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There were checks still in place to verify we could completely use iov_iter's on the Linux side. All interfaces are available as of kernel 4.18, so there is no reason to check whether we should use that interface at this point. This PR completely removes the UIO_USERSPACE type. It also removes the check for the direct_IO interface checks. Reviewed-by: Alexander Motin <mav@FreeBSD.org> Reviewed-by: Brian Behlendorf <behlendorf1@llnl.gov> Signed-off-by: Brian Atkinson <batkinson@lanl.gov> Closes #16856
581 lines
14 KiB
C
581 lines
14 KiB
C
/*
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* CDDL HEADER START
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*
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* The contents of this file are subject to the terms of the
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* Common Development and Distribution License (the "License").
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* You may not use this file except in compliance with the License.
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*
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* You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
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* or https://opensource.org/licenses/CDDL-1.0.
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* See the License for the specific language governing permissions
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* and limitations under the License.
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*
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* When distributing Covered Code, include this CDDL HEADER in each
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* file and include the License file at usr/src/OPENSOLARIS.LICENSE.
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* If applicable, add the following below this CDDL HEADER, with the
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* fields enclosed by brackets "[]" replaced with your own identifying
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* information: Portions Copyright [yyyy] [name of copyright owner]
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*
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* CDDL HEADER END
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*/
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/*
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* Copyright 2009 Sun Microsystems, Inc. All rights reserved.
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* Use is subject to license terms.
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*/
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/* Copyright (c) 1984, 1986, 1987, 1988, 1989 AT&T */
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/* All Rights Reserved */
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/*
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* University Copyright- Copyright (c) 1982, 1986, 1988
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* The Regents of the University of California
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* All Rights Reserved
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*
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* University Acknowledgment- Portions of this document are derived from
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* software developed by the University of California, Berkeley, and its
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* contributors.
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*/
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/*
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* Copyright (c) 2015 by Chunwei Chen. All rights reserved.
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*/
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#ifdef _KERNEL
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#include <sys/errno.h>
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#include <sys/vmem.h>
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#include <sys/sysmacros.h>
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#include <sys/types.h>
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#include <sys/uio_impl.h>
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#include <sys/sysmacros.h>
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#include <sys/string.h>
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#include <sys/zfs_refcount.h>
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#include <sys/zfs_debug.h>
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#include <linux/kmap_compat.h>
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#include <linux/uaccess.h>
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#include <linux/pagemap.h>
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#include <linux/mman.h>
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/*
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* Move "n" bytes at byte address "p"; "rw" indicates the direction
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* of the move, and the I/O parameters are provided in "uio", which is
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* update to reflect the data which was moved. Returns 0 on success or
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* a non-zero errno on failure.
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*/
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static int
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zfs_uiomove_iov(void *p, size_t n, zfs_uio_rw_t rw, zfs_uio_t *uio)
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{
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const struct iovec *iov = uio->uio_iov;
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size_t skip = uio->uio_skip;
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ulong_t cnt;
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ASSERT3S(uio->uio_segflg, ==, UIO_SYSSPACE);
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while (n && uio->uio_resid) {
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cnt = MIN(iov->iov_len - skip, n);
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if (rw == UIO_READ)
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memcpy(iov->iov_base + skip, p, cnt);
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else
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memcpy(p, iov->iov_base + skip, cnt);
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skip += cnt;
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if (skip == iov->iov_len) {
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skip = 0;
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uio->uio_iov = (++iov);
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uio->uio_iovcnt--;
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}
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uio->uio_skip = skip;
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uio->uio_resid -= cnt;
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uio->uio_loffset += cnt;
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p = (caddr_t)p + cnt;
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n -= cnt;
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}
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return (0);
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}
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static int
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zfs_uiomove_bvec_impl(void *p, size_t n, zfs_uio_rw_t rw, zfs_uio_t *uio)
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{
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const struct bio_vec *bv = uio->uio_bvec;
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size_t skip = uio->uio_skip;
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ulong_t cnt;
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while (n && uio->uio_resid) {
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void *paddr;
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cnt = MIN(bv->bv_len - skip, n);
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paddr = zfs_kmap_local(bv->bv_page);
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if (rw == UIO_READ) {
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/* Copy from buffer 'p' to the bvec data */
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memcpy(paddr + bv->bv_offset + skip, p, cnt);
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} else {
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/* Copy from bvec data to buffer 'p' */
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memcpy(p, paddr + bv->bv_offset + skip, cnt);
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}
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zfs_kunmap_local(paddr);
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skip += cnt;
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if (skip == bv->bv_len) {
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skip = 0;
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uio->uio_bvec = (++bv);
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uio->uio_iovcnt--;
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}
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uio->uio_skip = skip;
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uio->uio_resid -= cnt;
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uio->uio_loffset += cnt;
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p = (caddr_t)p + cnt;
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n -= cnt;
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}
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return (0);
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}
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static void
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zfs_copy_bvec(void *p, size_t skip, size_t cnt, zfs_uio_rw_t rw,
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struct bio_vec *bv)
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{
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void *paddr;
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paddr = zfs_kmap_local(bv->bv_page);
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if (rw == UIO_READ) {
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/* Copy from buffer 'p' to the bvec data */
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memcpy(paddr + bv->bv_offset + skip, p, cnt);
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} else {
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/* Copy from bvec data to buffer 'p' */
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memcpy(p, paddr + bv->bv_offset + skip, cnt);
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}
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zfs_kunmap_local(paddr);
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}
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/*
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* Copy 'n' bytes of data between the buffer p[] and the data represented
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* by the request in the uio.
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*/
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static int
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zfs_uiomove_bvec_rq(void *p, size_t n, zfs_uio_rw_t rw, zfs_uio_t *uio)
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{
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struct request *rq = uio->rq;
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struct bio_vec bv;
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struct req_iterator iter;
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size_t this_seg_start; /* logical offset */
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size_t this_seg_end; /* logical offset */
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size_t skip_in_seg;
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size_t copy_from_seg;
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size_t orig_loffset;
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int copied = 0;
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/*
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* Get the original logical offset of this entire request (because
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* uio->uio_loffset will be modified over time).
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*/
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orig_loffset = io_offset(NULL, rq);
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this_seg_start = orig_loffset;
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rq_for_each_segment(bv, rq, iter) {
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/*
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* Lookup what the logical offset of the last byte of this
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* segment is.
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*/
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this_seg_end = this_seg_start + bv.bv_len - 1;
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/*
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* We only need to operate on segments that have data we're
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* copying.
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*/
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if (uio->uio_loffset >= this_seg_start &&
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uio->uio_loffset <= this_seg_end) {
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/*
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* Some, or all, of the data in this segment needs to be
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* copied.
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*/
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/*
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* We may be not be copying from the first byte in the
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* segment. Figure out how many bytes to skip copying
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* from the beginning of this segment.
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*/
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skip_in_seg = uio->uio_loffset - this_seg_start;
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/*
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* Calculate the total number of bytes from this
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* segment that we will be copying.
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*/
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copy_from_seg = MIN(bv.bv_len - skip_in_seg, n);
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/* Copy the bytes */
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zfs_copy_bvec(p, skip_in_seg, copy_from_seg, rw, &bv);
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p = ((char *)p) + copy_from_seg;
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n -= copy_from_seg;
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uio->uio_resid -= copy_from_seg;
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uio->uio_loffset += copy_from_seg;
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copied = 1; /* We copied some data */
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}
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this_seg_start = this_seg_end + 1;
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}
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if (!copied) {
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/* Didn't copy anything */
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uio->uio_resid = 0;
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}
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return (0);
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}
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static int
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zfs_uiomove_bvec(void *p, size_t n, zfs_uio_rw_t rw, zfs_uio_t *uio)
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{
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if (uio->rq != NULL)
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return (zfs_uiomove_bvec_rq(p, n, rw, uio));
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return (zfs_uiomove_bvec_impl(p, n, rw, uio));
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}
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static int
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zfs_uiomove_iter(void *p, size_t n, zfs_uio_rw_t rw, zfs_uio_t *uio,
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boolean_t revert)
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{
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size_t cnt = MIN(n, uio->uio_resid);
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if (uio->uio_skip)
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iov_iter_advance(uio->uio_iter, uio->uio_skip);
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if (rw == UIO_READ)
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cnt = copy_to_iter(p, cnt, uio->uio_iter);
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else
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cnt = copy_from_iter(p, cnt, uio->uio_iter);
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/*
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* When operating on a full pipe no bytes are processed.
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* In which case return EFAULT which is converted to EAGAIN
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* by the kernel's generic_file_splice_read() function.
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*/
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if (cnt == 0)
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return (EFAULT);
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/*
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* Revert advancing the uio_iter. This is set by zfs_uiocopy()
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* to avoid consuming the uio and its iov_iter structure.
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*/
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if (revert)
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iov_iter_revert(uio->uio_iter, cnt);
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uio->uio_resid -= cnt;
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uio->uio_loffset += cnt;
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return (0);
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}
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int
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zfs_uiomove(void *p, size_t n, zfs_uio_rw_t rw, zfs_uio_t *uio)
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{
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if (uio->uio_segflg == UIO_BVEC)
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return (zfs_uiomove_bvec(p, n, rw, uio));
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else if (uio->uio_segflg == UIO_ITER)
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return (zfs_uiomove_iter(p, n, rw, uio, B_FALSE));
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else
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return (zfs_uiomove_iov(p, n, rw, uio));
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}
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EXPORT_SYMBOL(zfs_uiomove);
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/*
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* Fault in the pages of the first n bytes specified by the uio structure.
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* 1 byte in each page is touched and the uio struct is unmodified. Any
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* error will terminate the process as this is only a best attempt to get
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* the pages resident.
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*/
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int
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zfs_uio_prefaultpages(ssize_t n, zfs_uio_t *uio)
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{
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if (uio->uio_segflg == UIO_SYSSPACE || uio->uio_segflg == UIO_BVEC ||
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(uio->uio_extflg & UIO_DIRECT)) {
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/*
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* There's never a need to fault in kernel pages or Direct I/O
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* write pages. Direct I/O write pages have been pinned in so
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* there is never a time for these pages a fault will occur.
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*/
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return (0);
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} else {
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ASSERT3S(uio->uio_segflg, ==, UIO_ITER);
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/*
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* At least a Linux 4.18 kernel, iov_iter_fault_in_readable()
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* can be relied on to fault in user pages when referenced.
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*/
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if (iov_iter_fault_in_readable(uio->uio_iter, n))
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return (EFAULT);
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}
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return (0);
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}
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EXPORT_SYMBOL(zfs_uio_prefaultpages);
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/*
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* The same as zfs_uiomove() but doesn't modify uio structure.
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* return in cbytes how many bytes were copied.
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*/
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int
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zfs_uiocopy(void *p, size_t n, zfs_uio_rw_t rw, zfs_uio_t *uio, size_t *cbytes)
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{
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zfs_uio_t uio_copy;
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int ret;
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memcpy(&uio_copy, uio, sizeof (zfs_uio_t));
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if (uio->uio_segflg == UIO_BVEC)
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ret = zfs_uiomove_bvec(p, n, rw, &uio_copy);
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else if (uio->uio_segflg == UIO_ITER)
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ret = zfs_uiomove_iter(p, n, rw, &uio_copy, B_TRUE);
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else
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ret = zfs_uiomove_iov(p, n, rw, &uio_copy);
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*cbytes = uio->uio_resid - uio_copy.uio_resid;
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return (ret);
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}
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EXPORT_SYMBOL(zfs_uiocopy);
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/*
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* Drop the next n chars out of *uio.
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*/
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void
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zfs_uioskip(zfs_uio_t *uio, size_t n)
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{
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if (n > uio->uio_resid)
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return;
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/*
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* When using a uio with a struct request, we simply
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* use uio_loffset as a pointer to the next logical byte to
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* copy in the request. We don't have to do any fancy
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* accounting with uio_bvec/uio_iovcnt since we don't use
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* them.
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*/
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if (uio->uio_segflg == UIO_BVEC && uio->rq == NULL) {
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uio->uio_skip += n;
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while (uio->uio_iovcnt &&
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uio->uio_skip >= uio->uio_bvec->bv_len) {
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uio->uio_skip -= uio->uio_bvec->bv_len;
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uio->uio_bvec++;
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uio->uio_iovcnt--;
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}
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} else if (uio->uio_segflg == UIO_ITER) {
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iov_iter_advance(uio->uio_iter, n);
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} else {
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ASSERT3S(uio->uio_segflg, ==, UIO_SYSSPACE);
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uio->uio_skip += n;
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while (uio->uio_iovcnt &&
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uio->uio_skip >= uio->uio_iov->iov_len) {
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uio->uio_skip -= uio->uio_iov->iov_len;
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uio->uio_iov++;
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uio->uio_iovcnt--;
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}
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}
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uio->uio_loffset += n;
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uio->uio_resid -= n;
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}
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EXPORT_SYMBOL(zfs_uioskip);
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/*
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* Check if the uio is page-aligned in memory.
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*/
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boolean_t
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zfs_uio_page_aligned(zfs_uio_t *uio)
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{
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boolean_t aligned = B_TRUE;
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if (uio->uio_segflg == UIO_SYSSPACE) {
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const struct iovec *iov = uio->uio_iov;
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size_t skip = uio->uio_skip;
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for (int i = uio->uio_iovcnt; i > 0; iov++, i--) {
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uintptr_t addr = (uintptr_t)(iov->iov_base + skip);
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size_t size = iov->iov_len - skip;
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if ((addr & (PAGE_SIZE - 1)) ||
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(size & (PAGE_SIZE - 1))) {
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aligned = B_FALSE;
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break;
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}
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skip = 0;
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}
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} else if (uio->uio_segflg == UIO_ITER) {
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unsigned long alignment =
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iov_iter_alignment(uio->uio_iter);
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aligned = IS_P2ALIGNED(alignment, PAGE_SIZE);
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} else {
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/* Currently not supported */
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aligned = B_FALSE;
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}
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return (aligned);
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}
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#if defined(HAVE_ZERO_PAGE_GPL_ONLY) || !defined(_LP64)
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#define ZFS_MARKEED_PAGE 0x0
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#define IS_ZFS_MARKED_PAGE(_p) 0
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#define zfs_mark_page(_p)
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#define zfs_unmark_page(_p)
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#define IS_ZERO_PAGE(_p) 0
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#else
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/*
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* Mark pages to know if they were allocated to replace ZERO_PAGE() for
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* Direct I/O writes.
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*/
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#define ZFS_MARKED_PAGE 0x5a465350414745 /* ASCII: ZFSPAGE */
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#define IS_ZFS_MARKED_PAGE(_p) \
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(page_private(_p) == (unsigned long)ZFS_MARKED_PAGE)
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#define IS_ZERO_PAGE(_p) ((_p) == ZERO_PAGE(0))
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static inline void
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zfs_mark_page(struct page *page)
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{
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ASSERT3P(page, !=, NULL);
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get_page(page);
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SetPagePrivate(page);
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set_page_private(page, ZFS_MARKED_PAGE);
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}
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static inline void
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zfs_unmark_page(struct page *page)
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{
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ASSERT3P(page, !=, NULL);
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set_page_private(page, 0UL);
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ClearPagePrivate(page);
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put_page(page);
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}
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#endif /* HAVE_ZERO_PAGE_GPL_ONLY || !_LP64 */
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static void
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zfs_uio_dio_check_for_zero_page(zfs_uio_t *uio)
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{
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ASSERT3P(uio->uio_dio.pages, !=, NULL);
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for (long i = 0; i < uio->uio_dio.npages; i++) {
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struct page *p = uio->uio_dio.pages[i];
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lock_page(p);
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if (IS_ZERO_PAGE(p)) {
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/*
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* If the user page points the kernels ZERO_PAGE() a
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* new zero filled page will just be allocated so the
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* contents of the page can not be changed by the user
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* while a Direct I/O write is taking place.
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*/
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gfp_t gfp_zero_page = __GFP_NOWARN | GFP_NOIO |
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__GFP_ZERO | GFP_KERNEL;
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ASSERT0(IS_ZFS_MARKED_PAGE(p));
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unlock_page(p);
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put_page(p);
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uio->uio_dio.pages[i] =
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__page_cache_alloc(gfp_zero_page);
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zfs_mark_page(uio->uio_dio.pages[i]);
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} else {
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unlock_page(p);
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}
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}
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}
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void
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zfs_uio_free_dio_pages(zfs_uio_t *uio, zfs_uio_rw_t rw)
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{
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ASSERT(uio->uio_extflg & UIO_DIRECT);
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ASSERT3P(uio->uio_dio.pages, !=, NULL);
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for (long i = 0; i < uio->uio_dio.npages; i++) {
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struct page *p = uio->uio_dio.pages[i];
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if (IS_ZFS_MARKED_PAGE(p)) {
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zfs_unmark_page(p);
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__free_page(p);
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continue;
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}
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put_page(p);
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}
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vmem_free(uio->uio_dio.pages,
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uio->uio_dio.npages * sizeof (struct page *));
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}
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static int
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zfs_uio_get_dio_pages_iov_iter(zfs_uio_t *uio, zfs_uio_rw_t rw)
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{
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size_t skip = uio->uio_skip;
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size_t wanted = uio->uio_resid - uio->uio_skip;
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ssize_t rollback = 0;
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ssize_t cnt;
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unsigned maxpages = DIV_ROUND_UP(wanted, PAGE_SIZE);
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while (wanted) {
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#if defined(HAVE_IOV_ITER_GET_PAGES2)
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cnt = iov_iter_get_pages2(uio->uio_iter,
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&uio->uio_dio.pages[uio->uio_dio.npages],
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wanted, maxpages, &skip);
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#else
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cnt = iov_iter_get_pages(uio->uio_iter,
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&uio->uio_dio.pages[uio->uio_dio.npages],
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wanted, maxpages, &skip);
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#endif
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if (cnt < 0) {
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iov_iter_revert(uio->uio_iter, rollback);
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return (SET_ERROR(-cnt));
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}
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uio->uio_dio.npages += DIV_ROUND_UP(cnt, PAGE_SIZE);
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rollback += cnt;
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wanted -= cnt;
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skip = 0;
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#if !defined(HAVE_IOV_ITER_GET_PAGES2)
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/*
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* iov_iter_get_pages2() advances the iov_iter on success.
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*/
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iov_iter_advance(uio->uio_iter, cnt);
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#endif
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}
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ASSERT3U(rollback, ==, uio->uio_resid - uio->uio_skip);
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iov_iter_revert(uio->uio_iter, rollback);
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return (0);
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}
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/*
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* This function pins user pages. In the event that the user pages were not
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* successfully pinned an error value is returned.
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*
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* On success, 0 is returned.
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*/
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int
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zfs_uio_get_dio_pages_alloc(zfs_uio_t *uio, zfs_uio_rw_t rw)
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{
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int error = 0;
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long npages = DIV_ROUND_UP(uio->uio_resid, PAGE_SIZE);
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size_t size = npages * sizeof (struct page *);
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if (uio->uio_segflg == UIO_ITER) {
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uio->uio_dio.pages = vmem_alloc(size, KM_SLEEP);
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error = zfs_uio_get_dio_pages_iov_iter(uio, rw);
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} else {
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return (SET_ERROR(EOPNOTSUPP));
|
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}
|
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|
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ASSERT3S(uio->uio_dio.npages, >=, 0);
|
|
|
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if (error) {
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for (long i = 0; i < uio->uio_dio.npages; i++)
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put_page(uio->uio_dio.pages[i]);
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vmem_free(uio->uio_dio.pages, size);
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return (error);
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} else {
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ASSERT3S(uio->uio_dio.npages, ==, npages);
|
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}
|
|
|
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if (rw == UIO_WRITE) {
|
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zfs_uio_dio_check_for_zero_page(uio);
|
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}
|
|
|
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uio->uio_extflg |= UIO_DIRECT;
|
|
|
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return (0);
|
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}
|
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|
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#endif /* _KERNEL */
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