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I am working on a PHP application that uses a database extensively. My coworker who set up the database, set up the tables to use foreign keys. Here is the statement I am using:

INSERT INTO patients (ethnicity, gender)
VALUES (1, 1);

INSERT INTO sessions (patient_id, submitted, age_in_years, video, annotated)
VALUES (LAST_INSERT_ID(), NOW(), 0, '', FALSE);

The first statement works. However, I get the following error with the second statement.

#1452 - Cannot add or update a child row: a foreign key constraint fails (`<database name>/sessions`, CONSTRAINT `fk_sessions_1` FOREIGN KEY (`patient_id`) REFERENCES `patient` (`id`) ON DELETE CASCADE ON UPDATE CASCADE)

I have confirmed that LAST_INSERT_ID() returns the expected value.

How can I fix this?

Below is how we set up the sessions table

CREATE TABLE IF NOT EXISTS `sessions` (
  `id` int(11) NOT NULL auto_increment,
  `patient_id` int(11) NOT NULL,
  `severity` enum('Minimal Symptoms of Autism Spectrum Disorder','Mild-to-Moderate Symptoms of Autism Spectrum Disorder','Severe Symtoms of Autism Spectrum Disorder') default NULL,
  `submitted` datetime default NULL,
  `age_in_years` int(11) NOT NULL,
  `video` text NOT NULL,
  `annotated` tinyint(1) default '0',
  PRIMARY KEY  (`id`),
  KEY `fk_sessions_1` (`patient_id`),
  KEY `age_in_years` (`age_in_years`)
) ENGINE=InnoDB DEFAULT CHARSET=latin1 AUTO_INCREMENT=1 ;

ALTER TABLE `sessions`
  ADD CONSTRAINT `fk_sessions_1` FOREIGN KEY (`patient_id`) REFERENCES `patient` (`id`) ON DELETE CASCADE ON UPDATE CASCADE;

EDIT: Removed unnecessary details. If you feel you need more, feel free to look at the first version of this post.

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Have you verified that LAST_INSERT_ID() returns an id that exists in the "patient" table ? –  Alexandre P. Levasseur Jul 16 '12 at 23:05
    
It returns 0. Any ideas why? –  Tyler Crompton Jul 16 '12 at 23:07
    
do you have autocommit set to false in your connection string? –  Jeshurun Jul 16 '12 at 23:10
    
This may be completely off as I am no MySQL expert at all (the same goes for SQL generally speaking) but could it be because you did not specify the PK in the first statement ? From the reference, it seems that LAST_INSERT_ID() returns the last value from the AUTOINCREMENT field (which is usually your PK). dev.mysql.com/doc/refman/5.0/en/… –  Alexandre P. Levasseur Jul 16 '12 at 23:13
    
@Jeshurun, I call $database->beginTransaction(); prior to the SQL statements and $database->commit(); afterward. The rest of my PHP is in the first revision. –  Tyler Crompton Jul 16 '12 at 23:13
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2 Answers

The error is telling you exactly what's wrong.

You're attempting to insert a value in sessons.patient_id that does not exist in patients.id. This is how foreign key constraints work by design. Regardless of whether or not the value of LAST_UPDATE_ID() is what you expect, you need to confirm that the value is valid in patients.id.

Example:

patients
---------------
id    |    name
---------------
1     |    john
2     |    jane

If you try to insert "3" into sessions.patient_id, you will get the error you see because that id doesn't exist in patients.

share|improve this answer
    
But it looks like it is correct. pastie.org/pastes/4268894/text –  Tyler Crompton Jul 16 '12 at 23:51
    
More relevant: pastie.org/4268916 –  Tyler Crompton Jul 16 '12 at 23:54
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up vote 0 down vote accepted

It turns out that when my coworker added the foreign key, he had a typo in the table name that the foreign key references.

ALTER TABLE `sessions`
  ADD CONSTRAINT `fk_sessions_1` FOREIGN KEY (`patient_id`) REFERENCES `patient` (`id`) ON DELETE CASCADE ON UPDATE CASCADE;

should be

ALTER TABLE `sessions`
  ADD CONSTRAINT `fk_sessions_1` FOREIGN KEY (`patient_id`) REFERENCES `patients` (`id`) ON DELETE CASCADE;
share|improve this answer
    
That's classic :-) –  Neil Jul 17 '12 at 20:58
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