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https://git.kernel.org/pub/scm/linux/kernel/git/chenhuacai/linux-loongson
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The net value of these functions is to determine the result of a three-way-comparison between operands of the same type. Simplify the code using cmp_int() to eliminate potential errors with opencoded casts and subtractions. This also means we can change the return value type of cmp_key_with_cur routines from int64_t to int and make the interface a bit clearer. Found by Linux Verification Center (linuxtesting.org). Suggested-by: Darrick J. Wong <djwong@kernel.org> Signed-off-by: Fedor Pchelkin <pchelkin@ispras.ru> Reviewed-by: Darrick J. Wong <djwong@kernel.org> Signed-off-by: Carlos Maiolino <cem@kernel.org>
758 lines
20 KiB
C
758 lines
20 KiB
C
// SPDX-License-Identifier: GPL-2.0-or-later
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/*
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* Copyright (c) 2021-2024 Oracle. All Rights Reserved.
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* Author: Darrick J. Wong <djwong@kernel.org>
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*/
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#include "xfs.h"
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#include "xfs_fs.h"
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#include "xfs_shared.h"
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#include "xfs_format.h"
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#include "xfs_log_format.h"
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#include "xfs_trans_resv.h"
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#include "xfs_bit.h"
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#include "xfs_sb.h"
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#include "xfs_mount.h"
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#include "xfs_defer.h"
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#include "xfs_inode.h"
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#include "xfs_trans.h"
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#include "xfs_alloc.h"
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#include "xfs_btree.h"
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#include "xfs_btree_staging.h"
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#include "xfs_rtrefcount_btree.h"
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#include "xfs_refcount.h"
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#include "xfs_trace.h"
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#include "xfs_cksum.h"
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#include "xfs_error.h"
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#include "xfs_extent_busy.h"
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#include "xfs_rtgroup.h"
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#include "xfs_rtbitmap.h"
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#include "xfs_metafile.h"
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#include "xfs_health.h"
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static struct kmem_cache *xfs_rtrefcountbt_cur_cache;
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/*
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* Realtime Reference Count btree.
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*
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* This is a btree used to track the owner(s) of a given extent in the realtime
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* device. See the comments in xfs_refcount_btree.c for more information.
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*
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* This tree is basically the same as the regular refcount btree except that
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* it's rooted in an inode.
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*/
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static struct xfs_btree_cur *
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xfs_rtrefcountbt_dup_cursor(
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struct xfs_btree_cur *cur)
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{
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return xfs_rtrefcountbt_init_cursor(cur->bc_tp, to_rtg(cur->bc_group));
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}
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STATIC int
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xfs_rtrefcountbt_get_minrecs(
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struct xfs_btree_cur *cur,
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int level)
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{
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if (level == cur->bc_nlevels - 1) {
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struct xfs_ifork *ifp = xfs_btree_ifork_ptr(cur);
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return xfs_rtrefcountbt_maxrecs(cur->bc_mp, ifp->if_broot_bytes,
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level == 0) / 2;
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}
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return cur->bc_mp->m_rtrefc_mnr[level != 0];
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}
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STATIC int
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xfs_rtrefcountbt_get_maxrecs(
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struct xfs_btree_cur *cur,
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int level)
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{
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if (level == cur->bc_nlevels - 1) {
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struct xfs_ifork *ifp = xfs_btree_ifork_ptr(cur);
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return xfs_rtrefcountbt_maxrecs(cur->bc_mp, ifp->if_broot_bytes,
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level == 0);
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}
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return cur->bc_mp->m_rtrefc_mxr[level != 0];
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}
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/*
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* Calculate number of records in a realtime refcount btree inode root.
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*/
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unsigned int
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xfs_rtrefcountbt_droot_maxrecs(
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unsigned int blocklen,
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bool leaf)
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{
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blocklen -= sizeof(struct xfs_rtrefcount_root);
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if (leaf)
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return blocklen / sizeof(struct xfs_refcount_rec);
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return blocklen / (2 * sizeof(struct xfs_refcount_key) +
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sizeof(xfs_rtrefcount_ptr_t));
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}
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/*
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* Get the maximum records we could store in the on-disk format.
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*
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* For non-root nodes this is equivalent to xfs_rtrefcountbt_get_maxrecs, but
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* for the root node this checks the available space in the dinode fork so that
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* we can resize the in-memory buffer to match it. After a resize to the
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* maximum size this function returns the same value as
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* xfs_rtrefcountbt_get_maxrecs for the root node, too.
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*/
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STATIC int
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xfs_rtrefcountbt_get_dmaxrecs(
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struct xfs_btree_cur *cur,
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int level)
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{
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if (level != cur->bc_nlevels - 1)
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return cur->bc_mp->m_rtrefc_mxr[level != 0];
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return xfs_rtrefcountbt_droot_maxrecs(cur->bc_ino.forksize, level == 0);
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}
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STATIC void
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xfs_rtrefcountbt_init_key_from_rec(
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union xfs_btree_key *key,
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const union xfs_btree_rec *rec)
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{
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key->refc.rc_startblock = rec->refc.rc_startblock;
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}
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STATIC void
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xfs_rtrefcountbt_init_high_key_from_rec(
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union xfs_btree_key *key,
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const union xfs_btree_rec *rec)
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{
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__u32 x;
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x = be32_to_cpu(rec->refc.rc_startblock);
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x += be32_to_cpu(rec->refc.rc_blockcount) - 1;
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key->refc.rc_startblock = cpu_to_be32(x);
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}
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STATIC void
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xfs_rtrefcountbt_init_rec_from_cur(
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struct xfs_btree_cur *cur,
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union xfs_btree_rec *rec)
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{
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const struct xfs_refcount_irec *irec = &cur->bc_rec.rc;
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uint32_t start;
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start = xfs_refcount_encode_startblock(irec->rc_startblock,
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irec->rc_domain);
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rec->refc.rc_startblock = cpu_to_be32(start);
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rec->refc.rc_blockcount = cpu_to_be32(cur->bc_rec.rc.rc_blockcount);
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rec->refc.rc_refcount = cpu_to_be32(cur->bc_rec.rc.rc_refcount);
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}
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STATIC void
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xfs_rtrefcountbt_init_ptr_from_cur(
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struct xfs_btree_cur *cur,
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union xfs_btree_ptr *ptr)
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{
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ptr->l = 0;
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}
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STATIC int
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xfs_rtrefcountbt_cmp_key_with_cur(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *key)
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{
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const struct xfs_refcount_key *kp = &key->refc;
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const struct xfs_refcount_irec *irec = &cur->bc_rec.rc;
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uint32_t start;
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start = xfs_refcount_encode_startblock(irec->rc_startblock,
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irec->rc_domain);
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return cmp_int(be32_to_cpu(kp->rc_startblock), start);
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}
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STATIC int
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xfs_rtrefcountbt_cmp_two_keys(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *k1,
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const union xfs_btree_key *k2,
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const union xfs_btree_key *mask)
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{
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ASSERT(!mask || mask->refc.rc_startblock);
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return cmp_int(be32_to_cpu(k1->refc.rc_startblock),
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be32_to_cpu(k2->refc.rc_startblock));
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}
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static xfs_failaddr_t
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xfs_rtrefcountbt_verify(
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struct xfs_buf *bp)
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{
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struct xfs_mount *mp = bp->b_target->bt_mount;
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struct xfs_btree_block *block = XFS_BUF_TO_BLOCK(bp);
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xfs_failaddr_t fa;
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int level;
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if (!xfs_verify_magic(bp, block->bb_magic))
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return __this_address;
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if (!xfs_has_reflink(mp))
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return __this_address;
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fa = xfs_btree_fsblock_v5hdr_verify(bp, XFS_RMAP_OWN_UNKNOWN);
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if (fa)
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return fa;
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level = be16_to_cpu(block->bb_level);
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if (level > mp->m_rtrefc_maxlevels)
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return __this_address;
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return xfs_btree_fsblock_verify(bp, mp->m_rtrefc_mxr[level != 0]);
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}
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static void
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xfs_rtrefcountbt_read_verify(
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struct xfs_buf *bp)
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{
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xfs_failaddr_t fa;
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if (!xfs_btree_fsblock_verify_crc(bp))
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xfs_verifier_error(bp, -EFSBADCRC, __this_address);
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else {
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fa = xfs_rtrefcountbt_verify(bp);
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if (fa)
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xfs_verifier_error(bp, -EFSCORRUPTED, fa);
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}
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if (bp->b_error)
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trace_xfs_btree_corrupt(bp, _RET_IP_);
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}
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static void
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xfs_rtrefcountbt_write_verify(
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struct xfs_buf *bp)
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{
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xfs_failaddr_t fa;
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fa = xfs_rtrefcountbt_verify(bp);
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if (fa) {
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trace_xfs_btree_corrupt(bp, _RET_IP_);
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xfs_verifier_error(bp, -EFSCORRUPTED, fa);
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return;
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}
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xfs_btree_fsblock_calc_crc(bp);
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}
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const struct xfs_buf_ops xfs_rtrefcountbt_buf_ops = {
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.name = "xfs_rtrefcountbt",
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.magic = { 0, cpu_to_be32(XFS_RTREFC_CRC_MAGIC) },
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.verify_read = xfs_rtrefcountbt_read_verify,
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.verify_write = xfs_rtrefcountbt_write_verify,
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.verify_struct = xfs_rtrefcountbt_verify,
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};
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STATIC int
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xfs_rtrefcountbt_keys_inorder(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *k1,
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const union xfs_btree_key *k2)
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{
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return be32_to_cpu(k1->refc.rc_startblock) <
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be32_to_cpu(k2->refc.rc_startblock);
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}
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STATIC int
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xfs_rtrefcountbt_recs_inorder(
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struct xfs_btree_cur *cur,
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const union xfs_btree_rec *r1,
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const union xfs_btree_rec *r2)
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{
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return be32_to_cpu(r1->refc.rc_startblock) +
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be32_to_cpu(r1->refc.rc_blockcount) <=
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be32_to_cpu(r2->refc.rc_startblock);
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}
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STATIC enum xbtree_key_contig
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xfs_rtrefcountbt_keys_contiguous(
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struct xfs_btree_cur *cur,
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const union xfs_btree_key *key1,
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const union xfs_btree_key *key2,
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const union xfs_btree_key *mask)
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{
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ASSERT(!mask || mask->refc.rc_startblock);
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return xbtree_key_contig(be32_to_cpu(key1->refc.rc_startblock),
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be32_to_cpu(key2->refc.rc_startblock));
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}
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static inline void
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xfs_rtrefcountbt_move_ptrs(
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struct xfs_mount *mp,
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struct xfs_btree_block *broot,
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short old_size,
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size_t new_size,
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unsigned int numrecs)
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{
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void *dptr;
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void *sptr;
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sptr = xfs_rtrefcount_broot_ptr_addr(mp, broot, 1, old_size);
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dptr = xfs_rtrefcount_broot_ptr_addr(mp, broot, 1, new_size);
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memmove(dptr, sptr, numrecs * sizeof(xfs_rtrefcount_ptr_t));
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}
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static struct xfs_btree_block *
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xfs_rtrefcountbt_broot_realloc(
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struct xfs_btree_cur *cur,
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unsigned int new_numrecs)
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{
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struct xfs_mount *mp = cur->bc_mp;
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struct xfs_ifork *ifp = xfs_btree_ifork_ptr(cur);
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struct xfs_btree_block *broot;
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unsigned int new_size;
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unsigned int old_size = ifp->if_broot_bytes;
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const unsigned int level = cur->bc_nlevels - 1;
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new_size = xfs_rtrefcount_broot_space_calc(mp, level, new_numrecs);
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/* Handle the nop case quietly. */
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if (new_size == old_size)
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return ifp->if_broot;
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if (new_size > old_size) {
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unsigned int old_numrecs;
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/*
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* If there wasn't any memory allocated before, just allocate
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* it now and get out.
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*/
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if (old_size == 0)
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return xfs_broot_realloc(ifp, new_size);
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/*
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* If there is already an existing if_broot, then we need to
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* realloc it and possibly move the node block pointers because
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* those are not butted up against the btree block header.
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*/
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old_numrecs = xfs_rtrefcountbt_maxrecs(mp, old_size, level);
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broot = xfs_broot_realloc(ifp, new_size);
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if (level > 0)
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xfs_rtrefcountbt_move_ptrs(mp, broot, old_size,
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new_size, old_numrecs);
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goto out_broot;
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}
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/*
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* We're reducing numrecs. If we're going all the way to zero, just
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* free the block.
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*/
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ASSERT(ifp->if_broot != NULL && old_size > 0);
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if (new_size == 0)
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return xfs_broot_realloc(ifp, 0);
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/*
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* Shrink the btree root by possibly moving the rtrmapbt pointers,
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* since they are not butted up against the btree block header. Then
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* reallocate broot.
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*/
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if (level > 0)
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xfs_rtrefcountbt_move_ptrs(mp, ifp->if_broot, old_size,
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new_size, new_numrecs);
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broot = xfs_broot_realloc(ifp, new_size);
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out_broot:
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ASSERT(xfs_rtrefcount_droot_space(broot) <=
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xfs_inode_fork_size(cur->bc_ino.ip, cur->bc_ino.whichfork));
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return broot;
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}
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const struct xfs_btree_ops xfs_rtrefcountbt_ops = {
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.name = "rtrefcount",
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.type = XFS_BTREE_TYPE_INODE,
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.geom_flags = XFS_BTGEO_IROOT_RECORDS,
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.rec_len = sizeof(struct xfs_refcount_rec),
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.key_len = sizeof(struct xfs_refcount_key),
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.ptr_len = XFS_BTREE_LONG_PTR_LEN,
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.lru_refs = XFS_REFC_BTREE_REF,
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.statoff = XFS_STATS_CALC_INDEX(xs_rtrefcbt_2),
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.sick_mask = XFS_SICK_RG_REFCNTBT,
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.dup_cursor = xfs_rtrefcountbt_dup_cursor,
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.alloc_block = xfs_btree_alloc_metafile_block,
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.free_block = xfs_btree_free_metafile_block,
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.get_minrecs = xfs_rtrefcountbt_get_minrecs,
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.get_maxrecs = xfs_rtrefcountbt_get_maxrecs,
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.get_dmaxrecs = xfs_rtrefcountbt_get_dmaxrecs,
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.init_key_from_rec = xfs_rtrefcountbt_init_key_from_rec,
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.init_high_key_from_rec = xfs_rtrefcountbt_init_high_key_from_rec,
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.init_rec_from_cur = xfs_rtrefcountbt_init_rec_from_cur,
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.init_ptr_from_cur = xfs_rtrefcountbt_init_ptr_from_cur,
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.cmp_key_with_cur = xfs_rtrefcountbt_cmp_key_with_cur,
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.buf_ops = &xfs_rtrefcountbt_buf_ops,
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.cmp_two_keys = xfs_rtrefcountbt_cmp_two_keys,
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.keys_inorder = xfs_rtrefcountbt_keys_inorder,
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.recs_inorder = xfs_rtrefcountbt_recs_inorder,
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.keys_contiguous = xfs_rtrefcountbt_keys_contiguous,
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.broot_realloc = xfs_rtrefcountbt_broot_realloc,
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};
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/* Allocate a new rt refcount btree cursor. */
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struct xfs_btree_cur *
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xfs_rtrefcountbt_init_cursor(
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struct xfs_trans *tp,
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struct xfs_rtgroup *rtg)
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{
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struct xfs_inode *ip = rtg_refcount(rtg);
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struct xfs_mount *mp = rtg_mount(rtg);
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struct xfs_btree_cur *cur;
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xfs_assert_ilocked(ip, XFS_ILOCK_SHARED | XFS_ILOCK_EXCL);
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cur = xfs_btree_alloc_cursor(mp, tp, &xfs_rtrefcountbt_ops,
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mp->m_rtrefc_maxlevels, xfs_rtrefcountbt_cur_cache);
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cur->bc_ino.ip = ip;
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cur->bc_refc.nr_ops = 0;
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cur->bc_refc.shape_changes = 0;
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cur->bc_group = xfs_group_hold(rtg_group(rtg));
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cur->bc_nlevels = be16_to_cpu(ip->i_df.if_broot->bb_level) + 1;
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cur->bc_ino.forksize = xfs_inode_fork_size(ip, XFS_DATA_FORK);
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cur->bc_ino.whichfork = XFS_DATA_FORK;
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return cur;
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}
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/*
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* Install a new rt reverse mapping btree root. Caller is responsible for
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* invalidating and freeing the old btree blocks.
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*/
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void
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xfs_rtrefcountbt_commit_staged_btree(
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struct xfs_btree_cur *cur,
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struct xfs_trans *tp)
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{
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struct xbtree_ifakeroot *ifake = cur->bc_ino.ifake;
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struct xfs_ifork *ifp;
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int flags = XFS_ILOG_CORE | XFS_ILOG_DBROOT;
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ASSERT(cur->bc_flags & XFS_BTREE_STAGING);
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ASSERT(ifake->if_fork->if_format == XFS_DINODE_FMT_META_BTREE);
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/*
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* Free any resources hanging off the real fork, then shallow-copy the
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* staging fork's contents into the real fork to transfer everything
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* we just built.
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*/
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ifp = xfs_ifork_ptr(cur->bc_ino.ip, XFS_DATA_FORK);
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xfs_idestroy_fork(ifp);
|
|
memcpy(ifp, ifake->if_fork, sizeof(struct xfs_ifork));
|
|
|
|
cur->bc_ino.ip->i_projid = cur->bc_group->xg_gno;
|
|
xfs_trans_log_inode(tp, cur->bc_ino.ip, flags);
|
|
xfs_btree_commit_ifakeroot(cur, tp, XFS_DATA_FORK);
|
|
}
|
|
|
|
/* Calculate number of records in a realtime refcount btree block. */
|
|
static inline unsigned int
|
|
xfs_rtrefcountbt_block_maxrecs(
|
|
unsigned int blocklen,
|
|
bool leaf)
|
|
{
|
|
|
|
if (leaf)
|
|
return blocklen / sizeof(struct xfs_refcount_rec);
|
|
return blocklen / (sizeof(struct xfs_refcount_key) +
|
|
sizeof(xfs_rtrefcount_ptr_t));
|
|
}
|
|
|
|
/*
|
|
* Calculate number of records in an refcount btree block.
|
|
*/
|
|
unsigned int
|
|
xfs_rtrefcountbt_maxrecs(
|
|
struct xfs_mount *mp,
|
|
unsigned int blocklen,
|
|
bool leaf)
|
|
{
|
|
blocklen -= XFS_RTREFCOUNT_BLOCK_LEN;
|
|
return xfs_rtrefcountbt_block_maxrecs(blocklen, leaf);
|
|
}
|
|
|
|
/* Compute the max possible height for realtime refcount btrees. */
|
|
unsigned int
|
|
xfs_rtrefcountbt_maxlevels_ondisk(void)
|
|
{
|
|
unsigned int minrecs[2];
|
|
unsigned int blocklen;
|
|
|
|
blocklen = XFS_MIN_CRC_BLOCKSIZE - XFS_BTREE_LBLOCK_CRC_LEN;
|
|
|
|
minrecs[0] = xfs_rtrefcountbt_block_maxrecs(blocklen, true) / 2;
|
|
minrecs[1] = xfs_rtrefcountbt_block_maxrecs(blocklen, false) / 2;
|
|
|
|
/* We need at most one record for every block in an rt group. */
|
|
return xfs_btree_compute_maxlevels(minrecs, XFS_MAX_RGBLOCKS);
|
|
}
|
|
|
|
int __init
|
|
xfs_rtrefcountbt_init_cur_cache(void)
|
|
{
|
|
xfs_rtrefcountbt_cur_cache = kmem_cache_create("xfs_rtrefcountbt_cur",
|
|
xfs_btree_cur_sizeof(
|
|
xfs_rtrefcountbt_maxlevels_ondisk()),
|
|
0, 0, NULL);
|
|
|
|
if (!xfs_rtrefcountbt_cur_cache)
|
|
return -ENOMEM;
|
|
return 0;
|
|
}
|
|
|
|
void
|
|
xfs_rtrefcountbt_destroy_cur_cache(void)
|
|
{
|
|
kmem_cache_destroy(xfs_rtrefcountbt_cur_cache);
|
|
xfs_rtrefcountbt_cur_cache = NULL;
|
|
}
|
|
|
|
/* Compute the maximum height of a realtime refcount btree. */
|
|
void
|
|
xfs_rtrefcountbt_compute_maxlevels(
|
|
struct xfs_mount *mp)
|
|
{
|
|
unsigned int d_maxlevels, r_maxlevels;
|
|
|
|
if (!xfs_has_rtreflink(mp)) {
|
|
mp->m_rtrefc_maxlevels = 0;
|
|
return;
|
|
}
|
|
|
|
/*
|
|
* The realtime refcountbt lives on the data device, which means that
|
|
* its maximum height is constrained by the size of the data device and
|
|
* the height required to store one refcount record for each rtextent
|
|
* in an rt group.
|
|
*/
|
|
d_maxlevels = xfs_btree_space_to_height(mp->m_rtrefc_mnr,
|
|
mp->m_sb.sb_dblocks);
|
|
r_maxlevels = xfs_btree_compute_maxlevels(mp->m_rtrefc_mnr,
|
|
mp->m_sb.sb_rgextents);
|
|
|
|
/* Add one level to handle the inode root level. */
|
|
mp->m_rtrefc_maxlevels = min(d_maxlevels, r_maxlevels) + 1;
|
|
}
|
|
|
|
/* Calculate the rtrefcount btree size for some records. */
|
|
unsigned long long
|
|
xfs_rtrefcountbt_calc_size(
|
|
struct xfs_mount *mp,
|
|
unsigned long long len)
|
|
{
|
|
return xfs_btree_calc_size(mp->m_rtrefc_mnr, len);
|
|
}
|
|
|
|
/*
|
|
* Calculate the maximum refcount btree size.
|
|
*/
|
|
static unsigned long long
|
|
xfs_rtrefcountbt_max_size(
|
|
struct xfs_mount *mp,
|
|
xfs_rtblock_t rtblocks)
|
|
{
|
|
/* Bail out if we're uninitialized, which can happen in mkfs. */
|
|
if (mp->m_rtrefc_mxr[0] == 0)
|
|
return 0;
|
|
|
|
return xfs_rtrefcountbt_calc_size(mp, rtblocks);
|
|
}
|
|
|
|
/*
|
|
* Figure out how many blocks to reserve and how many are used by this btree.
|
|
* We need enough space to hold one record for every rt extent in the rtgroup.
|
|
*/
|
|
xfs_filblks_t
|
|
xfs_rtrefcountbt_calc_reserves(
|
|
struct xfs_mount *mp)
|
|
{
|
|
if (!xfs_has_rtreflink(mp))
|
|
return 0;
|
|
|
|
return xfs_rtrefcountbt_max_size(mp, mp->m_sb.sb_rgextents);
|
|
}
|
|
|
|
/*
|
|
* Convert on-disk form of btree root to in-memory form.
|
|
*/
|
|
STATIC void
|
|
xfs_rtrefcountbt_from_disk(
|
|
struct xfs_inode *ip,
|
|
struct xfs_rtrefcount_root *dblock,
|
|
int dblocklen,
|
|
struct xfs_btree_block *rblock)
|
|
{
|
|
struct xfs_mount *mp = ip->i_mount;
|
|
struct xfs_refcount_key *fkp;
|
|
__be64 *fpp;
|
|
struct xfs_refcount_key *tkp;
|
|
__be64 *tpp;
|
|
struct xfs_refcount_rec *frp;
|
|
struct xfs_refcount_rec *trp;
|
|
unsigned int numrecs;
|
|
unsigned int maxrecs;
|
|
unsigned int rblocklen;
|
|
|
|
rblocklen = xfs_rtrefcount_broot_space(mp, dblock);
|
|
|
|
xfs_btree_init_block(mp, rblock, &xfs_rtrefcountbt_ops, 0, 0,
|
|
ip->i_ino);
|
|
|
|
rblock->bb_level = dblock->bb_level;
|
|
rblock->bb_numrecs = dblock->bb_numrecs;
|
|
|
|
if (be16_to_cpu(rblock->bb_level) > 0) {
|
|
maxrecs = xfs_rtrefcountbt_droot_maxrecs(dblocklen, false);
|
|
fkp = xfs_rtrefcount_droot_key_addr(dblock, 1);
|
|
tkp = xfs_rtrefcount_key_addr(rblock, 1);
|
|
fpp = xfs_rtrefcount_droot_ptr_addr(dblock, 1, maxrecs);
|
|
tpp = xfs_rtrefcount_broot_ptr_addr(mp, rblock, 1, rblocklen);
|
|
numrecs = be16_to_cpu(dblock->bb_numrecs);
|
|
memcpy(tkp, fkp, 2 * sizeof(*fkp) * numrecs);
|
|
memcpy(tpp, fpp, sizeof(*fpp) * numrecs);
|
|
} else {
|
|
frp = xfs_rtrefcount_droot_rec_addr(dblock, 1);
|
|
trp = xfs_rtrefcount_rec_addr(rblock, 1);
|
|
numrecs = be16_to_cpu(dblock->bb_numrecs);
|
|
memcpy(trp, frp, sizeof(*frp) * numrecs);
|
|
}
|
|
}
|
|
|
|
/* Load a realtime reference count btree root in from disk. */
|
|
int
|
|
xfs_iformat_rtrefcount(
|
|
struct xfs_inode *ip,
|
|
struct xfs_dinode *dip)
|
|
{
|
|
struct xfs_mount *mp = ip->i_mount;
|
|
struct xfs_rtrefcount_root *dfp = XFS_DFORK_PTR(dip, XFS_DATA_FORK);
|
|
struct xfs_btree_block *broot;
|
|
unsigned int numrecs;
|
|
unsigned int level;
|
|
int dsize;
|
|
|
|
/*
|
|
* growfs must create the rtrefcount inodes before adding a realtime
|
|
* volume to the filesystem, so we cannot use the rtrefcount predicate
|
|
* here.
|
|
*/
|
|
if (!xfs_has_reflink(ip->i_mount)) {
|
|
xfs_inode_mark_sick(ip, XFS_SICK_INO_CORE);
|
|
return -EFSCORRUPTED;
|
|
}
|
|
|
|
dsize = XFS_DFORK_SIZE(dip, mp, XFS_DATA_FORK);
|
|
numrecs = be16_to_cpu(dfp->bb_numrecs);
|
|
level = be16_to_cpu(dfp->bb_level);
|
|
|
|
if (level > mp->m_rtrefc_maxlevels ||
|
|
xfs_rtrefcount_droot_space_calc(level, numrecs) > dsize) {
|
|
xfs_inode_mark_sick(ip, XFS_SICK_INO_CORE);
|
|
return -EFSCORRUPTED;
|
|
}
|
|
|
|
broot = xfs_broot_alloc(xfs_ifork_ptr(ip, XFS_DATA_FORK),
|
|
xfs_rtrefcount_broot_space_calc(mp, level, numrecs));
|
|
if (broot)
|
|
xfs_rtrefcountbt_from_disk(ip, dfp, dsize, broot);
|
|
return 0;
|
|
}
|
|
|
|
/*
|
|
* Convert in-memory form of btree root to on-disk form.
|
|
*/
|
|
void
|
|
xfs_rtrefcountbt_to_disk(
|
|
struct xfs_mount *mp,
|
|
struct xfs_btree_block *rblock,
|
|
int rblocklen,
|
|
struct xfs_rtrefcount_root *dblock,
|
|
int dblocklen)
|
|
{
|
|
struct xfs_refcount_key *fkp;
|
|
__be64 *fpp;
|
|
struct xfs_refcount_key *tkp;
|
|
__be64 *tpp;
|
|
struct xfs_refcount_rec *frp;
|
|
struct xfs_refcount_rec *trp;
|
|
unsigned int maxrecs;
|
|
unsigned int numrecs;
|
|
|
|
ASSERT(rblock->bb_magic == cpu_to_be32(XFS_RTREFC_CRC_MAGIC));
|
|
ASSERT(uuid_equal(&rblock->bb_u.l.bb_uuid, &mp->m_sb.sb_meta_uuid));
|
|
ASSERT(rblock->bb_u.l.bb_blkno == cpu_to_be64(XFS_BUF_DADDR_NULL));
|
|
ASSERT(rblock->bb_u.l.bb_leftsib == cpu_to_be64(NULLFSBLOCK));
|
|
ASSERT(rblock->bb_u.l.bb_rightsib == cpu_to_be64(NULLFSBLOCK));
|
|
|
|
dblock->bb_level = rblock->bb_level;
|
|
dblock->bb_numrecs = rblock->bb_numrecs;
|
|
|
|
if (be16_to_cpu(rblock->bb_level) > 0) {
|
|
maxrecs = xfs_rtrefcountbt_droot_maxrecs(dblocklen, false);
|
|
fkp = xfs_rtrefcount_key_addr(rblock, 1);
|
|
tkp = xfs_rtrefcount_droot_key_addr(dblock, 1);
|
|
fpp = xfs_rtrefcount_broot_ptr_addr(mp, rblock, 1, rblocklen);
|
|
tpp = xfs_rtrefcount_droot_ptr_addr(dblock, 1, maxrecs);
|
|
numrecs = be16_to_cpu(rblock->bb_numrecs);
|
|
memcpy(tkp, fkp, 2 * sizeof(*fkp) * numrecs);
|
|
memcpy(tpp, fpp, sizeof(*fpp) * numrecs);
|
|
} else {
|
|
frp = xfs_rtrefcount_rec_addr(rblock, 1);
|
|
trp = xfs_rtrefcount_droot_rec_addr(dblock, 1);
|
|
numrecs = be16_to_cpu(rblock->bb_numrecs);
|
|
memcpy(trp, frp, sizeof(*frp) * numrecs);
|
|
}
|
|
}
|
|
|
|
/* Flush a realtime reference count btree root out to disk. */
|
|
void
|
|
xfs_iflush_rtrefcount(
|
|
struct xfs_inode *ip,
|
|
struct xfs_dinode *dip)
|
|
{
|
|
struct xfs_ifork *ifp = xfs_ifork_ptr(ip, XFS_DATA_FORK);
|
|
struct xfs_rtrefcount_root *dfp = XFS_DFORK_PTR(dip, XFS_DATA_FORK);
|
|
|
|
ASSERT(ifp->if_broot != NULL);
|
|
ASSERT(ifp->if_broot_bytes > 0);
|
|
ASSERT(xfs_rtrefcount_droot_space(ifp->if_broot) <=
|
|
xfs_inode_fork_size(ip, XFS_DATA_FORK));
|
|
xfs_rtrefcountbt_to_disk(ip->i_mount, ifp->if_broot,
|
|
ifp->if_broot_bytes, dfp,
|
|
XFS_DFORK_SIZE(dip, ip->i_mount, XFS_DATA_FORK));
|
|
}
|
|
|
|
/*
|
|
* Create a realtime refcount btree inode.
|
|
*/
|
|
int
|
|
xfs_rtrefcountbt_create(
|
|
struct xfs_rtgroup *rtg,
|
|
struct xfs_inode *ip,
|
|
struct xfs_trans *tp,
|
|
bool init)
|
|
{
|
|
struct xfs_ifork *ifp = xfs_ifork_ptr(ip, XFS_DATA_FORK);
|
|
struct xfs_mount *mp = ip->i_mount;
|
|
struct xfs_btree_block *broot;
|
|
|
|
ifp->if_format = XFS_DINODE_FMT_META_BTREE;
|
|
ASSERT(ifp->if_broot_bytes == 0);
|
|
ASSERT(ifp->if_bytes == 0);
|
|
|
|
/* Initialize the empty incore btree root. */
|
|
broot = xfs_broot_realloc(ifp,
|
|
xfs_rtrefcount_broot_space_calc(mp, 0, 0));
|
|
if (broot)
|
|
xfs_btree_init_block(mp, broot, &xfs_rtrefcountbt_ops, 0, 0,
|
|
ip->i_ino);
|
|
xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE | XFS_ILOG_DBROOT);
|
|
return 0;
|
|
}
|