xref: /linux/drivers/gpu/drm/amd/amdkfd/kfd_migrate.c (revision fdc290ff4ab19c7e0dde36c4cd1e2771b61f6bf5)
1 // SPDX-License-Identifier: GPL-2.0 OR MIT
2 /*
3  * Copyright 2020-2021 Advanced Micro Devices, Inc.
4  *
5  * Permission is hereby granted, free of charge, to any person obtaining a
6  * copy of this software and associated documentation files (the "Software"),
7  * to deal in the Software without restriction, including without limitation
8  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
9  * and/or sell copies of the Software, and to permit persons to whom the
10  * Software is furnished to do so, subject to the following conditions:
11  *
12  * The above copyright notice and this permission notice shall be included in
13  * all copies or substantial portions of the Software.
14  *
15  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
18  * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
19  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
20  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
21  * OTHER DEALINGS IN THE SOFTWARE.
22  */
23 #include <linux/types.h>
24 #include <linux/dma-direction.h>
25 #include <linux/dma-mapping.h>
26 #include <linux/migrate.h>
27 #include "amdgpu_sync.h"
28 #include "amdgpu_object.h"
29 #include "amdgpu_vm.h"
30 #include "amdgpu_res_cursor.h"
31 #include "kfd_priv.h"
32 #include "kfd_svm.h"
33 #include "kfd_migrate.h"
34 #include "kfd_smi_events.h"
35 
36 #ifdef dev_fmt
37 #undef dev_fmt
38 #endif
39 #define dev_fmt(fmt) "kfd_migrate: " fmt
40 
41 static u64
42 svm_migrate_direct_mapping_addr(struct amdgpu_device *adev, u64 addr)
43 {
44 	return addr + amdgpu_ttm_domain_start(adev, TTM_PL_VRAM);
45 }
46 
47 static int
48 svm_migrate_gart_map(struct amdgpu_ring *ring,
49 		     struct amdgpu_ttm_buffer_entity *entity,
50 		     u64 npages,
51 		     dma_addr_t *addr, u64 *gart_addr, u64 flags)
52 {
53 	struct amdgpu_device *adev = ring->adev;
54 	struct amdgpu_job *job;
55 	unsigned int num_dw, num_bytes;
56 	struct dma_fence *fence;
57 	u64 src_addr, dst_addr;
58 	u64 pte_flags;
59 	void *cpu_addr;
60 	int r;
61 
62 	*gart_addr = amdgpu_compute_gart_address(&adev->gmc, entity, 0);
63 
64 	num_dw = ALIGN(adev->mman.buffer_funcs->copy_num_dw, 8);
65 	num_bytes = npages * 8 * AMDGPU_GPU_PAGES_IN_CPU_PAGE;
66 
67 	r = amdgpu_job_alloc_with_ib(adev, &entity->base,
68 				     AMDGPU_FENCE_OWNER_UNDEFINED,
69 				     num_dw * 4 + num_bytes,
70 				     AMDGPU_IB_POOL_DELAYED,
71 				     AMDGPU_KERNEL_JOB_ID_KFD_GART_MAP,
72 				     &job);
73 	if (r)
74 		return r;
75 
76 	src_addr = num_dw * 4;
77 	src_addr += job->ibs[0].gpu_addr;
78 
79 	dst_addr = amdgpu_bo_gpu_offset(adev->gart.bo);
80 	dst_addr += (entity->gart_window_offs[0] >> AMDGPU_GPU_PAGE_SHIFT) * 8;
81 	amdgpu_emit_copy_buffer(adev, &job->ibs[0], src_addr,
82 				dst_addr, num_bytes, 0);
83 
84 	amdgpu_ring_pad_ib(ring, &job->ibs[0]);
85 	WARN_ON(job->ibs[0].length_dw > num_dw);
86 
87 	pte_flags = AMDGPU_PTE_VALID | AMDGPU_PTE_READABLE;
88 	pte_flags |= AMDGPU_PTE_SYSTEM | AMDGPU_PTE_SNOOPED;
89 	if (!(flags & KFD_IOCTL_SVM_FLAG_GPU_RO))
90 		pte_flags |= AMDGPU_PTE_WRITEABLE;
91 	pte_flags |= adev->gart.gart_pte_flags;
92 
93 	cpu_addr = &job->ibs[0].ptr[num_dw];
94 
95 	amdgpu_gart_map(adev, 0, npages, addr, pte_flags, cpu_addr);
96 	fence = amdgpu_job_submit(job);
97 	dma_fence_put(fence);
98 
99 	return r;
100 }
101 
102 /**
103  * svm_migrate_copy_memory_gart - sdma copy data between ram and vram
104  *
105  * @adev: amdgpu device the sdma ring running
106  * @sys: system DMA pointer to be copied
107  * @vram: vram destination DMA pointer
108  * @npages: number of pages to copy
109  * @direction: enum MIGRATION_COPY_DIR
110  * @mfence: output, sdma fence to signal after sdma is done
111  *
112  * ram address uses GART table continuous entries mapping to ram pages,
113  * vram address uses direct mapping of vram pages, which must have npages
114  * number of continuous pages.
115  * GART update and sdma uses same buf copy function ring, sdma is splited to
116  * multiple GTT_MAX_PAGES transfer, all sdma operations are serialized, wait for
117  * the last sdma finish fence which is returned to check copy memory is done.
118  *
119  * Context: Process context
120  *
121  * Return:
122  * 0 - OK, otherwise error code
123  */
124 
125 static int
126 svm_migrate_copy_memory_gart(struct amdgpu_device *adev, dma_addr_t *sys,
127 			     u64 *vram, u64 npages,
128 			     enum MIGRATION_COPY_DIR direction,
129 			     struct dma_fence **mfence)
130 {
131 	const u64 GTT_MAX_PAGES = (AMDGPU_GTT_MAX_TRANSFER_SIZE >> PAGE_SHIFT);
132 	struct amdgpu_ring *ring;
133 	struct amdgpu_ttm_buffer_entity *entity;
134 	u64 gart_s, gart_d;
135 	struct dma_fence *next;
136 	u64 size;
137 	int r = 0;
138 
139 	ring = to_amdgpu_ring(adev->mman.buffer_funcs_scheds[0]);
140 	entity = &adev->mman.move_entities[0];
141 
142 	mutex_lock(&entity->lock);
143 
144 	while (npages) {
145 		size = min(GTT_MAX_PAGES, npages);
146 
147 		if (direction == FROM_VRAM_TO_RAM) {
148 			gart_s = svm_migrate_direct_mapping_addr(adev, *vram);
149 			r = svm_migrate_gart_map(ring, entity, size, sys, &gart_d, 0);
150 
151 		} else if (direction == FROM_RAM_TO_VRAM) {
152 			r = svm_migrate_gart_map(ring, entity, size, sys, &gart_s,
153 						 KFD_IOCTL_SVM_FLAG_GPU_RO);
154 			gart_d = svm_migrate_direct_mapping_addr(adev, *vram);
155 		}
156 		if (r) {
157 			dev_err(adev->dev, "fail %d create gart mapping\n", r);
158 			goto out_unlock;
159 		}
160 
161 		r = amdgpu_copy_buffer(adev, entity,
162 				       gart_s, gart_d, size * PAGE_SIZE,
163 				       NULL, &next, true, 0);
164 		if (r) {
165 			dev_err(adev->dev, "fail %d to copy memory\n", r);
166 			goto out_unlock;
167 		}
168 
169 		dma_fence_put(*mfence);
170 		*mfence = next;
171 		npages -= size;
172 		if (npages) {
173 			sys += size;
174 			vram += size;
175 		}
176 	}
177 
178 out_unlock:
179 	mutex_unlock(&entity->lock);
180 
181 	return r;
182 }
183 
184 /**
185  * svm_migrate_copy_done - wait for memory copy sdma is done
186  *
187  * @adev: amdgpu device the sdma memory copy is executing on
188  * @mfence: migrate fence
189  *
190  * Wait for dma fence is signaled, if the copy ssplit into multiple sdma
191  * operations, this is the last sdma operation fence.
192  *
193  * Context: called after svm_migrate_copy_memory
194  *
195  * Return:
196  * 0		- success
197  * otherwise	- error code from dma fence signal
198  */
199 static int
200 svm_migrate_copy_done(struct amdgpu_device *adev, struct dma_fence *mfence)
201 {
202 	int r = 0;
203 
204 	if (mfence) {
205 		r = dma_fence_wait(mfence, false);
206 		dma_fence_put(mfence);
207 		pr_debug("sdma copy memory fence done\n");
208 	}
209 
210 	return r;
211 }
212 
213 unsigned long
214 svm_migrate_addr_to_pfn(struct amdgpu_device *adev, unsigned long addr)
215 {
216 	return (addr + adev->kfd.pgmap.range.start) >> PAGE_SHIFT;
217 }
218 
219 static void
220 svm_migrate_get_vram_page(struct svm_range *prange, unsigned long pfn)
221 {
222 	struct page *page;
223 
224 	page = pfn_to_page(pfn);
225 	svm_range_bo_ref(prange->svm_bo);
226 	page->zone_device_data = prange->svm_bo;
227 	zone_device_page_init(page, page_pgmap(page), 0);
228 }
229 
230 static void
231 svm_migrate_put_vram_page(struct amdgpu_device *adev, unsigned long addr)
232 {
233 	struct page *page;
234 
235 	page = pfn_to_page(svm_migrate_addr_to_pfn(adev, addr));
236 	unlock_page(page);
237 	put_page(page);
238 }
239 
240 static unsigned long
241 svm_migrate_addr(struct amdgpu_device *adev, struct page *page)
242 {
243 	unsigned long addr;
244 
245 	addr = page_to_pfn(page) << PAGE_SHIFT;
246 	return (addr - adev->kfd.pgmap.range.start);
247 }
248 
249 static struct page *
250 svm_migrate_get_sys_page(struct vm_area_struct *vma, unsigned long addr)
251 {
252 	struct page *page;
253 
254 	page = alloc_page_vma(GFP_HIGHUSER, vma, addr);
255 	if (page)
256 		lock_page(page);
257 
258 	return page;
259 }
260 
261 static unsigned long svm_migrate_successful_pages(struct migrate_vma *migrate)
262 {
263 	unsigned long mpages = 0;
264 	unsigned long i;
265 
266 	for (i = 0; i < migrate->npages; i++) {
267 		if (migrate->dst[i] & MIGRATE_PFN_VALID &&
268 		    migrate->src[i] & MIGRATE_PFN_MIGRATE)
269 			mpages++;
270 	}
271 	return mpages;
272 }
273 
274 static int
275 svm_migrate_copy_to_vram(struct kfd_node *node, struct svm_range *prange,
276 			 struct migrate_vma *migrate, struct dma_fence **mfence,
277 			 dma_addr_t *scratch, u64 ttm_res_offset)
278 {
279 	u64 npages = migrate->npages;
280 	struct amdgpu_device *adev = node->adev;
281 	struct device *dev = adev->dev;
282 	struct amdgpu_res_cursor cursor;
283 	u64 mpages = 0;
284 	dma_addr_t *src;
285 	u64 *dst;
286 	u64 i, j;
287 	int r = 0;
288 
289 	pr_debug("svms 0x%p [0x%lx 0x%lx 0x%llx]\n", prange->svms, prange->start,
290 		 prange->last, ttm_res_offset);
291 
292 	src = scratch;
293 	dst = (u64 *)(scratch + npages);
294 
295 	amdgpu_res_first(prange->ttm_res, ttm_res_offset,
296 			 npages << PAGE_SHIFT, &cursor);
297 	for (i = j = 0; (i < npages) && (mpages < migrate->cpages); i++) {
298 		struct page *spage;
299 
300 		if (migrate->src[i] & MIGRATE_PFN_MIGRATE) {
301 			dst[i] = cursor.start + (j << PAGE_SHIFT);
302 			migrate->dst[i] = svm_migrate_addr_to_pfn(adev, dst[i]);
303 			svm_migrate_get_vram_page(prange, migrate->dst[i]);
304 			migrate->dst[i] = migrate_pfn(migrate->dst[i]);
305 			mpages++;
306 		}
307 		spage = migrate_pfn_to_page(migrate->src[i]);
308 		if (spage && !is_zone_device_page(spage)) {
309 			src[i] = dma_map_page(dev, spage, 0, PAGE_SIZE,
310 					      DMA_BIDIRECTIONAL);
311 			r = dma_mapping_error(dev, src[i]);
312 			if (r) {
313 				src[i] = 0;
314 				dev_err(dev, "%s: fail %d dma_map_page\n",
315 					__func__, r);
316 				goto out_free_vram_pages;
317 			}
318 		} else {
319 			if (j) {
320 				r = svm_migrate_copy_memory_gart(
321 						adev, src + i - j,
322 						dst + i - j, j,
323 						FROM_RAM_TO_VRAM,
324 						mfence);
325 				if (r)
326 					goto out_free_vram_pages;
327 				amdgpu_res_next(&cursor, (j + 1) << PAGE_SHIFT);
328 				j = 0;
329 			} else {
330 				amdgpu_res_next(&cursor, PAGE_SIZE);
331 			}
332 			continue;
333 		}
334 
335 		pr_debug_ratelimited("dma mapping src to 0x%llx, pfn 0x%lx\n",
336 				     src[i] >> PAGE_SHIFT, page_to_pfn(spage));
337 
338 		/* accumulated j + 1 pages reach end of current drm_buddy_block */
339 		if (j + 1 >= (cursor.size >> PAGE_SHIFT)) {
340 			r = svm_migrate_copy_memory_gart(adev, src + i - j,
341 							 dst + i - j, j + 1,
342 							 FROM_RAM_TO_VRAM,
343 							 mfence);
344 			if (r)
345 				goto out_free_vram_pages;
346 			amdgpu_res_next(&cursor, (j + 1) * PAGE_SIZE);
347 			j = 0;
348 		} else {
349 			j++;
350 		}
351 	}
352 
353 	if (j > 0)
354 		r = svm_migrate_copy_memory_gart(adev, src + i - j, dst + i - j, j,
355 					 FROM_RAM_TO_VRAM, mfence);
356 
357 out_free_vram_pages:
358 	if (r) {
359 		pr_debug("failed %d to copy memory to vram\n", r);
360 		for (i = 0; i < npages && mpages; i++) {
361 			if (!dst[i])
362 				continue;
363 			svm_migrate_put_vram_page(adev, dst[i]);
364 			migrate->dst[i] = 0;
365 			mpages--;
366 		}
367 	}
368 
369 #ifdef DEBUG_FORCE_MIXED_DOMAINS
370 	for (i = 0, j = 0; i < npages; i += 4, j++) {
371 		if (j & 1)
372 			continue;
373 		svm_migrate_put_vram_page(adev, dst[i]);
374 		migrate->dst[i] = 0;
375 		svm_migrate_put_vram_page(adev, dst[i + 1]);
376 		migrate->dst[i + 1] = 0;
377 		svm_migrate_put_vram_page(adev, dst[i + 2]);
378 		migrate->dst[i + 2] = 0;
379 		svm_migrate_put_vram_page(adev, dst[i + 3]);
380 		migrate->dst[i + 3] = 0;
381 	}
382 #endif
383 
384 	return r;
385 }
386 
387 static long
388 svm_migrate_vma_to_vram(struct kfd_node *node, struct svm_range *prange,
389 			struct vm_area_struct *vma, u64 start,
390 			u64 end, uint32_t trigger, u64 ttm_res_offset)
391 {
392 	struct kfd_process *p = container_of(prange->svms, struct kfd_process, svms);
393 	u64 npages = (end - start) >> PAGE_SHIFT;
394 	struct amdgpu_device *adev = node->adev;
395 	struct kfd_process_device *pdd;
396 	struct dma_fence *mfence = NULL;
397 	struct migrate_vma migrate = { 0 };
398 	unsigned long cpages = 0;
399 	unsigned long mpages = 0;
400 	dma_addr_t *scratch;
401 	void *buf;
402 	int r = -ENOMEM;
403 
404 	memset(&migrate, 0, sizeof(migrate));
405 	migrate.vma = vma;
406 	migrate.start = start;
407 	migrate.end = end;
408 	migrate.flags = MIGRATE_VMA_SELECT_SYSTEM;
409 	migrate.pgmap_owner = SVM_ADEV_PGMAP_OWNER(adev);
410 
411 	buf = kvcalloc(npages,
412 		       2 * sizeof(*migrate.src) + sizeof(u64) + sizeof(dma_addr_t),
413 		       GFP_KERNEL);
414 	if (!buf)
415 		goto out;
416 
417 	migrate.src = buf;
418 	migrate.dst = migrate.src + npages;
419 	scratch = (dma_addr_t *)(migrate.dst + npages);
420 
421 	kfd_smi_event_migration_start(node, p->lead_thread,
422 				      start >> PAGE_SHIFT, end >> PAGE_SHIFT,
423 				      0, node->id, prange->prefetch_loc,
424 				      prange->preferred_loc, trigger);
425 
426 	r = migrate_vma_setup(&migrate);
427 	if (r) {
428 		dev_err(adev->dev, "%s: vma setup fail %d range [0x%lx 0x%lx]\n",
429 			__func__, r, prange->start, prange->last);
430 		goto out_free;
431 	}
432 
433 	cpages = migrate.cpages;
434 	if (!cpages) {
435 		pr_debug("failed collect migrate sys pages [0x%lx 0x%lx]\n",
436 			 prange->start, prange->last);
437 		goto out_free;
438 	}
439 	if (cpages != npages)
440 		pr_debug("partial migration, 0x%lx/0x%llx pages collected\n",
441 			 cpages, npages);
442 	else
443 		pr_debug("0x%lx pages collected\n", cpages);
444 
445 	r = svm_migrate_copy_to_vram(node, prange, &migrate, &mfence, scratch, ttm_res_offset);
446 	migrate_vma_pages(&migrate);
447 
448 	svm_migrate_copy_done(adev, mfence);
449 	migrate_vma_finalize(&migrate);
450 
451 	mpages = svm_migrate_successful_pages(&migrate);
452 	pr_debug("migrated/collected/requested 0x%lx/0x%lx/0x%lx\n",
453 		 mpages, cpages, migrate.npages);
454 
455 	svm_range_dma_unmap_dev(adev->dev, scratch, 0, npages);
456 
457 out_free:
458 	kvfree(buf);
459 	kfd_smi_event_migration_end(node, p->lead_thread,
460 				    start >> PAGE_SHIFT, end >> PAGE_SHIFT,
461 				    0, node->id, trigger, r);
462 out:
463 	if (!r && mpages) {
464 		pdd = svm_range_get_pdd_by_node(prange, node);
465 		if (pdd)
466 			WRITE_ONCE(pdd->page_in, pdd->page_in + mpages);
467 
468 		return mpages;
469 	}
470 	return r;
471 }
472 
473 /**
474  * svm_migrate_ram_to_vram - migrate svm range from system to device
475  * @prange: range structure
476  * @best_loc: the device to migrate to
477  * @start_mgr: start page to migrate
478  * @last_mgr: last page to migrate
479  * @mm: the process mm structure
480  * @trigger: reason of migration
481  *
482  * Context: Process context, caller hold mmap read lock, svms lock, prange lock
483  *
484  * Return:
485  * 0 - OK, otherwise error code
486  */
487 static int
488 svm_migrate_ram_to_vram(struct svm_range *prange, uint32_t best_loc,
489 			unsigned long start_mgr, unsigned long last_mgr,
490 			struct mm_struct *mm, uint32_t trigger)
491 {
492 	unsigned long addr, start, end;
493 	struct vm_area_struct *vma;
494 	u64 ttm_res_offset;
495 	struct kfd_node *node;
496 	unsigned long mpages = 0;
497 	long r = 0;
498 
499 	if (start_mgr < prange->start || last_mgr > prange->last) {
500 		pr_debug("range [0x%lx 0x%lx] out prange [0x%lx 0x%lx]\n",
501 			 start_mgr, last_mgr, prange->start, prange->last);
502 		return -EFAULT;
503 	}
504 
505 	node = svm_range_get_node_by_id(prange, best_loc);
506 	if (!node) {
507 		pr_debug("failed to get kfd node by id 0x%x\n", best_loc);
508 		return -ENODEV;
509 	}
510 
511 	pr_debug("svms 0x%p [0x%lx 0x%lx] in [0x%lx 0x%lx] to gpu 0x%x\n",
512 		prange->svms, start_mgr, last_mgr, prange->start, prange->last,
513 		best_loc);
514 
515 	start = start_mgr << PAGE_SHIFT;
516 	end = (last_mgr + 1) << PAGE_SHIFT;
517 
518 	r = amdgpu_amdkfd_reserve_mem_limit(node->adev,
519 					prange->npages * PAGE_SIZE,
520 					KFD_IOC_ALLOC_MEM_FLAGS_VRAM,
521 					node->xcp ? node->xcp->id : 0);
522 	if (r) {
523 		dev_dbg(node->adev->dev, "failed to reserve VRAM, r: %ld\n", r);
524 		return -ENOSPC;
525 	}
526 
527 	r = svm_range_vram_node_new(node, prange, true);
528 	if (r) {
529 		dev_dbg(node->adev->dev, "fail %ld to alloc vram\n", r);
530 		goto out;
531 	}
532 	ttm_res_offset = (start_mgr - prange->start + prange->offset) << PAGE_SHIFT;
533 
534 	for (addr = start; addr < end;) {
535 		unsigned long next;
536 
537 		vma = vma_lookup(mm, addr);
538 		if (!vma)
539 			break;
540 
541 		next = min(vma->vm_end, end);
542 		r = svm_migrate_vma_to_vram(node, prange, vma, addr, next, trigger, ttm_res_offset);
543 		if (r < 0) {
544 			pr_debug("failed %ld to migrate\n", r);
545 			break;
546 		} else {
547 			mpages += r;
548 		}
549 		ttm_res_offset += next - addr;
550 		addr = next;
551 	}
552 
553 	if (mpages) {
554 		prange->actual_loc = best_loc;
555 		prange->vram_pages += mpages;
556 	} else if (!prange->actual_loc) {
557 		/* if no page migrated and all pages from prange are at
558 		 * sys ram drop svm_bo got from svm_range_vram_node_new
559 		 */
560 		svm_range_vram_node_free(prange);
561 	}
562 
563 out:
564 	amdgpu_amdkfd_unreserve_mem_limit(node->adev,
565 					prange->npages * PAGE_SIZE,
566 					KFD_IOC_ALLOC_MEM_FLAGS_VRAM,
567 					node->xcp ? node->xcp->id : 0);
568 	return r < 0 ? r : 0;
569 }
570 
571 static void svm_migrate_folio_free(struct folio *folio)
572 {
573 	struct page *page = &folio->page;
574 	struct svm_range_bo *svm_bo = page->zone_device_data;
575 
576 	if (svm_bo) {
577 		pr_debug_ratelimited("ref: %d\n", kref_read(&svm_bo->kref));
578 		svm_range_bo_unref_async(svm_bo);
579 	}
580 }
581 
582 static int
583 svm_migrate_copy_to_ram(struct amdgpu_device *adev, struct svm_range *prange,
584 			struct migrate_vma *migrate, struct dma_fence **mfence,
585 			dma_addr_t *scratch, u64 npages)
586 {
587 	struct device *dev = adev->dev;
588 	struct page *dpage = NULL;
589 	dma_addr_t *dst;
590 	u64 *src;
591 
592 	u64 i = 0, j;
593 	u64 addr;
594 	int r = 0;
595 
596 	pr_debug("svms 0x%p [0x%lx 0x%lx]\n", prange->svms, prange->start,
597 		 prange->last);
598 
599 	addr = migrate->start;
600 
601 	src = (u64 *)(scratch + npages);
602 	dst = scratch;
603 
604 	for (i = 0, j = 0; i < npages; i++, addr += PAGE_SIZE) {
605 		struct page *spage;
606 
607 		spage = migrate_pfn_to_page(migrate->src[i]);
608 		if (!spage || !is_zone_device_page(spage)) {
609 			pr_debug("invalid page. Could be in CPU already svms 0x%p [0x%lx 0x%lx]\n",
610 				 prange->svms, prange->start, prange->last);
611 			if (j) {
612 				r = svm_migrate_copy_memory_gart(adev, dst + i - j,
613 								 src + i - j, j,
614 								 FROM_VRAM_TO_RAM,
615 								 mfence);
616 				if (r)
617 					goto out_oom;
618 				j = 0;
619 			}
620 			continue;
621 		}
622 		src[i] = svm_migrate_addr(adev, spage);
623 		if (j > 0 && src[i] != src[i - 1] + PAGE_SIZE) {
624 			r = svm_migrate_copy_memory_gart(adev, dst + i - j,
625 							 src + i - j, j,
626 							 FROM_VRAM_TO_RAM,
627 							 mfence);
628 			if (r)
629 				goto out_oom;
630 			j = 0;
631 		}
632 
633 		dpage = svm_migrate_get_sys_page(migrate->vma, addr);
634 		if (!dpage) {
635 			pr_debug("failed get page svms 0x%p [0x%lx 0x%lx]\n",
636 				 prange->svms, prange->start, prange->last);
637 			r = -ENOMEM;
638 			goto out_oom;
639 		}
640 
641 		dst[i] = dma_map_page(dev, dpage, 0, PAGE_SIZE, DMA_BIDIRECTIONAL);
642 		r = dma_mapping_error(dev, dst[i]);
643 		if (r) {
644 			dev_err(adev->dev, "%s: fail %d dma_map_page\n", __func__, r);
645 			dst[i] = 0;
646 			goto out_oom;
647 		}
648 
649 		pr_debug_ratelimited("dma mapping dst to 0x%llx, pfn 0x%lx\n",
650 				     dst[i] >> PAGE_SHIFT, page_to_pfn(dpage));
651 
652 		migrate->dst[i] = migrate_pfn(page_to_pfn(dpage));
653 
654 		dpage = NULL;
655 		j++;
656 	}
657 
658 	if (j > 0)
659 		r = svm_migrate_copy_memory_gart(adev, dst + i - j, src + i - j, j,
660 						 FROM_VRAM_TO_RAM, mfence);
661 out_oom:
662 	if (r) {
663 		pr_debug("failed %d copy to ram\n", r);
664 
665 		/* first release current dpage when dma_map_page fail */
666 		if (dpage) {
667 			unlock_page(dpage);
668 			put_page(dpage);
669 		}
670 
671 		/* release previous allocated sys pages and unmap dma address */
672 		while (i--) {
673 
674 			if (dst[i]) {
675 				dma_unmap_page(dev, dst[i], PAGE_SIZE,
676 					       DMA_BIDIRECTIONAL);
677 				dst[i] = 0;
678 			}
679 
680 			dpage = migrate_pfn_to_page(migrate->dst[i]);
681 			if (!dpage)
682 				continue;
683 
684 			unlock_page(dpage);
685 			put_page(dpage);
686 			migrate->dst[i] = 0;
687 		}
688 	}
689 
690 	return r;
691 }
692 
693 /**
694  * svm_migrate_vma_to_ram - migrate range inside one vma from device to system
695  *
696  * @prange: svm range structure
697  * @vma: vm_area_struct that range [start, end] belongs to
698  * @start: range start virtual address in pages
699  * @end: range end virtual address in pages
700  * @node: kfd node device to migrate from
701  * @trigger: reason of migration
702  * @fault_page: is from vmf->page, svm_migrate_to_ram(), this is CPU page fault callback
703  *
704  * Context: Process context, caller hold mmap read lock, prange->migrate_mutex
705  *
706  * Return:
707  *   negative values - indicate error
708  *   positive values or zero - number of pages got migrated
709  */
710 static long
711 svm_migrate_vma_to_ram(struct kfd_node *node, struct svm_range *prange,
712 		       struct vm_area_struct *vma, u64 start, u64 end,
713 		       uint32_t trigger, struct page *fault_page)
714 {
715 	struct kfd_process *p = container_of(prange->svms, struct kfd_process, svms);
716 	u64 npages = (end - start) >> PAGE_SHIFT;
717 	unsigned long cpages = 0;
718 	unsigned long mpages = 0;
719 	struct amdgpu_device *adev = node->adev;
720 	struct kfd_process_device *pdd;
721 	struct dma_fence *mfence = NULL;
722 	struct migrate_vma migrate = { 0 };
723 	dma_addr_t *scratch;
724 	void *buf;
725 	int r = -ENOMEM;
726 
727 	memset(&migrate, 0, sizeof(migrate));
728 	migrate.vma = vma;
729 	migrate.start = start;
730 	migrate.end = end;
731 	migrate.pgmap_owner = SVM_ADEV_PGMAP_OWNER(adev);
732 	if (adev->gmc.xgmi.connected_to_cpu)
733 		migrate.flags = MIGRATE_VMA_SELECT_DEVICE_COHERENT;
734 	else
735 		migrate.flags = MIGRATE_VMA_SELECT_DEVICE_PRIVATE;
736 
737 	buf = kvcalloc(npages,
738 		       2 * sizeof(*migrate.src) + sizeof(u64) + sizeof(dma_addr_t),
739 		       GFP_KERNEL);
740 	if (!buf)
741 		goto out;
742 
743 	migrate.src = buf;
744 	migrate.dst = migrate.src + npages;
745 	migrate.fault_page = fault_page;
746 	scratch = (dma_addr_t *)(migrate.dst + npages);
747 
748 	kfd_smi_event_migration_start(node, p->lead_thread,
749 				      start >> PAGE_SHIFT, end >> PAGE_SHIFT,
750 				      node->id, 0, prange->prefetch_loc,
751 				      prange->preferred_loc, trigger);
752 
753 	r = migrate_vma_setup(&migrate);
754 	if (r) {
755 		dev_err(adev->dev, "%s: vma setup fail %d range [0x%lx 0x%lx]\n",
756 			__func__, r, prange->start, prange->last);
757 		goto out_free;
758 	}
759 
760 	cpages = migrate.cpages;
761 	if (!cpages) {
762 		pr_debug("failed collect migrate device pages [0x%lx 0x%lx]\n",
763 			 prange->start, prange->last);
764 		goto out_free;
765 	}
766 	if (cpages != npages)
767 		pr_debug("partial migration, 0x%lx/0x%llx pages collected\n",
768 			 cpages, npages);
769 	else
770 		pr_debug("0x%lx pages collected\n", cpages);
771 
772 	r = svm_migrate_copy_to_ram(adev, prange, &migrate, &mfence,
773 				    scratch, npages);
774 	migrate_vma_pages(&migrate);
775 
776 	mpages = svm_migrate_successful_pages(&migrate);
777 	pr_debug("migrated/collected/requested 0x%lx/0x%lx/0x%lx\n",
778 		 mpages, cpages, migrate.npages);
779 
780 	svm_migrate_copy_done(adev, mfence);
781 	migrate_vma_finalize(&migrate);
782 
783 	svm_range_dma_unmap_dev(adev->dev, scratch, 0, npages);
784 
785 out_free:
786 	kvfree(buf);
787 	kfd_smi_event_migration_end(node, p->lead_thread,
788 				    start >> PAGE_SHIFT, end >> PAGE_SHIFT,
789 				    node->id, 0, trigger, r);
790 out:
791 	if (!r && mpages) {
792 		pdd = svm_range_get_pdd_by_node(prange, node);
793 		if (pdd)
794 			WRITE_ONCE(pdd->page_out, pdd->page_out + mpages);
795 	}
796 
797 	return r ? r : mpages;
798 }
799 
800 /**
801  * svm_migrate_vram_to_ram - migrate svm range from device to system
802  * @prange: range structure
803  * @mm: process mm, use current->mm if NULL
804  * @start_mgr: start page need be migrated to sys ram
805  * @last_mgr: last page need be migrated to sys ram
806  * @trigger: reason of migration
807  * @fault_page: is from vmf->page, svm_migrate_to_ram(), this is CPU page fault callback
808  *
809  * Context: Process context, caller hold mmap read lock, prange->migrate_mutex
810  *
811  * Return:
812  * 0 - OK, otherwise error code
813  */
814 int svm_migrate_vram_to_ram(struct svm_range *prange, struct mm_struct *mm,
815 			    unsigned long start_mgr, unsigned long last_mgr,
816 			    uint32_t trigger, struct page *fault_page)
817 {
818 	struct kfd_node *node;
819 	struct vm_area_struct *vma;
820 	unsigned long addr;
821 	unsigned long start;
822 	unsigned long end;
823 	unsigned long mpages = 0;
824 	long r = 0;
825 
826 	/* this pragne has no any vram page to migrate to sys ram */
827 	if (!prange->actual_loc) {
828 		pr_debug("[0x%lx 0x%lx] already migrated to ram\n",
829 			 prange->start, prange->last);
830 		return 0;
831 	}
832 
833 	if (start_mgr < prange->start || last_mgr > prange->last) {
834 		pr_debug("range [0x%lx 0x%lx] out prange [0x%lx 0x%lx]\n",
835 			 start_mgr, last_mgr, prange->start, prange->last);
836 		return -EFAULT;
837 	}
838 
839 	node = svm_range_get_node_by_id(prange, prange->actual_loc);
840 	if (!node) {
841 		pr_debug("failed to get kfd node by id 0x%x\n", prange->actual_loc);
842 		return -ENODEV;
843 	}
844 	pr_debug("svms 0x%p prange 0x%p [0x%lx 0x%lx] from gpu 0x%x to ram\n",
845 		 prange->svms, prange, start_mgr, last_mgr,
846 		 prange->actual_loc);
847 
848 	start = start_mgr << PAGE_SHIFT;
849 	end = (last_mgr + 1) << PAGE_SHIFT;
850 
851 	for (addr = start; addr < end;) {
852 		unsigned long next;
853 
854 		vma = vma_lookup(mm, addr);
855 		if (!vma) {
856 			pr_debug("failed to find vma for prange %p\n", prange);
857 			r = -EFAULT;
858 			break;
859 		}
860 
861 		next = min(vma->vm_end, end);
862 		r = svm_migrate_vma_to_ram(node, prange, vma, addr, next, trigger,
863 			fault_page);
864 		if (r < 0) {
865 			pr_debug("failed %ld to migrate prange %p\n", r, prange);
866 			break;
867 		} else {
868 			mpages += r;
869 		}
870 		addr = next;
871 	}
872 
873 	if (r >= 0) {
874 		WARN_ONCE(prange->vram_pages < mpages,
875 			  "Recorded vram pages(0x%llx) should not be less than migration pages(0x%lx).",
876 			  prange->vram_pages, mpages);
877 		prange->vram_pages -= mpages;
878 
879 		/* prange does not have vram page set its actual_loc to system
880 		 * and drop its svm_bo ref
881 		 */
882 		if (prange->vram_pages == 0 && prange->ttm_res) {
883 			prange->actual_loc = 0;
884 			svm_range_vram_node_free(prange);
885 		}
886 	}
887 
888 	return r < 0 ? r : 0;
889 }
890 
891 /**
892  * svm_migrate_vram_to_vram - migrate svm range from device to device
893  * @prange: range structure
894  * @best_loc: the device to migrate to
895  * @start: start page need be migrated to sys ram
896  * @last: last page need be migrated to sys ram
897  * @mm: process mm, use current->mm if NULL
898  * @trigger: reason of migration
899  *
900  * Context: Process context, caller hold mmap read lock, svms lock, prange lock
901  *
902  * migrate all vram pages in prange to sys ram, then migrate
903  * [start, last] pages from sys ram to gpu node best_loc.
904  *
905  * Return:
906  * 0 - OK, otherwise error code
907  */
908 static int
909 svm_migrate_vram_to_vram(struct svm_range *prange, uint32_t best_loc,
910 			unsigned long start, unsigned long last,
911 			struct mm_struct *mm, uint32_t trigger)
912 {
913 	int r, retries = 3;
914 
915 	/*
916 	 * TODO: for both devices with PCIe large bar or on same xgmi hive, skip
917 	 * system memory as migration bridge
918 	 */
919 
920 	pr_debug("from gpu 0x%x to gpu 0x%x\n", prange->actual_loc, best_loc);
921 
922 	do {
923 		r = svm_migrate_vram_to_ram(prange, mm, prange->start, prange->last,
924 					    trigger, NULL);
925 		if (r)
926 			return r;
927 	} while (prange->actual_loc && --retries);
928 
929 	if (prange->actual_loc)
930 		return -EDEADLK;
931 
932 	return svm_migrate_ram_to_vram(prange, best_loc, start, last, mm, trigger);
933 }
934 
935 int
936 svm_migrate_to_vram(struct svm_range *prange, uint32_t best_loc,
937 		    unsigned long start, unsigned long last,
938 		    struct mm_struct *mm, uint32_t trigger)
939 {
940 	if  (!prange->actual_loc || prange->actual_loc == best_loc)
941 		return svm_migrate_ram_to_vram(prange, best_loc, start, last,
942 					       mm, trigger);
943 
944 	else
945 		return svm_migrate_vram_to_vram(prange, best_loc, start, last,
946 						mm, trigger);
947 
948 }
949 
950 /**
951  * svm_migrate_to_ram - CPU page fault handler
952  * @vmf: CPU vm fault vma, address
953  *
954  * Context: vm fault handler, caller holds the mmap read lock
955  *
956  * Return:
957  * 0 - OK
958  * VM_FAULT_SIGBUS - notice application to have SIGBUS page fault
959  */
960 static vm_fault_t svm_migrate_to_ram(struct vm_fault *vmf)
961 {
962 	unsigned long start, last, size;
963 	unsigned long addr = vmf->address;
964 	struct svm_range_bo *svm_bo;
965 	struct svm_range *prange;
966 	struct kfd_process *p;
967 	struct mm_struct *mm;
968 	int r = 0;
969 
970 	svm_bo = vmf->page->zone_device_data;
971 	if (!svm_bo) {
972 		pr_debug("failed get device page at addr 0x%lx\n", addr);
973 		return VM_FAULT_SIGBUS;
974 	}
975 	if (!mmget_not_zero(svm_bo->mm)) {
976 		pr_debug("addr 0x%lx of process mm is destroyed\n", addr);
977 		return VM_FAULT_SIGBUS;
978 	}
979 
980 	mm = svm_bo->mm;
981 	if (mm != vmf->vma->vm_mm)
982 		pr_debug("addr 0x%lx is COW mapping in child process\n", addr);
983 
984 	p = kfd_lookup_process_by_mm(mm);
985 	if (!p) {
986 		pr_debug("failed find process at fault address 0x%lx\n", addr);
987 		r = VM_FAULT_SIGBUS;
988 		goto out_mmput;
989 	}
990 	if (READ_ONCE(p->svms.faulting_task) == current) {
991 		pr_debug("skipping ram migration\n");
992 		r = 0;
993 		goto out_unref_process;
994 	}
995 
996 	pr_debug("CPU page fault svms 0x%p address 0x%lx\n", &p->svms, addr);
997 	addr >>= PAGE_SHIFT;
998 
999 	mutex_lock(&p->svms.lock);
1000 
1001 	prange = svm_range_from_addr(&p->svms, addr, NULL);
1002 	if (!prange) {
1003 		pr_debug("failed get range svms 0x%p addr 0x%lx\n", &p->svms, addr);
1004 		r = -EFAULT;
1005 		goto out_unlock_svms;
1006 	}
1007 
1008 	mutex_lock(&prange->migrate_mutex);
1009 
1010 	if (!prange->actual_loc)
1011 		goto out_unlock_prange;
1012 
1013 	/* Align migration range start and size to granularity size */
1014 	size = 1UL << prange->granularity;
1015 	start = max(ALIGN_DOWN(addr, size), prange->start);
1016 	last = min(ALIGN(addr + 1, size) - 1, prange->last);
1017 
1018 	r = svm_migrate_vram_to_ram(prange, vmf->vma->vm_mm, start, last,
1019 				    KFD_MIGRATE_TRIGGER_PAGEFAULT_CPU, vmf->page);
1020 	if (r)
1021 		pr_debug("failed %d migrate svms 0x%p range 0x%p [0x%lx 0x%lx]\n",
1022 			r, prange->svms, prange, start, last);
1023 
1024 out_unlock_prange:
1025 	mutex_unlock(&prange->migrate_mutex);
1026 out_unlock_svms:
1027 	mutex_unlock(&p->svms.lock);
1028 out_unref_process:
1029 	pr_debug("CPU fault svms 0x%p address 0x%lx done\n", &p->svms, addr);
1030 	kfd_unref_process(p);
1031 out_mmput:
1032 	mmput(mm);
1033 	return r ? VM_FAULT_SIGBUS : 0;
1034 }
1035 
1036 static const struct dev_pagemap_ops svm_migrate_pgmap_ops = {
1037 	.folio_free		= svm_migrate_folio_free,
1038 	.migrate_to_ram		= svm_migrate_to_ram,
1039 };
1040 
1041 /* Each VRAM page uses sizeof(struct page) on system memory */
1042 #define SVM_HMM_PAGE_STRUCT_SIZE(size) ((size)/PAGE_SIZE * sizeof(struct page))
1043 
1044 int kgd2kfd_init_zone_device(struct amdgpu_device *adev)
1045 {
1046 	struct amdgpu_kfd_dev *kfddev = &adev->kfd;
1047 	struct dev_pagemap *pgmap;
1048 	struct resource *res = NULL;
1049 	unsigned long size;
1050 	void *r;
1051 
1052 	/* Page migration works on gfx9 or newer */
1053 	if (amdgpu_ip_version(adev, GC_HWIP, 0) < IP_VERSION(9, 0, 1))
1054 		return -EINVAL;
1055 
1056 	if (adev->apu_prefer_gtt)
1057 		return 0;
1058 
1059 	pgmap = &kfddev->pgmap;
1060 	memset(pgmap, 0, sizeof(*pgmap));
1061 
1062 	/* TODO: register all vram to HMM for now.
1063 	 * should remove reserved size
1064 	 */
1065 	size = ALIGN(adev->gmc.real_vram_size, 2ULL << 20);
1066 	if (adev->gmc.xgmi.connected_to_cpu) {
1067 		pgmap->range.start = adev->gmc.aper_base;
1068 		pgmap->range.end = adev->gmc.aper_base + adev->gmc.aper_size - 1;
1069 		pgmap->type = MEMORY_DEVICE_COHERENT;
1070 	} else {
1071 		res = devm_request_free_mem_region(adev->dev, &iomem_resource, size);
1072 		if (IS_ERR(res))
1073 			return PTR_ERR(res);
1074 		pgmap->range.start = res->start;
1075 		pgmap->range.end = res->end;
1076 		pgmap->type = MEMORY_DEVICE_PRIVATE;
1077 	}
1078 
1079 	pgmap->nr_range = 1;
1080 	pgmap->ops = &svm_migrate_pgmap_ops;
1081 	pgmap->owner = SVM_ADEV_PGMAP_OWNER(adev);
1082 	pgmap->flags = 0;
1083 	/* Device manager releases device-specific resources, memory region and
1084 	 * pgmap when driver disconnects from device.
1085 	 */
1086 	r = devm_memremap_pages(adev->dev, pgmap);
1087 	if (IS_ERR(r)) {
1088 		pr_err("failed to register HMM device memory\n");
1089 		if (pgmap->type == MEMORY_DEVICE_PRIVATE)
1090 			devm_release_mem_region(adev->dev, res->start, resource_size(res));
1091 		/* Disable SVM support capability */
1092 		pgmap->type = 0;
1093 		return PTR_ERR(r);
1094 	}
1095 
1096 	pr_debug("reserve %ldMB system memory for VRAM pages struct\n",
1097 		 SVM_HMM_PAGE_STRUCT_SIZE(size) >> 20);
1098 
1099 	amdgpu_amdkfd_reserve_system_mem(SVM_HMM_PAGE_STRUCT_SIZE(size));
1100 
1101 	pr_info("HMM registered %ldMB device memory\n", size >> 20);
1102 
1103 	return 0;
1104 }
1105