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Create Table: CREATE TABLE `category` (
  `id` bigint(20) unsigned NOT NULL AUTO_INCREMENT,
  `name` varchar(255) NOT NULL,
  `parent` bigint(20) unsigned DEFAULT NULL,
  PRIMARY KEY (`id`),
  UNIQUE KEY `name` (`name`),
  KEY `parent_idx` (`parent`),
  CONSTRAINT `category_parent_category_id` FOREIGN KEY (`parent`) REFERENCES `category` (`id`)
) ENGINE=InnoDB AUTO_INCREMENT=11 DEFAULT CHARSET=utf8

I'm not sure whether a foreign key will imply an index?

EDIT

I don't see the supposed index :

mysql> show index from category;
+----------+------------+------------+--------------+-------------+-----------+-------------+----------+--------+------+------------+---------+
| Table    | Non_unique | Key_name   | Seq_in_index | Column_name | Collation | Cardinality | Sub_part | Packed | Null | Index_type | Comment |
+----------+------------+------------+--------------+-------------+-----------+-------------+----------+--------+------+------------+---------+
| category |          0 | PRIMARY    |            1 | id          | A         |           0 |     NULL | NULL   |      | BTREE      |         |
| category |          0 | name       |            1 | name        | A         |           0 |     NULL | NULL   |      | BTREE      |         |
| category |          1 | parent_idx |            1 | parent      | A         |           0 |     NULL | NULL   | YES  | BTREE      |         |
+----------+------------+------------+--------------+-------------+-----------+-------------+----------+--------+------+------------+---------+
3 rows in set (0.02 sec)
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@user198729: You are not seeing another index because InnoDB will not create a new index for the foreign key if you had already explicitly created one. If you don't create parent_idx, InnoDB will create one for you (with a different name). – Daniel Vassallo Feb 23 '10 at 13:46
up vote 0 down vote accepted

I'm not sure whether a foreign key will imply an index?

"InnoDB requires indexes on foreign keys and referenced keys so that foreign key checks can be fast and not require a table scan... Such an index is created on the referencing table automatically if it does not exist." (Source)

Therefore KEY parent_idx (parent) is redundant.

On the other hand note that if you were to add a foreign key constraint using the ALTER TABLE syntax, you would have to explicitly create the required indexes first.

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But there is no such index by show index from table – user198729 Feb 23 '10 at 13:39
    
You are not seeing another index because InnoDB will not create a new index for the foreign key if you had expliclty created one already. If you don't create parent_idx, InnoDB will create it for you (with a different name). – Daniel Vassallo Feb 23 '10 at 13:47

In SQL Server: Foreign keys do not automatically create indexes. You will need to explicitly create an index where you want one. This is done because you don't necessarily want to index every FK, as it will add overhead to inserts.

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2  
No, InnoDB does create an index automatically: "InnoDB requires indexes on foreign keys and referenced keys so that foreign key checks can be fast and not require a table scan... Such an index is created on the referencing table automatically if it does not exist." Source: dev.mysql.com/doc/refman/5.1/en/…. It is SQL Server that does not create indexes automatically on foreign keys. – Daniel Vassallo Feb 23 '10 at 13:25
    
I guess I just assumed that they would be the same in that regard. FWIW, I think SQL Server's behavior is better as it gives more control. – Keith Rousseau Feb 23 '10 at 14:47

Yes, you are correct.

KEYparent_idx(parent) is redundant index.

MySQL will automactially created an index for FOREIGN KEY contraint.

From the MySQL manual:

InnoDB creates an index for the foreign key, it uses index_name for the index name.

http://dev.mysql.com/doc/refman/5.1/en/innodb-foreign-key-constraints.html

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But I don't see the index with show index from table – user198729 Feb 23 '10 at 13:35

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