Btrfs: don't iterate mod seq list when putting a tree mod seq

Each new element added to the mod seq list is always appended to the list,
and each one gets a sequence number coming from a counter which gets
incremented everytime a new element is added to the list (or a new node
is added to the tree mod log rbtree). Therefore the element with the
lowest sequence number is always the first element in the list.

So just remove the list iteration at btrfs_put_tree_mod_seq() that
computes the minimum sequence number in the list and replace it with
a check for the first element's sequence number.

Reviewed-by: Josef Bacik <josef@toxicpanda.com>
Signed-off-by: Filipe Manana <fdmanana@suse.com>
Reviewed-by: David Sterba <dsterba@suse.com>
Signed-off-by: David Sterba <dsterba@suse.com>
This commit is contained in:
Filipe Manana 2020-01-22 12:23:54 +00:00 committed by David Sterba
parent 30b3688e1f
commit 42836cf4ba

View File

@ -341,7 +341,6 @@ void btrfs_put_tree_mod_seq(struct btrfs_fs_info *fs_info,
struct rb_root *tm_root;
struct rb_node *node;
struct rb_node *next;
struct seq_list *cur_elem;
struct tree_mod_elem *tm;
u64 min_seq = (u64)-1;
u64 seq_putting = elem->seq;
@ -353,18 +352,20 @@ void btrfs_put_tree_mod_seq(struct btrfs_fs_info *fs_info,
list_del(&elem->list);
elem->seq = 0;
list_for_each_entry(cur_elem, &fs_info->tree_mod_seq_list, list) {
if (cur_elem->seq < min_seq) {
if (seq_putting > cur_elem->seq) {
/*
* blocker with lower sequence number exists, we
* cannot remove anything from the log
*/
write_unlock(&fs_info->tree_mod_log_lock);
return;
}
min_seq = cur_elem->seq;
if (!list_empty(&fs_info->tree_mod_seq_list)) {
struct seq_list *first;
first = list_first_entry(&fs_info->tree_mod_seq_list,
struct seq_list, list);
if (seq_putting > first->seq) {
/*
* Blocker with lower sequence number exists, we
* cannot remove anything from the log.
*/
write_unlock(&fs_info->tree_mod_log_lock);
return;
}
min_seq = first->seq;
}
/*