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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>
		
			
				
	
	
		
			619 lines
		
	
	
	
		
			15 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			619 lines
		
	
	
	
		
			15 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
// SPDX-License-Identifier: GPL-2.0
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/*
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 * Copyright (c) 2000-2001,2005 Silicon Graphics, Inc.
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 * All Rights Reserved.
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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_mount.h"
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#include "xfs_btree.h"
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#include "xfs_btree_staging.h"
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#include "xfs_alloc_btree.h"
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#include "xfs_alloc.h"
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#include "xfs_extent_busy.h"
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#include "xfs_error.h"
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#include "xfs_health.h"
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#include "xfs_trace.h"
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#include "xfs_trans.h"
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#include "xfs_ag.h"
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static struct kmem_cache	*xfs_allocbt_cur_cache;
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STATIC struct xfs_btree_cur *
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xfs_bnobt_dup_cursor(
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	struct xfs_btree_cur	*cur)
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{
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	return xfs_bnobt_init_cursor(cur->bc_mp, cur->bc_tp, cur->bc_ag.agbp,
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			to_perag(cur->bc_group));
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}
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STATIC struct xfs_btree_cur *
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xfs_cntbt_dup_cursor(
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	struct xfs_btree_cur	*cur)
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{
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	return xfs_cntbt_init_cursor(cur->bc_mp, cur->bc_tp, cur->bc_ag.agbp,
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			to_perag(cur->bc_group));
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}
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STATIC void
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xfs_allocbt_set_root(
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	struct xfs_btree_cur		*cur,
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	const union xfs_btree_ptr	*ptr,
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	int				inc)
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{
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	struct xfs_perag		*pag = to_perag(cur->bc_group);
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	struct xfs_buf			*agbp = cur->bc_ag.agbp;
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	struct xfs_agf			*agf = agbp->b_addr;
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	ASSERT(ptr->s != 0);
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	if (xfs_btree_is_bno(cur->bc_ops)) {
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		agf->agf_bno_root = ptr->s;
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		be32_add_cpu(&agf->agf_bno_level, inc);
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		pag->pagf_bno_level += inc;
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	} else {
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		agf->agf_cnt_root = ptr->s;
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		be32_add_cpu(&agf->agf_cnt_level, inc);
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		pag->pagf_cnt_level += inc;
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	}
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	xfs_alloc_log_agf(cur->bc_tp, agbp, XFS_AGF_ROOTS | XFS_AGF_LEVELS);
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}
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STATIC int
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xfs_allocbt_alloc_block(
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	struct xfs_btree_cur		*cur,
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	const union xfs_btree_ptr	*start,
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	union xfs_btree_ptr		*new,
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	int				*stat)
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{
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	int			error;
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	xfs_agblock_t		bno;
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	/* Allocate the new block from the freelist. If we can't, give up.  */
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	error = xfs_alloc_get_freelist(to_perag(cur->bc_group), cur->bc_tp,
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			cur->bc_ag.agbp, &bno, 1);
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	if (error)
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		return error;
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	if (bno == NULLAGBLOCK) {
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		*stat = 0;
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		return 0;
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	}
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	atomic64_inc(&cur->bc_mp->m_allocbt_blks);
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	xfs_extent_busy_reuse(cur->bc_group, bno, 1, false);
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	new->s = cpu_to_be32(bno);
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	*stat = 1;
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	return 0;
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}
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STATIC int
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xfs_allocbt_free_block(
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	struct xfs_btree_cur	*cur,
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	struct xfs_buf		*bp)
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{
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	struct xfs_buf		*agbp = cur->bc_ag.agbp;
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	xfs_agblock_t		bno;
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	int			error;
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	bno = xfs_daddr_to_agbno(cur->bc_mp, xfs_buf_daddr(bp));
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	error = xfs_alloc_put_freelist(to_perag(cur->bc_group), cur->bc_tp,
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			agbp, NULL, bno, 1);
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	if (error)
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		return error;
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	atomic64_dec(&cur->bc_mp->m_allocbt_blks);
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	xfs_extent_busy_insert(cur->bc_tp, pag_group(agbp->b_pag), bno, 1,
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			      XFS_EXTENT_BUSY_SKIP_DISCARD);
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	return 0;
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}
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STATIC int
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xfs_allocbt_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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	return cur->bc_mp->m_alloc_mnr[level != 0];
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}
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STATIC int
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xfs_allocbt_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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	return cur->bc_mp->m_alloc_mxr[level != 0];
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}
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STATIC void
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xfs_allocbt_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->alloc.ar_startblock = rec->alloc.ar_startblock;
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	key->alloc.ar_blockcount = rec->alloc.ar_blockcount;
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}
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STATIC void
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xfs_bnobt_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->alloc.ar_startblock);
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	x += be32_to_cpu(rec->alloc.ar_blockcount) - 1;
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	key->alloc.ar_startblock = cpu_to_be32(x);
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	key->alloc.ar_blockcount = 0;
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}
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STATIC void
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xfs_cntbt_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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	key->alloc.ar_blockcount = rec->alloc.ar_blockcount;
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	key->alloc.ar_startblock = 0;
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}
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STATIC void
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xfs_allocbt_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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	rec->alloc.ar_startblock = cpu_to_be32(cur->bc_rec.a.ar_startblock);
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	rec->alloc.ar_blockcount = cpu_to_be32(cur->bc_rec.a.ar_blockcount);
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}
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STATIC void
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xfs_allocbt_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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	struct xfs_agf		*agf = cur->bc_ag.agbp->b_addr;
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	ASSERT(cur->bc_group->xg_gno == be32_to_cpu(agf->agf_seqno));
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	if (xfs_btree_is_bno(cur->bc_ops))
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		ptr->s = agf->agf_bno_root;
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	else
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		ptr->s = agf->agf_cnt_root;
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}
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STATIC int
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xfs_bnobt_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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	struct xfs_alloc_rec_incore	*rec = &cur->bc_rec.a;
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	const struct xfs_alloc_rec	*kp = &key->alloc;
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	return cmp_int(be32_to_cpu(kp->ar_startblock),
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		       rec->ar_startblock);
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}
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STATIC int
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xfs_cntbt_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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	struct xfs_alloc_rec_incore	*rec = &cur->bc_rec.a;
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	const struct xfs_alloc_rec	*kp = &key->alloc;
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	return cmp_int(be32_to_cpu(kp->ar_blockcount), rec->ar_blockcount) ?:
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	       cmp_int(be32_to_cpu(kp->ar_startblock), rec->ar_startblock);
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}
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STATIC int
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xfs_bnobt_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->alloc.ar_startblock);
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	return cmp_int(be32_to_cpu(k1->alloc.ar_startblock),
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		       be32_to_cpu(k2->alloc.ar_startblock));
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}
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STATIC int
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xfs_cntbt_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->alloc.ar_blockcount &&
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			 mask->alloc.ar_startblock));
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	return cmp_int(be32_to_cpu(k1->alloc.ar_blockcount),
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		       be32_to_cpu(k2->alloc.ar_blockcount)) ?:
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	       cmp_int(be32_to_cpu(k1->alloc.ar_startblock),
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		       be32_to_cpu(k2->alloc.ar_startblock));
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}
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static xfs_failaddr_t
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xfs_allocbt_verify(
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	struct xfs_buf		*bp)
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{
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	struct xfs_mount	*mp = bp->b_mount;
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	struct xfs_btree_block	*block = XFS_BUF_TO_BLOCK(bp);
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	struct xfs_perag	*pag = bp->b_pag;
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	xfs_failaddr_t		fa;
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	unsigned 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_crc(mp)) {
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		fa = xfs_btree_agblock_v5hdr_verify(bp);
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		if (fa)
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			return fa;
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	}
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	/*
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	 * The perag may not be attached during grow operations or fully
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	 * initialized from the AGF during log recovery. Therefore we can only
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	 * check against maximum tree depth from those contexts.
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	 *
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	 * Otherwise check against the per-tree limit. Peek at one of the
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	 * verifier magic values to determine the type of tree we're verifying
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	 * against.
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	 */
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	level = be16_to_cpu(block->bb_level);
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	if (pag && xfs_perag_initialised_agf(pag)) {
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		unsigned int	maxlevel, repair_maxlevel = 0;
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		/*
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		 * Online repair could be rewriting the free space btrees, so
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		 * we'll validate against the larger of either tree while this
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		 * is going on.
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		 */
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		if (bp->b_ops->magic[0] == cpu_to_be32(XFS_ABTC_MAGIC)) {
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			maxlevel = pag->pagf_cnt_level;
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#ifdef CONFIG_XFS_ONLINE_REPAIR
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			repair_maxlevel = pag->pagf_repair_cnt_level;
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#endif
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		} else {
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			maxlevel = pag->pagf_bno_level;
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#ifdef CONFIG_XFS_ONLINE_REPAIR
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			repair_maxlevel = pag->pagf_repair_bno_level;
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#endif
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		}
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		if (level >= max(maxlevel, repair_maxlevel))
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			return __this_address;
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	} else if (level >= mp->m_alloc_maxlevels)
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		return __this_address;
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	return xfs_btree_agblock_verify(bp, mp->m_alloc_mxr[level != 0]);
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}
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static void
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xfs_allocbt_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_agblock_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_allocbt_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_allocbt_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_allocbt_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_agblock_calc_crc(bp);
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}
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const struct xfs_buf_ops xfs_bnobt_buf_ops = {
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	.name = "xfs_bnobt",
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	.magic = { cpu_to_be32(XFS_ABTB_MAGIC),
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		   cpu_to_be32(XFS_ABTB_CRC_MAGIC) },
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	.verify_read = xfs_allocbt_read_verify,
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	.verify_write = xfs_allocbt_write_verify,
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	.verify_struct = xfs_allocbt_verify,
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};
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const struct xfs_buf_ops xfs_cntbt_buf_ops = {
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	.name = "xfs_cntbt",
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	.magic = { cpu_to_be32(XFS_ABTC_MAGIC),
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		   cpu_to_be32(XFS_ABTC_CRC_MAGIC) },
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	.verify_read = xfs_allocbt_read_verify,
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	.verify_write = xfs_allocbt_write_verify,
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	.verify_struct = xfs_allocbt_verify,
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};
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STATIC int
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xfs_bnobt_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->alloc.ar_startblock) <
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	       be32_to_cpu(k2->alloc.ar_startblock);
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}
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STATIC int
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xfs_bnobt_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->alloc.ar_startblock) +
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		be32_to_cpu(r1->alloc.ar_blockcount) <=
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		be32_to_cpu(r2->alloc.ar_startblock);
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}
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STATIC int
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xfs_cntbt_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->alloc.ar_blockcount) <
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		be32_to_cpu(k2->alloc.ar_blockcount) ||
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		(k1->alloc.ar_blockcount == k2->alloc.ar_blockcount &&
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		 be32_to_cpu(k1->alloc.ar_startblock) <
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		 be32_to_cpu(k2->alloc.ar_startblock));
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}
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STATIC int
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xfs_cntbt_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->alloc.ar_blockcount) <
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		be32_to_cpu(r2->alloc.ar_blockcount) ||
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		(r1->alloc.ar_blockcount == r2->alloc.ar_blockcount &&
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		 be32_to_cpu(r1->alloc.ar_startblock) <
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		 be32_to_cpu(r2->alloc.ar_startblock));
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}
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STATIC enum xbtree_key_contig
 | 
						|
xfs_allocbt_keys_contiguous(
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						|
	struct xfs_btree_cur		*cur,
 | 
						|
	const union xfs_btree_key	*key1,
 | 
						|
	const union xfs_btree_key	*key2,
 | 
						|
	const union xfs_btree_key	*mask)
 | 
						|
{
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	ASSERT(!mask || mask->alloc.ar_startblock);
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						|
	return xbtree_key_contig(be32_to_cpu(key1->alloc.ar_startblock),
 | 
						|
				 be32_to_cpu(key2->alloc.ar_startblock));
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}
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const struct xfs_btree_ops xfs_bnobt_ops = {
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	.name			= "bno",
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	.type			= XFS_BTREE_TYPE_AG,
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	.rec_len		= sizeof(xfs_alloc_rec_t),
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	.key_len		= sizeof(xfs_alloc_key_t),
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	.ptr_len		= XFS_BTREE_SHORT_PTR_LEN,
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	.lru_refs		= XFS_ALLOC_BTREE_REF,
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	.statoff		= XFS_STATS_CALC_INDEX(xs_abtb_2),
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	.sick_mask		= XFS_SICK_AG_BNOBT,
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	.dup_cursor		= xfs_bnobt_dup_cursor,
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	.set_root		= xfs_allocbt_set_root,
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	.alloc_block		= xfs_allocbt_alloc_block,
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	.free_block		= xfs_allocbt_free_block,
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	.get_minrecs		= xfs_allocbt_get_minrecs,
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	.get_maxrecs		= xfs_allocbt_get_maxrecs,
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	.init_key_from_rec	= xfs_allocbt_init_key_from_rec,
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	.init_high_key_from_rec	= xfs_bnobt_init_high_key_from_rec,
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	.init_rec_from_cur	= xfs_allocbt_init_rec_from_cur,
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	.init_ptr_from_cur	= xfs_allocbt_init_ptr_from_cur,
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	.cmp_key_with_cur	= xfs_bnobt_cmp_key_with_cur,
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	.buf_ops		= &xfs_bnobt_buf_ops,
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	.cmp_two_keys		= xfs_bnobt_cmp_two_keys,
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	.keys_inorder		= xfs_bnobt_keys_inorder,
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	.recs_inorder		= xfs_bnobt_recs_inorder,
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	.keys_contiguous	= xfs_allocbt_keys_contiguous,
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};
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const struct xfs_btree_ops xfs_cntbt_ops = {
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	.name			= "cnt",
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	.type			= XFS_BTREE_TYPE_AG,
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	.rec_len		= sizeof(xfs_alloc_rec_t),
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	.key_len		= sizeof(xfs_alloc_key_t),
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	.ptr_len		= XFS_BTREE_SHORT_PTR_LEN,
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	.lru_refs		= XFS_ALLOC_BTREE_REF,
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	.statoff		= XFS_STATS_CALC_INDEX(xs_abtc_2),
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	.sick_mask		= XFS_SICK_AG_CNTBT,
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	.dup_cursor		= xfs_cntbt_dup_cursor,
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	.set_root		= xfs_allocbt_set_root,
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	.alloc_block		= xfs_allocbt_alloc_block,
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	.free_block		= xfs_allocbt_free_block,
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	.get_minrecs		= xfs_allocbt_get_minrecs,
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	.get_maxrecs		= xfs_allocbt_get_maxrecs,
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	.init_key_from_rec	= xfs_allocbt_init_key_from_rec,
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	.init_high_key_from_rec	= xfs_cntbt_init_high_key_from_rec,
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	.init_rec_from_cur	= xfs_allocbt_init_rec_from_cur,
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	.init_ptr_from_cur	= xfs_allocbt_init_ptr_from_cur,
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	.cmp_key_with_cur	= xfs_cntbt_cmp_key_with_cur,
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	.buf_ops		= &xfs_cntbt_buf_ops,
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	.cmp_two_keys		= xfs_cntbt_cmp_two_keys,
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	.keys_inorder		= xfs_cntbt_keys_inorder,
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	.recs_inorder		= xfs_cntbt_recs_inorder,
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	.keys_contiguous	= NULL, /* not needed right now */
 | 
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};
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/*
 | 
						|
 * Allocate a new bnobt cursor.
 | 
						|
 *
 | 
						|
 * For staging cursors tp and agbp are NULL.
 | 
						|
 */
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						|
struct xfs_btree_cur *
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						|
xfs_bnobt_init_cursor(
 | 
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	struct xfs_mount	*mp,
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	struct xfs_trans	*tp,
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	struct xfs_buf		*agbp,
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						|
	struct xfs_perag	*pag)
 | 
						|
{
 | 
						|
	struct xfs_btree_cur	*cur;
 | 
						|
 | 
						|
	cur = xfs_btree_alloc_cursor(mp, tp, &xfs_bnobt_ops,
 | 
						|
			mp->m_alloc_maxlevels, xfs_allocbt_cur_cache);
 | 
						|
	cur->bc_group = xfs_group_hold(pag_group(pag));
 | 
						|
	cur->bc_ag.agbp = agbp;
 | 
						|
	if (agbp) {
 | 
						|
		struct xfs_agf		*agf = agbp->b_addr;
 | 
						|
 | 
						|
		cur->bc_nlevels = be32_to_cpu(agf->agf_bno_level);
 | 
						|
	}
 | 
						|
	return cur;
 | 
						|
}
 | 
						|
 | 
						|
/*
 | 
						|
 * Allocate a new cntbt cursor.
 | 
						|
 *
 | 
						|
 * For staging cursors tp and agbp are NULL.
 | 
						|
 */
 | 
						|
struct xfs_btree_cur *
 | 
						|
xfs_cntbt_init_cursor(
 | 
						|
	struct xfs_mount	*mp,
 | 
						|
	struct xfs_trans	*tp,
 | 
						|
	struct xfs_buf		*agbp,
 | 
						|
	struct xfs_perag	*pag)
 | 
						|
{
 | 
						|
	struct xfs_btree_cur	*cur;
 | 
						|
 | 
						|
	cur = xfs_btree_alloc_cursor(mp, tp, &xfs_cntbt_ops,
 | 
						|
			mp->m_alloc_maxlevels, xfs_allocbt_cur_cache);
 | 
						|
	cur->bc_group = xfs_group_hold(pag_group(pag));
 | 
						|
	cur->bc_ag.agbp = agbp;
 | 
						|
	if (agbp) {
 | 
						|
		struct xfs_agf		*agf = agbp->b_addr;
 | 
						|
 | 
						|
		cur->bc_nlevels = be32_to_cpu(agf->agf_cnt_level);
 | 
						|
	}
 | 
						|
	return cur;
 | 
						|
}
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						|
/*
 | 
						|
 * Install a new free space btree root.  Caller is responsible for invalidating
 | 
						|
 * and freeing the old btree blocks.
 | 
						|
 */
 | 
						|
void
 | 
						|
xfs_allocbt_commit_staged_btree(
 | 
						|
	struct xfs_btree_cur	*cur,
 | 
						|
	struct xfs_trans	*tp,
 | 
						|
	struct xfs_buf		*agbp)
 | 
						|
{
 | 
						|
	struct xfs_agf		*agf = agbp->b_addr;
 | 
						|
	struct xbtree_afakeroot	*afake = cur->bc_ag.afake;
 | 
						|
 | 
						|
	ASSERT(cur->bc_flags & XFS_BTREE_STAGING);
 | 
						|
 | 
						|
	if (xfs_btree_is_bno(cur->bc_ops)) {
 | 
						|
		agf->agf_bno_root = cpu_to_be32(afake->af_root);
 | 
						|
		agf->agf_bno_level = cpu_to_be32(afake->af_levels);
 | 
						|
	} else {
 | 
						|
		agf->agf_cnt_root = cpu_to_be32(afake->af_root);
 | 
						|
		agf->agf_cnt_level = cpu_to_be32(afake->af_levels);
 | 
						|
	}
 | 
						|
	xfs_alloc_log_agf(tp, agbp, XFS_AGF_ROOTS | XFS_AGF_LEVELS);
 | 
						|
 | 
						|
	xfs_btree_commit_afakeroot(cur, tp, agbp);
 | 
						|
}
 | 
						|
 | 
						|
/* Calculate number of records in an alloc btree block. */
 | 
						|
static inline unsigned int
 | 
						|
xfs_allocbt_block_maxrecs(
 | 
						|
	unsigned int		blocklen,
 | 
						|
	bool			leaf)
 | 
						|
{
 | 
						|
	if (leaf)
 | 
						|
		return blocklen / sizeof(xfs_alloc_rec_t);
 | 
						|
	return blocklen / (sizeof(xfs_alloc_key_t) + sizeof(xfs_alloc_ptr_t));
 | 
						|
}
 | 
						|
 | 
						|
/*
 | 
						|
 * Calculate number of records in an alloc btree block.
 | 
						|
 */
 | 
						|
unsigned int
 | 
						|
xfs_allocbt_maxrecs(
 | 
						|
	struct xfs_mount	*mp,
 | 
						|
	unsigned int		blocklen,
 | 
						|
	bool			leaf)
 | 
						|
{
 | 
						|
	blocklen -= XFS_ALLOC_BLOCK_LEN(mp);
 | 
						|
	return xfs_allocbt_block_maxrecs(blocklen, leaf);
 | 
						|
}
 | 
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 | 
						|
/* Free space btrees are at their largest when every other block is free. */
 | 
						|
#define XFS_MAX_FREESP_RECORDS	((XFS_MAX_AG_BLOCKS + 1) / 2)
 | 
						|
 | 
						|
/* Compute the max possible height for free space btrees. */
 | 
						|
unsigned int
 | 
						|
xfs_allocbt_maxlevels_ondisk(void)
 | 
						|
{
 | 
						|
	unsigned int		minrecs[2];
 | 
						|
	unsigned int		blocklen;
 | 
						|
 | 
						|
	blocklen = min(XFS_MIN_BLOCKSIZE - XFS_BTREE_SBLOCK_LEN,
 | 
						|
		       XFS_MIN_CRC_BLOCKSIZE - XFS_BTREE_SBLOCK_CRC_LEN);
 | 
						|
 | 
						|
	minrecs[0] = xfs_allocbt_block_maxrecs(blocklen, true) / 2;
 | 
						|
	minrecs[1] = xfs_allocbt_block_maxrecs(blocklen, false) / 2;
 | 
						|
 | 
						|
	return xfs_btree_compute_maxlevels(minrecs, XFS_MAX_FREESP_RECORDS);
 | 
						|
}
 | 
						|
 | 
						|
/* Calculate the freespace btree size for some records. */
 | 
						|
xfs_extlen_t
 | 
						|
xfs_allocbt_calc_size(
 | 
						|
	struct xfs_mount	*mp,
 | 
						|
	unsigned long long	len)
 | 
						|
{
 | 
						|
	return xfs_btree_calc_size(mp->m_alloc_mnr, len);
 | 
						|
}
 | 
						|
 | 
						|
int __init
 | 
						|
xfs_allocbt_init_cur_cache(void)
 | 
						|
{
 | 
						|
	xfs_allocbt_cur_cache = kmem_cache_create("xfs_bnobt_cur",
 | 
						|
			xfs_btree_cur_sizeof(xfs_allocbt_maxlevels_ondisk()),
 | 
						|
			0, 0, NULL);
 | 
						|
 | 
						|
	if (!xfs_allocbt_cur_cache)
 | 
						|
		return -ENOMEM;
 | 
						|
	return 0;
 | 
						|
}
 | 
						|
 | 
						|
void
 | 
						|
xfs_allocbt_destroy_cur_cache(void)
 | 
						|
{
 | 
						|
	kmem_cache_destroy(xfs_allocbt_cur_cache);
 | 
						|
	xfs_allocbt_cur_cache = NULL;
 | 
						|
}
 |