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mm/khugepaged: retract_page_tables() without mmap or vma lock
Simplify shmem and file THP collapse's retract_page_tables(), and relax its locking: to improve its success rate and to lessen impact on others. Instead of its MADV_COLLAPSE case doing set_huge_pmd() at target_addr of target_mm, leave that part of the work to madvise_collapse() calling collapse_pte_mapped_thp() afterwards: just adjust collapse_file()'s result code to arrange for that. That spares retract_page_tables() four arguments; and since it will be successful in retracting all of the page tables expected of it, no need to track and return a result code itself. It needs i_mmap_lock_read(mapping) for traversing the vma interval tree, but it does not need i_mmap_lock_write() for that: page_vma_mapped_walk() allows for pte_offset_map_lock() etc to fail, and uses pmd_lock() for THPs. retract_page_tables() just needs to use those same spinlocks to exclude it briefly, while transitioning pmd from page table to none: so restore its use of pmd_lock() inside of which pte lock is nested. Users of pte_offset_map_lock() etc all now allow for them to fail: so retract_page_tables() now has no use for mmap_write_trylock() or vma_try_start_write(). In common with rmap and page_vma_mapped_walk(), it does not even need the mmap_read_lock(). But those users do expect the page table to remain a good page table, until they unlock and rcu_read_unlock(): so the page table cannot be freed immediately, but rather by the recently added pte_free_defer(). Use the (usually a no-op) pmdp_get_lockless_sync() to send an interrupt when PAE, and pmdp_collapse_flush() did not already do so: to make sure that the start,pmdp_get_lockless(),end sequence in __pte_offset_map() cannot pick up a pmd entry with mismatched pmd_low and pmd_high. retract_page_tables() can be enhanced to replace_page_tables(), which inserts the final huge pmd without mmap lock: going through an invalid state instead of pmd_none() followed by fault. But that enhancement does raise some more questions: leave it until a later release. Link: https://lkml.kernel.org/r/f88970d9-d347-9762-ae6d-da978e8a4df@google.com Signed-off-by: Hugh Dickins <hughd@google.com> Cc: Alexander Gordeev <agordeev@linux.ibm.com> Cc: Alistair Popple <apopple@nvidia.com> Cc: Aneesh Kumar K.V <aneesh.kumar@linux.ibm.com> Cc: Anshuman Khandual <anshuman.khandual@arm.com> Cc: Axel Rasmussen <axelrasmussen@google.com> Cc: Christian Borntraeger <borntraeger@linux.ibm.com> Cc: Christophe Leroy <christophe.leroy@csgroup.eu> Cc: Christoph Hellwig <hch@infradead.org> Cc: Claudio Imbrenda <imbrenda@linux.ibm.com> Cc: David Hildenbrand <david@redhat.com> Cc: "David S. Miller" <davem@davemloft.net> Cc: Gerald Schaefer <gerald.schaefer@linux.ibm.com> Cc: Heiko Carstens <hca@linux.ibm.com> Cc: Huang, Ying <ying.huang@intel.com> Cc: Ira Weiny <ira.weiny@intel.com> Cc: Jann Horn <jannh@google.com> Cc: Jason Gunthorpe <jgg@ziepe.ca> Cc: Kirill A. Shutemov <kirill.shutemov@linux.intel.com> Cc: Lorenzo Stoakes <lstoakes@gmail.com> Cc: Matthew Wilcox (Oracle) <willy@infradead.org> Cc: Mel Gorman <mgorman@techsingularity.net> Cc: Miaohe Lin <linmiaohe@huawei.com> Cc: Michael Ellerman <mpe@ellerman.id.au> Cc: Mike Kravetz <mike.kravetz@oracle.com> Cc: Mike Rapoport (IBM) <rppt@kernel.org> Cc: Minchan Kim <minchan@kernel.org> Cc: Naoya Horiguchi <naoya.horiguchi@nec.com> Cc: Pavel Tatashin <pasha.tatashin@soleen.com> Cc: Peter Xu <peterx@redhat.com> Cc: Peter Zijlstra <peterz@infradead.org> Cc: Qi Zheng <zhengqi.arch@bytedance.com> Cc: Ralph Campbell <rcampbell@nvidia.com> Cc: Russell King <linux@armlinux.org.uk> Cc: SeongJae Park <sj@kernel.org> Cc: Song Liu <song@kernel.org> Cc: Steven Price <steven.price@arm.com> Cc: Suren Baghdasaryan <surenb@google.com> Cc: Thomas Hellström <thomas.hellstrom@linux.intel.com> Cc: Vasily Gorbik <gor@linux.ibm.com> Cc: Vishal Moola (Oracle) <vishal.moola@gmail.com> Cc: Vlastimil Babka <vbabka@suse.cz> Cc: Will Deacon <will@kernel.org> Cc: Yang Shi <shy828301@gmail.com> Cc: Yu Zhao <yuzhao@google.com> Cc: Zack Rusin <zackr@vmware.com> Cc: Zi Yan <ziy@nvidia.com> Signed-off-by: Andrew Morton <akpm@linux-foundation.org>
This commit is contained in:
parent
13cf577e6b
commit
1d65b771bc
184
mm/khugepaged.c
184
mm/khugepaged.c
@ -1617,9 +1617,8 @@ int collapse_pte_mapped_thp(struct mm_struct *mm, unsigned long addr,
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break;
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case SCAN_PMD_NONE:
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/*
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* In MADV_COLLAPSE path, possible race with khugepaged where
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* all pte entries have been removed and pmd cleared. If so,
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* skip all the pte checks and just update the pmd mapping.
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* All pte entries have been removed and pmd cleared.
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* Skip all the pte checks and just update the pmd mapping.
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*/
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goto maybe_install_pmd;
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default:
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@ -1750,123 +1749,88 @@ out:
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mmap_write_unlock(mm);
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}
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static int retract_page_tables(struct address_space *mapping, pgoff_t pgoff,
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struct mm_struct *target_mm,
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unsigned long target_addr, struct page *hpage,
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struct collapse_control *cc)
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static void retract_page_tables(struct address_space *mapping, pgoff_t pgoff)
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{
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struct vm_area_struct *vma;
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int target_result = SCAN_FAIL;
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i_mmap_lock_write(mapping);
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i_mmap_lock_read(mapping);
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vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff, pgoff) {
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int result = SCAN_FAIL;
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struct mm_struct *mm = NULL;
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unsigned long addr = 0;
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pmd_t *pmd;
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bool is_target = false;
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struct mmu_notifier_range range;
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struct mm_struct *mm;
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unsigned long addr;
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pmd_t *pmd, pgt_pmd;
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spinlock_t *pml;
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spinlock_t *ptl;
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bool skipped_uffd = false;
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/*
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* Check vma->anon_vma to exclude MAP_PRIVATE mappings that
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* got written to. These VMAs are likely not worth investing
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* mmap_write_lock(mm) as PMD-mapping is likely to be split
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* later.
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*
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* Note that vma->anon_vma check is racy: it can be set up after
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* the check but before we took mmap_lock by the fault path.
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* But page lock would prevent establishing any new ptes of the
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* page, so we are safe.
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*
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* An alternative would be drop the check, but check that page
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* table is clear before calling pmdp_collapse_flush() under
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* ptl. It has higher chance to recover THP for the VMA, but
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* has higher cost too. It would also probably require locking
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* the anon_vma.
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* got written to. These VMAs are likely not worth removing
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* page tables from, as PMD-mapping is likely to be split later.
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*/
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if (READ_ONCE(vma->anon_vma)) {
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result = SCAN_PAGE_ANON;
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goto next;
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}
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if (READ_ONCE(vma->anon_vma))
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continue;
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addr = vma->vm_start + ((pgoff - vma->vm_pgoff) << PAGE_SHIFT);
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if (addr & ~HPAGE_PMD_MASK ||
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vma->vm_end < addr + HPAGE_PMD_SIZE) {
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result = SCAN_VMA_CHECK;
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goto next;
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}
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mm = vma->vm_mm;
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is_target = mm == target_mm && addr == target_addr;
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result = find_pmd_or_thp_or_none(mm, addr, &pmd);
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if (result != SCAN_SUCCEED)
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goto next;
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/*
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* We need exclusive mmap_lock to retract page table.
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*
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* We use trylock due to lock inversion: we need to acquire
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* mmap_lock while holding page lock. Fault path does it in
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* reverse order. Trylock is a way to avoid deadlock.
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*
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* Also, it's not MADV_COLLAPSE's job to collapse other
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* mappings - let khugepaged take care of them later.
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*/
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result = SCAN_PTE_MAPPED_HUGEPAGE;
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if ((cc->is_khugepaged || is_target) &&
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mmap_write_trylock(mm)) {
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/* trylock for the same lock inversion as above */
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if (!vma_try_start_write(vma))
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goto unlock_next;
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/*
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* Re-check whether we have an ->anon_vma, because
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* collapse_and_free_pmd() requires that either no
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* ->anon_vma exists or the anon_vma is locked.
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* We already checked ->anon_vma above, but that check
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* is racy because ->anon_vma can be populated under the
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* mmap lock in read mode.
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*/
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if (vma->anon_vma) {
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result = SCAN_PAGE_ANON;
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goto unlock_next;
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}
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/*
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* When a vma is registered with uffd-wp, we can't
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* recycle the pmd pgtable because there can be pte
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* markers installed. Skip it only, so the rest mm/vma
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* can still have the same file mapped hugely, however
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* it'll always mapped in small page size for uffd-wp
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* registered ranges.
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*/
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if (hpage_collapse_test_exit(mm)) {
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result = SCAN_ANY_PROCESS;
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goto unlock_next;
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}
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if (userfaultfd_wp(vma)) {
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result = SCAN_PTE_UFFD_WP;
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goto unlock_next;
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}
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collapse_and_free_pmd(mm, vma, addr, pmd);
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if (!cc->is_khugepaged && is_target)
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result = set_huge_pmd(vma, addr, pmd, hpage);
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else
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result = SCAN_SUCCEED;
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unlock_next:
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mmap_write_unlock(mm);
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goto next;
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}
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/*
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* Calling context will handle target mm/addr. Otherwise, let
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* khugepaged try again later.
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*/
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if (!is_target) {
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khugepaged_add_pte_mapped_thp(mm, addr);
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vma->vm_end < addr + HPAGE_PMD_SIZE)
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continue;
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mm = vma->vm_mm;
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if (find_pmd_or_thp_or_none(mm, addr, &pmd) != SCAN_SUCCEED)
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continue;
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if (hpage_collapse_test_exit(mm))
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continue;
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/*
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* When a vma is registered with uffd-wp, we cannot recycle
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* the page table because there may be pte markers installed.
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* Other vmas can still have the same file mapped hugely, but
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* skip this one: it will always be mapped in small page size
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* for uffd-wp registered ranges.
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*/
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if (userfaultfd_wp(vma))
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continue;
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/* PTEs were notified when unmapped; but now for the PMD? */
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mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm,
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addr, addr + HPAGE_PMD_SIZE);
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mmu_notifier_invalidate_range_start(&range);
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pml = pmd_lock(mm, pmd);
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ptl = pte_lockptr(mm, pmd);
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if (ptl != pml)
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spin_lock_nested(ptl, SINGLE_DEPTH_NESTING);
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/*
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* Huge page lock is still held, so normally the page table
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* must remain empty; and we have already skipped anon_vma
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* and userfaultfd_wp() vmas. But since the mmap_lock is not
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* held, it is still possible for a racing userfaultfd_ioctl()
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* to have inserted ptes or markers. Now that we hold ptlock,
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* repeating the anon_vma check protects from one category,
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* and repeating the userfaultfd_wp() check from another.
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*/
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if (unlikely(vma->anon_vma || userfaultfd_wp(vma))) {
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skipped_uffd = true;
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} else {
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pgt_pmd = pmdp_collapse_flush(vma, addr, pmd);
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pmdp_get_lockless_sync();
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}
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if (ptl != pml)
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spin_unlock(ptl);
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spin_unlock(pml);
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mmu_notifier_invalidate_range_end(&range);
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if (!skipped_uffd) {
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mm_dec_nr_ptes(mm);
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page_table_check_pte_clear_range(mm, addr, pgt_pmd);
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pte_free_defer(mm, pmd_pgtable(pgt_pmd));
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}
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next:
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if (is_target)
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target_result = result;
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}
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i_mmap_unlock_write(mapping);
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return target_result;
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i_mmap_unlock_read(mapping);
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}
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/**
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@ -2260,9 +2224,11 @@ immap_locked:
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/*
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* Remove pte page tables, so we can re-fault the page as huge.
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* If MADV_COLLAPSE, adjust result to call collapse_pte_mapped_thp().
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*/
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result = retract_page_tables(mapping, start, mm, addr, hpage,
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cc);
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retract_page_tables(mapping, start);
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if (cc && !cc->is_khugepaged)
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result = SCAN_PTE_MAPPED_HUGEPAGE;
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unlock_page(hpage);
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/*
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