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I'm having a bit of a strange problem, I'm trying to add a foreign key to one table that references another, but it is failing for some reason. With my limited knowledge of MySQL, the only thing that could possibly be suspect is that there is a foreign key on a different table referencing the one I am trying to reference.

Here is a picture of my table relationships, generated via phpMyAdmin: Relationships

I've done a SHOW CREATE TABLE query on both tables, sourcecodes_tags is the table with the foreign key, sourcecodes is the referenced table.

CREATE TABLE `sourcecodes` (
 `id` int(11) unsigned NOT NULL AUTO_INCREMENT,
 `user_id` int(11) unsigned NOT NULL,
 `language_id` int(11) unsigned NOT NULL,
 `category_id` int(11) unsigned NOT NULL,
 `title` varchar(40) CHARACTER SET utf8 NOT NULL,
 `description` text CHARACTER SET utf8 NOT NULL,
 `views` int(11) unsigned NOT NULL,
 `downloads` int(11) unsigned NOT NULL,
 `time_posted` timestamp NOT NULL DEFAULT CURRENT_TIMESTAMP ON UPDATE CURRENT_TIMESTAMP,
 PRIMARY KEY (`id`),
 KEY `user_id` (`user_id`),
 KEY `language_id` (`language_id`),
 KEY `category_id` (`category_id`),
 CONSTRAINT `sourcecodes_ibfk_3` FOREIGN KEY (`language_id`) REFERENCES `languages` (`id`) ON DELETE CASCADE ON UPDATE CASCADE,
 CONSTRAINT `sourcecodes_ibfk_1` FOREIGN KEY (`user_id`) REFERENCES `users` (`id`) ON DELETE CASCADE ON UPDATE CASCADE,
 CONSTRAINT `sourcecodes_ibfk_2` FOREIGN KEY (`category_id`) REFERENCES `categories` (`id`) ON DELETE CASCADE ON UPDATE CASCADE
) ENGINE=InnoDB AUTO_INCREMENT=4 DEFAULT CHARSET=latin1

CREATE TABLE `sourcecodes_tags` (
 `sourcecode_id` int(11) unsigned NOT NULL,
 `tag_id` int(11) unsigned NOT NULL,
 KEY `sourcecode_id` (`sourcecode_id`),
 KEY `tag_id` (`tag_id`),
 CONSTRAINT `sourcecodes_tags_ibfk_1` FOREIGN KEY (`tag_id`) REFERENCES `tags` (`id`) ON DELETE CASCADE ON UPDATE CASCADE
) ENGINE=InnoDB DEFAULT CHARSET=latin1

It would be great if anyone could tell me what is going on here, I've had no formal training or anything with MySQL :)

Thanks.

Edit: This is the code that generates the error:

ALTER TABLE sourcecodes_tags ADD FOREIGN KEY (sourcecode_id) REFERENCES sourcecodes (id) ON DELETE CASCADE ON UPDATE CASCADE
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1  
could you also post your insert/update command which results in the error? –  Zed Aug 10 '09 at 7:02
12  
are your tables empty when you add this foreign key? –  Zed Aug 10 '09 at 7:14
5  
try running this query to see if there is any sourcecode_id that is not a real id: SELECT sourcecode_id FROM sourcecodes_tags WHERE sourcecode_id NOT IN (SELECT id FROM sourcecodes AS tmp); –  Zed Aug 10 '09 at 7:22
5  
Thanks Zed, that was the problem one of the tables had data in it. Thinking about it now it makes sense that it was failing because there were things that were referencing non-existing items, but I never would have guessed that. Thanks! –  Zim Aug 10 '09 at 7:26
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10 Answers

Quite likely your sourcecodes_tags table contains sourcecode_id values that no longer exists in your sourcecodes table. You have to get rid of those first.

Here's a query that can find those IDs:

select sourcecode_id from 
   sourcecodes_tags tags left join sourcecodes sc on tags.sourcecode_id=sc.id 
where sc.id is null;
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I had the same issue with my mysql database but finally I got a solution which worked for me.
Since in my table everything was fine from mysql point of view(both table should use Innodb engine and the datatype of each column should be of same type which take part in foreign key constraint).
Only thing that I did was to disable the foreign key check and later on enabled it after performing foreign key operation.
Steps that I took:

mysql> SET foreign_key_checks = 0;

mysql> alter table tblUsedDestination add constraint f_operatorId foreign key(iOperatorId) references tblOperators (iOperatorId); Query
OK, 8 rows affected (0.23 sec) Records: 8  Duplicates: 0  Warnings: 0

mysql> SET foreign_key_checks = 1;
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2  
foreign_key_checks are there for a reason. If you can't add the foreign key because it violates the constraint, you should correct the data first. Turning off checks then adding the key leaves you in an inconsistent state. Foreign key checks add overhead, if you do not want to use them, then use myisam instead. –  kzarns Mar 19 at 22:44
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Use NOT IN to find where constraints are constraining:

SELECT column FROM table WHERE column NOT IN 
(SELECT intended_foreign_key FROM another_table)

so, more specifically:

SELECT sourcecode_id FROM sourcecodes_tags WHERE sourcecode_id NOT IN 
(SELECT id FROM sourcecodes)

EDIT: IN and NOT IN operators are known to be much faster than the JOIN operators, as well as much easier to construct, and repeat.

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Truncate the tables and then try adding the FK Constraint.

I know this solution is a bit awkward but it does work 100%. But I agree that this is not an ideal solution to deal with problem, but I hope it helps.

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No need to truncate everything. "UPDATE sourcecodes_tags SET sourcecode_id = NULL WHERE sourcecode_id NOT IN (SELECT id FROM sourcecodes)" should suffice. Or if null is not allowed in "sourcecode_id", then remove those rows or add those missing values to the "sourcecodes" table. –  Torben Aug 19 '13 at 10:45
1  
Sometimes, if data increment the autoincrement PK, it forces you to truncate. –  François Breton Oct 2 '13 at 15:33
2  
thanks, this is works for me –  Amit Pandya Nov 19 '13 at 0:48
1  
@ShankarDamodaran not sure why truncating the table works but this solution worked well for me. I was able to get my relationships to work... THANKS! –  MizAkita Apr 11 at 3:59
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This also happens when setting a foreign key to parent.id to child.column if the child.column has a value of 0 already and no parent.id value is 0

You would need to ensure that each child.column is NULL or has value that exists in parent.id

And now that I read the statement nos wrote, that's what he is validating.

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I had the same problem today. I tested for four things, some of them already mentioned here:

  1. Are there any values in your child column that don't exist in the parent column (besides NULL, if the child column is nullable)

  2. Do child and parent columns have the same datatype?

  3. Is there an index on the parent column you are referencing? MySQL seems to require this for performance reasons (http://dev.mysql.com/doc/refman/5.5/en/create-table-foreign-keys.html)

  4. And this one solved it for me: Do both tables have identical collation?

I had one table in utf-8 and the other in iso-something. That didnt't work. After changing the iso-table to utf-8 collation the constraints could be added without problems. In my case, phpMyAdmin didn't even show the child table in iso-encoding in the dropdown for creating the foreign key constraint.

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I'd the same problem,I checked rows of my tables and found there were some incompatibility with value of fields that I wanted to define as foreign key. I corrected those value, tried again and problem was solved.

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I end up delete all the data in my table, and run alter again. It works. Not the brilliant one, but it save a lot time, especially your application is still in development stage without any customer data.

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I had this exact same problem about three different times. In each instance it was because one (or more) of my records did not conform to the new foreign key. You may want to update your existing records to follow the syntax constraints of the foreign key before trying to add the key itself. The following example should generally isolate the problem records:

SELECT * FROM (tablename) WHERE (candidate key) <> (proposed foreign key value) AND (candidate key) <> (next proposed foreign key value)

repeat AND (candidate key) <> (next proposed foreign key value) within your query for each value in the foreign key.

If you have a ton of records this can be difficult, but if your table is reasonably small it shouldn't take too long. I'm not super amazing in SQL syntax, but this has always isolated the issue for me.

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For me, this problem was a little different and super easy to check and solve.

You must ensure BOTH of your tables are InnoDB. If one of the tables, namely the reference table is a MyISAM, the contraint will fail.

SHOW TABLE STATUS WHERE Name =  't1';

ALTER TABLE t1 ENGINE=InnoDB;
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