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1935 lines
44 KiB
1935 lines
44 KiB
/* |
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* Copyright (c) 2000-2006 Silicon Graphics, Inc. |
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* All Rights Reserved. |
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* |
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* This program is free software; you can redistribute it and/or |
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* modify it under the terms of the GNU General Public License as |
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* published by the Free Software Foundation. |
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* |
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* This program is distributed in the hope that it would be useful, |
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* but WITHOUT ANY WARRANTY; without even the implied warranty of |
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the |
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* GNU General Public License for more details. |
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* |
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* You should have received a copy of the GNU General Public License |
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* along with this program; if not, write the Free Software Foundation, |
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* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA |
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*/ |
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#include "xfs.h" |
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#include <linux/stddef.h> |
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#include <linux/errno.h> |
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#include <linux/gfp.h> |
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#include <linux/pagemap.h> |
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#include <linux/init.h> |
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#include <linux/vmalloc.h> |
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#include <linux/bio.h> |
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#include <linux/sysctl.h> |
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#include <linux/proc_fs.h> |
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#include <linux/workqueue.h> |
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#include <linux/percpu.h> |
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#include <linux/blkdev.h> |
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#include <linux/hash.h> |
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#include <linux/kthread.h> |
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#include <linux/migrate.h> |
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#include <linux/backing-dev.h> |
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#include <linux/freezer.h> |
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|
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#include "xfs_log_format.h" |
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#include "xfs_trans_resv.h" |
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#include "xfs_sb.h" |
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#include "xfs_ag.h" |
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#include "xfs_mount.h" |
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#include "xfs_trace.h" |
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#include "xfs_log.h" |
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|
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static kmem_zone_t *xfs_buf_zone; |
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|
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static struct workqueue_struct *xfslogd_workqueue; |
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|
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#ifdef XFS_BUF_LOCK_TRACKING |
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# define XB_SET_OWNER(bp) ((bp)->b_last_holder = current->pid) |
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# define XB_CLEAR_OWNER(bp) ((bp)->b_last_holder = -1) |
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# define XB_GET_OWNER(bp) ((bp)->b_last_holder) |
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#else |
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# define XB_SET_OWNER(bp) do { } while (0) |
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# define XB_CLEAR_OWNER(bp) do { } while (0) |
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# define XB_GET_OWNER(bp) do { } while (0) |
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#endif |
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|
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#define xb_to_gfp(flags) \ |
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((((flags) & XBF_READ_AHEAD) ? __GFP_NORETRY : GFP_NOFS) | __GFP_NOWARN) |
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|
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|
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static inline int |
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xfs_buf_is_vmapped( |
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struct xfs_buf *bp) |
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{ |
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/* |
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* Return true if the buffer is vmapped. |
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* |
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* b_addr is null if the buffer is not mapped, but the code is clever |
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* enough to know it doesn't have to map a single page, so the check has |
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* to be both for b_addr and bp->b_page_count > 1. |
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*/ |
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return bp->b_addr && bp->b_page_count > 1; |
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} |
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|
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static inline int |
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xfs_buf_vmap_len( |
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struct xfs_buf *bp) |
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{ |
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return (bp->b_page_count * PAGE_SIZE) - bp->b_offset; |
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} |
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|
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/* |
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* When we mark a buffer stale, we remove the buffer from the LRU and clear the |
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* b_lru_ref count so that the buffer is freed immediately when the buffer |
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* reference count falls to zero. If the buffer is already on the LRU, we need |
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* to remove the reference that LRU holds on the buffer. |
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* |
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* This prevents build-up of stale buffers on the LRU. |
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*/ |
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void |
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xfs_buf_stale( |
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struct xfs_buf *bp) |
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{ |
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ASSERT(xfs_buf_islocked(bp)); |
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|
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bp->b_flags |= XBF_STALE; |
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|
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/* |
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* Clear the delwri status so that a delwri queue walker will not |
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* flush this buffer to disk now that it is stale. The delwri queue has |
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* a reference to the buffer, so this is safe to do. |
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*/ |
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bp->b_flags &= ~_XBF_DELWRI_Q; |
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|
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spin_lock(&bp->b_lock); |
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atomic_set(&bp->b_lru_ref, 0); |
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if (!(bp->b_state & XFS_BSTATE_DISPOSE) && |
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(list_lru_del(&bp->b_target->bt_lru, &bp->b_lru))) |
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atomic_dec(&bp->b_hold); |
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|
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ASSERT(atomic_read(&bp->b_hold) >= 1); |
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spin_unlock(&bp->b_lock); |
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} |
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|
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static int |
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xfs_buf_get_maps( |
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struct xfs_buf *bp, |
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int map_count) |
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{ |
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ASSERT(bp->b_maps == NULL); |
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bp->b_map_count = map_count; |
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|
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if (map_count == 1) { |
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bp->b_maps = &bp->__b_map; |
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return 0; |
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} |
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|
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bp->b_maps = kmem_zalloc(map_count * sizeof(struct xfs_buf_map), |
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KM_NOFS); |
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if (!bp->b_maps) |
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return -ENOMEM; |
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return 0; |
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} |
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|
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/* |
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* Frees b_pages if it was allocated. |
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*/ |
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static void |
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xfs_buf_free_maps( |
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struct xfs_buf *bp) |
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{ |
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if (bp->b_maps != &bp->__b_map) { |
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kmem_free(bp->b_maps); |
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bp->b_maps = NULL; |
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} |
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} |
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|
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struct xfs_buf * |
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_xfs_buf_alloc( |
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struct xfs_buftarg *target, |
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struct xfs_buf_map *map, |
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int nmaps, |
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xfs_buf_flags_t flags) |
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{ |
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struct xfs_buf *bp; |
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int error; |
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int i; |
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|
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bp = kmem_zone_zalloc(xfs_buf_zone, KM_NOFS); |
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if (unlikely(!bp)) |
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return NULL; |
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|
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/* |
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* We don't want certain flags to appear in b_flags unless they are |
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* specifically set by later operations on the buffer. |
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*/ |
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flags &= ~(XBF_UNMAPPED | XBF_TRYLOCK | XBF_ASYNC | XBF_READ_AHEAD); |
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|
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atomic_set(&bp->b_hold, 1); |
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atomic_set(&bp->b_lru_ref, 1); |
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init_completion(&bp->b_iowait); |
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INIT_LIST_HEAD(&bp->b_lru); |
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INIT_LIST_HEAD(&bp->b_list); |
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RB_CLEAR_NODE(&bp->b_rbnode); |
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sema_init(&bp->b_sema, 0); /* held, no waiters */ |
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spin_lock_init(&bp->b_lock); |
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XB_SET_OWNER(bp); |
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bp->b_target = target; |
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bp->b_flags = flags; |
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|
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/* |
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* Set length and io_length to the same value initially. |
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* I/O routines should use io_length, which will be the same in |
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* most cases but may be reset (e.g. XFS recovery). |
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*/ |
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error = xfs_buf_get_maps(bp, nmaps); |
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if (error) { |
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kmem_zone_free(xfs_buf_zone, bp); |
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return NULL; |
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} |
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|
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bp->b_bn = map[0].bm_bn; |
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bp->b_length = 0; |
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for (i = 0; i < nmaps; i++) { |
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bp->b_maps[i].bm_bn = map[i].bm_bn; |
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bp->b_maps[i].bm_len = map[i].bm_len; |
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bp->b_length += map[i].bm_len; |
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} |
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bp->b_io_length = bp->b_length; |
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|
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atomic_set(&bp->b_pin_count, 0); |
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init_waitqueue_head(&bp->b_waiters); |
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XFS_STATS_INC(xb_create); |
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trace_xfs_buf_init(bp, _RET_IP_); |
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|
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return bp; |
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} |
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|
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/* |
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* Allocate a page array capable of holding a specified number |
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* of pages, and point the page buf at it. |
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*/ |
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STATIC int |
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_xfs_buf_get_pages( |
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xfs_buf_t *bp, |
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int page_count) |
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{ |
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/* Make sure that we have a page list */ |
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if (bp->b_pages == NULL) { |
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bp->b_page_count = page_count; |
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if (page_count <= XB_PAGES) { |
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bp->b_pages = bp->b_page_array; |
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} else { |
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bp->b_pages = kmem_alloc(sizeof(struct page *) * |
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page_count, KM_NOFS); |
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if (bp->b_pages == NULL) |
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return -ENOMEM; |
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} |
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memset(bp->b_pages, 0, sizeof(struct page *) * page_count); |
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} |
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return 0; |
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} |
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|
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/* |
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* Frees b_pages if it was allocated. |
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*/ |
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STATIC void |
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_xfs_buf_free_pages( |
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xfs_buf_t *bp) |
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{ |
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if (bp->b_pages != bp->b_page_array) { |
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kmem_free(bp->b_pages); |
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bp->b_pages = NULL; |
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} |
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} |
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|
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/* |
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* Releases the specified buffer. |
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* |
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* The modification state of any associated pages is left unchanged. |
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* The buffer must not be on any hash - use xfs_buf_rele instead for |
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* hashed and refcounted buffers |
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*/ |
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void |
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xfs_buf_free( |
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xfs_buf_t *bp) |
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{ |
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trace_xfs_buf_free(bp, _RET_IP_); |
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|
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ASSERT(list_empty(&bp->b_lru)); |
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|
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if (bp->b_flags & _XBF_PAGES) { |
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uint i; |
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|
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if (xfs_buf_is_vmapped(bp)) |
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vm_unmap_ram(bp->b_addr - bp->b_offset, |
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bp->b_page_count); |
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|
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for (i = 0; i < bp->b_page_count; i++) { |
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struct page *page = bp->b_pages[i]; |
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|
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__free_page(page); |
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} |
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} else if (bp->b_flags & _XBF_KMEM) |
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kmem_free(bp->b_addr); |
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_xfs_buf_free_pages(bp); |
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xfs_buf_free_maps(bp); |
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kmem_zone_free(xfs_buf_zone, bp); |
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} |
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|
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/* |
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* Allocates all the pages for buffer in question and builds it's page list. |
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*/ |
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STATIC int |
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xfs_buf_allocate_memory( |
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xfs_buf_t *bp, |
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uint flags) |
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{ |
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size_t size; |
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size_t nbytes, offset; |
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gfp_t gfp_mask = xb_to_gfp(flags); |
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unsigned short page_count, i; |
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xfs_off_t start, end; |
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int error; |
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|
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/* |
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* for buffers that are contained within a single page, just allocate |
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* the memory from the heap - there's no need for the complexity of |
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* page arrays to keep allocation down to order 0. |
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*/ |
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size = BBTOB(bp->b_length); |
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if (size < PAGE_SIZE) { |
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bp->b_addr = kmem_alloc(size, KM_NOFS); |
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if (!bp->b_addr) { |
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/* low memory - use alloc_page loop instead */ |
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goto use_alloc_page; |
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} |
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|
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if (((unsigned long)(bp->b_addr + size - 1) & PAGE_MASK) != |
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((unsigned long)bp->b_addr & PAGE_MASK)) { |
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/* b_addr spans two pages - use alloc_page instead */ |
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kmem_free(bp->b_addr); |
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bp->b_addr = NULL; |
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goto use_alloc_page; |
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} |
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bp->b_offset = offset_in_page(bp->b_addr); |
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bp->b_pages = bp->b_page_array; |
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bp->b_pages[0] = virt_to_page(bp->b_addr); |
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bp->b_page_count = 1; |
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bp->b_flags |= _XBF_KMEM; |
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return 0; |
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} |
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|
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use_alloc_page: |
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start = BBTOB(bp->b_maps[0].bm_bn) >> PAGE_SHIFT; |
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end = (BBTOB(bp->b_maps[0].bm_bn + bp->b_length) + PAGE_SIZE - 1) |
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>> PAGE_SHIFT; |
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page_count = end - start; |
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error = _xfs_buf_get_pages(bp, page_count); |
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if (unlikely(error)) |
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return error; |
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|
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offset = bp->b_offset; |
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bp->b_flags |= _XBF_PAGES; |
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|
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for (i = 0; i < bp->b_page_count; i++) { |
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struct page *page; |
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uint retries = 0; |
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retry: |
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page = alloc_page(gfp_mask); |
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if (unlikely(page == NULL)) { |
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if (flags & XBF_READ_AHEAD) { |
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bp->b_page_count = i; |
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error = -ENOMEM; |
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goto out_free_pages; |
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} |
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|
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/* |
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* This could deadlock. |
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* |
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* But until all the XFS lowlevel code is revamped to |
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* handle buffer allocation failures we can't do much. |
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*/ |
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if (!(++retries % 100)) |
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xfs_err(NULL, |
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"possible memory allocation deadlock in %s (mode:0x%x)", |
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__func__, gfp_mask); |
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|
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XFS_STATS_INC(xb_page_retries); |
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congestion_wait(BLK_RW_ASYNC, HZ/50); |
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goto retry; |
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} |
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|
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XFS_STATS_INC(xb_page_found); |
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|
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nbytes = min_t(size_t, size, PAGE_SIZE - offset); |
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size -= nbytes; |
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bp->b_pages[i] = page; |
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offset = 0; |
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} |
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return 0; |
|
|
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out_free_pages: |
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for (i = 0; i < bp->b_page_count; i++) |
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__free_page(bp->b_pages[i]); |
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bp->b_flags &= ~_XBF_PAGES; |
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return error; |
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} |
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|
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/* |
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* Map buffer into kernel address-space if necessary. |
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*/ |
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STATIC int |
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_xfs_buf_map_pages( |
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xfs_buf_t *bp, |
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uint flags) |
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{ |
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ASSERT(bp->b_flags & _XBF_PAGES); |
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if (bp->b_page_count == 1) { |
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/* A single page buffer is always mappable */ |
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bp->b_addr = page_address(bp->b_pages[0]) + bp->b_offset; |
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} else if (flags & XBF_UNMAPPED) { |
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bp->b_addr = NULL; |
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} else { |
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int retried = 0; |
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unsigned noio_flag; |
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|
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/* |
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* vm_map_ram() will allocate auxillary structures (e.g. |
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* pagetables) with GFP_KERNEL, yet we are likely to be under |
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* GFP_NOFS context here. Hence we need to tell memory reclaim |
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* that we are in such a context via PF_MEMALLOC_NOIO to prevent |
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* memory reclaim re-entering the filesystem here and |
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* potentially deadlocking. |
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*/ |
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noio_flag = memalloc_noio_save(); |
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do { |
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bp->b_addr = vm_map_ram(bp->b_pages, bp->b_page_count, |
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-1, PAGE_KERNEL); |
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if (bp->b_addr) |
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break; |
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vm_unmap_aliases(); |
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} while (retried++ <= 1); |
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memalloc_noio_restore(noio_flag); |
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|
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if (!bp->b_addr) |
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return -ENOMEM; |
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bp->b_addr += bp->b_offset; |
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} |
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|
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return 0; |
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} |
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|
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/* |
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* Finding and Reading Buffers |
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*/ |
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|
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/* |
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* Look up, and creates if absent, a lockable buffer for |
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* a given range of an inode. The buffer is returned |
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* locked. No I/O is implied by this call. |
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*/ |
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xfs_buf_t * |
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_xfs_buf_find( |
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struct xfs_buftarg *btp, |
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struct xfs_buf_map *map, |
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int nmaps, |
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xfs_buf_flags_t flags, |
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xfs_buf_t *new_bp) |
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{ |
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size_t numbytes; |
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struct xfs_perag *pag; |
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struct rb_node **rbp; |
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struct rb_node *parent; |
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xfs_buf_t *bp; |
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xfs_daddr_t blkno = map[0].bm_bn; |
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xfs_daddr_t eofs; |
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int numblks = 0; |
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int i; |
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|
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for (i = 0; i < nmaps; i++) |
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numblks += map[i].bm_len; |
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numbytes = BBTOB(numblks); |
|
|
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/* Check for IOs smaller than the sector size / not sector aligned */ |
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ASSERT(!(numbytes < btp->bt_meta_sectorsize)); |
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ASSERT(!(BBTOB(blkno) & (xfs_off_t)btp->bt_meta_sectormask)); |
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|
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/* |
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* Corrupted block numbers can get through to here, unfortunately, so we |
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* have to check that the buffer falls within the filesystem bounds. |
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*/ |
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eofs = XFS_FSB_TO_BB(btp->bt_mount, btp->bt_mount->m_sb.sb_dblocks); |
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if (blkno >= eofs) { |
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/* |
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* XXX (dgc): we should really be returning -EFSCORRUPTED here, |
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* but none of the higher level infrastructure supports |
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* returning a specific error on buffer lookup failures. |
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*/ |
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xfs_alert(btp->bt_mount, |
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"%s: Block out of range: block 0x%llx, EOFS 0x%llx ", |
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__func__, blkno, eofs); |
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WARN_ON(1); |
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return NULL; |
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} |
|
|
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/* get tree root */ |
|
pag = xfs_perag_get(btp->bt_mount, |
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xfs_daddr_to_agno(btp->bt_mount, blkno)); |
|
|
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/* walk tree */ |
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spin_lock(&pag->pag_buf_lock); |
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rbp = &pag->pag_buf_tree.rb_node; |
|
parent = NULL; |
|
bp = NULL; |
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while (*rbp) { |
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parent = *rbp; |
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bp = rb_entry(parent, struct xfs_buf, b_rbnode); |
|
|
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if (blkno < bp->b_bn) |
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rbp = &(*rbp)->rb_left; |
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else if (blkno > bp->b_bn) |
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rbp = &(*rbp)->rb_right; |
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else { |
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/* |
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* found a block number match. If the range doesn't |
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* match, the only way this is allowed is if the buffer |
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* in the cache is stale and the transaction that made |
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* it stale has not yet committed. i.e. we are |
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* reallocating a busy extent. Skip this buffer and |
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* continue searching to the right for an exact match. |
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*/ |
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if (bp->b_length != numblks) { |
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ASSERT(bp->b_flags & XBF_STALE); |
|
rbp = &(*rbp)->rb_right; |
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continue; |
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} |
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atomic_inc(&bp->b_hold); |
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goto found; |
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} |
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} |
|
|
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/* No match found */ |
|
if (new_bp) { |
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rb_link_node(&new_bp->b_rbnode, parent, rbp); |
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rb_insert_color(&new_bp->b_rbnode, &pag->pag_buf_tree); |
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/* the buffer keeps the perag reference until it is freed */ |
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new_bp->b_pag = pag; |
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spin_unlock(&pag->pag_buf_lock); |
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} else { |
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XFS_STATS_INC(xb_miss_locked); |
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spin_unlock(&pag->pag_buf_lock); |
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xfs_perag_put(pag); |
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} |
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return new_bp; |
|
|
|
found: |
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spin_unlock(&pag->pag_buf_lock); |
|
xfs_perag_put(pag); |
|
|
|
if (!xfs_buf_trylock(bp)) { |
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if (flags & XBF_TRYLOCK) { |
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xfs_buf_rele(bp); |
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XFS_STATS_INC(xb_busy_locked); |
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return NULL; |
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} |
|
xfs_buf_lock(bp); |
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XFS_STATS_INC(xb_get_locked_waited); |
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} |
|
|
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/* |
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* if the buffer is stale, clear all the external state associated with |
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* it. We need to keep flags such as how we allocated the buffer memory |
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* intact here. |
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*/ |
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if (bp->b_flags & XBF_STALE) { |
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ASSERT((bp->b_flags & _XBF_DELWRI_Q) == 0); |
|
ASSERT(bp->b_iodone == NULL); |
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bp->b_flags &= _XBF_KMEM | _XBF_PAGES; |
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bp->b_ops = NULL; |
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} |
|
|
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trace_xfs_buf_find(bp, flags, _RET_IP_); |
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XFS_STATS_INC(xb_get_locked); |
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return bp; |
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} |
|
|
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/* |
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* Assembles a buffer covering the specified range. The code is optimised for |
|
* cache hits, as metadata intensive workloads will see 3 orders of magnitude |
|
* more hits than misses. |
|
*/ |
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struct xfs_buf * |
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xfs_buf_get_map( |
|
struct xfs_buftarg *target, |
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struct xfs_buf_map *map, |
|
int nmaps, |
|
xfs_buf_flags_t flags) |
|
{ |
|
struct xfs_buf *bp; |
|
struct xfs_buf *new_bp; |
|
int error = 0; |
|
|
|
bp = _xfs_buf_find(target, map, nmaps, flags, NULL); |
|
if (likely(bp)) |
|
goto found; |
|
|
|
new_bp = _xfs_buf_alloc(target, map, nmaps, flags); |
|
if (unlikely(!new_bp)) |
|
return NULL; |
|
|
|
error = xfs_buf_allocate_memory(new_bp, flags); |
|
if (error) { |
|
xfs_buf_free(new_bp); |
|
return NULL; |
|
} |
|
|
|
bp = _xfs_buf_find(target, map, nmaps, flags, new_bp); |
|
if (!bp) { |
|
xfs_buf_free(new_bp); |
|
return NULL; |
|
} |
|
|
|
if (bp != new_bp) |
|
xfs_buf_free(new_bp); |
|
|
|
found: |
|
if (!bp->b_addr) { |
|
error = _xfs_buf_map_pages(bp, flags); |
|
if (unlikely(error)) { |
|
xfs_warn(target->bt_mount, |
|
"%s: failed to map pagesn", __func__); |
|
xfs_buf_relse(bp); |
|
return NULL; |
|
} |
|
} |
|
|
|
/* |
|
* Clear b_error if this is a lookup from a caller that doesn't expect |
|
* valid data to be found in the buffer. |
|
*/ |
|
if (!(flags & XBF_READ)) |
|
xfs_buf_ioerror(bp, 0); |
|
|
|
XFS_STATS_INC(xb_get); |
|
trace_xfs_buf_get(bp, flags, _RET_IP_); |
|
return bp; |
|
} |
|
|
|
STATIC int |
|
_xfs_buf_read( |
|
xfs_buf_t *bp, |
|
xfs_buf_flags_t flags) |
|
{ |
|
ASSERT(!(flags & XBF_WRITE)); |
|
ASSERT(bp->b_maps[0].bm_bn != XFS_BUF_DADDR_NULL); |
|
|
|
bp->b_flags &= ~(XBF_WRITE | XBF_ASYNC | XBF_READ_AHEAD); |
|
bp->b_flags |= flags & (XBF_READ | XBF_ASYNC | XBF_READ_AHEAD); |
|
|
|
if (flags & XBF_ASYNC) { |
|
xfs_buf_submit(bp); |
|
return 0; |
|
} |
|
return xfs_buf_submit_wait(bp); |
|
} |
|
|
|
xfs_buf_t * |
|
xfs_buf_read_map( |
|
struct xfs_buftarg *target, |
|
struct xfs_buf_map *map, |
|
int nmaps, |
|
xfs_buf_flags_t flags, |
|
const struct xfs_buf_ops *ops) |
|
{ |
|
struct xfs_buf *bp; |
|
|
|
flags |= XBF_READ; |
|
|
|
bp = xfs_buf_get_map(target, map, nmaps, flags); |
|
if (bp) { |
|
trace_xfs_buf_read(bp, flags, _RET_IP_); |
|
|
|
if (!XFS_BUF_ISDONE(bp)) { |
|
XFS_STATS_INC(xb_get_read); |
|
bp->b_ops = ops; |
|
_xfs_buf_read(bp, flags); |
|
} else if (flags & XBF_ASYNC) { |
|
/* |
|
* Read ahead call which is already satisfied, |
|
* drop the buffer |
|
*/ |
|
xfs_buf_relse(bp); |
|
return NULL; |
|
} else { |
|
/* We do not want read in the flags */ |
|
bp->b_flags &= ~XBF_READ; |
|
} |
|
} |
|
|
|
return bp; |
|
} |
|
|
|
/* |
|
* If we are not low on memory then do the readahead in a deadlock |
|
* safe manner. |
|
*/ |
|
void |
|
xfs_buf_readahead_map( |
|
struct xfs_buftarg *target, |
|
struct xfs_buf_map *map, |
|
int nmaps, |
|
const struct xfs_buf_ops *ops) |
|
{ |
|
if (bdi_read_congested(target->bt_bdi)) |
|
return; |
|
|
|
xfs_buf_read_map(target, map, nmaps, |
|
XBF_TRYLOCK|XBF_ASYNC|XBF_READ_AHEAD, ops); |
|
} |
|
|
|
/* |
|
* Read an uncached buffer from disk. Allocates and returns a locked |
|
* buffer containing the disk contents or nothing. |
|
*/ |
|
int |
|
xfs_buf_read_uncached( |
|
struct xfs_buftarg *target, |
|
xfs_daddr_t daddr, |
|
size_t numblks, |
|
int flags, |
|
struct xfs_buf **bpp, |
|
const struct xfs_buf_ops *ops) |
|
{ |
|
struct xfs_buf *bp; |
|
|
|
*bpp = NULL; |
|
|
|
bp = xfs_buf_get_uncached(target, numblks, flags); |
|
if (!bp) |
|
return -ENOMEM; |
|
|
|
/* set up the buffer for a read IO */ |
|
ASSERT(bp->b_map_count == 1); |
|
bp->b_bn = XFS_BUF_DADDR_NULL; /* always null for uncached buffers */ |
|
bp->b_maps[0].bm_bn = daddr; |
|
bp->b_flags |= XBF_READ; |
|
bp->b_ops = ops; |
|
|
|
xfs_buf_submit_wait(bp); |
|
if (bp->b_error) { |
|
int error = bp->b_error; |
|
xfs_buf_relse(bp); |
|
return error; |
|
} |
|
|
|
*bpp = bp; |
|
return 0; |
|
} |
|
|
|
/* |
|
* Return a buffer allocated as an empty buffer and associated to external |
|
* memory via xfs_buf_associate_memory() back to it's empty state. |
|
*/ |
|
void |
|
xfs_buf_set_empty( |
|
struct xfs_buf *bp, |
|
size_t numblks) |
|
{ |
|
if (bp->b_pages) |
|
_xfs_buf_free_pages(bp); |
|
|
|
bp->b_pages = NULL; |
|
bp->b_page_count = 0; |
|
bp->b_addr = NULL; |
|
bp->b_length = numblks; |
|
bp->b_io_length = numblks; |
|
|
|
ASSERT(bp->b_map_count == 1); |
|
bp->b_bn = XFS_BUF_DADDR_NULL; |
|
bp->b_maps[0].bm_bn = XFS_BUF_DADDR_NULL; |
|
bp->b_maps[0].bm_len = bp->b_length; |
|
} |
|
|
|
static inline struct page * |
|
mem_to_page( |
|
void *addr) |
|
{ |
|
if ((!is_vmalloc_addr(addr))) { |
|
return virt_to_page(addr); |
|
} else { |
|
return vmalloc_to_page(addr); |
|
} |
|
} |
|
|
|
int |
|
xfs_buf_associate_memory( |
|
xfs_buf_t *bp, |
|
void *mem, |
|
size_t len) |
|
{ |
|
int rval; |
|
int i = 0; |
|
unsigned long pageaddr; |
|
unsigned long offset; |
|
size_t buflen; |
|
int page_count; |
|
|
|
pageaddr = (unsigned long)mem & PAGE_MASK; |
|
offset = (unsigned long)mem - pageaddr; |
|
buflen = PAGE_ALIGN(len + offset); |
|
page_count = buflen >> PAGE_SHIFT; |
|
|
|
/* Free any previous set of page pointers */ |
|
if (bp->b_pages) |
|
_xfs_buf_free_pages(bp); |
|
|
|
bp->b_pages = NULL; |
|
bp->b_addr = mem; |
|
|
|
rval = _xfs_buf_get_pages(bp, page_count); |
|
if (rval) |
|
return rval; |
|
|
|
bp->b_offset = offset; |
|
|
|
for (i = 0; i < bp->b_page_count; i++) { |
|
bp->b_pages[i] = mem_to_page((void *)pageaddr); |
|
pageaddr += PAGE_SIZE; |
|
} |
|
|
|
bp->b_io_length = BTOBB(len); |
|
bp->b_length = BTOBB(buflen); |
|
|
|
return 0; |
|
} |
|
|
|
xfs_buf_t * |
|
xfs_buf_get_uncached( |
|
struct xfs_buftarg *target, |
|
size_t numblks, |
|
int flags) |
|
{ |
|
unsigned long page_count; |
|
int error, i; |
|
struct xfs_buf *bp; |
|
DEFINE_SINGLE_BUF_MAP(map, XFS_BUF_DADDR_NULL, numblks); |
|
|
|
bp = _xfs_buf_alloc(target, &map, 1, 0); |
|
if (unlikely(bp == NULL)) |
|
goto fail; |
|
|
|
page_count = PAGE_ALIGN(numblks << BBSHIFT) >> PAGE_SHIFT; |
|
error = _xfs_buf_get_pages(bp, page_count); |
|
if (error) |
|
goto fail_free_buf; |
|
|
|
for (i = 0; i < page_count; i++) { |
|
bp->b_pages[i] = alloc_page(xb_to_gfp(flags)); |
|
if (!bp->b_pages[i]) |
|
goto fail_free_mem; |
|
} |
|
bp->b_flags |= _XBF_PAGES; |
|
|
|
error = _xfs_buf_map_pages(bp, 0); |
|
if (unlikely(error)) { |
|
xfs_warn(target->bt_mount, |
|
"%s: failed to map pages", __func__); |
|
goto fail_free_mem; |
|
} |
|
|
|
trace_xfs_buf_get_uncached(bp, _RET_IP_); |
|
return bp; |
|
|
|
fail_free_mem: |
|
while (--i >= 0) |
|
__free_page(bp->b_pages[i]); |
|
_xfs_buf_free_pages(bp); |
|
fail_free_buf: |
|
xfs_buf_free_maps(bp); |
|
kmem_zone_free(xfs_buf_zone, bp); |
|
fail: |
|
return NULL; |
|
} |
|
|
|
/* |
|
* Increment reference count on buffer, to hold the buffer concurrently |
|
* with another thread which may release (free) the buffer asynchronously. |
|
* Must hold the buffer already to call this function. |
|
*/ |
|
void |
|
xfs_buf_hold( |
|
xfs_buf_t *bp) |
|
{ |
|
trace_xfs_buf_hold(bp, _RET_IP_); |
|
atomic_inc(&bp->b_hold); |
|
} |
|
|
|
/* |
|
* Releases a hold on the specified buffer. If the |
|
* the hold count is 1, calls xfs_buf_free. |
|
*/ |
|
void |
|
xfs_buf_rele( |
|
xfs_buf_t *bp) |
|
{ |
|
struct xfs_perag *pag = bp->b_pag; |
|
|
|
trace_xfs_buf_rele(bp, _RET_IP_); |
|
|
|
if (!pag) { |
|
ASSERT(list_empty(&bp->b_lru)); |
|
ASSERT(RB_EMPTY_NODE(&bp->b_rbnode)); |
|
if (atomic_dec_and_test(&bp->b_hold)) |
|
xfs_buf_free(bp); |
|
return; |
|
} |
|
|
|
ASSERT(!RB_EMPTY_NODE(&bp->b_rbnode)); |
|
|
|
ASSERT(atomic_read(&bp->b_hold) > 0); |
|
if (atomic_dec_and_lock(&bp->b_hold, &pag->pag_buf_lock)) { |
|
spin_lock(&bp->b_lock); |
|
if (!(bp->b_flags & XBF_STALE) && atomic_read(&bp->b_lru_ref)) { |
|
/* |
|
* If the buffer is added to the LRU take a new |
|
* reference to the buffer for the LRU and clear the |
|
* (now stale) dispose list state flag |
|
*/ |
|
if (list_lru_add(&bp->b_target->bt_lru, &bp->b_lru)) { |
|
bp->b_state &= ~XFS_BSTATE_DISPOSE; |
|
atomic_inc(&bp->b_hold); |
|
} |
|
spin_unlock(&bp->b_lock); |
|
spin_unlock(&pag->pag_buf_lock); |
|
} else { |
|
/* |
|
* most of the time buffers will already be removed from |
|
* the LRU, so optimise that case by checking for the |
|
* XFS_BSTATE_DISPOSE flag indicating the last list the |
|
* buffer was on was the disposal list |
|
*/ |
|
if (!(bp->b_state & XFS_BSTATE_DISPOSE)) { |
|
list_lru_del(&bp->b_target->bt_lru, &bp->b_lru); |
|
} else { |
|
ASSERT(list_empty(&bp->b_lru)); |
|
} |
|
spin_unlock(&bp->b_lock); |
|
|
|
ASSERT(!(bp->b_flags & _XBF_DELWRI_Q)); |
|
rb_erase(&bp->b_rbnode, &pag->pag_buf_tree); |
|
spin_unlock(&pag->pag_buf_lock); |
|
xfs_perag_put(pag); |
|
xfs_buf_free(bp); |
|
} |
|
} |
|
} |
|
|
|
|
|
/* |
|
* Lock a buffer object, if it is not already locked. |
|
* |
|
* If we come across a stale, pinned, locked buffer, we know that we are |
|
* being asked to lock a buffer that has been reallocated. Because it is |
|
* pinned, we know that the log has not been pushed to disk and hence it |
|
* will still be locked. Rather than continuing to have trylock attempts |
|
* fail until someone else pushes the log, push it ourselves before |
|
* returning. This means that the xfsaild will not get stuck trying |
|
* to push on stale inode buffers. |
|
*/ |
|
int |
|
xfs_buf_trylock( |
|
struct xfs_buf *bp) |
|
{ |
|
int locked; |
|
|
|
locked = down_trylock(&bp->b_sema) == 0; |
|
if (locked) |
|
XB_SET_OWNER(bp); |
|
|
|
trace_xfs_buf_trylock(bp, _RET_IP_); |
|
return locked; |
|
} |
|
|
|
/* |
|
* Lock a buffer object. |
|
* |
|
* If we come across a stale, pinned, locked buffer, we know that we |
|
* are being asked to lock a buffer that has been reallocated. Because |
|
* it is pinned, we know that the log has not been pushed to disk and |
|
* hence it will still be locked. Rather than sleeping until someone |
|
* else pushes the log, push it ourselves before trying to get the lock. |
|
*/ |
|
void |
|
xfs_buf_lock( |
|
struct xfs_buf *bp) |
|
{ |
|
trace_xfs_buf_lock(bp, _RET_IP_); |
|
|
|
if (atomic_read(&bp->b_pin_count) && (bp->b_flags & XBF_STALE)) |
|
xfs_log_force(bp->b_target->bt_mount, 0); |
|
down(&bp->b_sema); |
|
XB_SET_OWNER(bp); |
|
|
|
trace_xfs_buf_lock_done(bp, _RET_IP_); |
|
} |
|
|
|
void |
|
xfs_buf_unlock( |
|
struct xfs_buf *bp) |
|
{ |
|
ASSERT(xfs_buf_islocked(bp)); |
|
|
|
XB_CLEAR_OWNER(bp); |
|
up(&bp->b_sema); |
|
|
|
trace_xfs_buf_unlock(bp, _RET_IP_); |
|
} |
|
|
|
STATIC void |
|
xfs_buf_wait_unpin( |
|
xfs_buf_t *bp) |
|
{ |
|
DECLARE_WAITQUEUE (wait, current); |
|
|
|
if (atomic_read(&bp->b_pin_count) == 0) |
|
return; |
|
|
|
add_wait_queue(&bp->b_waiters, &wait); |
|
for (;;) { |
|
set_current_state(TASK_UNINTERRUPTIBLE); |
|
if (atomic_read(&bp->b_pin_count) == 0) |
|
break; |
|
io_schedule(); |
|
} |
|
remove_wait_queue(&bp->b_waiters, &wait); |
|
set_current_state(TASK_RUNNING); |
|
} |
|
|
|
/* |
|
* Buffer Utility Routines |
|
*/ |
|
|
|
void |
|
xfs_buf_ioend( |
|
struct xfs_buf *bp) |
|
{ |
|
bool read = bp->b_flags & XBF_READ; |
|
|
|
trace_xfs_buf_iodone(bp, _RET_IP_); |
|
|
|
bp->b_flags &= ~(XBF_READ | XBF_WRITE | XBF_READ_AHEAD); |
|
|
|
/* |
|
* Pull in IO completion errors now. We are guaranteed to be running |
|
* single threaded, so we don't need the lock to read b_io_error. |
|
*/ |
|
if (!bp->b_error && bp->b_io_error) |
|
xfs_buf_ioerror(bp, bp->b_io_error); |
|
|
|
/* Only validate buffers that were read without errors */ |
|
if (read && !bp->b_error && bp->b_ops) { |
|
ASSERT(!bp->b_iodone); |
|
bp->b_ops->verify_read(bp); |
|
} |
|
|
|
if (!bp->b_error) |
|
bp->b_flags |= XBF_DONE; |
|
|
|
if (bp->b_iodone) |
|
(*(bp->b_iodone))(bp); |
|
else if (bp->b_flags & XBF_ASYNC) |
|
xfs_buf_relse(bp); |
|
else |
|
complete(&bp->b_iowait); |
|
} |
|
|
|
static void |
|
xfs_buf_ioend_work( |
|
struct work_struct *work) |
|
{ |
|
struct xfs_buf *bp = |
|
container_of(work, xfs_buf_t, b_iodone_work); |
|
|
|
xfs_buf_ioend(bp); |
|
} |
|
|
|
void |
|
xfs_buf_ioend_async( |
|
struct xfs_buf *bp) |
|
{ |
|
INIT_WORK(&bp->b_iodone_work, xfs_buf_ioend_work); |
|
queue_work(xfslogd_workqueue, &bp->b_iodone_work); |
|
} |
|
|
|
void |
|
xfs_buf_ioerror( |
|
xfs_buf_t *bp, |
|
int error) |
|
{ |
|
ASSERT(error <= 0 && error >= -1000); |
|
bp->b_error = error; |
|
trace_xfs_buf_ioerror(bp, error, _RET_IP_); |
|
} |
|
|
|
void |
|
xfs_buf_ioerror_alert( |
|
struct xfs_buf *bp, |
|
const char *func) |
|
{ |
|
xfs_alert(bp->b_target->bt_mount, |
|
"metadata I/O error: block 0x%llx (\"%s\") error %d numblks %d", |
|
(__uint64_t)XFS_BUF_ADDR(bp), func, -bp->b_error, bp->b_length); |
|
} |
|
|
|
int |
|
xfs_bwrite( |
|
struct xfs_buf *bp) |
|
{ |
|
int error; |
|
|
|
ASSERT(xfs_buf_islocked(bp)); |
|
|
|
bp->b_flags |= XBF_WRITE; |
|
bp->b_flags &= ~(XBF_ASYNC | XBF_READ | _XBF_DELWRI_Q | |
|
XBF_WRITE_FAIL | XBF_DONE); |
|
|
|
error = xfs_buf_submit_wait(bp); |
|
if (error) { |
|
xfs_force_shutdown(bp->b_target->bt_mount, |
|
SHUTDOWN_META_IO_ERROR); |
|
} |
|
return error; |
|
} |
|
|
|
STATIC void |
|
xfs_buf_bio_end_io( |
|
struct bio *bio, |
|
int error) |
|
{ |
|
xfs_buf_t *bp = (xfs_buf_t *)bio->bi_private; |
|
|
|
/* |
|
* don't overwrite existing errors - otherwise we can lose errors on |
|
* buffers that require multiple bios to complete. |
|
*/ |
|
if (error) { |
|
spin_lock(&bp->b_lock); |
|
if (!bp->b_io_error) |
|
bp->b_io_error = error; |
|
spin_unlock(&bp->b_lock); |
|
} |
|
|
|
if (!bp->b_error && xfs_buf_is_vmapped(bp) && (bp->b_flags & XBF_READ)) |
|
invalidate_kernel_vmap_range(bp->b_addr, xfs_buf_vmap_len(bp)); |
|
|
|
if (atomic_dec_and_test(&bp->b_io_remaining) == 1) |
|
xfs_buf_ioend_async(bp); |
|
bio_put(bio); |
|
} |
|
|
|
static void |
|
xfs_buf_ioapply_map( |
|
struct xfs_buf *bp, |
|
int map, |
|
int *buf_offset, |
|
int *count, |
|
int rw) |
|
{ |
|
int page_index; |
|
int total_nr_pages = bp->b_page_count; |
|
int nr_pages; |
|
struct bio *bio; |
|
sector_t sector = bp->b_maps[map].bm_bn; |
|
int size; |
|
int offset; |
|
|
|
total_nr_pages = bp->b_page_count; |
|
|
|
/* skip the pages in the buffer before the start offset */ |
|
page_index = 0; |
|
offset = *buf_offset; |
|
while (offset >= PAGE_SIZE) { |
|
page_index++; |
|
offset -= PAGE_SIZE; |
|
} |
|
|
|
/* |
|
* Limit the IO size to the length of the current vector, and update the |
|
* remaining IO count for the next time around. |
|
*/ |
|
size = min_t(int, BBTOB(bp->b_maps[map].bm_len), *count); |
|
*count -= size; |
|
*buf_offset += size; |
|
|
|
next_chunk: |
|
atomic_inc(&bp->b_io_remaining); |
|
nr_pages = BIO_MAX_SECTORS >> (PAGE_SHIFT - BBSHIFT); |
|
if (nr_pages > total_nr_pages) |
|
nr_pages = total_nr_pages; |
|
|
|
bio = bio_alloc(GFP_NOIO, nr_pages); |
|
bio->bi_bdev = bp->b_target->bt_bdev; |
|
bio->bi_iter.bi_sector = sector; |
|
bio->bi_end_io = xfs_buf_bio_end_io; |
|
bio->bi_private = bp; |
|
|
|
|
|
for (; size && nr_pages; nr_pages--, page_index++) { |
|
int rbytes, nbytes = PAGE_SIZE - offset; |
|
|
|
if (nbytes > size) |
|
nbytes = size; |
|
|
|
rbytes = bio_add_page(bio, bp->b_pages[page_index], nbytes, |
|
offset); |
|
if (rbytes < nbytes) |
|
break; |
|
|
|
offset = 0; |
|
sector += BTOBB(nbytes); |
|
size -= nbytes; |
|
total_nr_pages--; |
|
} |
|
|
|
if (likely(bio->bi_iter.bi_size)) { |
|
if (xfs_buf_is_vmapped(bp)) { |
|
flush_kernel_vmap_range(bp->b_addr, |
|
xfs_buf_vmap_len(bp)); |
|
} |
|
submit_bio(rw, bio); |
|
if (size) |
|
goto next_chunk; |
|
} else { |
|
/* |
|
* This is guaranteed not to be the last io reference count |
|
* because the caller (xfs_buf_submit) holds a count itself. |
|
*/ |
|
atomic_dec(&bp->b_io_remaining); |
|
xfs_buf_ioerror(bp, -EIO); |
|
bio_put(bio); |
|
} |
|
|
|
} |
|
|
|
STATIC void |
|
_xfs_buf_ioapply( |
|
struct xfs_buf *bp) |
|
{ |
|
struct blk_plug plug; |
|
int rw; |
|
int offset; |
|
int size; |
|
int i; |
|
|
|
/* |
|
* Make sure we capture only current IO errors rather than stale errors |
|
* left over from previous use of the buffer (e.g. failed readahead). |
|
*/ |
|
bp->b_error = 0; |
|
|
|
if (bp->b_flags & XBF_WRITE) { |
|
if (bp->b_flags & XBF_SYNCIO) |
|
rw = WRITE_SYNC; |
|
else |
|
rw = WRITE; |
|
if (bp->b_flags & XBF_FUA) |
|
rw |= REQ_FUA; |
|
if (bp->b_flags & XBF_FLUSH) |
|
rw |= REQ_FLUSH; |
|
|
|
/* |
|
* Run the write verifier callback function if it exists. If |
|
* this function fails it will mark the buffer with an error and |
|
* the IO should not be dispatched. |
|
*/ |
|
if (bp->b_ops) { |
|
bp->b_ops->verify_write(bp); |
|
if (bp->b_error) { |
|
xfs_force_shutdown(bp->b_target->bt_mount, |
|
SHUTDOWN_CORRUPT_INCORE); |
|
return; |
|
} |
|
} else if (bp->b_bn != XFS_BUF_DADDR_NULL) { |
|
struct xfs_mount *mp = bp->b_target->bt_mount; |
|
|
|
/* |
|
* non-crc filesystems don't attach verifiers during |
|
* log recovery, so don't warn for such filesystems. |
|
*/ |
|
if (xfs_sb_version_hascrc(&mp->m_sb)) { |
|
xfs_warn(mp, |
|
"%s: no ops on block 0x%llx/0x%x", |
|
__func__, bp->b_bn, bp->b_length); |
|
xfs_hex_dump(bp->b_addr, 64); |
|
dump_stack(); |
|
} |
|
} |
|
} else if (bp->b_flags & XBF_READ_AHEAD) { |
|
rw = READA; |
|
} else { |
|
rw = READ; |
|
} |
|
|
|
/* we only use the buffer cache for meta-data */ |
|
rw |= REQ_META; |
|
|
|
/* |
|
* Walk all the vectors issuing IO on them. Set up the initial offset |
|
* into the buffer and the desired IO size before we start - |
|
* _xfs_buf_ioapply_vec() will modify them appropriately for each |
|
* subsequent call. |
|
*/ |
|
offset = bp->b_offset; |
|
size = BBTOB(bp->b_io_length); |
|
blk_start_plug(&plug); |
|
for (i = 0; i < bp->b_map_count; i++) { |
|
xfs_buf_ioapply_map(bp, i, &offset, &size, rw); |
|
if (bp->b_error) |
|
break; |
|
if (size <= 0) |
|
break; /* all done */ |
|
} |
|
blk_finish_plug(&plug); |
|
} |
|
|
|
/* |
|
* Asynchronous IO submission path. This transfers the buffer lock ownership and |
|
* the current reference to the IO. It is not safe to reference the buffer after |
|
* a call to this function unless the caller holds an additional reference |
|
* itself. |
|
*/ |
|
void |
|
xfs_buf_submit( |
|
struct xfs_buf *bp) |
|
{ |
|
trace_xfs_buf_submit(bp, _RET_IP_); |
|
|
|
ASSERT(!(bp->b_flags & _XBF_DELWRI_Q)); |
|
ASSERT(bp->b_flags & XBF_ASYNC); |
|
|
|
/* on shutdown we stale and complete the buffer immediately */ |
|
if (XFS_FORCED_SHUTDOWN(bp->b_target->bt_mount)) { |
|
xfs_buf_ioerror(bp, -EIO); |
|
bp->b_flags &= ~XBF_DONE; |
|
xfs_buf_stale(bp); |
|
xfs_buf_ioend(bp); |
|
return; |
|
} |
|
|
|
if (bp->b_flags & XBF_WRITE) |
|
xfs_buf_wait_unpin(bp); |
|
|
|
/* clear the internal error state to avoid spurious errors */ |
|
bp->b_io_error = 0; |
|
|
|
/* |
|
* The caller's reference is released during I/O completion. |
|
* This occurs some time after the last b_io_remaining reference is |
|
* released, so after we drop our Io reference we have to have some |
|
* other reference to ensure the buffer doesn't go away from underneath |
|
* us. Take a direct reference to ensure we have safe access to the |
|
* buffer until we are finished with it. |
|
*/ |
|
xfs_buf_hold(bp); |
|
|
|
/* |
|
* Set the count to 1 initially, this will stop an I/O completion |
|
* callout which happens before we have started all the I/O from calling |
|
* xfs_buf_ioend too early. |
|
*/ |
|
atomic_set(&bp->b_io_remaining, 1); |
|
_xfs_buf_ioapply(bp); |
|
|
|
/* |
|
* If _xfs_buf_ioapply failed, we can get back here with only the IO |
|
* reference we took above. If we drop it to zero, run completion so |
|
* that we don't return to the caller with completion still pending. |
|
*/ |
|
if (atomic_dec_and_test(&bp->b_io_remaining) == 1) { |
|
if (bp->b_error) |
|
xfs_buf_ioend(bp); |
|
else |
|
xfs_buf_ioend_async(bp); |
|
} |
|
|
|
xfs_buf_rele(bp); |
|
/* Note: it is not safe to reference bp now we've dropped our ref */ |
|
} |
|
|
|
/* |
|
* Synchronous buffer IO submission path, read or write. |
|
*/ |
|
int |
|
xfs_buf_submit_wait( |
|
struct xfs_buf *bp) |
|
{ |
|
int error; |
|
|
|
trace_xfs_buf_submit_wait(bp, _RET_IP_); |
|
|
|
ASSERT(!(bp->b_flags & (_XBF_DELWRI_Q | XBF_ASYNC))); |
|
|
|
if (XFS_FORCED_SHUTDOWN(bp->b_target->bt_mount)) { |
|
xfs_buf_ioerror(bp, -EIO); |
|
xfs_buf_stale(bp); |
|
bp->b_flags &= ~XBF_DONE; |
|
return -EIO; |
|
} |
|
|
|
if (bp->b_flags & XBF_WRITE) |
|
xfs_buf_wait_unpin(bp); |
|
|
|
/* clear the internal error state to avoid spurious errors */ |
|
bp->b_io_error = 0; |
|
|
|
/* |
|
* For synchronous IO, the IO does not inherit the submitters reference |
|
* count, nor the buffer lock. Hence we cannot release the reference we |
|
* are about to take until we've waited for all IO completion to occur, |
|
* including any xfs_buf_ioend_async() work that may be pending. |
|
*/ |
|
xfs_buf_hold(bp); |
|
|
|
/* |
|
* Set the count to 1 initially, this will stop an I/O completion |
|
* callout which happens before we have started all the I/O from calling |
|
* xfs_buf_ioend too early. |
|
*/ |
|
atomic_set(&bp->b_io_remaining, 1); |
|
_xfs_buf_ioapply(bp); |
|
|
|
/* |
|
* make sure we run completion synchronously if it raced with us and is |
|
* already complete. |
|
*/ |
|
if (atomic_dec_and_test(&bp->b_io_remaining) == 1) |
|
xfs_buf_ioend(bp); |
|
|
|
/* wait for completion before gathering the error from the buffer */ |
|
trace_xfs_buf_iowait(bp, _RET_IP_); |
|
wait_for_completion(&bp->b_iowait); |
|
trace_xfs_buf_iowait_done(bp, _RET_IP_); |
|
error = bp->b_error; |
|
|
|
/* |
|
* all done now, we can release the hold that keeps the buffer |
|
* referenced for the entire IO. |
|
*/ |
|
xfs_buf_rele(bp); |
|
return error; |
|
} |
|
|
|
xfs_caddr_t |
|
xfs_buf_offset( |
|
xfs_buf_t *bp, |
|
size_t offset) |
|
{ |
|
struct page *page; |
|
|
|
if (bp->b_addr) |
|
return bp->b_addr + offset; |
|
|
|
offset += bp->b_offset; |
|
page = bp->b_pages[offset >> PAGE_SHIFT]; |
|
return (xfs_caddr_t)page_address(page) + (offset & (PAGE_SIZE-1)); |
|
} |
|
|
|
/* |
|
* Move data into or out of a buffer. |
|
*/ |
|
void |
|
xfs_buf_iomove( |
|
xfs_buf_t *bp, /* buffer to process */ |
|
size_t boff, /* starting buffer offset */ |
|
size_t bsize, /* length to copy */ |
|
void *data, /* data address */ |
|
xfs_buf_rw_t mode) /* read/write/zero flag */ |
|
{ |
|
size_t bend; |
|
|
|
bend = boff + bsize; |
|
while (boff < bend) { |
|
struct page *page; |
|
int page_index, page_offset, csize; |
|
|
|
page_index = (boff + bp->b_offset) >> PAGE_SHIFT; |
|
page_offset = (boff + bp->b_offset) & ~PAGE_MASK; |
|
page = bp->b_pages[page_index]; |
|
csize = min_t(size_t, PAGE_SIZE - page_offset, |
|
BBTOB(bp->b_io_length) - boff); |
|
|
|
ASSERT((csize + page_offset) <= PAGE_SIZE); |
|
|
|
switch (mode) { |
|
case XBRW_ZERO: |
|
memset(page_address(page) + page_offset, 0, csize); |
|
break; |
|
case XBRW_READ: |
|
memcpy(data, page_address(page) + page_offset, csize); |
|
break; |
|
case XBRW_WRITE: |
|
memcpy(page_address(page) + page_offset, data, csize); |
|
} |
|
|
|
boff += csize; |
|
data += csize; |
|
} |
|
} |
|
|
|
/* |
|
* Handling of buffer targets (buftargs). |
|
*/ |
|
|
|
/* |
|
* Wait for any bufs with callbacks that have been submitted but have not yet |
|
* returned. These buffers will have an elevated hold count, so wait on those |
|
* while freeing all the buffers only held by the LRU. |
|
*/ |
|
static enum lru_status |
|
xfs_buftarg_wait_rele( |
|
struct list_head *item, |
|
spinlock_t *lru_lock, |
|
void *arg) |
|
|
|
{ |
|
struct xfs_buf *bp = container_of(item, struct xfs_buf, b_lru); |
|
struct list_head *dispose = arg; |
|
|
|
if (atomic_read(&bp->b_hold) > 1) { |
|
/* need to wait, so skip it this pass */ |
|
trace_xfs_buf_wait_buftarg(bp, _RET_IP_); |
|
return LRU_SKIP; |
|
} |
|
if (!spin_trylock(&bp->b_lock)) |
|
return LRU_SKIP; |
|
|
|
/* |
|
* clear the LRU reference count so the buffer doesn't get |
|
* ignored in xfs_buf_rele(). |
|
*/ |
|
atomic_set(&bp->b_lru_ref, 0); |
|
bp->b_state |= XFS_BSTATE_DISPOSE; |
|
list_move(item, dispose); |
|
spin_unlock(&bp->b_lock); |
|
return LRU_REMOVED; |
|
} |
|
|
|
void |
|
xfs_wait_buftarg( |
|
struct xfs_buftarg *btp) |
|
{ |
|
LIST_HEAD(dispose); |
|
int loop = 0; |
|
|
|
/* loop until there is nothing left on the lru list. */ |
|
while (list_lru_count(&btp->bt_lru)) { |
|
list_lru_walk(&btp->bt_lru, xfs_buftarg_wait_rele, |
|
&dispose, LONG_MAX); |
|
|
|
while (!list_empty(&dispose)) { |
|
struct xfs_buf *bp; |
|
bp = list_first_entry(&dispose, struct xfs_buf, b_lru); |
|
list_del_init(&bp->b_lru); |
|
if (bp->b_flags & XBF_WRITE_FAIL) { |
|
xfs_alert(btp->bt_mount, |
|
"Corruption Alert: Buffer at block 0x%llx had permanent write failures!\n" |
|
"Please run xfs_repair to determine the extent of the problem.", |
|
(long long)bp->b_bn); |
|
} |
|
xfs_buf_rele(bp); |
|
} |
|
if (loop++ != 0) |
|
delay(100); |
|
} |
|
} |
|
|
|
static enum lru_status |
|
xfs_buftarg_isolate( |
|
struct list_head *item, |
|
spinlock_t *lru_lock, |
|
void *arg) |
|
{ |
|
struct xfs_buf *bp = container_of(item, struct xfs_buf, b_lru); |
|
struct list_head *dispose = arg; |
|
|
|
/* |
|
* we are inverting the lru lock/bp->b_lock here, so use a trylock. |
|
* If we fail to get the lock, just skip it. |
|
*/ |
|
if (!spin_trylock(&bp->b_lock)) |
|
return LRU_SKIP; |
|
/* |
|
* Decrement the b_lru_ref count unless the value is already |
|
* zero. If the value is already zero, we need to reclaim the |
|
* buffer, otherwise it gets another trip through the LRU. |
|
*/ |
|
if (!atomic_add_unless(&bp->b_lru_ref, -1, 0)) { |
|
spin_unlock(&bp->b_lock); |
|
return LRU_ROTATE; |
|
} |
|
|
|
bp->b_state |= XFS_BSTATE_DISPOSE; |
|
list_move(item, dispose); |
|
spin_unlock(&bp->b_lock); |
|
return LRU_REMOVED; |
|
} |
|
|
|
static unsigned long |
|
xfs_buftarg_shrink_scan( |
|
struct shrinker *shrink, |
|
struct shrink_control *sc) |
|
{ |
|
struct xfs_buftarg *btp = container_of(shrink, |
|
struct xfs_buftarg, bt_shrinker); |
|
LIST_HEAD(dispose); |
|
unsigned long freed; |
|
unsigned long nr_to_scan = sc->nr_to_scan; |
|
|
|
freed = list_lru_walk_node(&btp->bt_lru, sc->nid, xfs_buftarg_isolate, |
|
&dispose, &nr_to_scan); |
|
|
|
while (!list_empty(&dispose)) { |
|
struct xfs_buf *bp; |
|
bp = list_first_entry(&dispose, struct xfs_buf, b_lru); |
|
list_del_init(&bp->b_lru); |
|
xfs_buf_rele(bp); |
|
} |
|
|
|
return freed; |
|
} |
|
|
|
static unsigned long |
|
xfs_buftarg_shrink_count( |
|
struct shrinker *shrink, |
|
struct shrink_control *sc) |
|
{ |
|
struct xfs_buftarg *btp = container_of(shrink, |
|
struct xfs_buftarg, bt_shrinker); |
|
return list_lru_count_node(&btp->bt_lru, sc->nid); |
|
} |
|
|
|
void |
|
xfs_free_buftarg( |
|
struct xfs_mount *mp, |
|
struct xfs_buftarg *btp) |
|
{ |
|
unregister_shrinker(&btp->bt_shrinker); |
|
list_lru_destroy(&btp->bt_lru); |
|
|
|
if (mp->m_flags & XFS_MOUNT_BARRIER) |
|
xfs_blkdev_issue_flush(btp); |
|
|
|
kmem_free(btp); |
|
} |
|
|
|
int |
|
xfs_setsize_buftarg( |
|
xfs_buftarg_t *btp, |
|
unsigned int sectorsize) |
|
{ |
|
/* Set up metadata sector size info */ |
|
btp->bt_meta_sectorsize = sectorsize; |
|
btp->bt_meta_sectormask = sectorsize - 1; |
|
|
|
if (set_blocksize(btp->bt_bdev, sectorsize)) { |
|
char name[BDEVNAME_SIZE]; |
|
|
|
bdevname(btp->bt_bdev, name); |
|
|
|
xfs_warn(btp->bt_mount, |
|
"Cannot set_blocksize to %u on device %s", |
|
sectorsize, name); |
|
return -EINVAL; |
|
} |
|
|
|
/* Set up device logical sector size mask */ |
|
btp->bt_logical_sectorsize = bdev_logical_block_size(btp->bt_bdev); |
|
btp->bt_logical_sectormask = bdev_logical_block_size(btp->bt_bdev) - 1; |
|
|
|
return 0; |
|
} |
|
|
|
/* |
|
* When allocating the initial buffer target we have not yet |
|
* read in the superblock, so don't know what sized sectors |
|
* are being used at this early stage. Play safe. |
|
*/ |
|
STATIC int |
|
xfs_setsize_buftarg_early( |
|
xfs_buftarg_t *btp, |
|
struct block_device *bdev) |
|
{ |
|
return xfs_setsize_buftarg(btp, bdev_logical_block_size(bdev)); |
|
} |
|
|
|
xfs_buftarg_t * |
|
xfs_alloc_buftarg( |
|
struct xfs_mount *mp, |
|
struct block_device *bdev) |
|
{ |
|
xfs_buftarg_t *btp; |
|
|
|
btp = kmem_zalloc(sizeof(*btp), KM_SLEEP | KM_NOFS); |
|
|
|
btp->bt_mount = mp; |
|
btp->bt_dev = bdev->bd_dev; |
|
btp->bt_bdev = bdev; |
|
btp->bt_bdi = blk_get_backing_dev_info(bdev); |
|
|
|
if (xfs_setsize_buftarg_early(btp, bdev)) |
|
goto error; |
|
|
|
if (list_lru_init(&btp->bt_lru)) |
|
goto error; |
|
|
|
btp->bt_shrinker.count_objects = xfs_buftarg_shrink_count; |
|
btp->bt_shrinker.scan_objects = xfs_buftarg_shrink_scan; |
|
btp->bt_shrinker.seeks = DEFAULT_SEEKS; |
|
btp->bt_shrinker.flags = SHRINKER_NUMA_AWARE; |
|
register_shrinker(&btp->bt_shrinker); |
|
return btp; |
|
|
|
error: |
|
kmem_free(btp); |
|
return NULL; |
|
} |
|
|
|
/* |
|
* Cancel a delayed write list. |
|
* |
|
* Remove each buffer from the list, clear the delwri queue flag and drop the |
|
* associated buffer reference. |
|
*/ |
|
void |
|
xfs_buf_delwri_cancel( |
|
struct list_head *list) |
|
{ |
|
struct xfs_buf *bp; |
|
|
|
while (!list_empty(list)) { |
|
bp = list_first_entry(list, struct xfs_buf, b_list); |
|
|
|
xfs_buf_lock(bp); |
|
bp->b_flags &= ~_XBF_DELWRI_Q; |
|
list_del_init(&bp->b_list); |
|
xfs_buf_relse(bp); |
|
} |
|
} |
|
|
|
/* |
|
* Add a buffer to the delayed write list. |
|
* |
|
* This queues a buffer for writeout if it hasn't already been. Note that |
|
* neither this routine nor the buffer list submission functions perform |
|
* any internal synchronization. It is expected that the lists are thread-local |
|
* to the callers. |
|
* |
|
* Returns true if we queued up the buffer, or false if it already had |
|
* been on the buffer list. |
|
*/ |
|
bool |
|
xfs_buf_delwri_queue( |
|
struct xfs_buf *bp, |
|
struct list_head *list) |
|
{ |
|
ASSERT(xfs_buf_islocked(bp)); |
|
ASSERT(!(bp->b_flags & XBF_READ)); |
|
|
|
/* |
|
* If the buffer is already marked delwri it already is queued up |
|
* by someone else for imediate writeout. Just ignore it in that |
|
* case. |
|
*/ |
|
if (bp->b_flags & _XBF_DELWRI_Q) { |
|
trace_xfs_buf_delwri_queued(bp, _RET_IP_); |
|
return false; |
|
} |
|
|
|
trace_xfs_buf_delwri_queue(bp, _RET_IP_); |
|
|
|
/* |
|
* If a buffer gets written out synchronously or marked stale while it |
|
* is on a delwri list we lazily remove it. To do this, the other party |
|
* clears the _XBF_DELWRI_Q flag but otherwise leaves the buffer alone. |
|
* It remains referenced and on the list. In a rare corner case it |
|
* might get readded to a delwri list after the synchronous writeout, in |
|
* which case we need just need to re-add the flag here. |
|
*/ |
|
bp->b_flags |= _XBF_DELWRI_Q; |
|
if (list_empty(&bp->b_list)) { |
|
atomic_inc(&bp->b_hold); |
|
list_add_tail(&bp->b_list, list); |
|
} |
|
|
|
return true; |
|
} |
|
|
|
/* |
|
* Compare function is more complex than it needs to be because |
|
* the return value is only 32 bits and we are doing comparisons |
|
* on 64 bit values |
|
*/ |
|
static int |
|
xfs_buf_cmp( |
|
void *priv, |
|
struct list_head *a, |
|
struct list_head *b) |
|
{ |
|
struct xfs_buf *ap = container_of(a, struct xfs_buf, b_list); |
|
struct xfs_buf *bp = container_of(b, struct xfs_buf, b_list); |
|
xfs_daddr_t diff; |
|
|
|
diff = ap->b_maps[0].bm_bn - bp->b_maps[0].bm_bn; |
|
if (diff < 0) |
|
return -1; |
|
if (diff > 0) |
|
return 1; |
|
return 0; |
|
} |
|
|
|
static int |
|
__xfs_buf_delwri_submit( |
|
struct list_head *buffer_list, |
|
struct list_head *io_list, |
|
bool wait) |
|
{ |
|
struct blk_plug plug; |
|
struct xfs_buf *bp, *n; |
|
int pinned = 0; |
|
|
|
list_for_each_entry_safe(bp, n, buffer_list, b_list) { |
|
if (!wait) { |
|
if (xfs_buf_ispinned(bp)) { |
|
pinned++; |
|
continue; |
|
} |
|
if (!xfs_buf_trylock(bp)) |
|
continue; |
|
} else { |
|
xfs_buf_lock(bp); |
|
} |
|
|
|
/* |
|
* Someone else might have written the buffer synchronously or |
|
* marked it stale in the meantime. In that case only the |
|
* _XBF_DELWRI_Q flag got cleared, and we have to drop the |
|
* reference and remove it from the list here. |
|
*/ |
|
if (!(bp->b_flags & _XBF_DELWRI_Q)) { |
|
list_del_init(&bp->b_list); |
|
xfs_buf_relse(bp); |
|
continue; |
|
} |
|
|
|
list_move_tail(&bp->b_list, io_list); |
|
trace_xfs_buf_delwri_split(bp, _RET_IP_); |
|
} |
|
|
|
list_sort(NULL, io_list, xfs_buf_cmp); |
|
|
|
blk_start_plug(&plug); |
|
list_for_each_entry_safe(bp, n, io_list, b_list) { |
|
bp->b_flags &= ~(_XBF_DELWRI_Q | XBF_ASYNC | XBF_WRITE_FAIL); |
|
bp->b_flags |= XBF_WRITE | XBF_ASYNC; |
|
|
|
/* |
|
* we do all Io submission async. This means if we need to wait |
|
* for IO completion we need to take an extra reference so the |
|
* buffer is still valid on the other side. |
|
*/ |
|
if (wait) |
|
xfs_buf_hold(bp); |
|
else |
|
list_del_init(&bp->b_list); |
|
|
|
xfs_buf_submit(bp); |
|
} |
|
blk_finish_plug(&plug); |
|
|
|
return pinned; |
|
} |
|
|
|
/* |
|
* Write out a buffer list asynchronously. |
|
* |
|
* This will take the @buffer_list, write all non-locked and non-pinned buffers |
|
* out and not wait for I/O completion on any of the buffers. This interface |
|
* is only safely useable for callers that can track I/O completion by higher |
|
* level means, e.g. AIL pushing as the @buffer_list is consumed in this |
|
* function. |
|
*/ |
|
int |
|
xfs_buf_delwri_submit_nowait( |
|
struct list_head *buffer_list) |
|
{ |
|
LIST_HEAD (io_list); |
|
return __xfs_buf_delwri_submit(buffer_list, &io_list, false); |
|
} |
|
|
|
/* |
|
* Write out a buffer list synchronously. |
|
* |
|
* This will take the @buffer_list, write all buffers out and wait for I/O |
|
* completion on all of the buffers. @buffer_list is consumed by the function, |
|
* so callers must have some other way of tracking buffers if they require such |
|
* functionality. |
|
*/ |
|
int |
|
xfs_buf_delwri_submit( |
|
struct list_head *buffer_list) |
|
{ |
|
LIST_HEAD (io_list); |
|
int error = 0, error2; |
|
struct xfs_buf *bp; |
|
|
|
__xfs_buf_delwri_submit(buffer_list, &io_list, true); |
|
|
|
/* Wait for IO to complete. */ |
|
while (!list_empty(&io_list)) { |
|
bp = list_first_entry(&io_list, struct xfs_buf, b_list); |
|
|
|
list_del_init(&bp->b_list); |
|
|
|
/* locking the buffer will wait for async IO completion. */ |
|
xfs_buf_lock(bp); |
|
error2 = bp->b_error; |
|
xfs_buf_relse(bp); |
|
if (!error) |
|
error = error2; |
|
} |
|
|
|
return error; |
|
} |
|
|
|
int __init |
|
xfs_buf_init(void) |
|
{ |
|
xfs_buf_zone = kmem_zone_init_flags(sizeof(xfs_buf_t), "xfs_buf", |
|
KM_ZONE_HWALIGN, NULL); |
|
if (!xfs_buf_zone) |
|
goto out; |
|
|
|
xfslogd_workqueue = alloc_workqueue("xfslogd", |
|
WQ_MEM_RECLAIM | WQ_HIGHPRI | WQ_FREEZABLE, 1); |
|
if (!xfslogd_workqueue) |
|
goto out_free_buf_zone; |
|
|
|
return 0; |
|
|
|
out_free_buf_zone: |
|
kmem_zone_destroy(xfs_buf_zone); |
|
out: |
|
return -ENOMEM; |
|
} |
|
|
|
void |
|
xfs_buf_terminate(void) |
|
{ |
|
destroy_workqueue(xfslogd_workqueue); |
|
kmem_zone_destroy(xfs_buf_zone); |
|
}
|
|
|