1 /*
2 * Copyright 2009 Jerome Glisse.
3 * All Rights Reserved.
4 *
5 * Permission is hereby granted, free of charge, to any person obtaining a
6 * copy of this software and associated documentation files (the
7 * "Software"), to deal in the Software without restriction, including
8 * without limitation the rights to use, copy, modify, merge, publish,
9 * distribute, sub license, and/or sell copies of the Software, and to
10 * permit persons to whom the Software is furnished to do so, subject to
11 * the following conditions:
12 *
13 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
14 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
15 * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
16 * THE COPYRIGHT HOLDERS, AUTHORS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM,
17 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
18 * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
19 * USE OR OTHER DEALINGS IN THE SOFTWARE.
20 *
21 * The above copyright notice and this permission notice (including the
22 * next paragraph) shall be included in all copies or substantial portions
23 * of the Software.
24 *
25 */
26 /*
27 * Authors:
28 * Jerome Glisse <glisse@freedesktop.org>
29 * Thomas Hellstrom <thomas-at-tungstengraphics-dot-com>
30 * Dave Airlie
31 */
32
33 #include <linux/dma-mapping.h>
34 #include <linux/iommu.h>
35 #include <linux/pagemap.h>
36 #include <linux/sched/task.h>
37 #include <linux/sched/mm.h>
38 #include <linux/seq_file.h>
39 #include <linux/slab.h>
40 #include <linux/swap.h>
41 #include <linux/dma-buf.h>
42 #include <linux/sizes.h>
43 #include <linux/module.h>
44
45 #include <drm/drm_drv.h>
46 #include <drm/ttm/ttm_bo.h>
47 #include <drm/ttm/ttm_placement.h>
48 #include <drm/ttm/ttm_range_manager.h>
49 #include <drm/ttm/ttm_tt.h>
50
51 #include <drm/amdgpu_drm.h>
52
53 #include "amdgpu.h"
54 #include "amdgpu_object.h"
55 #include "amdgpu_trace.h"
56 #include "amdgpu_amdkfd.h"
57 #include "amdgpu_sdma.h"
58 #include "amdgpu_ras.h"
59 #include "amdgpu_hmm.h"
60 #include "amdgpu_atomfirmware.h"
61 #include "amdgpu_res_cursor.h"
62 #include "bif/bif_4_1_d.h"
63 #include "kfd_svm.h"
64
65 MODULE_IMPORT_NS("DMA_BUF");
66
67 #define AMDGPU_TTM_VRAM_MAX_DW_READ ((size_t)128)
68
69 static int amdgpu_ttm_backend_bind(struct ttm_device *bdev,
70 struct ttm_tt *ttm,
71 struct ttm_resource *bo_mem);
72 static void amdgpu_ttm_backend_unbind(struct ttm_device *bdev,
73 struct ttm_tt *ttm);
74
amdgpu_ttm_init_on_chip(struct amdgpu_device * adev,unsigned int type,uint64_t size_in_page)75 static int amdgpu_ttm_init_on_chip(struct amdgpu_device *adev,
76 unsigned int type,
77 uint64_t size_in_page)
78 {
79 if (!size_in_page)
80 return 0;
81
82 return ttm_range_man_init(&adev->mman.bdev, type,
83 false, size_in_page);
84 }
85
86 /**
87 * amdgpu_evict_flags - Compute placement flags
88 *
89 * @bo: The buffer object to evict
90 * @placement: Possible destination(s) for evicted BO
91 *
92 * Fill in placement data when ttm_bo_evict() is called
93 */
amdgpu_evict_flags(struct ttm_buffer_object * bo,struct ttm_placement * placement)94 static void amdgpu_evict_flags(struct ttm_buffer_object *bo,
95 struct ttm_placement *placement)
96 {
97 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->bdev);
98 struct amdgpu_bo *abo;
99 static const struct ttm_place placements = {
100 .fpfn = 0,
101 .lpfn = 0,
102 .mem_type = TTM_PL_SYSTEM,
103 .flags = 0
104 };
105
106 /* Don't handle scatter gather BOs */
107 if (bo->type == ttm_bo_type_sg) {
108 placement->num_placement = 0;
109 return;
110 }
111
112 /* Object isn't an AMDGPU object so ignore */
113 if (!amdgpu_bo_is_amdgpu_bo(bo)) {
114 placement->placement = &placements;
115 placement->num_placement = 1;
116 return;
117 }
118
119 abo = ttm_to_amdgpu_bo(bo);
120 if (abo->flags & AMDGPU_GEM_CREATE_DISCARDABLE) {
121 placement->num_placement = 0;
122 return;
123 }
124
125 switch (bo->resource->mem_type) {
126 case AMDGPU_PL_GDS:
127 case AMDGPU_PL_GWS:
128 case AMDGPU_PL_OA:
129 case AMDGPU_PL_DOORBELL:
130 case AMDGPU_PL_MMIO_REMAP:
131 placement->num_placement = 0;
132 return;
133
134 case TTM_PL_VRAM:
135 if (!adev->mman.buffer_funcs_enabled) {
136 /* Move to system memory */
137 amdgpu_bo_placement_from_domain(abo, AMDGPU_GEM_DOMAIN_CPU);
138
139 } else if (!amdgpu_gmc_vram_full_visible(&adev->gmc) &&
140 !(abo->flags & AMDGPU_GEM_CREATE_CPU_ACCESS_REQUIRED) &&
141 amdgpu_res_cpu_visible(adev, bo->resource)) {
142
143 /* Try evicting to the CPU inaccessible part of VRAM
144 * first, but only set GTT as busy placement, so this
145 * BO will be evicted to GTT rather than causing other
146 * BOs to be evicted from VRAM
147 */
148 amdgpu_bo_placement_from_domain(abo, AMDGPU_GEM_DOMAIN_VRAM |
149 AMDGPU_GEM_DOMAIN_GTT |
150 AMDGPU_GEM_DOMAIN_CPU);
151 abo->placements[0].fpfn = adev->gmc.visible_vram_size >> PAGE_SHIFT;
152 abo->placements[0].lpfn = 0;
153 abo->placements[0].flags |= TTM_PL_FLAG_DESIRED;
154 } else {
155 /* Move to GTT memory */
156 amdgpu_bo_placement_from_domain(abo, AMDGPU_GEM_DOMAIN_GTT |
157 AMDGPU_GEM_DOMAIN_CPU);
158 }
159 break;
160 case TTM_PL_TT:
161 case AMDGPU_PL_PREEMPT:
162 default:
163 amdgpu_bo_placement_from_domain(abo, AMDGPU_GEM_DOMAIN_CPU);
164 break;
165 }
166 *placement = abo->placement;
167 }
168
169 static struct dma_fence *
amdgpu_ttm_job_submit(struct amdgpu_device * adev,struct amdgpu_ttm_buffer_entity * entity,struct amdgpu_job * job,u32 num_dw)170 amdgpu_ttm_job_submit(struct amdgpu_device *adev, struct amdgpu_ttm_buffer_entity *entity,
171 struct amdgpu_job *job, u32 num_dw)
172 {
173 struct amdgpu_ring *ring;
174
175 ring = to_amdgpu_ring(adev->mman.buffer_funcs_scheds[0]);
176 amdgpu_ring_pad_ib(ring, &job->ibs[0]);
177 WARN_ON(job->ibs[0].length_dw > num_dw);
178
179 lockdep_assert_held(&entity->lock);
180
181 return amdgpu_job_submit(job);
182 }
183
184 /**
185 * amdgpu_ttm_map_buffer - Map memory into the GART windows
186 * @entity: entity to run the window setup job
187 * @bo: buffer object to map
188 * @mem: memory object to map
189 * @mm_cur: range to map
190 * @window: which GART window to use
191 * @tmz: if we should setup a TMZ enabled mapping
192 * @size: in number of bytes to map, out number of bytes mapped
193 * @addr: resulting address inside the MC address space
194 *
195 * Setup one of the GART windows to access a specific piece of memory or return
196 * the physical address for local memory.
197 */
amdgpu_ttm_map_buffer(struct amdgpu_ttm_buffer_entity * entity,struct ttm_buffer_object * bo,struct ttm_resource * mem,struct amdgpu_res_cursor * mm_cur,unsigned int window,bool tmz,uint64_t * size,uint64_t * addr)198 static int amdgpu_ttm_map_buffer(struct amdgpu_ttm_buffer_entity *entity,
199 struct ttm_buffer_object *bo,
200 struct ttm_resource *mem,
201 struct amdgpu_res_cursor *mm_cur,
202 unsigned int window,
203 bool tmz, uint64_t *size, uint64_t *addr)
204 {
205 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->bdev);
206 unsigned int offset, num_pages, num_dw, num_bytes;
207 uint64_t src_addr, dst_addr;
208 struct amdgpu_job *job;
209 void *cpu_addr;
210 uint64_t flags;
211 int r;
212 const u64 GTT_MAX_PAGES = (AMDGPU_GTT_MAX_TRANSFER_SIZE >> PAGE_SHIFT);
213
214 BUG_ON(adev->mman.buffer_funcs->copy_max_bytes <
215 GTT_MAX_PAGES * AMDGPU_GPU_PAGES_IN_CPU_PAGE * 8);
216
217 if (WARN_ON(mem->mem_type == AMDGPU_PL_PREEMPT))
218 return -EINVAL;
219
220 /* Map only what can't be accessed directly */
221 if (!tmz && mem->start != AMDGPU_BO_INVALID_OFFSET) {
222 *addr = amdgpu_ttm_domain_start(adev, mem->mem_type) +
223 mm_cur->start;
224 return 0;
225 }
226
227
228 /*
229 * If start begins at an offset inside the page, then adjust the size
230 * and addr accordingly
231 */
232 offset = mm_cur->start & ~PAGE_MASK;
233
234 num_pages = PFN_UP(*size + offset);
235 num_pages = min_t(uint32_t, num_pages, GTT_MAX_PAGES);
236
237 *size = min(*size, (uint64_t)num_pages * PAGE_SIZE - offset);
238
239 *addr = amdgpu_compute_gart_address(&adev->gmc, entity, window);
240 *addr += offset;
241
242 num_dw = ALIGN(adev->mman.buffer_funcs->copy_num_dw, 8);
243 num_bytes = num_pages * 8 * AMDGPU_GPU_PAGES_IN_CPU_PAGE;
244
245 r = amdgpu_job_alloc_with_ib(adev, &entity->base,
246 AMDGPU_FENCE_OWNER_UNDEFINED,
247 num_dw * 4 + num_bytes,
248 AMDGPU_IB_POOL_DELAYED,
249 AMDGPU_KERNEL_JOB_ID_TTM_MAP_BUFFER,
250 &job);
251 if (r)
252 return r;
253
254 src_addr = num_dw * 4;
255 src_addr += job->ibs[0].gpu_addr;
256
257 dst_addr = amdgpu_bo_gpu_offset(adev->gart.bo);
258 dst_addr += (entity->gart_window_offs[window] >> AMDGPU_GPU_PAGE_SHIFT) * 8;
259 amdgpu_emit_copy_buffer(adev, &job->ibs[0], src_addr,
260 dst_addr, num_bytes, 0);
261
262 flags = amdgpu_ttm_tt_pte_flags(adev, bo->ttm, mem);
263 if (tmz)
264 flags |= AMDGPU_PTE_TMZ;
265
266 cpu_addr = &job->ibs[0].ptr[num_dw];
267
268 if (mem->mem_type == TTM_PL_TT) {
269 dma_addr_t *dma_addr;
270
271 dma_addr = &bo->ttm->dma_address[mm_cur->start >> PAGE_SHIFT];
272 amdgpu_gart_map(adev, 0, num_pages, dma_addr, flags, cpu_addr);
273 } else {
274 u64 pa = mm_cur->start + adev->vm_manager.vram_base_offset;
275
276 amdgpu_gart_map_vram_range(adev, pa, 0, num_pages, flags, cpu_addr);
277 }
278
279 dma_fence_put(amdgpu_ttm_job_submit(adev, entity, job, num_dw));
280 return 0;
281 }
282
283 /**
284 * amdgpu_ttm_copy_mem_to_mem - Helper function for copy
285 * @adev: amdgpu device
286 * @entity: entity to run the jobs
287 * @src: buffer/address where to read from
288 * @dst: buffer/address where to write to
289 * @size: number of bytes to copy
290 * @tmz: if a secure copy should be used
291 * @resv: resv object to sync to
292 * @f: Returns the last fence if multiple jobs are submitted.
293 *
294 * The function copies @size bytes from {src->mem + src->offset} to
295 * {dst->mem + dst->offset}. src->bo and dst->bo could be same BO for a
296 * move and different for a BO to BO copy.
297 *
298 */
299 __attribute__((nonnull))
amdgpu_ttm_copy_mem_to_mem(struct amdgpu_device * adev,struct amdgpu_ttm_buffer_entity * entity,const struct amdgpu_copy_mem * src,const struct amdgpu_copy_mem * dst,uint64_t size,bool tmz,struct dma_resv * resv,struct dma_fence ** f)300 static int amdgpu_ttm_copy_mem_to_mem(struct amdgpu_device *adev,
301 struct amdgpu_ttm_buffer_entity *entity,
302 const struct amdgpu_copy_mem *src,
303 const struct amdgpu_copy_mem *dst,
304 uint64_t size, bool tmz,
305 struct dma_resv *resv,
306 struct dma_fence **f)
307 {
308 struct amdgpu_res_cursor src_mm, dst_mm;
309 struct dma_fence *fence = NULL;
310 int r = 0;
311 uint32_t copy_flags = 0;
312 struct amdgpu_bo *abo_src, *abo_dst;
313
314 if (!adev->mman.buffer_funcs_enabled) {
315 dev_err(adev->dev,
316 "Trying to move memory with ring turned off.\n");
317 return -EINVAL;
318 }
319
320 amdgpu_res_first(src->mem, src->offset, size, &src_mm);
321 amdgpu_res_first(dst->mem, dst->offset, size, &dst_mm);
322
323 mutex_lock(&entity->lock);
324 while (src_mm.remaining) {
325 uint64_t from, to, cur_size, tiling_flags;
326 uint32_t num_type, data_format, max_com, write_compress_disable;
327 struct dma_fence *next;
328
329 /* Never copy more than 256MiB at once to avoid a timeout */
330 cur_size = min3(src_mm.size, dst_mm.size, 256ULL << 20);
331
332 /* Map src to window 0 and dst to window 1. */
333 r = amdgpu_ttm_map_buffer(entity, src->bo, src->mem, &src_mm,
334 0, tmz, &cur_size, &from);
335 if (r)
336 goto error;
337
338 r = amdgpu_ttm_map_buffer(entity, dst->bo, dst->mem, &dst_mm,
339 1, tmz, &cur_size, &to);
340 if (r)
341 goto error;
342
343 abo_src = ttm_to_amdgpu_bo(src->bo);
344 abo_dst = ttm_to_amdgpu_bo(dst->bo);
345 if (tmz)
346 copy_flags |= AMDGPU_COPY_FLAGS_TMZ;
347 if ((abo_src->flags & AMDGPU_GEM_CREATE_GFX12_DCC) &&
348 (abo_src->tbo.resource->mem_type == TTM_PL_VRAM))
349 copy_flags |= AMDGPU_COPY_FLAGS_READ_DECOMPRESSED;
350 if ((abo_dst->flags & AMDGPU_GEM_CREATE_GFX12_DCC) &&
351 (dst->mem->mem_type == TTM_PL_VRAM)) {
352 copy_flags |= AMDGPU_COPY_FLAGS_WRITE_COMPRESSED;
353 amdgpu_bo_get_tiling_flags(abo_dst, &tiling_flags);
354 max_com = AMDGPU_TILING_GET(tiling_flags, GFX12_DCC_MAX_COMPRESSED_BLOCK);
355 num_type = AMDGPU_TILING_GET(tiling_flags, GFX12_DCC_NUMBER_TYPE);
356 data_format = AMDGPU_TILING_GET(tiling_flags, GFX12_DCC_DATA_FORMAT);
357 write_compress_disable =
358 AMDGPU_TILING_GET(tiling_flags, GFX12_DCC_WRITE_COMPRESS_DISABLE);
359 copy_flags |= (AMDGPU_COPY_FLAGS_SET(MAX_COMPRESSED, max_com) |
360 AMDGPU_COPY_FLAGS_SET(NUMBER_TYPE, num_type) |
361 AMDGPU_COPY_FLAGS_SET(DATA_FORMAT, data_format) |
362 AMDGPU_COPY_FLAGS_SET(WRITE_COMPRESS_DISABLE,
363 write_compress_disable));
364 }
365
366 r = amdgpu_copy_buffer(adev, entity, from, to, cur_size, resv,
367 &next, true, copy_flags);
368 if (r)
369 goto error;
370
371 dma_fence_put(fence);
372 fence = next;
373
374 amdgpu_res_next(&src_mm, cur_size);
375 amdgpu_res_next(&dst_mm, cur_size);
376 }
377 error:
378 mutex_unlock(&entity->lock);
379 *f = fence;
380 return r;
381 }
382
383 /*
384 * amdgpu_move_blit - Copy an entire buffer to another buffer
385 *
386 * This is a helper called by amdgpu_bo_move() and amdgpu_move_vram_ram() to
387 * help move buffers to and from VRAM.
388 */
amdgpu_move_blit(struct ttm_buffer_object * bo,bool evict,struct ttm_resource * new_mem,struct ttm_resource * old_mem)389 static int amdgpu_move_blit(struct ttm_buffer_object *bo,
390 bool evict,
391 struct ttm_resource *new_mem,
392 struct ttm_resource *old_mem)
393 {
394 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->bdev);
395 struct amdgpu_bo *abo = ttm_to_amdgpu_bo(bo);
396 struct amdgpu_ttm_buffer_entity *entity;
397 struct amdgpu_copy_mem src, dst;
398 struct dma_fence *fence = NULL;
399 int r;
400 u32 e;
401
402 src.bo = bo;
403 dst.bo = bo;
404 src.mem = old_mem;
405 dst.mem = new_mem;
406 src.offset = 0;
407 dst.offset = 0;
408
409 e = atomic_inc_return(&adev->mman.next_move_entity) %
410 adev->mman.num_move_entities;
411 entity = &adev->mman.move_entities[e];
412
413 r = amdgpu_ttm_copy_mem_to_mem(adev,
414 entity,
415 &src, &dst,
416 new_mem->size,
417 amdgpu_bo_encrypted(abo),
418 bo->base.resv, &fence);
419 if (r)
420 goto error;
421
422 /* clear the space being freed */
423 if (old_mem->mem_type == TTM_PL_VRAM &&
424 (abo->flags & AMDGPU_GEM_CREATE_VRAM_WIPE_ON_RELEASE)) {
425 struct dma_fence *wipe_fence = NULL;
426 r = amdgpu_ttm_clear_buffer(entity, abo, NULL, &wipe_fence,
427 false, AMDGPU_KERNEL_JOB_ID_MOVE_BLIT);
428 if (r) {
429 goto error;
430 } else if (wipe_fence) {
431 amdgpu_vram_mgr_set_cleared(bo->resource);
432 dma_fence_put(fence);
433 fence = wipe_fence;
434 }
435 }
436
437 /* Always block for VM page tables before committing the new location */
438 if (bo->type == ttm_bo_type_kernel)
439 r = ttm_bo_move_accel_cleanup(bo, fence, true, false, new_mem);
440 else
441 r = ttm_bo_move_accel_cleanup(bo, fence, evict, true, new_mem);
442 dma_fence_put(fence);
443 return r;
444
445 error:
446 if (fence)
447 dma_fence_wait(fence, false);
448 dma_fence_put(fence);
449 return r;
450 }
451
452 /**
453 * amdgpu_res_cpu_visible - Check that resource can be accessed by CPU
454 * @adev: amdgpu device
455 * @res: the resource to check
456 *
457 * Returns: true if the full resource is CPU visible, false otherwise.
458 */
amdgpu_res_cpu_visible(struct amdgpu_device * adev,struct ttm_resource * res)459 bool amdgpu_res_cpu_visible(struct amdgpu_device *adev,
460 struct ttm_resource *res)
461 {
462 struct amdgpu_res_cursor cursor;
463
464 if (!res)
465 return false;
466
467 if (res->mem_type == TTM_PL_SYSTEM || res->mem_type == TTM_PL_TT ||
468 res->mem_type == AMDGPU_PL_PREEMPT || res->mem_type == AMDGPU_PL_DOORBELL ||
469 res->mem_type == AMDGPU_PL_MMIO_REMAP)
470 return true;
471
472 if (res->mem_type != TTM_PL_VRAM)
473 return false;
474
475 amdgpu_res_first(res, 0, res->size, &cursor);
476 while (cursor.remaining) {
477 if ((cursor.start + cursor.size) > adev->gmc.visible_vram_size)
478 return false;
479 amdgpu_res_next(&cursor, cursor.size);
480 }
481
482 return true;
483 }
484
485 /*
486 * amdgpu_res_copyable - Check that memory can be accessed by ttm_bo_move_memcpy
487 *
488 * Called by amdgpu_bo_move()
489 */
amdgpu_res_copyable(struct amdgpu_device * adev,struct ttm_resource * mem)490 static bool amdgpu_res_copyable(struct amdgpu_device *adev,
491 struct ttm_resource *mem)
492 {
493 if (!amdgpu_res_cpu_visible(adev, mem))
494 return false;
495
496 /* ttm_resource_ioremap only supports contiguous memory */
497 if (mem->mem_type == TTM_PL_VRAM &&
498 !(mem->placement & TTM_PL_FLAG_CONTIGUOUS))
499 return false;
500
501 return true;
502 }
503
504 /*
505 * amdgpu_bo_move - Move a buffer object to a new memory location
506 *
507 * Called by ttm_bo_handle_move_mem()
508 */
amdgpu_bo_move(struct ttm_buffer_object * bo,bool evict,struct ttm_operation_ctx * ctx,struct ttm_resource * new_mem,struct ttm_place * hop)509 static int amdgpu_bo_move(struct ttm_buffer_object *bo, bool evict,
510 struct ttm_operation_ctx *ctx,
511 struct ttm_resource *new_mem,
512 struct ttm_place *hop)
513 {
514 struct amdgpu_device *adev;
515 struct amdgpu_bo *abo;
516 struct ttm_resource *old_mem = bo->resource;
517 int r;
518
519 if (new_mem->mem_type == TTM_PL_TT ||
520 new_mem->mem_type == AMDGPU_PL_PREEMPT) {
521 if (old_mem && (old_mem->mem_type == TTM_PL_TT ||
522 old_mem->mem_type == AMDGPU_PL_PREEMPT)) {
523 r = ttm_bo_wait_ctx(bo, ctx);
524 if (r)
525 return r;
526
527 amdgpu_ttm_backend_unbind(bo->bdev, bo->ttm);
528 }
529
530 r = amdgpu_ttm_backend_bind(bo->bdev, bo->ttm, new_mem);
531 if (r)
532 return r;
533 }
534
535 abo = ttm_to_amdgpu_bo(bo);
536 adev = amdgpu_ttm_adev(bo->bdev);
537
538 if (!old_mem || (old_mem->mem_type == TTM_PL_SYSTEM &&
539 bo->ttm == NULL)) {
540 amdgpu_bo_move_notify(bo, evict, new_mem);
541 ttm_bo_move_null(bo, new_mem);
542 return 0;
543 }
544 if (old_mem->mem_type == TTM_PL_SYSTEM &&
545 (new_mem->mem_type == TTM_PL_TT ||
546 new_mem->mem_type == AMDGPU_PL_PREEMPT)) {
547 amdgpu_bo_move_notify(bo, evict, new_mem);
548 ttm_bo_move_null(bo, new_mem);
549 return 0;
550 }
551 if ((old_mem->mem_type == TTM_PL_TT ||
552 old_mem->mem_type == AMDGPU_PL_PREEMPT) &&
553 new_mem->mem_type == TTM_PL_SYSTEM) {
554 r = ttm_bo_wait_ctx(bo, ctx);
555 if (r)
556 return r;
557
558 amdgpu_ttm_backend_unbind(bo->bdev, bo->ttm);
559 amdgpu_bo_move_notify(bo, evict, new_mem);
560 ttm_resource_free(bo, &bo->resource);
561 ttm_bo_assign_mem(bo, new_mem);
562 return 0;
563 }
564 if ((old_mem->mem_type == TTM_PL_TT ||
565 old_mem->mem_type == AMDGPU_PL_PREEMPT) &&
566 (new_mem->mem_type == TTM_PL_TT ||
567 new_mem->mem_type == AMDGPU_PL_PREEMPT)) {
568 amdgpu_bo_move_notify(bo, evict, new_mem);
569 ttm_resource_free(bo, &bo->resource);
570 ttm_bo_assign_mem(bo, new_mem);
571 return 0;
572 }
573
574 if (old_mem->mem_type == AMDGPU_PL_GDS ||
575 old_mem->mem_type == AMDGPU_PL_GWS ||
576 old_mem->mem_type == AMDGPU_PL_OA ||
577 old_mem->mem_type == AMDGPU_PL_DOORBELL ||
578 old_mem->mem_type == AMDGPU_PL_MMIO_REMAP ||
579 new_mem->mem_type == AMDGPU_PL_GDS ||
580 new_mem->mem_type == AMDGPU_PL_GWS ||
581 new_mem->mem_type == AMDGPU_PL_OA ||
582 new_mem->mem_type == AMDGPU_PL_DOORBELL ||
583 new_mem->mem_type == AMDGPU_PL_MMIO_REMAP) {
584 /* Nothing to save here */
585 amdgpu_bo_move_notify(bo, evict, new_mem);
586 ttm_bo_move_null(bo, new_mem);
587 return 0;
588 }
589
590 if (bo->type == ttm_bo_type_device &&
591 new_mem->mem_type == TTM_PL_VRAM &&
592 old_mem->mem_type != TTM_PL_VRAM) {
593 /* amdgpu_bo_fault_reserve_notify will re-set this if the CPU
594 * accesses the BO after it's moved.
595 */
596 abo->flags &= ~AMDGPU_GEM_CREATE_CPU_ACCESS_REQUIRED;
597 }
598
599 if (adev->mman.buffer_funcs_enabled &&
600 ((old_mem->mem_type == TTM_PL_SYSTEM &&
601 new_mem->mem_type == TTM_PL_VRAM) ||
602 (old_mem->mem_type == TTM_PL_VRAM &&
603 new_mem->mem_type == TTM_PL_SYSTEM))) {
604 hop->fpfn = 0;
605 hop->lpfn = 0;
606 hop->mem_type = TTM_PL_TT;
607 hop->flags = TTM_PL_FLAG_TEMPORARY;
608 return -EMULTIHOP;
609 }
610
611 amdgpu_bo_move_notify(bo, evict, new_mem);
612 if (adev->mman.buffer_funcs_enabled)
613 r = amdgpu_move_blit(bo, evict, new_mem, old_mem);
614 else
615 r = -ENODEV;
616
617 if (r) {
618 /* Check that all memory is CPU accessible */
619 if (!amdgpu_res_copyable(adev, old_mem) ||
620 !amdgpu_res_copyable(adev, new_mem)) {
621 pr_err("Move buffer fallback to memcpy unavailable\n");
622 return r;
623 }
624
625 r = ttm_bo_move_memcpy(bo, ctx, new_mem);
626 if (r)
627 return r;
628 }
629
630 /* update statistics after the move */
631 if (evict)
632 atomic64_inc(&adev->num_evictions);
633 atomic64_add(bo->base.size, &adev->num_bytes_moved);
634 return 0;
635 }
636
637 /*
638 * amdgpu_ttm_io_mem_reserve - Reserve a block of memory during a fault
639 *
640 * Called by ttm_mem_io_reserve() ultimately via ttm_bo_vm_fault()
641 */
amdgpu_ttm_io_mem_reserve(struct ttm_device * bdev,struct ttm_resource * mem)642 static int amdgpu_ttm_io_mem_reserve(struct ttm_device *bdev,
643 struct ttm_resource *mem)
644 {
645 struct amdgpu_device *adev = amdgpu_ttm_adev(bdev);
646
647 switch (mem->mem_type) {
648 case TTM_PL_SYSTEM:
649 /* system memory */
650 return 0;
651 case TTM_PL_TT:
652 case AMDGPU_PL_PREEMPT:
653 break;
654 case TTM_PL_VRAM:
655 mem->bus.offset = mem->start << PAGE_SHIFT;
656
657 if (adev->mman.aper_base_kaddr &&
658 mem->placement & TTM_PL_FLAG_CONTIGUOUS)
659 mem->bus.addr = (u8 *)adev->mman.aper_base_kaddr +
660 mem->bus.offset;
661
662 mem->bus.offset += adev->gmc.aper_base;
663 mem->bus.is_iomem = true;
664 break;
665 case AMDGPU_PL_DOORBELL:
666 mem->bus.offset = mem->start << PAGE_SHIFT;
667 mem->bus.offset += adev->doorbell.base;
668 mem->bus.is_iomem = true;
669 mem->bus.caching = ttm_uncached;
670 break;
671 case AMDGPU_PL_MMIO_REMAP:
672 mem->bus.offset = mem->start << PAGE_SHIFT;
673 mem->bus.offset += adev->rmmio_remap.bus_addr;
674 mem->bus.is_iomem = true;
675 mem->bus.caching = ttm_uncached;
676 break;
677 default:
678 return -EINVAL;
679 }
680 return 0;
681 }
682
amdgpu_ttm_io_mem_pfn(struct ttm_buffer_object * bo,unsigned long page_offset)683 static unsigned long amdgpu_ttm_io_mem_pfn(struct ttm_buffer_object *bo,
684 unsigned long page_offset)
685 {
686 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->bdev);
687 struct amdgpu_res_cursor cursor;
688
689 amdgpu_res_first(bo->resource, (u64)page_offset << PAGE_SHIFT, 0,
690 &cursor);
691
692 if (bo->resource->mem_type == AMDGPU_PL_DOORBELL)
693 return ((uint64_t)(adev->doorbell.base + cursor.start)) >> PAGE_SHIFT;
694 else if (bo->resource->mem_type == AMDGPU_PL_MMIO_REMAP)
695 return ((uint64_t)(adev->rmmio_remap.bus_addr + cursor.start)) >> PAGE_SHIFT;
696
697 return (adev->gmc.aper_base + cursor.start) >> PAGE_SHIFT;
698 }
699
700 /**
701 * amdgpu_ttm_domain_start - Returns GPU start address
702 * @adev: amdgpu device object
703 * @type: type of the memory
704 *
705 * Returns:
706 * GPU start address of a memory domain
707 */
708
amdgpu_ttm_domain_start(struct amdgpu_device * adev,uint32_t type)709 uint64_t amdgpu_ttm_domain_start(struct amdgpu_device *adev, uint32_t type)
710 {
711 switch (type) {
712 case TTM_PL_TT:
713 return adev->gmc.gart_start;
714 case TTM_PL_VRAM:
715 return adev->gmc.vram_start;
716 }
717
718 return 0;
719 }
720
721 /*
722 * TTM backend functions.
723 */
724 struct amdgpu_ttm_tt {
725 struct ttm_tt ttm;
726 struct drm_gem_object *gobj;
727 u64 offset;
728 uint64_t userptr;
729 struct task_struct *usertask;
730 uint32_t userflags;
731 bool bound;
732 int32_t pool_id;
733 };
734
735 #define ttm_to_amdgpu_ttm_tt(ptr) container_of(ptr, struct amdgpu_ttm_tt, ttm)
736
737 #ifdef CONFIG_DRM_AMDGPU_USERPTR
738 /*
739 * amdgpu_ttm_tt_get_user_pages - get device accessible pages that back user
740 * memory and start HMM tracking CPU page table update
741 *
742 * Calling function must call amdgpu_ttm_tt_userptr_range_done() once and only
743 * once afterwards to stop HMM tracking. Its the caller responsibility to ensure
744 * that range is a valid memory and it is freed too.
745 */
amdgpu_ttm_tt_get_user_pages(struct amdgpu_bo * bo,struct amdgpu_hmm_range * range)746 int amdgpu_ttm_tt_get_user_pages(struct amdgpu_bo *bo,
747 struct amdgpu_hmm_range *range)
748 {
749 struct ttm_tt *ttm = bo->tbo.ttm;
750 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
751 unsigned long start = gtt->userptr;
752 struct vm_area_struct *vma;
753 struct mm_struct *mm;
754 bool readonly;
755 int r = 0;
756
757 mm = bo->notifier.mm;
758 if (unlikely(!mm)) {
759 DRM_DEBUG_DRIVER("BO is not registered?\n");
760 return -EFAULT;
761 }
762
763 if (!mmget_not_zero(mm)) /* Happens during process shutdown */
764 return -ESRCH;
765
766 mmap_read_lock(mm);
767 vma = vma_lookup(mm, start);
768 if (unlikely(!vma)) {
769 r = -EFAULT;
770 goto out_unlock;
771 }
772 if (unlikely((gtt->userflags & AMDGPU_GEM_USERPTR_ANONONLY) &&
773 vma->vm_file)) {
774 r = -EPERM;
775 goto out_unlock;
776 }
777
778 readonly = amdgpu_ttm_tt_is_readonly(ttm);
779 r = amdgpu_hmm_range_get_pages(&bo->notifier, start, ttm->num_pages,
780 readonly, NULL, range);
781 out_unlock:
782 mmap_read_unlock(mm);
783 if (r)
784 pr_debug("failed %d to get user pages 0x%lx\n", r, start);
785
786 mmput(mm);
787
788 return r;
789 }
790
791 #endif
792
793 /*
794 * amdgpu_ttm_tt_set_user_pages - Copy pages in, putting old pages as necessary.
795 *
796 * Called by amdgpu_cs_list_validate(). This creates the page list
797 * that backs user memory and will ultimately be mapped into the device
798 * address space.
799 */
amdgpu_ttm_tt_set_user_pages(struct ttm_tt * ttm,struct amdgpu_hmm_range * range)800 void amdgpu_ttm_tt_set_user_pages(struct ttm_tt *ttm, struct amdgpu_hmm_range *range)
801 {
802 unsigned long i;
803
804 for (i = 0; i < ttm->num_pages; ++i)
805 ttm->pages[i] = range ? hmm_pfn_to_page(range->hmm_range.hmm_pfns[i]) : NULL;
806 }
807
808 /*
809 * amdgpu_ttm_tt_pin_userptr - prepare the sg table with the user pages
810 *
811 * Called by amdgpu_ttm_backend_bind()
812 **/
amdgpu_ttm_tt_pin_userptr(struct ttm_device * bdev,struct ttm_tt * ttm)813 static int amdgpu_ttm_tt_pin_userptr(struct ttm_device *bdev,
814 struct ttm_tt *ttm)
815 {
816 struct amdgpu_device *adev = amdgpu_ttm_adev(bdev);
817 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
818 int write = !(gtt->userflags & AMDGPU_GEM_USERPTR_READONLY);
819 enum dma_data_direction direction = write ?
820 DMA_BIDIRECTIONAL : DMA_TO_DEVICE;
821 int r;
822
823 /* Allocate an SG array and squash pages into it */
824 r = sg_alloc_table_from_pages(ttm->sg, ttm->pages, ttm->num_pages, 0,
825 (u64)ttm->num_pages << PAGE_SHIFT,
826 GFP_KERNEL);
827 if (r)
828 goto release_sg;
829
830 /* Map SG to device */
831 r = dma_map_sgtable(adev->dev, ttm->sg, direction, 0);
832 if (r)
833 goto release_sg_table;
834
835 /* convert SG to linear array of pages and dma addresses */
836 drm_prime_sg_to_dma_addr_array(ttm->sg, gtt->ttm.dma_address,
837 ttm->num_pages);
838
839 return 0;
840
841 release_sg_table:
842 sg_free_table(ttm->sg);
843 release_sg:
844 kfree(ttm->sg);
845 ttm->sg = NULL;
846 return r;
847 }
848
849 /*
850 * amdgpu_ttm_tt_unpin_userptr - Unpin and unmap userptr pages
851 */
amdgpu_ttm_tt_unpin_userptr(struct ttm_device * bdev,struct ttm_tt * ttm)852 static void amdgpu_ttm_tt_unpin_userptr(struct ttm_device *bdev,
853 struct ttm_tt *ttm)
854 {
855 struct amdgpu_device *adev = amdgpu_ttm_adev(bdev);
856 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
857 int write = !(gtt->userflags & AMDGPU_GEM_USERPTR_READONLY);
858 enum dma_data_direction direction = write ?
859 DMA_BIDIRECTIONAL : DMA_TO_DEVICE;
860
861 /* double check that we don't free the table twice */
862 if (!ttm->sg || !ttm->sg->sgl)
863 return;
864
865 /* unmap the pages mapped to the device */
866 dma_unmap_sgtable(adev->dev, ttm->sg, direction, 0);
867 sg_free_table(ttm->sg);
868 }
869
870 /*
871 * total_pages is constructed as MQD0+CtrlStack0 + MQD1+CtrlStack1 + ...
872 * MQDn+CtrlStackn where n is the number of XCCs per partition.
873 * pages_per_xcc is the size of one MQD+CtrlStack. The first page is MQD
874 * and uses memory type default, UC. The rest of pages_per_xcc are
875 * Ctrl stack and modify their memory type to NC.
876 */
amdgpu_ttm_gart_bind_gfx9_mqd(struct amdgpu_device * adev,struct ttm_tt * ttm,uint64_t flags)877 static void amdgpu_ttm_gart_bind_gfx9_mqd(struct amdgpu_device *adev,
878 struct ttm_tt *ttm, uint64_t flags)
879 {
880 struct amdgpu_ttm_tt *gtt = (void *)ttm;
881 uint64_t total_pages = ttm->num_pages;
882 int num_xcc = max(1U, adev->gfx.num_xcc_per_xcp);
883 uint64_t page_idx, pages_per_xcc;
884 int i;
885
886 pages_per_xcc = total_pages;
887 do_div(pages_per_xcc, num_xcc);
888
889 for (i = 0, page_idx = 0; i < num_xcc; i++, page_idx += pages_per_xcc) {
890 amdgpu_gart_map_gfx9_mqd(adev,
891 gtt->offset + (page_idx << PAGE_SHIFT),
892 pages_per_xcc, >t->ttm.dma_address[page_idx],
893 flags);
894 }
895 }
896
amdgpu_ttm_gart_bind(struct amdgpu_device * adev,struct ttm_buffer_object * tbo,uint64_t flags)897 static void amdgpu_ttm_gart_bind(struct amdgpu_device *adev,
898 struct ttm_buffer_object *tbo,
899 uint64_t flags)
900 {
901 struct amdgpu_bo *abo = ttm_to_amdgpu_bo(tbo);
902 struct ttm_tt *ttm = tbo->ttm;
903 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
904
905 if (amdgpu_bo_encrypted(abo))
906 flags |= AMDGPU_PTE_TMZ;
907
908 if (abo->flags & AMDGPU_GEM_CREATE_CP_MQD_GFX9) {
909 amdgpu_ttm_gart_bind_gfx9_mqd(adev, ttm, flags);
910 } else {
911 amdgpu_gart_bind(adev, gtt->offset, ttm->num_pages,
912 gtt->ttm.dma_address, flags);
913 }
914 gtt->bound = true;
915 }
916
917 /*
918 * amdgpu_ttm_backend_bind - Bind GTT memory
919 *
920 * Called by ttm_tt_bind() on behalf of ttm_bo_handle_move_mem().
921 * This handles binding GTT memory to the device address space.
922 */
amdgpu_ttm_backend_bind(struct ttm_device * bdev,struct ttm_tt * ttm,struct ttm_resource * bo_mem)923 static int amdgpu_ttm_backend_bind(struct ttm_device *bdev,
924 struct ttm_tt *ttm,
925 struct ttm_resource *bo_mem)
926 {
927 struct amdgpu_device *adev = amdgpu_ttm_adev(bdev);
928 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
929 uint64_t flags;
930 int r;
931
932 if (!bo_mem)
933 return -EINVAL;
934
935 if (gtt->bound)
936 return 0;
937
938 if (gtt->userptr) {
939 r = amdgpu_ttm_tt_pin_userptr(bdev, ttm);
940 if (r) {
941 dev_err(adev->dev, "failed to pin userptr\n");
942 return r;
943 }
944 } else if (ttm->page_flags & TTM_TT_FLAG_EXTERNAL) {
945 if (!ttm->sg) {
946 struct dma_buf_attachment *attach;
947 struct sg_table *sgt;
948
949 attach = gtt->gobj->import_attach;
950 sgt = dma_buf_map_attachment(attach, DMA_BIDIRECTIONAL);
951 if (IS_ERR(sgt))
952 return PTR_ERR(sgt);
953
954 ttm->sg = sgt;
955 }
956
957 drm_prime_sg_to_dma_addr_array(ttm->sg, gtt->ttm.dma_address,
958 ttm->num_pages);
959 }
960
961 if (!ttm->num_pages) {
962 WARN(1, "nothing to bind %u pages for mreg %p back %p!\n",
963 ttm->num_pages, bo_mem, ttm);
964 }
965
966 if (bo_mem->mem_type != TTM_PL_TT ||
967 !amdgpu_gtt_mgr_has_gart_addr(bo_mem)) {
968 gtt->offset = AMDGPU_BO_INVALID_OFFSET;
969 return 0;
970 }
971
972 /* compute PTE flags relevant to this BO memory */
973 flags = amdgpu_ttm_tt_pte_flags(adev, ttm, bo_mem);
974
975 /* bind pages into GART page tables */
976 gtt->offset = (u64)bo_mem->start << PAGE_SHIFT;
977 amdgpu_gart_bind(adev, gtt->offset, ttm->num_pages,
978 gtt->ttm.dma_address, flags);
979 gtt->bound = true;
980 return 0;
981 }
982
983 /*
984 * amdgpu_ttm_alloc_gart - Make sure buffer object is accessible either
985 * through AGP or GART aperture.
986 *
987 * If bo is accessible through AGP aperture, then use AGP aperture
988 * to access bo; otherwise allocate logical space in GART aperture
989 * and map bo to GART aperture.
990 */
amdgpu_ttm_alloc_gart(struct ttm_buffer_object * bo)991 int amdgpu_ttm_alloc_gart(struct ttm_buffer_object *bo)
992 {
993 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->bdev);
994 struct ttm_operation_ctx ctx = { false, false };
995 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(bo->ttm);
996 struct ttm_placement placement;
997 struct ttm_place placements;
998 struct ttm_resource *tmp;
999 uint64_t addr, flags;
1000 int r;
1001
1002 if (bo->resource->start != AMDGPU_BO_INVALID_OFFSET)
1003 return 0;
1004
1005 addr = amdgpu_gmc_agp_addr(bo);
1006 if (addr != AMDGPU_BO_INVALID_OFFSET)
1007 return 0;
1008
1009 /* allocate GART space */
1010 placement.num_placement = 1;
1011 placement.placement = &placements;
1012 placements.fpfn = 0;
1013 placements.lpfn = adev->gmc.gart_size >> PAGE_SHIFT;
1014 placements.mem_type = TTM_PL_TT;
1015 placements.flags = bo->resource->placement;
1016
1017 r = ttm_bo_mem_space(bo, &placement, &tmp, &ctx);
1018 if (unlikely(r))
1019 return r;
1020
1021 /* compute PTE flags for this buffer object */
1022 flags = amdgpu_ttm_tt_pte_flags(adev, bo->ttm, tmp);
1023
1024 /* Bind pages */
1025 gtt->offset = (u64)tmp->start << PAGE_SHIFT;
1026 amdgpu_ttm_gart_bind(adev, bo, flags);
1027 amdgpu_gart_invalidate_tlb(adev);
1028 ttm_resource_free(bo, &bo->resource);
1029 ttm_bo_assign_mem(bo, tmp);
1030
1031 return 0;
1032 }
1033
1034 /*
1035 * amdgpu_ttm_recover_gart - Rebind GTT pages
1036 *
1037 * Called by amdgpu_gtt_mgr_recover() from amdgpu_device_reset() to
1038 * rebind GTT pages during a GPU reset.
1039 */
amdgpu_ttm_recover_gart(struct ttm_buffer_object * tbo)1040 void amdgpu_ttm_recover_gart(struct ttm_buffer_object *tbo)
1041 {
1042 struct amdgpu_device *adev = amdgpu_ttm_adev(tbo->bdev);
1043 uint64_t flags;
1044
1045 if (!tbo->ttm)
1046 return;
1047
1048 flags = amdgpu_ttm_tt_pte_flags(adev, tbo->ttm, tbo->resource);
1049 amdgpu_ttm_gart_bind(adev, tbo, flags);
1050 }
1051
1052 /*
1053 * amdgpu_ttm_backend_unbind - Unbind GTT mapped pages
1054 *
1055 * Called by ttm_tt_unbind() on behalf of ttm_bo_move_ttm() and
1056 * ttm_tt_destroy().
1057 */
amdgpu_ttm_backend_unbind(struct ttm_device * bdev,struct ttm_tt * ttm)1058 static void amdgpu_ttm_backend_unbind(struct ttm_device *bdev,
1059 struct ttm_tt *ttm)
1060 {
1061 struct amdgpu_device *adev = amdgpu_ttm_adev(bdev);
1062 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1063
1064 /* if the pages have userptr pinning then clear that first */
1065 if (gtt->userptr) {
1066 amdgpu_ttm_tt_unpin_userptr(bdev, ttm);
1067 } else if (ttm->sg && drm_gem_is_imported(gtt->gobj)) {
1068 struct dma_buf_attachment *attach;
1069
1070 attach = gtt->gobj->import_attach;
1071 dma_buf_unmap_attachment(attach, ttm->sg, DMA_BIDIRECTIONAL);
1072 ttm->sg = NULL;
1073 }
1074
1075 if (!gtt->bound)
1076 return;
1077
1078 if (gtt->offset == AMDGPU_BO_INVALID_OFFSET)
1079 return;
1080
1081 /* unbind shouldn't be done for GDS/GWS/OA in ttm_bo_clean_mm */
1082 amdgpu_gart_unbind(adev, gtt->offset, ttm->num_pages);
1083 gtt->bound = false;
1084 }
1085
amdgpu_ttm_backend_destroy(struct ttm_device * bdev,struct ttm_tt * ttm)1086 static void amdgpu_ttm_backend_destroy(struct ttm_device *bdev,
1087 struct ttm_tt *ttm)
1088 {
1089 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1090
1091 if (gtt->usertask)
1092 put_task_struct(gtt->usertask);
1093
1094 ttm_tt_fini(>t->ttm);
1095 kfree(gtt);
1096 }
1097
1098 /**
1099 * amdgpu_ttm_mmio_remap_alloc_sgt - build an sg_table for MMIO_REMAP I/O aperture
1100 * @adev: amdgpu device providing the remap BAR base (adev->rmmio_remap.bus_addr)
1101 * @res: TTM resource of the BO to export; expected to live in AMDGPU_PL_MMIO_REMAP
1102 * @dev: importing device to map for (typically @attach->dev in dma-buf paths)
1103 * @dir: DMA data direction for the importer (passed to dma_map_resource())
1104 * @sgt: output; on success, set to a newly allocated sg_table describing the I/O span
1105 *
1106 * The HDP flush page (AMDGPU_PL_MMIO_REMAP) is a fixed hardware I/O window in a PCI
1107 * BAR—there are no struct pages to back it. Importers still need a DMA address list,
1108 * so we synthesize a minimal sg_table and populate it from dma_map_resource(), not
1109 * from pages. Using the common amdgpu_res_cursor walker keeps the offset/size math
1110 * consistent with other TTM/manager users.
1111 *
1112 * - @res is assumed to be a small, contiguous I/O region (typically a single 4 KiB
1113 * page) in AMDGPU_PL_MMIO_REMAP. Callers should validate placement before calling.
1114 * - The sg entry is created with sg_set_page(sg, NULL, …) to reflect I/O space.
1115 * - The mapping uses DMA_ATTR_SKIP_CPU_SYNC because this is MMIO, not cacheable RAM.
1116 * - Peer reachability / p2pdma policy checks must be done by the caller.
1117 *
1118 * Return:
1119 * * 0 on success, with *@sgt set to a valid table that must be freed via
1120 * amdgpu_ttm_mmio_remap_free_sgt().
1121 * * -ENOMEM if allocation of the sg_table fails.
1122 * * -EIO if dma_map_resource() fails.
1123 *
1124 */
amdgpu_ttm_mmio_remap_alloc_sgt(struct amdgpu_device * adev,struct ttm_resource * res,struct device * dev,enum dma_data_direction dir,struct sg_table ** sgt)1125 int amdgpu_ttm_mmio_remap_alloc_sgt(struct amdgpu_device *adev,
1126 struct ttm_resource *res,
1127 struct device *dev,
1128 enum dma_data_direction dir,
1129 struct sg_table **sgt)
1130 {
1131 struct amdgpu_res_cursor cur;
1132 dma_addr_t dma;
1133 resource_size_t phys;
1134 struct scatterlist *sg;
1135 int r;
1136
1137 /* Walk the resource once; MMIO_REMAP is expected to be contiguous+small. */
1138 amdgpu_res_first(res, 0, res->size, &cur);
1139
1140 /* Translate byte offset in the remap window into a host physical BAR address. */
1141 phys = adev->rmmio_remap.bus_addr + cur.start;
1142
1143 /* Build a single-entry sg_table mapped as I/O (no struct page backing). */
1144 *sgt = kzalloc_obj(**sgt);
1145 if (!*sgt)
1146 return -ENOMEM;
1147 r = sg_alloc_table(*sgt, 1, GFP_KERNEL);
1148 if (r) {
1149 kfree(*sgt);
1150 return r;
1151 }
1152 sg = (*sgt)->sgl;
1153 sg_set_page(sg, NULL, cur.size, 0); /* WHY: I/O space → no pages */
1154
1155 dma = dma_map_resource(dev, phys, cur.size, dir, DMA_ATTR_SKIP_CPU_SYNC);
1156 if (dma_mapping_error(dev, dma)) {
1157 sg_free_table(*sgt);
1158 kfree(*sgt);
1159 return -EIO;
1160 }
1161 sg_dma_address(sg) = dma;
1162 sg_dma_len(sg) = cur.size;
1163 return 0;
1164 }
1165
amdgpu_ttm_mmio_remap_free_sgt(struct device * dev,enum dma_data_direction dir,struct sg_table * sgt)1166 void amdgpu_ttm_mmio_remap_free_sgt(struct device *dev,
1167 enum dma_data_direction dir,
1168 struct sg_table *sgt)
1169 {
1170 struct scatterlist *sg = sgt->sgl;
1171
1172 dma_unmap_resource(dev, sg_dma_address(sg), sg_dma_len(sg),
1173 dir, DMA_ATTR_SKIP_CPU_SYNC);
1174 sg_free_table(sgt);
1175 kfree(sgt);
1176 }
1177
1178 /**
1179 * amdgpu_ttm_tt_create - Create a ttm_tt object for a given BO
1180 *
1181 * @bo: The buffer object to create a GTT ttm_tt object around
1182 * @page_flags: Page flags to be added to the ttm_tt object
1183 *
1184 * Called by ttm_tt_create().
1185 */
amdgpu_ttm_tt_create(struct ttm_buffer_object * bo,uint32_t page_flags)1186 static struct ttm_tt *amdgpu_ttm_tt_create(struct ttm_buffer_object *bo,
1187 uint32_t page_flags)
1188 {
1189 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->bdev);
1190 struct amdgpu_bo *abo = ttm_to_amdgpu_bo(bo);
1191 struct amdgpu_ttm_tt *gtt;
1192 enum ttm_caching caching;
1193
1194 gtt = kzalloc_obj(struct amdgpu_ttm_tt);
1195 if (!gtt)
1196 return NULL;
1197
1198 gtt->gobj = &bo->base;
1199 if (adev->gmc.mem_partitions && abo->xcp_id >= 0)
1200 gtt->pool_id = KFD_XCP_MEM_ID(adev, abo->xcp_id);
1201 else
1202 gtt->pool_id = abo->xcp_id;
1203
1204 if (abo->flags & AMDGPU_GEM_CREATE_CPU_GTT_USWC)
1205 caching = ttm_write_combined;
1206 else
1207 caching = ttm_cached;
1208
1209 /* allocate space for the uninitialized page entries */
1210 if (ttm_sg_tt_init(>t->ttm, bo, page_flags, caching)) {
1211 kfree(gtt);
1212 return NULL;
1213 }
1214 return >t->ttm;
1215 }
1216
1217 /*
1218 * amdgpu_ttm_tt_populate - Map GTT pages visible to the device
1219 *
1220 * Map the pages of a ttm_tt object to an address space visible
1221 * to the underlying device.
1222 */
amdgpu_ttm_tt_populate(struct ttm_device * bdev,struct ttm_tt * ttm,struct ttm_operation_ctx * ctx)1223 static int amdgpu_ttm_tt_populate(struct ttm_device *bdev,
1224 struct ttm_tt *ttm,
1225 struct ttm_operation_ctx *ctx)
1226 {
1227 struct amdgpu_device *adev = amdgpu_ttm_adev(bdev);
1228 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1229 struct ttm_pool *pool;
1230 pgoff_t i;
1231 int ret;
1232
1233 /* user pages are bound by amdgpu_ttm_tt_pin_userptr() */
1234 if (gtt->userptr) {
1235 ttm->sg = kzalloc_obj(struct sg_table);
1236 if (!ttm->sg)
1237 return -ENOMEM;
1238 return 0;
1239 }
1240
1241 if (ttm->page_flags & TTM_TT_FLAG_EXTERNAL)
1242 return 0;
1243
1244 if (adev->mman.ttm_pools && gtt->pool_id >= 0)
1245 pool = &adev->mman.ttm_pools[gtt->pool_id];
1246 else
1247 pool = &adev->mman.bdev.pool;
1248 ret = ttm_pool_alloc(pool, ttm, ctx);
1249 if (ret)
1250 return ret;
1251
1252 for (i = 0; i < ttm->num_pages; ++i)
1253 ttm->pages[i]->mapping = bdev->dev_mapping;
1254
1255 return 0;
1256 }
1257
1258 /*
1259 * amdgpu_ttm_tt_unpopulate - unmap GTT pages and unpopulate page arrays
1260 *
1261 * Unmaps pages of a ttm_tt object from the device address space and
1262 * unpopulates the page array backing it.
1263 */
amdgpu_ttm_tt_unpopulate(struct ttm_device * bdev,struct ttm_tt * ttm)1264 static void amdgpu_ttm_tt_unpopulate(struct ttm_device *bdev,
1265 struct ttm_tt *ttm)
1266 {
1267 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1268 struct amdgpu_device *adev;
1269 struct ttm_pool *pool;
1270 pgoff_t i;
1271
1272 amdgpu_ttm_backend_unbind(bdev, ttm);
1273
1274 if (gtt->userptr) {
1275 amdgpu_ttm_tt_set_user_pages(ttm, NULL);
1276 kfree(ttm->sg);
1277 ttm->sg = NULL;
1278 return;
1279 }
1280
1281 if (ttm->page_flags & TTM_TT_FLAG_EXTERNAL)
1282 return;
1283
1284 for (i = 0; i < ttm->num_pages; ++i)
1285 ttm->pages[i]->mapping = NULL;
1286
1287 adev = amdgpu_ttm_adev(bdev);
1288
1289 if (adev->mman.ttm_pools && gtt->pool_id >= 0)
1290 pool = &adev->mman.ttm_pools[gtt->pool_id];
1291 else
1292 pool = &adev->mman.bdev.pool;
1293
1294 return ttm_pool_free(pool, ttm);
1295 }
1296
1297 /**
1298 * amdgpu_ttm_tt_get_userptr - Return the userptr GTT ttm_tt for the current
1299 * task
1300 *
1301 * @tbo: The ttm_buffer_object that contains the userptr
1302 * @user_addr: The returned value
1303 */
amdgpu_ttm_tt_get_userptr(const struct ttm_buffer_object * tbo,uint64_t * user_addr)1304 int amdgpu_ttm_tt_get_userptr(const struct ttm_buffer_object *tbo,
1305 uint64_t *user_addr)
1306 {
1307 struct amdgpu_ttm_tt *gtt;
1308
1309 if (!tbo->ttm)
1310 return -EINVAL;
1311
1312 gtt = (void *)tbo->ttm;
1313 *user_addr = gtt->userptr;
1314 return 0;
1315 }
1316
1317 /**
1318 * amdgpu_ttm_tt_set_userptr - Initialize userptr GTT ttm_tt for the current
1319 * task
1320 *
1321 * @bo: The ttm_buffer_object to bind this userptr to
1322 * @addr: The address in the current tasks VM space to use
1323 * @flags: Requirements of userptr object.
1324 *
1325 * Called by amdgpu_gem_userptr_ioctl() and kfd_ioctl_alloc_memory_of_gpu() to
1326 * bind userptr pages to current task and by kfd_ioctl_acquire_vm() to
1327 * initialize GPU VM for a KFD process.
1328 */
amdgpu_ttm_tt_set_userptr(struct ttm_buffer_object * bo,uint64_t addr,uint32_t flags)1329 int amdgpu_ttm_tt_set_userptr(struct ttm_buffer_object *bo,
1330 uint64_t addr, uint32_t flags)
1331 {
1332 struct amdgpu_ttm_tt *gtt;
1333
1334 if (!bo->ttm) {
1335 /* TODO: We want a separate TTM object type for userptrs */
1336 bo->ttm = amdgpu_ttm_tt_create(bo, 0);
1337 if (bo->ttm == NULL)
1338 return -ENOMEM;
1339 }
1340
1341 /* Set TTM_TT_FLAG_EXTERNAL before populate but after create. */
1342 bo->ttm->page_flags |= TTM_TT_FLAG_EXTERNAL;
1343
1344 gtt = ttm_to_amdgpu_ttm_tt(bo->ttm);
1345 gtt->userptr = addr;
1346 gtt->userflags = flags;
1347
1348 if (gtt->usertask)
1349 put_task_struct(gtt->usertask);
1350 gtt->usertask = current->group_leader;
1351 get_task_struct(gtt->usertask);
1352
1353 return 0;
1354 }
1355
1356 /*
1357 * amdgpu_ttm_tt_get_usermm - Return memory manager for ttm_tt object
1358 */
amdgpu_ttm_tt_get_usermm(struct ttm_tt * ttm)1359 struct mm_struct *amdgpu_ttm_tt_get_usermm(struct ttm_tt *ttm)
1360 {
1361 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1362
1363 if (gtt == NULL)
1364 return NULL;
1365
1366 if (gtt->usertask == NULL)
1367 return NULL;
1368
1369 return gtt->usertask->mm;
1370 }
1371
1372 /*
1373 * amdgpu_ttm_tt_affect_userptr - Determine if a ttm_tt object lays inside an
1374 * address range for the current task.
1375 *
1376 */
amdgpu_ttm_tt_affect_userptr(struct ttm_tt * ttm,unsigned long start,unsigned long end,unsigned long * userptr)1377 bool amdgpu_ttm_tt_affect_userptr(struct ttm_tt *ttm, unsigned long start,
1378 unsigned long end, unsigned long *userptr)
1379 {
1380 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1381 unsigned long size;
1382
1383 if (gtt == NULL || !gtt->userptr)
1384 return false;
1385
1386 /* Return false if no part of the ttm_tt object lies within
1387 * the range
1388 */
1389 size = (unsigned long)gtt->ttm.num_pages * PAGE_SIZE;
1390 if (gtt->userptr > end || gtt->userptr + size <= start)
1391 return false;
1392
1393 if (userptr)
1394 *userptr = gtt->userptr;
1395 return true;
1396 }
1397
1398 /*
1399 * amdgpu_ttm_tt_is_userptr - Have the pages backing by userptr?
1400 */
amdgpu_ttm_tt_is_userptr(struct ttm_tt * ttm)1401 bool amdgpu_ttm_tt_is_userptr(struct ttm_tt *ttm)
1402 {
1403 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1404
1405 if (gtt == NULL || !gtt->userptr)
1406 return false;
1407
1408 return true;
1409 }
1410
1411 /*
1412 * amdgpu_ttm_tt_is_readonly - Is the ttm_tt object read only?
1413 */
amdgpu_ttm_tt_is_readonly(struct ttm_tt * ttm)1414 bool amdgpu_ttm_tt_is_readonly(struct ttm_tt *ttm)
1415 {
1416 struct amdgpu_ttm_tt *gtt = ttm_to_amdgpu_ttm_tt(ttm);
1417
1418 if (gtt == NULL)
1419 return false;
1420
1421 return !!(gtt->userflags & AMDGPU_GEM_USERPTR_READONLY);
1422 }
1423
1424 /**
1425 * amdgpu_ttm_tt_pde_flags - Compute PDE flags for ttm_tt object
1426 *
1427 * @ttm: The ttm_tt object to compute the flags for
1428 * @mem: The memory registry backing this ttm_tt object
1429 *
1430 * Figure out the flags to use for a VM PDE (Page Directory Entry).
1431 */
amdgpu_ttm_tt_pde_flags(struct ttm_tt * ttm,struct ttm_resource * mem)1432 uint64_t amdgpu_ttm_tt_pde_flags(struct ttm_tt *ttm, struct ttm_resource *mem)
1433 {
1434 uint64_t flags = 0;
1435
1436 if (mem && mem->mem_type != TTM_PL_SYSTEM)
1437 flags |= AMDGPU_PTE_VALID;
1438
1439 if (mem && (mem->mem_type == TTM_PL_TT ||
1440 mem->mem_type == AMDGPU_PL_DOORBELL ||
1441 mem->mem_type == AMDGPU_PL_PREEMPT ||
1442 mem->mem_type == AMDGPU_PL_MMIO_REMAP)) {
1443 flags |= AMDGPU_PTE_SYSTEM;
1444
1445 if (ttm && ttm->caching == ttm_cached)
1446 flags |= AMDGPU_PTE_SNOOPED;
1447 }
1448
1449 if (mem && mem->mem_type == TTM_PL_VRAM &&
1450 mem->bus.caching == ttm_cached)
1451 flags |= AMDGPU_PTE_SNOOPED;
1452
1453 return flags;
1454 }
1455
1456 /**
1457 * amdgpu_ttm_tt_pte_flags - Compute PTE flags for ttm_tt object
1458 *
1459 * @adev: amdgpu_device pointer
1460 * @ttm: The ttm_tt object to compute the flags for
1461 * @mem: The memory registry backing this ttm_tt object
1462 *
1463 * Figure out the flags to use for a VM PTE (Page Table Entry).
1464 */
amdgpu_ttm_tt_pte_flags(struct amdgpu_device * adev,struct ttm_tt * ttm,struct ttm_resource * mem)1465 uint64_t amdgpu_ttm_tt_pte_flags(struct amdgpu_device *adev, struct ttm_tt *ttm,
1466 struct ttm_resource *mem)
1467 {
1468 uint64_t flags = amdgpu_ttm_tt_pde_flags(ttm, mem);
1469
1470 flags |= adev->gart.gart_pte_flags;
1471 flags |= AMDGPU_PTE_READABLE;
1472
1473 if (!amdgpu_ttm_tt_is_readonly(ttm))
1474 flags |= AMDGPU_PTE_WRITEABLE;
1475
1476 return flags;
1477 }
1478
1479 /*
1480 * amdgpu_ttm_bo_eviction_valuable - Check to see if we can evict a buffer
1481 * object.
1482 *
1483 * Return true if eviction is sensible. Called by ttm_mem_evict_first() on
1484 * behalf of ttm_bo_mem_force_space() which tries to evict buffer objects until
1485 * it can find space for a new object and by ttm_bo_force_list_clean() which is
1486 * used to clean out a memory space.
1487 */
amdgpu_ttm_bo_eviction_valuable(struct ttm_buffer_object * bo,const struct ttm_place * place)1488 static bool amdgpu_ttm_bo_eviction_valuable(struct ttm_buffer_object *bo,
1489 const struct ttm_place *place)
1490 {
1491 struct dma_resv_iter resv_cursor;
1492 struct amdgpu_bo *abo;
1493 struct dma_fence *f;
1494
1495 if (!amdgpu_bo_is_amdgpu_bo(bo))
1496 return ttm_bo_eviction_valuable(bo, place);
1497
1498 /* Swapout? */
1499 if (bo->resource->mem_type == TTM_PL_SYSTEM)
1500 return true;
1501
1502 abo = ttm_to_amdgpu_bo(bo);
1503 if ((abo->flags & AMDGPU_GEM_CREATE_DISCARDABLE) &&
1504 bo->destroy == &svm_range_bo_destroy) {
1505 /*
1506 * SVM BOs are migrated to system memory synchronously in this
1507 * TTM eviction context. The migration needs the owning
1508 * process's mmap lock, but the normal lock order is
1509 * mmap_lock -> BO reservation and the BO is already reserved
1510 * here. svm_range_evict_svm_bo() only trylocks the mmap lock;
1511 * if the eviction fails for any reason, we return false so TTM
1512 * skips this BO instead of risking a deadlock.
1513 */
1514 if (svm_range_evict_svm_bo(abo) < 0)
1515 return false;
1516 }
1517
1518 if (bo->type == ttm_bo_type_kernel &&
1519 !amdgpu_vm_evictable(ttm_to_amdgpu_bo(bo)))
1520 return false;
1521
1522 /* If bo is a KFD BO, check if the bo belongs to the current process.
1523 * If true, then return false as any KFD process needs all its BOs to
1524 * be resident to run successfully
1525 */
1526 dma_resv_for_each_fence(&resv_cursor, bo->base.resv,
1527 DMA_RESV_USAGE_BOOKKEEP, f) {
1528 if (amdkfd_fence_check_mm(f, current->mm) &&
1529 !(place && (place->flags & TTM_PL_FLAG_CONTIGUOUS)))
1530 return false;
1531 }
1532
1533 /* Preemptible BOs don't own system resources managed by the
1534 * driver (pages, VRAM, GART space). They point to resources
1535 * owned by someone else (e.g. pageable memory in user mode
1536 * or a DMABuf). They are used in a preemptible context so we
1537 * can guarantee no deadlocks and good QoS in case of MMU
1538 * notifiers or DMABuf move notifiers from the resource owner.
1539 */
1540 if (bo->resource->mem_type == AMDGPU_PL_PREEMPT)
1541 return false;
1542
1543 if (bo->resource->mem_type == TTM_PL_TT &&
1544 amdgpu_bo_encrypted(ttm_to_amdgpu_bo(bo)))
1545 return false;
1546
1547 return ttm_bo_eviction_valuable(bo, place);
1548 }
1549
amdgpu_ttm_vram_mm_access(struct amdgpu_device * adev,loff_t pos,void * buf,size_t size,bool write)1550 static void amdgpu_ttm_vram_mm_access(struct amdgpu_device *adev, loff_t pos,
1551 void *buf, size_t size, bool write)
1552 {
1553 while (size) {
1554 uint64_t aligned_pos = ALIGN_DOWN(pos, 4);
1555 uint64_t bytes = 4 - (pos & 0x3);
1556 uint32_t shift = (pos & 0x3) * 8;
1557 uint32_t mask = 0xffffffff << shift;
1558 uint32_t value = 0;
1559
1560 if (size < bytes) {
1561 mask &= 0xffffffff >> (bytes - size) * 8;
1562 bytes = size;
1563 }
1564
1565 if (mask != 0xffffffff) {
1566 amdgpu_device_mm_access(adev, aligned_pos, &value, 4, false);
1567 if (write) {
1568 value &= ~mask;
1569 value |= (*(uint32_t *)buf << shift) & mask;
1570 amdgpu_device_mm_access(adev, aligned_pos, &value, 4, true);
1571 } else {
1572 value = (value & mask) >> shift;
1573 memcpy(buf, &value, bytes);
1574 }
1575 } else {
1576 amdgpu_device_mm_access(adev, aligned_pos, buf, 4, write);
1577 }
1578
1579 pos += bytes;
1580 buf += bytes;
1581 size -= bytes;
1582 }
1583 }
1584
amdgpu_ttm_access_memory_sdma(struct ttm_buffer_object * bo,unsigned long offset,void * buf,int len,int write)1585 static int amdgpu_ttm_access_memory_sdma(struct ttm_buffer_object *bo,
1586 unsigned long offset, void *buf,
1587 int len, int write)
1588 {
1589 struct amdgpu_bo *abo = ttm_to_amdgpu_bo(bo);
1590 struct amdgpu_device *adev = amdgpu_ttm_adev(abo->tbo.bdev);
1591 struct amdgpu_res_cursor src_mm;
1592 struct amdgpu_job *job;
1593 struct dma_fence *fence;
1594 uint64_t src_addr, dst_addr;
1595 unsigned int num_dw;
1596 int r, idx;
1597
1598 if (len != PAGE_SIZE)
1599 return -EINVAL;
1600
1601 if (!adev->mman.sdma_access_ptr)
1602 return -EACCES;
1603
1604 if (!adev->mman.buffer_funcs_enabled || !drm_dev_enter(adev_to_drm(adev), &idx))
1605 return -ENODEV;
1606
1607 if (write)
1608 memcpy(adev->mman.sdma_access_ptr, buf, len);
1609
1610 num_dw = ALIGN(adev->mman.buffer_funcs->copy_num_dw, 8);
1611 r = amdgpu_job_alloc_with_ib(adev, &adev->mman.default_entity.base,
1612 AMDGPU_FENCE_OWNER_UNDEFINED,
1613 num_dw * 4, AMDGPU_IB_POOL_DELAYED,
1614 AMDGPU_KERNEL_JOB_ID_TTM_ACCESS_MEMORY_SDMA,
1615 &job);
1616 if (r)
1617 goto out;
1618
1619 mutex_lock(&adev->mman.default_entity.lock);
1620 amdgpu_res_first(abo->tbo.resource, offset, len, &src_mm);
1621 src_addr = amdgpu_ttm_domain_start(adev, bo->resource->mem_type) +
1622 src_mm.start;
1623 dst_addr = amdgpu_bo_gpu_offset(adev->mman.sdma_access_bo);
1624 if (write)
1625 swap(src_addr, dst_addr);
1626
1627 amdgpu_emit_copy_buffer(adev, &job->ibs[0], src_addr, dst_addr,
1628 PAGE_SIZE, 0);
1629
1630 fence = amdgpu_ttm_job_submit(adev, &adev->mman.default_entity, job, num_dw);
1631 mutex_unlock(&adev->mman.default_entity.lock);
1632
1633 if (!dma_fence_wait_timeout(fence, false, adev->sdma_timeout))
1634 r = -ETIMEDOUT;
1635 dma_fence_put(fence);
1636
1637 if (!(r || write))
1638 memcpy(buf, adev->mman.sdma_access_ptr, len);
1639 out:
1640 drm_dev_exit(idx);
1641 return r;
1642 }
1643
1644 /**
1645 * amdgpu_ttm_access_memory - Read or Write memory that backs a buffer object.
1646 *
1647 * @bo: The buffer object to read/write
1648 * @offset: Offset into buffer object
1649 * @buf: Secondary buffer to write/read from
1650 * @len: Length in bytes of access
1651 * @write: true if writing
1652 *
1653 * This is used to access VRAM that backs a buffer object via MMIO
1654 * access for debugging purposes.
1655 */
amdgpu_ttm_access_memory(struct ttm_buffer_object * bo,unsigned long offset,void * buf,int len,int write)1656 static int amdgpu_ttm_access_memory(struct ttm_buffer_object *bo,
1657 unsigned long offset, void *buf, int len,
1658 int write)
1659 {
1660 struct amdgpu_bo *abo = ttm_to_amdgpu_bo(bo);
1661 struct amdgpu_device *adev = amdgpu_ttm_adev(abo->tbo.bdev);
1662 struct amdgpu_res_cursor cursor;
1663 int ret = 0;
1664
1665 if (bo->resource->mem_type != TTM_PL_VRAM)
1666 return -EIO;
1667
1668 if (amdgpu_device_has_timeouts_enabled(adev) &&
1669 !amdgpu_ttm_access_memory_sdma(bo, offset, buf, len, write))
1670 return len;
1671
1672 amdgpu_res_first(bo->resource, offset, len, &cursor);
1673 while (cursor.remaining) {
1674 size_t count, size = cursor.size;
1675 loff_t pos = cursor.start;
1676
1677 count = amdgpu_device_aper_access(adev, pos, buf, size, write);
1678 size -= count;
1679 if (size) {
1680 /* using MM to access rest vram and handle un-aligned address */
1681 pos += count;
1682 buf += count;
1683 amdgpu_ttm_vram_mm_access(adev, pos, buf, size, write);
1684 }
1685
1686 ret += cursor.size;
1687 buf += cursor.size;
1688 amdgpu_res_next(&cursor, cursor.size);
1689 }
1690
1691 return ret;
1692 }
1693
1694 static void
amdgpu_bo_delete_mem_notify(struct ttm_buffer_object * bo)1695 amdgpu_bo_delete_mem_notify(struct ttm_buffer_object *bo)
1696 {
1697 if (bo->resource && bo->resource->mem_type == TTM_PL_TT)
1698 amdgpu_gtt_mgr_mark_bo_teardown(bo);
1699
1700 amdgpu_bo_move_notify(bo, false, NULL);
1701 }
1702
1703 static struct ttm_device_funcs amdgpu_bo_driver = {
1704 .ttm_tt_create = &amdgpu_ttm_tt_create,
1705 .ttm_tt_populate = &amdgpu_ttm_tt_populate,
1706 .ttm_tt_unpopulate = &amdgpu_ttm_tt_unpopulate,
1707 .ttm_tt_destroy = &amdgpu_ttm_backend_destroy,
1708 .eviction_valuable = amdgpu_ttm_bo_eviction_valuable,
1709 .evict_flags = &amdgpu_evict_flags,
1710 .move = &amdgpu_bo_move,
1711 .delete_mem_notify = &amdgpu_bo_delete_mem_notify,
1712 .release_notify = &amdgpu_bo_release_notify,
1713 .io_mem_reserve = &amdgpu_ttm_io_mem_reserve,
1714 .io_mem_pfn = amdgpu_ttm_io_mem_pfn,
1715 .access_memory = &amdgpu_ttm_access_memory,
1716 };
1717
amdgpu_ttm_init_vram_resv(struct amdgpu_device * adev,enum amdgpu_resv_region_id id,uint64_t offset,uint64_t size,bool needs_cpu_map)1718 void amdgpu_ttm_init_vram_resv(struct amdgpu_device *adev,
1719 enum amdgpu_resv_region_id id,
1720 uint64_t offset, uint64_t size,
1721 bool needs_cpu_map)
1722 {
1723 struct amdgpu_vram_resv *resv;
1724
1725 if (id >= AMDGPU_RESV_MAX)
1726 return;
1727
1728 resv = &adev->mman.resv_region[id];
1729 resv->offset = offset;
1730 resv->size = size;
1731 resv->needs_cpu_map = needs_cpu_map;
1732 }
1733
amdgpu_ttm_init_fw_resv_region(struct amdgpu_device * adev)1734 static void amdgpu_ttm_init_fw_resv_region(struct amdgpu_device *adev)
1735 {
1736 uint32_t reserve_size = 0;
1737
1738 if (!adev->discovery.reserve_tmr)
1739 return;
1740
1741 /*
1742 * Query reserved tmr size through atom firmwareinfo for Sienna_Cichlid and onwards for all
1743 * the use cases (IP discovery/G6 memory training/profiling/diagnostic data.etc)
1744 *
1745 * Otherwise, fallback to legacy approach to check and reserve tmr block for ip
1746 * discovery data and G6 memory training data respectively
1747 */
1748 if (adev->bios)
1749 reserve_size =
1750 amdgpu_atomfirmware_get_fw_reserved_fb_size(adev);
1751
1752 if (!adev->bios &&
1753 (amdgpu_ip_version(adev, GC_HWIP, 0) == IP_VERSION(9, 4, 3) ||
1754 amdgpu_ip_version(adev, GC_HWIP, 0) == IP_VERSION(9, 4, 4) ||
1755 amdgpu_ip_version(adev, GC_HWIP, 0) == IP_VERSION(9, 5, 0)))
1756 reserve_size = max(reserve_size, (uint32_t)280 << 20);
1757 else if (!adev->bios &&
1758 amdgpu_ip_version(adev, GC_HWIP, 0) == IP_VERSION(12, 1, 0)) {
1759 reserve_size = max(reserve_size, (uint32_t)150 << 20);
1760 } else if (!reserve_size)
1761 reserve_size = DISCOVERY_TMR_OFFSET;
1762
1763 amdgpu_ttm_init_vram_resv(adev, AMDGPU_RESV_FW,
1764 adev->gmc.real_vram_size - reserve_size,
1765 reserve_size, false);
1766 }
1767
amdgpu_ttm_init_mem_train_resv_region(struct amdgpu_device * adev)1768 static void amdgpu_ttm_init_mem_train_resv_region(struct amdgpu_device *adev)
1769 {
1770 uint64_t reserve_size;
1771 uint64_t offset;
1772
1773 if (!adev->discovery.reserve_tmr)
1774 return;
1775
1776 if (!adev->bios || amdgpu_sriov_vf(adev))
1777 return;
1778
1779 if (!amdgpu_atomfirmware_mem_training_supported(adev))
1780 return;
1781
1782 reserve_size = adev->mman.resv_region[AMDGPU_RESV_FW].size;
1783 offset = ALIGN((adev->gmc.mc_vram_size - reserve_size - SZ_1M), SZ_1M);
1784 amdgpu_ttm_init_vram_resv(adev, AMDGPU_RESV_MEM_TRAIN,
1785 offset,
1786 GDDR6_MEM_TRAINING_DATA_SIZE_IN_BYTES,
1787 false);
1788 }
1789
amdgpu_ttm_init_vram_resv_regions(struct amdgpu_device * adev)1790 static void amdgpu_ttm_init_vram_resv_regions(struct amdgpu_device *adev)
1791 {
1792 uint64_t vram_size = adev->gmc.visible_vram_size;
1793
1794 /* Initialize memory reservations as required for VGA.
1795 * This is used for VGA emulation and pre-OS scanout buffers to
1796 * avoid display artifacts while transitioning between pre-OS
1797 * and driver.
1798 */
1799 amdgpu_gmc_init_vga_resv_regions(adev);
1800 amdgpu_ttm_init_fw_resv_region(adev);
1801 amdgpu_ttm_init_mem_train_resv_region(adev);
1802
1803 if (adev->mman.resv_region[AMDGPU_RESV_FW_VRAM_USAGE].size > vram_size)
1804 adev->mman.resv_region[AMDGPU_RESV_FW_VRAM_USAGE].size = 0;
1805
1806 if (adev->mman.resv_region[AMDGPU_RESV_DRV_VRAM_USAGE].size > vram_size)
1807 adev->mman.resv_region[AMDGPU_RESV_DRV_VRAM_USAGE].size = 0;
1808 }
1809
amdgpu_ttm_mark_vram_reserved(struct amdgpu_device * adev,enum amdgpu_resv_region_id id)1810 int amdgpu_ttm_mark_vram_reserved(struct amdgpu_device *adev,
1811 enum amdgpu_resv_region_id id)
1812 {
1813 struct amdgpu_vram_resv *resv;
1814 int ret;
1815
1816 if (id >= AMDGPU_RESV_MAX)
1817 return -EINVAL;
1818
1819 resv = &adev->mman.resv_region[id];
1820 if (!resv->size)
1821 return 0;
1822
1823 ret = amdgpu_bo_create_kernel_at(adev, resv->offset, resv->size,
1824 &resv->bo,
1825 resv->needs_cpu_map ? &resv->cpu_ptr : NULL);
1826 if (ret) {
1827 dev_err(adev->dev,
1828 "reserve vram failed: id=%d offset=0x%llx size=0x%llx ret=%d\n",
1829 id, resv->offset, resv->size, ret);
1830 memset(resv, 0, sizeof(*resv));
1831 }
1832
1833 return ret;
1834 }
1835
amdgpu_ttm_unmark_vram_reserved(struct amdgpu_device * adev,enum amdgpu_resv_region_id id)1836 void amdgpu_ttm_unmark_vram_reserved(struct amdgpu_device *adev,
1837 enum amdgpu_resv_region_id id)
1838 {
1839 struct amdgpu_vram_resv *resv;
1840
1841 if (id >= AMDGPU_RESV_MAX)
1842 return;
1843
1844 resv = &adev->mman.resv_region[id];
1845 if (!resv->bo)
1846 return;
1847
1848 amdgpu_bo_free_kernel(&resv->bo, NULL,
1849 resv->needs_cpu_map ? &resv->cpu_ptr : NULL);
1850 memset(resv, 0, sizeof(*resv));
1851 }
1852
1853 /*
1854 * Reserve all regions with non-zero size. Regions whose info is not
1855 * yet available (e.g., fw extended region) may still be reserved
1856 * during runtime.
1857 */
amdgpu_ttm_alloc_vram_resv_regions(struct amdgpu_device * adev)1858 static int amdgpu_ttm_alloc_vram_resv_regions(struct amdgpu_device *adev)
1859 {
1860 int i, r;
1861
1862 for (i = 0; i < AMDGPU_RESV_MAX; i++) {
1863 r = amdgpu_ttm_mark_vram_reserved(adev, i);
1864 if (r)
1865 return r;
1866 }
1867
1868 return 0;
1869 }
1870
1871 /*
1872 * Memoy training reservation functions
1873 */
1874
1875 /**
1876 * amdgpu_ttm_training_reserve_vram_fini - free memory training reserved vram
1877 *
1878 * @adev: amdgpu_device pointer
1879 *
1880 * free memory training reserved vram if it has been reserved.
1881 */
amdgpu_ttm_training_reserve_vram_fini(struct amdgpu_device * adev)1882 static int amdgpu_ttm_training_reserve_vram_fini(struct amdgpu_device *adev)
1883 {
1884 struct psp_memory_training_context *ctx = &adev->psp.mem_train_ctx;
1885
1886 ctx->init = PSP_MEM_TRAIN_NOT_SUPPORT;
1887 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_MEM_TRAIN);
1888
1889 return 0;
1890 }
1891
amdgpu_ttm_training_data_block_init(struct amdgpu_device * adev)1892 static void amdgpu_ttm_training_data_block_init(struct amdgpu_device *adev)
1893 {
1894 struct psp_memory_training_context *ctx = &adev->psp.mem_train_ctx;
1895 struct amdgpu_vram_resv *resv =
1896 &adev->mman.resv_region[AMDGPU_RESV_MEM_TRAIN];
1897
1898 memset(ctx, 0, sizeof(*ctx));
1899
1900 ctx->c2p_train_data_offset = resv->offset;
1901 ctx->p2c_train_data_offset =
1902 (adev->gmc.mc_vram_size - GDDR6_MEM_TRAINING_OFFSET);
1903 ctx->train_data_size = resv->size;
1904
1905 DRM_DEBUG("train_data_size:%llx,p2c_train_data_offset:%llx,c2p_train_data_offset:%llx.\n",
1906 ctx->train_data_size,
1907 ctx->p2c_train_data_offset,
1908 ctx->c2p_train_data_offset);
1909 }
1910
amdgpu_ttm_pools_init(struct amdgpu_device * adev)1911 static int amdgpu_ttm_pools_init(struct amdgpu_device *adev)
1912 {
1913 int i;
1914
1915 if (!adev->gmc.is_app_apu || !adev->gmc.num_mem_partitions)
1916 return 0;
1917
1918 adev->mman.ttm_pools = kzalloc_objs(*adev->mman.ttm_pools,
1919 adev->gmc.num_mem_partitions);
1920 if (!adev->mman.ttm_pools)
1921 return -ENOMEM;
1922
1923 for (i = 0; i < adev->gmc.num_mem_partitions; i++) {
1924 ttm_pool_init(&adev->mman.ttm_pools[i], adev->dev,
1925 adev->gmc.mem_partitions[i].numa.node,
1926 TTM_ALLOCATION_POOL_BENEFICIAL_ORDER(get_order(SZ_2M)));
1927 }
1928 return 0;
1929 }
1930
amdgpu_ttm_pools_fini(struct amdgpu_device * adev)1931 static void amdgpu_ttm_pools_fini(struct amdgpu_device *adev)
1932 {
1933 int i;
1934
1935 if (!adev->gmc.is_app_apu || !adev->mman.ttm_pools)
1936 return;
1937
1938 for (i = 0; i < adev->gmc.num_mem_partitions; i++)
1939 ttm_pool_fini(&adev->mman.ttm_pools[i]);
1940
1941 kfree(adev->mman.ttm_pools);
1942 adev->mman.ttm_pools = NULL;
1943 }
1944
1945 /**
1946 * amdgpu_ttm_alloc_mmio_remap_bo - Allocate the singleton MMIO_REMAP BO
1947 * @adev: amdgpu device
1948 *
1949 * Allocates a global BO with backing AMDGPU_PL_MMIO_REMAP when the
1950 * hardware exposes a remap base (adev->rmmio_remap.bus_addr) and the host
1951 * PAGE_SIZE is <= AMDGPU_GPU_PAGE_SIZE (4K). The BO is created as a regular
1952 * GEM object (amdgpu_bo_create).
1953 *
1954 * Return:
1955 * * 0 on success or intentional skip (feature not present/unsupported)
1956 * * negative errno on allocation failure
1957 */
amdgpu_ttm_alloc_mmio_remap_bo(struct amdgpu_device * adev)1958 static int amdgpu_ttm_alloc_mmio_remap_bo(struct amdgpu_device *adev)
1959 {
1960 struct ttm_operation_ctx ctx = { false, false };
1961 struct ttm_placement placement;
1962 struct ttm_buffer_object *tbo;
1963 struct ttm_place placements;
1964 struct amdgpu_bo_param bp;
1965 struct ttm_resource *tmp;
1966 int r;
1967
1968 /* Skip if HW doesn't expose remap, or if PAGE_SIZE > AMDGPU_GPU_PAGE_SIZE (4K). */
1969 if (!adev->rmmio_remap.bus_addr || PAGE_SIZE > AMDGPU_GPU_PAGE_SIZE)
1970 return 0;
1971
1972 /*
1973 * Allocate a BO first and then move it to AMDGPU_PL_MMIO_REMAP.
1974 * The initial TTM resource assigned by amdgpu_bo_create() is
1975 * replaced below with a fixed MMIO_REMAP placement.
1976 */
1977 memset(&bp, 0, sizeof(bp));
1978 bp.type = ttm_bo_type_device;
1979 bp.size = AMDGPU_GPU_PAGE_SIZE;
1980 bp.byte_align = AMDGPU_GPU_PAGE_SIZE;
1981 bp.domain = 0;
1982 bp.flags = 0;
1983 bp.resv = NULL;
1984 bp.bo_ptr_size = sizeof(struct amdgpu_bo);
1985 r = amdgpu_bo_create(adev, &bp, &adev->rmmio_remap.bo);
1986 if (r)
1987 return r;
1988
1989 r = amdgpu_bo_reserve(adev->rmmio_remap.bo, true);
1990 if (r)
1991 goto err_unref;
1992
1993 tbo = &adev->rmmio_remap.bo->tbo;
1994
1995 /*
1996 * MMIO_REMAP is a fixed I/O placement (AMDGPU_PL_MMIO_REMAP).
1997 */
1998 placement.num_placement = 1;
1999 placement.placement = &placements;
2000 placements.fpfn = 0;
2001 placements.lpfn = 0;
2002 placements.mem_type = AMDGPU_PL_MMIO_REMAP;
2003 placements.flags = 0;
2004 /* Force the BO into the fixed MMIO_REMAP placement */
2005 r = ttm_bo_mem_space(tbo, &placement, &tmp, &ctx);
2006 if (unlikely(r))
2007 goto err_unlock;
2008
2009 ttm_resource_free(tbo, &tbo->resource);
2010 ttm_bo_assign_mem(tbo, tmp);
2011 ttm_bo_pin(tbo);
2012
2013 amdgpu_bo_unreserve(adev->rmmio_remap.bo);
2014 return 0;
2015
2016 err_unlock:
2017 amdgpu_bo_unreserve(adev->rmmio_remap.bo);
2018
2019 err_unref:
2020 amdgpu_bo_unref(&adev->rmmio_remap.bo);
2021 adev->rmmio_remap.bo = NULL;
2022 return r;
2023 }
2024
2025 /**
2026 * amdgpu_ttm_free_mmio_remap_bo - Free the singleton MMIO_REMAP BO
2027 * @adev: amdgpu device
2028 *
2029 * Frees the kernel-owned MMIO_REMAP BO if it was allocated by
2030 * amdgpu_ttm_mmio_remap_bo_init().
2031 */
amdgpu_ttm_free_mmio_remap_bo(struct amdgpu_device * adev)2032 static void amdgpu_ttm_free_mmio_remap_bo(struct amdgpu_device *adev)
2033 {
2034 if (!adev->rmmio_remap.bo)
2035 return;
2036
2037 if (!amdgpu_bo_reserve(adev->rmmio_remap.bo, true)) {
2038 ttm_bo_unpin(&adev->rmmio_remap.bo->tbo);
2039 amdgpu_bo_unreserve(adev->rmmio_remap.bo);
2040 }
2041
2042 /*
2043 * At this point we rely on normal DRM teardown ordering:
2044 * no new user ioctls can access the global MMIO_REMAP BO
2045 * once TTM teardown begins.
2046 */
2047 amdgpu_bo_unref(&adev->rmmio_remap.bo);
2048 adev->rmmio_remap.bo = NULL;
2049 }
2050
amdgpu_ttm_buffer_entity_init(struct amdgpu_gtt_mgr * mgr,struct amdgpu_ttm_buffer_entity * entity,enum drm_sched_priority prio,struct drm_gpu_scheduler ** scheds,int num_schedulers,u32 num_gart_windows)2051 static int amdgpu_ttm_buffer_entity_init(struct amdgpu_gtt_mgr *mgr,
2052 struct amdgpu_ttm_buffer_entity *entity,
2053 enum drm_sched_priority prio,
2054 struct drm_gpu_scheduler **scheds,
2055 int num_schedulers,
2056 u32 num_gart_windows)
2057 {
2058 int i, r, num_pages;
2059 const u64 GTT_MAX_PAGES = (AMDGPU_GTT_MAX_TRANSFER_SIZE >> PAGE_SHIFT);
2060
2061 r = drm_sched_entity_init(&entity->base, prio, scheds, num_schedulers, NULL);
2062 if (r)
2063 return r;
2064
2065 mutex_init(&entity->lock);
2066
2067 if (ARRAY_SIZE(entity->gart_window_offs) < num_gart_windows)
2068 return -EINVAL;
2069 if (num_gart_windows == 0)
2070 return 0;
2071
2072 num_pages = num_gart_windows * GTT_MAX_PAGES;
2073 r = amdgpu_gtt_mgr_alloc_entries(mgr, &entity->gart_node, num_pages,
2074 DRM_MM_INSERT_BEST);
2075 if (r) {
2076 drm_sched_entity_destroy(&entity->base);
2077 return r;
2078 }
2079
2080 for (i = 0; i < num_gart_windows; i++) {
2081 entity->gart_window_offs[i] =
2082 amdgpu_gtt_node_to_byte_offset(&entity->gart_node) +
2083 i * GTT_MAX_PAGES * PAGE_SIZE;
2084 }
2085
2086 return 0;
2087 }
2088
amdgpu_ttm_buffer_entity_fini(struct amdgpu_gtt_mgr * mgr,struct amdgpu_ttm_buffer_entity * entity)2089 static void amdgpu_ttm_buffer_entity_fini(struct amdgpu_gtt_mgr *mgr,
2090 struct amdgpu_ttm_buffer_entity *entity)
2091 {
2092 amdgpu_gtt_mgr_free_entries(mgr, &entity->gart_node);
2093 drm_sched_entity_destroy(&entity->base);
2094 }
2095
2096 /*
2097 * amdgpu_ttm_init - Init the memory management (ttm) as well as various
2098 * gtt/vram related fields.
2099 *
2100 * This initializes all of the memory space pools that the TTM layer
2101 * will need such as the GTT space (system memory mapped to the device),
2102 * VRAM (on-board memory), and on-chip memories (GDS, GWS, OA) which
2103 * can be mapped per VMID.
2104 */
amdgpu_ttm_init(struct amdgpu_device * adev)2105 int amdgpu_ttm_init(struct amdgpu_device *adev)
2106 {
2107 uint64_t gtt_size;
2108 int r;
2109
2110 dma_set_max_seg_size(adev->dev, UINT_MAX);
2111 /* No others user of address space so set it to 0 */
2112 r = ttm_device_init(&adev->mman.bdev, &amdgpu_bo_driver, adev->dev,
2113 adev_to_drm(adev)->anon_inode->i_mapping,
2114 adev_to_drm(adev)->vma_offset_manager,
2115 (adev->need_swiotlb ?
2116 TTM_ALLOCATION_POOL_USE_DMA_ALLOC : 0) |
2117 (dma_addressing_limited(adev->dev) ?
2118 TTM_ALLOCATION_POOL_USE_DMA32 : 0) |
2119 TTM_ALLOCATION_POOL_BENEFICIAL_ORDER(get_order(SZ_2M)));
2120 if (r) {
2121 dev_err(adev->dev,
2122 "failed initializing buffer object driver(%d).\n", r);
2123 return r;
2124 }
2125
2126 r = amdgpu_ttm_pools_init(adev);
2127 if (r) {
2128 dev_err(adev->dev, "failed to init ttm pools(%d).\n", r);
2129 return r;
2130 }
2131 adev->mman.initialized = true;
2132
2133 if (!adev->gmc.is_app_apu) {
2134 /* Initialize VRAM pool with all of VRAM divided into pages */
2135 r = amdgpu_vram_mgr_init(adev);
2136 if (r) {
2137 dev_err(adev->dev, "Failed initializing VRAM heap.\n");
2138 return r;
2139 }
2140 }
2141
2142 /* Change the size here instead of the init above so only lpfn is affected */
2143 amdgpu_ttm_disable_buffer_funcs(adev);
2144 #ifdef CONFIG_64BIT
2145 #ifdef CONFIG_X86
2146 if (adev->gmc.xgmi.connected_to_cpu)
2147 adev->mman.aper_base_kaddr = ioremap_cache(adev->gmc.aper_base,
2148 adev->gmc.visible_vram_size);
2149 else if (adev->gmc.is_app_apu)
2150 DRM_DEBUG_DRIVER(
2151 "No need to ioremap when real vram size is 0\n");
2152 else
2153 #endif
2154 adev->mman.aper_base_kaddr = ioremap_wc(adev->gmc.aper_base,
2155 adev->gmc.visible_vram_size);
2156 #endif
2157
2158 amdgpu_ttm_init_vram_resv_regions(adev);
2159
2160 r = amdgpu_ttm_alloc_vram_resv_regions(adev);
2161 if (r)
2162 return r;
2163
2164 if (adev->mman.resv_region[AMDGPU_RESV_MEM_TRAIN].size) {
2165 struct psp_memory_training_context *ctx =
2166 &adev->psp.mem_train_ctx;
2167
2168 amdgpu_ttm_training_data_block_init(adev);
2169 ctx->init = PSP_MEM_TRAIN_RESERVE_SUCCESS;
2170 }
2171
2172 dev_info(adev->dev, " %uM of VRAM memory ready\n",
2173 (unsigned int)(adev->gmc.real_vram_size / (1024 * 1024)));
2174
2175 /* Compute GTT size, either based on TTM limit
2176 * or whatever the user passed on module init.
2177 */
2178 gtt_size = ttm_tt_pages_limit() << PAGE_SHIFT;
2179 if (amdgpu_gtt_size != -1) {
2180 uint64_t configured_size = (uint64_t)amdgpu_gtt_size << 20;
2181
2182 drm_warn(&adev->ddev,
2183 "Configuring gttsize via module parameter is deprecated, please use ttm.pages_limit\n");
2184 if (gtt_size != configured_size)
2185 drm_warn(&adev->ddev,
2186 "GTT size has been set as %llu but TTM size has been set as %llu, this is unusual\n",
2187 configured_size, gtt_size);
2188
2189 gtt_size = configured_size;
2190 }
2191
2192 /* Cap GTT so that it does not exceed total physical RAM. */
2193 if (adev->flags & AMD_IS_APU) {
2194 u64 phys_ram = (u64)totalram_pages() << PAGE_SHIFT;
2195
2196 if (gtt_size > phys_ram) {
2197 gtt_size = phys_ram;
2198 dev_info(adev->dev,
2199 "Capping GTT to %uM to not exceed available system memory\n",
2200 (unsigned int)(gtt_size / (1024 * 1024)));
2201 }
2202 }
2203
2204 /* Initialize GTT memory pool */
2205 r = amdgpu_gtt_mgr_init(adev, gtt_size);
2206 if (r) {
2207 dev_err(adev->dev, "Failed initializing GTT heap.\n");
2208 return r;
2209 }
2210 dev_info(adev->dev, " %uM of GTT memory ready.\n",
2211 (unsigned int)(gtt_size / (1024 * 1024)));
2212
2213 if (adev->flags & AMD_IS_APU) {
2214 if (adev->gmc.real_vram_size < gtt_size)
2215 adev->apu_prefer_gtt = true;
2216 }
2217
2218 /* Initialize doorbell pool on PCI BAR */
2219 r = amdgpu_ttm_init_on_chip(adev, AMDGPU_PL_DOORBELL, adev->doorbell.size / PAGE_SIZE);
2220 if (r) {
2221 dev_err(adev->dev, "Failed initializing doorbell heap.\n");
2222 return r;
2223 }
2224
2225 /* Create a doorbell page for kernel usages */
2226 r = amdgpu_doorbell_create_kernel_doorbells(adev);
2227 if (r) {
2228 dev_err(adev->dev, "Failed to initialize kernel doorbells.\n");
2229 return r;
2230 }
2231
2232 /* Initialize MMIO-remap pool (single page 4K) */
2233 r = amdgpu_ttm_init_on_chip(adev, AMDGPU_PL_MMIO_REMAP, 1);
2234 if (r) {
2235 dev_err(adev->dev, "Failed initializing MMIO-remap heap.\n");
2236 return r;
2237 }
2238
2239 /* Allocate the singleton MMIO_REMAP BO if supported */
2240 r = amdgpu_ttm_alloc_mmio_remap_bo(adev);
2241 if (r)
2242 return r;
2243
2244 /* Initialize preemptible memory pool */
2245 r = amdgpu_preempt_mgr_init(adev);
2246 if (r) {
2247 dev_err(adev->dev, "Failed initializing PREEMPT heap.\n");
2248 return r;
2249 }
2250
2251 /* Initialize various on-chip memory pools */
2252 r = amdgpu_ttm_init_on_chip(adev, AMDGPU_PL_GDS, adev->gds.gds_size);
2253 if (r) {
2254 dev_err(adev->dev, "Failed initializing GDS heap.\n");
2255 return r;
2256 }
2257
2258 r = amdgpu_ttm_init_on_chip(adev, AMDGPU_PL_GWS, adev->gds.gws_size);
2259 if (r) {
2260 dev_err(adev->dev, "Failed initializing gws heap.\n");
2261 return r;
2262 }
2263
2264 r = amdgpu_ttm_init_on_chip(adev, AMDGPU_PL_OA, adev->gds.oa_size);
2265 if (r) {
2266 dev_err(adev->dev, "Failed initializing oa heap.\n");
2267 return r;
2268 }
2269 if (amdgpu_bo_create_kernel(adev, PAGE_SIZE, PAGE_SIZE,
2270 AMDGPU_GEM_DOMAIN_GTT,
2271 &adev->mman.sdma_access_bo, NULL,
2272 &adev->mman.sdma_access_ptr))
2273 drm_warn(adev_to_drm(adev),
2274 "Debug VRAM access will use slowpath MM access\n");
2275
2276 return 0;
2277 }
2278
2279 /*
2280 * amdgpu_ttm_fini - De-initialize the TTM memory pools
2281 */
amdgpu_ttm_fini(struct amdgpu_device * adev)2282 void amdgpu_ttm_fini(struct amdgpu_device *adev)
2283 {
2284 if (!adev->mman.initialized)
2285 return;
2286
2287 amdgpu_ttm_pools_fini(adev);
2288
2289 amdgpu_ttm_training_reserve_vram_fini(adev);
2290 /* return the stolen vga memory back to VRAM */
2291 if (!adev->gmc.is_app_apu) {
2292 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_STOLEN_VGA);
2293 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_STOLEN_EXTENDED);
2294 /* return the FW reserved memory back to VRAM */
2295 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_FW);
2296 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_FW_EXTEND);
2297 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_STOLEN_RESERVED);
2298 }
2299 amdgpu_bo_free_kernel(&adev->mman.sdma_access_bo, NULL,
2300 &adev->mman.sdma_access_ptr);
2301
2302 amdgpu_ttm_free_mmio_remap_bo(adev);
2303 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_FW_VRAM_USAGE);
2304 amdgpu_ttm_unmark_vram_reserved(adev, AMDGPU_RESV_DRV_VRAM_USAGE);
2305
2306 if (adev->mman.aper_base_kaddr) {
2307 iounmap(adev->mman.aper_base_kaddr);
2308 adev->mman.aper_base_kaddr = NULL;
2309 }
2310
2311 if (!adev->gmc.is_app_apu)
2312 amdgpu_vram_mgr_fini(adev);
2313 amdgpu_gtt_mgr_fini(adev);
2314 amdgpu_preempt_mgr_fini(adev);
2315 amdgpu_doorbell_fini(adev);
2316
2317 ttm_range_man_fini(&adev->mman.bdev, AMDGPU_PL_GDS);
2318 ttm_range_man_fini(&adev->mman.bdev, AMDGPU_PL_GWS);
2319 ttm_range_man_fini(&adev->mman.bdev, AMDGPU_PL_OA);
2320 ttm_range_man_fini(&adev->mman.bdev, AMDGPU_PL_DOORBELL);
2321 ttm_range_man_fini(&adev->mman.bdev, AMDGPU_PL_MMIO_REMAP);
2322 ttm_device_fini(&adev->mman.bdev);
2323 adev->mman.initialized = false;
2324 dev_info(adev->dev, " ttm finalized\n");
2325 }
2326
2327 /**
2328 * amdgpu_ttm_enable_buffer_funcs - enable use of buffer functions
2329 *
2330 * @adev: amdgpu_device pointer
2331 *
2332 * Enable use of buffer functions during suspend/resume. This should
2333 * only be called at bootup or when userspace isn't running.
2334 */
amdgpu_ttm_enable_buffer_funcs(struct amdgpu_device * adev)2335 void amdgpu_ttm_enable_buffer_funcs(struct amdgpu_device *adev)
2336 {
2337 struct ttm_resource_manager *man = ttm_manager_type(&adev->mman.bdev, TTM_PL_VRAM);
2338 u32 num_clear_entities, num_move_entities;
2339 int r, i, j;
2340
2341 if (!adev->mman.initialized || amdgpu_in_reset(adev) ||
2342 adev->mman.buffer_funcs_enabled || adev->gmc.is_app_apu)
2343 return;
2344
2345 if (!adev->mman.num_buffer_funcs_scheds) {
2346 dev_warn(adev->dev, "Not enabling DMA transfers for in kernel use");
2347 return;
2348 }
2349
2350 /* default_entity doesn't need multiple schedulers so pass only 1. */
2351 r = amdgpu_ttm_buffer_entity_init(&adev->mman.gtt_mgr,
2352 &adev->mman.default_entity,
2353 DRM_SCHED_PRIORITY_KERNEL,
2354 adev->mman.buffer_funcs_scheds, 1, 0);
2355 if (r < 0) {
2356 dev_err(adev->dev,
2357 "Failed setting up TTM entity (%d)\n", r);
2358 return;
2359 }
2360
2361 num_clear_entities = MIN(adev->mman.num_buffer_funcs_scheds, TTM_NUM_MOVE_FENCES);
2362 num_move_entities = MIN(adev->mman.num_buffer_funcs_scheds, TTM_NUM_MOVE_FENCES);
2363
2364 adev->mman.clear_entities = kcalloc(num_clear_entities,
2365 sizeof(struct amdgpu_ttm_buffer_entity),
2366 GFP_KERNEL);
2367 atomic_set(&adev->mman.next_clear_entity, 0);
2368 if (!adev->mman.clear_entities)
2369 goto error_free_default_entity;
2370
2371 adev->mman.num_clear_entities = num_clear_entities;
2372
2373 for (i = 0; i < num_clear_entities; i++) {
2374 r = amdgpu_ttm_buffer_entity_init(
2375 &adev->mman.gtt_mgr,
2376 &adev->mman.clear_entities[i],
2377 DRM_SCHED_PRIORITY_KERNEL,
2378 adev->mman.buffer_funcs_scheds,
2379 adev->mman.num_buffer_funcs_scheds, 1);
2380
2381 if (r < 0) {
2382 for (j = 0; j < i; j++)
2383 amdgpu_ttm_buffer_entity_fini(
2384 &adev->mman.gtt_mgr, &adev->mman.clear_entities[j]);
2385 adev->mman.num_clear_entities = 0;
2386 kfree(adev->mman.clear_entities);
2387 goto error_free_default_entity;
2388 }
2389 }
2390
2391 adev->mman.num_move_entities = num_move_entities;
2392 atomic_set(&adev->mman.next_move_entity, 0);
2393 for (i = 0; i < num_move_entities; i++) {
2394 r = amdgpu_ttm_buffer_entity_init(
2395 &adev->mman.gtt_mgr,
2396 &adev->mman.move_entities[i],
2397 DRM_SCHED_PRIORITY_KERNEL,
2398 adev->mman.buffer_funcs_scheds,
2399 adev->mman.num_buffer_funcs_scheds, 2);
2400
2401 if (r < 0) {
2402 for (j = 0; j < i; j++)
2403 amdgpu_ttm_buffer_entity_fini(
2404 &adev->mman.gtt_mgr,
2405 &adev->mman.move_entities[j]);
2406 adev->mman.num_move_entities = 0;
2407 goto error_free_clear_entities;
2408 }
2409 }
2410
2411 /* this just adjusts TTM size idea, which sets lpfn to the correct value */
2412 man->size = adev->gmc.real_vram_size;
2413 adev->mman.buffer_funcs_enabled = true;
2414
2415 return;
2416
2417 error_free_clear_entities:
2418 for (i = 0; i < adev->mman.num_clear_entities; i++)
2419 amdgpu_ttm_buffer_entity_fini(&adev->mman.gtt_mgr,
2420 &adev->mman.clear_entities[i]);
2421 kfree(adev->mman.clear_entities);
2422 adev->mman.clear_entities = NULL;
2423 adev->mman.num_clear_entities = 0;
2424 error_free_default_entity:
2425 amdgpu_ttm_buffer_entity_fini(&adev->mman.gtt_mgr,
2426 &adev->mman.default_entity);
2427 }
2428
2429 /**
2430 * amdgpu_ttm_disable_buffer_funcs - disable use of buffer functions
2431 *
2432 * @adev: amdgpu_device pointer
2433 */
amdgpu_ttm_disable_buffer_funcs(struct amdgpu_device * adev)2434 void amdgpu_ttm_disable_buffer_funcs(struct amdgpu_device *adev)
2435 {
2436 struct ttm_resource_manager *man =
2437 ttm_manager_type(&adev->mman.bdev, TTM_PL_VRAM);
2438 int i;
2439
2440 if (!adev->mman.buffer_funcs_enabled || amdgpu_in_reset(adev))
2441 return;
2442
2443 amdgpu_ttm_buffer_entity_fini(&adev->mman.gtt_mgr,
2444 &adev->mman.default_entity);
2445 for (i = 0; i < adev->mman.num_move_entities; i++)
2446 amdgpu_ttm_buffer_entity_fini(&adev->mman.gtt_mgr,
2447 &adev->mman.move_entities[i]);
2448 for (i = 0; i < adev->mman.num_clear_entities; i++)
2449 amdgpu_ttm_buffer_entity_fini(&adev->mman.gtt_mgr,
2450 &adev->mman.clear_entities[i]);
2451 /* Drop all the old fences since re-creating the scheduler entities
2452 * will allocate new contexts.
2453 */
2454 ttm_resource_manager_cleanup(man);
2455
2456 kfree(adev->mman.clear_entities);
2457 adev->mman.clear_entities = NULL;
2458 adev->mman.num_clear_entities = 0;
2459 adev->mman.num_move_entities = 0;
2460
2461 man->size = adev->gmc.visible_vram_size;
2462 adev->mman.buffer_funcs_enabled = false;
2463 }
2464
amdgpu_ttm_prepare_job(struct amdgpu_device * adev,struct amdgpu_ttm_buffer_entity * entity,unsigned int num_dw,struct dma_resv * resv,bool vm_needs_flush,struct amdgpu_job ** job,u64 k_job_id)2465 static int amdgpu_ttm_prepare_job(struct amdgpu_device *adev,
2466 struct amdgpu_ttm_buffer_entity *entity,
2467 unsigned int num_dw,
2468 struct dma_resv *resv,
2469 bool vm_needs_flush,
2470 struct amdgpu_job **job,
2471 u64 k_job_id)
2472 {
2473 enum amdgpu_ib_pool_type pool = AMDGPU_IB_POOL_DELAYED;
2474 int r;
2475 r = amdgpu_job_alloc_with_ib(adev, &entity->base,
2476 AMDGPU_FENCE_OWNER_UNDEFINED,
2477 num_dw * 4, pool, k_job_id, job);
2478 if (r)
2479 return r;
2480
2481 if (vm_needs_flush) {
2482 (*job)->vm_pd_addr = amdgpu_gmc_pd_addr(adev->gmc.pdb0_bo ?
2483 adev->gmc.pdb0_bo :
2484 adev->gart.bo);
2485 (*job)->vm_needs_flush = true;
2486 }
2487 if (!resv)
2488 return 0;
2489
2490 return drm_sched_job_add_resv_dependencies(&(*job)->base, resv,
2491 DMA_RESV_USAGE_BOOKKEEP);
2492 }
2493
amdgpu_calc_bytes_per_packet(u32 max_bytes_per_packet,u32 byte_count)2494 static int amdgpu_calc_bytes_per_packet(u32 max_bytes_per_packet,
2495 u32 byte_count)
2496 {
2497 /* Byte count is dword-aligned and fits a single packet */
2498 if (!(byte_count & 0x3) && byte_count <= max_bytes_per_packet)
2499 return max_bytes_per_packet;
2500
2501 /*
2502 * Align down maximum byte count to 256 bytes so that
2503 * the copy optimally uses all memory channels and
2504 * also to ensure that SDMA can use its dword mode, which
2505 * is faster.
2506 *
2507 * This assumes that the starting addresses of BOs are always
2508 * dword aligned, which should be the case for every copy
2509 * operation in the kernel, because the kernel always copies
2510 * pages.
2511 */
2512 return ALIGN_DOWN(max_bytes_per_packet, SZ_256);
2513 }
2514
amdgpu_copy_buffer(struct amdgpu_device * adev,struct amdgpu_ttm_buffer_entity * entity,uint64_t src_offset,uint64_t dst_offset,uint32_t byte_count,struct dma_resv * resv,struct dma_fence ** fence,bool vm_needs_flush,uint32_t copy_flags)2515 int amdgpu_copy_buffer(struct amdgpu_device *adev,
2516 struct amdgpu_ttm_buffer_entity *entity,
2517 uint64_t src_offset,
2518 uint64_t dst_offset, uint32_t byte_count,
2519 struct dma_resv *resv,
2520 struct dma_fence **fence,
2521 bool vm_needs_flush, uint32_t copy_flags)
2522 {
2523 unsigned int num_loops, num_dw;
2524 struct amdgpu_ring *ring;
2525 struct amdgpu_job *job;
2526 uint32_t max_bytes;
2527 unsigned int i;
2528 int r;
2529
2530 ring = to_amdgpu_ring(adev->mman.buffer_funcs_scheds[0]);
2531
2532 if (!ring->sched.ready) {
2533 dev_err(adev->dev,
2534 "Trying to move memory with ring turned off.\n");
2535 return -EINVAL;
2536 }
2537
2538 max_bytes = amdgpu_calc_bytes_per_packet(adev->mman.buffer_funcs->copy_max_bytes,
2539 byte_count);
2540 num_loops = DIV_ROUND_UP(byte_count, max_bytes);
2541 num_dw = ALIGN(num_loops * adev->mman.buffer_funcs->copy_num_dw, 8);
2542 r = amdgpu_ttm_prepare_job(adev, entity, num_dw,
2543 resv, vm_needs_flush, &job,
2544 AMDGPU_KERNEL_JOB_ID_TTM_COPY_BUFFER);
2545 if (r)
2546 goto error_free;
2547
2548 for (i = 0; i < num_loops; i++) {
2549 uint32_t cur_size_in_bytes = min(byte_count, max_bytes);
2550
2551 amdgpu_emit_copy_buffer(adev, &job->ibs[0], src_offset,
2552 dst_offset, cur_size_in_bytes, copy_flags);
2553 src_offset += cur_size_in_bytes;
2554 dst_offset += cur_size_in_bytes;
2555 byte_count -= cur_size_in_bytes;
2556 }
2557
2558 *fence = amdgpu_ttm_job_submit(adev, entity, job, num_dw);
2559
2560 return 0;
2561
2562 error_free:
2563 amdgpu_job_free(job);
2564 dev_err(adev->dev, "Error scheduling IBs (%d)\n", r);
2565 return r;
2566 }
2567
amdgpu_ttm_fill_mem(struct amdgpu_device * adev,struct amdgpu_ttm_buffer_entity * entity,uint32_t src_data,uint64_t dst_addr,uint32_t byte_count,struct dma_resv * resv,struct dma_fence ** fence,bool vm_needs_flush,u64 k_job_id)2568 static int amdgpu_ttm_fill_mem(struct amdgpu_device *adev,
2569 struct amdgpu_ttm_buffer_entity *entity,
2570 uint32_t src_data,
2571 uint64_t dst_addr, uint32_t byte_count,
2572 struct dma_resv *resv,
2573 struct dma_fence **fence,
2574 bool vm_needs_flush,
2575 u64 k_job_id)
2576 {
2577 unsigned int num_loops, num_dw;
2578 struct amdgpu_job *job;
2579 uint32_t max_bytes;
2580 unsigned int i;
2581 int r;
2582
2583 max_bytes = amdgpu_calc_bytes_per_packet(adev->mman.buffer_funcs->fill_max_bytes,
2584 byte_count);
2585 num_loops = DIV_ROUND_UP_ULL(byte_count, max_bytes);
2586 num_dw = ALIGN(num_loops * adev->mman.buffer_funcs->fill_num_dw, 8);
2587 r = amdgpu_ttm_prepare_job(adev, entity, num_dw, resv,
2588 vm_needs_flush, &job, k_job_id);
2589 if (r)
2590 return r;
2591
2592 for (i = 0; i < num_loops; i++) {
2593 uint32_t cur_size = min(byte_count, max_bytes);
2594
2595 amdgpu_emit_fill_buffer(adev, &job->ibs[0], src_data, dst_addr,
2596 cur_size);
2597
2598 dst_addr += cur_size;
2599 byte_count -= cur_size;
2600 }
2601
2602 *fence = amdgpu_ttm_job_submit(adev, entity, job, num_dw);
2603 return 0;
2604 }
2605
2606 /**
2607 * amdgpu_ttm_clear_buffer - fill a buffer with 0
2608 * @entity: entity to use
2609 * @bo: the bo to fill
2610 * @resv: fences contained in this reservation will be used as dependencies.
2611 * @out_fence: the fence from the last clear will be stored here. It might be
2612 * NULL if no job was run.
2613 * @consider_clear_status: true if region reported as cleared by amdgpu_res_cleared()
2614 * are skipped.
2615 * @k_job_id: trace id
2616 *
2617 */
amdgpu_ttm_clear_buffer(struct amdgpu_ttm_buffer_entity * entity,struct amdgpu_bo * bo,struct dma_resv * resv,struct dma_fence ** out_fence,bool consider_clear_status,u64 k_job_id)2618 int amdgpu_ttm_clear_buffer(struct amdgpu_ttm_buffer_entity *entity,
2619 struct amdgpu_bo *bo,
2620 struct dma_resv *resv,
2621 struct dma_fence **out_fence,
2622 bool consider_clear_status,
2623 u64 k_job_id)
2624 {
2625 struct amdgpu_device *adev = amdgpu_ttm_adev(bo->tbo.bdev);
2626 struct dma_fence *fence = NULL;
2627 struct amdgpu_res_cursor dst;
2628 int r;
2629
2630 if (!entity)
2631 return -EINVAL;
2632
2633 amdgpu_res_first(bo->tbo.resource, 0, amdgpu_bo_size(bo), &dst);
2634
2635 mutex_lock(&entity->lock);
2636 while (dst.remaining) {
2637 struct dma_fence *next;
2638 uint64_t cur_size, to;
2639
2640 if (consider_clear_status && amdgpu_res_cleared(&dst)) {
2641 amdgpu_res_next(&dst, dst.size);
2642 continue;
2643 }
2644
2645 /* Never fill more than 256MiB at once to avoid timeouts */
2646 cur_size = min(dst.size, 256ULL << 20);
2647
2648 r = amdgpu_ttm_map_buffer(entity, &bo->tbo, bo->tbo.resource, &dst,
2649 0, false, &cur_size, &to);
2650 if (r)
2651 goto error;
2652
2653 r = amdgpu_ttm_fill_mem(adev, entity,
2654 0, to, cur_size, resv,
2655 &next, true, k_job_id);
2656 if (r)
2657 goto error;
2658
2659 dma_fence_put(fence);
2660 fence = next;
2661
2662 amdgpu_res_next(&dst, cur_size);
2663 }
2664 error:
2665 mutex_unlock(&entity->lock);
2666 *out_fence = fence;
2667 return r;
2668 }
2669
2670 struct amdgpu_ttm_buffer_entity *
amdgpu_ttm_next_clear_entity(struct amdgpu_device * adev)2671 amdgpu_ttm_next_clear_entity(struct amdgpu_device *adev)
2672 {
2673 struct amdgpu_mman *mman = &adev->mman;
2674 u32 i;
2675
2676 if (mman->num_clear_entities == 0)
2677 return NULL;
2678
2679 i = atomic_inc_return(&mman->next_clear_entity) %
2680 mman->num_clear_entities;
2681 return &mman->clear_entities[i];
2682 }
2683
2684 /**
2685 * amdgpu_ttm_evict_resources - evict memory buffers
2686 * @adev: amdgpu device object
2687 * @mem_type: evicted BO's memory type
2688 *
2689 * Evicts all @mem_type buffers on the lru list of the memory type.
2690 *
2691 * Returns:
2692 * 0 for success or a negative error code on failure.
2693 */
amdgpu_ttm_evict_resources(struct amdgpu_device * adev,int mem_type)2694 int amdgpu_ttm_evict_resources(struct amdgpu_device *adev, int mem_type)
2695 {
2696 struct ttm_resource_manager *man;
2697
2698 switch (mem_type) {
2699 case TTM_PL_VRAM:
2700 case TTM_PL_TT:
2701 case AMDGPU_PL_GWS:
2702 case AMDGPU_PL_GDS:
2703 case AMDGPU_PL_OA:
2704 man = ttm_manager_type(&adev->mman.bdev, mem_type);
2705 break;
2706 default:
2707 dev_err(adev->dev, "Trying to evict invalid memory type\n");
2708 return -EINVAL;
2709 }
2710
2711 return ttm_resource_manager_evict_all(&adev->mman.bdev, man);
2712 }
2713
amdgpu_sdma_set_buffer_funcs_scheds(struct amdgpu_device * adev,const struct amdgpu_buffer_funcs * buffer_funcs)2714 void amdgpu_sdma_set_buffer_funcs_scheds(struct amdgpu_device *adev,
2715 const struct amdgpu_buffer_funcs *buffer_funcs)
2716 {
2717 struct drm_gpu_scheduler *sched;
2718 struct amdgpu_vmhub *hub;
2719 int i, n;
2720
2721 adev->mman.buffer_funcs = buffer_funcs;
2722
2723 for (i = 0, n = 0; i < adev->sdma.num_instances; i++) {
2724 if (adev->sdma.has_page_queue)
2725 sched = &adev->sdma.instance[i].page.sched;
2726 else
2727 sched = &adev->sdma.instance[i].ring.sched;
2728
2729 if (!sched->ready)
2730 continue;
2731
2732 adev->mman.buffer_funcs_scheds[n++] = sched;
2733 }
2734
2735 if (n == 0) {
2736 adev->mman.num_buffer_funcs_scheds = 0;
2737 drm_warn(&adev->ddev, "No working sdma ring available\n");
2738 return;
2739 }
2740
2741 hub = &adev->vmhub[AMDGPU_GFXHUB(0)];
2742
2743 /*
2744 * Allow using multiple SDMA schedulers only on GPUs where
2745 * we are allowed to do concurrent VM flushes.
2746 * This consideration is necessary because all GART windows
2747 * are mapped in VMID 0 (the kernel VMID) so each buffer
2748 * entity would flush VMID 0 concurrently.
2749 *
2750 * Also consider the SDMA invalidation workaround on
2751 * Navi 1x GPUs, which also prevents us from using
2752 * multiple SDMA engines on VMID 0 at the same time.
2753 */
2754 adev->mman.num_buffer_funcs_scheds =
2755 (adev->vm_manager.concurrent_flush &&
2756 !hub->sdma_invalidation_workaround) ? n : 1;
2757 }
2758
2759 #if defined(CONFIG_DEBUG_FS)
2760
amdgpu_ttm_page_pool_show(struct seq_file * m,void * unused)2761 static int amdgpu_ttm_page_pool_show(struct seq_file *m, void *unused)
2762 {
2763 struct amdgpu_device *adev = m->private;
2764
2765 return ttm_pool_debugfs(&adev->mman.bdev.pool, m);
2766 }
2767
2768 DEFINE_SHOW_ATTRIBUTE(amdgpu_ttm_page_pool);
2769
2770 /*
2771 * amdgpu_ttm_vram_read - Linear read access to VRAM
2772 *
2773 * Accesses VRAM via MMIO for debugging purposes.
2774 */
amdgpu_ttm_vram_read(struct file * f,char __user * buf,size_t size,loff_t * pos)2775 static ssize_t amdgpu_ttm_vram_read(struct file *f, char __user *buf,
2776 size_t size, loff_t *pos)
2777 {
2778 struct amdgpu_device *adev = file_inode(f)->i_private;
2779 ssize_t result = 0;
2780
2781 if (size & 0x3 || *pos & 0x3)
2782 return -EINVAL;
2783
2784 if (*pos >= adev->gmc.mc_vram_size)
2785 return -ENXIO;
2786
2787 size = min(size, (size_t)(adev->gmc.mc_vram_size - *pos));
2788 while (size) {
2789 size_t bytes = min(size, AMDGPU_TTM_VRAM_MAX_DW_READ * 4);
2790 uint32_t value[AMDGPU_TTM_VRAM_MAX_DW_READ];
2791
2792 amdgpu_device_vram_access(adev, *pos, value, bytes, false);
2793 if (copy_to_user(buf, value, bytes))
2794 return -EFAULT;
2795
2796 result += bytes;
2797 buf += bytes;
2798 *pos += bytes;
2799 size -= bytes;
2800 }
2801
2802 return result;
2803 }
2804
2805 /*
2806 * amdgpu_ttm_vram_write - Linear write access to VRAM
2807 *
2808 * Accesses VRAM via MMIO for debugging purposes.
2809 */
amdgpu_ttm_vram_write(struct file * f,const char __user * buf,size_t size,loff_t * pos)2810 static ssize_t amdgpu_ttm_vram_write(struct file *f, const char __user *buf,
2811 size_t size, loff_t *pos)
2812 {
2813 struct amdgpu_device *adev = file_inode(f)->i_private;
2814 ssize_t result = 0;
2815 int r;
2816
2817 if (size & 0x3 || *pos & 0x3)
2818 return -EINVAL;
2819
2820 if (*pos >= adev->gmc.mc_vram_size)
2821 return -ENXIO;
2822
2823 while (size) {
2824 uint32_t value;
2825
2826 if (*pos >= adev->gmc.mc_vram_size)
2827 return result;
2828
2829 r = get_user(value, (uint32_t *)buf);
2830 if (r)
2831 return r;
2832
2833 amdgpu_device_mm_access(adev, *pos, &value, 4, true);
2834
2835 result += 4;
2836 buf += 4;
2837 *pos += 4;
2838 size -= 4;
2839 }
2840
2841 return result;
2842 }
2843
2844 static const struct file_operations amdgpu_ttm_vram_fops = {
2845 .owner = THIS_MODULE,
2846 .read = amdgpu_ttm_vram_read,
2847 .write = amdgpu_ttm_vram_write,
2848 .llseek = default_llseek,
2849 };
2850
2851 /*
2852 * amdgpu_iomem_read - Virtual read access to GPU mapped memory
2853 *
2854 * This function is used to read memory that has been mapped to the
2855 * GPU and the known addresses are not physical addresses but instead
2856 * bus addresses (e.g., what you'd put in an IB or ring buffer).
2857 */
amdgpu_iomem_read(struct file * f,char __user * buf,size_t size,loff_t * pos)2858 static ssize_t amdgpu_iomem_read(struct file *f, char __user *buf,
2859 size_t size, loff_t *pos)
2860 {
2861 struct amdgpu_device *adev = file_inode(f)->i_private;
2862 struct iommu_domain *dom;
2863 ssize_t result = 0;
2864 int r;
2865
2866 /* retrieve the IOMMU domain if any for this device */
2867 dom = iommu_get_domain_for_dev(adev->dev);
2868
2869 while (size) {
2870 phys_addr_t addr = *pos & PAGE_MASK;
2871 loff_t off = *pos & ~PAGE_MASK;
2872 size_t bytes = PAGE_SIZE - off;
2873 unsigned long pfn;
2874 struct page *p;
2875 void *ptr;
2876
2877 bytes = min(bytes, size);
2878
2879 /* Translate the bus address to a physical address. If
2880 * the domain is NULL it means there is no IOMMU active
2881 * and the address translation is the identity
2882 */
2883 addr = dom ? iommu_iova_to_phys(dom, addr) : addr;
2884
2885 pfn = addr >> PAGE_SHIFT;
2886 if (!pfn_valid(pfn))
2887 return -EPERM;
2888
2889 p = pfn_to_page(pfn);
2890 if (p->mapping != adev->mman.bdev.dev_mapping)
2891 return -EPERM;
2892
2893 ptr = kmap_local_page(p);
2894 r = copy_to_user(buf, ptr + off, bytes);
2895 kunmap_local(ptr);
2896 if (r)
2897 return -EFAULT;
2898
2899 size -= bytes;
2900 *pos += bytes;
2901 result += bytes;
2902 }
2903
2904 return result;
2905 }
2906
2907 /*
2908 * amdgpu_iomem_write - Virtual write access to GPU mapped memory
2909 *
2910 * This function is used to write memory that has been mapped to the
2911 * GPU and the known addresses are not physical addresses but instead
2912 * bus addresses (e.g., what you'd put in an IB or ring buffer).
2913 */
amdgpu_iomem_write(struct file * f,const char __user * buf,size_t size,loff_t * pos)2914 static ssize_t amdgpu_iomem_write(struct file *f, const char __user *buf,
2915 size_t size, loff_t *pos)
2916 {
2917 struct amdgpu_device *adev = file_inode(f)->i_private;
2918 struct iommu_domain *dom;
2919 ssize_t result = 0;
2920 int r;
2921
2922 dom = iommu_get_domain_for_dev(adev->dev);
2923
2924 while (size) {
2925 phys_addr_t addr = *pos & PAGE_MASK;
2926 loff_t off = *pos & ~PAGE_MASK;
2927 size_t bytes = PAGE_SIZE - off;
2928 unsigned long pfn;
2929 struct page *p;
2930 void *ptr;
2931
2932 bytes = min(bytes, size);
2933
2934 addr = dom ? iommu_iova_to_phys(dom, addr) : addr;
2935
2936 pfn = addr >> PAGE_SHIFT;
2937 if (!pfn_valid(pfn))
2938 return -EPERM;
2939
2940 p = pfn_to_page(pfn);
2941 if (p->mapping != adev->mman.bdev.dev_mapping)
2942 return -EPERM;
2943
2944 ptr = kmap_local_page(p);
2945 r = copy_from_user(ptr + off, buf, bytes);
2946 kunmap_local(ptr);
2947 if (r)
2948 return -EFAULT;
2949
2950 size -= bytes;
2951 *pos += bytes;
2952 result += bytes;
2953 }
2954
2955 return result;
2956 }
2957
2958 static const struct file_operations amdgpu_ttm_iomem_fops = {
2959 .owner = THIS_MODULE,
2960 .read = amdgpu_iomem_read,
2961 .write = amdgpu_iomem_write,
2962 .llseek = default_llseek
2963 };
2964
2965 #endif
2966
amdgpu_ttm_debugfs_init(struct amdgpu_device * adev)2967 void amdgpu_ttm_debugfs_init(struct amdgpu_device *adev)
2968 {
2969 #if defined(CONFIG_DEBUG_FS)
2970 struct drm_minor *minor = adev_to_drm(adev)->primary;
2971 struct dentry *root = minor->debugfs_root;
2972
2973 debugfs_create_file_size("amdgpu_vram", 0444, root, adev,
2974 &amdgpu_ttm_vram_fops, adev->gmc.mc_vram_size);
2975 debugfs_create_file("amdgpu_iomem", 0444, root, adev,
2976 &amdgpu_ttm_iomem_fops);
2977 debugfs_create_file("ttm_page_pool", 0444, root, adev,
2978 &amdgpu_ttm_page_pool_fops);
2979 ttm_resource_manager_create_debugfs(ttm_manager_type(&adev->mman.bdev,
2980 TTM_PL_VRAM),
2981 root, "amdgpu_vram_mm");
2982 ttm_resource_manager_create_debugfs(ttm_manager_type(&adev->mman.bdev,
2983 TTM_PL_TT),
2984 root, "amdgpu_gtt_mm");
2985 ttm_resource_manager_create_debugfs(ttm_manager_type(&adev->mman.bdev,
2986 AMDGPU_PL_GDS),
2987 root, "amdgpu_gds_mm");
2988 ttm_resource_manager_create_debugfs(ttm_manager_type(&adev->mman.bdev,
2989 AMDGPU_PL_GWS),
2990 root, "amdgpu_gws_mm");
2991 ttm_resource_manager_create_debugfs(ttm_manager_type(&adev->mman.bdev,
2992 AMDGPU_PL_OA),
2993 root, "amdgpu_oa_mm");
2994
2995 #endif
2996 }
2997