mm: simplify freeing of devmap managed pages
[linux-block.git] / lib / test_hmm.c
CommitLineData
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RC
1// SPDX-License-Identifier: GPL-2.0
2/*
3 * This is a module to test the HMM (Heterogeneous Memory Management)
4 * mirror and zone device private memory migration APIs of the kernel.
5 * Userspace programs can register with the driver to mirror their own address
6 * space and can use the device to read/write any valid virtual address.
7 */
8#include <linux/init.h>
9#include <linux/fs.h>
10#include <linux/mm.h>
11#include <linux/module.h>
12#include <linux/kernel.h>
13#include <linux/cdev.h>
14#include <linux/device.h>
15#include <linux/mutex.h>
16#include <linux/rwsem.h>
17#include <linux/sched.h>
18#include <linux/slab.h>
19#include <linux/highmem.h>
20#include <linux/delay.h>
21#include <linux/pagemap.h>
22#include <linux/hmm.h>
23#include <linux/vmalloc.h>
24#include <linux/swap.h>
25#include <linux/swapops.h>
26#include <linux/sched/mm.h>
27#include <linux/platform_device.h>
b659baea 28#include <linux/rmap.h>
730ff521
CH
29#include <linux/mmu_notifier.h>
30#include <linux/migrate.h>
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31
32#include "test_hmm_uapi.h"
33
34#define DMIRROR_NDEVICES 2
35#define DMIRROR_RANGE_FAULT_TIMEOUT 1000
36#define DEVMEM_CHUNK_SIZE (256 * 1024 * 1024U)
37#define DEVMEM_CHUNKS_RESERVE 16
38
39static const struct dev_pagemap_ops dmirror_devmem_ops;
40static const struct mmu_interval_notifier_ops dmirror_min_ops;
41static dev_t dmirror_dev;
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42
43struct dmirror_device;
44
45struct dmirror_bounce {
46 void *ptr;
47 unsigned long size;
48 unsigned long addr;
49 unsigned long cpages;
50};
51
b659baea 52#define DPT_XA_TAG_ATOMIC 1UL
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53#define DPT_XA_TAG_WRITE 3UL
54
55/*
56 * Data structure to track address ranges and register for mmu interval
57 * notifier updates.
58 */
59struct dmirror_interval {
60 struct mmu_interval_notifier notifier;
61 struct dmirror *dmirror;
62};
63
64/*
65 * Data attached to the open device file.
66 * Note that it might be shared after a fork().
67 */
68struct dmirror {
69 struct dmirror_device *mdevice;
70 struct xarray pt;
71 struct mmu_interval_notifier notifier;
72 struct mutex mutex;
73};
74
75/*
76 * ZONE_DEVICE pages for migration and simulating device memory.
77 */
78struct dmirror_chunk {
79 struct dev_pagemap pagemap;
80 struct dmirror_device *mdevice;
81};
82
83/*
84 * Per device data.
85 */
86struct dmirror_device {
87 struct cdev cdevice;
88 struct hmm_devmem *devmem;
89
90 unsigned int devmem_capacity;
91 unsigned int devmem_count;
92 struct dmirror_chunk **devmem_chunks;
93 struct mutex devmem_lock; /* protects the above */
94
95 unsigned long calloc;
96 unsigned long cfree;
97 struct page *free_pages;
98 spinlock_t lock; /* protects the above */
99};
100
101static struct dmirror_device dmirror_devices[DMIRROR_NDEVICES];
102
103static int dmirror_bounce_init(struct dmirror_bounce *bounce,
104 unsigned long addr,
105 unsigned long size)
106{
107 bounce->addr = addr;
108 bounce->size = size;
109 bounce->cpages = 0;
110 bounce->ptr = vmalloc(size);
111 if (!bounce->ptr)
112 return -ENOMEM;
113 return 0;
114}
115
116static void dmirror_bounce_fini(struct dmirror_bounce *bounce)
117{
118 vfree(bounce->ptr);
119}
120
121static int dmirror_fops_open(struct inode *inode, struct file *filp)
122{
123 struct cdev *cdev = inode->i_cdev;
124 struct dmirror *dmirror;
125 int ret;
126
127 /* Mirror this process address space */
128 dmirror = kzalloc(sizeof(*dmirror), GFP_KERNEL);
129 if (dmirror == NULL)
130 return -ENOMEM;
131
132 dmirror->mdevice = container_of(cdev, struct dmirror_device, cdevice);
133 mutex_init(&dmirror->mutex);
134 xa_init(&dmirror->pt);
135
136 ret = mmu_interval_notifier_insert(&dmirror->notifier, current->mm,
137 0, ULONG_MAX & PAGE_MASK, &dmirror_min_ops);
138 if (ret) {
139 kfree(dmirror);
140 return ret;
141 }
142
143 filp->private_data = dmirror;
144 return 0;
145}
146
147static int dmirror_fops_release(struct inode *inode, struct file *filp)
148{
149 struct dmirror *dmirror = filp->private_data;
150
151 mmu_interval_notifier_remove(&dmirror->notifier);
152 xa_destroy(&dmirror->pt);
153 kfree(dmirror);
154 return 0;
155}
156
157static struct dmirror_device *dmirror_page_to_device(struct page *page)
158
159{
160 return container_of(page->pgmap, struct dmirror_chunk,
161 pagemap)->mdevice;
162}
163
164static int dmirror_do_fault(struct dmirror *dmirror, struct hmm_range *range)
165{
166 unsigned long *pfns = range->hmm_pfns;
167 unsigned long pfn;
168
169 for (pfn = (range->start >> PAGE_SHIFT);
170 pfn < (range->end >> PAGE_SHIFT);
171 pfn++, pfns++) {
172 struct page *page;
173 void *entry;
174
175 /*
176 * Since we asked for hmm_range_fault() to populate pages,
177 * it shouldn't return an error entry on success.
178 */
179 WARN_ON(*pfns & HMM_PFN_ERROR);
180 WARN_ON(!(*pfns & HMM_PFN_VALID));
181
182 page = hmm_pfn_to_page(*pfns);
183 WARN_ON(!page);
184
185 entry = page;
186 if (*pfns & HMM_PFN_WRITE)
187 entry = xa_tag_pointer(entry, DPT_XA_TAG_WRITE);
188 else if (WARN_ON(range->default_flags & HMM_PFN_WRITE))
189 return -EFAULT;
190 entry = xa_store(&dmirror->pt, pfn, entry, GFP_ATOMIC);
191 if (xa_is_err(entry))
192 return xa_err(entry);
193 }
194
195 return 0;
196}
197
198static void dmirror_do_update(struct dmirror *dmirror, unsigned long start,
199 unsigned long end)
200{
201 unsigned long pfn;
202 void *entry;
203
204 /*
205 * The XArray doesn't hold references to pages since it relies on
206 * the mmu notifier to clear page pointers when they become stale.
207 * Therefore, it is OK to just clear the entry.
208 */
209 xa_for_each_range(&dmirror->pt, pfn, entry, start >> PAGE_SHIFT,
210 end >> PAGE_SHIFT)
211 xa_erase(&dmirror->pt, pfn);
212}
213
214static bool dmirror_interval_invalidate(struct mmu_interval_notifier *mni,
215 const struct mmu_notifier_range *range,
216 unsigned long cur_seq)
217{
218 struct dmirror *dmirror = container_of(mni, struct dmirror, notifier);
219
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220 /*
221 * Ignore invalidation callbacks for device private pages since
222 * the invalidation is handled as part of the migration process.
223 */
224 if (range->event == MMU_NOTIFY_MIGRATE &&
6b49bf6d 225 range->owner == dmirror->mdevice)
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226 return true;
227
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228 if (mmu_notifier_range_blockable(range))
229 mutex_lock(&dmirror->mutex);
230 else if (!mutex_trylock(&dmirror->mutex))
231 return false;
232
233 mmu_interval_set_seq(mni, cur_seq);
234 dmirror_do_update(dmirror, range->start, range->end);
235
236 mutex_unlock(&dmirror->mutex);
237 return true;
238}
239
240static const struct mmu_interval_notifier_ops dmirror_min_ops = {
241 .invalidate = dmirror_interval_invalidate,
242};
243
244static int dmirror_range_fault(struct dmirror *dmirror,
245 struct hmm_range *range)
246{
247 struct mm_struct *mm = dmirror->notifier.mm;
248 unsigned long timeout =
249 jiffies + msecs_to_jiffies(HMM_RANGE_DEFAULT_TIMEOUT);
250 int ret;
251
252 while (true) {
253 if (time_after(jiffies, timeout)) {
254 ret = -EBUSY;
255 goto out;
256 }
257
258 range->notifier_seq = mmu_interval_read_begin(range->notifier);
89154dd5 259 mmap_read_lock(mm);
b2ef9f5a 260 ret = hmm_range_fault(range);
89154dd5 261 mmap_read_unlock(mm);
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RC
262 if (ret) {
263 if (ret == -EBUSY)
264 continue;
265 goto out;
266 }
267
268 mutex_lock(&dmirror->mutex);
269 if (mmu_interval_read_retry(range->notifier,
270 range->notifier_seq)) {
271 mutex_unlock(&dmirror->mutex);
272 continue;
273 }
274 break;
275 }
276
277 ret = dmirror_do_fault(dmirror, range);
278
279 mutex_unlock(&dmirror->mutex);
280out:
281 return ret;
282}
283
284static int dmirror_fault(struct dmirror *dmirror, unsigned long start,
285 unsigned long end, bool write)
286{
287 struct mm_struct *mm = dmirror->notifier.mm;
288 unsigned long addr;
289 unsigned long pfns[64];
290 struct hmm_range range = {
291 .notifier = &dmirror->notifier,
292 .hmm_pfns = pfns,
293 .pfn_flags_mask = 0,
294 .default_flags =
295 HMM_PFN_REQ_FAULT | (write ? HMM_PFN_REQ_WRITE : 0),
296 .dev_private_owner = dmirror->mdevice,
297 };
298 int ret = 0;
299
300 /* Since the mm is for the mirrored process, get a reference first. */
301 if (!mmget_not_zero(mm))
302 return 0;
303
304 for (addr = start; addr < end; addr = range.end) {
305 range.start = addr;
306 range.end = min(addr + (ARRAY_SIZE(pfns) << PAGE_SHIFT), end);
307
308 ret = dmirror_range_fault(dmirror, &range);
309 if (ret)
310 break;
311 }
312
313 mmput(mm);
314 return ret;
315}
316
317static int dmirror_do_read(struct dmirror *dmirror, unsigned long start,
318 unsigned long end, struct dmirror_bounce *bounce)
319{
320 unsigned long pfn;
321 void *ptr;
322
323 ptr = bounce->ptr + ((start - bounce->addr) & PAGE_MASK);
324
325 for (pfn = start >> PAGE_SHIFT; pfn < (end >> PAGE_SHIFT); pfn++) {
326 void *entry;
327 struct page *page;
328 void *tmp;
329
330 entry = xa_load(&dmirror->pt, pfn);
331 page = xa_untag_pointer(entry);
332 if (!page)
333 return -ENOENT;
334
335 tmp = kmap(page);
336 memcpy(ptr, tmp, PAGE_SIZE);
337 kunmap(page);
338
339 ptr += PAGE_SIZE;
340 bounce->cpages++;
341 }
342
343 return 0;
344}
345
346static int dmirror_read(struct dmirror *dmirror, struct hmm_dmirror_cmd *cmd)
347{
348 struct dmirror_bounce bounce;
349 unsigned long start, end;
350 unsigned long size = cmd->npages << PAGE_SHIFT;
351 int ret;
352
353 start = cmd->addr;
354 end = start + size;
355 if (end < start)
356 return -EINVAL;
357
358 ret = dmirror_bounce_init(&bounce, start, size);
359 if (ret)
360 return ret;
361
362 while (1) {
363 mutex_lock(&dmirror->mutex);
364 ret = dmirror_do_read(dmirror, start, end, &bounce);
365 mutex_unlock(&dmirror->mutex);
366 if (ret != -ENOENT)
367 break;
368
369 start = cmd->addr + (bounce.cpages << PAGE_SHIFT);
370 ret = dmirror_fault(dmirror, start, end, false);
371 if (ret)
372 break;
373 cmd->faults++;
374 }
375
376 if (ret == 0) {
377 if (copy_to_user(u64_to_user_ptr(cmd->ptr), bounce.ptr,
378 bounce.size))
379 ret = -EFAULT;
380 }
381 cmd->cpages = bounce.cpages;
382 dmirror_bounce_fini(&bounce);
383 return ret;
384}
385
386static int dmirror_do_write(struct dmirror *dmirror, unsigned long start,
387 unsigned long end, struct dmirror_bounce *bounce)
388{
389 unsigned long pfn;
390 void *ptr;
391
392 ptr = bounce->ptr + ((start - bounce->addr) & PAGE_MASK);
393
394 for (pfn = start >> PAGE_SHIFT; pfn < (end >> PAGE_SHIFT); pfn++) {
395 void *entry;
396 struct page *page;
397 void *tmp;
398
399 entry = xa_load(&dmirror->pt, pfn);
400 page = xa_untag_pointer(entry);
401 if (!page || xa_pointer_tag(entry) != DPT_XA_TAG_WRITE)
402 return -ENOENT;
403
404 tmp = kmap(page);
405 memcpy(tmp, ptr, PAGE_SIZE);
406 kunmap(page);
407
408 ptr += PAGE_SIZE;
409 bounce->cpages++;
410 }
411
412 return 0;
413}
414
415static int dmirror_write(struct dmirror *dmirror, struct hmm_dmirror_cmd *cmd)
416{
417 struct dmirror_bounce bounce;
418 unsigned long start, end;
419 unsigned long size = cmd->npages << PAGE_SHIFT;
420 int ret;
421
422 start = cmd->addr;
423 end = start + size;
424 if (end < start)
425 return -EINVAL;
426
427 ret = dmirror_bounce_init(&bounce, start, size);
428 if (ret)
429 return ret;
430 if (copy_from_user(bounce.ptr, u64_to_user_ptr(cmd->ptr),
431 bounce.size)) {
432 ret = -EFAULT;
433 goto fini;
434 }
435
436 while (1) {
437 mutex_lock(&dmirror->mutex);
438 ret = dmirror_do_write(dmirror, start, end, &bounce);
439 mutex_unlock(&dmirror->mutex);
440 if (ret != -ENOENT)
441 break;
442
443 start = cmd->addr + (bounce.cpages << PAGE_SHIFT);
444 ret = dmirror_fault(dmirror, start, end, true);
445 if (ret)
446 break;
447 cmd->faults++;
448 }
449
450fini:
451 cmd->cpages = bounce.cpages;
452 dmirror_bounce_fini(&bounce);
453 return ret;
454}
455
456static bool dmirror_allocate_chunk(struct dmirror_device *mdevice,
457 struct page **ppage)
458{
459 struct dmirror_chunk *devmem;
460 struct resource *res;
461 unsigned long pfn;
462 unsigned long pfn_first;
463 unsigned long pfn_last;
464 void *ptr;
465
a4574f63
DW
466 devmem = kzalloc(sizeof(*devmem), GFP_KERNEL);
467 if (!devmem)
f3c9d0a3 468 return false;
a4574f63
DW
469
470 res = request_free_mem_region(&iomem_resource, DEVMEM_CHUNK_SIZE,
471 "hmm_dmirror");
472 if (IS_ERR(res))
473 goto err_devmem;
474
475 devmem->pagemap.type = MEMORY_DEVICE_PRIVATE;
476 devmem->pagemap.range.start = res->start;
477 devmem->pagemap.range.end = res->end;
b7b3c01b 478 devmem->pagemap.nr_range = 1;
a4574f63
DW
479 devmem->pagemap.ops = &dmirror_devmem_ops;
480 devmem->pagemap.owner = mdevice;
481
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RC
482 mutex_lock(&mdevice->devmem_lock);
483
484 if (mdevice->devmem_count == mdevice->devmem_capacity) {
485 struct dmirror_chunk **new_chunks;
486 unsigned int new_capacity;
487
488 new_capacity = mdevice->devmem_capacity +
489 DEVMEM_CHUNKS_RESERVE;
490 new_chunks = krealloc(mdevice->devmem_chunks,
491 sizeof(new_chunks[0]) * new_capacity,
492 GFP_KERNEL);
493 if (!new_chunks)
a4574f63 494 goto err_release;
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495 mdevice->devmem_capacity = new_capacity;
496 mdevice->devmem_chunks = new_chunks;
497 }
498
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499 ptr = memremap_pages(&devmem->pagemap, numa_node_id());
500 if (IS_ERR(ptr))
a4574f63 501 goto err_release;
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RC
502
503 devmem->mdevice = mdevice;
a4574f63
DW
504 pfn_first = devmem->pagemap.range.start >> PAGE_SHIFT;
505 pfn_last = pfn_first + (range_len(&devmem->pagemap.range) >> PAGE_SHIFT);
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RC
506 mdevice->devmem_chunks[mdevice->devmem_count++] = devmem;
507
508 mutex_unlock(&mdevice->devmem_lock);
509
510 pr_info("added new %u MB chunk (total %u chunks, %u MB) PFNs [0x%lx 0x%lx)\n",
511 DEVMEM_CHUNK_SIZE / (1024 * 1024),
512 mdevice->devmem_count,
513 mdevice->devmem_count * (DEVMEM_CHUNK_SIZE / (1024 * 1024)),
514 pfn_first, pfn_last);
515
516 spin_lock(&mdevice->lock);
517 for (pfn = pfn_first; pfn < pfn_last; pfn++) {
518 struct page *page = pfn_to_page(pfn);
519
520 page->zone_device_data = mdevice->free_pages;
521 mdevice->free_pages = page;
522 }
523 if (ppage) {
524 *ppage = mdevice->free_pages;
525 mdevice->free_pages = (*ppage)->zone_device_data;
526 mdevice->calloc++;
527 }
528 spin_unlock(&mdevice->lock);
529
530 return true;
531
b2ef9f5a 532err_release:
b2ef9f5a 533 mutex_unlock(&mdevice->devmem_lock);
a4574f63
DW
534 release_mem_region(devmem->pagemap.range.start, range_len(&devmem->pagemap.range));
535err_devmem:
536 kfree(devmem);
537
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RC
538 return false;
539}
540
541static struct page *dmirror_devmem_alloc_page(struct dmirror_device *mdevice)
542{
543 struct page *dpage = NULL;
544 struct page *rpage;
545
546 /*
547 * This is a fake device so we alloc real system memory to store
548 * our device memory.
549 */
550 rpage = alloc_page(GFP_HIGHUSER);
551 if (!rpage)
552 return NULL;
553
554 spin_lock(&mdevice->lock);
555
556 if (mdevice->free_pages) {
557 dpage = mdevice->free_pages;
558 mdevice->free_pages = dpage->zone_device_data;
559 mdevice->calloc++;
560 spin_unlock(&mdevice->lock);
561 } else {
562 spin_unlock(&mdevice->lock);
563 if (!dmirror_allocate_chunk(mdevice, &dpage))
564 goto error;
565 }
566
567 dpage->zone_device_data = rpage;
568 get_page(dpage);
569 lock_page(dpage);
570 return dpage;
571
572error:
573 __free_page(rpage);
574 return NULL;
575}
576
577static void dmirror_migrate_alloc_and_copy(struct migrate_vma *args,
578 struct dmirror *dmirror)
579{
580 struct dmirror_device *mdevice = dmirror->mdevice;
581 const unsigned long *src = args->src;
582 unsigned long *dst = args->dst;
583 unsigned long addr;
584
585 for (addr = args->start; addr < args->end; addr += PAGE_SIZE,
586 src++, dst++) {
587 struct page *spage;
588 struct page *dpage;
589 struct page *rpage;
590
591 if (!(*src & MIGRATE_PFN_MIGRATE))
592 continue;
593
594 /*
595 * Note that spage might be NULL which is OK since it is an
596 * unallocated pte_none() or read-only zero page.
597 */
598 spage = migrate_pfn_to_page(*src);
599
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600 dpage = dmirror_devmem_alloc_page(mdevice);
601 if (!dpage)
602 continue;
603
604 rpage = dpage->zone_device_data;
605 if (spage)
606 copy_highpage(rpage, spage);
607 else
608 clear_highpage(rpage);
609
610 /*
611 * Normally, a device would use the page->zone_device_data to
612 * point to the mirror but here we use it to hold the page for
613 * the simulated device memory and that page holds the pointer
614 * to the mirror.
615 */
616 rpage->zone_device_data = dmirror;
617
ab09243a 618 *dst = migrate_pfn(page_to_pfn(dpage));
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RC
619 if ((*src & MIGRATE_PFN_WRITE) ||
620 (!spage && args->vma->vm_flags & VM_WRITE))
621 *dst |= MIGRATE_PFN_WRITE;
622 }
623}
624
b659baea
AP
625static int dmirror_check_atomic(struct dmirror *dmirror, unsigned long start,
626 unsigned long end)
627{
628 unsigned long pfn;
629
630 for (pfn = start >> PAGE_SHIFT; pfn < (end >> PAGE_SHIFT); pfn++) {
631 void *entry;
b659baea
AP
632
633 entry = xa_load(&dmirror->pt, pfn);
b659baea
AP
634 if (xa_pointer_tag(entry) == DPT_XA_TAG_ATOMIC)
635 return -EPERM;
636 }
637
638 return 0;
639}
640
641static int dmirror_atomic_map(unsigned long start, unsigned long end,
642 struct page **pages, struct dmirror *dmirror)
643{
644 unsigned long pfn, mapped = 0;
645 int i;
646
647 /* Map the migrated pages into the device's page tables. */
648 mutex_lock(&dmirror->mutex);
649
650 for (i = 0, pfn = start >> PAGE_SHIFT; pfn < (end >> PAGE_SHIFT); pfn++, i++) {
651 void *entry;
652
653 if (!pages[i])
654 continue;
655
656 entry = pages[i];
657 entry = xa_tag_pointer(entry, DPT_XA_TAG_ATOMIC);
658 entry = xa_store(&dmirror->pt, pfn, entry, GFP_ATOMIC);
659 if (xa_is_err(entry)) {
660 mutex_unlock(&dmirror->mutex);
661 return xa_err(entry);
662 }
663
664 mapped++;
665 }
666
667 mutex_unlock(&dmirror->mutex);
668 return mapped;
669}
670
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RC
671static int dmirror_migrate_finalize_and_map(struct migrate_vma *args,
672 struct dmirror *dmirror)
673{
674 unsigned long start = args->start;
675 unsigned long end = args->end;
676 const unsigned long *src = args->src;
677 const unsigned long *dst = args->dst;
678 unsigned long pfn;
679
680 /* Map the migrated pages into the device's page tables. */
681 mutex_lock(&dmirror->mutex);
682
683 for (pfn = start >> PAGE_SHIFT; pfn < (end >> PAGE_SHIFT); pfn++,
684 src++, dst++) {
685 struct page *dpage;
686 void *entry;
687
688 if (!(*src & MIGRATE_PFN_MIGRATE))
689 continue;
690
691 dpage = migrate_pfn_to_page(*dst);
692 if (!dpage)
693 continue;
694
695 /*
696 * Store the page that holds the data so the page table
697 * doesn't have to deal with ZONE_DEVICE private pages.
698 */
699 entry = dpage->zone_device_data;
700 if (*dst & MIGRATE_PFN_WRITE)
701 entry = xa_tag_pointer(entry, DPT_XA_TAG_WRITE);
702 entry = xa_store(&dmirror->pt, pfn, entry, GFP_ATOMIC);
703 if (xa_is_err(entry)) {
704 mutex_unlock(&dmirror->mutex);
705 return xa_err(entry);
706 }
707 }
708
709 mutex_unlock(&dmirror->mutex);
710 return 0;
711}
712
b659baea
AP
713static int dmirror_exclusive(struct dmirror *dmirror,
714 struct hmm_dmirror_cmd *cmd)
715{
716 unsigned long start, end, addr;
717 unsigned long size = cmd->npages << PAGE_SHIFT;
718 struct mm_struct *mm = dmirror->notifier.mm;
719 struct page *pages[64];
720 struct dmirror_bounce bounce;
721 unsigned long next;
722 int ret;
723
724 start = cmd->addr;
725 end = start + size;
726 if (end < start)
727 return -EINVAL;
728
729 /* Since the mm is for the mirrored process, get a reference first. */
730 if (!mmget_not_zero(mm))
731 return -EINVAL;
732
733 mmap_read_lock(mm);
734 for (addr = start; addr < end; addr = next) {
735 unsigned long mapped;
736 int i;
737
738 if (end < addr + (ARRAY_SIZE(pages) << PAGE_SHIFT))
739 next = end;
740 else
741 next = addr + (ARRAY_SIZE(pages) << PAGE_SHIFT);
742
743 ret = make_device_exclusive_range(mm, addr, next, pages, NULL);
744 mapped = dmirror_atomic_map(addr, next, pages, dmirror);
745 for (i = 0; i < ret; i++) {
746 if (pages[i]) {
747 unlock_page(pages[i]);
748 put_page(pages[i]);
749 }
750 }
751
752 if (addr + (mapped << PAGE_SHIFT) < next) {
753 mmap_read_unlock(mm);
754 mmput(mm);
755 return -EBUSY;
756 }
757 }
758 mmap_read_unlock(mm);
759 mmput(mm);
760
761 /* Return the migrated data for verification. */
762 ret = dmirror_bounce_init(&bounce, start, size);
763 if (ret)
764 return ret;
765 mutex_lock(&dmirror->mutex);
766 ret = dmirror_do_read(dmirror, start, end, &bounce);
767 mutex_unlock(&dmirror->mutex);
768 if (ret == 0) {
769 if (copy_to_user(u64_to_user_ptr(cmd->ptr), bounce.ptr,
770 bounce.size))
771 ret = -EFAULT;
772 }
773
774 cmd->cpages = bounce.cpages;
775 dmirror_bounce_fini(&bounce);
776 return ret;
777}
778
b2ef9f5a
RC
779static int dmirror_migrate(struct dmirror *dmirror,
780 struct hmm_dmirror_cmd *cmd)
781{
782 unsigned long start, end, addr;
783 unsigned long size = cmd->npages << PAGE_SHIFT;
784 struct mm_struct *mm = dmirror->notifier.mm;
785 struct vm_area_struct *vma;
786 unsigned long src_pfns[64];
787 unsigned long dst_pfns[64];
788 struct dmirror_bounce bounce;
789 struct migrate_vma args;
790 unsigned long next;
791 int ret;
792
793 start = cmd->addr;
794 end = start + size;
795 if (end < start)
796 return -EINVAL;
797
798 /* Since the mm is for the mirrored process, get a reference first. */
799 if (!mmget_not_zero(mm))
800 return -EINVAL;
801
89154dd5 802 mmap_read_lock(mm);
b2ef9f5a 803 for (addr = start; addr < end; addr = next) {
46e6b31d
LH
804 vma = vma_lookup(mm, addr);
805 if (!vma || !(vma->vm_flags & VM_READ)) {
b2ef9f5a
RC
806 ret = -EINVAL;
807 goto out;
808 }
809 next = min(end, addr + (ARRAY_SIZE(src_pfns) << PAGE_SHIFT));
810 if (next > vma->vm_end)
811 next = vma->vm_end;
812
813 args.vma = vma;
814 args.src = src_pfns;
815 args.dst = dst_pfns;
816 args.start = addr;
817 args.end = next;
7d17e83a 818 args.pgmap_owner = dmirror->mdevice;
5143192c 819 args.flags = MIGRATE_VMA_SELECT_SYSTEM;
b2ef9f5a
RC
820 ret = migrate_vma_setup(&args);
821 if (ret)
822 goto out;
823
824 dmirror_migrate_alloc_and_copy(&args, dmirror);
825 migrate_vma_pages(&args);
826 dmirror_migrate_finalize_and_map(&args, dmirror);
827 migrate_vma_finalize(&args);
828 }
89154dd5 829 mmap_read_unlock(mm);
b2ef9f5a
RC
830 mmput(mm);
831
832 /* Return the migrated data for verification. */
833 ret = dmirror_bounce_init(&bounce, start, size);
834 if (ret)
835 return ret;
836 mutex_lock(&dmirror->mutex);
837 ret = dmirror_do_read(dmirror, start, end, &bounce);
838 mutex_unlock(&dmirror->mutex);
839 if (ret == 0) {
840 if (copy_to_user(u64_to_user_ptr(cmd->ptr), bounce.ptr,
841 bounce.size))
842 ret = -EFAULT;
843 }
844 cmd->cpages = bounce.cpages;
845 dmirror_bounce_fini(&bounce);
846 return ret;
847
848out:
89154dd5 849 mmap_read_unlock(mm);
b2ef9f5a
RC
850 mmput(mm);
851 return ret;
852}
853
854static void dmirror_mkentry(struct dmirror *dmirror, struct hmm_range *range,
855 unsigned char *perm, unsigned long entry)
856{
857 struct page *page;
858
859 if (entry & HMM_PFN_ERROR) {
860 *perm = HMM_DMIRROR_PROT_ERROR;
861 return;
862 }
863 if (!(entry & HMM_PFN_VALID)) {
864 *perm = HMM_DMIRROR_PROT_NONE;
865 return;
866 }
867
868 page = hmm_pfn_to_page(entry);
869 if (is_device_private_page(page)) {
870 /* Is the page migrated to this device or some other? */
871 if (dmirror->mdevice == dmirror_page_to_device(page))
872 *perm = HMM_DMIRROR_PROT_DEV_PRIVATE_LOCAL;
873 else
874 *perm = HMM_DMIRROR_PROT_DEV_PRIVATE_REMOTE;
875 } else if (is_zero_pfn(page_to_pfn(page)))
876 *perm = HMM_DMIRROR_PROT_ZERO;
877 else
878 *perm = HMM_DMIRROR_PROT_NONE;
879 if (entry & HMM_PFN_WRITE)
880 *perm |= HMM_DMIRROR_PROT_WRITE;
881 else
882 *perm |= HMM_DMIRROR_PROT_READ;
e478425b
RC
883 if (hmm_pfn_to_map_order(entry) + PAGE_SHIFT == PMD_SHIFT)
884 *perm |= HMM_DMIRROR_PROT_PMD;
885 else if (hmm_pfn_to_map_order(entry) + PAGE_SHIFT == PUD_SHIFT)
886 *perm |= HMM_DMIRROR_PROT_PUD;
b2ef9f5a
RC
887}
888
889static bool dmirror_snapshot_invalidate(struct mmu_interval_notifier *mni,
890 const struct mmu_notifier_range *range,
891 unsigned long cur_seq)
892{
893 struct dmirror_interval *dmi =
894 container_of(mni, struct dmirror_interval, notifier);
895 struct dmirror *dmirror = dmi->dmirror;
896
897 if (mmu_notifier_range_blockable(range))
898 mutex_lock(&dmirror->mutex);
899 else if (!mutex_trylock(&dmirror->mutex))
900 return false;
901
902 /*
903 * Snapshots only need to set the sequence number since any
904 * invalidation in the interval invalidates the whole snapshot.
905 */
906 mmu_interval_set_seq(mni, cur_seq);
907
908 mutex_unlock(&dmirror->mutex);
909 return true;
910}
911
912static const struct mmu_interval_notifier_ops dmirror_mrn_ops = {
913 .invalidate = dmirror_snapshot_invalidate,
914};
915
916static int dmirror_range_snapshot(struct dmirror *dmirror,
917 struct hmm_range *range,
918 unsigned char *perm)
919{
920 struct mm_struct *mm = dmirror->notifier.mm;
921 struct dmirror_interval notifier;
922 unsigned long timeout =
923 jiffies + msecs_to_jiffies(HMM_RANGE_DEFAULT_TIMEOUT);
924 unsigned long i;
925 unsigned long n;
926 int ret = 0;
927
928 notifier.dmirror = dmirror;
929 range->notifier = &notifier.notifier;
930
931 ret = mmu_interval_notifier_insert(range->notifier, mm,
932 range->start, range->end - range->start,
933 &dmirror_mrn_ops);
934 if (ret)
935 return ret;
936
937 while (true) {
938 if (time_after(jiffies, timeout)) {
939 ret = -EBUSY;
940 goto out;
941 }
942
943 range->notifier_seq = mmu_interval_read_begin(range->notifier);
944
89154dd5 945 mmap_read_lock(mm);
b2ef9f5a 946 ret = hmm_range_fault(range);
89154dd5 947 mmap_read_unlock(mm);
b2ef9f5a
RC
948 if (ret) {
949 if (ret == -EBUSY)
950 continue;
951 goto out;
952 }
953
954 mutex_lock(&dmirror->mutex);
955 if (mmu_interval_read_retry(range->notifier,
956 range->notifier_seq)) {
957 mutex_unlock(&dmirror->mutex);
958 continue;
959 }
960 break;
961 }
962
963 n = (range->end - range->start) >> PAGE_SHIFT;
964 for (i = 0; i < n; i++)
965 dmirror_mkentry(dmirror, range, perm + i, range->hmm_pfns[i]);
966
967 mutex_unlock(&dmirror->mutex);
968out:
969 mmu_interval_notifier_remove(range->notifier);
970 return ret;
971}
972
973static int dmirror_snapshot(struct dmirror *dmirror,
974 struct hmm_dmirror_cmd *cmd)
975{
976 struct mm_struct *mm = dmirror->notifier.mm;
977 unsigned long start, end;
978 unsigned long size = cmd->npages << PAGE_SHIFT;
979 unsigned long addr;
980 unsigned long next;
981 unsigned long pfns[64];
982 unsigned char perm[64];
983 char __user *uptr;
984 struct hmm_range range = {
985 .hmm_pfns = pfns,
986 .dev_private_owner = dmirror->mdevice,
987 };
988 int ret = 0;
989
990 start = cmd->addr;
991 end = start + size;
992 if (end < start)
993 return -EINVAL;
994
995 /* Since the mm is for the mirrored process, get a reference first. */
996 if (!mmget_not_zero(mm))
997 return -EINVAL;
998
999 /*
1000 * Register a temporary notifier to detect invalidations even if it
1001 * overlaps with other mmu_interval_notifiers.
1002 */
1003 uptr = u64_to_user_ptr(cmd->ptr);
1004 for (addr = start; addr < end; addr = next) {
1005 unsigned long n;
1006
1007 next = min(addr + (ARRAY_SIZE(pfns) << PAGE_SHIFT), end);
1008 range.start = addr;
1009 range.end = next;
1010
1011 ret = dmirror_range_snapshot(dmirror, &range, perm);
1012 if (ret)
1013 break;
1014
1015 n = (range.end - range.start) >> PAGE_SHIFT;
1016 if (copy_to_user(uptr, perm, n)) {
1017 ret = -EFAULT;
1018 break;
1019 }
1020
1021 cmd->cpages += n;
1022 uptr += n;
1023 }
1024 mmput(mm);
1025
1026 return ret;
1027}
1028
1029static long dmirror_fops_unlocked_ioctl(struct file *filp,
1030 unsigned int command,
1031 unsigned long arg)
1032{
1033 void __user *uarg = (void __user *)arg;
1034 struct hmm_dmirror_cmd cmd;
1035 struct dmirror *dmirror;
1036 int ret;
1037
1038 dmirror = filp->private_data;
1039 if (!dmirror)
1040 return -EINVAL;
1041
1042 if (copy_from_user(&cmd, uarg, sizeof(cmd)))
1043 return -EFAULT;
1044
1045 if (cmd.addr & ~PAGE_MASK)
1046 return -EINVAL;
1047 if (cmd.addr >= (cmd.addr + (cmd.npages << PAGE_SHIFT)))
1048 return -EINVAL;
1049
1050 cmd.cpages = 0;
1051 cmd.faults = 0;
1052
1053 switch (command) {
1054 case HMM_DMIRROR_READ:
1055 ret = dmirror_read(dmirror, &cmd);
1056 break;
1057
1058 case HMM_DMIRROR_WRITE:
1059 ret = dmirror_write(dmirror, &cmd);
1060 break;
1061
1062 case HMM_DMIRROR_MIGRATE:
1063 ret = dmirror_migrate(dmirror, &cmd);
1064 break;
1065
b659baea
AP
1066 case HMM_DMIRROR_EXCLUSIVE:
1067 ret = dmirror_exclusive(dmirror, &cmd);
1068 break;
1069
1070 case HMM_DMIRROR_CHECK_EXCLUSIVE:
1071 ret = dmirror_check_atomic(dmirror, cmd.addr,
1072 cmd.addr + (cmd.npages << PAGE_SHIFT));
1073 break;
1074
b2ef9f5a
RC
1075 case HMM_DMIRROR_SNAPSHOT:
1076 ret = dmirror_snapshot(dmirror, &cmd);
1077 break;
1078
1079 default:
1080 return -EINVAL;
1081 }
1082 if (ret)
1083 return ret;
1084
1085 if (copy_to_user(uarg, &cmd, sizeof(cmd)))
1086 return -EFAULT;
1087
1088 return 0;
1089}
1090
87c01d57
AP
1091static int dmirror_fops_mmap(struct file *file, struct vm_area_struct *vma)
1092{
1093 unsigned long addr;
1094
1095 for (addr = vma->vm_start; addr < vma->vm_end; addr += PAGE_SIZE) {
1096 struct page *page;
1097 int ret;
1098
1099 page = alloc_page(GFP_KERNEL | __GFP_ZERO);
1100 if (!page)
1101 return -ENOMEM;
1102
1103 ret = vm_insert_page(vma, addr, page);
1104 if (ret) {
1105 __free_page(page);
1106 return ret;
1107 }
1108 put_page(page);
1109 }
1110
1111 return 0;
1112}
1113
b2ef9f5a
RC
1114static const struct file_operations dmirror_fops = {
1115 .open = dmirror_fops_open,
1116 .release = dmirror_fops_release,
87c01d57 1117 .mmap = dmirror_fops_mmap,
b2ef9f5a
RC
1118 .unlocked_ioctl = dmirror_fops_unlocked_ioctl,
1119 .llseek = default_llseek,
1120 .owner = THIS_MODULE,
1121};
1122
1123static void dmirror_devmem_free(struct page *page)
1124{
1125 struct page *rpage = page->zone_device_data;
1126 struct dmirror_device *mdevice;
1127
1128 if (rpage)
1129 __free_page(rpage);
1130
1131 mdevice = dmirror_page_to_device(page);
1132
1133 spin_lock(&mdevice->lock);
1134 mdevice->cfree++;
1135 page->zone_device_data = mdevice->free_pages;
1136 mdevice->free_pages = page;
1137 spin_unlock(&mdevice->lock);
1138}
1139
1140static vm_fault_t dmirror_devmem_fault_alloc_and_copy(struct migrate_vma *args,
7d17e83a 1141 struct dmirror *dmirror)
b2ef9f5a
RC
1142{
1143 const unsigned long *src = args->src;
1144 unsigned long *dst = args->dst;
1145 unsigned long start = args->start;
1146 unsigned long end = args->end;
1147 unsigned long addr;
1148
1149 for (addr = start; addr < end; addr += PAGE_SIZE,
1150 src++, dst++) {
1151 struct page *dpage, *spage;
1152
1153 spage = migrate_pfn_to_page(*src);
1154 if (!spage || !(*src & MIGRATE_PFN_MIGRATE))
1155 continue;
1156 spage = spage->zone_device_data;
1157
1158 dpage = alloc_page_vma(GFP_HIGHUSER_MOVABLE, args->vma, addr);
1159 if (!dpage)
1160 continue;
1161
1162 lock_page(dpage);
7d17e83a 1163 xa_erase(&dmirror->pt, addr >> PAGE_SHIFT);
b2ef9f5a 1164 copy_highpage(dpage, spage);
ab09243a 1165 *dst = migrate_pfn(page_to_pfn(dpage));
b2ef9f5a
RC
1166 if (*src & MIGRATE_PFN_WRITE)
1167 *dst |= MIGRATE_PFN_WRITE;
1168 }
1169 return 0;
1170}
1171
b2ef9f5a
RC
1172static vm_fault_t dmirror_devmem_fault(struct vm_fault *vmf)
1173{
1174 struct migrate_vma args;
1175 unsigned long src_pfns;
1176 unsigned long dst_pfns;
1177 struct page *rpage;
1178 struct dmirror *dmirror;
1179 vm_fault_t ret;
1180
1181 /*
1182 * Normally, a device would use the page->zone_device_data to point to
1183 * the mirror but here we use it to hold the page for the simulated
1184 * device memory and that page holds the pointer to the mirror.
1185 */
1186 rpage = vmf->page->zone_device_data;
1187 dmirror = rpage->zone_device_data;
1188
1189 /* FIXME demonstrate how we can adjust migrate range */
1190 args.vma = vmf->vma;
1191 args.start = vmf->address;
1192 args.end = args.start + PAGE_SIZE;
1193 args.src = &src_pfns;
1194 args.dst = &dst_pfns;
5143192c
RC
1195 args.pgmap_owner = dmirror->mdevice;
1196 args.flags = MIGRATE_VMA_SELECT_DEVICE_PRIVATE;
b2ef9f5a
RC
1197
1198 if (migrate_vma_setup(&args))
1199 return VM_FAULT_SIGBUS;
1200
7d17e83a 1201 ret = dmirror_devmem_fault_alloc_and_copy(&args, dmirror);
b2ef9f5a
RC
1202 if (ret)
1203 return ret;
1204 migrate_vma_pages(&args);
7d17e83a
RC
1205 /*
1206 * No device finalize step is needed since
1207 * dmirror_devmem_fault_alloc_and_copy() will have already
1208 * invalidated the device page table.
1209 */
b2ef9f5a
RC
1210 migrate_vma_finalize(&args);
1211 return 0;
1212}
1213
1214static const struct dev_pagemap_ops dmirror_devmem_ops = {
1215 .page_free = dmirror_devmem_free,
1216 .migrate_to_ram = dmirror_devmem_fault,
1217};
1218
1219static int dmirror_device_init(struct dmirror_device *mdevice, int id)
1220{
1221 dev_t dev;
1222 int ret;
1223
1224 dev = MKDEV(MAJOR(dmirror_dev), id);
1225 mutex_init(&mdevice->devmem_lock);
1226 spin_lock_init(&mdevice->lock);
1227
1228 cdev_init(&mdevice->cdevice, &dmirror_fops);
1229 mdevice->cdevice.owner = THIS_MODULE;
1230 ret = cdev_add(&mdevice->cdevice, dev, 1);
1231 if (ret)
1232 return ret;
1233
1234 /* Build a list of free ZONE_DEVICE private struct pages */
1235 dmirror_allocate_chunk(mdevice, NULL);
1236
1237 return 0;
1238}
1239
1240static void dmirror_device_remove(struct dmirror_device *mdevice)
1241{
1242 unsigned int i;
1243
1244 if (mdevice->devmem_chunks) {
1245 for (i = 0; i < mdevice->devmem_count; i++) {
1246 struct dmirror_chunk *devmem =
1247 mdevice->devmem_chunks[i];
1248
1249 memunmap_pages(&devmem->pagemap);
a4574f63
DW
1250 release_mem_region(devmem->pagemap.range.start,
1251 range_len(&devmem->pagemap.range));
b2ef9f5a
RC
1252 kfree(devmem);
1253 }
1254 kfree(mdevice->devmem_chunks);
1255 }
1256
1257 cdev_del(&mdevice->cdevice);
1258}
1259
1260static int __init hmm_dmirror_init(void)
1261{
1262 int ret;
1263 int id;
1264
1265 ret = alloc_chrdev_region(&dmirror_dev, 0, DMIRROR_NDEVICES,
1266 "HMM_DMIRROR");
1267 if (ret)
1268 goto err_unreg;
1269
1270 for (id = 0; id < DMIRROR_NDEVICES; id++) {
1271 ret = dmirror_device_init(dmirror_devices + id, id);
1272 if (ret)
1273 goto err_chrdev;
1274 }
1275
b2ef9f5a
RC
1276 pr_info("HMM test module loaded. This is only for testing HMM.\n");
1277 return 0;
1278
1279err_chrdev:
1280 while (--id >= 0)
1281 dmirror_device_remove(dmirror_devices + id);
1282 unregister_chrdev_region(dmirror_dev, DMIRROR_NDEVICES);
1283err_unreg:
1284 return ret;
1285}
1286
1287static void __exit hmm_dmirror_exit(void)
1288{
1289 int id;
1290
b2ef9f5a
RC
1291 for (id = 0; id < DMIRROR_NDEVICES; id++)
1292 dmirror_device_remove(dmirror_devices + id);
1293 unregister_chrdev_region(dmirror_dev, DMIRROR_NDEVICES);
1294}
1295
1296module_init(hmm_dmirror_init);
1297module_exit(hmm_dmirror_exit);
1298MODULE_LICENSE("GPL");