1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * mm/mremap.c
4 *
5 * (C) Copyright 1996 Linus Torvalds
6 *
7 * Address space accounting code <alan@lxorguk.ukuu.org.uk>
8 * (C) Copyright 2002 Red Hat Inc, All Rights Reserved
9 */
10
11 #include <linux/mm.h>
12 #include <linux/mm_inline.h>
13 #include <linux/hugetlb.h>
14 #include <linux/shm.h>
15 #include <linux/ksm.h>
16 #include <linux/mman.h>
17 #include <linux/swap.h>
18 #include <linux/capability.h>
19 #include <linux/fs.h>
20 #include <linux/leafops.h>
21 #include <linux/highmem.h>
22 #include <linux/security.h>
23 #include <linux/syscalls.h>
24 #include <linux/mmu_notifier.h>
25 #include <linux/uaccess.h>
26 #include <linux/userfaultfd_k.h>
27 #include <linux/mempolicy.h>
28 #include <linux/pgalloc.h>
29
30 #include <asm/cacheflush.h>
31 #include <asm/tlb.h>
32
33 #include "internal.h"
34
35 /* Classify the kind of remap operation being performed. */
36 enum mremap_type {
37 MREMAP_INVALID, /* Initial state. */
38 MREMAP_NO_RESIZE, /* old_len == new_len, if not moved, do nothing. */
39 MREMAP_SHRINK, /* old_len > new_len. */
40 MREMAP_EXPAND, /* old_len < new_len. */
41 };
42
43 /*
44 * Describes a VMA mremap() operation and is threaded throughout it.
45 *
46 * Any of the fields may be mutated by the operation, however these values will
47 * always accurately reflect the remap (for instance, we may adjust lengths and
48 * delta to account for hugetlb alignment).
49 */
50 struct vma_remap_struct {
51 /* User-provided state. */
52 unsigned long addr; /* User-specified address from which we remap. */
53 unsigned long old_len; /* Length of range being remapped. */
54 unsigned long new_len; /* Desired new length of mapping. */
55 const unsigned long flags; /* user-specified MREMAP_* flags. */
56 unsigned long new_addr; /* Optionally, desired new address. */
57
58 /* uffd state. */
59 struct vm_userfaultfd_ctx *uf;
60 struct list_head *uf_unmap_early;
61 struct list_head *uf_unmap;
62
63 /* VMA state, determined in do_mremap(). */
64 struct vm_area_struct *vma;
65
66 /* Internal state, determined in do_mremap(). */
67 unsigned long delta; /* Absolute delta of old_len,new_len. */
68 bool populate_expand; /* mlock()'d expanded, must populate. */
69 enum mremap_type remap_type; /* expand, shrink, etc. */
70 bool mmap_locked; /* Is mm currently write-locked? */
71 unsigned long charged; /* If VMA_ACCOUNT_BIT, # pgs to account */
72 bool vmi_needs_invalidate; /* Is the VMA iterator invalidated? */
73 };
74
get_old_pud(struct mm_struct * mm,unsigned long addr)75 static pud_t *get_old_pud(struct mm_struct *mm, unsigned long addr)
76 {
77 pgd_t *pgd;
78 p4d_t *p4d;
79 pud_t *pud;
80
81 pgd = pgd_offset(mm, addr);
82 if (pgd_none_or_clear_bad(pgd))
83 return NULL;
84
85 p4d = p4d_offset(pgd, addr);
86 if (p4d_none_or_clear_bad(p4d))
87 return NULL;
88
89 pud = pud_offset(p4d, addr);
90 if (pud_none_or_clear_bad(pud))
91 return NULL;
92
93 return pud;
94 }
95
get_old_pmd(struct mm_struct * mm,unsigned long addr)96 static pmd_t *get_old_pmd(struct mm_struct *mm, unsigned long addr)
97 {
98 pud_t *pud;
99 pmd_t *pmd;
100
101 pud = get_old_pud(mm, addr);
102 if (!pud)
103 return NULL;
104
105 pmd = pmd_offset(pud, addr);
106 if (pmd_none(*pmd))
107 return NULL;
108
109 return pmd;
110 }
111
alloc_new_pud(struct mm_struct * mm,unsigned long addr)112 static pud_t *alloc_new_pud(struct mm_struct *mm, unsigned long addr)
113 {
114 pgd_t *pgd;
115 p4d_t *p4d;
116
117 pgd = pgd_offset(mm, addr);
118 p4d = p4d_alloc(mm, pgd, addr);
119 if (!p4d)
120 return NULL;
121
122 return pud_alloc(mm, p4d, addr);
123 }
124
alloc_new_pmd(struct mm_struct * mm,unsigned long addr)125 static pmd_t *alloc_new_pmd(struct mm_struct *mm, unsigned long addr)
126 {
127 pud_t *pud;
128 pmd_t *pmd;
129
130 pud = alloc_new_pud(mm, addr);
131 if (!pud)
132 return NULL;
133
134 pmd = pmd_alloc(mm, pud, addr);
135 if (!pmd)
136 return NULL;
137
138 VM_BUG_ON(pmd_trans_huge(*pmd));
139
140 return pmd;
141 }
142
take_rmap_locks(struct vm_area_struct * vma)143 static void take_rmap_locks(struct vm_area_struct *vma)
144 {
145 if (vma->vm_file)
146 i_mmap_lock_write(vma->vm_file->f_mapping);
147 if (vma->anon_vma)
148 anon_vma_lock_write(vma->anon_vma);
149 }
150
drop_rmap_locks(struct vm_area_struct * vma)151 static void drop_rmap_locks(struct vm_area_struct *vma)
152 {
153 if (vma->anon_vma)
154 anon_vma_unlock_write(vma->anon_vma);
155 if (vma->vm_file)
156 i_mmap_unlock_write(vma->vm_file->f_mapping);
157 }
158
move_soft_dirty_pte(pte_t pte)159 static pte_t move_soft_dirty_pte(pte_t pte)
160 {
161 if (pte_none(pte))
162 return pte;
163
164 /*
165 * Set soft dirty bit so we can notice
166 * in userspace the ptes were moved.
167 */
168 if (pgtable_supports_soft_dirty()) {
169 if (pte_present(pte))
170 pte = pte_mksoft_dirty(pte);
171 else
172 pte = pte_swp_mksoft_dirty(pte);
173 }
174
175 return pte;
176 }
177
mremap_folio_pte_batch(struct vm_area_struct * vma,unsigned long addr,pte_t * ptep,pte_t pte,int max_nr)178 static int mremap_folio_pte_batch(struct vm_area_struct *vma, unsigned long addr,
179 pte_t *ptep, pte_t pte, int max_nr)
180 {
181 struct folio *folio;
182
183 if (max_nr == 1)
184 return 1;
185
186 /* Avoid expensive folio lookup if we stand no chance of benefit. */
187 if (pte_batch_hint(ptep, pte) == 1)
188 return 1;
189
190 folio = vm_normal_folio(vma, addr, pte);
191 if (!folio || !folio_test_large(folio))
192 return 1;
193
194 return folio_pte_batch_flags(folio, NULL, ptep, &pte, max_nr, FPB_RESPECT_WRITE);
195 }
196
move_ptes(struct pagetable_move_control * pmc,unsigned long extent,pmd_t * old_pmd,pmd_t * new_pmd)197 static int move_ptes(struct pagetable_move_control *pmc,
198 unsigned long extent, pmd_t *old_pmd, pmd_t *new_pmd)
199 {
200 struct vm_area_struct *vma = pmc->old;
201 bool need_clear_uffd_wp = vma_has_uffd_without_event_remap(vma);
202 struct mm_struct *mm = vma->vm_mm;
203 pte_t *old_ptep, *new_ptep;
204 pte_t old_pte, pte;
205 pmd_t dummy_pmdval;
206 spinlock_t *old_ptl, *new_ptl;
207 bool force_flush = false;
208 unsigned long old_addr = pmc->old_addr;
209 unsigned long new_addr = pmc->new_addr;
210 unsigned long old_end = old_addr + extent;
211 unsigned long len = old_end - old_addr;
212 int max_nr_ptes;
213 int nr_ptes;
214 int err = 0;
215
216 /*
217 * When need_rmap_locks is true, we take the i_mmap_rwsem and anon_vma
218 * locks to ensure that rmap will always observe either the old or the
219 * new ptes. This is the easiest way to avoid races with
220 * truncate_pagecache(), page migration, etc...
221 *
222 * When need_rmap_locks is false, we use other ways to avoid
223 * such races:
224 *
225 * - During exec() shift_arg_pages(), we use a specially tagged vma
226 * which rmap call sites look for using vma_is_temporary_stack().
227 *
228 * - During mremap(), new_vma is often known to be placed after vma
229 * in rmap traversal order. This ensures rmap will always observe
230 * either the old pte, or the new pte, or both (the page table locks
231 * serialize access to individual ptes, but only rmap traversal
232 * order guarantees that we won't miss both the old and new ptes).
233 */
234 if (pmc->need_rmap_locks)
235 take_rmap_locks(vma);
236
237 /*
238 * We don't have to worry about the ordering of src and dst
239 * pte locks because exclusive mmap_lock prevents deadlock.
240 */
241 old_ptep = pte_offset_map_lock(mm, old_pmd, old_addr, &old_ptl);
242 if (!old_ptep) {
243 err = -EAGAIN;
244 goto out;
245 }
246 /*
247 * Now new_pte is none, so collapse_scan_file() path can not find
248 * this by traversing file->f_mapping, so there is no concurrency with
249 * retract_page_tables(). In addition, we already hold the exclusive
250 * mmap_lock, so this new_pte page is stable, so there is no need to get
251 * pmdval and do pmd_same() check.
252 */
253 new_ptep = pte_offset_map_rw_nolock(mm, new_pmd, new_addr, &dummy_pmdval,
254 &new_ptl);
255 if (!new_ptep) {
256 pte_unmap_unlock(old_ptep, old_ptl);
257 err = -EAGAIN;
258 goto out;
259 }
260 if (new_ptl != old_ptl)
261 spin_lock_nested(new_ptl, SINGLE_DEPTH_NESTING);
262 flush_tlb_batched_pending(vma->vm_mm);
263 lazy_mmu_mode_enable();
264
265 for (; old_addr < old_end; old_ptep += nr_ptes, old_addr += nr_ptes * PAGE_SIZE,
266 new_ptep += nr_ptes, new_addr += nr_ptes * PAGE_SIZE) {
267 VM_WARN_ON_ONCE(!pte_none(ptep_get(new_ptep)));
268
269 nr_ptes = 1;
270 max_nr_ptes = (old_end - old_addr) >> PAGE_SHIFT;
271 old_pte = ptep_get(old_ptep);
272 if (pte_none(old_pte))
273 continue;
274
275 /*
276 * If we are remapping a valid PTE, make sure
277 * to flush TLB before we drop the PTL for the
278 * PTE.
279 *
280 * NOTE! Both old and new PTL matter: the old one
281 * for racing with folio_mkclean(), the new one to
282 * make sure the physical page stays valid until
283 * the TLB entry for the old mapping has been
284 * flushed.
285 */
286 if (pte_present(old_pte)) {
287 nr_ptes = mremap_folio_pte_batch(vma, old_addr, old_ptep,
288 old_pte, max_nr_ptes);
289 force_flush = true;
290 }
291 pte = get_and_clear_ptes(mm, old_addr, old_ptep, nr_ptes);
292 pte = move_pte(pte, old_addr, new_addr);
293 pte = move_soft_dirty_pte(pte);
294
295 if (need_clear_uffd_wp && pte_is_uffd_wp_marker(pte))
296 pte_clear(mm, new_addr, new_ptep);
297 else {
298 if (need_clear_uffd_wp) {
299 if (pte_present(pte)) {
300 /*
301 * See __copy_present_ptes(): normalise
302 * RWP PTEs so the destination starts
303 * accessible instead of taking a
304 * numa-hinting fault on first access.
305 */
306 if (userfaultfd_rwp(vma) && pte_uffd(pte))
307 pte = pte_modify(pte, vma->vm_page_prot);
308 pte = pte_clear_uffd(pte);
309 } else {
310 pte = pte_swp_clear_uffd(pte);
311 }
312 }
313 set_ptes(mm, new_addr, new_ptep, pte, nr_ptes);
314 }
315 }
316
317 lazy_mmu_mode_disable();
318 if (force_flush)
319 flush_tlb_range(vma, old_end - len, old_end);
320 if (new_ptl != old_ptl)
321 spin_unlock(new_ptl);
322 pte_unmap(new_ptep - 1);
323 pte_unmap_unlock(old_ptep - 1, old_ptl);
324 out:
325 if (pmc->need_rmap_locks)
326 drop_rmap_locks(vma);
327 return err;
328 }
329
330 #ifndef arch_supports_page_table_move
331 #define arch_supports_page_table_move arch_supports_page_table_move
arch_supports_page_table_move(void)332 static inline bool arch_supports_page_table_move(void)
333 {
334 return IS_ENABLED(CONFIG_HAVE_MOVE_PMD) ||
335 IS_ENABLED(CONFIG_HAVE_MOVE_PUD);
336 }
337 #endif
338
uffd_supports_page_table_move(struct pagetable_move_control * pmc)339 static inline bool uffd_supports_page_table_move(struct pagetable_move_control *pmc)
340 {
341 /*
342 * If we are moving a VMA that has uffd-wp registered but with
343 * remap events disabled (new VMA will not be registered with uffd), we
344 * need to ensure that the uffd-wp state is cleared from all pgtables.
345 * This means recursing into lower page tables in move_page_tables().
346 *
347 * We might get called with VMAs reversed when recovering from a
348 * failed page table move. In that case, the
349 * "old"-but-actually-"originally new" VMA during recovery will not have
350 * a uffd context. Recursing into lower page tables during the original
351 * move but not during the recovery move will cause trouble, because we
352 * run into already-existing page tables. So check both VMAs.
353 */
354 return !vma_has_uffd_without_event_remap(pmc->old) &&
355 !vma_has_uffd_without_event_remap(pmc->new);
356 }
357
358 #ifdef CONFIG_HAVE_MOVE_PMD
move_normal_pmd(struct pagetable_move_control * pmc,pmd_t * old_pmd,pmd_t * new_pmd)359 static bool move_normal_pmd(struct pagetable_move_control *pmc,
360 pmd_t *old_pmd, pmd_t *new_pmd)
361 {
362 spinlock_t *old_ptl, *new_ptl;
363 struct vm_area_struct *vma = pmc->old;
364 struct mm_struct *mm = vma->vm_mm;
365 bool res = false;
366 pmd_t pmd;
367
368 if (!arch_supports_page_table_move())
369 return false;
370 if (!uffd_supports_page_table_move(pmc))
371 return false;
372 /*
373 * The destination pmd shouldn't be established, free_pgtables()
374 * should have released it.
375 *
376 * However, there's a case during execve() where we use mremap
377 * to move the initial stack, and in that case the target area
378 * may overlap the source area (always moving down).
379 *
380 * If everything is PMD-aligned, that works fine, as moving
381 * each pmd down will clear the source pmd. But if we first
382 * have a few 4kB-only pages that get moved down, and then
383 * hit the "now the rest is PMD-aligned, let's do everything
384 * one pmd at a time", we will still have the old (now empty
385 * of any 4kB pages, but still there) PMD in the page table
386 * tree.
387 *
388 * Warn on it once - because we really should try to figure
389 * out how to do this better - but then say "I won't move
390 * this pmd".
391 *
392 * One alternative might be to just unmap the target pmd at
393 * this point, and verify that it really is empty. We'll see.
394 */
395 if (WARN_ON_ONCE(!pmd_none(*new_pmd)))
396 return false;
397
398 /*
399 * We don't have to worry about the ordering of src and dst
400 * ptlocks because exclusive mmap_lock prevents deadlock.
401 */
402 old_ptl = pmd_lock(mm, old_pmd);
403 new_ptl = pmd_lockptr(mm, new_pmd);
404 if (new_ptl != old_ptl)
405 spin_lock_nested(new_ptl, SINGLE_DEPTH_NESTING);
406
407 pmd = *old_pmd;
408
409 /* Racing with collapse? */
410 if (unlikely(!pmd_present(pmd) || pmd_leaf(pmd)))
411 goto out_unlock;
412 /* Clear the pmd */
413 pmd_clear(old_pmd);
414 res = true;
415
416 VM_BUG_ON(!pmd_none(*new_pmd));
417
418 pmd_populate(mm, new_pmd, pmd_pgtable(pmd));
419 flush_tlb_range(vma, pmc->old_addr, pmc->old_addr + PMD_SIZE);
420 out_unlock:
421 if (new_ptl != old_ptl)
422 spin_unlock(new_ptl);
423 spin_unlock(old_ptl);
424
425 return res;
426 }
427 #else
move_normal_pmd(struct pagetable_move_control * pmc,pmd_t * old_pmd,pmd_t * new_pmd)428 static inline bool move_normal_pmd(struct pagetable_move_control *pmc,
429 pmd_t *old_pmd, pmd_t *new_pmd)
430 {
431 return false;
432 }
433 #endif
434
435 #if CONFIG_PGTABLE_LEVELS > 2 && defined(CONFIG_HAVE_MOVE_PUD)
move_normal_pud(struct pagetable_move_control * pmc,pud_t * old_pud,pud_t * new_pud)436 static bool move_normal_pud(struct pagetable_move_control *pmc,
437 pud_t *old_pud, pud_t *new_pud)
438 {
439 spinlock_t *old_ptl, *new_ptl;
440 struct vm_area_struct *vma = pmc->old;
441 struct mm_struct *mm = vma->vm_mm;
442 pud_t pud;
443
444 if (!arch_supports_page_table_move())
445 return false;
446 if (!uffd_supports_page_table_move(pmc))
447 return false;
448 /*
449 * The destination pud shouldn't be established, free_pgtables()
450 * should have released it.
451 */
452 if (WARN_ON_ONCE(!pud_none(*new_pud)))
453 return false;
454
455 /*
456 * We don't have to worry about the ordering of src and dst
457 * ptlocks because exclusive mmap_lock prevents deadlock.
458 */
459 old_ptl = pud_lock(mm, old_pud);
460 new_ptl = pud_lockptr(mm, new_pud);
461 if (new_ptl != old_ptl)
462 spin_lock_nested(new_ptl, SINGLE_DEPTH_NESTING);
463
464 /* Clear the pud */
465 pud = *old_pud;
466 pud_clear(old_pud);
467
468 VM_BUG_ON(!pud_none(*new_pud));
469
470 pud_populate(mm, new_pud, pud_pgtable(pud));
471 flush_tlb_range(vma, pmc->old_addr, pmc->old_addr + PUD_SIZE);
472 if (new_ptl != old_ptl)
473 spin_unlock(new_ptl);
474 spin_unlock(old_ptl);
475
476 return true;
477 }
478 #else
move_normal_pud(struct pagetable_move_control * pmc,pud_t * old_pud,pud_t * new_pud)479 static inline bool move_normal_pud(struct pagetable_move_control *pmc,
480 pud_t *old_pud, pud_t *new_pud)
481 {
482 return false;
483 }
484 #endif
485
486 #if defined(CONFIG_TRANSPARENT_HUGEPAGE) && defined(CONFIG_HAVE_ARCH_TRANSPARENT_HUGEPAGE_PUD)
move_huge_pud(struct pagetable_move_control * pmc,pud_t * old_pud,pud_t * new_pud)487 static bool move_huge_pud(struct pagetable_move_control *pmc,
488 pud_t *old_pud, pud_t *new_pud)
489 {
490 spinlock_t *old_ptl, *new_ptl;
491 struct vm_area_struct *vma = pmc->old;
492 struct mm_struct *mm = vma->vm_mm;
493 pud_t pud;
494
495 /*
496 * The destination pud shouldn't be established, free_pgtables()
497 * should have released it.
498 */
499 if (WARN_ON_ONCE(!pud_none(*new_pud)))
500 return false;
501
502 /*
503 * We don't have to worry about the ordering of src and dst
504 * ptlocks because exclusive mmap_lock prevents deadlock.
505 */
506 old_ptl = pud_lock(mm, old_pud);
507 new_ptl = pud_lockptr(mm, new_pud);
508 if (new_ptl != old_ptl)
509 spin_lock_nested(new_ptl, SINGLE_DEPTH_NESTING);
510
511 /* Clear the pud */
512 pud = *old_pud;
513 pud_clear(old_pud);
514
515 VM_BUG_ON(!pud_none(*new_pud));
516
517 /* Set the new pud */
518 /* mark soft_ditry when we add pud level soft dirty support */
519 set_pud_at(mm, pmc->new_addr, new_pud, pud);
520 flush_pud_tlb_range(vma, pmc->old_addr, pmc->old_addr + HPAGE_PUD_SIZE);
521 if (new_ptl != old_ptl)
522 spin_unlock(new_ptl);
523 spin_unlock(old_ptl);
524
525 return true;
526 }
527 #else
move_huge_pud(struct pagetable_move_control * pmc,pud_t * old_pud,pud_t * new_pud)528 static bool move_huge_pud(struct pagetable_move_control *pmc,
529 pud_t *old_pud, pud_t *new_pud)
530
531 {
532 WARN_ON_ONCE(1);
533 return false;
534
535 }
536 #endif
537
538 enum pgt_entry {
539 NORMAL_PMD,
540 HPAGE_PMD,
541 NORMAL_PUD,
542 HPAGE_PUD,
543 };
544
545 /*
546 * Returns an extent of the corresponding size for the pgt_entry specified if
547 * valid. Else returns a smaller extent bounded by the end of the source and
548 * destination pgt_entry.
549 */
get_extent(enum pgt_entry entry,struct pagetable_move_control * pmc)550 static __always_inline unsigned long get_extent(enum pgt_entry entry,
551 struct pagetable_move_control *pmc)
552 {
553 unsigned long next, extent, mask, size;
554 unsigned long old_addr = pmc->old_addr;
555 unsigned long old_end = pmc->old_end;
556 unsigned long new_addr = pmc->new_addr;
557
558 switch (entry) {
559 case HPAGE_PMD:
560 case NORMAL_PMD:
561 mask = PMD_MASK;
562 size = PMD_SIZE;
563 break;
564 case HPAGE_PUD:
565 case NORMAL_PUD:
566 mask = PUD_MASK;
567 size = PUD_SIZE;
568 break;
569 default:
570 BUILD_BUG();
571 break;
572 }
573
574 next = (old_addr + size) & mask;
575 /* even if next overflowed, extent below will be ok */
576 extent = next - old_addr;
577 if (extent > old_end - old_addr)
578 extent = old_end - old_addr;
579 next = (new_addr + size) & mask;
580 if (extent > next - new_addr)
581 extent = next - new_addr;
582 return extent;
583 }
584
585 /*
586 * Should move_pgt_entry() acquire the rmap locks? This is either expressed in
587 * the PMC, or overridden in the case of normal, larger page tables.
588 */
should_take_rmap_locks(struct pagetable_move_control * pmc,enum pgt_entry entry)589 static bool should_take_rmap_locks(struct pagetable_move_control *pmc,
590 enum pgt_entry entry)
591 {
592 switch (entry) {
593 case NORMAL_PMD:
594 case NORMAL_PUD:
595 return true;
596 default:
597 return pmc->need_rmap_locks;
598 }
599 }
600
601 /*
602 * Attempts to speedup the move by moving entry at the level corresponding to
603 * pgt_entry. Returns true if the move was successful, else false.
604 */
move_pgt_entry(struct pagetable_move_control * pmc,enum pgt_entry entry,void * old_entry,void * new_entry)605 static bool move_pgt_entry(struct pagetable_move_control *pmc,
606 enum pgt_entry entry, void *old_entry, void *new_entry)
607 {
608 bool moved = false;
609 bool need_rmap_locks = should_take_rmap_locks(pmc, entry);
610
611 /* See comment in move_ptes() */
612 if (need_rmap_locks)
613 take_rmap_locks(pmc->old);
614
615 switch (entry) {
616 case NORMAL_PMD:
617 moved = move_normal_pmd(pmc, old_entry, new_entry);
618 break;
619 case NORMAL_PUD:
620 moved = move_normal_pud(pmc, old_entry, new_entry);
621 break;
622 case HPAGE_PMD:
623 moved = IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE) &&
624 move_huge_pmd(pmc->old, pmc->old_addr, pmc->new_addr, old_entry,
625 new_entry);
626 break;
627 case HPAGE_PUD:
628 moved = IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE) &&
629 move_huge_pud(pmc, old_entry, new_entry);
630 break;
631
632 default:
633 WARN_ON_ONCE(1);
634 break;
635 }
636
637 if (need_rmap_locks)
638 drop_rmap_locks(pmc->old);
639
640 return moved;
641 }
642
643 /*
644 * A helper to check if aligning down is OK. The aligned address should fall
645 * on *no mapping*. For the stack moving down, that's a special move within
646 * the VMA that is created to span the source and destination of the move,
647 * so we make an exception for it.
648 */
can_align_down(struct pagetable_move_control * pmc,struct vm_area_struct * vma,unsigned long addr_to_align,unsigned long mask)649 static bool can_align_down(struct pagetable_move_control *pmc,
650 struct vm_area_struct *vma, unsigned long addr_to_align,
651 unsigned long mask)
652 {
653 unsigned long addr_masked = addr_to_align & mask;
654
655 /*
656 * If @addr_to_align of either source or destination is not the beginning
657 * of the corresponding VMA, we can't align down or we will destroy part
658 * of the current mapping.
659 */
660 if (!pmc->for_stack && vma->vm_start != addr_to_align)
661 return false;
662
663 /* In the stack case we explicitly permit in-VMA alignment. */
664 if (pmc->for_stack && addr_masked >= vma->vm_start)
665 return true;
666
667 /*
668 * Make sure the realignment doesn't cause the address to fall on an
669 * existing mapping.
670 */
671 return find_vma_intersection(vma->vm_mm, addr_masked, vma->vm_start) == NULL;
672 }
673
674 /*
675 * Determine if are in fact able to realign for efficiency to a higher page
676 * table boundary.
677 */
can_realign_addr(struct pagetable_move_control * pmc,unsigned long pagetable_mask)678 static bool can_realign_addr(struct pagetable_move_control *pmc,
679 unsigned long pagetable_mask)
680 {
681 unsigned long align_mask = ~pagetable_mask;
682 unsigned long old_align = pmc->old_addr & align_mask;
683 unsigned long new_align = pmc->new_addr & align_mask;
684 unsigned long pagetable_size = align_mask + 1;
685 unsigned long old_align_next = pagetable_size - old_align;
686
687 /*
688 * We don't want to have to go hunting for VMAs from the end of the old
689 * VMA to the next page table boundary, also we want to make sure the
690 * operation is worthwhile.
691 *
692 * So ensure that we only perform this realignment if the end of the
693 * range being copied reaches or crosses the page table boundary.
694 *
695 * boundary boundary
696 * .<- old_align -> .
697 * . |----------------.-----------|
698 * . | vma . |
699 * . |----------------.-----------|
700 * . <----------------.----------->
701 * . len_in
702 * <------------------------------->
703 * . pagetable_size .
704 * . <---------------->
705 * . old_align_next .
706 */
707 if (pmc->len_in < old_align_next)
708 return false;
709
710 /* Skip if the addresses are already aligned. */
711 if (old_align == 0)
712 return false;
713
714 /* Only realign if the new and old addresses are mutually aligned. */
715 if (old_align != new_align)
716 return false;
717
718 /* Ensure realignment doesn't cause overlap with existing mappings. */
719 if (!can_align_down(pmc, pmc->old, pmc->old_addr, pagetable_mask) ||
720 !can_align_down(pmc, pmc->new, pmc->new_addr, pagetable_mask))
721 return false;
722
723 return true;
724 }
725
726 /*
727 * Opportunistically realign to specified boundary for faster copy.
728 *
729 * Consider an mremap() of a VMA with page table boundaries as below, and no
730 * preceding VMAs from the lower page table boundary to the start of the VMA,
731 * with the end of the range reaching or crossing the page table boundary.
732 *
733 * boundary boundary
734 * . |----------------.-----------|
735 * . | vma . |
736 * . |----------------.-----------|
737 * . pmc->old_addr . pmc->old_end
738 * . <---------------------------->
739 * . move these page tables
740 *
741 * If we proceed with moving page tables in this scenario, we will have a lot of
742 * work to do traversing old page tables and establishing new ones in the
743 * destination across multiple lower level page tables.
744 *
745 * The idea here is simply to align pmc->old_addr, pmc->new_addr down to the
746 * page table boundary, so we can simply copy a single page table entry for the
747 * aligned portion of the VMA instead:
748 *
749 * boundary boundary
750 * . |----------------.-----------|
751 * . | vma . |
752 * . |----------------.-----------|
753 * pmc->old_addr . pmc->old_end
754 * <------------------------------------------->
755 * . move these page tables
756 */
try_realign_addr(struct pagetable_move_control * pmc,unsigned long pagetable_mask)757 static void try_realign_addr(struct pagetable_move_control *pmc,
758 unsigned long pagetable_mask)
759 {
760
761 if (!can_realign_addr(pmc, pagetable_mask))
762 return;
763
764 /*
765 * Simply align to page table boundaries. Note that we do NOT update the
766 * pmc->old_end value, and since the move_page_tables() operation spans
767 * from [old_addr, old_end) (offsetting new_addr as it is performed),
768 * this simply changes the start of the copy, not the end.
769 */
770 pmc->old_addr &= pagetable_mask;
771 pmc->new_addr &= pagetable_mask;
772 }
773
774 /* Is the page table move operation done? */
pmc_done(struct pagetable_move_control * pmc)775 static bool pmc_done(struct pagetable_move_control *pmc)
776 {
777 return pmc->old_addr >= pmc->old_end;
778 }
779
780 /* Advance to the next page table, offset by extent bytes. */
pmc_next(struct pagetable_move_control * pmc,unsigned long extent)781 static void pmc_next(struct pagetable_move_control *pmc, unsigned long extent)
782 {
783 pmc->old_addr += extent;
784 pmc->new_addr += extent;
785 }
786
787 /*
788 * Determine how many bytes in the specified input range have had their page
789 * tables moved so far.
790 */
pmc_progress(struct pagetable_move_control * pmc)791 static unsigned long pmc_progress(struct pagetable_move_control *pmc)
792 {
793 unsigned long orig_old_addr = pmc->old_end - pmc->len_in;
794 unsigned long old_addr = pmc->old_addr;
795
796 /*
797 * Prevent negative return values when {old,new}_addr was realigned but
798 * we broke out of the loop in move_page_tables() for the first PMD
799 * itself.
800 */
801 return old_addr < orig_old_addr ? 0 : old_addr - orig_old_addr;
802 }
803
move_page_tables(struct pagetable_move_control * pmc)804 unsigned long move_page_tables(struct pagetable_move_control *pmc)
805 {
806 unsigned long extent;
807 struct mmu_notifier_range range;
808 pmd_t *old_pmd, *new_pmd;
809 pud_t *old_pud, *new_pud;
810 struct mm_struct *mm = pmc->old->vm_mm;
811
812 if (!pmc->len_in)
813 return 0;
814
815 if (is_vm_hugetlb_page(pmc->old))
816 return move_hugetlb_page_tables(pmc->old, pmc->new, pmc->old_addr,
817 pmc->new_addr, pmc->len_in);
818
819 /*
820 * If possible, realign addresses to PMD boundary for faster copy.
821 * Only realign if the mremap copying hits a PMD boundary.
822 */
823 try_realign_addr(pmc, PMD_MASK);
824
825 flush_cache_range(pmc->old, pmc->old_addr, pmc->old_end);
826 mmu_notifier_range_init(&range, MMU_NOTIFY_UNMAP, 0, mm,
827 pmc->old_addr, pmc->old_end);
828 mmu_notifier_invalidate_range_start(&range);
829
830 for (; !pmc_done(pmc); pmc_next(pmc, extent)) {
831 cond_resched();
832 /*
833 * If extent is PUD-sized try to speed up the move by moving at the
834 * PUD level if possible.
835 */
836 extent = get_extent(NORMAL_PUD, pmc);
837
838 old_pud = get_old_pud(mm, pmc->old_addr);
839 if (!old_pud)
840 continue;
841 new_pud = alloc_new_pud(mm, pmc->new_addr);
842 if (!new_pud)
843 break;
844 if (pud_trans_huge(*old_pud)) {
845 if (extent == HPAGE_PUD_SIZE) {
846 move_pgt_entry(pmc, HPAGE_PUD, old_pud, new_pud);
847 /* We ignore and continue on error? */
848 continue;
849 }
850 } else if (IS_ENABLED(CONFIG_HAVE_MOVE_PUD) && extent == PUD_SIZE) {
851 if (move_pgt_entry(pmc, NORMAL_PUD, old_pud, new_pud))
852 continue;
853 }
854
855 extent = get_extent(NORMAL_PMD, pmc);
856 old_pmd = get_old_pmd(mm, pmc->old_addr);
857 if (!old_pmd)
858 continue;
859 new_pmd = alloc_new_pmd(mm, pmc->new_addr);
860 if (!new_pmd)
861 break;
862 again:
863 if (pmd_is_huge(*old_pmd)) {
864 if (extent == HPAGE_PMD_SIZE &&
865 move_pgt_entry(pmc, HPAGE_PMD, old_pmd, new_pmd))
866 continue;
867 split_huge_pmd(pmc->old, old_pmd, pmc->old_addr);
868 } else if (IS_ENABLED(CONFIG_HAVE_MOVE_PMD) &&
869 extent == PMD_SIZE) {
870 /*
871 * If the extent is PMD-sized, try to speed the move by
872 * moving at the PMD level if possible.
873 */
874 if (move_pgt_entry(pmc, NORMAL_PMD, old_pmd, new_pmd))
875 continue;
876 }
877 if (pmd_none(*old_pmd))
878 continue;
879 if (pte_alloc(pmc->new->vm_mm, new_pmd))
880 break;
881 if (move_ptes(pmc, extent, old_pmd, new_pmd) < 0)
882 goto again;
883 }
884
885 mmu_notifier_invalidate_range_end(&range);
886
887 return pmc_progress(pmc);
888 }
889
890 /* Set vrm->delta to the difference in VMA size specified by user. */
vrm_set_delta(struct vma_remap_struct * vrm)891 static void vrm_set_delta(struct vma_remap_struct *vrm)
892 {
893 vrm->delta = abs_diff(vrm->old_len, vrm->new_len);
894 }
895
896 /* Determine what kind of remap this is - shrink, expand or no resize at all. */
vrm_remap_type(struct vma_remap_struct * vrm)897 static enum mremap_type vrm_remap_type(struct vma_remap_struct *vrm)
898 {
899 if (vrm->delta == 0)
900 return MREMAP_NO_RESIZE;
901
902 if (vrm->old_len > vrm->new_len)
903 return MREMAP_SHRINK;
904
905 return MREMAP_EXPAND;
906 }
907
908 /*
909 * When moving a VMA to vrm->new_adr, does this result in the new and old VMAs
910 * overlapping?
911 */
vrm_overlaps(struct vma_remap_struct * vrm)912 static bool vrm_overlaps(struct vma_remap_struct *vrm)
913 {
914 unsigned long start_old = vrm->addr;
915 unsigned long start_new = vrm->new_addr;
916 unsigned long end_old = vrm->addr + vrm->old_len;
917 unsigned long end_new = vrm->new_addr + vrm->new_len;
918
919 /*
920 * start_old end_old
921 * |-----------|
922 * | |
923 * |-----------|
924 * |-------------|
925 * | |
926 * |-------------|
927 * start_new end_new
928 */
929 if (end_old > start_new && end_new > start_old)
930 return true;
931
932 return false;
933 }
934
935 /*
936 * Will a new address definitely be assigned? This either if the user specifies
937 * it via MREMAP_FIXED, or if MREMAP_DONTUNMAP is used, indicating we will
938 * always determine a target address.
939 */
vrm_implies_new_addr(struct vma_remap_struct * vrm)940 static bool vrm_implies_new_addr(struct vma_remap_struct *vrm)
941 {
942 return vrm->flags & (MREMAP_FIXED | MREMAP_DONTUNMAP);
943 }
944
945 /*
946 * Find an unmapped area for the requested vrm->new_addr.
947 *
948 * If MREMAP_FIXED then this is equivalent to a MAP_FIXED mmap() call. If only
949 * MREMAP_DONTUNMAP is set, then this is equivalent to providing a hint to
950 * mmap(), otherwise this is equivalent to mmap() specifying a NULL address.
951 *
952 * Returns 0 on success (with vrm->new_addr updated), or an error code upon
953 * failure.
954 */
vrm_set_new_addr(struct vma_remap_struct * vrm)955 static unsigned long vrm_set_new_addr(struct vma_remap_struct *vrm)
956 {
957 struct vm_area_struct *vma = vrm->vma;
958 unsigned long map_flags = 0;
959 /* Page Offset _into_ the VMA. */
960 const pgoff_t pgoff = linear_page_index(vma, vrm->addr);
961 unsigned long new_addr = vrm_implies_new_addr(vrm) ? vrm->new_addr : 0;
962 unsigned long res;
963
964 if (vrm->flags & MREMAP_FIXED)
965 map_flags |= MAP_FIXED;
966 if (vma_test(vma, VMA_MAYSHARE_BIT))
967 map_flags |= MAP_SHARED;
968
969 res = get_unmapped_area(vma->vm_file, new_addr, vrm->new_len, pgoff,
970 map_flags);
971 if (IS_ERR_VALUE(res))
972 return res;
973
974 vrm->new_addr = res;
975 return 0;
976 }
977
978 /*
979 * Keep track of pages which have been added to the memory mapping. If the VMA
980 * is accounted, also check to see if there is sufficient memory.
981 *
982 * Returns true on success, false if insufficient memory to charge.
983 */
vrm_calc_charge(struct vma_remap_struct * vrm)984 static bool vrm_calc_charge(struct vma_remap_struct *vrm)
985 {
986 unsigned long charged;
987
988 if (!vma_test(vrm->vma, VMA_ACCOUNT_BIT))
989 return true;
990
991 /*
992 * If we don't unmap the old mapping, then we account the entirety of
993 * the length of the new one. Otherwise it's just the delta in size.
994 */
995 if (vrm->flags & MREMAP_DONTUNMAP)
996 charged = vrm->new_len >> PAGE_SHIFT;
997 else
998 charged = vrm->delta >> PAGE_SHIFT;
999
1000
1001 /* This accounts 'charged' pages of memory. */
1002 if (security_vm_enough_memory_mm(current->mm, charged))
1003 return false;
1004
1005 vrm->charged = charged;
1006 return true;
1007 }
1008
1009 /*
1010 * an error has occurred so we will not be using vrm->charged memory. Unaccount
1011 * this memory if the VMA is accounted.
1012 */
vrm_uncharge(struct vma_remap_struct * vrm)1013 static void vrm_uncharge(struct vma_remap_struct *vrm)
1014 {
1015 if (!vma_test(vrm->vma, VMA_ACCOUNT_BIT))
1016 return;
1017
1018 vm_unacct_memory(vrm->charged);
1019 vrm->charged = 0;
1020 }
1021
1022 /*
1023 * Update mm exec_vm, stack_vm, data_vm, and locked_vm fields as needed to
1024 * account for 'bytes' memory used, and if locked, indicate this in the VRM so
1025 * we can handle this correctly later.
1026 */
vrm_stat_account(struct vma_remap_struct * vrm,unsigned long bytes)1027 static void vrm_stat_account(struct vma_remap_struct *vrm,
1028 unsigned long bytes)
1029 {
1030 unsigned long pages = bytes >> PAGE_SHIFT;
1031 struct mm_struct *mm = current->mm;
1032 struct vm_area_struct *vma = vrm->vma;
1033
1034 vm_stat_account(mm, vma->vm_flags, pages);
1035 if (vma_test(vma, VMA_LOCKED_BIT))
1036 mm->locked_vm += pages;
1037 }
1038
__check_map_count_against_split(struct mm_struct * mm,bool before_unmaps)1039 static bool __check_map_count_against_split(struct mm_struct *mm,
1040 bool before_unmaps)
1041 {
1042 const int sys_map_count = get_sysctl_max_map_count();
1043 int map_count = mm->map_count;
1044
1045 mmap_assert_write_locked(mm);
1046
1047 /*
1048 * At the point of shrinking the VMA, if new_len < old_len, we unmap
1049 * thusly in the worst case:
1050 *
1051 * old_addr+old_len old_addr+old_len
1052 * |---------------.----.---------| |---------------| |---------|
1053 * | . . | -> | +1 | -1 | +1 |
1054 * |---------------.----.---------| |---------------| |---------|
1055 * old_addr+new_len old_addr+new_len
1056 *
1057 * At the point of removing the portion of an existing VMA to make space
1058 * for the moved VMA if MREMAP_FIXED, we unmap thusly in the worst case:
1059 *
1060 * new_addr new_addr+new_len new_addr new_addr+new_len
1061 * |----.---------------.---------| |----| |---------|
1062 * | . . | -> | +1 | -1 | +1 |
1063 * |----.---------------.---------| |----| |---------|
1064 *
1065 * Therefore, before we consider the move anything, we have to account
1066 * for 2 additional VMAs possibly being created upon these unmappings.
1067 */
1068 if (before_unmaps)
1069 map_count += 2;
1070
1071 /*
1072 * At the point of MOVING the VMA:
1073 *
1074 * We start by copying a VMA, which creates an additional VMA if no
1075 * merge occurs, then if not MREMAP_DONTUNMAP, we unmap the source VMA.
1076 * In the worst case we might then observe:
1077 *
1078 * new_addr new_addr+new_len new_addr new_addr+new_len
1079 * |----| |---------| |----|---------------|---------|
1080 * | | | | -> | | +1 | |
1081 * |----| |---------| |----|---------------|---------|
1082 *
1083 * old_addr old_addr+old_len old_addr old_addr+old_len
1084 * |----.---------------.---------| |----| |---------|
1085 * | . . | -> | +1 | -1 | +1 |
1086 * |----.---------------.---------| |----| |---------|
1087 *
1088 * Therefore we must check to ensure we have headroom of 2 additional
1089 * VMAs.
1090 */
1091 return map_count + 2 <= sys_map_count;
1092 }
1093
1094 /* Do we violate the map count limit if we split VMAs when moving the VMA? */
check_map_count_against_split(void)1095 static bool check_map_count_against_split(void)
1096 {
1097 return __check_map_count_against_split(current->mm,
1098 /*before_unmaps=*/false);
1099 }
1100
1101 /* Do we violate the map count limit if we split VMAs prior to early unmaps? */
check_map_count_against_split_early(void)1102 static bool check_map_count_against_split_early(void)
1103 {
1104 return __check_map_count_against_split(current->mm,
1105 /*before_unmaps=*/true);
1106 }
1107
1108 /*
1109 * Perform checks before attempting to write a VMA prior to it being
1110 * moved.
1111 */
prep_move_vma(struct vma_remap_struct * vrm)1112 static unsigned long prep_move_vma(struct vma_remap_struct *vrm)
1113 {
1114 unsigned long err = 0;
1115 struct vm_area_struct *vma = vrm->vma;
1116 unsigned long old_addr = vrm->addr;
1117 unsigned long old_len = vrm->old_len;
1118 vm_flags_t dummy = vma->vm_flags;
1119
1120 /*
1121 * We'd prefer to avoid failure later on in do_munmap: we copy a VMA,
1122 * which may not merge, then (if MREMAP_DONTUNMAP is not set) unmap the
1123 * source, which may split, causing a net increase of 2 mappings.
1124 */
1125 if (!check_map_count_against_split())
1126 return -ENOMEM;
1127
1128 if (vma->vm_ops && vma->vm_ops->may_split) {
1129 if (vma->vm_start != old_addr)
1130 err = vma->vm_ops->may_split(vma, old_addr);
1131 if (!err && vma->vm_end != old_addr + old_len)
1132 err = vma->vm_ops->may_split(vma, old_addr + old_len);
1133 if (err)
1134 return err;
1135 }
1136
1137 /*
1138 * Advise KSM to break any KSM pages in the area to be moved:
1139 * it would be confusing if they were to turn up at the new
1140 * location, where they happen to coincide with different KSM
1141 * pages recently unmapped. But leave vma->vm_flags as it was,
1142 * so KSM can come around to merge on vma and new_vma afterwards.
1143 */
1144 err = ksm_madvise(vma, old_addr, old_addr + old_len,
1145 MADV_UNMERGEABLE, &dummy);
1146 if (err)
1147 return err;
1148
1149 return 0;
1150 }
1151
1152 /*
1153 * Unmap source VMA for VMA move, turning it from a copy to a move, being
1154 * careful to ensure we do not underflow memory account while doing so if an
1155 * accountable move.
1156 *
1157 * This is best effort, if we fail to unmap then we simply try to correct
1158 * accounting and exit.
1159 */
unmap_source_vma(struct vma_remap_struct * vrm)1160 static void unmap_source_vma(struct vma_remap_struct *vrm)
1161 {
1162 struct mm_struct *mm = current->mm;
1163 unsigned long addr = vrm->addr;
1164 unsigned long len = vrm->old_len;
1165 struct vm_area_struct *vma = vrm->vma;
1166 VMA_ITERATOR(vmi, mm, addr);
1167 int err;
1168 unsigned long vm_start;
1169 unsigned long vm_end;
1170 /*
1171 * It might seem odd that we check for MREMAP_DONTUNMAP here, given this
1172 * function implies that we unmap the original VMA, which seems
1173 * contradictory.
1174 *
1175 * However, this occurs when this operation was attempted and an error
1176 * arose, in which case we _do_ wish to unmap the _new_ VMA, which means
1177 * we actually _do_ want it be unaccounted.
1178 */
1179 bool accountable_move = vma_test(vma, VMA_ACCOUNT_BIT) &&
1180 !(vrm->flags & MREMAP_DONTUNMAP);
1181
1182 /*
1183 * So we perform a trick here to prevent incorrect accounting. Any merge
1184 * or new VMA allocation performed in copy_vma() does not adjust
1185 * accounting, it is expected that callers handle this.
1186 *
1187 * And indeed we already have, accounting appropriately in the case of
1188 * both in vrm_charge().
1189 *
1190 * However, when we unmap the existing VMA (to effect the move), this
1191 * code will, if the VMA has VM_ACCOUNT set, attempt to unaccount
1192 * removed pages.
1193 *
1194 * To avoid this we temporarily clear this flag, reinstating on any
1195 * portions of the original VMA that remain.
1196 */
1197 if (accountable_move) {
1198 vma_clear_flags(vma, VMA_ACCOUNT_BIT);
1199 /* We are about to split vma, so store the start/end. */
1200 vm_start = vma->vm_start;
1201 vm_end = vma->vm_end;
1202 }
1203
1204 err = do_vmi_munmap(&vmi, mm, addr, len, vrm->uf_unmap, /* unlock= */false);
1205 vrm->vma = NULL; /* Invalidated. */
1206 vrm->vmi_needs_invalidate = true;
1207 if (err) {
1208 /* OOM: unable to split vma, just get accounts right */
1209 vm_acct_memory(len >> PAGE_SHIFT);
1210 return;
1211 }
1212
1213 /*
1214 * If we mremap() from a VMA like this:
1215 *
1216 * addr end
1217 * | |
1218 * v v
1219 * |-------------|
1220 * | |
1221 * |-------------|
1222 *
1223 * Having cleared VMA_ACCOUNT_BIT from the whole VMA, after we unmap
1224 * above we'll end up with:
1225 *
1226 * addr end
1227 * | |
1228 * v v
1229 * |---| |---|
1230 * | A | | B |
1231 * |---| |---|
1232 *
1233 * The VMI is still pointing at addr, so vma_prev() will give us A, and
1234 * a subsequent or lone vma_next() will give as B.
1235 *
1236 * do_vmi_munmap() will have restored the VMI back to addr.
1237 */
1238 if (accountable_move) {
1239 unsigned long end = addr + len;
1240
1241 if (vm_start < addr) {
1242 struct vm_area_struct *prev = vma_prev(&vmi);
1243
1244 vma_start_write(prev);
1245 vma_set_flags(prev, VMA_ACCOUNT_BIT);
1246 }
1247
1248 if (vm_end > end) {
1249 struct vm_area_struct *next = vma_next(&vmi);
1250
1251 vma_start_write(next);
1252 vma_set_flags(next, VMA_ACCOUNT_BIT);
1253 }
1254 }
1255 }
1256
1257 /*
1258 * Copy vrm->vma over to vrm->new_addr possibly adjusting size as part of the
1259 * process. Additionally handle an error occurring on moving of page tables,
1260 * where we reset vrm state to cause unmapping of the new VMA.
1261 *
1262 * Outputs the newly installed VMA to new_vma_ptr. Returns 0 on success or an
1263 * error code.
1264 */
copy_vma_and_data(struct vma_remap_struct * vrm,struct vm_area_struct ** new_vma_ptr)1265 static int copy_vma_and_data(struct vma_remap_struct *vrm,
1266 struct vm_area_struct **new_vma_ptr)
1267 {
1268 const pgoff_t new_pgoff = linear_page_index(vrm->vma, vrm->addr);
1269 const pgoff_t new_anon_pgoff =
1270 __linear_anon_page_index(vrm->vma, vrm->addr);
1271 struct vm_area_struct *vma = vrm->vma;
1272 struct vm_area_struct *new_vma;
1273 unsigned long moved_len;
1274 int err = 0;
1275 PAGETABLE_MOVE(pmc, NULL, NULL, vrm->addr, vrm->new_addr, vrm->old_len);
1276
1277 new_vma = copy_vma(&vma, vrm->new_addr, vrm->new_len, new_pgoff,
1278 new_anon_pgoff, &pmc.need_rmap_locks);
1279 if (!new_vma) {
1280 vrm_uncharge(vrm);
1281 *new_vma_ptr = NULL;
1282 return -ENOMEM;
1283 }
1284 /* By merging, we may have invalidated any iterator in use. */
1285 if (vma != vrm->vma)
1286 vrm->vmi_needs_invalidate = true;
1287
1288 vrm->vma = vma;
1289 pmc.old = vma;
1290 pmc.new = new_vma;
1291
1292 moved_len = move_page_tables(&pmc);
1293 if (moved_len < vrm->old_len)
1294 err = -ENOMEM;
1295 else if (vma->vm_ops && vma->vm_ops->mremap)
1296 err = vma->vm_ops->mremap(new_vma);
1297
1298 if (unlikely(err)) {
1299 PAGETABLE_MOVE(pmc_revert, new_vma, vma, vrm->new_addr,
1300 vrm->addr, moved_len);
1301
1302 /*
1303 * On error, move entries back from new area to old,
1304 * which will succeed since page tables still there,
1305 * and then proceed to unmap new area instead of old.
1306 */
1307 pmc_revert.need_rmap_locks = true;
1308 move_page_tables(&pmc_revert);
1309
1310 vrm->vma = new_vma;
1311 vrm->old_len = vrm->new_len;
1312 vrm->addr = vrm->new_addr;
1313 } else {
1314 mremap_userfaultfd_prep(new_vma, vrm->uf);
1315 }
1316
1317 fixup_hugetlb_reservations(vma);
1318
1319 *new_vma_ptr = new_vma;
1320 return err;
1321 }
1322
1323 /*
1324 * Perform final tasks for MADV_DONTUNMAP operation, clearing mlock() flag on
1325 * remaining VMA by convention (it cannot be mlock()'d any longer, as pages in
1326 * range are no longer mapped), and removing anon_vma_chain links from it if the
1327 * entire VMA was copied over.
1328 */
dontunmap_complete(struct vma_remap_struct * vrm,struct vm_area_struct * new_vma)1329 static void dontunmap_complete(struct vma_remap_struct *vrm,
1330 struct vm_area_struct *new_vma)
1331 {
1332 unsigned long start = vrm->addr;
1333 unsigned long end = vrm->addr + vrm->old_len;
1334 struct vm_area_struct *vma = vrm->vma;
1335 unsigned long old_start = vma->vm_start;
1336 unsigned long old_end = vma->vm_end;
1337
1338 /* We always clear VMA_LOCKED[ONFAULT]_BIT on the old VMA. */
1339 vma_clear_flags_mask(vma, VMA_LOCKED_MASK);
1340
1341 /*
1342 * anon_vma links of the old vma is no longer needed after its page
1343 * table has been moved.
1344 */
1345 if (new_vma != vma && start == old_start && end == old_end) {
1346 const pgoff_t pgoff_unfaulted = vma->vm_start >> PAGE_SHIFT;
1347
1348 unlink_anon_vmas(vma);
1349 /*
1350 * The VMA is now unfaulted and it is an invariant that
1351 * unfaulted anonymous VMAs have page offset equal to
1352 * vma->vm_start >> PAGE_SHIFT.
1353 */
1354 vma_set_anon_pgoff(vma, pgoff_unfaulted);
1355 if (vma_is_anonymous(vma) && !vma->vm_file)
1356 vma_set_pgoff(vma, pgoff_unfaulted);
1357 }
1358 }
1359
move_vma(struct vma_remap_struct * vrm)1360 static unsigned long move_vma(struct vma_remap_struct *vrm)
1361 {
1362 const bool is_dontunmap = vrm->flags & MREMAP_DONTUNMAP;
1363 struct mm_struct *mm = current->mm;
1364 struct vm_area_struct *new_vma;
1365 unsigned long hiwater_vm;
1366 int err;
1367
1368 err = prep_move_vma(vrm);
1369 if (err)
1370 return err;
1371
1372 /*
1373 * If accounted, determine the number of bytes the operation will
1374 * charge.
1375 */
1376 if (!vrm_calc_charge(vrm))
1377 return -ENOMEM;
1378
1379 /* We don't want racing faults. */
1380 vma_start_write(vrm->vma);
1381
1382 /* Perform copy step. */
1383 err = copy_vma_and_data(vrm, &new_vma);
1384 /*
1385 * If we established the copied-to VMA, we attempt to recover from the
1386 * error by setting the destination VMA to the source VMA and unmapping
1387 * it below.
1388 */
1389 if (err && !new_vma)
1390 return err;
1391
1392 /*
1393 * If we failed to move page tables we still do total_vm increment
1394 * since do_munmap() will decrement it by old_len == new_len.
1395 *
1396 * Since total_vm is about to be raised artificially high for a
1397 * moment, we need to restore high watermark afterwards: if stats
1398 * are taken meanwhile, total_vm and hiwater_vm appear too high.
1399 * If this were a serious issue, we'd add a flag to do_munmap().
1400 */
1401 hiwater_vm = mm->hiwater_vm;
1402
1403 if (unlikely(is_dontunmap && !err))
1404 dontunmap_complete(vrm, new_vma);
1405 vrm_stat_account(vrm, vrm->new_len);
1406 if (!is_dontunmap || err)
1407 unmap_source_vma(vrm);
1408
1409 mm->hiwater_vm = hiwater_vm;
1410
1411 return err ? (unsigned long)err : vrm->new_addr;
1412 }
1413
1414 /*
1415 * The user has requested that the VMA be shrunk (i.e., old_len > new_len), so
1416 * execute this, optionally dropping the mmap lock when we do so.
1417 *
1418 * In both cases this invalidates the VMA, however if we don't drop the lock,
1419 * then load the correct VMA into vrm->vma afterwards.
1420 */
shrink_vma(struct vma_remap_struct * vrm,bool drop_lock)1421 static unsigned long shrink_vma(struct vma_remap_struct *vrm,
1422 bool drop_lock)
1423 {
1424 struct mm_struct *mm = current->mm;
1425 unsigned long unmap_start = vrm->addr + vrm->new_len;
1426 unsigned long unmap_bytes = vrm->delta;
1427 unsigned long res;
1428 VMA_ITERATOR(vmi, mm, unmap_start);
1429
1430 VM_BUG_ON(vrm->remap_type != MREMAP_SHRINK);
1431
1432 res = do_vmi_munmap(&vmi, mm, unmap_start, unmap_bytes,
1433 vrm->uf_unmap, drop_lock);
1434 vrm->vma = NULL; /* Invalidated. */
1435 if (res)
1436 return res;
1437
1438 /*
1439 * If we've not dropped the lock, then we should reload the VMA to
1440 * replace the invalidated VMA with the one that may have now been
1441 * split.
1442 */
1443 if (drop_lock) {
1444 vrm->mmap_locked = false;
1445 } else {
1446 vrm->vma = vma_lookup(mm, vrm->addr);
1447 if (!vrm->vma)
1448 return -EFAULT;
1449 }
1450
1451 return 0;
1452 }
1453
1454 /*
1455 * mremap_to() - remap a vma to a new location.
1456 * Returns: The new address of the vma or an error.
1457 */
mremap_to(struct vma_remap_struct * vrm)1458 static unsigned long mremap_to(struct vma_remap_struct *vrm)
1459 {
1460 struct mm_struct *mm = current->mm;
1461 unsigned long err;
1462
1463 if (vrm->flags & MREMAP_FIXED) {
1464 /*
1465 * In mremap_to().
1466 * VMA is moved to dst address, and munmap dst first.
1467 * do_munmap will check if dst is sealed.
1468 */
1469 err = do_munmap(mm, vrm->new_addr, vrm->new_len,
1470 vrm->uf_unmap_early);
1471 vrm->vma = NULL; /* Invalidated. */
1472 vrm->vmi_needs_invalidate = true;
1473 if (err)
1474 return err;
1475
1476 /*
1477 * If we remap a portion of a VMA elsewhere in the same VMA,
1478 * this can invalidate the old VMA. Reset.
1479 */
1480 vrm->vma = vma_lookup(mm, vrm->addr);
1481 if (!vrm->vma)
1482 return -EFAULT;
1483 }
1484
1485 if (vrm->remap_type == MREMAP_SHRINK) {
1486 err = shrink_vma(vrm, /* drop_lock= */false);
1487 if (err)
1488 return err;
1489
1490 /* Set up for the move now shrink has been executed. */
1491 vrm->old_len = vrm->new_len;
1492 }
1493
1494 /* MREMAP_DONTUNMAP expands by old_len since old_len == new_len */
1495 if (vrm->flags & MREMAP_DONTUNMAP) {
1496 vma_flags_t vma_flags = vrm->vma->flags;
1497 unsigned long pages = vrm->old_len >> PAGE_SHIFT;
1498
1499 if (!may_expand_vm(mm, &vma_flags, pages))
1500 return -ENOMEM;
1501 }
1502
1503 err = vrm_set_new_addr(vrm);
1504 if (err)
1505 return err;
1506
1507 return move_vma(vrm);
1508 }
1509
vma_expandable(struct vm_area_struct * vma,unsigned long delta)1510 static int vma_expandable(struct vm_area_struct *vma, unsigned long delta)
1511 {
1512 unsigned long end = vma->vm_end + delta;
1513
1514 if (end < vma->vm_end) /* overflow */
1515 return 0;
1516 if (find_vma_intersection(vma->vm_mm, vma->vm_end, end))
1517 return 0;
1518 if (get_unmapped_area(NULL, vma->vm_start, end - vma->vm_start,
1519 0, MAP_FIXED) & ~PAGE_MASK)
1520 return 0;
1521 return 1;
1522 }
1523
1524 /* Determine whether we are actually able to execute an in-place expansion. */
vrm_can_expand_in_place(struct vma_remap_struct * vrm)1525 static bool vrm_can_expand_in_place(struct vma_remap_struct *vrm)
1526 {
1527 /* Number of bytes from vrm->addr to end of VMA. */
1528 unsigned long suffix_bytes = vrm->vma->vm_end - vrm->addr;
1529
1530 /* If end of range aligns to end of VMA, we can just expand in-place. */
1531 if (suffix_bytes != vrm->old_len)
1532 return false;
1533
1534 /* Check whether this is feasible. */
1535 if (!vma_expandable(vrm->vma, vrm->delta))
1536 return false;
1537
1538 return true;
1539 }
1540
1541 /*
1542 * We know we can expand the VMA in-place by delta pages, so do so.
1543 *
1544 * If we discover the VMA is locked, update mm_struct statistics accordingly and
1545 * indicate so to the caller.
1546 */
expand_vma_in_place(struct vma_remap_struct * vrm)1547 static unsigned long expand_vma_in_place(struct vma_remap_struct *vrm)
1548 {
1549 struct mm_struct *mm = current->mm;
1550 struct vm_area_struct *vma = vrm->vma;
1551 VMA_ITERATOR(vmi, mm, vma->vm_end);
1552
1553 if (!vrm_calc_charge(vrm))
1554 return -ENOMEM;
1555
1556 /*
1557 * Function vma_merge_extend() is called on the
1558 * extension we are adding to the already existing vma,
1559 * vma_merge_extend() will merge this extension with the
1560 * already existing vma (expand operation itself) and
1561 * possibly also with the next vma if it becomes
1562 * adjacent to the expanded vma and otherwise
1563 * compatible.
1564 */
1565 vma = vma_merge_extend(&vmi, vma, vrm->delta);
1566 if (!vma) {
1567 vrm_uncharge(vrm);
1568 return -ENOMEM;
1569 }
1570 vrm->vma = vma;
1571
1572 vrm_stat_account(vrm, vrm->delta);
1573
1574 return 0;
1575 }
1576
align_hugetlb(struct vma_remap_struct * vrm)1577 static bool align_hugetlb(struct vma_remap_struct *vrm)
1578 {
1579 struct hstate *h __maybe_unused = hstate_vma(vrm->vma);
1580
1581 vrm->old_len = ALIGN(vrm->old_len, huge_page_size(h));
1582 vrm->new_len = ALIGN(vrm->new_len, huge_page_size(h));
1583
1584 /* addrs must be huge page aligned */
1585 if (vrm->addr & ~huge_page_mask(h))
1586 return false;
1587 if (vrm->new_addr & ~huge_page_mask(h))
1588 return false;
1589
1590 /*
1591 * Don't allow remap expansion, because the underlying hugetlb
1592 * reservation is not yet capable to handle split reservation.
1593 */
1594 if (vrm->new_len > vrm->old_len)
1595 return false;
1596
1597 return true;
1598 }
1599
1600 /*
1601 * We are mremap()'ing without specifying a fixed address to move to, but are
1602 * requesting that the VMA's size be increased.
1603 *
1604 * Try to do so in-place, if this fails, then move the VMA to a new location to
1605 * action the change.
1606 */
expand_vma(struct vma_remap_struct * vrm)1607 static unsigned long expand_vma(struct vma_remap_struct *vrm)
1608 {
1609 unsigned long err;
1610
1611 /*
1612 * [addr, old_len) spans precisely to the end of the VMA, so try to
1613 * expand it in-place.
1614 */
1615 if (vrm_can_expand_in_place(vrm)) {
1616 err = expand_vma_in_place(vrm);
1617 if (err)
1618 return err;
1619
1620 /* OK we're done! */
1621 return vrm->addr;
1622 }
1623
1624 /*
1625 * We weren't able to just expand or shrink the area,
1626 * we need to create a new one and move it.
1627 */
1628
1629 /* We're not allowed to move the VMA, so error out. */
1630 if (!(vrm->flags & MREMAP_MAYMOVE))
1631 return -ENOMEM;
1632
1633 /* Find a new location to move the VMA to. */
1634 err = vrm_set_new_addr(vrm);
1635 if (err)
1636 return err;
1637
1638 return move_vma(vrm);
1639 }
1640
1641 /*
1642 * Attempt to resize the VMA in-place, if we cannot, then move the VMA to the
1643 * first available address to perform the operation.
1644 */
mremap_at(struct vma_remap_struct * vrm)1645 static unsigned long mremap_at(struct vma_remap_struct *vrm)
1646 {
1647 unsigned long res;
1648
1649 switch (vrm->remap_type) {
1650 case MREMAP_INVALID:
1651 break;
1652 case MREMAP_NO_RESIZE:
1653 /* NO-OP CASE - resizing to the same size. */
1654 return vrm->addr;
1655 case MREMAP_SHRINK:
1656 /*
1657 * SHRINK CASE. Can always be done in-place.
1658 *
1659 * Simply unmap the shrunken portion of the VMA. This does all
1660 * the needed commit accounting, and we indicate that the mmap
1661 * lock should be dropped.
1662 */
1663 res = shrink_vma(vrm, /* drop_lock= */true);
1664 if (res)
1665 return res;
1666
1667 return vrm->addr;
1668 case MREMAP_EXPAND:
1669 return expand_vma(vrm);
1670 }
1671
1672 /* Should not be possible. */
1673 WARN_ON_ONCE(1);
1674 return -EINVAL;
1675 }
1676
1677 /*
1678 * Will this operation result in the VMA being expanded or moved and thus need
1679 * to map a new portion of virtual address space?
1680 */
vrm_will_map_new(struct vma_remap_struct * vrm)1681 static bool vrm_will_map_new(struct vma_remap_struct *vrm)
1682 {
1683 if (vrm->remap_type == MREMAP_EXPAND)
1684 return true;
1685
1686 if (vrm_implies_new_addr(vrm))
1687 return true;
1688
1689 return false;
1690 }
1691
1692 /* Does this remap ONLY move mappings? */
vrm_move_only(struct vma_remap_struct * vrm)1693 static bool vrm_move_only(struct vma_remap_struct *vrm)
1694 {
1695 if (!(vrm->flags & MREMAP_FIXED))
1696 return false;
1697
1698 if (vrm->old_len != vrm->new_len)
1699 return false;
1700
1701 return true;
1702 }
1703
notify_uffd(struct vma_remap_struct * vrm,bool failed)1704 static void notify_uffd(struct vma_remap_struct *vrm, bool failed)
1705 {
1706 struct mm_struct *mm = current->mm;
1707
1708 /* Regardless of success/failure, we always notify of any unmaps. */
1709 userfaultfd_unmap_complete(mm, vrm->uf_unmap_early);
1710 if (failed)
1711 mremap_userfaultfd_fail(vrm->uf);
1712 else
1713 mremap_userfaultfd_complete(vrm->uf, vrm->addr,
1714 vrm->new_addr, vrm->old_len);
1715 userfaultfd_unmap_complete(mm, vrm->uf_unmap);
1716 }
1717
vma_multi_allowed(struct vm_area_struct * vma)1718 static bool vma_multi_allowed(struct vm_area_struct *vma)
1719 {
1720 struct file *file = vma->vm_file;
1721
1722 /*
1723 * We can't support moving multiple uffd VMAs as notify requires
1724 * mmap lock to be dropped.
1725 */
1726 if (userfaultfd_armed(vma))
1727 return false;
1728
1729 /*
1730 * Custom get unmapped area might result in MREMAP_FIXED not
1731 * being obeyed.
1732 */
1733 if (!file || !file->f_op->get_unmapped_area)
1734 return true;
1735 /* Known good. */
1736 if (vma_is_shmem(vma))
1737 return true;
1738 if (is_vm_hugetlb_page(vma))
1739 return true;
1740 if (file->f_op->get_unmapped_area == thp_get_unmapped_area)
1741 return true;
1742
1743 return false;
1744 }
1745
check_prep_vma(struct vma_remap_struct * vrm)1746 static int check_prep_vma(struct vma_remap_struct *vrm)
1747 {
1748 struct vm_area_struct *vma = vrm->vma;
1749 struct mm_struct *mm = current->mm;
1750 unsigned long addr = vrm->addr;
1751 unsigned long old_len, new_len, pgoff;
1752
1753 if (!vma)
1754 return -EFAULT;
1755
1756 /* If mseal()'d, mremap() is prohibited. */
1757 if (vma_is_sealed(vma))
1758 return -EPERM;
1759
1760 /* Align to hugetlb page size, if required. */
1761 if (is_vm_hugetlb_page(vma) && !align_hugetlb(vrm))
1762 return -EINVAL;
1763
1764 vrm_set_delta(vrm);
1765 vrm->remap_type = vrm_remap_type(vrm);
1766 /* For convenience, we set new_addr even if VMA won't move. */
1767 if (!vrm_implies_new_addr(vrm))
1768 vrm->new_addr = addr;
1769
1770 /* Below only meaningful if we expand or move a VMA. */
1771 if (!vrm_will_map_new(vrm))
1772 return 0;
1773
1774 old_len = vrm->old_len;
1775 new_len = vrm->new_len;
1776
1777 /*
1778 * !old_len is a special case where an attempt is made to 'duplicate'
1779 * a mapping. This makes no sense for private mappings as it will
1780 * instead create a fresh/new mapping unrelated to the original. This
1781 * is contrary to the basic idea of mremap which creates new mappings
1782 * based on the original. There are no known use cases for this
1783 * behavior. As a result, fail such attempts.
1784 */
1785 if (!old_len && !vma_test_any(vma, VMA_SHARED_BIT, VMA_MAYSHARE_BIT)) {
1786 pr_warn_once("%s (%d): attempted to duplicate a private mapping with mremap. This is not supported.\n",
1787 current->comm, current->pid);
1788 return -EINVAL;
1789 }
1790
1791 if ((vrm->flags & MREMAP_DONTUNMAP) &&
1792 vma_test_any(vma, VMA_DONTEXPAND_BIT, VMA_PFNMAP_BIT))
1793 return -EINVAL;
1794
1795 /*
1796 * We permit crossing of boundaries for the range being unmapped due to
1797 * a shrink.
1798 */
1799 if (vrm->remap_type == MREMAP_SHRINK)
1800 old_len = new_len;
1801
1802 /*
1803 * We can't remap across the end of VMAs, as another VMA may be
1804 * adjacent:
1805 *
1806 * addr vma->vm_end
1807 * |-----.----------|
1808 * | . |
1809 * |-----.----------|
1810 * .<--------->xxx>
1811 * old_len
1812 *
1813 * We also require that vma->vm_start <= addr < vma->vm_end.
1814 */
1815 if (old_len > vma->vm_end - addr)
1816 return -EFAULT;
1817
1818 if (new_len == old_len)
1819 return 0;
1820
1821 /* We are expanding and the VMA is mlock()'d so we need to populate. */
1822 if (vma_test(vma, VMA_LOCKED_BIT))
1823 vrm->populate_expand = true;
1824
1825 /* Need to be careful about a growing mapping */
1826 pgoff = linear_page_index(vma, addr);
1827 if (pgoff + (new_len >> PAGE_SHIFT) < pgoff)
1828 return -EINVAL;
1829
1830 if (vma_test_any(vma, VMA_DONTEXPAND_BIT, VMA_PFNMAP_BIT))
1831 return -EFAULT;
1832
1833 if (!mlock_future_ok(mm, vma_test(vma, VMA_LOCKED_BIT), vrm->delta))
1834 return -EAGAIN;
1835
1836 if (!may_expand_vm(mm, &vma->flags, vrm->delta >> PAGE_SHIFT))
1837 return -ENOMEM;
1838
1839 return 0;
1840 }
1841
1842 /*
1843 * Are the parameters passed to mremap() valid? If so return 0, otherwise return
1844 * error.
1845 */
check_mremap_params(struct vma_remap_struct * vrm)1846 static unsigned long check_mremap_params(struct vma_remap_struct *vrm)
1847
1848 {
1849 unsigned long addr = vrm->addr;
1850 unsigned long flags = vrm->flags;
1851
1852 /* Ensure no unexpected flag values. */
1853 if (flags & ~(MREMAP_FIXED | MREMAP_MAYMOVE | MREMAP_DONTUNMAP))
1854 return -EINVAL;
1855
1856 /* Start address must be page-aligned. */
1857 if (offset_in_page(addr))
1858 return -EINVAL;
1859
1860 /*
1861 * We allow a zero old-len as a special case
1862 * for DOS-emu "duplicate shm area" thing. But
1863 * a zero new-len is nonsensical.
1864 */
1865 if (!vrm->new_len)
1866 return -EINVAL;
1867
1868 /* Is the new length silly? */
1869 if (vrm->new_len > TASK_SIZE)
1870 return -EINVAL;
1871
1872 /* Remainder of checks are for cases with specific new_addr. */
1873 if (!vrm_implies_new_addr(vrm))
1874 return 0;
1875
1876 /* Is the new address silly? */
1877 if (vrm->new_addr > TASK_SIZE - vrm->new_len)
1878 return -EINVAL;
1879
1880 /* The new address must be page-aligned. */
1881 if (offset_in_page(vrm->new_addr))
1882 return -EINVAL;
1883
1884 /* A fixed address implies a move. */
1885 if (!(flags & MREMAP_MAYMOVE))
1886 return -EINVAL;
1887
1888 /* MREMAP_DONTUNMAP does not allow resizing in the process. */
1889 if (flags & MREMAP_DONTUNMAP && vrm->old_len != vrm->new_len)
1890 return -EINVAL;
1891
1892 /* Target VMA must not overlap source VMA. */
1893 if (vrm_overlaps(vrm))
1894 return -EINVAL;
1895
1896 return 0;
1897 }
1898
remap_move(struct vma_remap_struct * vrm)1899 static unsigned long remap_move(struct vma_remap_struct *vrm)
1900 {
1901 struct vm_area_struct *vma;
1902 unsigned long start = vrm->addr;
1903 unsigned long end = vrm->addr + vrm->old_len;
1904 unsigned long new_addr = vrm->new_addr;
1905 unsigned long target_addr = new_addr;
1906 unsigned long res = -EFAULT;
1907 unsigned long last_end;
1908 bool seen_vma = false;
1909
1910 VMA_ITERATOR(vmi, current->mm, start);
1911
1912 /*
1913 * When moving VMAs we allow for batched moves across multiple VMAs,
1914 * with all VMAs in the input range [addr, addr + old_len) being moved
1915 * (and split as necessary).
1916 */
1917 for_each_vma_range(vmi, vma, end) {
1918 /* Account for start, end not aligned with VMA start, end. */
1919 unsigned long addr = max(vma->vm_start, start);
1920 unsigned long len = min(end, vma->vm_end) - addr;
1921 unsigned long offset, res_vma;
1922 bool multi_allowed;
1923
1924 /* No gap permitted at the start of the range. */
1925 if (!seen_vma && start < vma->vm_start)
1926 return -EFAULT;
1927
1928 /*
1929 * To sensibly move multiple VMAs, accounting for the fact that
1930 * get_unmapped_area() may align even MAP_FIXED moves, we simply
1931 * attempt to move such that the gaps between source VMAs remain
1932 * consistent in destination VMAs, e.g.:
1933 *
1934 * X Y X Y
1935 * <---> <-> <---> <->
1936 * |-------| |-----| |-----| |-------| |-----| |-----|
1937 * | A | | B | | C | ---> | A' | | B' | | C' |
1938 * |-------| |-----| |-----| |-------| |-----| |-----|
1939 * new_addr
1940 *
1941 * So we map B' at A'->vm_end + X, and C' at B'->vm_end + Y.
1942 */
1943 offset = seen_vma ? vma->vm_start - last_end : 0;
1944 last_end = vma->vm_end;
1945
1946 vrm->vma = vma;
1947 vrm->addr = addr;
1948 vrm->new_addr = target_addr + offset;
1949 vrm->old_len = vrm->new_len = len;
1950
1951 multi_allowed = vma_multi_allowed(vma);
1952 if (!multi_allowed) {
1953 /* This is not the first VMA, abort immediately. */
1954 if (seen_vma)
1955 return -EFAULT;
1956 /* This is the first, but there are more, abort. */
1957 if (vma->vm_end < end)
1958 return -EFAULT;
1959 }
1960
1961 res_vma = check_prep_vma(vrm);
1962 if (!res_vma)
1963 res_vma = mremap_to(vrm);
1964 if (IS_ERR_VALUE(res_vma))
1965 return res_vma;
1966
1967 if (!seen_vma) {
1968 VM_WARN_ON_ONCE(multi_allowed && res_vma != new_addr);
1969 res = res_vma;
1970 }
1971
1972 /* mmap lock is only dropped on shrink. */
1973 VM_WARN_ON_ONCE(!vrm->mmap_locked);
1974 /* This is a move, no expand should occur. */
1975 VM_WARN_ON_ONCE(vrm->populate_expand);
1976
1977 if (vrm->vmi_needs_invalidate) {
1978 vma_iter_invalidate(&vmi);
1979 vrm->vmi_needs_invalidate = false;
1980 }
1981 seen_vma = true;
1982 target_addr = res_vma + vrm->new_len;
1983 }
1984
1985 return res;
1986 }
1987
do_mremap(struct vma_remap_struct * vrm)1988 static unsigned long do_mremap(struct vma_remap_struct *vrm)
1989 {
1990 struct mm_struct *mm = current->mm;
1991 unsigned long res;
1992 bool failed;
1993
1994 vrm->old_len = PAGE_ALIGN(vrm->old_len);
1995 vrm->new_len = PAGE_ALIGN(vrm->new_len);
1996
1997 res = check_mremap_params(vrm);
1998 if (res)
1999 return res;
2000
2001 if (mmap_write_lock_killable(mm))
2002 return -EINTR;
2003 vrm->mmap_locked = true;
2004
2005 if (!check_map_count_against_split_early()) {
2006 mmap_write_unlock(mm);
2007 return -ENOMEM;
2008 }
2009
2010 if (vrm_move_only(vrm)) {
2011 res = remap_move(vrm);
2012 } else {
2013 vrm->vma = vma_lookup(current->mm, vrm->addr);
2014 res = check_prep_vma(vrm);
2015 if (res)
2016 goto out;
2017
2018 /* Actually execute mremap. */
2019 res = vrm_implies_new_addr(vrm) ? mremap_to(vrm) : mremap_at(vrm);
2020 }
2021
2022 out:
2023 failed = IS_ERR_VALUE(res);
2024
2025 if (vrm->mmap_locked)
2026 mmap_write_unlock(mm);
2027
2028 /* VMA mlock'd + was expanded, so populated expanded region. */
2029 if (!failed && vrm->populate_expand)
2030 mm_populate(vrm->new_addr + vrm->old_len, vrm->delta);
2031
2032 notify_uffd(vrm, failed);
2033 return res;
2034 }
2035
2036 /*
2037 * Expand (or shrink) an existing mapping, potentially moving it at the
2038 * same time (controlled by the MREMAP_MAYMOVE flag and available VM space)
2039 *
2040 * MREMAP_FIXED option added 5-Dec-1999 by Benjamin LaHaise
2041 * This option implies MREMAP_MAYMOVE.
2042 */
SYSCALL_DEFINE5(mremap,unsigned long,addr,unsigned long,old_len,unsigned long,new_len,unsigned long,flags,unsigned long,new_addr)2043 SYSCALL_DEFINE5(mremap, unsigned long, addr, unsigned long, old_len,
2044 unsigned long, new_len, unsigned long, flags,
2045 unsigned long, new_addr)
2046 {
2047 struct vm_userfaultfd_ctx uf = NULL_VM_UFFD_CTX;
2048 LIST_HEAD(uf_unmap_early);
2049 LIST_HEAD(uf_unmap);
2050 /*
2051 * There is a deliberate asymmetry here: we strip the pointer tag
2052 * from the old address but leave the new address alone. This is
2053 * for consistency with mmap(), where we prevent the creation of
2054 * aliasing mappings in userspace by leaving the tag bits of the
2055 * mapping address intact. A non-zero tag will cause the subsequent
2056 * range checks to reject the address as invalid.
2057 *
2058 * See Documentation/arch/arm64/tagged-address-abi.rst for more
2059 * information.
2060 */
2061 struct vma_remap_struct vrm = {
2062 .addr = untagged_addr(addr),
2063 .old_len = old_len,
2064 .new_len = new_len,
2065 .flags = flags,
2066 .new_addr = new_addr,
2067
2068 .uf = &uf,
2069 .uf_unmap_early = &uf_unmap_early,
2070 .uf_unmap = &uf_unmap,
2071
2072 .remap_type = MREMAP_INVALID, /* We set later. */
2073 };
2074
2075 return do_mremap(&vrm);
2076 }
2077