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mm/hmm: do not unconditionally set pfns when returning EBUSY
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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 <jglisse@redhat.com>
133ff0ea
JG
6 */
7/*
8 * Refer to include/linux/hmm.h for information about heterogeneous memory
9 * management or HMM for short.
10 */
a520110e 11#include <linux/pagewalk.h>
133ff0ea 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
74eee180
JG
29struct hmm_vma_walk {
30 struct hmm_range *range;
31 unsigned long last;
74eee180
JG
32};
33
a3eb13c1
JG
34enum {
35 HMM_NEED_FAULT = 1 << 0,
36 HMM_NEED_WRITE_FAULT = 1 << 1,
37 HMM_NEED_ALL_BITS = HMM_NEED_FAULT | HMM_NEED_WRITE_FAULT,
38};
39
f970b977
JG
40/*
41 * hmm_device_entry_from_pfn() - create a valid device entry value from pfn
42 * @range: range use to encode HMM pfn value
43 * @pfn: pfn value for which to create the device entry
44 * Return: valid device entry for the pfn
45 */
46static uint64_t hmm_device_entry_from_pfn(const struct hmm_range *range,
47 unsigned long pfn)
48{
49 return (pfn << range->pfn_shift) | range->flags[HMM_PFN_VALID];
50}
51
d28c2c9a
RC
52static int hmm_pfns_fill(unsigned long addr, unsigned long end,
53 struct hmm_range *range, enum hmm_pfn_value_e value)
da4c3c73 54{
ff05c0c6 55 uint64_t *pfns = range->pfns;
da4c3c73
JG
56 unsigned long i;
57
58 i = (addr - range->start) >> PAGE_SHIFT;
59 for (; addr < end; addr += PAGE_SIZE, i++)
d28c2c9a 60 pfns[i] = range->values[value];
da4c3c73
JG
61
62 return 0;
63}
64
5504ed29 65/*
f8c888a3 66 * hmm_vma_fault() - fault in a range lacking valid pmd or pte(s)
d2e8d551 67 * @addr: range virtual start address (inclusive)
5504ed29 68 * @end: range virtual end address (exclusive)
a3eb13c1 69 * @required_fault: HMM_NEED_* flags
5504ed29 70 * @walk: mm_walk structure
f8c888a3 71 * Return: -EBUSY after page fault, or page fault error
5504ed29
JG
72 *
73 * This function will be called whenever pmd_none() or pte_none() returns true,
74 * or whenever there is no page directory covering the virtual address range.
75 */
f8c888a3 76static int hmm_vma_fault(unsigned long addr, unsigned long end,
a3eb13c1 77 unsigned int required_fault, struct mm_walk *walk)
da4c3c73 78{
74eee180
JG
79 struct hmm_vma_walk *hmm_vma_walk = walk->private;
80 struct hmm_range *range = hmm_vma_walk->range;
5a0c38d3 81 struct vm_area_struct *vma = walk->vma;
ff05c0c6 82 uint64_t *pfns = range->pfns;
f8c888a3 83 unsigned long i = (addr - range->start) >> PAGE_SHIFT;
5a0c38d3 84 unsigned int fault_flags = FAULT_FLAG_REMOTE;
da4c3c73 85
a3eb13c1 86 WARN_ON_ONCE(!required_fault);
74eee180 87 hmm_vma_walk->last = addr;
63d5066f 88
5a0c38d3
CH
89 if (!vma)
90 goto out_error;
da4c3c73 91
a3eb13c1 92 if (required_fault & HMM_NEED_WRITE_FAULT) {
5a0c38d3
CH
93 if (!(vma->vm_flags & VM_WRITE))
94 return -EPERM;
95 fault_flags |= FAULT_FLAG_WRITE;
74eee180
JG
96 }
97
5a0c38d3
CH
98 for (; addr < end; addr += PAGE_SIZE, i++)
99 if (handle_mm_fault(vma, addr, fault_flags) & VM_FAULT_ERROR)
100 goto out_error;
101
f8c888a3 102 return -EBUSY;
5a0c38d3
CH
103
104out_error:
105 pfns[i] = range->values[HMM_PFN_ERROR];
106 return -EFAULT;
2aee09d8
JG
107}
108
a3eb13c1
JG
109static unsigned int hmm_pte_need_fault(const struct hmm_vma_walk *hmm_vma_walk,
110 uint64_t pfns, uint64_t cpu_flags)
2aee09d8 111{
f88a1e90
JG
112 struct hmm_range *range = hmm_vma_walk->range;
113
023a019a
JG
114 /*
115 * So we not only consider the individual per page request we also
116 * consider the default flags requested for the range. The API can
d2e8d551
RC
117 * be used 2 ways. The first one where the HMM user coalesces
118 * multiple page faults into one request and sets flags per pfn for
119 * those faults. The second one where the HMM user wants to pre-
023a019a
JG
120 * fault a range with specific flags. For the latter one it is a
121 * waste to have the user pre-fill the pfn arrays with a default
122 * flags value.
123 */
124 pfns = (pfns & range->pfn_flags_mask) | range->default_flags;
125
2aee09d8 126 /* We aren't ask to do anything ... */
f88a1e90 127 if (!(pfns & range->flags[HMM_PFN_VALID]))
a3eb13c1 128 return 0;
f88a1e90 129
f88a1e90
JG
130 /* Need to write fault ? */
131 if ((pfns & range->flags[HMM_PFN_WRITE]) &&
a3eb13c1
JG
132 !(cpu_flags & range->flags[HMM_PFN_WRITE]))
133 return HMM_NEED_FAULT | HMM_NEED_WRITE_FAULT;
134
135 /* If CPU page table is not valid then we need to fault */
136 if (!(cpu_flags & range->flags[HMM_PFN_VALID]))
137 return HMM_NEED_FAULT;
138 return 0;
2aee09d8
JG
139}
140
a3eb13c1
JG
141static unsigned int
142hmm_range_need_fault(const struct hmm_vma_walk *hmm_vma_walk,
143 const uint64_t *pfns, unsigned long npages,
144 uint64_t cpu_flags)
2aee09d8 145{
6bfef2f9 146 struct hmm_range *range = hmm_vma_walk->range;
a3eb13c1 147 unsigned int required_fault = 0;
2aee09d8
JG
148 unsigned long i;
149
6bfef2f9
JG
150 /*
151 * If the default flags do not request to fault pages, and the mask does
152 * not allow for individual pages to be faulted, then
153 * hmm_pte_need_fault() will always return 0.
154 */
155 if (!((range->default_flags | range->pfn_flags_mask) &
156 range->flags[HMM_PFN_VALID]))
a3eb13c1 157 return 0;
2aee09d8
JG
158
159 for (i = 0; i < npages; ++i) {
a3eb13c1
JG
160 required_fault |=
161 hmm_pte_need_fault(hmm_vma_walk, pfns[i], cpu_flags);
162 if (required_fault == HMM_NEED_ALL_BITS)
163 return required_fault;
2aee09d8 164 }
a3eb13c1 165 return required_fault;
2aee09d8
JG
166}
167
168static int hmm_vma_walk_hole(unsigned long addr, unsigned long end,
b7a16c7a 169 __always_unused int depth, struct mm_walk *walk)
2aee09d8
JG
170{
171 struct hmm_vma_walk *hmm_vma_walk = walk->private;
172 struct hmm_range *range = hmm_vma_walk->range;
a3eb13c1 173 unsigned int required_fault;
2aee09d8
JG
174 unsigned long i, npages;
175 uint64_t *pfns;
176
177 i = (addr - range->start) >> PAGE_SHIFT;
178 npages = (end - addr) >> PAGE_SHIFT;
179 pfns = &range->pfns[i];
a3eb13c1
JG
180 required_fault = hmm_range_need_fault(hmm_vma_walk, pfns, npages, 0);
181 if (required_fault)
182 return hmm_vma_fault(addr, end, required_fault, walk);
f8c888a3
CH
183 hmm_vma_walk->last = addr;
184 return hmm_pfns_fill(addr, end, range, HMM_PFN_NONE);
2aee09d8
JG
185}
186
f88a1e90 187static inline uint64_t pmd_to_hmm_pfn_flags(struct hmm_range *range, pmd_t pmd)
2aee09d8
JG
188{
189 if (pmd_protnone(pmd))
190 return 0;
f88a1e90
JG
191 return pmd_write(pmd) ? range->flags[HMM_PFN_VALID] |
192 range->flags[HMM_PFN_WRITE] :
193 range->flags[HMM_PFN_VALID];
da4c3c73
JG
194}
195
992de9a8 196#ifdef CONFIG_TRANSPARENT_HUGEPAGE
9d3973d6
CH
197static int hmm_vma_handle_pmd(struct mm_walk *walk, unsigned long addr,
198 unsigned long end, uint64_t *pfns, pmd_t pmd)
199{
53f5c3f4 200 struct hmm_vma_walk *hmm_vma_walk = walk->private;
f88a1e90 201 struct hmm_range *range = hmm_vma_walk->range;
2aee09d8 202 unsigned long pfn, npages, i;
a3eb13c1 203 unsigned int required_fault;
f88a1e90 204 uint64_t cpu_flags;
53f5c3f4 205
2aee09d8 206 npages = (end - addr) >> PAGE_SHIFT;
f88a1e90 207 cpu_flags = pmd_to_hmm_pfn_flags(range, pmd);
a3eb13c1
JG
208 required_fault =
209 hmm_range_need_fault(hmm_vma_walk, pfns, npages, cpu_flags);
210 if (required_fault)
211 return hmm_vma_fault(addr, end, required_fault, walk);
53f5c3f4 212
309f9a4f 213 pfn = pmd_pfn(pmd) + ((addr & ~PMD_MASK) >> PAGE_SHIFT);
068354ad 214 for (i = 0; addr < end; addr += PAGE_SIZE, i++, pfn++)
391aab11 215 pfns[i] = hmm_device_entry_from_pfn(range, pfn) | cpu_flags;
53f5c3f4
JG
216 hmm_vma_walk->last = end;
217 return 0;
218}
9d3973d6
CH
219#else /* CONFIG_TRANSPARENT_HUGEPAGE */
220/* stub to allow the code below to compile */
221int hmm_vma_handle_pmd(struct mm_walk *walk, unsigned long addr,
222 unsigned long end, uint64_t *pfns, pmd_t pmd);
223#endif /* CONFIG_TRANSPARENT_HUGEPAGE */
53f5c3f4 224
08ddddda
CH
225static inline bool hmm_is_device_private_entry(struct hmm_range *range,
226 swp_entry_t entry)
227{
228 return is_device_private_entry(entry) &&
229 device_private_entry_to_page(entry)->pgmap->owner ==
230 range->dev_private_owner;
231}
232
f88a1e90 233static inline uint64_t pte_to_hmm_pfn_flags(struct hmm_range *range, pte_t pte)
2aee09d8 234{
789c2af8 235 if (pte_none(pte) || !pte_present(pte) || pte_protnone(pte))
2aee09d8 236 return 0;
f88a1e90
JG
237 return pte_write(pte) ? range->flags[HMM_PFN_VALID] |
238 range->flags[HMM_PFN_WRITE] :
239 range->flags[HMM_PFN_VALID];
2aee09d8
JG
240}
241
53f5c3f4
JG
242static int hmm_vma_handle_pte(struct mm_walk *walk, unsigned long addr,
243 unsigned long end, pmd_t *pmdp, pte_t *ptep,
244 uint64_t *pfn)
245{
246 struct hmm_vma_walk *hmm_vma_walk = walk->private;
f88a1e90 247 struct hmm_range *range = hmm_vma_walk->range;
a3eb13c1 248 unsigned int required_fault;
2aee09d8 249 uint64_t cpu_flags;
53f5c3f4 250 pte_t pte = *ptep;
f88a1e90 251 uint64_t orig_pfn = *pfn;
53f5c3f4 252
53f5c3f4 253 if (pte_none(pte)) {
a3eb13c1
JG
254 required_fault = hmm_pte_need_fault(hmm_vma_walk, orig_pfn, 0);
255 if (required_fault)
53f5c3f4 256 goto fault;
846babe8 257 *pfn = range->values[HMM_PFN_NONE];
53f5c3f4
JG
258 return 0;
259 }
260
261 if (!pte_present(pte)) {
262 swp_entry_t entry = pte_to_swp_entry(pte);
263
53f5c3f4 264 /*
17ffdc48
CH
265 * Never fault in device private pages pages, but just report
266 * the PFN even if not present.
53f5c3f4 267 */
08ddddda 268 if (hmm_is_device_private_entry(range, entry)) {
391aab11 269 *pfn = hmm_device_entry_from_pfn(range,
f66c9a33 270 device_private_entry_to_pfn(entry));
17ffdc48
CH
271 *pfn |= range->flags[HMM_PFN_VALID];
272 if (is_write_device_private_entry(entry))
273 *pfn |= range->flags[HMM_PFN_WRITE];
53f5c3f4
JG
274 return 0;
275 }
276
a3eb13c1 277 required_fault = hmm_pte_need_fault(hmm_vma_walk, orig_pfn, 0);
846babe8
JG
278 if (!required_fault) {
279 *pfn = range->values[HMM_PFN_NONE];
53f5c3f4 280 return 0;
846babe8 281 }
76612d6c
JG
282
283 if (!non_swap_entry(entry))
284 goto fault;
285
286 if (is_migration_entry(entry)) {
287 pte_unmap(ptep);
288 hmm_vma_walk->last = addr;
289 migration_entry_wait(walk->mm, pmdp, addr);
290 return -EBUSY;
53f5c3f4
JG
291 }
292
293 /* Report error for everything else */
dfdc2207 294 pte_unmap(ptep);
f88a1e90 295 *pfn = range->values[HMM_PFN_ERROR];
53f5c3f4
JG
296 return -EFAULT;
297 }
298
76612d6c 299 cpu_flags = pte_to_hmm_pfn_flags(range, pte);
a3eb13c1
JG
300 required_fault = hmm_pte_need_fault(hmm_vma_walk, orig_pfn, cpu_flags);
301 if (required_fault)
53f5c3f4
JG
302 goto fault;
303
40550627
JG
304 /*
305 * Since each architecture defines a struct page for the zero page, just
306 * fall through and treat it like a normal page.
307 */
308 if (pte_special(pte) && !is_zero_pfn(pte_pfn(pte))) {
a3eb13c1 309 if (hmm_pte_need_fault(hmm_vma_walk, orig_pfn, 0)) {
dfdc2207 310 pte_unmap(ptep);
ac541f25
RC
311 return -EFAULT;
312 }
40550627
JG
313 *pfn = range->values[HMM_PFN_SPECIAL];
314 return 0;
992de9a8
JG
315 }
316
391aab11 317 *pfn = hmm_device_entry_from_pfn(range, pte_pfn(pte)) | cpu_flags;
53f5c3f4
JG
318 return 0;
319
320fault:
321 pte_unmap(ptep);
322 /* Fault any virtual address we were asked to fault */
a3eb13c1 323 return hmm_vma_fault(addr, end, required_fault, walk);
53f5c3f4
JG
324}
325
da4c3c73
JG
326static int hmm_vma_walk_pmd(pmd_t *pmdp,
327 unsigned long start,
328 unsigned long end,
329 struct mm_walk *walk)
330{
74eee180
JG
331 struct hmm_vma_walk *hmm_vma_walk = walk->private;
332 struct hmm_range *range = hmm_vma_walk->range;
2288a9a6
JG
333 uint64_t *pfns = &range->pfns[(start - range->start) >> PAGE_SHIFT];
334 unsigned long npages = (end - start) >> PAGE_SHIFT;
335 unsigned long addr = start;
da4c3c73 336 pte_t *ptep;
d08faca0 337 pmd_t pmd;
da4c3c73 338
da4c3c73 339again:
d08faca0
JG
340 pmd = READ_ONCE(*pmdp);
341 if (pmd_none(pmd))
b7a16c7a 342 return hmm_vma_walk_hole(start, end, -1, walk);
da4c3c73 343
d08faca0 344 if (thp_migration_supported() && is_pmd_migration_entry(pmd)) {
a3eb13c1 345 if (hmm_range_need_fault(hmm_vma_walk, pfns, npages, 0)) {
d08faca0 346 hmm_vma_walk->last = addr;
d2e8d551 347 pmd_migration_entry_wait(walk->mm, pmdp);
73231612 348 return -EBUSY;
d08faca0 349 }
7d082987 350 return hmm_pfns_fill(start, end, range, HMM_PFN_NONE);
2288a9a6
JG
351 }
352
353 if (!pmd_present(pmd)) {
a3eb13c1 354 if (hmm_range_need_fault(hmm_vma_walk, pfns, npages, 0))
2288a9a6 355 return -EFAULT;
d28c2c9a 356 return hmm_pfns_fill(start, end, range, HMM_PFN_ERROR);
2288a9a6 357 }
da4c3c73 358
d08faca0 359 if (pmd_devmap(pmd) || pmd_trans_huge(pmd)) {
da4c3c73 360 /*
d2e8d551 361 * No need to take pmd_lock here, even if some other thread
da4c3c73
JG
362 * is splitting the huge pmd we will get that event through
363 * mmu_notifier callback.
364 *
d2e8d551 365 * So just read pmd value and check again it's a transparent
da4c3c73
JG
366 * huge or device mapping one and compute corresponding pfn
367 * values.
368 */
369 pmd = pmd_read_atomic(pmdp);
370 barrier();
371 if (!pmd_devmap(pmd) && !pmd_trans_huge(pmd))
372 goto again;
74eee180 373
2288a9a6 374 return hmm_vma_handle_pmd(walk, addr, end, pfns, pmd);
da4c3c73
JG
375 }
376
d08faca0 377 /*
d2e8d551 378 * We have handled all the valid cases above ie either none, migration,
d08faca0
JG
379 * huge or transparent huge. At this point either it is a valid pmd
380 * entry pointing to pte directory or it is a bad pmd that will not
381 * recover.
382 */
2288a9a6 383 if (pmd_bad(pmd)) {
a3eb13c1 384 if (hmm_range_need_fault(hmm_vma_walk, pfns, npages, 0))
2288a9a6 385 return -EFAULT;
d28c2c9a 386 return hmm_pfns_fill(start, end, range, HMM_PFN_ERROR);
2288a9a6 387 }
da4c3c73
JG
388
389 ptep = pte_offset_map(pmdp, addr);
2288a9a6 390 for (; addr < end; addr += PAGE_SIZE, ptep++, pfns++) {
53f5c3f4 391 int r;
74eee180 392
2288a9a6 393 r = hmm_vma_handle_pte(walk, addr, end, pmdp, ptep, pfns);
53f5c3f4 394 if (r) {
dfdc2207 395 /* hmm_vma_handle_pte() did pte_unmap() */
53f5c3f4
JG
396 hmm_vma_walk->last = addr;
397 return r;
74eee180 398 }
da4c3c73
JG
399 }
400 pte_unmap(ptep - 1);
401
53f5c3f4 402 hmm_vma_walk->last = addr;
da4c3c73
JG
403 return 0;
404}
405
f0b3c45c
CH
406#if defined(CONFIG_ARCH_HAS_PTE_DEVMAP) && \
407 defined(CONFIG_HAVE_ARCH_TRANSPARENT_HUGEPAGE_PUD)
408static inline uint64_t pud_to_hmm_pfn_flags(struct hmm_range *range, pud_t pud)
409{
410 if (!pud_present(pud))
411 return 0;
412 return pud_write(pud) ? range->flags[HMM_PFN_VALID] |
413 range->flags[HMM_PFN_WRITE] :
414 range->flags[HMM_PFN_VALID];
415}
416
417static int hmm_vma_walk_pud(pud_t *pudp, unsigned long start, unsigned long end,
418 struct mm_walk *walk)
992de9a8
JG
419{
420 struct hmm_vma_walk *hmm_vma_walk = walk->private;
421 struct hmm_range *range = hmm_vma_walk->range;
3afc4236 422 unsigned long addr = start;
992de9a8 423 pud_t pud;
3afc4236
SP
424 int ret = 0;
425 spinlock_t *ptl = pud_trans_huge_lock(pudp, walk->vma);
426
427 if (!ptl)
428 return 0;
429
430 /* Normally we don't want to split the huge page */
431 walk->action = ACTION_CONTINUE;
992de9a8 432
992de9a8 433 pud = READ_ONCE(*pudp);
3afc4236 434 if (pud_none(pud)) {
05fc1df9
JG
435 spin_unlock(ptl);
436 return hmm_vma_walk_hole(start, end, -1, walk);
3afc4236 437 }
992de9a8
JG
438
439 if (pud_huge(pud) && pud_devmap(pud)) {
440 unsigned long i, npages, pfn;
a3eb13c1 441 unsigned int required_fault;
992de9a8 442 uint64_t *pfns, cpu_flags;
992de9a8 443
3afc4236 444 if (!pud_present(pud)) {
05fc1df9
JG
445 spin_unlock(ptl);
446 return hmm_vma_walk_hole(start, end, -1, walk);
3afc4236 447 }
992de9a8
JG
448
449 i = (addr - range->start) >> PAGE_SHIFT;
450 npages = (end - addr) >> PAGE_SHIFT;
451 pfns = &range->pfns[i];
452
453 cpu_flags = pud_to_hmm_pfn_flags(range, pud);
a3eb13c1
JG
454 required_fault = hmm_range_need_fault(hmm_vma_walk, pfns,
455 npages, cpu_flags);
456 if (required_fault) {
05fc1df9 457 spin_unlock(ptl);
a3eb13c1 458 return hmm_vma_fault(addr, end, required_fault, walk);
3afc4236 459 }
992de9a8 460
992de9a8 461 pfn = pud_pfn(pud) + ((addr & ~PUD_MASK) >> PAGE_SHIFT);
068354ad 462 for (i = 0; i < npages; ++i, ++pfn)
391aab11
JG
463 pfns[i] = hmm_device_entry_from_pfn(range, pfn) |
464 cpu_flags;
992de9a8 465 hmm_vma_walk->last = end;
3afc4236 466 goto out_unlock;
992de9a8
JG
467 }
468
3afc4236
SP
469 /* Ask for the PUD to be split */
470 walk->action = ACTION_SUBTREE;
992de9a8 471
3afc4236
SP
472out_unlock:
473 spin_unlock(ptl);
474 return ret;
992de9a8 475}
f0b3c45c
CH
476#else
477#define hmm_vma_walk_pud NULL
478#endif
992de9a8 479
251bbe59 480#ifdef CONFIG_HUGETLB_PAGE
63d5066f
JG
481static int hmm_vma_walk_hugetlb_entry(pte_t *pte, unsigned long hmask,
482 unsigned long start, unsigned long end,
483 struct mm_walk *walk)
484{
05c23af4 485 unsigned long addr = start, i, pfn;
63d5066f
JG
486 struct hmm_vma_walk *hmm_vma_walk = walk->private;
487 struct hmm_range *range = hmm_vma_walk->range;
488 struct vm_area_struct *vma = walk->vma;
63d5066f 489 uint64_t orig_pfn, cpu_flags;
a3eb13c1 490 unsigned int required_fault;
63d5066f
JG
491 spinlock_t *ptl;
492 pte_t entry;
63d5066f 493
d2e8d551 494 ptl = huge_pte_lock(hstate_vma(vma), walk->mm, pte);
63d5066f
JG
495 entry = huge_ptep_get(pte);
496
7f08263d 497 i = (start - range->start) >> PAGE_SHIFT;
63d5066f 498 orig_pfn = range->pfns[i];
63d5066f 499 cpu_flags = pte_to_hmm_pfn_flags(range, entry);
a3eb13c1
JG
500 required_fault = hmm_pte_need_fault(hmm_vma_walk, orig_pfn, cpu_flags);
501 if (required_fault) {
45050692 502 spin_unlock(ptl);
a3eb13c1 503 return hmm_vma_fault(addr, end, required_fault, walk);
63d5066f
JG
504 }
505
05c23af4 506 pfn = pte_pfn(entry) + ((start & ~hmask) >> PAGE_SHIFT);
7f08263d 507 for (; addr < end; addr += PAGE_SIZE, i++, pfn++)
391aab11
JG
508 range->pfns[i] = hmm_device_entry_from_pfn(range, pfn) |
509 cpu_flags;
63d5066f 510 hmm_vma_walk->last = end;
63d5066f 511 spin_unlock(ptl);
45050692 512 return 0;
63d5066f 513}
251bbe59
CH
514#else
515#define hmm_vma_walk_hugetlb_entry NULL
516#endif /* CONFIG_HUGETLB_PAGE */
63d5066f 517
d28c2c9a
RC
518static int hmm_vma_walk_test(unsigned long start, unsigned long end,
519 struct mm_walk *walk)
33cd47dc 520{
d28c2c9a
RC
521 struct hmm_vma_walk *hmm_vma_walk = walk->private;
522 struct hmm_range *range = hmm_vma_walk->range;
523 struct vm_area_struct *vma = walk->vma;
524
a3eb13c1
JG
525 if (!(vma->vm_flags & (VM_IO | VM_PFNMAP | VM_MIXEDMAP)) &&
526 vma->vm_flags & VM_READ)
527 return 0;
528
d28c2c9a 529 /*
a3eb13c1
JG
530 * vma ranges that don't have struct page backing them or map I/O
531 * devices directly cannot be handled by hmm_range_fault().
c2579c9c 532 *
d28c2c9a 533 * If the vma does not allow read access, then assume that it does not
c2579c9c
JG
534 * allow write access either. HMM does not support architectures that
535 * allow write without read.
a3eb13c1
JG
536 *
537 * If a fault is requested for an unsupported range then it is a hard
538 * failure.
d28c2c9a 539 */
a3eb13c1
JG
540 if (hmm_range_need_fault(hmm_vma_walk,
541 range->pfns +
542 ((start - range->start) >> PAGE_SHIFT),
543 (end - start) >> PAGE_SHIFT, 0))
544 return -EFAULT;
d28c2c9a 545
a3eb13c1
JG
546 hmm_pfns_fill(start, end, range, HMM_PFN_ERROR);
547 hmm_vma_walk->last = end;
d28c2c9a 548
a3eb13c1
JG
549 /* Skip this vma and continue processing the next vma. */
550 return 1;
33cd47dc
JG
551}
552
7b86ac33
CH
553static const struct mm_walk_ops hmm_walk_ops = {
554 .pud_entry = hmm_vma_walk_pud,
555 .pmd_entry = hmm_vma_walk_pmd,
556 .pte_hole = hmm_vma_walk_hole,
557 .hugetlb_entry = hmm_vma_walk_hugetlb_entry,
d28c2c9a 558 .test_walk = hmm_vma_walk_test,
7b86ac33
CH
559};
560
9a4903e4
CH
561/**
562 * hmm_range_fault - try to fault some address in a virtual address range
f970b977 563 * @range: argument structure
9a4903e4
CH
564 *
565 * Return: the number of valid pages in range->pfns[] (from range start
566 * address), which may be zero. On error one of the following status codes
567 * can be returned:
73231612 568 *
9a4903e4
CH
569 * -EINVAL: Invalid arguments or mm or virtual address is in an invalid vma
570 * (e.g., device file vma).
571 * -ENOMEM: Out of memory.
572 * -EPERM: Invalid permission (e.g., asking for write and range is read
573 * only).
9a4903e4
CH
574 * -EBUSY: The range has been invalidated and the caller needs to wait for
575 * the invalidation to finish.
f970b977
JG
576 * -EFAULT: A page was requested to be valid and could not be made valid
577 * ie it has no backing VMA or it is illegal to access
74eee180 578 *
f970b977
JG
579 * This is similar to get_user_pages(), except that it can read the page tables
580 * without mutating them (ie causing faults).
74eee180 581 *
ff05c0c6
JG
582 * On error, for one virtual address in the range, the function will mark the
583 * corresponding HMM pfn entry with an error flag.
74eee180 584 */
6bfef2f9 585long hmm_range_fault(struct hmm_range *range)
74eee180 586{
d28c2c9a
RC
587 struct hmm_vma_walk hmm_vma_walk = {
588 .range = range,
589 .last = range->start,
d28c2c9a 590 };
a22dd506 591 struct mm_struct *mm = range->notifier->mm;
74eee180
JG
592 int ret;
593
04ec32fb 594 lockdep_assert_held(&mm->mmap_sem);
704f3f2c 595
a3e0d41c
JG
596 do {
597 /* If range is no longer valid force retry. */
a22dd506
JG
598 if (mmu_interval_check_retry(range->notifier,
599 range->notifier_seq))
2bcbeaef 600 return -EBUSY;
d28c2c9a
RC
601 ret = walk_page_range(mm, hmm_vma_walk.last, range->end,
602 &hmm_walk_ops, &hmm_vma_walk);
603 } while (ret == -EBUSY);
74eee180 604
d28c2c9a
RC
605 if (ret)
606 return ret;
73231612 607 return (hmm_vma_walk.last - range->start) >> PAGE_SHIFT;
74eee180 608}
73231612 609EXPORT_SYMBOL(hmm_range_fault);