,
69 	.placement = &sys_placement_flags,
70 };
71 
72 /**
73  * i915_ttm_sys_placement - Return the struct ttm_placement to be
74  * used for an object in system memory.
75  *
76  * Rather than making the struct extern, use this
77  * function.
78  *
79  * Return: A pointer to a static variable for sys placement.
80  */
i915_ttm_sys_placement(void)81 struct ttm_placement *i915_ttm_sys_placement(void)
82 {
83 	return &i915_sys_placement;
84 }
85 
i915_ttm_err_to_gem(int err)86 static int i915_ttm_err_to_gem(int err)
87 {
88 	/* Fastpath */
89 	if (likely(!err))
90 		return 0;
91 
92 	switch (err) {
93 	case -EBUSY:
94 		/*
95 		 * TTM likes to convert -EDEADLK to -EBUSY, and wants us to
96 		 * restart the operation, since we don't record the contending
97 		 * lock. We use -EAGAIN to restart.
98 		 */
99 		return -EAGAIN;
100 	case -ENOSPC:
101 		/*
102 		 * Memory type / region is full, and we can't evict.
103 		 * Except possibly system, that returns -ENOMEM;
104 		 */
105 		return -ENXIO;
106 	default:
107 		break;
108 	}
109 
110 	return err;
111 }
112 
113 static enum ttm_caching
i915_ttm_select_tt_caching(const struct drm_i915_gem_object * obj)114 i915_ttm_select_tt_caching(const struct drm_i915_gem_object *obj)
115 {
116 	/*
117 	 * Objects only allowed in system get cached cpu-mappings, or when
118 	 * evicting lmem-only buffers to system for swapping. Other objects get
119 	 * WC mapping for now. Even if in system.
120 	 */
121 	if (obj->mm.n_placements <= 1)
122 		return ttm_cached;
123 
124 	return ttm_write_combined;
125 }
126 
127 static void
i915_ttm_place_from_region(const struct intel_memory_region * mr,struct ttm_place * place,resource_size_t offset,resource_size_t size,unsigned int flags)128 i915_ttm_place_from_region(const struct intel_memory_region *mr,
129 			   struct ttm_place *place,
130 			   resource_size_t offset,
131 			   resource_size_t size,
132 			   unsigned int flags)
133 {
134 	memset(place, 0, sizeof(*place));
135 	place->mem_type = intel_region_to_ttm_type(mr);
136 
137 	if (mr->type == INTEL_MEMORY_SYSTEM)
138 		return;
139 
140 	if (flags & I915_BO_ALLOC_CONTIGUOUS)
141 		place->flags |= TTM_PL_FLAG_CONTIGUOUS;
142 	if (offset != I915_BO_INVALID_OFFSET) {
143 		WARN_ON(overflows_type(offset >> PAGE_SHIFT, place->fpfn));
144 		place->fpfn = offset >> PAGE_SHIFT;
145 		WARN_ON(overflows_type(place->fpfn + (size >> PAGE_SHIFT), place->lpfn));
146 		place->lpfn = place->fpfn + (size >> PAGE_SHIFT);
147 	} else if (resource_size(&mr->io) && resource_size(&mr->io) < mr->total) {
148 		if (flags & I915_BO_ALLOC_GPU_ONLY) {
149 			place->flags |= TTM_PL_FLAG_TOPDOWN;
150 		} else {
151 			place->fpfn = 0;
152 			WARN_ON(overflows_type(resource_size(&mr->io) >> PAGE_SHIFT, place->lpfn));
153 			place->lpfn = resource_size(&mr->io) >> PAGE_SHIFT;
154 		}
155 	}
156 }
157 
158 static void
i915_ttm_placement_from_obj(const struct drm_i915_gem_object * obj,struct ttm_place * places,struct ttm_placement * placement)159 i915_ttm_placement_from_obj(const struct drm_i915_gem_object *obj,
160 			    struct ttm_place *places,
161 			    struct ttm_placement *placement)
162 {
163 	unsigned int num_allowed = obj->mm.n_placements;
164 	unsigned int flags = obj->flags;
165 	unsigned int i;
166 
167 	i915_ttm_place_from_region(num_allowed ? obj->mm.placements[0] :
168 				   obj->mm.region, &places[0], obj->bo_offset,
169 				   obj->base.size, flags);
170 
171 	/* Cache this on object? */
172 	for (i = 0; i < num_allowed; ++i) {
173 		i915_ttm_place_from_region(obj->mm.placements[i],
174 					   &places[i + 1], obj->bo_offset,
175 					   obj->base.size, flags);
176 		places[i + 1].flags |= TTM_PL_FLAG_FALLBACK;
177 	}
178 
179 	placement->num_placement = num_allowed + 1;
180 	placement->placement = places;
181 }
182 
i915_ttm_tt_shmem_populate(struct ttm_device * bdev,struct ttm_tt * ttm,struct ttm_operation_ctx * ctx)183 static int i915_ttm_tt_shmem_populate(struct ttm_device *bdev,
184 				      struct ttm_tt *ttm,
185 				      struct ttm_operation_ctx *ctx)
186 {
187 	struct drm_i915_private *i915 = container_of(bdev, typeof(*i915), bdev);
188 	struct intel_memory_region *mr = i915->mm.regions[INTEL_MEMORY_SYSTEM];
189 	struct i915_ttm_tt *i915_tt = container_of(ttm, typeof(*i915_tt), ttm);
190 	const unsigned int max_segment = i915_sg_segment_size(i915->drm.dev);
191 	const size_t size = (size_t)ttm->num_pages << PAGE_SHIFT;
192 	struct file *filp = i915_tt->filp;
193 	struct sgt_iter sgt_iter;
194 	struct sg_table *st;
195 	struct page *page;
196 	unsigned long i;
197 	int err;
198 
199 	if (!filp) {
200 		struct address_space *mapping;
201 		gfp_t mask;
202 
203 		filp = shmem_file_setup("i915-shmem-tt", size,
204 					mk_vma_flags(VMA_NORESERVE_BIT));
205 		if (IS_ERR(filp))
206 			return PTR_ERR(filp);
207 
208 		mask = GFP_HIGHUSER | __GFP_RECLAIMABLE;
209 
210 		mapping = filp->f_mapping;
211 		mapping_set_gfp_mask(mapping, mask);
212 		GEM_BUG_ON(!(mapping_gfp_mask(mapping) & __GFP_RECLAIM));
213 
214 		i915_tt->filp = filp;
215 	}
216 
217 	st = &i915_tt->cached_rsgt.table;
218 	err = shmem_sg_alloc_table(i915, st, size, mr, filp->f_mapping,
219 				   max_segment);
220 	if (err)
221 		return err;
222 
223 	err = dma_map_sgtable(i915_tt->dev, st, DMA_BIDIRECTIONAL,
224 			      DMA_ATTR_SKIP_CPU_SYNC);
225 	if (err)
226 		goto err_free_st;
227 
228 	i = 0;
229 	for_each_sgt_page(page, sgt_iter, st)
230 		ttm->pages[i++] = page;
231 
232 	if (ttm->page_flags & TTM_TT_FLAG_SWAPPED)
233 		ttm->page_flags &= ~TTM_TT_FLAG_SWAPPED;
234 
235 	return 0;
236 
237 err_free_st:
238 	shmem_sg_free_table(st, filp->f_mapping, false, false);
239 
240 	return err;
241 }
242 
i915_ttm_tt_shmem_unpopulate(struct ttm_tt * ttm)243 static void i915_ttm_tt_shmem_unpopulate(struct ttm_tt *ttm)
244 {
245 	struct i915_ttm_tt *i915_tt = container_of(ttm, typeof(*i915_tt), ttm);
246 	bool backup = ttm->page_flags & TTM_TT_FLAG_SWAPPED;
247 	struct sg_table *st = &i915_tt->cached_rsgt.table;
248 
249 	shmem_sg_free_table(st, file_inode(i915_tt->filp)->i_mapping,
250 			    backup, backup);
251 }
252 
i915_ttm_tt_release(struct kref * ref)253 static void i915_ttm_tt_release(struct kref *ref)
254 {
255 	struct i915_ttm_tt *i915_tt =
256 		container_of(ref, typeof(*i915_tt), cached_rsgt.kref);
257 	struct sg_table *st = &i915_tt->cached_rsgt.table;
258 
259 	GEM_WARN_ON(st->sgl);
260 
261 	kfree(i915_tt);
262 }
263 
264 static const struct i915_refct_sgt_ops tt_rsgt_ops = {
265 	.release = i915_ttm_tt_release
266 };
267 
i915_ttm_tt_create(struct ttm_buffer_object * bo,uint32_t page_flags)268 static struct ttm_tt *i915_ttm_tt_create(struct ttm_buffer_object *bo,
269 					 uint32_t page_flags)
270 {
271 	struct drm_i915_private *i915 = container_of(bo->bdev, typeof(*i915),
272 						     bdev);
273 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
274 	unsigned long ccs_pages = 0;
275 	enum ttm_caching caching;
276 	struct i915_ttm_tt *i915_tt;
277 	int ret;
278 
279 	if (i915_ttm_is_ghost_object(bo))
280 		return NULL;
281 
282 	i915_tt = kzalloc_obj(*i915_tt);
283 	if (!i915_tt)
284 		return NULL;
285 
286 	if (obj->flags & I915_BO_ALLOC_CPU_CLEAR && (!bo->resource ||
287 	    ttm_manager_type(bo->bdev, bo->resource->mem_type)->use_tt))
288 		page_flags |= TTM_TT_FLAG_ZERO_ALLOC;
289 
290 	caching = i915_ttm_select_tt_caching(obj);
291 	if (i915_gem_object_is_shrinkable(obj) && caching == ttm_cached) {
292 		page_flags |= TTM_TT_FLAG_EXTERNAL |
293 			      TTM_TT_FLAG_EXTERNAL_MAPPABLE;
294 		i915_tt->is_shmem = true;
295 	}
296 
297 	if (i915_gem_object_needs_ccs_pages(obj))
298 		ccs_pages = DIV_ROUND_UP(DIV_ROUND_UP(bo->base.size,
299 						      NUM_BYTES_PER_CCS_BYTE),
300 					 PAGE_SIZE);
301 
302 	ret = ttm_tt_init(&i915_tt->ttm, bo, page_flags, caching, ccs_pages);
303 	if (ret)
304 		goto err_free;
305 
306 	__i915_refct_sgt_init(&i915_tt->cached_rsgt, bo->base.size,
307 			      &tt_rsgt_ops);
308 
309 	i915_tt->dev = obj->base.dev->dev;
310 
311 	return &i915_tt->ttm;
312 
313 err_free:
314 	kfree(i915_tt);
315 	return NULL;
316 }
317 
i915_ttm_tt_populate(struct ttm_device * bdev,struct ttm_tt * ttm,struct ttm_operation_ctx * ctx)318 static int i915_ttm_tt_populate(struct ttm_device *bdev,
319 				struct ttm_tt *ttm,
320 				struct ttm_operation_ctx *ctx)
321 {
322 	struct i915_ttm_tt *i915_tt = container_of(ttm, typeof(*i915_tt), ttm);
323 
324 	if (i915_tt->is_shmem)
325 		return i915_ttm_tt_shmem_populate(bdev, ttm, ctx);
326 
327 	return ttm_pool_alloc(&bdev->pool, ttm, ctx);
328 }
329 
i915_ttm_tt_unpopulate(struct ttm_device * bdev,struct ttm_tt * ttm)330 static void i915_ttm_tt_unpopulate(struct ttm_device *bdev, struct ttm_tt *ttm)
331 {
332 	struct i915_ttm_tt *i915_tt = container_of(ttm, typeof(*i915_tt), ttm);
333 	struct sg_table *st = &i915_tt->cached_rsgt.table;
334 
335 	if (st->sgl)
336 		dma_unmap_sgtable(i915_tt->dev, st, DMA_BIDIRECTIONAL, 0);
337 
338 	if (i915_tt->is_shmem) {
339 		i915_ttm_tt_shmem_unpopulate(ttm);
340 	} else {
341 		sg_free_table(st);
342 		ttm_pool_free(&bdev->pool, ttm);
343 	}
344 }
345 
i915_ttm_tt_destroy(struct ttm_device * bdev,struct ttm_tt * ttm)346 static void i915_ttm_tt_destroy(struct ttm_device *bdev, struct ttm_tt *ttm)
347 {
348 	struct i915_ttm_tt *i915_tt = container_of(ttm, typeof(*i915_tt), ttm);
349 
350 	if (i915_tt->filp)
351 		fput(i915_tt->filp);
352 
353 	ttm_tt_fini(ttm);
354 	i915_refct_sgt_put(&i915_tt->cached_rsgt);
355 }
356 
i915_ttm_eviction_valuable(struct ttm_buffer_object * bo,const struct ttm_place * place)357 static bool i915_ttm_eviction_valuable(struct ttm_buffer_object *bo,
358 				       const struct ttm_place *place)
359 {
360 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
361 
362 	if (i915_ttm_is_ghost_object(bo))
363 		return false;
364 
365 	/*
366 	 * EXTERNAL objects should never be swapped out by TTM, instead we need
367 	 * to handle that ourselves. TTM will already skip such objects for us,
368 	 * but we would like to avoid grabbing locks for no good reason.
369 	 */
370 	if (bo->ttm && bo->ttm->page_flags & TTM_TT_FLAG_EXTERNAL)
371 		return false;
372 
373 	/* Will do for now. Our pinned objects are still on TTM's LRU lists */
374 	if (!i915_gem_object_evictable(obj))
375 		return false;
376 
377 	return ttm_bo_eviction_valuable(bo, place);
378 }
379 
i915_ttm_evict_flags(struct ttm_buffer_object * bo,struct ttm_placement * placement)380 static void i915_ttm_evict_flags(struct ttm_buffer_object *bo,
381 				 struct ttm_placement *placement)
382 {
383 	*placement = i915_sys_placement;
384 }
385 
386 /**
387  * i915_ttm_free_cached_io_rsgt - Free object cached LMEM information
388  * @obj: The GEM object
389  * This function frees any LMEM-related information that is cached on
390  * the object. For example the radix tree for fast page lookup and the
391  * cached refcounted sg-table
392  */
i915_ttm_free_cached_io_rsgt(struct drm_i915_gem_object * obj)393 void i915_ttm_free_cached_io_rsgt(struct drm_i915_gem_object *obj)
394 {
395 	struct radix_tree_iter iter;
396 	void __rcu **slot;
397 
398 	if (!obj->ttm.cached_io_rsgt)
399 		return;
400 
401 	rcu_read_lock();
402 	radix_tree_for_each_slot(slot, &obj->ttm.get_io_page.radix, &iter, 0)
403 		radix_tree_delete(&obj->ttm.get_io_page.radix, iter.index);
404 	rcu_read_unlock();
405 
406 	i915_refct_sgt_put(obj->ttm.cached_io_rsgt);
407 	obj->ttm.cached_io_rsgt = NULL;
408 }
409 
410 /**
411  * i915_ttm_purge - Clear an object of its memory
412  * @obj: The object
413  *
414  * This function is called to clear an object of it's memory when it is
415  * marked as not needed anymore.
416  *
417  * Return: 0 on success, negative error code on failure.
418  */
i915_ttm_purge(struct drm_i915_gem_object * obj)419 int i915_ttm_purge(struct drm_i915_gem_object *obj)
420 {
421 	struct ttm_buffer_object *bo = i915_gem_to_ttm(obj);
422 	struct i915_ttm_tt *i915_tt =
423 		container_of(bo->ttm, typeof(*i915_tt), ttm);
424 	struct ttm_operation_ctx ctx = {
425 		.interruptible = true,
426 		.no_wait_gpu = false,
427 	};
428 	struct ttm_placement place = {};
429 	int ret;
430 
431 	if (obj->mm.madv == __I915_MADV_PURGED)
432 		return 0;
433 
434 	ret = ttm_bo_validate(bo, &place, &ctx);
435 	if (ret)
436 		return ret;
437 
438 	if (bo->ttm && i915_tt->filp) {
439 		/*
440 		 * The below fput(which eventually calls shmem_truncate) might
441 		 * be delayed by worker, so when directly called to purge the
442 		 * pages(like by the shrinker) we should try to be more
443 		 * aggressive and release the pages immediately.
444 		 */
445 		shmem_truncate_range(file_inode(i915_tt->filp),
446 				     0, (loff_t)-1);
447 		fput(fetch_and_zero(&i915_tt->filp));
448 	}
449 
450 	obj->write_domain = 0;
451 	obj->read_domains = 0;
452 	i915_ttm_adjust_gem_after_move(obj);
453 	i915_ttm_free_cached_io_rsgt(obj);
454 	obj->mm.madv = __I915_MADV_PURGED;
455 
456 	return 0;
457 }
458 
i915_ttm_shrink(struct drm_i915_gem_object * obj,unsigned int flags)459 static int i915_ttm_shrink(struct drm_i915_gem_object *obj, unsigned int flags)
460 {
461 	struct ttm_buffer_object *bo = i915_gem_to_ttm(obj);
462 	struct i915_ttm_tt *i915_tt =
463 		container_of(bo->ttm, typeof(*i915_tt), ttm);
464 	struct ttm_operation_ctx ctx = {
465 		.interruptible = true,
466 		.no_wait_gpu = flags & I915_GEM_OBJECT_SHRINK_NO_GPU_WAIT,
467 	};
468 	struct ttm_placement place = {};
469 	int ret;
470 
471 	if (!bo->ttm || i915_ttm_cpu_maps_iomem(bo->resource))
472 		return 0;
473 
474 	GEM_BUG_ON(!i915_tt->is_shmem);
475 
476 	if (!i915_tt->filp)
477 		return 0;
478 
479 	ret = ttm_bo_wait_ctx(bo, &ctx);
480 	if (ret)
481 		return ret;
482 
483 	switch (obj->mm.madv) {
484 	case I915_MADV_DONTNEED:
485 		return i915_ttm_purge(obj);
486 	case __I915_MADV_PURGED:
487 		return 0;
488 	}
489 
490 	if (bo->ttm->page_flags & TTM_TT_FLAG_SWAPPED)
491 		return 0;
492 
493 	bo->ttm->page_flags |= TTM_TT_FLAG_SWAPPED;
494 	ret = ttm_bo_validate(bo, &place, &ctx);
495 	if (ret) {
496 		bo->ttm->page_flags &= ~TTM_TT_FLAG_SWAPPED;
497 		return ret;
498 	}
499 
500 	if (flags & I915_GEM_OBJECT_SHRINK_WRITEBACK)
501 		__shmem_writeback(obj->base.size, i915_tt->filp->f_mapping);
502 
503 	return 0;
504 }
505 
i915_ttm_delete_mem_notify(struct ttm_buffer_object * bo)506 static void i915_ttm_delete_mem_notify(struct ttm_buffer_object *bo)
507 {
508 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
509 
510 	/*
511 	 * This gets called twice by ttm, so long as we have a ttm resource or
512 	 * ttm_tt then we can still safely call this. Due to pipeline-gutting,
513 	 * we maybe have NULL bo->resource, but in that case we should always
514 	 * have a ttm alive (like if the pages are swapped out).
515 	 */
516 	if ((bo->resource || bo->ttm) && !i915_ttm_is_ghost_object(bo)) {
517 		__i915_gem_object_pages_fini(obj);
518 		i915_ttm_free_cached_io_rsgt(obj);
519 	}
520 }
521 
i915_ttm_tt_get_st(struct ttm_tt * ttm)522 static struct i915_refct_sgt *i915_ttm_tt_get_st(struct ttm_tt *ttm)
523 {
524 	struct i915_ttm_tt *i915_tt = container_of(ttm, typeof(*i915_tt), ttm);
525 	struct sg_table *st;
526 	int ret;
527 
528 	if (i915_tt->cached_rsgt.table.sgl)
529 		return i915_refct_sgt_get(&i915_tt->cached_rsgt);
530 
531 	st = &i915_tt->cached_rsgt.table;
532 	ret = sg_alloc_table_from_pages_segment(st,
533 			ttm->pages, ttm->num_pages,
534 			0, (unsigned long)ttm->num_pages << PAGE_SHIFT,
535 			i915_sg_segment_size(i915_tt->dev), GFP_KERNEL);
536 	if (ret) {
537 		st->sgl = NULL;
538 		return ERR_PTR(ret);
539 	}
540 
541 	ret = dma_map_sgtable(i915_tt->dev, st, DMA_BIDIRECTIONAL, 0);
542 	if (ret) {
543 		sg_free_table(st);
544 		return ERR_PTR(ret);
545 	}
546 
547 	return i915_refct_sgt_get(&i915_tt->cached_rsgt);
548 }
549 
550 /**
551  * i915_ttm_resource_get_st - Get a refcounted sg-table pointing to the
552  * resource memory
553  * @obj: The GEM object used for sg-table caching
554  * @res: The struct ttm_resource for which an sg-table is requested.
555  *
556  * This function returns a refcounted sg-table representing the memory
557  * pointed to by @res. If @res is the object's current resource it may also
558  * cache the sg_table on the object or attempt to access an already cached
559  * sg-table. The refcounted sg-table needs to be put when no-longer in use.
560  *
561  * Return: A valid pointer to a struct i915_refct_sgt or error pointer on
562  * failure.
563  */
564 struct i915_refct_sgt *
i915_ttm_resource_get_st(struct drm_i915_gem_object * obj,struct ttm_resource * res)565 i915_ttm_resource_get_st(struct drm_i915_gem_object *obj,
566 			 struct ttm_resource *res)
567 {
568 	struct ttm_buffer_object *bo = i915_gem_to_ttm(obj);
569 	u32 page_alignment;
570 
571 	if (!i915_ttm_gtt_binds_lmem(res))
572 		return i915_ttm_tt_get_st(bo->ttm);
573 
574 	page_alignment = bo->page_alignment << PAGE_SHIFT;
575 	if (!page_alignment)
576 		page_alignment = obj->mm.region->min_page_size;
577 
578 	/*
579 	 * If CPU mapping differs, we need to add the ttm_tt pages to
580 	 * the resulting st. Might make sense for GGTT.
581 	 */
582 	GEM_WARN_ON(!i915_ttm_cpu_maps_iomem(res));
583 	if (bo->resource == res) {
584 		if (!obj->ttm.cached_io_rsgt) {
585 			struct i915_refct_sgt *rsgt;
586 
587 			rsgt = intel_region_ttm_resource_to_rsgt(obj->mm.region,
588 								 res,
589 								 page_alignment);
590 			if (IS_ERR(rsgt))
591 				return rsgt;
592 
593 			obj->ttm.cached_io_rsgt = rsgt;
594 		}
595 		return i915_refct_sgt_get(obj->ttm.cached_io_rsgt);
596 	}
597 
598 	return intel_region_ttm_resource_to_rsgt(obj->mm.region, res,
599 						 page_alignment);
600 }
601 
i915_ttm_truncate(struct drm_i915_gem_object * obj)602 static int i915_ttm_truncate(struct drm_i915_gem_object *obj)
603 {
604 	struct ttm_buffer_object *bo = i915_gem_to_ttm(obj);
605 	long err;
606 
607 	WARN_ON_ONCE(obj->mm.madv == I915_MADV_WILLNEED);
608 
609 	err = dma_resv_wait_timeout(bo->base.resv, DMA_RESV_USAGE_BOOKKEEP,
610 				    true, 15 * HZ);
611 	if (err < 0)
612 		return err;
613 	if (err == 0)
614 		return -EBUSY;
615 
616 	err = i915_ttm_move_notify(bo);
617 	if (err)
618 		return err;
619 
620 	return i915_ttm_purge(obj);
621 }
622 
i915_ttm_swap_notify(struct ttm_buffer_object * bo)623 static void i915_ttm_swap_notify(struct ttm_buffer_object *bo)
624 {
625 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
626 	int ret;
627 
628 	if (i915_ttm_is_ghost_object(bo))
629 		return;
630 
631 	ret = i915_ttm_move_notify(bo);
632 	GEM_WARN_ON(ret);
633 	GEM_WARN_ON(obj->ttm.cached_io_rsgt);
634 	if (!ret && obj->mm.madv != I915_MADV_WILLNEED)
635 		i915_ttm_purge(obj);
636 }
637 
638 /**
639  * i915_ttm_resource_mappable - Return true if the ttm resource is CPU
640  * accessible.
641  * @res: The TTM resource to check.
642  *
643  * This is interesting on small-BAR systems where we may encounter lmem objects
644  * that can't be accessed via the CPU.
645  */
i915_ttm_resource_mappable(struct ttm_resource * res)646 bool i915_ttm_resource_mappable(struct ttm_resource *res)
647 {
648 	struct i915_ttm_buddy_resource *bman_res = to_ttm_buddy_resource(res);
649 
650 	if (!i915_ttm_cpu_maps_iomem(res))
651 		return true;
652 
653 	return bman_res->used_visible_size == PFN_UP(bman_res->base.size);
654 }
655 
i915_ttm_io_mem_reserve(struct ttm_device * bdev,struct ttm_resource * mem)656 static int i915_ttm_io_mem_reserve(struct ttm_device *bdev, struct ttm_resource *mem)
657 {
658 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(mem->bo);
659 	bool unknown_state;
660 
661 	if (i915_ttm_is_ghost_object(mem->bo))
662 		return -EINVAL;
663 
664 	if (!kref_get_unless_zero(&obj->base.refcount))
665 		return -EINVAL;
666 
667 	assert_object_held(obj);
668 
669 	unknown_state = i915_gem_object_has_unknown_state(obj);
670 	i915_gem_object_put(obj);
671 	if (unknown_state)
672 		return -EINVAL;
673 
674 	if (!i915_ttm_cpu_maps_iomem(mem))
675 		return 0;
676 
677 	if (!i915_ttm_resource_mappable(mem))
678 		return -EINVAL;
679 
680 	mem->bus.caching = ttm_write_combined;
681 	mem->bus.is_iomem = true;
682 
683 	return 0;
684 }
685 
i915_ttm_io_mem_pfn(struct ttm_buffer_object * bo,unsigned long page_offset)686 static unsigned long i915_ttm_io_mem_pfn(struct ttm_buffer_object *bo,
687 					 unsigned long page_offset)
688 {
689 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
690 	struct scatterlist *sg;
691 	unsigned long base;
692 	unsigned int ofs;
693 
694 	GEM_BUG_ON(i915_ttm_is_ghost_object(bo));
695 	GEM_WARN_ON(bo->ttm);
696 
697 	base = obj->mm.region->iomap.base - obj->mm.region->region.start;
698 	sg = i915_gem_object_page_iter_get_sg(obj, &obj->ttm.get_io_page, page_offset, &ofs);
699 
700 	return ((base + sg_dma_address(sg)) >> PAGE_SHIFT) + ofs;
701 }
702 
i915_ttm_access_memory(struct ttm_buffer_object * bo,unsigned long offset,void * buf,int len,int write)703 static int i915_ttm_access_memory(struct ttm_buffer_object *bo,
704 				  unsigned long offset, void *buf,
705 				  int len, int write)
706 {
707 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
708 	resource_size_t iomap = obj->mm.region->iomap.base -
709 		obj->mm.region->region.start;
710 	unsigned long page = offset >> PAGE_SHIFT;
711 	unsigned long bytes_left = len;
712 
713 	/*
714 	 * TODO: For now just let it fail if the resource is non-mappable,
715 	 * otherwise we need to perform the memcpy from the gpu here, without
716 	 * interfering with the object (like moving the entire thing).
717 	 */
718 	if (!i915_ttm_resource_mappable(bo->resource))
719 		return -EIO;
720 
721 	offset -= page << PAGE_SHIFT;
722 	do {
723 		unsigned long bytes = min(bytes_left, PAGE_SIZE - offset);
724 		void __iomem *ptr;
725 		dma_addr_t daddr;
726 
727 		daddr = i915_gem_object_get_dma_address(obj, page);
728 		ptr = ioremap_wc(iomap + daddr + offset, bytes);
729 		if (!ptr)
730 			return -EIO;
731 
732 		if (write)
733 			memcpy_toio(ptr, buf, bytes);
734 		else
735 			memcpy_fromio(buf, ptr, bytes);
736 		iounmap(ptr);
737 
738 		page++;
739 		buf += bytes;
740 		bytes_left -= bytes;
741 		offset = 0;
742 	} while (bytes_left);
743 
744 	return len;
745 }
746 
747 /*
748  * All callbacks need to take care not to downcast a struct ttm_buffer_object
749  * without checking its subclass, since it might be a TTM ghost object.
750  */
751 static struct ttm_device_funcs i915_ttm_bo_driver = {
752 	.ttm_tt_create = i915_ttm_tt_create,
753 	.ttm_tt_populate = i915_ttm_tt_populate,
754 	.ttm_tt_unpopulate = i915_ttm_tt_unpopulate,
755 	.ttm_tt_destroy = i915_ttm_tt_destroy,
756 	.eviction_valuable = i915_ttm_eviction_valuable,
757 	.evict_flags = i915_ttm_evict_flags,
758 	.move = i915_ttm_move,
759 	.swap_notify = i915_ttm_swap_notify,
760 	.delete_mem_notify = i915_ttm_delete_mem_notify,
761 	.io_mem_reserve = i915_ttm_io_mem_reserve,
762 	.io_mem_pfn = i915_ttm_io_mem_pfn,
763 	.access_memory = i915_ttm_access_memory,
764 };
765 
766 /**
767  * i915_ttm_driver - Return a pointer to the TTM device funcs
768  *
769  * Return: Pointer to statically allocated TTM device funcs.
770  */
i915_ttm_driver(void)771 struct ttm_device_funcs *i915_ttm_driver(void)
772 {
773 	return &i915_ttm_bo_driver;
774 }
775 
__i915_ttm_get_pages(struct drm_i915_gem_object * obj,struct ttm_placement * placement)776 static int __i915_ttm_get_pages(struct drm_i915_gem_object *obj,
777 				struct ttm_placement *placement)
778 {
779 	struct ttm_buffer_object *bo = i915_gem_to_ttm(obj);
780 	struct ttm_operation_ctx ctx = {
781 		.interruptible = true,
782 		.no_wait_gpu = false,
783 	};
784 	struct ttm_placement initial_placement;
785 	struct ttm_place initial_place;
786 	int ret;
787 
788 	/* First try only the requested placement. No eviction. */
789 	initial_placement.num_placement = 1;
790 	memcpy(&initial_place, placement->placement, sizeof(struct ttm_place));
791 	initial_place.flags |= TTM_PL_FLAG_DESIRED;
792 	initial_placement.placement = &initial_place;
793 	ret = ttm_bo_validate(bo, &initial_placement, &ctx);
794 	if (ret) {
795 		ret = i915_ttm_err_to_gem(ret);
796 		/*
797 		 * Anything that wants to restart the operation gets to
798 		 * do that.
799 		 */
800 		if (ret == -EDEADLK || ret == -EINTR || ret == -ERESTARTSYS ||
801 		    ret == -EAGAIN)
802 			return ret;
803 
804 		/*
805 		 * If the initial attempt fails, allow all accepted placements,
806 		 * evicting if necessary.
807 		 */
808 		ret = ttm_bo_validate(bo, placement, &ctx);
809 		if (ret)
810 			return i915_ttm_err_to_gem(ret);
811 	}
812 
813 	if (bo->ttm && !ttm_tt_is_populated(bo->ttm)) {
814 		ret = ttm_bo_populate(bo, &ctx);
815 		if (ret)
816 			return ret;
817 
818 		i915_ttm_adjust_domains_after_move(obj);
819 		i915_ttm_adjust_gem_after_move(obj);
820 	}
821 
822 	if (!i915_gem_object_has_pages(obj)) {
823 		struct i915_refct_sgt *rsgt =
824 			i915_ttm_resource_get_st(obj, bo->resource);
825 
826 		if (IS_ERR(rsgt))
827 			return PTR_ERR(rsgt);
828 
829 		GEM_BUG_ON(obj->mm.rsgt);
830 		obj->mm.rsgt = rsgt;
831 		__i915_gem_object_set_pages(obj, &rsgt->table);
832 	}
833 
834 	GEM_BUG_ON(bo->ttm && ((obj->base.size >> PAGE_SHIFT) < bo->ttm->num_pages));
835 	i915_ttm_adjust_lru(obj);
836 	return ret;
837 }
838 
i915_ttm_get_pages(struct drm_i915_gem_object * obj)839 static int i915_ttm_get_pages(struct drm_i915_gem_object *obj)
840 {
841 	struct ttm_place places[I915_TTM_MAX_PLACEMENTS + 1];
842 	struct ttm_placement placement;
843 
844 	/* restricted by sg_alloc_table */
845 	if (overflows_type(obj->base.size >> PAGE_SHIFT, unsigned int))
846 		return -E2BIG;
847 
848 	GEM_BUG_ON(obj->mm.n_placements > I915_TTM_MAX_PLACEMENTS);
849 
850 	/* Move to the requested placement. */
851 	i915_ttm_placement_from_obj(obj, places, &placement);
852 
853 	return __i915_ttm_get_pages(obj, &placement);
854 }
855 
856 /**
857  * DOC: Migration vs eviction
858  *
859  * GEM migration may not be the same as TTM migration / eviction. If
860  * the TTM core decides to evict an object it may be evicted to a
861  * TTM memory type that is not in the object's allowable GEM regions, or
862  * in fact theoretically to a TTM memory type that doesn't correspond to
863  * a GEM memory region. In that case the object's GEM region is not
864  * updated, and the data is migrated back to the GEM region at
865  * get_pages time. TTM may however set up CPU ptes to the object even
866  * when it is evicted.
867  * Gem forced migration using the i915_ttm_migrate() op, is allowed even
868  * to regions that are not in the object's list of allowable placements.
869  */
__i915_ttm_migrate(struct drm_i915_gem_object * obj,struct intel_memory_region * mr,unsigned int flags)870 static int __i915_ttm_migrate(struct drm_i915_gem_object *obj,
871 			      struct intel_memory_region *mr,
872 			      unsigned int flags)
873 {
874 	struct ttm_place requested;
875 	struct ttm_placement placement;
876 	int ret;
877 
878 	i915_ttm_place_from_region(mr, &requested, obj->bo_offset,
879 				   obj->base.size, flags);
880 	placement.num_placement = 1;
881 	placement.placement = &requested;
882 
883 	ret = __i915_ttm_get_pages(obj, &placement);
884 	if (ret)
885 		return ret;
886 
887 	/*
888 	 * Reinitialize the region bindings. This is primarily
889 	 * required for objects where the new region is not in
890 	 * its allowable placements.
891 	 */
892 	if (obj->mm.region != mr) {
893 		i915_gem_object_release_memory_region(obj);
894 		i915_gem_object_init_memory_region(obj, mr);
895 	}
896 
897 	return 0;
898 }
899 
i915_ttm_migrate(struct drm_i915_gem_object * obj,struct intel_memory_region * mr,unsigned int flags)900 static int i915_ttm_migrate(struct drm_i915_gem_object *obj,
901 			    struct intel_memory_region *mr,
902 			    unsigned int flags)
903 {
904 	return __i915_ttm_migrate(obj, mr, flags);
905 }
906 
i915_ttm_put_pages(struct drm_i915_gem_object * obj,struct sg_table * st)907 static void i915_ttm_put_pages(struct drm_i915_gem_object *obj,
908 			       struct sg_table *st)
909 {
910 	/*
911 	 * We're currently not called from a shrinker, so put_pages()
912 	 * typically means the object is about to destroyed, or called
913 	 * from move_notify(). So just avoid doing much for now.
914 	 * If the object is not destroyed next, The TTM eviction logic
915 	 * and shrinkers will move it out if needed.
916 	 */
917 
918 	if (obj->mm.rsgt)
919 		i915_refct_sgt_put(fetch_and_zero(&obj->mm.rsgt));
920 }
921 
922 /**
923  * i915_ttm_adjust_lru - Adjust an object's position on relevant LRU lists.
924  * @obj: The object
925  */
i915_ttm_adjust_lru(struct drm_i915_gem_object * obj)926 void i915_ttm_adjust_lru(struct drm_i915_gem_object *obj)
927 {
928 	struct ttm_buffer_object *bo = i915_gem_to_ttm(obj);
929 	struct i915_ttm_tt *i915_tt =
930 		container_of(bo->ttm, typeof(*i915_tt), ttm);
931 	bool shrinkable =
932 		bo->ttm && i915_tt->filp && ttm_tt_is_populated(bo->ttm);
933 
934 	/*
935 	 * Don't manipulate the TTM LRUs while in TTM bo destruction.
936 	 * We're called through i915_ttm_delete_mem_notify().
937 	 */
938 	if (!kref_read(&bo->kref))
939 		return;
940 
941 	/*
942 	 * We skip managing the shrinker LRU in set_pages() and just manage
943 	 * everything here. This does at least solve the issue with having
944 	 * temporary shmem mappings(like with evicted lmem) not being visible to
945 	 * the shrinker. Only our shmem objects are shrinkable, everything else
946 	 * we keep as unshrinkable.
947 	 *
948 	 * To make sure everything plays nice we keep an extra shrink pin in TTM
949 	 * if the underlying pages are not currently shrinkable. Once we release
950 	 * our pin, like when the pages are moved to shmem, the pages will then
951 	 * be added to the shrinker LRU, assuming the caller isn't also holding
952 	 * a pin.
953 	 *
954 	 * TODO: consider maybe also bumping the shrinker list here when we have
955 	 * already unpinned it, which should give us something more like an LRU.
956 	 *
957 	 * TODO: There is a small window of opportunity for this function to
958 	 * get called from eviction after we've dropped the last GEM refcount,
959 	 * but before the TTM deleted flag is set on the object. Avoid
960 	 * adjusting the shrinker list in such cases, since the object is
961 	 * not available to the shrinker anyway due to its zero refcount.
962 	 * To fix this properly we should move to a TTM shrinker LRU list for
963 	 * these objects.
964 	 */
965 	if (kref_get_unless_zero(&obj->base.refcount)) {
966 		if (shrinkable != obj->mm.ttm_shrinkable) {
967 			if (shrinkable) {
968 				if (obj->mm.madv == I915_MADV_WILLNEED)
969 					__i915_gem_object_make_shrinkable(obj);
970 				else
971 					__i915_gem_object_make_purgeable(obj);
972 			} else {
973 				i915_gem_object_make_unshrinkable(obj);
974 			}
975 
976 			obj->mm.ttm_shrinkable = shrinkable;
977 		}
978 		i915_gem_object_put(obj);
979 	}
980 
981 	/*
982 	 * Put on the correct LRU list depending on the MADV status
983 	 */
984 	spin_lock(&bo->bdev->lru_lock);
985 	if (shrinkable) {
986 		/* Try to keep shmem_tt from being considered for shrinking. */
987 		bo->priority = TTM_MAX_BO_PRIORITY - 1;
988 	} else if (obj->mm.madv != I915_MADV_WILLNEED) {
989 		bo->priority = I915_TTM_PRIO_PURGE;
990 	} else if (!i915_gem_object_has_pages(obj)) {
991 		bo->priority = I915_TTM_PRIO_NO_PAGES;
992 	} else {
993 		struct ttm_resource_manager *man =
994 			ttm_manager_type(bo->bdev, bo->resource->mem_type);
995 
996 		/*
997 		 * If we need to place an LMEM resource which doesn't need CPU
998 		 * access then we should try not to victimize mappable objects
999 		 * first, since we likely end up stealing more of the mappable
1000 		 * portion. And likewise when we try to find space for a mappable
1001 		 * object, we know not to ever victimize objects that don't
1002 		 * occupy any mappable pages.
1003 		 */
1004 		if (i915_ttm_cpu_maps_iomem(bo->resource) &&
1005 		    i915_ttm_buddy_man_visible_size(man) < man->size &&
1006 		    !(obj->flags & I915_BO_ALLOC_GPU_ONLY))
1007 			bo->priority = I915_TTM_PRIO_NEEDS_CPU_ACCESS;
1008 		else
1009 			bo->priority = I915_TTM_PRIO_HAS_PAGES;
1010 	}
1011 
1012 	ttm_bo_move_to_lru_tail(bo);
1013 	spin_unlock(&bo->bdev->lru_lock);
1014 }
1015 
1016 /*
1017  * TTM-backed gem object destruction requires some clarification.
1018  * Basically we have two possibilities here. We can either rely on the
1019  * i915 delayed destruction and put the TTM object when the object
1020  * is idle. This would be detected by TTM which would bypass the
1021  * TTM delayed destroy handling. The other approach is to put the TTM
1022  * object early and rely on the TTM destroyed handling, and then free
1023  * the leftover parts of the GEM object once TTM's destroyed list handling is
1024  * complete. For now, we rely on the latter for two reasons:
1025  * a) TTM can evict an object even when it's on the delayed destroy list,
1026  * which in theory allows for complete eviction.
1027  * b) There is work going on in TTM to allow freeing an object even when
1028  * it's not idle, and using the TTM destroyed list handling could help us
1029  * benefit from that.
1030  */
i915_ttm_delayed_free(struct drm_i915_gem_object * obj)1031 static void i915_ttm_delayed_free(struct drm_i915_gem_object *obj)
1032 {
1033 	GEM_BUG_ON(!obj->ttm.created);
1034 
1035 	ttm_bo_fini(i915_gem_to_ttm(obj));
1036 }
1037 
vm_fault_ttm(struct vm_fault * vmf)1038 static vm_fault_t vm_fault_ttm(struct vm_fault *vmf)
1039 {
1040 	struct vm_area_struct *area = vmf->vma;
1041 	struct ttm_buffer_object *bo = area->vm_private_data;
1042 	struct drm_device *dev = bo->base.dev;
1043 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
1044 	intel_wakeref_t wakeref = NULL;
1045 	vm_fault_t ret;
1046 	int idx;
1047 
1048 	/* Sanity check that we allow writing into this object */
1049 	if (unlikely(i915_gem_object_is_readonly(obj) &&
1050 		     area->vm_flags & VM_WRITE))
1051 		return VM_FAULT_SIGBUS;
1052 
1053 	ret = ttm_bo_vm_reserve(bo, vmf);
1054 	if (ret)
1055 		return ret;
1056 
1057 	if (obj->mm.madv != I915_MADV_WILLNEED) {
1058 		dma_resv_unlock(bo->base.resv);
1059 		return VM_FAULT_SIGBUS;
1060 	}
1061 
1062 	/*
1063 	 * This must be swapped out with shmem ttm_tt (pipeline-gutting).
1064 	 * Calling ttm_bo_validate() here with TTM_PL_SYSTEM should only go as
1065 	 * far as far doing a ttm_bo_move_null(), which should skip all the
1066 	 * other junk.
1067 	 */
1068 	if (!bo->resource) {
1069 		struct ttm_operation_ctx ctx = {
1070 			.interruptible = true,
1071 			.no_wait_gpu = true, /* should be idle already */
1072 		};
1073 		int err;
1074 
1075 		GEM_BUG_ON(!bo->ttm || !(bo->ttm->page_flags & TTM_TT_FLAG_SWAPPED));
1076 
1077 		err = ttm_bo_validate(bo, i915_ttm_sys_placement(), &ctx);
1078 		if (err) {
1079 			dma_resv_unlock(bo->base.resv);
1080 			return VM_FAULT_SIGBUS;
1081 		}
1082 	} else if (!i915_ttm_resource_mappable(bo->resource)) {
1083 		int err = -ENODEV;
1084 		int i;
1085 
1086 		for (i = 0; i < obj->mm.n_placements; i++) {
1087 			struct intel_memory_region *mr = obj->mm.placements[i];
1088 			unsigned int flags;
1089 
1090 			if (!resource_size(&mr->io) && mr->type != INTEL_MEMORY_SYSTEM)
1091 				continue;
1092 
1093 			flags = obj->flags;
1094 			flags &= ~I915_BO_ALLOC_GPU_ONLY;
1095 			err = __i915_ttm_migrate(obj, mr, flags);
1096 			if (!err)
1097 				break;
1098 		}
1099 
1100 		if (err) {
1101 			drm_dbg_ratelimited(dev,
1102 					    "Unable to make resource CPU accessible(err = %pe)\n",
1103 					    ERR_PTR(err));
1104 			dma_resv_unlock(bo->base.resv);
1105 			ret = VM_FAULT_SIGBUS;
1106 			goto out_rpm;
1107 		}
1108 	}
1109 
1110 	if (i915_ttm_cpu_maps_iomem(bo->resource))
1111 		wakeref = intel_runtime_pm_get(&to_i915(obj->base.dev)->runtime_pm);
1112 
1113 	if (drm_dev_enter(dev, &idx)) {
1114 		ret = ttm_bo_vm_fault_reserved(vmf, vmf->vma->vm_page_prot,
1115 					       TTM_BO_VM_NUM_PREFAULT);
1116 		drm_dev_exit(idx);
1117 	} else {
1118 		ret = ttm_bo_vm_dummy_page(vmf, vmf->vma->vm_page_prot);
1119 	}
1120 
1121 	if (ret == VM_FAULT_RETRY && !(vmf->flags & FAULT_FLAG_RETRY_NOWAIT))
1122 		goto out_rpm;
1123 
1124 	/*
1125 	 * ttm_bo_vm_reserve() already has dma_resv_lock.
1126 	 * userfault_count is protected by dma_resv lock and rpm wakeref.
1127 	 */
1128 	if (ret == VM_FAULT_NOPAGE && wakeref && !obj->userfault_count) {
1129 		obj->userfault_count = 1;
1130 		spin_lock(&to_i915(obj->base.dev)->runtime_pm.lmem_userfault_lock);
1131 		list_add(&obj->userfault_link, &to_i915(obj->base.dev)->runtime_pm.lmem_userfault_list);
1132 		spin_unlock(&to_i915(obj->base.dev)->runtime_pm.lmem_userfault_lock);
1133 
1134 		GEM_WARN_ON(!i915_ttm_cpu_maps_iomem(bo->resource));
1135 	}
1136 
1137 	if (wakeref && CONFIG_DRM_I915_USERFAULT_AUTOSUSPEND != 0)
1138 		intel_wakeref_auto(&to_i915(obj->base.dev)->runtime_pm.userfault_wakeref,
1139 				   msecs_to_jiffies_timeout(CONFIG_DRM_I915_USERFAULT_AUTOSUSPEND));
1140 
1141 	i915_ttm_adjust_lru(obj);
1142 
1143 	dma_resv_unlock(bo->base.resv);
1144 
1145 out_rpm:
1146 	if (wakeref)
1147 		intel_runtime_pm_put(&to_i915(obj->base.dev)->runtime_pm, wakeref);
1148 
1149 	return ret;
1150 }
1151 
1152 static int
vm_access_ttm(struct vm_area_struct * area,unsigned long addr,void * buf,int len,int write)1153 vm_access_ttm(struct vm_area_struct *area, unsigned long addr,
1154 	      void *buf, int len, int write)
1155 {
1156 	struct drm_i915_gem_object *obj =
1157 		i915_ttm_to_gem(area->vm_private_data);
1158 
1159 	if (i915_gem_object_is_readonly(obj) && write)
1160 		return -EACCES;
1161 
1162 	return ttm_bo_vm_access(area, addr, buf, len, write);
1163 }
1164 
ttm_vm_open(struct vm_area_struct * vma)1165 static void ttm_vm_open(struct vm_area_struct *vma)
1166 {
1167 	struct drm_i915_gem_object *obj =
1168 		i915_ttm_to_gem(vma->vm_private_data);
1169 
1170 	GEM_BUG_ON(i915_ttm_is_ghost_object(vma->vm_private_data));
1171 	i915_gem_object_get(obj);
1172 }
1173 
ttm_vm_close(struct vm_area_struct * vma)1174 static void ttm_vm_close(struct vm_area_struct *vma)
1175 {
1176 	struct drm_i915_gem_object *obj =
1177 		i915_ttm_to_gem(vma->vm_private_data);
1178 
1179 	GEM_BUG_ON(i915_ttm_is_ghost_object(vma->vm_private_data));
1180 	i915_gem_object_put(obj);
1181 }
1182 
1183 static const struct vm_operations_struct vm_ops_ttm = {
1184 	.fault = vm_fault_ttm,
1185 	.access = vm_access_ttm,
1186 	.open = ttm_vm_open,
1187 	.close = ttm_vm_close,
1188 };
1189 
i915_ttm_mmap_offset(struct drm_i915_gem_object * obj)1190 static u64 i915_ttm_mmap_offset(struct drm_i915_gem_object *obj)
1191 {
1192 	/* The ttm_bo must be allocated with I915_BO_ALLOC_USER */
1193 	GEM_BUG_ON(!drm_mm_node_allocated(&obj->base.vma_node.vm_node));
1194 
1195 	return drm_vma_node_offset_addr(&obj->base.vma_node);
1196 }
1197 
i915_ttm_unmap_virtual(struct drm_i915_gem_object * obj)1198 static void i915_ttm_unmap_virtual(struct drm_i915_gem_object *obj)
1199 {
1200 	struct ttm_buffer_object *bo = i915_gem_to_ttm(obj);
1201 	intel_wakeref_t wakeref = NULL;
1202 
1203 	assert_object_held_shared(obj);
1204 
1205 	if (i915_ttm_cpu_maps_iomem(bo->resource)) {
1206 		wakeref = intel_runtime_pm_get(&to_i915(obj->base.dev)->runtime_pm);
1207 
1208 		/* userfault_count is protected by obj lock and rpm wakeref. */
1209 		if (obj->userfault_count) {
1210 			spin_lock(&to_i915(obj->base.dev)->runtime_pm.lmem_userfault_lock);
1211 			list_del(&obj->userfault_link);
1212 			spin_unlock(&to_i915(obj->base.dev)->runtime_pm.lmem_userfault_lock);
1213 			obj->userfault_count = 0;
1214 		}
1215 	}
1216 
1217 	GEM_WARN_ON(obj->userfault_count);
1218 
1219 	ttm_bo_unmap_virtual(i915_gem_to_ttm(obj));
1220 
1221 	if (wakeref)
1222 		intel_runtime_pm_put(&to_i915(obj->base.dev)->runtime_pm, wakeref);
1223 }
1224 
1225 static const struct drm_i915_gem_object_ops i915_gem_ttm_obj_ops = {
1226 	.name = "i915_gem_object_ttm",
1227 	.flags = I915_GEM_OBJECT_IS_SHRINKABLE |
1228 		 I915_GEM_OBJECT_SELF_MANAGED_SHRINK_LIST,
1229 
1230 	.get_pages = i915_ttm_get_pages,
1231 	.put_pages = i915_ttm_put_pages,
1232 	.truncate = i915_ttm_truncate,
1233 	.shrink = i915_ttm_shrink,
1234 
1235 	.adjust_lru = i915_ttm_adjust_lru,
1236 	.delayed_free = i915_ttm_delayed_free,
1237 	.migrate = i915_ttm_migrate,
1238 
1239 	.mmap_offset = i915_ttm_mmap_offset,
1240 	.unmap_virtual = i915_ttm_unmap_virtual,
1241 	.mmap_ops = &vm_ops_ttm,
1242 };
1243 
i915_ttm_bo_destroy(struct ttm_buffer_object * bo)1244 void i915_ttm_bo_destroy(struct ttm_buffer_object *bo)
1245 {
1246 	struct drm_i915_gem_object *obj = i915_ttm_to_gem(bo);
1247 
1248 	i915_gem_object_release_memory_region(obj);
1249 	mutex_destroy(&obj->ttm.get_io_page.lock);
1250 
1251 	if (obj->ttm.created) {
1252 		/*
1253 		 * We freely manage the shrinker LRU outide of the mm.pages life
1254 		 * cycle. As a result when destroying the object we should be
1255 		 * extra paranoid and ensure we remove it from the LRU, before
1256 		 * we free the object.
1257 		 *
1258 		 * Touching the ttm_shrinkable outside of the object lock here
1259 		 * should be safe now that the last GEM object ref was dropped.
1260 		 */
1261 		if (obj->mm.ttm_shrinkable)
1262 			i915_gem_object_make_unshrinkable(obj);
1263 
1264 		i915_ttm_backup_free(obj);
1265 
1266 		/* This releases all gem object bindings to the backend. */
1267 		__i915_gem_free_object(obj);
1268 
1269 		call_rcu(&obj->rcu, __i915_gem_free_object_rcu);
1270 	} else {
1271 		__i915_gem_object_fini(obj);
1272 	}
1273 }
1274 
1275 /*
1276  * __i915_gem_ttm_object_init - Initialize a ttm-backed i915 gem object
1277  * @mem: The initial memory region for the object.
1278  * @obj: The gem object.
1279  * @size: Object size in bytes.
1280  * @flags: gem object flags.
1281  *
1282  * Return: 0 on success, negative error code on failure.
1283  */
__i915_gem_ttm_object_init(struct intel_memory_region * mem,struct drm_i915_gem_object * obj,resource_size_t offset,resource_size_t size,resource_size_t page_size,unsigned int flags)1284 int __i915_gem_ttm_object_init(struct intel_memory_region *mem,
1285 			       struct drm_i915_gem_object *obj,
1286 			       resource_size_t offset,
1287 			       resource_size_t size,
1288 			       resource_size_t page_size,
1289 			       unsigned int flags)
1290 {
1291 	static struct lock_class_key lock_class;
1292 	struct drm_i915_private *i915 = mem->i915;
1293 	struct ttm_operation_ctx ctx = {
1294 		.interruptible = true,
1295 		.no_wait_gpu = false,
1296 	};
1297 	enum ttm_bo_type bo_type;
1298 	int ret;
1299 
1300 	drm_gem_private_object_init(&i915->drm, &obj->base, size);
1301 	i915_gem_object_init(obj, &i915_gem_ttm_obj_ops, &lock_class, flags);
1302 
1303 	obj->bo_offset = offset;
1304 
1305 	/* Don't put on a region list until we're either locked or fully initialized. */
1306 	obj->mm.region = mem;
1307 	INIT_LIST_HEAD(&obj->mm.region_link);
1308 
1309 	INIT_RADIX_TREE(&obj->ttm.get_io_page.radix, GFP_KERNEL | __GFP_NOWARN);
1310 	mutex_init(&obj->ttm.get_io_page.lock);
1311 	bo_type = (obj->flags & I915_BO_ALLOC_USER) ? ttm_bo_type_device :
1312 		ttm_bo_type_kernel;
1313 
1314 	obj->base.vma_node.driver_private = i915_gem_to_ttm(obj);
1315 
1316 	/* Forcing the page size is kernel internal only */
1317 	GEM_BUG_ON(page_size && obj->mm.n_placements);
1318 
1319 	/*
1320 	 * Keep an extra shrink pin to prevent the object from being made
1321 	 * shrinkable too early. If the ttm_tt is ever allocated in shmem, we
1322 	 * drop the pin. The TTM backend manages the shrinker LRU itself,
1323 	 * outside of the normal mm.pages life cycle.
1324 	 */
1325 	i915_gem_object_make_unshrinkable(obj);
1326 
1327 	/*
1328 	 * If this function fails, it will call the destructor, but
1329 	 * our caller still owns the object. So no freeing in the
1330 	 * destructor until obj->ttm.created is true.
1331 	 * Similarly, in delayed_destroy, we can't call ttm_bo_fini()
1332 	 * until successful initialization.
1333 	 */
1334 	ret = ttm_bo_init_reserved(&i915->bdev, i915_gem_to_ttm(obj), bo_type,
1335 				   &i915_sys_placement, page_size >> PAGE_SHIFT,
1336 				   &ctx, NULL, NULL, i915_ttm_bo_destroy);
1337 
1338 	/*
1339 	 * XXX: The ttm_bo_init_reserved() functions returns -ENOSPC if the size
1340 	 * is too big to add vma. The direct function that returns -ENOSPC is
1341 	 * drm_mm_insert_node_in_range(). To handle the same error as other code
1342 	 * that returns -E2BIG when the size is too large, it converts -ENOSPC to
1343 	 * -E2BIG.
1344 	 */
1345 	if (size >> PAGE_SHIFT > INT_MAX && ret == -ENOSPC)
1346 		ret = -E2BIG;
1347 
1348 	if (ret)
1349 		return i915_ttm_err_to_gem(ret);
1350 
1351 	obj->ttm.created = true;
1352 	i915_gem_object_release_memory_region(obj);
1353 	i915_gem_object_init_memory_region(obj, mem);
1354 	i915_ttm_adjust_domains_after_move(obj);
1355 	i915_ttm_adjust_gem_after_move(obj);
1356 	i915_gem_object_unlock(obj);
1357 
1358 	return 0;
1359 }
1360 
1361 static const struct intel_memory_region_ops ttm_system_region_ops = {
1362 	.init_object = __i915_gem_ttm_object_init,
1363 	.release = intel_region_ttm_fini,
1364 };
1365 
1366 struct intel_memory_region *
i915_gem_ttm_system_setup(struct drm_i915_private * i915,u16 type,u16 instance)1367 i915_gem_ttm_system_setup(struct drm_i915_private *i915,
1368 			  u16 type, u16 instance)
1369 {
1370 	struct intel_memory_region *mr;
1371 
1372 	mr = intel_memory_region_create(i915, 0,
1373 					totalram_pages() << PAGE_SHIFT,
1374 					PAGE_SIZE, 0, 0,
1375 					type, instance,
1376 					&ttm_system_region_ops);
1377 	if (IS_ERR(mr))
1378 		return mr;
1379 
1380 	intel_memory_region_set_name(mr, "system-ttm");
1381 	return mr;
1382 }
1383