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I created the master table with the composite primary key.

parent table structure is as follows:

CREATE TABLE `taskcategory` (
  `SiteID` int(10) unsigned NOT NULL DEFAULT 1,
  `TaskID` int(10) unsigned NOT NULL AUTO_INCREMENT,
  `TaskName` varchar(45) DEFAULT '',
  `TaskDescription` varchar(45) DEFAULT '',
  `IsInbuild` int(11) DEFAULT '1',
  PRIMARY KEY (`TaskID`,`SiteID`)
);

when i am trying to create the table with foreign key with the above parent table reference i am getting 'can't create table error no 150' error . help me to do that.

child table structure as follows:

CREATE TABLE taskdetails (`SiteID` int(10) unsigned NOT NULL DEFAULT '1',
  `TaskID` int(10) unsigned NOT NULL DEFAULT '0',
  `SubtaskID` int(10) unsigned NOT NULL,
  `ScriptName` varchar(255) DEFAULT '',
  `FunctionName` varchar(255) DEFAULT '',
  `ButtonName` varchar(255) DEFAULT '',
  `IsInbuild` int(10) unsigned DEFAULT '1',
  `Description` varchar(255) DEFAULT '',
  PRIMARY KEY (`SubtaskID`,`TaskID`,`SiteID`),
                            INDEX (siteid, taskid),
                            FOREIGN KEY (siteid, taskid)
                              REFERENCES taskcategory(siteid, taskid)
                              ON UPDATE CASCADE ON DELETE CASCADE
                            ) ENGINE=INNODB;

help me to resolve it.

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AFAIK you do not need to have index on columns when they are foreign key. –  Niraj Nawanit Sep 1 '12 at 8:00
    
@niraj nawanit - I tried without the index too but getting the same error.. –  Saranya Jothiprakasam Sep 1 '12 at 8:04

2 Answers 2

up vote 1 down vote accepted

From the manual:

InnoDB requires indexes on foreign keys and referenced keys so that foreign key checks can be fast and not require a table scan. In the referencing table, there must be an index where the foreign key columns are listed as the first columns in the same order. Such an index is created on the referencing table automatically if it does not exist. This index might be silently dropped later, if you create another index that can be used to enforce the foreign key constraint. index_name, if given, is used as described previously.

So when you add an index in the parent table it works (yes, I tested it):

CREATE TABLE `taskcategory` (
  `SiteID` int(10) unsigned NOT NULL DEFAULT 1,
  `TaskID` int(10) unsigned NOT NULL AUTO_INCREMENT,
  `TaskName` varchar(45) DEFAULT '',
  `TaskDescription` varchar(45) DEFAULT '',
  `IsInbuild` int(11) DEFAULT '1',
  PRIMARY KEY (`TaskID`,`SiteID`)
  , INDEX (SiteID, TaskID)
) ENGINE=INNODB;

CREATE TABLE taskdetails (`SiteID` int(10) unsigned NOT NULL DEFAULT '1',
  `TaskID` int(10) unsigned NOT NULL DEFAULT '0',
  `SubtaskID` int(10) unsigned NOT NULL,
  `ScriptName` varchar(255) DEFAULT '',
  `FunctionName` varchar(255) DEFAULT '',
  `ButtonName` varchar(255) DEFAULT '',
  `IsInbuild` int(10) unsigned DEFAULT '1',
  `Description` varchar(255) DEFAULT '',
  PRIMARY KEY (`SubtaskID`,`TaskID`,`SiteID`)
                            ,INDEX (SiteID, TaskID)
                            ,FOREIGN KEY (SiteID, TaskID)
                              REFERENCES taskcategory(SiteID, TaskID)
                              ON UPDATE CASCADE ON DELETE CASCADE
                            ) ENGINE=INNODB;

You have a primary key on those columns already (which means there's an implicit index), but the order of the columns is important!

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Also you may have to adhere to case-sensitiveness, in case you are using linux –  fancyPants Sep 1 '12 at 9:54

Your table definition of taskcategory lacks the ENGINE=InnoDB clause, and probably this is not your system's default. Foreign key relations can only be set up between InnoDB tables.

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This doesn't raise an error, any relationships are simply ignored in MyISAM. –  fancyPants Sep 1 '12 at 9:17

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