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This question already has an answer here:

I'm working on a new script which has a foreign key error.

I have the following tables: request, category and request_category.

There are now 6 categories in table category, so that's all good. My script inserts the data into the request table and after that it tries to add an entry to request_category but this is where it fails.

The code:

$oUser = new User();
$oUser->firstname = $this->oLibrary->Request->post('firstname');
$oUser->initials  = $this->oLibrary->Request->post('initials');
$oUser->lastname  = $this->oLibrary->Request->post('lastname');
$oUser->zip       = $this->oLibrary->Request->post('zip');
$oUser->city      = $this->oLibrary->Request->post('city');
$oUser->email     = $this->oLibrary->Request->post('email');
$oUser->setStatus(UserStatus::STATUS_PENDING);
$oUser->create();

$oRequest = new ServiceRequest();
$oRequest->title        = $this->oLibrary->Request->post('title');
$oRequest->description  = $this->oLibrary->Request->post('description');
$oRequest->user_id      = $oUser->id;
$oRequest->setStatus(RequestStatus::STATUS_INCOMPLETE);
$oRequest->create();

// above here goes fine

$oRequestCategory = new RequestCategory();
$oRequestCategory->category_id = $this->oLibrary->Request->post('category');
$oRequestCategory->request_id  = $oRequest->id;
$oRequestCategory->create();

I don't quite understand why it won't insert. I have checked and both keys the request_table requires are present in the database. When I try to do the insert in Workbench it throws the same error, So I guess it's a flaw in my database design somewhere. Could someone explain to me why I'm getting this foreign key error?

The error message itself:

ERROR 1452: Cannot add or update a child row: a foreign key constraint fails (`ruiljedienst`.`request_category`, CONSTRAINT `fk_request_category_category1` FOREIGN KEY (`category_id`) REFERENCES `category` (`id`) ON DELETE NO ACTION ON UPDATE NO ACTION)

SQL Statement:

INSERT INTO `ruiljedienst`.`request_category` (`category_id`, `request_id`) VALUES ('1', '1')

Here's a screenshot of the related database tables in MySQL workbench:

http://prntscr.com/2fwce6

Update:

show create table ruiljedienst.request_category

Results in :

CREATE TABLE `request_category` (
  `id` int(11) NOT NULL AUTO_INCREMENT,
  `category_id` int(11) NOT NULL,
  `request_id` int(11) NOT NULL,
  PRIMARY KEY (`id`),
  UNIQUE KEY `id_UNIQUE` (`id`),
  KEY `fk_request_category_category1_idx` (`category_id`),
  KEY `fk_request_category_request1_idx` (`request_id`),
  CONSTRAINT `fk_request_category_category1` FOREIGN KEY (`category_id`) REFERENCES `category` (`id`) ON DELETE NO ACTION ON UPDATE NO ACTION,
  CONSTRAINT `fk_request_category_request1` FOREIGN KEY (`request_id`) REFERENCES `request` (`id`) ON DELETE NO ACTION ON UPDATE NO ACTION
) ENGINE=InnoDB AUTO_INCREMENT=5 DEFAULT CHARSET=latin1'


select id from ruiljedienst.category

This gives:

http://prntscr.com/2fwhfl

share|improve this question

marked as duplicate by Barmar, tereško, kumar_v, Greg, Michael Berkowski Mar 10 '14 at 17:00

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

up vote 1 down vote accepted

You have a foreign key constraint on category_id, so you have to add id=1 to the category table before you add the row to request_category.

Make sure that all the referenced tables use ENGINE=InnoDB.

share|improve this answer
    
Thanks for your fast response, but there are 6 entries in the category table with ID's 1 to 6 prntscr.com/2fwg5d – David Ericsson Jan 2 '14 at 18:28
    
The error message says there isn't. Can you update your question with show create table request_category and select id from category? – Barmar Jan 2 '14 at 18:29
    
Added the queries – David Ericsson Jan 2 '14 at 18:33
    
try creating your first record in request_category in the workbench, sometimes you have to add the first value in the auto-increment column before the rest can be auto-generated – Jeff Hawthorne Jan 2 '14 at 18:39
    
Gives me the same error :( – David Ericsson Jan 2 '14 at 18:39

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