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c942fddf | 1 | // SPDX-License-Identifier: GPL-2.0-or-later |
133ff0ea JG |
2 | /* |
3 | * Copyright 2013 Red Hat Inc. | |
4 | * | |
f813f219 | 5 | * Authors: Jérôme Glisse <[email protected]> |
133ff0ea JG |
6 | */ |
7 | /* | |
8 | * Refer to include/linux/hmm.h for information about heterogeneous memory | |
9 | * management or HMM for short. | |
10 | */ | |
11 | #include <linux/mm.h> | |
12 | #include <linux/hmm.h> | |
858b54da | 13 | #include <linux/init.h> |
da4c3c73 JG |
14 | #include <linux/rmap.h> |
15 | #include <linux/swap.h> | |
133ff0ea JG |
16 | #include <linux/slab.h> |
17 | #include <linux/sched.h> | |
4ef589dc JG |
18 | #include <linux/mmzone.h> |
19 | #include <linux/pagemap.h> | |
da4c3c73 JG |
20 | #include <linux/swapops.h> |
21 | #include <linux/hugetlb.h> | |
4ef589dc | 22 | #include <linux/memremap.h> |
c8a53b2d | 23 | #include <linux/sched/mm.h> |
7b2d55d2 | 24 | #include <linux/jump_label.h> |
55c0ece8 | 25 | #include <linux/dma-mapping.h> |
c0b12405 | 26 | #include <linux/mmu_notifier.h> |
4ef589dc JG |
27 | #include <linux/memory_hotplug.h> |
28 | ||
29 | #define PA_SECTION_SIZE (1UL << PA_SECTION_SHIFT) | |
133ff0ea | 30 | |
6b368cd4 | 31 | #if IS_ENABLED(CONFIG_HMM_MIRROR) |
c0b12405 JG |
32 | static const struct mmu_notifier_ops hmm_mmu_notifier_ops; |
33 | ||
704f3f2c JG |
34 | /** |
35 | * hmm_get_or_create - register HMM against an mm (HMM internal) | |
133ff0ea JG |
36 | * |
37 | * @mm: mm struct to attach to | |
704f3f2c JG |
38 | * Returns: returns an HMM object, either by referencing the existing |
39 | * (per-process) object, or by creating a new one. | |
133ff0ea | 40 | * |
704f3f2c JG |
41 | * This is not intended to be used directly by device drivers. If mm already |
42 | * has an HMM struct then it get a reference on it and returns it. Otherwise | |
43 | * it allocates an HMM struct, initializes it, associate it with the mm and | |
44 | * returns it. | |
133ff0ea | 45 | */ |
704f3f2c | 46 | static struct hmm *hmm_get_or_create(struct mm_struct *mm) |
133ff0ea | 47 | { |
8a9320b7 JG |
48 | struct hmm *hmm; |
49 | ||
50 | lockdep_assert_held_exclusive(&mm->mmap_sem); | |
133ff0ea | 51 | |
8a9320b7 JG |
52 | /* Abuse the page_table_lock to also protect mm->hmm. */ |
53 | spin_lock(&mm->page_table_lock); | |
54 | hmm = mm->hmm; | |
55 | if (mm->hmm && kref_get_unless_zero(&mm->hmm->kref)) | |
56 | goto out_unlock; | |
57 | spin_unlock(&mm->page_table_lock); | |
c0b12405 JG |
58 | |
59 | hmm = kmalloc(sizeof(*hmm), GFP_KERNEL); | |
60 | if (!hmm) | |
61 | return NULL; | |
a3e0d41c | 62 | init_waitqueue_head(&hmm->wq); |
c0b12405 JG |
63 | INIT_LIST_HEAD(&hmm->mirrors); |
64 | init_rwsem(&hmm->mirrors_sem); | |
c0b12405 | 65 | hmm->mmu_notifier.ops = NULL; |
da4c3c73 | 66 | INIT_LIST_HEAD(&hmm->ranges); |
a3e0d41c | 67 | mutex_init(&hmm->lock); |
704f3f2c | 68 | kref_init(&hmm->kref); |
a3e0d41c JG |
69 | hmm->notifiers = 0; |
70 | hmm->dead = false; | |
c0b12405 JG |
71 | hmm->mm = mm; |
72 | ||
8a9320b7 JG |
73 | hmm->mmu_notifier.ops = &hmm_mmu_notifier_ops; |
74 | if (__mmu_notifier_register(&hmm->mmu_notifier, mm)) { | |
75 | kfree(hmm); | |
76 | return NULL; | |
77 | } | |
c0b12405 | 78 | |
8a9320b7 | 79 | mmgrab(hmm->mm); |
86a2d598 RC |
80 | |
81 | /* | |
8a9320b7 JG |
82 | * We hold the exclusive mmap_sem here so we know that mm->hmm is |
83 | * still NULL or 0 kref, and is safe to update. | |
86a2d598 | 84 | */ |
86a2d598 | 85 | spin_lock(&mm->page_table_lock); |
8a9320b7 JG |
86 | mm->hmm = hmm; |
87 | ||
88 | out_unlock: | |
86a2d598 | 89 | spin_unlock(&mm->page_table_lock); |
8a9320b7 | 90 | return hmm; |
133ff0ea JG |
91 | } |
92 | ||
6d7c3cde JG |
93 | static void hmm_free_rcu(struct rcu_head *rcu) |
94 | { | |
8a9320b7 JG |
95 | struct hmm *hmm = container_of(rcu, struct hmm, rcu); |
96 | ||
97 | mmdrop(hmm->mm); | |
98 | kfree(hmm); | |
6d7c3cde JG |
99 | } |
100 | ||
704f3f2c JG |
101 | static void hmm_free(struct kref *kref) |
102 | { | |
103 | struct hmm *hmm = container_of(kref, struct hmm, kref); | |
704f3f2c | 104 | |
8a9320b7 JG |
105 | spin_lock(&hmm->mm->page_table_lock); |
106 | if (hmm->mm->hmm == hmm) | |
107 | hmm->mm->hmm = NULL; | |
108 | spin_unlock(&hmm->mm->page_table_lock); | |
704f3f2c | 109 | |
8a9320b7 | 110 | mmu_notifier_unregister_no_release(&hmm->mmu_notifier, hmm->mm); |
6d7c3cde | 111 | mmu_notifier_call_srcu(&hmm->rcu, hmm_free_rcu); |
704f3f2c JG |
112 | } |
113 | ||
114 | static inline void hmm_put(struct hmm *hmm) | |
115 | { | |
116 | kref_put(&hmm->kref, hmm_free); | |
117 | } | |
118 | ||
a3e0d41c | 119 | static void hmm_release(struct mmu_notifier *mn, struct mm_struct *mm) |
c0b12405 | 120 | { |
6d7c3cde | 121 | struct hmm *hmm = container_of(mn, struct hmm, mmu_notifier); |
c0b12405 | 122 | struct hmm_mirror *mirror; |
da4c3c73 JG |
123 | struct hmm_range *range; |
124 | ||
6d7c3cde JG |
125 | /* Bail out if hmm is in the process of being freed */ |
126 | if (!kref_get_unless_zero(&hmm->kref)) | |
127 | return; | |
128 | ||
a3e0d41c JG |
129 | /* Report this HMM as dying. */ |
130 | hmm->dead = true; | |
da4c3c73 | 131 | |
a3e0d41c JG |
132 | /* Wake-up everyone waiting on any range. */ |
133 | mutex_lock(&hmm->lock); | |
085ea250 | 134 | list_for_each_entry(range, &hmm->ranges, list) |
da4c3c73 | 135 | range->valid = false; |
a3e0d41c JG |
136 | wake_up_all(&hmm->wq); |
137 | mutex_unlock(&hmm->lock); | |
e1401513 RC |
138 | |
139 | down_write(&hmm->mirrors_sem); | |
140 | mirror = list_first_entry_or_null(&hmm->mirrors, struct hmm_mirror, | |
141 | list); | |
142 | while (mirror) { | |
143 | list_del_init(&mirror->list); | |
144 | if (mirror->ops->release) { | |
145 | /* | |
085ea250 RC |
146 | * Drop mirrors_sem so the release callback can wait |
147 | * on any pending work that might itself trigger a | |
148 | * mmu_notifier callback and thus would deadlock with | |
149 | * us. | |
e1401513 RC |
150 | */ |
151 | up_write(&hmm->mirrors_sem); | |
152 | mirror->ops->release(mirror); | |
153 | down_write(&hmm->mirrors_sem); | |
154 | } | |
155 | mirror = list_first_entry_or_null(&hmm->mirrors, | |
156 | struct hmm_mirror, list); | |
157 | } | |
158 | up_write(&hmm->mirrors_sem); | |
704f3f2c JG |
159 | |
160 | hmm_put(hmm); | |
e1401513 RC |
161 | } |
162 | ||
93065ac7 | 163 | static int hmm_invalidate_range_start(struct mmu_notifier *mn, |
a3e0d41c | 164 | const struct mmu_notifier_range *nrange) |
c0b12405 | 165 | { |
6d7c3cde | 166 | struct hmm *hmm = container_of(mn, struct hmm, mmu_notifier); |
a3e0d41c | 167 | struct hmm_mirror *mirror; |
ec131b2d | 168 | struct hmm_update update; |
a3e0d41c JG |
169 | struct hmm_range *range; |
170 | int ret = 0; | |
c0b12405 | 171 | |
6d7c3cde JG |
172 | if (!kref_get_unless_zero(&hmm->kref)) |
173 | return 0; | |
c0b12405 | 174 | |
a3e0d41c JG |
175 | update.start = nrange->start; |
176 | update.end = nrange->end; | |
ec131b2d | 177 | update.event = HMM_UPDATE_INVALIDATE; |
dfcd6660 | 178 | update.blockable = mmu_notifier_range_blockable(nrange); |
a3e0d41c | 179 | |
dfcd6660 | 180 | if (mmu_notifier_range_blockable(nrange)) |
a3e0d41c JG |
181 | mutex_lock(&hmm->lock); |
182 | else if (!mutex_trylock(&hmm->lock)) { | |
183 | ret = -EAGAIN; | |
184 | goto out; | |
185 | } | |
186 | hmm->notifiers++; | |
187 | list_for_each_entry(range, &hmm->ranges, list) { | |
188 | if (update.end < range->start || update.start >= range->end) | |
189 | continue; | |
190 | ||
191 | range->valid = false; | |
192 | } | |
193 | mutex_unlock(&hmm->lock); | |
194 | ||
dfcd6660 | 195 | if (mmu_notifier_range_blockable(nrange)) |
a3e0d41c JG |
196 | down_read(&hmm->mirrors_sem); |
197 | else if (!down_read_trylock(&hmm->mirrors_sem)) { | |
198 | ret = -EAGAIN; | |
199 | goto out; | |
200 | } | |
201 | list_for_each_entry(mirror, &hmm->mirrors, list) { | |
202 | int ret; | |
203 | ||
204 | ret = mirror->ops->sync_cpu_device_pagetables(mirror, &update); | |
085ea250 RC |
205 | if (!update.blockable && ret == -EAGAIN) |
206 | break; | |
a3e0d41c JG |
207 | } |
208 | up_read(&hmm->mirrors_sem); | |
209 | ||
210 | out: | |
704f3f2c JG |
211 | hmm_put(hmm); |
212 | return ret; | |
c0b12405 JG |
213 | } |
214 | ||
215 | static void hmm_invalidate_range_end(struct mmu_notifier *mn, | |
a3e0d41c | 216 | const struct mmu_notifier_range *nrange) |
c0b12405 | 217 | { |
6d7c3cde | 218 | struct hmm *hmm = container_of(mn, struct hmm, mmu_notifier); |
c0b12405 | 219 | |
6d7c3cde JG |
220 | if (!kref_get_unless_zero(&hmm->kref)) |
221 | return; | |
c0b12405 | 222 | |
a3e0d41c JG |
223 | mutex_lock(&hmm->lock); |
224 | hmm->notifiers--; | |
225 | if (!hmm->notifiers) { | |
226 | struct hmm_range *range; | |
227 | ||
228 | list_for_each_entry(range, &hmm->ranges, list) { | |
229 | if (range->valid) | |
230 | continue; | |
231 | range->valid = true; | |
232 | } | |
233 | wake_up_all(&hmm->wq); | |
234 | } | |
235 | mutex_unlock(&hmm->lock); | |
236 | ||
704f3f2c | 237 | hmm_put(hmm); |
c0b12405 JG |
238 | } |
239 | ||
240 | static const struct mmu_notifier_ops hmm_mmu_notifier_ops = { | |
e1401513 | 241 | .release = hmm_release, |
c0b12405 JG |
242 | .invalidate_range_start = hmm_invalidate_range_start, |
243 | .invalidate_range_end = hmm_invalidate_range_end, | |
244 | }; | |
245 | ||
246 | /* | |
247 | * hmm_mirror_register() - register a mirror against an mm | |
248 | * | |
249 | * @mirror: new mirror struct to register | |
250 | * @mm: mm to register against | |
085ea250 | 251 | * Return: 0 on success, -ENOMEM if no memory, -EINVAL if invalid arguments |
c0b12405 JG |
252 | * |
253 | * To start mirroring a process address space, the device driver must register | |
254 | * an HMM mirror struct. | |
255 | * | |
256 | * THE mm->mmap_sem MUST BE HELD IN WRITE MODE ! | |
257 | */ | |
258 | int hmm_mirror_register(struct hmm_mirror *mirror, struct mm_struct *mm) | |
259 | { | |
260 | /* Sanity check */ | |
261 | if (!mm || !mirror || !mirror->ops) | |
262 | return -EINVAL; | |
263 | ||
704f3f2c | 264 | mirror->hmm = hmm_get_or_create(mm); |
c0b12405 JG |
265 | if (!mirror->hmm) |
266 | return -ENOMEM; | |
267 | ||
268 | down_write(&mirror->hmm->mirrors_sem); | |
704f3f2c JG |
269 | list_add(&mirror->list, &mirror->hmm->mirrors); |
270 | up_write(&mirror->hmm->mirrors_sem); | |
c0b12405 JG |
271 | |
272 | return 0; | |
273 | } | |
274 | EXPORT_SYMBOL(hmm_mirror_register); | |
275 | ||
276 | /* | |
277 | * hmm_mirror_unregister() - unregister a mirror | |
278 | * | |
085ea250 | 279 | * @mirror: mirror struct to unregister |
c0b12405 JG |
280 | * |
281 | * Stop mirroring a process address space, and cleanup. | |
282 | */ | |
283 | void hmm_mirror_unregister(struct hmm_mirror *mirror) | |
284 | { | |
704f3f2c | 285 | struct hmm *hmm = READ_ONCE(mirror->hmm); |
c01cbba2 | 286 | |
704f3f2c | 287 | if (hmm == NULL) |
c01cbba2 | 288 | return; |
c0b12405 JG |
289 | |
290 | down_write(&hmm->mirrors_sem); | |
e1401513 | 291 | list_del_init(&mirror->list); |
704f3f2c | 292 | /* To protect us against double unregister ... */ |
c01cbba2 | 293 | mirror->hmm = NULL; |
c0b12405 | 294 | up_write(&hmm->mirrors_sem); |
c01cbba2 | 295 | |
704f3f2c | 296 | hmm_put(hmm); |
c0b12405 JG |
297 | } |
298 | EXPORT_SYMBOL(hmm_mirror_unregister); | |
da4c3c73 | 299 | |
74eee180 JG |
300 | struct hmm_vma_walk { |
301 | struct hmm_range *range; | |
992de9a8 | 302 | struct dev_pagemap *pgmap; |
74eee180 JG |
303 | unsigned long last; |
304 | bool fault; | |
305 | bool block; | |
74eee180 JG |
306 | }; |
307 | ||
2aee09d8 JG |
308 | static int hmm_vma_do_fault(struct mm_walk *walk, unsigned long addr, |
309 | bool write_fault, uint64_t *pfn) | |
74eee180 | 310 | { |
9b1ae605 | 311 | unsigned int flags = FAULT_FLAG_REMOTE; |
74eee180 | 312 | struct hmm_vma_walk *hmm_vma_walk = walk->private; |
f88a1e90 | 313 | struct hmm_range *range = hmm_vma_walk->range; |
74eee180 | 314 | struct vm_area_struct *vma = walk->vma; |
50a7ca3c | 315 | vm_fault_t ret; |
74eee180 JG |
316 | |
317 | flags |= hmm_vma_walk->block ? 0 : FAULT_FLAG_ALLOW_RETRY; | |
2aee09d8 | 318 | flags |= write_fault ? FAULT_FLAG_WRITE : 0; |
50a7ca3c SJ |
319 | ret = handle_mm_fault(vma, addr, flags); |
320 | if (ret & VM_FAULT_RETRY) | |
73231612 | 321 | return -EAGAIN; |
50a7ca3c | 322 | if (ret & VM_FAULT_ERROR) { |
f88a1e90 | 323 | *pfn = range->values[HMM_PFN_ERROR]; |
74eee180 JG |
324 | return -EFAULT; |
325 | } | |
326 | ||
73231612 | 327 | return -EBUSY; |
74eee180 JG |
328 | } |
329 | ||
da4c3c73 JG |
330 | static int hmm_pfns_bad(unsigned long addr, |
331 | unsigned long end, | |
332 | struct mm_walk *walk) | |
333 | { | |
c719547f JG |
334 | struct hmm_vma_walk *hmm_vma_walk = walk->private; |
335 | struct hmm_range *range = hmm_vma_walk->range; | |
ff05c0c6 | 336 | uint64_t *pfns = range->pfns; |
da4c3c73 JG |
337 | unsigned long i; |
338 | ||
339 | i = (addr - range->start) >> PAGE_SHIFT; | |
340 | for (; addr < end; addr += PAGE_SIZE, i++) | |
f88a1e90 | 341 | pfns[i] = range->values[HMM_PFN_ERROR]; |
da4c3c73 JG |
342 | |
343 | return 0; | |
344 | } | |
345 | ||
5504ed29 JG |
346 | /* |
347 | * hmm_vma_walk_hole() - handle a range lacking valid pmd or pte(s) | |
348 | * @start: range virtual start address (inclusive) | |
349 | * @end: range virtual end address (exclusive) | |
2aee09d8 JG |
350 | * @fault: should we fault or not ? |
351 | * @write_fault: write fault ? | |
5504ed29 | 352 | * @walk: mm_walk structure |
085ea250 | 353 | * Return: 0 on success, -EBUSY after page fault, or page fault error |
5504ed29 JG |
354 | * |
355 | * This function will be called whenever pmd_none() or pte_none() returns true, | |
356 | * or whenever there is no page directory covering the virtual address range. | |
357 | */ | |
2aee09d8 JG |
358 | static int hmm_vma_walk_hole_(unsigned long addr, unsigned long end, |
359 | bool fault, bool write_fault, | |
360 | struct mm_walk *walk) | |
da4c3c73 | 361 | { |
74eee180 JG |
362 | struct hmm_vma_walk *hmm_vma_walk = walk->private; |
363 | struct hmm_range *range = hmm_vma_walk->range; | |
ff05c0c6 | 364 | uint64_t *pfns = range->pfns; |
63d5066f | 365 | unsigned long i, page_size; |
da4c3c73 | 366 | |
74eee180 | 367 | hmm_vma_walk->last = addr; |
63d5066f JG |
368 | page_size = hmm_range_page_size(range); |
369 | i = (addr - range->start) >> range->page_shift; | |
370 | ||
371 | for (; addr < end; addr += page_size, i++) { | |
f88a1e90 | 372 | pfns[i] = range->values[HMM_PFN_NONE]; |
2aee09d8 | 373 | if (fault || write_fault) { |
74eee180 | 374 | int ret; |
da4c3c73 | 375 | |
2aee09d8 JG |
376 | ret = hmm_vma_do_fault(walk, addr, write_fault, |
377 | &pfns[i]); | |
73231612 | 378 | if (ret != -EBUSY) |
74eee180 JG |
379 | return ret; |
380 | } | |
381 | } | |
382 | ||
73231612 | 383 | return (fault || write_fault) ? -EBUSY : 0; |
2aee09d8 JG |
384 | } |
385 | ||
386 | static inline void hmm_pte_need_fault(const struct hmm_vma_walk *hmm_vma_walk, | |
387 | uint64_t pfns, uint64_t cpu_flags, | |
388 | bool *fault, bool *write_fault) | |
389 | { | |
f88a1e90 JG |
390 | struct hmm_range *range = hmm_vma_walk->range; |
391 | ||
2aee09d8 JG |
392 | if (!hmm_vma_walk->fault) |
393 | return; | |
394 | ||
023a019a JG |
395 | /* |
396 | * So we not only consider the individual per page request we also | |
397 | * consider the default flags requested for the range. The API can | |
398 | * be use in 2 fashions. The first one where the HMM user coalesce | |
399 | * multiple page fault into one request and set flags per pfns for | |
400 | * of those faults. The second one where the HMM user want to pre- | |
401 | * fault a range with specific flags. For the latter one it is a | |
402 | * waste to have the user pre-fill the pfn arrays with a default | |
403 | * flags value. | |
404 | */ | |
405 | pfns = (pfns & range->pfn_flags_mask) | range->default_flags; | |
406 | ||
2aee09d8 | 407 | /* We aren't ask to do anything ... */ |
f88a1e90 | 408 | if (!(pfns & range->flags[HMM_PFN_VALID])) |
2aee09d8 | 409 | return; |
f88a1e90 JG |
410 | /* If this is device memory than only fault if explicitly requested */ |
411 | if ((cpu_flags & range->flags[HMM_PFN_DEVICE_PRIVATE])) { | |
412 | /* Do we fault on device memory ? */ | |
413 | if (pfns & range->flags[HMM_PFN_DEVICE_PRIVATE]) { | |
414 | *write_fault = pfns & range->flags[HMM_PFN_WRITE]; | |
415 | *fault = true; | |
416 | } | |
2aee09d8 JG |
417 | return; |
418 | } | |
f88a1e90 JG |
419 | |
420 | /* If CPU page table is not valid then we need to fault */ | |
421 | *fault = !(cpu_flags & range->flags[HMM_PFN_VALID]); | |
422 | /* Need to write fault ? */ | |
423 | if ((pfns & range->flags[HMM_PFN_WRITE]) && | |
424 | !(cpu_flags & range->flags[HMM_PFN_WRITE])) { | |
425 | *write_fault = true; | |
2aee09d8 JG |
426 | *fault = true; |
427 | } | |
428 | } | |
429 | ||
430 | static void hmm_range_need_fault(const struct hmm_vma_walk *hmm_vma_walk, | |
431 | const uint64_t *pfns, unsigned long npages, | |
432 | uint64_t cpu_flags, bool *fault, | |
433 | bool *write_fault) | |
434 | { | |
435 | unsigned long i; | |
436 | ||
437 | if (!hmm_vma_walk->fault) { | |
438 | *fault = *write_fault = false; | |
439 | return; | |
440 | } | |
441 | ||
a3e0d41c | 442 | *fault = *write_fault = false; |
2aee09d8 JG |
443 | for (i = 0; i < npages; ++i) { |
444 | hmm_pte_need_fault(hmm_vma_walk, pfns[i], cpu_flags, | |
445 | fault, write_fault); | |
a3e0d41c | 446 | if ((*write_fault)) |
2aee09d8 JG |
447 | return; |
448 | } | |
449 | } | |
450 | ||
451 | static int hmm_vma_walk_hole(unsigned long addr, unsigned long end, | |
452 | struct mm_walk *walk) | |
453 | { | |
454 | struct hmm_vma_walk *hmm_vma_walk = walk->private; | |
455 | struct hmm_range *range = hmm_vma_walk->range; | |
456 | bool fault, write_fault; | |
457 | unsigned long i, npages; | |
458 | uint64_t *pfns; | |
459 | ||
460 | i = (addr - range->start) >> PAGE_SHIFT; | |
461 | npages = (end - addr) >> PAGE_SHIFT; | |
462 | pfns = &range->pfns[i]; | |
463 | hmm_range_need_fault(hmm_vma_walk, pfns, npages, | |
464 | 0, &fault, &write_fault); | |
465 | return hmm_vma_walk_hole_(addr, end, fault, write_fault, walk); | |
466 | } | |
467 | ||
f88a1e90 | 468 | static inline uint64_t pmd_to_hmm_pfn_flags(struct hmm_range *range, pmd_t pmd) |
2aee09d8 JG |
469 | { |
470 | if (pmd_protnone(pmd)) | |
471 | return 0; | |
f88a1e90 JG |
472 | return pmd_write(pmd) ? range->flags[HMM_PFN_VALID] | |
473 | range->flags[HMM_PFN_WRITE] : | |
474 | range->flags[HMM_PFN_VALID]; | |
da4c3c73 JG |
475 | } |
476 | ||
992de9a8 JG |
477 | static inline uint64_t pud_to_hmm_pfn_flags(struct hmm_range *range, pud_t pud) |
478 | { | |
479 | if (!pud_present(pud)) | |
480 | return 0; | |
481 | return pud_write(pud) ? range->flags[HMM_PFN_VALID] | | |
482 | range->flags[HMM_PFN_WRITE] : | |
483 | range->flags[HMM_PFN_VALID]; | |
484 | } | |
485 | ||
53f5c3f4 JG |
486 | static int hmm_vma_handle_pmd(struct mm_walk *walk, |
487 | unsigned long addr, | |
488 | unsigned long end, | |
489 | uint64_t *pfns, | |
490 | pmd_t pmd) | |
491 | { | |
992de9a8 | 492 | #ifdef CONFIG_TRANSPARENT_HUGEPAGE |
53f5c3f4 | 493 | struct hmm_vma_walk *hmm_vma_walk = walk->private; |
f88a1e90 | 494 | struct hmm_range *range = hmm_vma_walk->range; |
2aee09d8 | 495 | unsigned long pfn, npages, i; |
2aee09d8 | 496 | bool fault, write_fault; |
f88a1e90 | 497 | uint64_t cpu_flags; |
53f5c3f4 | 498 | |
2aee09d8 | 499 | npages = (end - addr) >> PAGE_SHIFT; |
f88a1e90 | 500 | cpu_flags = pmd_to_hmm_pfn_flags(range, pmd); |
2aee09d8 JG |
501 | hmm_range_need_fault(hmm_vma_walk, pfns, npages, cpu_flags, |
502 | &fault, &write_fault); | |
53f5c3f4 | 503 | |
2aee09d8 JG |
504 | if (pmd_protnone(pmd) || fault || write_fault) |
505 | return hmm_vma_walk_hole_(addr, end, fault, write_fault, walk); | |
53f5c3f4 JG |
506 | |
507 | pfn = pmd_pfn(pmd) + pte_index(addr); | |
992de9a8 JG |
508 | for (i = 0; addr < end; addr += PAGE_SIZE, i++, pfn++) { |
509 | if (pmd_devmap(pmd)) { | |
510 | hmm_vma_walk->pgmap = get_dev_pagemap(pfn, | |
511 | hmm_vma_walk->pgmap); | |
512 | if (unlikely(!hmm_vma_walk->pgmap)) | |
513 | return -EBUSY; | |
514 | } | |
391aab11 | 515 | pfns[i] = hmm_device_entry_from_pfn(range, pfn) | cpu_flags; |
992de9a8 JG |
516 | } |
517 | if (hmm_vma_walk->pgmap) { | |
518 | put_dev_pagemap(hmm_vma_walk->pgmap); | |
519 | hmm_vma_walk->pgmap = NULL; | |
520 | } | |
53f5c3f4 JG |
521 | hmm_vma_walk->last = end; |
522 | return 0; | |
992de9a8 JG |
523 | #else |
524 | /* If THP is not enabled then we should never reach that code ! */ | |
525 | return -EINVAL; | |
526 | #endif | |
53f5c3f4 JG |
527 | } |
528 | ||
f88a1e90 | 529 | static inline uint64_t pte_to_hmm_pfn_flags(struct hmm_range *range, pte_t pte) |
2aee09d8 | 530 | { |
789c2af8 | 531 | if (pte_none(pte) || !pte_present(pte) || pte_protnone(pte)) |
2aee09d8 | 532 | return 0; |
f88a1e90 JG |
533 | return pte_write(pte) ? range->flags[HMM_PFN_VALID] | |
534 | range->flags[HMM_PFN_WRITE] : | |
535 | range->flags[HMM_PFN_VALID]; | |
2aee09d8 JG |
536 | } |
537 | ||
53f5c3f4 JG |
538 | static int hmm_vma_handle_pte(struct mm_walk *walk, unsigned long addr, |
539 | unsigned long end, pmd_t *pmdp, pte_t *ptep, | |
540 | uint64_t *pfn) | |
541 | { | |
542 | struct hmm_vma_walk *hmm_vma_walk = walk->private; | |
f88a1e90 | 543 | struct hmm_range *range = hmm_vma_walk->range; |
53f5c3f4 | 544 | struct vm_area_struct *vma = walk->vma; |
2aee09d8 JG |
545 | bool fault, write_fault; |
546 | uint64_t cpu_flags; | |
53f5c3f4 | 547 | pte_t pte = *ptep; |
f88a1e90 | 548 | uint64_t orig_pfn = *pfn; |
53f5c3f4 | 549 | |
f88a1e90 | 550 | *pfn = range->values[HMM_PFN_NONE]; |
73231612 | 551 | fault = write_fault = false; |
53f5c3f4 JG |
552 | |
553 | if (pte_none(pte)) { | |
73231612 JG |
554 | hmm_pte_need_fault(hmm_vma_walk, orig_pfn, 0, |
555 | &fault, &write_fault); | |
2aee09d8 | 556 | if (fault || write_fault) |
53f5c3f4 JG |
557 | goto fault; |
558 | return 0; | |
559 | } | |
560 | ||
561 | if (!pte_present(pte)) { | |
562 | swp_entry_t entry = pte_to_swp_entry(pte); | |
563 | ||
564 | if (!non_swap_entry(entry)) { | |
2aee09d8 | 565 | if (fault || write_fault) |
53f5c3f4 JG |
566 | goto fault; |
567 | return 0; | |
568 | } | |
569 | ||
570 | /* | |
571 | * This is a special swap entry, ignore migration, use | |
572 | * device and report anything else as error. | |
573 | */ | |
574 | if (is_device_private_entry(entry)) { | |
f88a1e90 JG |
575 | cpu_flags = range->flags[HMM_PFN_VALID] | |
576 | range->flags[HMM_PFN_DEVICE_PRIVATE]; | |
2aee09d8 | 577 | cpu_flags |= is_write_device_private_entry(entry) ? |
f88a1e90 JG |
578 | range->flags[HMM_PFN_WRITE] : 0; |
579 | hmm_pte_need_fault(hmm_vma_walk, orig_pfn, cpu_flags, | |
580 | &fault, &write_fault); | |
581 | if (fault || write_fault) | |
582 | goto fault; | |
391aab11 JG |
583 | *pfn = hmm_device_entry_from_pfn(range, |
584 | swp_offset(entry)); | |
f88a1e90 | 585 | *pfn |= cpu_flags; |
53f5c3f4 JG |
586 | return 0; |
587 | } | |
588 | ||
589 | if (is_migration_entry(entry)) { | |
2aee09d8 | 590 | if (fault || write_fault) { |
53f5c3f4 JG |
591 | pte_unmap(ptep); |
592 | hmm_vma_walk->last = addr; | |
593 | migration_entry_wait(vma->vm_mm, | |
2aee09d8 | 594 | pmdp, addr); |
73231612 | 595 | return -EBUSY; |
53f5c3f4 JG |
596 | } |
597 | return 0; | |
598 | } | |
599 | ||
600 | /* Report error for everything else */ | |
f88a1e90 | 601 | *pfn = range->values[HMM_PFN_ERROR]; |
53f5c3f4 | 602 | return -EFAULT; |
73231612 JG |
603 | } else { |
604 | cpu_flags = pte_to_hmm_pfn_flags(range, pte); | |
605 | hmm_pte_need_fault(hmm_vma_walk, orig_pfn, cpu_flags, | |
606 | &fault, &write_fault); | |
53f5c3f4 JG |
607 | } |
608 | ||
2aee09d8 | 609 | if (fault || write_fault) |
53f5c3f4 JG |
610 | goto fault; |
611 | ||
992de9a8 JG |
612 | if (pte_devmap(pte)) { |
613 | hmm_vma_walk->pgmap = get_dev_pagemap(pte_pfn(pte), | |
614 | hmm_vma_walk->pgmap); | |
615 | if (unlikely(!hmm_vma_walk->pgmap)) | |
616 | return -EBUSY; | |
617 | } else if (IS_ENABLED(CONFIG_ARCH_HAS_PTE_SPECIAL) && pte_special(pte)) { | |
618 | *pfn = range->values[HMM_PFN_SPECIAL]; | |
619 | return -EFAULT; | |
620 | } | |
621 | ||
391aab11 | 622 | *pfn = hmm_device_entry_from_pfn(range, pte_pfn(pte)) | cpu_flags; |
53f5c3f4 JG |
623 | return 0; |
624 | ||
625 | fault: | |
992de9a8 JG |
626 | if (hmm_vma_walk->pgmap) { |
627 | put_dev_pagemap(hmm_vma_walk->pgmap); | |
628 | hmm_vma_walk->pgmap = NULL; | |
629 | } | |
53f5c3f4 JG |
630 | pte_unmap(ptep); |
631 | /* Fault any virtual address we were asked to fault */ | |
2aee09d8 | 632 | return hmm_vma_walk_hole_(addr, end, fault, write_fault, walk); |
53f5c3f4 JG |
633 | } |
634 | ||
da4c3c73 JG |
635 | static int hmm_vma_walk_pmd(pmd_t *pmdp, |
636 | unsigned long start, | |
637 | unsigned long end, | |
638 | struct mm_walk *walk) | |
639 | { | |
74eee180 JG |
640 | struct hmm_vma_walk *hmm_vma_walk = walk->private; |
641 | struct hmm_range *range = hmm_vma_walk->range; | |
d08faca0 | 642 | struct vm_area_struct *vma = walk->vma; |
ff05c0c6 | 643 | uint64_t *pfns = range->pfns; |
da4c3c73 | 644 | unsigned long addr = start, i; |
da4c3c73 | 645 | pte_t *ptep; |
d08faca0 | 646 | pmd_t pmd; |
da4c3c73 | 647 | |
da4c3c73 JG |
648 | |
649 | again: | |
d08faca0 JG |
650 | pmd = READ_ONCE(*pmdp); |
651 | if (pmd_none(pmd)) | |
da4c3c73 JG |
652 | return hmm_vma_walk_hole(start, end, walk); |
653 | ||
d08faca0 | 654 | if (pmd_huge(pmd) && (range->vma->vm_flags & VM_HUGETLB)) |
da4c3c73 JG |
655 | return hmm_pfns_bad(start, end, walk); |
656 | ||
d08faca0 JG |
657 | if (thp_migration_supported() && is_pmd_migration_entry(pmd)) { |
658 | bool fault, write_fault; | |
659 | unsigned long npages; | |
660 | uint64_t *pfns; | |
661 | ||
662 | i = (addr - range->start) >> PAGE_SHIFT; | |
663 | npages = (end - addr) >> PAGE_SHIFT; | |
664 | pfns = &range->pfns[i]; | |
665 | ||
666 | hmm_range_need_fault(hmm_vma_walk, pfns, npages, | |
667 | 0, &fault, &write_fault); | |
668 | if (fault || write_fault) { | |
669 | hmm_vma_walk->last = addr; | |
670 | pmd_migration_entry_wait(vma->vm_mm, pmdp); | |
73231612 | 671 | return -EBUSY; |
d08faca0 JG |
672 | } |
673 | return 0; | |
674 | } else if (!pmd_present(pmd)) | |
675 | return hmm_pfns_bad(start, end, walk); | |
da4c3c73 | 676 | |
d08faca0 | 677 | if (pmd_devmap(pmd) || pmd_trans_huge(pmd)) { |
da4c3c73 JG |
678 | /* |
679 | * No need to take pmd_lock here, even if some other threads | |
680 | * is splitting the huge pmd we will get that event through | |
681 | * mmu_notifier callback. | |
682 | * | |
683 | * So just read pmd value and check again its a transparent | |
684 | * huge or device mapping one and compute corresponding pfn | |
685 | * values. | |
686 | */ | |
687 | pmd = pmd_read_atomic(pmdp); | |
688 | barrier(); | |
689 | if (!pmd_devmap(pmd) && !pmd_trans_huge(pmd)) | |
690 | goto again; | |
74eee180 | 691 | |
d08faca0 | 692 | i = (addr - range->start) >> PAGE_SHIFT; |
53f5c3f4 | 693 | return hmm_vma_handle_pmd(walk, addr, end, &pfns[i], pmd); |
da4c3c73 JG |
694 | } |
695 | ||
d08faca0 JG |
696 | /* |
697 | * We have handled all the valid case above ie either none, migration, | |
698 | * huge or transparent huge. At this point either it is a valid pmd | |
699 | * entry pointing to pte directory or it is a bad pmd that will not | |
700 | * recover. | |
701 | */ | |
702 | if (pmd_bad(pmd)) | |
da4c3c73 JG |
703 | return hmm_pfns_bad(start, end, walk); |
704 | ||
705 | ptep = pte_offset_map(pmdp, addr); | |
d08faca0 | 706 | i = (addr - range->start) >> PAGE_SHIFT; |
da4c3c73 | 707 | for (; addr < end; addr += PAGE_SIZE, ptep++, i++) { |
53f5c3f4 | 708 | int r; |
74eee180 | 709 | |
53f5c3f4 JG |
710 | r = hmm_vma_handle_pte(walk, addr, end, pmdp, ptep, &pfns[i]); |
711 | if (r) { | |
712 | /* hmm_vma_handle_pte() did unmap pte directory */ | |
713 | hmm_vma_walk->last = addr; | |
714 | return r; | |
74eee180 | 715 | } |
da4c3c73 | 716 | } |
992de9a8 JG |
717 | if (hmm_vma_walk->pgmap) { |
718 | /* | |
719 | * We do put_dev_pagemap() here and not in hmm_vma_handle_pte() | |
720 | * so that we can leverage get_dev_pagemap() optimization which | |
721 | * will not re-take a reference on a pgmap if we already have | |
722 | * one. | |
723 | */ | |
724 | put_dev_pagemap(hmm_vma_walk->pgmap); | |
725 | hmm_vma_walk->pgmap = NULL; | |
726 | } | |
da4c3c73 JG |
727 | pte_unmap(ptep - 1); |
728 | ||
53f5c3f4 | 729 | hmm_vma_walk->last = addr; |
da4c3c73 JG |
730 | return 0; |
731 | } | |
732 | ||
992de9a8 JG |
733 | static int hmm_vma_walk_pud(pud_t *pudp, |
734 | unsigned long start, | |
735 | unsigned long end, | |
736 | struct mm_walk *walk) | |
737 | { | |
738 | struct hmm_vma_walk *hmm_vma_walk = walk->private; | |
739 | struct hmm_range *range = hmm_vma_walk->range; | |
740 | unsigned long addr = start, next; | |
741 | pmd_t *pmdp; | |
742 | pud_t pud; | |
743 | int ret; | |
744 | ||
745 | again: | |
746 | pud = READ_ONCE(*pudp); | |
747 | if (pud_none(pud)) | |
748 | return hmm_vma_walk_hole(start, end, walk); | |
749 | ||
750 | if (pud_huge(pud) && pud_devmap(pud)) { | |
751 | unsigned long i, npages, pfn; | |
752 | uint64_t *pfns, cpu_flags; | |
753 | bool fault, write_fault; | |
754 | ||
755 | if (!pud_present(pud)) | |
756 | return hmm_vma_walk_hole(start, end, walk); | |
757 | ||
758 | i = (addr - range->start) >> PAGE_SHIFT; | |
759 | npages = (end - addr) >> PAGE_SHIFT; | |
760 | pfns = &range->pfns[i]; | |
761 | ||
762 | cpu_flags = pud_to_hmm_pfn_flags(range, pud); | |
763 | hmm_range_need_fault(hmm_vma_walk, pfns, npages, | |
764 | cpu_flags, &fault, &write_fault); | |
765 | if (fault || write_fault) | |
766 | return hmm_vma_walk_hole_(addr, end, fault, | |
767 | write_fault, walk); | |
768 | ||
992de9a8 JG |
769 | pfn = pud_pfn(pud) + ((addr & ~PUD_MASK) >> PAGE_SHIFT); |
770 | for (i = 0; i < npages; ++i, ++pfn) { | |
771 | hmm_vma_walk->pgmap = get_dev_pagemap(pfn, | |
772 | hmm_vma_walk->pgmap); | |
773 | if (unlikely(!hmm_vma_walk->pgmap)) | |
774 | return -EBUSY; | |
391aab11 JG |
775 | pfns[i] = hmm_device_entry_from_pfn(range, pfn) | |
776 | cpu_flags; | |
992de9a8 JG |
777 | } |
778 | if (hmm_vma_walk->pgmap) { | |
779 | put_dev_pagemap(hmm_vma_walk->pgmap); | |
780 | hmm_vma_walk->pgmap = NULL; | |
781 | } | |
782 | hmm_vma_walk->last = end; | |
783 | return 0; | |
992de9a8 JG |
784 | } |
785 | ||
786 | split_huge_pud(walk->vma, pudp, addr); | |
787 | if (pud_none(*pudp)) | |
788 | goto again; | |
789 | ||
790 | pmdp = pmd_offset(pudp, addr); | |
791 | do { | |
792 | next = pmd_addr_end(addr, end); | |
793 | ret = hmm_vma_walk_pmd(pmdp, addr, next, walk); | |
794 | if (ret) | |
795 | return ret; | |
796 | } while (pmdp++, addr = next, addr != end); | |
797 | ||
798 | return 0; | |
799 | } | |
800 | ||
63d5066f JG |
801 | static int hmm_vma_walk_hugetlb_entry(pte_t *pte, unsigned long hmask, |
802 | unsigned long start, unsigned long end, | |
803 | struct mm_walk *walk) | |
804 | { | |
805 | #ifdef CONFIG_HUGETLB_PAGE | |
806 | unsigned long addr = start, i, pfn, mask, size, pfn_inc; | |
807 | struct hmm_vma_walk *hmm_vma_walk = walk->private; | |
808 | struct hmm_range *range = hmm_vma_walk->range; | |
809 | struct vm_area_struct *vma = walk->vma; | |
810 | struct hstate *h = hstate_vma(vma); | |
811 | uint64_t orig_pfn, cpu_flags; | |
812 | bool fault, write_fault; | |
813 | spinlock_t *ptl; | |
814 | pte_t entry; | |
815 | int ret = 0; | |
816 | ||
817 | size = 1UL << huge_page_shift(h); | |
818 | mask = size - 1; | |
819 | if (range->page_shift != PAGE_SHIFT) { | |
820 | /* Make sure we are looking at full page. */ | |
821 | if (start & mask) | |
822 | return -EINVAL; | |
823 | if (end < (start + size)) | |
824 | return -EINVAL; | |
825 | pfn_inc = size >> PAGE_SHIFT; | |
826 | } else { | |
827 | pfn_inc = 1; | |
828 | size = PAGE_SIZE; | |
829 | } | |
830 | ||
831 | ||
832 | ptl = huge_pte_lock(hstate_vma(walk->vma), walk->mm, pte); | |
833 | entry = huge_ptep_get(pte); | |
834 | ||
835 | i = (start - range->start) >> range->page_shift; | |
836 | orig_pfn = range->pfns[i]; | |
837 | range->pfns[i] = range->values[HMM_PFN_NONE]; | |
838 | cpu_flags = pte_to_hmm_pfn_flags(range, entry); | |
839 | fault = write_fault = false; | |
840 | hmm_pte_need_fault(hmm_vma_walk, orig_pfn, cpu_flags, | |
841 | &fault, &write_fault); | |
842 | if (fault || write_fault) { | |
843 | ret = -ENOENT; | |
844 | goto unlock; | |
845 | } | |
846 | ||
847 | pfn = pte_pfn(entry) + ((start & mask) >> range->page_shift); | |
848 | for (; addr < end; addr += size, i++, pfn += pfn_inc) | |
391aab11 JG |
849 | range->pfns[i] = hmm_device_entry_from_pfn(range, pfn) | |
850 | cpu_flags; | |
63d5066f JG |
851 | hmm_vma_walk->last = end; |
852 | ||
853 | unlock: | |
854 | spin_unlock(ptl); | |
855 | ||
856 | if (ret == -ENOENT) | |
857 | return hmm_vma_walk_hole_(addr, end, fault, write_fault, walk); | |
858 | ||
859 | return ret; | |
860 | #else /* CONFIG_HUGETLB_PAGE */ | |
861 | return -EINVAL; | |
862 | #endif | |
863 | } | |
864 | ||
f88a1e90 JG |
865 | static void hmm_pfns_clear(struct hmm_range *range, |
866 | uint64_t *pfns, | |
33cd47dc JG |
867 | unsigned long addr, |
868 | unsigned long end) | |
869 | { | |
870 | for (; addr < end; addr += PAGE_SIZE, pfns++) | |
f88a1e90 | 871 | *pfns = range->values[HMM_PFN_NONE]; |
33cd47dc JG |
872 | } |
873 | ||
da4c3c73 | 874 | /* |
a3e0d41c | 875 | * hmm_range_register() - start tracking change to CPU page table over a range |
25f23a0c | 876 | * @range: range |
a3e0d41c JG |
877 | * @mm: the mm struct for the range of virtual address |
878 | * @start: start virtual address (inclusive) | |
879 | * @end: end virtual address (exclusive) | |
63d5066f | 880 | * @page_shift: expect page shift for the range |
a3e0d41c | 881 | * Returns 0 on success, -EFAULT if the address space is no longer valid |
25f23a0c | 882 | * |
a3e0d41c | 883 | * Track updates to the CPU page table see include/linux/hmm.h |
da4c3c73 | 884 | */ |
a3e0d41c | 885 | int hmm_range_register(struct hmm_range *range, |
e36acfe6 | 886 | struct hmm_mirror *mirror, |
a3e0d41c | 887 | unsigned long start, |
63d5066f JG |
888 | unsigned long end, |
889 | unsigned page_shift) | |
da4c3c73 | 890 | { |
63d5066f | 891 | unsigned long mask = ((1UL << page_shift) - 1UL); |
e36acfe6 | 892 | struct hmm *hmm = mirror->hmm; |
63d5066f | 893 | |
a3e0d41c | 894 | range->valid = false; |
704f3f2c JG |
895 | range->hmm = NULL; |
896 | ||
63d5066f JG |
897 | if ((start & mask) || (end & mask)) |
898 | return -EINVAL; | |
899 | if (start >= end) | |
da4c3c73 JG |
900 | return -EINVAL; |
901 | ||
63d5066f | 902 | range->page_shift = page_shift; |
a3e0d41c JG |
903 | range->start = start; |
904 | range->end = end; | |
905 | ||
704f3f2c | 906 | /* Check if hmm_mm_destroy() was call. */ |
e36acfe6 | 907 | if (hmm->mm == NULL || hmm->dead) |
a3e0d41c | 908 | return -EFAULT; |
da4c3c73 | 909 | |
085ea250 RC |
910 | /* Initialize range to track CPU page table updates. */ |
911 | mutex_lock(&hmm->lock); | |
855ce7d2 | 912 | |
085ea250 | 913 | range->hmm = hmm; |
e36acfe6 | 914 | kref_get(&hmm->kref); |
085ea250 | 915 | list_add_rcu(&range->list, &hmm->ranges); |
86586a41 | 916 | |
704f3f2c | 917 | /* |
a3e0d41c JG |
918 | * If there are any concurrent notifiers we have to wait for them for |
919 | * the range to be valid (see hmm_range_wait_until_valid()). | |
704f3f2c | 920 | */ |
085ea250 | 921 | if (!hmm->notifiers) |
a3e0d41c | 922 | range->valid = true; |
085ea250 | 923 | mutex_unlock(&hmm->lock); |
a3e0d41c JG |
924 | |
925 | return 0; | |
da4c3c73 | 926 | } |
a3e0d41c | 927 | EXPORT_SYMBOL(hmm_range_register); |
da4c3c73 JG |
928 | |
929 | /* | |
a3e0d41c JG |
930 | * hmm_range_unregister() - stop tracking change to CPU page table over a range |
931 | * @range: range | |
da4c3c73 JG |
932 | * |
933 | * Range struct is used to track updates to the CPU page table after a call to | |
a3e0d41c | 934 | * hmm_range_register(). See include/linux/hmm.h for how to use it. |
da4c3c73 | 935 | */ |
a3e0d41c | 936 | void hmm_range_unregister(struct hmm_range *range) |
da4c3c73 | 937 | { |
085ea250 RC |
938 | struct hmm *hmm = range->hmm; |
939 | ||
704f3f2c | 940 | /* Sanity check this really should not happen. */ |
085ea250 | 941 | if (hmm == NULL || range->end <= range->start) |
a3e0d41c | 942 | return; |
da4c3c73 | 943 | |
085ea250 | 944 | mutex_lock(&hmm->lock); |
da4c3c73 | 945 | list_del_rcu(&range->list); |
085ea250 | 946 | mutex_unlock(&hmm->lock); |
da4c3c73 | 947 | |
a3e0d41c JG |
948 | /* Drop reference taken by hmm_range_register() */ |
949 | range->valid = false; | |
085ea250 | 950 | hmm_put(hmm); |
704f3f2c | 951 | range->hmm = NULL; |
da4c3c73 | 952 | } |
a3e0d41c JG |
953 | EXPORT_SYMBOL(hmm_range_unregister); |
954 | ||
955 | /* | |
956 | * hmm_range_snapshot() - snapshot CPU page table for a range | |
957 | * @range: range | |
085ea250 | 958 | * Return: -EINVAL if invalid argument, -ENOMEM out of memory, -EPERM invalid |
a3e0d41c JG |
959 | * permission (for instance asking for write and range is read only), |
960 | * -EAGAIN if you need to retry, -EFAULT invalid (ie either no valid | |
961 | * vma or it is illegal to access that range), number of valid pages | |
962 | * in range->pfns[] (from range start address). | |
963 | * | |
964 | * This snapshots the CPU page table for a range of virtual addresses. Snapshot | |
965 | * validity is tracked by range struct. See in include/linux/hmm.h for example | |
966 | * on how to use. | |
967 | */ | |
968 | long hmm_range_snapshot(struct hmm_range *range) | |
969 | { | |
63d5066f | 970 | const unsigned long device_vma = VM_IO | VM_PFNMAP | VM_MIXEDMAP; |
a3e0d41c JG |
971 | unsigned long start = range->start, end; |
972 | struct hmm_vma_walk hmm_vma_walk; | |
973 | struct hmm *hmm = range->hmm; | |
974 | struct vm_area_struct *vma; | |
975 | struct mm_walk mm_walk; | |
976 | ||
977 | /* Check if hmm_mm_destroy() was call. */ | |
978 | if (hmm->mm == NULL || hmm->dead) | |
979 | return -EFAULT; | |
980 | ||
981 | do { | |
982 | /* If range is no longer valid force retry. */ | |
983 | if (!range->valid) | |
984 | return -EAGAIN; | |
985 | ||
986 | vma = find_vma(hmm->mm, start); | |
63d5066f | 987 | if (vma == NULL || (vma->vm_flags & device_vma)) |
a3e0d41c JG |
988 | return -EFAULT; |
989 | ||
63d5066f | 990 | if (is_vm_hugetlb_page(vma)) { |
1c2308f0 JG |
991 | if (huge_page_shift(hstate_vma(vma)) != |
992 | range->page_shift && | |
63d5066f JG |
993 | range->page_shift != PAGE_SHIFT) |
994 | return -EINVAL; | |
995 | } else { | |
996 | if (range->page_shift != PAGE_SHIFT) | |
997 | return -EINVAL; | |
998 | } | |
999 | ||
a3e0d41c JG |
1000 | if (!(vma->vm_flags & VM_READ)) { |
1001 | /* | |
1002 | * If vma do not allow read access, then assume that it | |
1003 | * does not allow write access, either. HMM does not | |
1004 | * support architecture that allow write without read. | |
1005 | */ | |
1006 | hmm_pfns_clear(range, range->pfns, | |
1007 | range->start, range->end); | |
1008 | return -EPERM; | |
1009 | } | |
1010 | ||
1011 | range->vma = vma; | |
992de9a8 | 1012 | hmm_vma_walk.pgmap = NULL; |
a3e0d41c JG |
1013 | hmm_vma_walk.last = start; |
1014 | hmm_vma_walk.fault = false; | |
1015 | hmm_vma_walk.range = range; | |
1016 | mm_walk.private = &hmm_vma_walk; | |
1017 | end = min(range->end, vma->vm_end); | |
1018 | ||
1019 | mm_walk.vma = vma; | |
1020 | mm_walk.mm = vma->vm_mm; | |
1021 | mm_walk.pte_entry = NULL; | |
1022 | mm_walk.test_walk = NULL; | |
1023 | mm_walk.hugetlb_entry = NULL; | |
992de9a8 | 1024 | mm_walk.pud_entry = hmm_vma_walk_pud; |
a3e0d41c JG |
1025 | mm_walk.pmd_entry = hmm_vma_walk_pmd; |
1026 | mm_walk.pte_hole = hmm_vma_walk_hole; | |
63d5066f | 1027 | mm_walk.hugetlb_entry = hmm_vma_walk_hugetlb_entry; |
a3e0d41c JG |
1028 | |
1029 | walk_page_range(start, end, &mm_walk); | |
1030 | start = end; | |
1031 | } while (start < range->end); | |
1032 | ||
1033 | return (hmm_vma_walk.last - range->start) >> PAGE_SHIFT; | |
1034 | } | |
1035 | EXPORT_SYMBOL(hmm_range_snapshot); | |
74eee180 JG |
1036 | |
1037 | /* | |
73231612 | 1038 | * hmm_range_fault() - try to fault some address in a virtual address range |
08232a45 | 1039 | * @range: range being faulted |
74eee180 | 1040 | * @block: allow blocking on fault (if true it sleeps and do not drop mmap_sem) |
085ea250 | 1041 | * Return: number of valid pages in range->pfns[] (from range start |
73231612 JG |
1042 | * address). This may be zero. If the return value is negative, |
1043 | * then one of the following values may be returned: | |
1044 | * | |
1045 | * -EINVAL invalid arguments or mm or virtual address are in an | |
63d5066f | 1046 | * invalid vma (for instance device file vma). |
73231612 JG |
1047 | * -ENOMEM: Out of memory. |
1048 | * -EPERM: Invalid permission (for instance asking for write and | |
1049 | * range is read only). | |
1050 | * -EAGAIN: If you need to retry and mmap_sem was drop. This can only | |
1051 | * happens if block argument is false. | |
1052 | * -EBUSY: If the the range is being invalidated and you should wait | |
1053 | * for invalidation to finish. | |
1054 | * -EFAULT: Invalid (ie either no valid vma or it is illegal to access | |
1055 | * that range), number of valid pages in range->pfns[] (from | |
1056 | * range start address). | |
74eee180 JG |
1057 | * |
1058 | * This is similar to a regular CPU page fault except that it will not trigger | |
73231612 JG |
1059 | * any memory migration if the memory being faulted is not accessible by CPUs |
1060 | * and caller does not ask for migration. | |
74eee180 | 1061 | * |
ff05c0c6 JG |
1062 | * On error, for one virtual address in the range, the function will mark the |
1063 | * corresponding HMM pfn entry with an error flag. | |
74eee180 | 1064 | */ |
73231612 | 1065 | long hmm_range_fault(struct hmm_range *range, bool block) |
74eee180 | 1066 | { |
63d5066f | 1067 | const unsigned long device_vma = VM_IO | VM_PFNMAP | VM_MIXEDMAP; |
a3e0d41c | 1068 | unsigned long start = range->start, end; |
74eee180 | 1069 | struct hmm_vma_walk hmm_vma_walk; |
a3e0d41c JG |
1070 | struct hmm *hmm = range->hmm; |
1071 | struct vm_area_struct *vma; | |
74eee180 | 1072 | struct mm_walk mm_walk; |
74eee180 JG |
1073 | int ret; |
1074 | ||
a3e0d41c JG |
1075 | /* Check if hmm_mm_destroy() was call. */ |
1076 | if (hmm->mm == NULL || hmm->dead) | |
1077 | return -EFAULT; | |
704f3f2c | 1078 | |
a3e0d41c JG |
1079 | do { |
1080 | /* If range is no longer valid force retry. */ | |
1081 | if (!range->valid) { | |
1082 | up_read(&hmm->mm->mmap_sem); | |
1083 | return -EAGAIN; | |
1084 | } | |
74eee180 | 1085 | |
a3e0d41c | 1086 | vma = find_vma(hmm->mm, start); |
63d5066f | 1087 | if (vma == NULL || (vma->vm_flags & device_vma)) |
a3e0d41c | 1088 | return -EFAULT; |
704f3f2c | 1089 | |
63d5066f JG |
1090 | if (is_vm_hugetlb_page(vma)) { |
1091 | if (huge_page_shift(hstate_vma(vma)) != | |
1092 | range->page_shift && | |
1093 | range->page_shift != PAGE_SHIFT) | |
1094 | return -EINVAL; | |
1095 | } else { | |
1096 | if (range->page_shift != PAGE_SHIFT) | |
1097 | return -EINVAL; | |
1098 | } | |
1099 | ||
a3e0d41c JG |
1100 | if (!(vma->vm_flags & VM_READ)) { |
1101 | /* | |
1102 | * If vma do not allow read access, then assume that it | |
1103 | * does not allow write access, either. HMM does not | |
1104 | * support architecture that allow write without read. | |
1105 | */ | |
1106 | hmm_pfns_clear(range, range->pfns, | |
1107 | range->start, range->end); | |
1108 | return -EPERM; | |
1109 | } | |
74eee180 | 1110 | |
a3e0d41c | 1111 | range->vma = vma; |
992de9a8 | 1112 | hmm_vma_walk.pgmap = NULL; |
a3e0d41c JG |
1113 | hmm_vma_walk.last = start; |
1114 | hmm_vma_walk.fault = true; | |
1115 | hmm_vma_walk.block = block; | |
1116 | hmm_vma_walk.range = range; | |
1117 | mm_walk.private = &hmm_vma_walk; | |
1118 | end = min(range->end, vma->vm_end); | |
1119 | ||
1120 | mm_walk.vma = vma; | |
1121 | mm_walk.mm = vma->vm_mm; | |
1122 | mm_walk.pte_entry = NULL; | |
1123 | mm_walk.test_walk = NULL; | |
1124 | mm_walk.hugetlb_entry = NULL; | |
992de9a8 | 1125 | mm_walk.pud_entry = hmm_vma_walk_pud; |
a3e0d41c JG |
1126 | mm_walk.pmd_entry = hmm_vma_walk_pmd; |
1127 | mm_walk.pte_hole = hmm_vma_walk_hole; | |
63d5066f | 1128 | mm_walk.hugetlb_entry = hmm_vma_walk_hugetlb_entry; |
a3e0d41c JG |
1129 | |
1130 | do { | |
1131 | ret = walk_page_range(start, end, &mm_walk); | |
1132 | start = hmm_vma_walk.last; | |
1133 | ||
1134 | /* Keep trying while the range is valid. */ | |
1135 | } while (ret == -EBUSY && range->valid); | |
1136 | ||
1137 | if (ret) { | |
1138 | unsigned long i; | |
1139 | ||
1140 | i = (hmm_vma_walk.last - range->start) >> PAGE_SHIFT; | |
1141 | hmm_pfns_clear(range, &range->pfns[i], | |
1142 | hmm_vma_walk.last, range->end); | |
1143 | return ret; | |
1144 | } | |
1145 | start = end; | |
74eee180 | 1146 | |
a3e0d41c | 1147 | } while (start < range->end); |
704f3f2c | 1148 | |
73231612 | 1149 | return (hmm_vma_walk.last - range->start) >> PAGE_SHIFT; |
74eee180 | 1150 | } |
73231612 | 1151 | EXPORT_SYMBOL(hmm_range_fault); |
55c0ece8 JG |
1152 | |
1153 | /** | |
1154 | * hmm_range_dma_map() - hmm_range_fault() and dma map page all in one. | |
1155 | * @range: range being faulted | |
1156 | * @device: device against to dma map page to | |
1157 | * @daddrs: dma address of mapped pages | |
1158 | * @block: allow blocking on fault (if true it sleeps and do not drop mmap_sem) | |
085ea250 | 1159 | * Return: number of pages mapped on success, -EAGAIN if mmap_sem have been |
55c0ece8 JG |
1160 | * drop and you need to try again, some other error value otherwise |
1161 | * | |
1162 | * Note same usage pattern as hmm_range_fault(). | |
1163 | */ | |
1164 | long hmm_range_dma_map(struct hmm_range *range, | |
1165 | struct device *device, | |
1166 | dma_addr_t *daddrs, | |
1167 | bool block) | |
1168 | { | |
1169 | unsigned long i, npages, mapped; | |
1170 | long ret; | |
1171 | ||
1172 | ret = hmm_range_fault(range, block); | |
1173 | if (ret <= 0) | |
1174 | return ret ? ret : -EBUSY; | |
1175 | ||
1176 | npages = (range->end - range->start) >> PAGE_SHIFT; | |
1177 | for (i = 0, mapped = 0; i < npages; ++i) { | |
1178 | enum dma_data_direction dir = DMA_TO_DEVICE; | |
1179 | struct page *page; | |
1180 | ||
1181 | /* | |
1182 | * FIXME need to update DMA API to provide invalid DMA address | |
1183 | * value instead of a function to test dma address value. This | |
1184 | * would remove lot of dumb code duplicated accross many arch. | |
1185 | * | |
1186 | * For now setting it to 0 here is good enough as the pfns[] | |
1187 | * value is what is use to check what is valid and what isn't. | |
1188 | */ | |
1189 | daddrs[i] = 0; | |
1190 | ||
391aab11 | 1191 | page = hmm_device_entry_to_page(range, range->pfns[i]); |
55c0ece8 JG |
1192 | if (page == NULL) |
1193 | continue; | |
1194 | ||
1195 | /* Check if range is being invalidated */ | |
1196 | if (!range->valid) { | |
1197 | ret = -EBUSY; | |
1198 | goto unmap; | |
1199 | } | |
1200 | ||
1201 | /* If it is read and write than map bi-directional. */ | |
1202 | if (range->pfns[i] & range->flags[HMM_PFN_WRITE]) | |
1203 | dir = DMA_BIDIRECTIONAL; | |
1204 | ||
1205 | daddrs[i] = dma_map_page(device, page, 0, PAGE_SIZE, dir); | |
1206 | if (dma_mapping_error(device, daddrs[i])) { | |
1207 | ret = -EFAULT; | |
1208 | goto unmap; | |
1209 | } | |
1210 | ||
1211 | mapped++; | |
1212 | } | |
1213 | ||
1214 | return mapped; | |
1215 | ||
1216 | unmap: | |
1217 | for (npages = i, i = 0; (i < npages) && mapped; ++i) { | |
1218 | enum dma_data_direction dir = DMA_TO_DEVICE; | |
1219 | struct page *page; | |
1220 | ||
391aab11 | 1221 | page = hmm_device_entry_to_page(range, range->pfns[i]); |
55c0ece8 JG |
1222 | if (page == NULL) |
1223 | continue; | |
1224 | ||
1225 | if (dma_mapping_error(device, daddrs[i])) | |
1226 | continue; | |
1227 | ||
1228 | /* If it is read and write than map bi-directional. */ | |
1229 | if (range->pfns[i] & range->flags[HMM_PFN_WRITE]) | |
1230 | dir = DMA_BIDIRECTIONAL; | |
1231 | ||
1232 | dma_unmap_page(device, daddrs[i], PAGE_SIZE, dir); | |
1233 | mapped--; | |
1234 | } | |
1235 | ||
1236 | return ret; | |
1237 | } | |
1238 | EXPORT_SYMBOL(hmm_range_dma_map); | |
1239 | ||
1240 | /** | |
1241 | * hmm_range_dma_unmap() - unmap range of that was map with hmm_range_dma_map() | |
1242 | * @range: range being unmapped | |
1243 | * @vma: the vma against which the range (optional) | |
1244 | * @device: device against which dma map was done | |
1245 | * @daddrs: dma address of mapped pages | |
1246 | * @dirty: dirty page if it had the write flag set | |
085ea250 | 1247 | * Return: number of page unmapped on success, -EINVAL otherwise |
55c0ece8 JG |
1248 | * |
1249 | * Note that caller MUST abide by mmu notifier or use HMM mirror and abide | |
1250 | * to the sync_cpu_device_pagetables() callback so that it is safe here to | |
1251 | * call set_page_dirty(). Caller must also take appropriate locks to avoid | |
1252 | * concurrent mmu notifier or sync_cpu_device_pagetables() to make progress. | |
1253 | */ | |
1254 | long hmm_range_dma_unmap(struct hmm_range *range, | |
1255 | struct vm_area_struct *vma, | |
1256 | struct device *device, | |
1257 | dma_addr_t *daddrs, | |
1258 | bool dirty) | |
1259 | { | |
1260 | unsigned long i, npages; | |
1261 | long cpages = 0; | |
1262 | ||
1263 | /* Sanity check. */ | |
1264 | if (range->end <= range->start) | |
1265 | return -EINVAL; | |
1266 | if (!daddrs) | |
1267 | return -EINVAL; | |
1268 | if (!range->pfns) | |
1269 | return -EINVAL; | |
1270 | ||
1271 | npages = (range->end - range->start) >> PAGE_SHIFT; | |
1272 | for (i = 0; i < npages; ++i) { | |
1273 | enum dma_data_direction dir = DMA_TO_DEVICE; | |
1274 | struct page *page; | |
1275 | ||
391aab11 | 1276 | page = hmm_device_entry_to_page(range, range->pfns[i]); |
55c0ece8 JG |
1277 | if (page == NULL) |
1278 | continue; | |
1279 | ||
1280 | /* If it is read and write than map bi-directional. */ | |
1281 | if (range->pfns[i] & range->flags[HMM_PFN_WRITE]) { | |
1282 | dir = DMA_BIDIRECTIONAL; | |
1283 | ||
1284 | /* | |
1285 | * See comments in function description on why it is | |
1286 | * safe here to call set_page_dirty() | |
1287 | */ | |
1288 | if (dirty) | |
1289 | set_page_dirty(page); | |
1290 | } | |
1291 | ||
1292 | /* Unmap and clear pfns/dma address */ | |
1293 | dma_unmap_page(device, daddrs[i], PAGE_SIZE, dir); | |
1294 | range->pfns[i] = range->values[HMM_PFN_NONE]; | |
1295 | /* FIXME see comments in hmm_vma_dma_map() */ | |
1296 | daddrs[i] = 0; | |
1297 | cpages++; | |
1298 | } | |
1299 | ||
1300 | return cpages; | |
1301 | } | |
1302 | EXPORT_SYMBOL(hmm_range_dma_unmap); | |
c0b12405 | 1303 | #endif /* IS_ENABLED(CONFIG_HMM_MIRROR) */ |
4ef589dc JG |
1304 | |
1305 | ||
df6ad698 | 1306 | #if IS_ENABLED(CONFIG_DEVICE_PRIVATE) || IS_ENABLED(CONFIG_DEVICE_PUBLIC) |
4ef589dc JG |
1307 | struct page *hmm_vma_alloc_locked_page(struct vm_area_struct *vma, |
1308 | unsigned long addr) | |
1309 | { | |
1310 | struct page *page; | |
1311 | ||
1312 | page = alloc_page_vma(GFP_HIGHUSER, vma, addr); | |
1313 | if (!page) | |
1314 | return NULL; | |
1315 | lock_page(page); | |
1316 | return page; | |
1317 | } | |
1318 | EXPORT_SYMBOL(hmm_vma_alloc_locked_page); | |
1319 | ||
1320 | ||
1321 | static void hmm_devmem_ref_release(struct percpu_ref *ref) | |
1322 | { | |
1323 | struct hmm_devmem *devmem; | |
1324 | ||
1325 | devmem = container_of(ref, struct hmm_devmem, ref); | |
1326 | complete(&devmem->completion); | |
1327 | } | |
1328 | ||
1329 | static void hmm_devmem_ref_exit(void *data) | |
1330 | { | |
1331 | struct percpu_ref *ref = data; | |
1332 | struct hmm_devmem *devmem; | |
1333 | ||
1334 | devmem = container_of(ref, struct hmm_devmem, ref); | |
bbecd94e | 1335 | wait_for_completion(&devmem->completion); |
4ef589dc | 1336 | percpu_ref_exit(ref); |
4ef589dc JG |
1337 | } |
1338 | ||
bbecd94e | 1339 | static void hmm_devmem_ref_kill(struct percpu_ref *ref) |
4ef589dc | 1340 | { |
4ef589dc | 1341 | percpu_ref_kill(ref); |
4ef589dc JG |
1342 | } |
1343 | ||
b57e622e | 1344 | static vm_fault_t hmm_devmem_fault(struct vm_area_struct *vma, |
4ef589dc JG |
1345 | unsigned long addr, |
1346 | const struct page *page, | |
1347 | unsigned int flags, | |
1348 | pmd_t *pmdp) | |
1349 | { | |
1350 | struct hmm_devmem *devmem = page->pgmap->data; | |
1351 | ||
1352 | return devmem->ops->fault(devmem, vma, addr, page, flags, pmdp); | |
1353 | } | |
1354 | ||
1355 | static void hmm_devmem_free(struct page *page, void *data) | |
1356 | { | |
1357 | struct hmm_devmem *devmem = data; | |
1358 | ||
2fa147bd DW |
1359 | page->mapping = NULL; |
1360 | ||
4ef589dc JG |
1361 | devmem->ops->free(devmem, page); |
1362 | } | |
1363 | ||
4ef589dc JG |
1364 | /* |
1365 | * hmm_devmem_add() - hotplug ZONE_DEVICE memory for device memory | |
1366 | * | |
1367 | * @ops: memory event device driver callback (see struct hmm_devmem_ops) | |
1368 | * @device: device struct to bind the resource too | |
1369 | * @size: size in bytes of the device memory to add | |
085ea250 | 1370 | * Return: pointer to new hmm_devmem struct ERR_PTR otherwise |
4ef589dc JG |
1371 | * |
1372 | * This function first finds an empty range of physical address big enough to | |
1373 | * contain the new resource, and then hotplugs it as ZONE_DEVICE memory, which | |
1374 | * in turn allocates struct pages. It does not do anything beyond that; all | |
1375 | * events affecting the memory will go through the various callbacks provided | |
1376 | * by hmm_devmem_ops struct. | |
1377 | * | |
1378 | * Device driver should call this function during device initialization and | |
1379 | * is then responsible of memory management. HMM only provides helpers. | |
1380 | */ | |
1381 | struct hmm_devmem *hmm_devmem_add(const struct hmm_devmem_ops *ops, | |
1382 | struct device *device, | |
1383 | unsigned long size) | |
1384 | { | |
1385 | struct hmm_devmem *devmem; | |
1386 | resource_size_t addr; | |
bbecd94e | 1387 | void *result; |
4ef589dc JG |
1388 | int ret; |
1389 | ||
e7638488 | 1390 | dev_pagemap_get_ops(); |
4ef589dc | 1391 | |
58ef15b7 | 1392 | devmem = devm_kzalloc(device, sizeof(*devmem), GFP_KERNEL); |
4ef589dc JG |
1393 | if (!devmem) |
1394 | return ERR_PTR(-ENOMEM); | |
1395 | ||
1396 | init_completion(&devmem->completion); | |
1397 | devmem->pfn_first = -1UL; | |
1398 | devmem->pfn_last = -1UL; | |
1399 | devmem->resource = NULL; | |
1400 | devmem->device = device; | |
1401 | devmem->ops = ops; | |
1402 | ||
1403 | ret = percpu_ref_init(&devmem->ref, &hmm_devmem_ref_release, | |
1404 | 0, GFP_KERNEL); | |
1405 | if (ret) | |
58ef15b7 | 1406 | return ERR_PTR(ret); |
4ef589dc | 1407 | |
58ef15b7 | 1408 | ret = devm_add_action_or_reset(device, hmm_devmem_ref_exit, &devmem->ref); |
4ef589dc | 1409 | if (ret) |
58ef15b7 | 1410 | return ERR_PTR(ret); |
4ef589dc JG |
1411 | |
1412 | size = ALIGN(size, PA_SECTION_SIZE); | |
1413 | addr = min((unsigned long)iomem_resource.end, | |
1414 | (1UL << MAX_PHYSMEM_BITS) - 1); | |
1415 | addr = addr - size + 1UL; | |
1416 | ||
1417 | /* | |
1418 | * FIXME add a new helper to quickly walk resource tree and find free | |
1419 | * range | |
1420 | * | |
1421 | * FIXME what about ioport_resource resource ? | |
1422 | */ | |
1423 | for (; addr > size && addr >= iomem_resource.start; addr -= size) { | |
1424 | ret = region_intersects(addr, size, 0, IORES_DESC_NONE); | |
1425 | if (ret != REGION_DISJOINT) | |
1426 | continue; | |
1427 | ||
1428 | devmem->resource = devm_request_mem_region(device, addr, size, | |
1429 | dev_name(device)); | |
58ef15b7 DW |
1430 | if (!devmem->resource) |
1431 | return ERR_PTR(-ENOMEM); | |
4ef589dc JG |
1432 | break; |
1433 | } | |
58ef15b7 DW |
1434 | if (!devmem->resource) |
1435 | return ERR_PTR(-ERANGE); | |
4ef589dc JG |
1436 | |
1437 | devmem->resource->desc = IORES_DESC_DEVICE_PRIVATE_MEMORY; | |
1438 | devmem->pfn_first = devmem->resource->start >> PAGE_SHIFT; | |
1439 | devmem->pfn_last = devmem->pfn_first + | |
1440 | (resource_size(devmem->resource) >> PAGE_SHIFT); | |
063a7d1d | 1441 | devmem->page_fault = hmm_devmem_fault; |
4ef589dc | 1442 | |
bbecd94e DW |
1443 | devmem->pagemap.type = MEMORY_DEVICE_PRIVATE; |
1444 | devmem->pagemap.res = *devmem->resource; | |
bbecd94e DW |
1445 | devmem->pagemap.page_free = hmm_devmem_free; |
1446 | devmem->pagemap.altmap_valid = false; | |
1447 | devmem->pagemap.ref = &devmem->ref; | |
1448 | devmem->pagemap.data = devmem; | |
1449 | devmem->pagemap.kill = hmm_devmem_ref_kill; | |
4ef589dc | 1450 | |
bbecd94e DW |
1451 | result = devm_memremap_pages(devmem->device, &devmem->pagemap); |
1452 | if (IS_ERR(result)) | |
1453 | return result; | |
4ef589dc | 1454 | return devmem; |
4ef589dc | 1455 | } |
02917e9f | 1456 | EXPORT_SYMBOL_GPL(hmm_devmem_add); |
4ef589dc | 1457 | |
d3df0a42 JG |
1458 | struct hmm_devmem *hmm_devmem_add_resource(const struct hmm_devmem_ops *ops, |
1459 | struct device *device, | |
1460 | struct resource *res) | |
1461 | { | |
1462 | struct hmm_devmem *devmem; | |
bbecd94e | 1463 | void *result; |
d3df0a42 JG |
1464 | int ret; |
1465 | ||
1466 | if (res->desc != IORES_DESC_DEVICE_PUBLIC_MEMORY) | |
1467 | return ERR_PTR(-EINVAL); | |
1468 | ||
e7638488 | 1469 | dev_pagemap_get_ops(); |
d3df0a42 | 1470 | |
58ef15b7 | 1471 | devmem = devm_kzalloc(device, sizeof(*devmem), GFP_KERNEL); |
d3df0a42 JG |
1472 | if (!devmem) |
1473 | return ERR_PTR(-ENOMEM); | |
1474 | ||
1475 | init_completion(&devmem->completion); | |
1476 | devmem->pfn_first = -1UL; | |
1477 | devmem->pfn_last = -1UL; | |
1478 | devmem->resource = res; | |
1479 | devmem->device = device; | |
1480 | devmem->ops = ops; | |
1481 | ||
1482 | ret = percpu_ref_init(&devmem->ref, &hmm_devmem_ref_release, | |
1483 | 0, GFP_KERNEL); | |
1484 | if (ret) | |
58ef15b7 | 1485 | return ERR_PTR(ret); |
d3df0a42 | 1486 | |
58ef15b7 DW |
1487 | ret = devm_add_action_or_reset(device, hmm_devmem_ref_exit, |
1488 | &devmem->ref); | |
d3df0a42 | 1489 | if (ret) |
58ef15b7 | 1490 | return ERR_PTR(ret); |
d3df0a42 JG |
1491 | |
1492 | devmem->pfn_first = devmem->resource->start >> PAGE_SHIFT; | |
1493 | devmem->pfn_last = devmem->pfn_first + | |
1494 | (resource_size(devmem->resource) >> PAGE_SHIFT); | |
063a7d1d | 1495 | devmem->page_fault = hmm_devmem_fault; |
d3df0a42 | 1496 | |
bbecd94e DW |
1497 | devmem->pagemap.type = MEMORY_DEVICE_PUBLIC; |
1498 | devmem->pagemap.res = *devmem->resource; | |
bbecd94e DW |
1499 | devmem->pagemap.page_free = hmm_devmem_free; |
1500 | devmem->pagemap.altmap_valid = false; | |
1501 | devmem->pagemap.ref = &devmem->ref; | |
1502 | devmem->pagemap.data = devmem; | |
1503 | devmem->pagemap.kill = hmm_devmem_ref_kill; | |
d3df0a42 | 1504 | |
bbecd94e DW |
1505 | result = devm_memremap_pages(devmem->device, &devmem->pagemap); |
1506 | if (IS_ERR(result)) | |
1507 | return result; | |
d3df0a42 | 1508 | return devmem; |
d3df0a42 | 1509 | } |
02917e9f | 1510 | EXPORT_SYMBOL_GPL(hmm_devmem_add_resource); |
d3df0a42 | 1511 | |
858b54da JG |
1512 | /* |
1513 | * A device driver that wants to handle multiple devices memory through a | |
1514 | * single fake device can use hmm_device to do so. This is purely a helper | |
1515 | * and it is not needed to make use of any HMM functionality. | |
1516 | */ | |
1517 | #define HMM_DEVICE_MAX 256 | |
1518 | ||
1519 | static DECLARE_BITMAP(hmm_device_mask, HMM_DEVICE_MAX); | |
1520 | static DEFINE_SPINLOCK(hmm_device_lock); | |
1521 | static struct class *hmm_device_class; | |
1522 | static dev_t hmm_device_devt; | |
1523 | ||
1524 | static void hmm_device_release(struct device *device) | |
1525 | { | |
1526 | struct hmm_device *hmm_device; | |
1527 | ||
1528 | hmm_device = container_of(device, struct hmm_device, device); | |
1529 | spin_lock(&hmm_device_lock); | |
1530 | clear_bit(hmm_device->minor, hmm_device_mask); | |
1531 | spin_unlock(&hmm_device_lock); | |
1532 | ||
1533 | kfree(hmm_device); | |
1534 | } | |
1535 | ||
1536 | struct hmm_device *hmm_device_new(void *drvdata) | |
1537 | { | |
1538 | struct hmm_device *hmm_device; | |
1539 | ||
1540 | hmm_device = kzalloc(sizeof(*hmm_device), GFP_KERNEL); | |
1541 | if (!hmm_device) | |
1542 | return ERR_PTR(-ENOMEM); | |
1543 | ||
1544 | spin_lock(&hmm_device_lock); | |
1545 | hmm_device->minor = find_first_zero_bit(hmm_device_mask, HMM_DEVICE_MAX); | |
1546 | if (hmm_device->minor >= HMM_DEVICE_MAX) { | |
1547 | spin_unlock(&hmm_device_lock); | |
1548 | kfree(hmm_device); | |
1549 | return ERR_PTR(-EBUSY); | |
1550 | } | |
1551 | set_bit(hmm_device->minor, hmm_device_mask); | |
1552 | spin_unlock(&hmm_device_lock); | |
1553 | ||
1554 | dev_set_name(&hmm_device->device, "hmm_device%d", hmm_device->minor); | |
1555 | hmm_device->device.devt = MKDEV(MAJOR(hmm_device_devt), | |
1556 | hmm_device->minor); | |
1557 | hmm_device->device.release = hmm_device_release; | |
1558 | dev_set_drvdata(&hmm_device->device, drvdata); | |
1559 | hmm_device->device.class = hmm_device_class; | |
1560 | device_initialize(&hmm_device->device); | |
1561 | ||
1562 | return hmm_device; | |
1563 | } | |
1564 | EXPORT_SYMBOL(hmm_device_new); | |
1565 | ||
1566 | void hmm_device_put(struct hmm_device *hmm_device) | |
1567 | { | |
1568 | put_device(&hmm_device->device); | |
1569 | } | |
1570 | EXPORT_SYMBOL(hmm_device_put); | |
1571 | ||
1572 | static int __init hmm_init(void) | |
1573 | { | |
1574 | int ret; | |
1575 | ||
1576 | ret = alloc_chrdev_region(&hmm_device_devt, 0, | |
1577 | HMM_DEVICE_MAX, | |
1578 | "hmm_device"); | |
1579 | if (ret) | |
1580 | return ret; | |
1581 | ||
1582 | hmm_device_class = class_create(THIS_MODULE, "hmm_device"); | |
1583 | if (IS_ERR(hmm_device_class)) { | |
1584 | unregister_chrdev_region(hmm_device_devt, HMM_DEVICE_MAX); | |
1585 | return PTR_ERR(hmm_device_class); | |
1586 | } | |
1587 | return 0; | |
1588 | } | |
1589 | ||
1590 | device_initcall(hmm_init); | |
df6ad698 | 1591 | #endif /* CONFIG_DEVICE_PRIVATE || CONFIG_DEVICE_PUBLIC */ |