254 lines
6.9 KiB
C
254 lines
6.9 KiB
C
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// SPDX-License-Identifier: MIT
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/*
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* Copyright © 2024 Intel Corporation
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*/
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#include <linux/scatterlist.h>
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#include <linux/mmu_notifier.h>
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#include <linux/dma-mapping.h>
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#include <linux/memremap.h>
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#include <linux/swap.h>
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#include <linux/hmm.h>
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#include <linux/mm.h>
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#include "xe_hmm.h"
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#include "xe_vm.h"
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#include "xe_bo.h"
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static u64 xe_npages_in_range(unsigned long start, unsigned long end)
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{
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return (end - start) >> PAGE_SHIFT;
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}
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/*
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* xe_mark_range_accessed() - mark a range is accessed, so core mm
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* have such information for memory eviction or write back to
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* hard disk
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*
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* @range: the range to mark
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* @write: if write to this range, we mark pages in this range
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* as dirty
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*/
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static void xe_mark_range_accessed(struct hmm_range *range, bool write)
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{
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struct page *page;
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u64 i, npages;
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npages = xe_npages_in_range(range->start, range->end);
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for (i = 0; i < npages; i++) {
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page = hmm_pfn_to_page(range->hmm_pfns[i]);
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if (write)
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set_page_dirty_lock(page);
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mark_page_accessed(page);
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}
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}
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/*
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* xe_build_sg() - build a scatter gather table for all the physical pages/pfn
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* in a hmm_range. dma-map pages if necessary. dma-address is save in sg table
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* and will be used to program GPU page table later.
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*
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* @xe: the xe device who will access the dma-address in sg table
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* @range: the hmm range that we build the sg table from. range->hmm_pfns[]
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* has the pfn numbers of pages that back up this hmm address range.
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* @st: pointer to the sg table.
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* @write: whether we write to this range. This decides dma map direction
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* for system pages. If write we map it bi-diretional; otherwise
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* DMA_TO_DEVICE
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*
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* All the contiguous pfns will be collapsed into one entry in
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* the scatter gather table. This is for the purpose of efficiently
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* programming GPU page table.
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*
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* The dma_address in the sg table will later be used by GPU to
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* access memory. So if the memory is system memory, we need to
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* do a dma-mapping so it can be accessed by GPU/DMA.
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*
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* FIXME: This function currently only support pages in system
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* memory. If the memory is GPU local memory (of the GPU who
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* is going to access memory), we need gpu dpa (device physical
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* address), and there is no need of dma-mapping. This is TBD.
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*
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* FIXME: dma-mapping for peer gpu device to access remote gpu's
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* memory. Add this when you support p2p
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*
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* This function allocates the storage of the sg table. It is
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* caller's responsibility to free it calling sg_free_table.
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*
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* Returns 0 if successful; -ENOMEM if fails to allocate memory
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*/
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static int xe_build_sg(struct xe_device *xe, struct hmm_range *range,
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struct sg_table *st, bool write)
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{
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struct device *dev = xe->drm.dev;
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struct page **pages;
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u64 i, npages;
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int ret;
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npages = xe_npages_in_range(range->start, range->end);
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pages = kvmalloc_array(npages, sizeof(*pages), GFP_KERNEL);
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if (!pages)
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return -ENOMEM;
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for (i = 0; i < npages; i++) {
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pages[i] = hmm_pfn_to_page(range->hmm_pfns[i]);
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xe_assert(xe, !is_device_private_page(pages[i]));
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}
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ret = sg_alloc_table_from_pages_segment(st, pages, npages, 0, npages << PAGE_SHIFT,
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xe_sg_segment_size(dev), GFP_KERNEL);
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if (ret)
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goto free_pages;
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ret = dma_map_sgtable(dev, st, write ? DMA_BIDIRECTIONAL : DMA_TO_DEVICE,
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DMA_ATTR_SKIP_CPU_SYNC | DMA_ATTR_NO_KERNEL_MAPPING);
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if (ret) {
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sg_free_table(st);
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st = NULL;
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}
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free_pages:
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kvfree(pages);
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return ret;
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}
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/*
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* xe_hmm_userptr_free_sg() - Free the scatter gather table of userptr
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*
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* @uvma: the userptr vma which hold the scatter gather table
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*
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* With function xe_userptr_populate_range, we allocate storage of
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* the userptr sg table. This is a helper function to free this
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* sg table, and dma unmap the address in the table.
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*/
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void xe_hmm_userptr_free_sg(struct xe_userptr_vma *uvma)
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{
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struct xe_userptr *userptr = &uvma->userptr;
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struct xe_vma *vma = &uvma->vma;
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bool write = !xe_vma_read_only(vma);
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struct xe_vm *vm = xe_vma_vm(vma);
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struct xe_device *xe = vm->xe;
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struct device *dev = xe->drm.dev;
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xe_assert(xe, userptr->sg);
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dma_unmap_sgtable(dev, userptr->sg,
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write ? DMA_BIDIRECTIONAL : DMA_TO_DEVICE, 0);
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sg_free_table(userptr->sg);
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userptr->sg = NULL;
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}
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/**
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* xe_hmm_userptr_populate_range() - Populate physical pages of a virtual
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* address range
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*
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* @uvma: userptr vma which has information of the range to populate.
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* @is_mm_mmap_locked: True if mmap_read_lock is already acquired by caller.
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*
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* This function populate the physical pages of a virtual
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* address range. The populated physical pages is saved in
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* userptr's sg table. It is similar to get_user_pages but call
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* hmm_range_fault.
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*
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* This function also read mmu notifier sequence # (
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* mmu_interval_read_begin), for the purpose of later
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* comparison (through mmu_interval_read_retry).
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*
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* This must be called with mmap read or write lock held.
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*
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* This function allocates the storage of the userptr sg table.
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* It is caller's responsibility to free it calling sg_free_table.
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*
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* returns: 0 for succuss; negative error no on failure
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*/
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int xe_hmm_userptr_populate_range(struct xe_userptr_vma *uvma,
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bool is_mm_mmap_locked)
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{
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unsigned long timeout =
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jiffies + msecs_to_jiffies(HMM_RANGE_DEFAULT_TIMEOUT);
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unsigned long *pfns, flags = HMM_PFN_REQ_FAULT;
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struct xe_userptr *userptr;
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struct xe_vma *vma = &uvma->vma;
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u64 userptr_start = xe_vma_userptr(vma);
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u64 userptr_end = userptr_start + xe_vma_size(vma);
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struct xe_vm *vm = xe_vma_vm(vma);
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struct hmm_range hmm_range;
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bool write = !xe_vma_read_only(vma);
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unsigned long notifier_seq;
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u64 npages;
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int ret;
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userptr = &uvma->userptr;
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if (is_mm_mmap_locked)
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mmap_assert_locked(userptr->notifier.mm);
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if (vma->gpuva.flags & XE_VMA_DESTROYED)
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return 0;
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notifier_seq = mmu_interval_read_begin(&userptr->notifier);
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if (notifier_seq == userptr->notifier_seq)
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return 0;
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if (userptr->sg)
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xe_hmm_userptr_free_sg(uvma);
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npages = xe_npages_in_range(userptr_start, userptr_end);
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pfns = kvmalloc_array(npages, sizeof(*pfns), GFP_KERNEL);
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if (unlikely(!pfns))
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return -ENOMEM;
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if (write)
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flags |= HMM_PFN_REQ_WRITE;
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if (!mmget_not_zero(userptr->notifier.mm)) {
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ret = -EFAULT;
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goto free_pfns;
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}
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hmm_range.default_flags = flags;
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hmm_range.hmm_pfns = pfns;
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hmm_range.notifier = &userptr->notifier;
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hmm_range.start = userptr_start;
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hmm_range.end = userptr_end;
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hmm_range.dev_private_owner = vm->xe;
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while (true) {
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hmm_range.notifier_seq = mmu_interval_read_begin(&userptr->notifier);
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if (!is_mm_mmap_locked)
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mmap_read_lock(userptr->notifier.mm);
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ret = hmm_range_fault(&hmm_range);
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if (!is_mm_mmap_locked)
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mmap_read_unlock(userptr->notifier.mm);
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if (ret == -EBUSY) {
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if (time_after(jiffies, timeout))
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break;
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continue;
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}
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break;
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}
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mmput(userptr->notifier.mm);
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if (ret)
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goto free_pfns;
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ret = xe_build_sg(vm->xe, &hmm_range, &userptr->sgt, write);
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if (ret)
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goto free_pfns;
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xe_mark_range_accessed(&hmm_range, write);
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userptr->sg = &userptr->sgt;
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userptr->notifier_seq = hmm_range.notifier_seq;
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free_pfns:
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kvfree(pfns);
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return ret;
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}
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