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     CREATE TABLE `job` (
    `jobId` int(11) NOT NULL auto_increment,
    `jobcode` varchar(25) default NULL,
    `jobname` varchar(255) default NULL,
    `location` varchar(255) default NULL,
    `budget` int(10) unsigned default NULL,
    `year_type` varchar(100) default NULL,
    `worklineId` int(11) default NULL,
     PRIMARY KEY  (`jobId`),
     KEY `NewIndex` (`worklineId`),
     FOREIGN KEY (`worklineId`) REFERENCES `workline` (`worklineId`)
     ) TYPE=InnoDB;

     CREATE TABLE `subjob` (
    `subjobId` int(11) NOT NULL auto_increment,
    `subjobcode` varchar(25) default NULL,
    `subjobname` varchar(255) default NULL,
    `subjobbudget` int(11) unsigned default NULL,
    `jobgoal_date` date default '0000-00-00',
    `jobId` int(11) default NULL,
     PRIMARY KEY  (`subjobId`),
     KEY `NewIndex` (`jobId`),
     FOREIGN KEY (`jobId`) REFERENCES `job` (`jobId`)
     ) TYPE=InnoDB;

     CREATE TABLE `contract` (
    `contractId` int(11) NOT NULL auto_increment,
    `contractcode` varchar(25) default NULL,
    `price` int(11) unsigned default NULL,
    `contractprice` int(11) unsigned default NULL,
    `company` varchar(50) default NULL,
    `signdate` date default '0000-00-00',
    `begindate` date default '0000-00-00',
    `enddateplan` date default '0000-00-00',
    `note` text,
     PRIMARY KEY  (`contractId`)
     ) TYPE=InnoDB;


     CREATE TABLE `subjob_contract` (
    `subjobcontractId` int(11) NOT NULL auto_increment,
    `status` varchar(11) default NULL,
    `contractId` int(11) default NULL,
    `subjobId` int(11) default NULL,
     PRIMARY KEY  (`subjobcontractId`),
     KEY `NewIndex` (`contractId`),
     KEY `NewIndex2` (`subjobId`),
     FOREIGN KEY (`contractId`) REFERENCES `contract` (`contractId`)
     ) TYPE=InnoDB

I m using mysql front 3.2 to manage database,I can add first fk but when i add second fk i got an error following this : sql execution error #1005. response from the database: can't create table'.jobstatus#sql-32c_12f2f.frm' (errno:150). i already define the new index for fk subjobId reference to subjob table what could be the possibility of this error? thank you

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where is jobstatus table used here? describe the jobstatus table also here. –  GK27 Nov 21 '12 at 4:21
    
Where is your job table. I was trying to execute your table schema step by step and found problem in FOREIGN KEY (jobId) REFERENCES job` (jobId)`. share your job table –  Sami Nov 21 '12 at 6:41
    
@Sami : any problem with my job table? –  shushu Nov 21 '12 at 6:51
    
Again you job table had a foreign key. i ignored that and executed remaining on sqlfiddle, it executed. So whats your problem now? Get error while adding rows or making tables? –  Sami Nov 21 '12 at 6:57
    
@Sami my problem is at table subjob_contract. I cant add 2 fk. i can add 1 fk only. when i add contractId as my Fk first, it can but i cannot add subjobId as my second Fk. they i try again i add subjobId as my first Fk, it can but i cannot add contractId as my second Fk –  shushu Nov 21 '12 at 7:03

2 Answers 2

up vote 0 down vote accepted

Check the datatype and size of the subjobId column on primary table and referenced table. both must be same than it will allow you to create foreign key.

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yaa they are same type and size, but its wondering, i just cannot add for the second FK. when i try to add subjobId first, it can then i cannot add contractId for the second FK. so i can conclude that it has the error when i add for the second FK –  shushu Nov 21 '12 at 6:11
    
No we can add more FKs as we need. Put your create table script of all tables related to this topic in your question. Check that the referenced table is empty or not. –  Saharsh Shah Nov 21 '12 at 6:19
    
i put the related table. please check for me, thank you in advance –  shushu Nov 21 '12 at 6:37
    
I had tried in my server I am able to add FK through this statement: ALTER TABLE subjob_contract ADD CONSTRAINT subjob_contract_jq FOREIGN KEY (subjobId) REFERENCES subjob(subjobId); Check subjob_contract table is empty or not, if not than subjobid column must contain the values which subjob table has –  Saharsh Shah Nov 21 '12 at 6:38
    
Which version of MySQL you are using? I had done this on 5.1.62-community-log version –  Saharsh Shah Nov 21 '12 at 6:41

Answer is: You can not refer that column/table which is not created yet. Try to execute tables having foreign keys after the referenced tables.

Obviously you should have consistency in datatypes of foreign key and referenced column as well

Correct Execution Demo. Also You should use Engine=InnoDB instead of Type=InnoDB

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but its no proble using type instead of Engine when i add just only 1 FK in the table but anyway thank you –  shushu Nov 21 '12 at 7:16
    
ok, i will recheck again thank you very much –  shushu Nov 21 '12 at 7:39

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