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I'm doing a small DataBase with MySQL Workbench. I have a main table, called "Immobili", which has a Primary Key composed by four columns: (Comune, Via, Civico, Immobile). Now, I also have three other tables, wich have the same primary key (Comune, Via, Civico, Immobile), but these fields are also referenced to the table Immobili. First question: can I make a Primary Key that is also a Foreign Key? Second Question: When I try to export the changes it says: Executing SQL script in server

# ERROR: Error 1005: Can't create table 'dbimmobili.condoni' (errno: 150)

CREATE  TABLE IF NOT EXISTS `dbimmobili`.`Condoni` (

  `ComuneImmobile` VARCHAR(50) NOT NULL ,
  `ViaImmobile` VARCHAR(50) NOT NULL ,
  `CivicoImmobile` VARCHAR(5) NOT NULL ,
  `InternoImmobile` VARCHAR(3) NOT NULL ,
  `ProtocolloNumero` VARCHAR(15) NULL ,
  `DataRichiestaSanatoria` DATE NULL ,
  `DataSanatoria` DATE NULL ,
  `SullePartiEsclusive` TINYINT(1) NULL ,
  `SullePartiComuni` TINYINT(1) NULL ,
  `OblazioneInEuro` DOUBLE NULL ,
  `TecnicoOblazione` VARCHAR(45) NULL ,
  `TelefonoTecnico` VARCHAR(15) NULL ,
  INDEX `ComuneImmobile` (`ComuneImmobile` ASC) ,
  INDEX `ViaImmobile` (`ViaImmobile` ASC) ,
  INDEX `CivicoImmobile` (`CivicoImmobile` ASC) ,
  INDEX `InternoImmobile` (`InternoImmobile` ASC) ,

  PRIMARY KEY (`ComuneImmobile`, `ViaImmobile`, `CivicoImmobile`, `InternoImmobile`) ,

  CONSTRAINT `ComuneImmobile`
    FOREIGN KEY (`ComuneImmobile` )
    REFERENCES `dbimmobili`.`Immobile` (`ComuneImmobile` )
    ON DELETE CASCADE
    ON UPDATE CASCADE,

  CONSTRAINT `ViaImmobile`
    FOREIGN KEY (`ViaImmobile` )
    REFERENCES `dbimmobili`.`Immobile` (`ViaImmobile` )
    ON DELETE CASCADE
    ON UPDATE CASCADE,

  CONSTRAINT `CivicoImmobile`
    FOREIGN KEY (`CivicoImmobile` )
    REFERENCES `dbimmobili`.`Immobile` (`CivicoImmobile` )
    ON DELETE CASCADE
    ON UPDATE CASCADE,

  CONSTRAINT `InternoImmobile`
    FOREIGN KEY (`InternoImmobile` )
    REFERENCES `dbimmobili`.`Immobile` (`InternoImmobile` )
    ON DELETE CASCADE
    ON UPDATE CASCADE
) ENGINE = InnoDB

Showing the Engine Status:

Error in foreign key constraint of table dbimmobili/valutazionimercato:

Cannot find an index in the referenced table where the referenced columns appear as the first columns, or columns typse in the table and the referenced table do not match for constraint. Note that the internal storage type of ENUM and SET changed in tables created with >= InnoDB-4.1.12, and such columns in old tables cannot be referenced by such columns in new tables.

Where I'm doing wrong? Thanks for the help.

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12 Answers 12

up vote 26 down vote accepted

When creating a foreign key constraint, MySQL requires a usable index on both the referencing table and also on the referenced table. The index on the referencing table is created automatically if one doesn't exist, but the one on the referenced table needs to be created manually (Source). Yours appears to be missing.

Test case:

CREATE TABLE tbl_a (
    id int PRIMARY KEY,
    some_other_id int,
    value int
) ENGINE=INNODB;
Query OK, 0 rows affected (0.10 sec)

CREATE TABLE tbl_b (
    id int PRIMARY KEY,
    a_id int,
    FOREIGN KEY (a_id) REFERENCES tbl_a (some_other_id)
) ENGINE=INNODB;
ERROR 1005 (HY000): Can't create table 'e.tbl_b' (errno: 150)

But if we add an index on some_other_id:

CREATE INDEX ix_some_id ON tbl_a (some_other_id);
Query OK, 0 rows affected (0.11 sec)
Records: 0  Duplicates: 0  Warnings: 0

CREATE TABLE tbl_b (
    id int PRIMARY KEY,
    a_id int,
    FOREIGN KEY (a_id) REFERENCES tbl_a (some_other_id)
) ENGINE=INNODB;
Query OK, 0 rows affected (0.06 sec)

This is often not an issue in most situations, since the referenced field is often the primary key of the referenced table, and the primary key is indexed automatically.

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2  
Keep the order for index creating in mind, sometimes you have to correct it. –  CSchulz Jan 21 '12 at 15:11
    
one problem i found, if you don't give field name in referencing table it cause error. like FOREIGN KEY (a_id) REFERENCES tbl_a; even field available in both table with same name. –  netsmertia Jul 16 '13 at 20:59
    
to complete the comment of CShulz. that you ve to take care about index on multi field... you've to check that indexes definition between referencing and referenced tables are defined with same order. If tab_a (referencing table) with a_id and b_id is constraint with tab_b (referenced table) with aa_id and b b_id .. with constraint bind : a_id - aa_id and b_id - bb_id ... so if the indexes used are defined as tab_a_idx (a_id, b_id) so be sure that tab_b idx is on (aa_id, bb_id) and NOT (bb_id, aa_id) –  Emmanuel Devaux Aug 9 '13 at 13:16
    
I just had this same error. The problem ended up being that the foreign key I was referencing had datatype "INT unsigned". I'm not sure what that means, but changing it to "INT" worked. –  connorbode Nov 15 '13 at 19:48

Double check that the foreign keys have exactly the same type as the field you've got in this table. For example, both should be Integer(10), or Varchar (8), even the number of characters.

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yes, it can fail if suppose on one table the key is tinyint and int on the other, even if their lengths are the same –  ribot Aug 19 '12 at 8:50
2  
signed/unsigned integer matters too! Just found out thanks to your answer. –  enrey Jun 2 '13 at 19:41
    
I had an int field referring to a bigint field. I made them both the same and it succeeded. This answer is waay down at the bottom. I wish I had seen it earlier. –  Ryan Jul 23 '13 at 6:07
    
Even flags like CAN_BE_NULL, UNSIGNED, etc, any slight difference between the two fields can lead to such an error. Anyway +1 for danp, this is helpful –  Pandaiolo Jan 21 at 14:04
    
thanks... this solved my problem. I had in the referenced table, customer_id int(20) and in the referencing table I had: foreign key(_customer_id) references customer(customer_id) where _customer_id was defined as _customer_id int(10) –  kholofelo Jul 2 at 10:43

I realize this is an old post, but it ranks high in Google, so I'm adding what I figured out for MY problem. If you have a mix of table types (e.g. MyISAM and InnoDB), you will get this error as well. In this case, InnoDB is the default table type, but one table needed fulltext searching so it was migrated to MyISAM. In this situation, you cannot create a foreign key in the InnoDB table that references the MyISAM table.

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this helped me in my error, thank you very much –  Stephan Grobler May 16 '13 at 9:50

I was getting a same error. I found out the solution that I had created the primary key in the main table as BIGINT UNSIGNED and was declaring it as a foreign key in the second table as only BIGINT.

When I declared my foreign key as BIGINT UNSIGED in second table, everything worked fine, even didn't need any indexes to be created.

So it was a datatype mismatch between the primary key and the foreign key :)

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Also note that a different Collation between the tables can also cause this even if the data types are the same. –  akmad Apr 8 '13 at 8:11

I had the exact same problem, but the solution to my problem was entirely different. I had, somewhere else in the database, a foreign key with the same name. That caused the error 1005.

Renaming my foreign key to something more specific to that situation solved the problem.

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If your key is a CHAR/VARCHAR or something of that type, another possible problem is different collation. Check if the charset is the same.

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I don't have the reputation yet to up vote Steve's suggestion, but it solved my problem.

In my case, I received this error because the two table where created using different database engines--one was Innodb and the other MyISAM.

You can change the database type using : ALTER TABLE t ENGINE = MYISAM;

@see http://dev.mysql.com/doc/refman/5.1/en/storage-engine-setting.html

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I had this error and found the reason for the error in my case. I'm still answering to this old post because it ranks pretty high on Google.

The variables of both of the column I wanted to link were integers but one of the ints had 'unsigned' checked on. Simply un-checking that fixed my error.

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It's not your specific case, but it's worth noting for anybody else that this error can occur if you try to reference some fields in a table that are not the whole primary key of that table. Obviously this is not allowed.

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If anyone has this error with seemingly well formed FK/PK relationships and you used the visual tool, try deleting the offending fk columns and re-adding them in the tool. I was continually getting this error until I redrew the connections which cleared up the issues.

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When a there are 2 columns for primary keys they make up a composite primary key therefore you have to make sure that in the table that is being referenced there are also 2 columns of the same data type.

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For me, I was trying to match up a regular indexed field in a child table, to a primary key in the parent table, and by default some MySQL frontend GUIs like Sequel Pro set the primary key as unsigned, so you have to make sure that the child table field is unsigned too (unless these fields might contain negative ints, then make sure they're both signed).

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