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https://github.com/openvswitch/ovs
synced 2025-08-31 14:25:26 +00:00
classifier: Rename struct cls_table as cls_subtable.
The naming of the classifier table has been a source of confusion, since each OpenFlow table is implemented as a classifier, which consists of multiple (sub)tables. This name change hopefully makes classifier related discussion a bit less confusing. For consistency, relevant field names as well as the function and variable names have been renamed in similar fashion. Signed-off-by: Jarno Rajahalme <jrajahalme@nicira.com> Signed-off-by: Ben Pfaff <blp@nicira.com>
This commit is contained in:
committed by
Ben Pfaff
parent
00467f7367
commit
0386824614
350
lib/classifier.c
350
lib/classifier.c
@@ -27,26 +27,26 @@
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#include "packets.h"
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#include "ovs-thread.h"
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static struct cls_table *find_table(const struct classifier *,
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const struct minimask *);
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static struct cls_table *insert_table(struct classifier *,
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const struct minimask *);
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static struct cls_subtable *find_subtable(const struct classifier *,
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const struct minimask *);
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static struct cls_subtable *insert_subtable(struct classifier *,
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const struct minimask *);
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static void destroy_table(struct classifier *, struct cls_table *);
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static void destroy_subtable(struct classifier *, struct cls_subtable *);
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static void update_tables_after_insertion(struct classifier *,
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struct cls_table *,
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unsigned int new_priority);
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static void update_tables_after_removal(struct classifier *,
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struct cls_table *,
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unsigned int del_priority);
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static void update_subtables_after_insertion(struct classifier *,
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struct cls_subtable *,
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unsigned int new_priority);
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static void update_subtables_after_removal(struct classifier *,
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struct cls_subtable *,
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unsigned int del_priority);
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static struct cls_rule *find_match(const struct cls_table *,
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static struct cls_rule *find_match(const struct cls_subtable *,
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const struct flow *);
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static struct cls_rule *find_equal(struct cls_table *,
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static struct cls_rule *find_equal(struct cls_subtable *,
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const struct miniflow *, uint32_t hash);
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static struct cls_rule *insert_rule(struct classifier *,
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struct cls_table *, struct cls_rule *);
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struct cls_subtable *, struct cls_rule *);
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/* Iterates RULE over HEAD and all of the cls_rules on HEAD->list. */
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#define FOR_EACH_RULE_IN_LIST(RULE, HEAD) \
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@@ -152,8 +152,8 @@ void
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classifier_init(struct classifier *cls)
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{
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cls->n_rules = 0;
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hmap_init(&cls->tables);
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list_init(&cls->tables_priority);
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hmap_init(&cls->subtables);
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list_init(&cls->subtables_priority);
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hmap_init(&cls->partitions);
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ovs_rwlock_init(&cls->rwlock);
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}
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@@ -164,13 +164,14 @@ void
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classifier_destroy(struct classifier *cls)
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{
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if (cls) {
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struct cls_table *partition, *next_partition;
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struct cls_table *table, *next_table;
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struct cls_subtable *partition, *next_partition;
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struct cls_subtable *subtable, *next_subtable;
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HMAP_FOR_EACH_SAFE (table, next_table, hmap_node, &cls->tables) {
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destroy_table(cls, table);
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HMAP_FOR_EACH_SAFE (subtable, next_subtable, hmap_node,
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&cls->subtables) {
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destroy_subtable(cls, subtable);
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}
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hmap_destroy(&cls->tables);
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hmap_destroy(&cls->subtables);
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HMAP_FOR_EACH_SAFE (partition, next_partition, hmap_node,
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&cls->partitions) {
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@@ -218,7 +219,7 @@ find_partition(const struct classifier *cls, ovs_be64 metadata, uint32_t hash)
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}
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static struct cls_partition *
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create_partition(struct classifier *cls, struct cls_table *table,
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create_partition(struct classifier *cls, struct cls_subtable *subtable,
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ovs_be64 metadata)
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{
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uint32_t hash = hash_metadata(metadata);
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@@ -230,7 +231,7 @@ create_partition(struct classifier *cls, struct cls_table *table,
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tag_tracker_init(&partition->tracker);
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hmap_insert(&cls->partitions, &partition->hmap_node, hash);
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}
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tag_tracker_add(&partition->tracker, &partition->tags, table->tag);
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tag_tracker_add(&partition->tracker, &partition->tags, subtable->tag);
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return partition;
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}
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@@ -251,23 +252,23 @@ struct cls_rule *
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classifier_replace(struct classifier *cls, struct cls_rule *rule)
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{
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struct cls_rule *old_rule;
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struct cls_table *table;
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struct cls_subtable *subtable;
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table = find_table(cls, &rule->match.mask);
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if (!table) {
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table = insert_table(cls, &rule->match.mask);
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subtable = find_subtable(cls, &rule->match.mask);
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if (!subtable) {
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subtable = insert_subtable(cls, &rule->match.mask);
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}
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old_rule = insert_rule(cls, table, rule);
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old_rule = insert_rule(cls, subtable, rule);
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if (!old_rule) {
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if (minimask_get_metadata_mask(&rule->match.mask) == OVS_BE64_MAX) {
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ovs_be64 metadata = miniflow_get_metadata(&rule->match.flow);
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rule->partition = create_partition(cls, table, metadata);
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rule->partition = create_partition(cls, subtable, metadata);
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} else {
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rule->partition = NULL;
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}
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table->n_table_rules++;
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subtable->n_rules++;
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cls->n_rules++;
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} else {
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rule->partition = old_rule->partition;
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@@ -296,36 +297,36 @@ classifier_remove(struct classifier *cls, struct cls_rule *rule)
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{
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struct cls_partition *partition;
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struct cls_rule *head;
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struct cls_table *table;
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struct cls_subtable *subtable;
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table = find_table(cls, &rule->match.mask);
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head = find_equal(table, &rule->match.flow, rule->hmap_node.hash);
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subtable = find_subtable(cls, &rule->match.mask);
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head = find_equal(subtable, &rule->match.flow, rule->hmap_node.hash);
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if (head != rule) {
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list_remove(&rule->list);
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} else if (list_is_empty(&rule->list)) {
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hmap_remove(&table->rules, &rule->hmap_node);
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hmap_remove(&subtable->rules, &rule->hmap_node);
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} else {
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struct cls_rule *next = CONTAINER_OF(rule->list.next,
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struct cls_rule, list);
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list_remove(&rule->list);
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hmap_replace(&table->rules, &rule->hmap_node, &next->hmap_node);
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hmap_replace(&subtable->rules, &rule->hmap_node, &next->hmap_node);
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}
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partition = rule->partition;
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if (partition) {
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tag_tracker_subtract(&partition->tracker, &partition->tags,
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table->tag);
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subtable->tag);
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if (!partition->tags) {
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hmap_remove(&cls->partitions, &partition->hmap_node);
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free(partition);
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}
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}
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if (--table->n_table_rules == 0) {
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destroy_table(cls, table);
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if (--subtable->n_rules == 0) {
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destroy_subtable(cls, subtable);
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} else {
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update_tables_after_removal(cls, table, rule->priority);
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update_subtables_after_removal(cls, subtable, rule->priority);
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}
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cls->n_rules--;
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}
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@@ -343,27 +344,27 @@ classifier_lookup(const struct classifier *cls, const struct flow *flow,
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struct flow_wildcards *wc)
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{
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const struct cls_partition *partition;
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struct cls_table *table;
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struct cls_subtable *subtable;
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struct cls_rule *best;
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tag_type tags;
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/* Determine 'tags' such that, if 'table->tag' doesn't intersect them, then
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* 'flow' cannot possibly match in 'table':
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/* Determine 'tags' such that, if 'subtable->tag' doesn't intersect them,
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* then 'flow' cannot possibly match in 'subtable':
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*
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* - If flow->metadata maps to a given 'partition', then we can use
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* 'tags' for 'partition->tags'.
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*
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* - If flow->metadata has no partition, then no rule in 'cls' has an
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* exact-match for flow->metadata. That means that we don't need to
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* search any table that includes flow->metadata in its mask.
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* search any subtable that includes flow->metadata in its mask.
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*
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* In either case, we always need to search any cls_tables that do not
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* In either case, we always need to search any cls_subtables that do not
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* include flow->metadata in its mask. One way to do that would be to
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* check the "cls_table"s explicitly for that, but that would require an
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* extra branch per table. Instead, we mark such a cls_table's 'tags' as
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* TAG_ALL and make sure that 'tags' is never empty. This means that
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* 'tags' always intersects such a cls_table's 'tags', so we don't need a
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* special case.
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* check the "cls_subtable"s explicitly for that, but that would require an
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* extra branch per subtable. Instead, we mark such a cls_subtable's
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* 'tags' as TAG_ALL and make sure that 'tags' is never empty. This means
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* that 'tags' always intersects such a cls_subtable's 'tags', so we don't
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* need a special case.
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*/
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partition = (hmap_is_empty(&cls->partitions)
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? NULL
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@@ -372,32 +373,33 @@ classifier_lookup(const struct classifier *cls, const struct flow *flow,
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tags = partition ? partition->tags : TAG_ARBITRARY;
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best = NULL;
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LIST_FOR_EACH (table, list_node, &cls->tables_priority) {
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LIST_FOR_EACH (subtable, list_node, &cls->subtables_priority) {
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struct cls_rule *rule;
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if (!tag_intersects(tags, table->tag)) {
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if (!tag_intersects(tags, subtable->tag)) {
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continue;
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}
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rule = find_match(table, flow);
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rule = find_match(subtable, flow);
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if (wc) {
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flow_wildcards_fold_minimask(wc, &table->mask);
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flow_wildcards_fold_minimask(wc, &subtable->mask);
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}
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if (rule) {
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best = rule;
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LIST_FOR_EACH_CONTINUE (table, list_node, &cls->tables_priority) {
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if (table->max_priority <= best->priority) {
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/* Tables in descending priority order,
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LIST_FOR_EACH_CONTINUE (subtable, list_node,
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&cls->subtables_priority) {
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if (subtable->max_priority <= best->priority) {
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/* Subtables are in descending priority order,
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* can not find anything better. */
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return best;
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}
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if (!tag_intersects(tags, table->tag)) {
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if (!tag_intersects(tags, subtable->tag)) {
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continue;
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}
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rule = find_match(table, flow);
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rule = find_match(subtable, flow);
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if (wc) {
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flow_wildcards_fold_minimask(wc, &table->mask);
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flow_wildcards_fold_minimask(wc, &subtable->mask);
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}
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if (rule && rule->priority > best->priority) {
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best = rule;
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@@ -417,19 +419,19 @@ classifier_find_rule_exactly(const struct classifier *cls,
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const struct cls_rule *target)
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{
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struct cls_rule *head, *rule;
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struct cls_table *table;
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struct cls_subtable *subtable;
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table = find_table(cls, &target->match.mask);
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if (!table) {
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subtable = find_subtable(cls, &target->match.mask);
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if (!subtable) {
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return NULL;
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}
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/* Skip if there is no hope. */
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if (target->priority > table->max_priority) {
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if (target->priority > subtable->max_priority) {
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return NULL;
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}
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head = find_equal(table, &target->match.flow,
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head = find_equal(subtable, &target->match.flow,
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miniflow_hash_in_minimask(&target->match.flow,
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&target->match.mask, 0));
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FOR_EACH_RULE_IN_LIST (rule, head) {
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@@ -465,20 +467,20 @@ bool
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classifier_rule_overlaps(const struct classifier *cls,
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const struct cls_rule *target)
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{
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struct cls_table *table;
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struct cls_subtable *subtable;
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/* Iterate tables in the descending max priority order. */
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LIST_FOR_EACH (table, list_node, &cls->tables_priority) {
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/* Iterate subtables in the descending max priority order. */
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LIST_FOR_EACH (subtable, list_node, &cls->subtables_priority) {
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uint32_t storage[FLOW_U32S];
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struct minimask mask;
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struct cls_rule *head;
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if (target->priority > table->max_priority) {
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break; /* Can skip this and the rest of the tables. */
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if (target->priority > subtable->max_priority) {
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break; /* Can skip this and the rest of the subtables. */
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}
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minimask_combine(&mask, &target->match.mask, &table->mask, storage);
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HMAP_FOR_EACH (head, hmap_node, &table->rules) {
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minimask_combine(&mask, &target->match.mask, &subtable->mask, storage);
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HMAP_FOR_EACH (head, hmap_node, &subtable->rules) {
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struct cls_rule *rule;
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FOR_EACH_RULE_IN_LIST (rule, head) {
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@@ -551,12 +553,13 @@ rule_matches(const struct cls_rule *rule, const struct cls_rule *target)
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}
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static struct cls_rule *
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search_table(const struct cls_table *table, const struct cls_rule *target)
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search_subtable(const struct cls_subtable *subtable,
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const struct cls_rule *target)
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{
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if (!target || !minimask_has_extra(&table->mask, &target->match.mask)) {
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if (!target || !minimask_has_extra(&subtable->mask, &target->match.mask)) {
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struct cls_rule *rule;
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HMAP_FOR_EACH (rule, hmap_node, &table->rules) {
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HMAP_FOR_EACH (rule, hmap_node, &subtable->rules) {
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if (rule_matches(rule, target)) {
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return rule;
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}
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@@ -586,12 +589,12 @@ cls_cursor_init(struct cls_cursor *cursor, const struct classifier *cls,
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struct cls_rule *
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cls_cursor_first(struct cls_cursor *cursor)
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{
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struct cls_table *table;
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struct cls_subtable *subtable;
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HMAP_FOR_EACH (table, hmap_node, &cursor->cls->tables) {
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struct cls_rule *rule = search_table(table, cursor->target);
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HMAP_FOR_EACH (subtable, hmap_node, &cursor->cls->subtables) {
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struct cls_rule *rule = search_subtable(subtable, cursor->target);
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if (rule) {
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cursor->table = table;
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cursor->subtable = subtable;
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return rule;
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}
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}
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@@ -605,7 +608,7 @@ struct cls_rule *
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cls_cursor_next(struct cls_cursor *cursor, const struct cls_rule *rule_)
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{
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struct cls_rule *rule = CONST_CAST(struct cls_rule *, rule_);
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const struct cls_table *table;
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const struct cls_subtable *subtable;
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struct cls_rule *next;
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next = next_rule_in_list__(rule);
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@@ -614,20 +617,20 @@ cls_cursor_next(struct cls_cursor *cursor, const struct cls_rule *rule_)
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}
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/* 'next' is the head of the list, that is, the rule that is included in
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* the table's hmap. (This is important when the classifier contains rules
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* that differ only in priority.) */
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* the subtable's hmap. (This is important when the classifier contains
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* rules that differ only in priority.) */
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rule = next;
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HMAP_FOR_EACH_CONTINUE (rule, hmap_node, &cursor->table->rules) {
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HMAP_FOR_EACH_CONTINUE (rule, hmap_node, &cursor->subtable->rules) {
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if (rule_matches(rule, cursor->target)) {
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return rule;
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}
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}
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table = cursor->table;
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HMAP_FOR_EACH_CONTINUE (table, hmap_node, &cursor->cls->tables) {
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rule = search_table(table, cursor->target);
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subtable = cursor->subtable;
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HMAP_FOR_EACH_CONTINUE (subtable, hmap_node, &cursor->cls->subtables) {
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rule = search_subtable(subtable, cursor->target);
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if (rule) {
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cursor->table = table;
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cursor->subtable = subtable;
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return rule;
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}
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}
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@@ -635,145 +638,149 @@ cls_cursor_next(struct cls_cursor *cursor, const struct cls_rule *rule_)
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return NULL;
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}
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static struct cls_table *
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find_table(const struct classifier *cls, const struct minimask *mask)
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static struct cls_subtable *
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find_subtable(const struct classifier *cls, const struct minimask *mask)
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{
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struct cls_table *table;
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struct cls_subtable *subtable;
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HMAP_FOR_EACH_IN_BUCKET (table, hmap_node, minimask_hash(mask, 0),
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&cls->tables) {
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if (minimask_equal(mask, &table->mask)) {
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return table;
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HMAP_FOR_EACH_IN_BUCKET (subtable, hmap_node, minimask_hash(mask, 0),
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&cls->subtables) {
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if (minimask_equal(mask, &subtable->mask)) {
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return subtable;
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}
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}
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return NULL;
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}
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static struct cls_table *
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insert_table(struct classifier *cls, const struct minimask *mask)
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static struct cls_subtable *
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insert_subtable(struct classifier *cls, const struct minimask *mask)
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{
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uint32_t hash = minimask_hash(mask, 0);
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struct cls_table *table;
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struct cls_subtable *subtable;
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table = xzalloc(sizeof *table);
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hmap_init(&table->rules);
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minimask_clone(&table->mask, mask);
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hmap_insert(&cls->tables, &table->hmap_node, minimask_hash(mask, 0));
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list_push_back(&cls->tables_priority, &table->list_node);
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||||
table->tag = (minimask_get_metadata_mask(mask) == OVS_BE64_MAX
|
||||
? tag_create_deterministic(hash)
|
||||
: TAG_ALL);
|
||||
subtable = xzalloc(sizeof *subtable);
|
||||
hmap_init(&subtable->rules);
|
||||
minimask_clone(&subtable->mask, mask);
|
||||
hmap_insert(&cls->subtables, &subtable->hmap_node, minimask_hash(mask, 0));
|
||||
list_push_back(&cls->subtables_priority, &subtable->list_node);
|
||||
subtable->tag = (minimask_get_metadata_mask(mask) == OVS_BE64_MAX
|
||||
? tag_create_deterministic(hash)
|
||||
: TAG_ALL);
|
||||
|
||||
return table;
|
||||
return subtable;
|
||||
}
|
||||
|
||||
static void
|
||||
destroy_table(struct classifier *cls, struct cls_table *table)
|
||||
destroy_subtable(struct classifier *cls, struct cls_subtable *subtable)
|
||||
{
|
||||
minimask_destroy(&table->mask);
|
||||
hmap_remove(&cls->tables, &table->hmap_node);
|
||||
hmap_destroy(&table->rules);
|
||||
list_remove(&table->list_node);
|
||||
free(table);
|
||||
minimask_destroy(&subtable->mask);
|
||||
hmap_remove(&cls->subtables, &subtable->hmap_node);
|
||||
hmap_destroy(&subtable->rules);
|
||||
list_remove(&subtable->list_node);
|
||||
free(subtable);
|
||||
}
|
||||
|
||||
/* This function performs the following updates for 'table' in 'cls' following
|
||||
* the addition of a new rule with priority 'new_priority' to 'table':
|
||||
/* This function performs the following updates for 'subtable' in 'cls'
|
||||
* following the addition of a new rule with priority 'new_priority' to
|
||||
* 'subtable':
|
||||
*
|
||||
* - Update 'table->max_priority' and 'table->max_count' if necessary.
|
||||
* - Update 'subtable->max_priority' and 'subtable->max_count' if necessary.
|
||||
*
|
||||
* - Update 'table''s position in 'cls->tables_priority' if necessary.
|
||||
* - Update 'subtable''s position in 'cls->subtables_priority' if necessary.
|
||||
*
|
||||
* This function should only be called after adding a new rule, not after
|
||||
* replacing a rule by an identical one or modifying a rule in-place. */
|
||||
static void
|
||||
update_tables_after_insertion(struct classifier *cls, struct cls_table *table,
|
||||
unsigned int new_priority)
|
||||
update_subtables_after_insertion(struct classifier *cls,
|
||||
struct cls_subtable *subtable,
|
||||
unsigned int new_priority)
|
||||
{
|
||||
if (new_priority == table->max_priority) {
|
||||
++table->max_count;
|
||||
} else if (new_priority > table->max_priority) {
|
||||
struct cls_table *iter;
|
||||
if (new_priority == subtable->max_priority) {
|
||||
++subtable->max_count;
|
||||
} else if (new_priority > subtable->max_priority) {
|
||||
struct cls_subtable *iter;
|
||||
|
||||
table->max_priority = new_priority;
|
||||
table->max_count = 1;
|
||||
subtable->max_priority = new_priority;
|
||||
subtable->max_count = 1;
|
||||
|
||||
/* Possibly move 'table' earlier in the priority list. If we break out
|
||||
* of the loop, then 'table' should be moved just after that 'iter'.
|
||||
* If the loop terminates normally, then 'iter' will be the list head
|
||||
* and we'll move table just after that (e.g. to the front of the
|
||||
* list). */
|
||||
iter = table;
|
||||
/* Possibly move 'subtable' earlier in the priority list. If we break
|
||||
* out of the loop, then 'subtable' should be moved just after that
|
||||
* 'iter'. If the loop terminates normally, then 'iter' will be the
|
||||
* list head and we'll move subtable just after that (e.g. to the front
|
||||
* of the list). */
|
||||
iter = subtable;
|
||||
LIST_FOR_EACH_REVERSE_CONTINUE (iter, list_node,
|
||||
&cls->tables_priority) {
|
||||
if (iter->max_priority >= table->max_priority) {
|
||||
&cls->subtables_priority) {
|
||||
if (iter->max_priority >= subtable->max_priority) {
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
/* Move 'table' just after 'iter' (unless it's already there). */
|
||||
if (iter->list_node.next != &table->list_node) {
|
||||
/* Move 'subtable' just after 'iter' (unless it's already there). */
|
||||
if (iter->list_node.next != &subtable->list_node) {
|
||||
list_splice(iter->list_node.next,
|
||||
&table->list_node, table->list_node.next);
|
||||
&subtable->list_node, subtable->list_node.next);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/* This function performs the following updates for 'table' in 'cls' following
|
||||
* the deletion of a rule with priority 'del_priority' from 'table':
|
||||
/* This function performs the following updates for 'subtable' in 'cls'
|
||||
* following the deletion of a rule with priority 'del_priority' from
|
||||
* 'subtable':
|
||||
*
|
||||
* - Update 'table->max_priority' and 'table->max_count' if necessary.
|
||||
* - Update 'subtable->max_priority' and 'subtable->max_count' if necessary.
|
||||
*
|
||||
* - Update 'table''s position in 'cls->tables_priority' if necessary.
|
||||
* - Update 'subtable''s position in 'cls->subtables_priority' if necessary.
|
||||
*
|
||||
* This function should only be called after removing a rule, not after
|
||||
* replacing a rule by an identical one or modifying a rule in-place. */
|
||||
static void
|
||||
update_tables_after_removal(struct classifier *cls, struct cls_table *table,
|
||||
unsigned int del_priority)
|
||||
update_subtables_after_removal(struct classifier *cls,
|
||||
struct cls_subtable *subtable,
|
||||
unsigned int del_priority)
|
||||
{
|
||||
struct cls_table *iter;
|
||||
struct cls_subtable *iter;
|
||||
|
||||
if (del_priority == table->max_priority && --table->max_count == 0) {
|
||||
if (del_priority == subtable->max_priority && --subtable->max_count == 0) {
|
||||
struct cls_rule *head;
|
||||
|
||||
table->max_priority = 0;
|
||||
HMAP_FOR_EACH (head, hmap_node, &table->rules) {
|
||||
if (head->priority > table->max_priority) {
|
||||
table->max_priority = head->priority;
|
||||
table->max_count = 1;
|
||||
} else if (head->priority == table->max_priority) {
|
||||
++table->max_count;
|
||||
subtable->max_priority = 0;
|
||||
HMAP_FOR_EACH (head, hmap_node, &subtable->rules) {
|
||||
if (head->priority > subtable->max_priority) {
|
||||
subtable->max_priority = head->priority;
|
||||
subtable->max_count = 1;
|
||||
} else if (head->priority == subtable->max_priority) {
|
||||
++subtable->max_count;
|
||||
}
|
||||
}
|
||||
|
||||
/* Possibly move 'table' later in the priority list. If we break out
|
||||
* of the loop, then 'table' should be moved just before that 'iter'.
|
||||
* If the loop terminates normally, then 'iter' will be the list head
|
||||
* and we'll move table just before that (e.g. to the back of the
|
||||
* list). */
|
||||
iter = table;
|
||||
LIST_FOR_EACH_CONTINUE (iter, list_node, &cls->tables_priority) {
|
||||
if (iter->max_priority <= table->max_priority) {
|
||||
/* Possibly move 'subtable' later in the priority list. If we break
|
||||
* out of the loop, then 'subtable' should be moved just before that
|
||||
* 'iter'. If the loop terminates normally, then 'iter' will be the
|
||||
* list head and we'll move subtable just before that (e.g. to the back
|
||||
* of the list). */
|
||||
iter = subtable;
|
||||
LIST_FOR_EACH_CONTINUE (iter, list_node, &cls->subtables_priority) {
|
||||
if (iter->max_priority <= subtable->max_priority) {
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
/* Move 'table' just before 'iter' (unless it's already there). */
|
||||
if (iter->list_node.prev != &table->list_node) {
|
||||
/* Move 'subtable' just before 'iter' (unless it's already there). */
|
||||
if (iter->list_node.prev != &subtable->list_node) {
|
||||
list_splice(&iter->list_node,
|
||||
&table->list_node, table->list_node.next);
|
||||
&subtable->list_node, subtable->list_node.next);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
static struct cls_rule *
|
||||
find_match(const struct cls_table *table, const struct flow *flow)
|
||||
find_match(const struct cls_subtable *subtable, const struct flow *flow)
|
||||
{
|
||||
uint32_t hash = flow_hash_in_minimask(flow, &table->mask, 0);
|
||||
uint32_t hash = flow_hash_in_minimask(flow, &subtable->mask, 0);
|
||||
struct cls_rule *rule;
|
||||
|
||||
HMAP_FOR_EACH_WITH_HASH (rule, hmap_node, hash, &table->rules) {
|
||||
HMAP_FOR_EACH_WITH_HASH (rule, hmap_node, hash, &subtable->rules) {
|
||||
if (minimatch_matches_flow(&rule->match, flow)) {
|
||||
return rule;
|
||||
}
|
||||
@@ -783,11 +790,12 @@ find_match(const struct cls_table *table, const struct flow *flow)
|
||||
}
|
||||
|
||||
static struct cls_rule *
|
||||
find_equal(struct cls_table *table, const struct miniflow *flow, uint32_t hash)
|
||||
find_equal(struct cls_subtable *subtable, const struct miniflow *flow,
|
||||
uint32_t hash)
|
||||
{
|
||||
struct cls_rule *head;
|
||||
|
||||
HMAP_FOR_EACH_WITH_HASH (head, hmap_node, hash, &table->rules) {
|
||||
HMAP_FOR_EACH_WITH_HASH (head, hmap_node, hash, &subtable->rules) {
|
||||
if (miniflow_equal(&head->match.flow, flow)) {
|
||||
return head;
|
||||
}
|
||||
@@ -796,8 +804,8 @@ find_equal(struct cls_table *table, const struct miniflow *flow, uint32_t hash)
|
||||
}
|
||||
|
||||
static struct cls_rule *
|
||||
insert_rule(struct classifier *cls,
|
||||
struct cls_table *table, struct cls_rule *new)
|
||||
insert_rule(struct classifier *cls, struct cls_subtable *subtable,
|
||||
struct cls_rule *new)
|
||||
{
|
||||
struct cls_rule *head;
|
||||
struct cls_rule *old = NULL;
|
||||
@@ -805,9 +813,9 @@ insert_rule(struct classifier *cls,
|
||||
new->hmap_node.hash = miniflow_hash_in_minimask(&new->match.flow,
|
||||
&new->match.mask, 0);
|
||||
|
||||
head = find_equal(table, &new->match.flow, new->hmap_node.hash);
|
||||
head = find_equal(subtable, &new->match.flow, new->hmap_node.hash);
|
||||
if (!head) {
|
||||
hmap_insert(&table->rules, &new->hmap_node, new->hmap_node.hash);
|
||||
hmap_insert(&subtable->rules, &new->hmap_node, new->hmap_node.hash);
|
||||
list_init(&new->list);
|
||||
goto out;
|
||||
} else {
|
||||
@@ -818,7 +826,7 @@ insert_rule(struct classifier *cls,
|
||||
if (new->priority >= rule->priority) {
|
||||
if (rule == head) {
|
||||
/* 'new' is the new highest-priority flow in the list. */
|
||||
hmap_replace(&table->rules,
|
||||
hmap_replace(&subtable->rules,
|
||||
&rule->hmap_node, &new->hmap_node);
|
||||
}
|
||||
|
||||
@@ -839,7 +847,7 @@ insert_rule(struct classifier *cls,
|
||||
|
||||
out:
|
||||
if (!old) {
|
||||
update_tables_after_insertion(cls, table, new->priority);
|
||||
update_subtables_after_insertion(cls, subtable, new->priority);
|
||||
}
|
||||
return old;
|
||||
}
|
||||
|
Reference in New Issue
Block a user