Sql error 1452

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.

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

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

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.

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

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

Wondering how to resolve MySQL Error 1452? We can help you.

At Bobcares, we offer solutions for every query, big and small, as a part of our Microsoft SQL Server Support Services.

Let’s take a look at how our Support Team is ready to help customers with MySQL Error 1452.

How to resolve MySQL Error 1452?

Usually, this error occurs when we try to execute a data manipulation query into a table that has one or more failing foreign key constraints.

What causes MySQL Error 1452?

The cause of this error is the values we are trying to put into the table are not available in the referencing (parent) table.

When a column of a table is referenced from another table, it is called Foreign Key.

For example, consider a table City that contains the name of a city and its ID.

Also, there is another table Buddies to keep a record of people that we know who lives in different cities.

We have to reference the id column of the City table as the FOREIGN KEY of the city_id column in the friends table as follows:

CREATE TABLE friends (
firstName varchar(255) NOT NULL,
city_id int unsigned NOT NULL,
PRIMARY KEY (firstName),
CONSTRAINT friends_ibfk_1
FOREIGN KEY (city_id) REFERENCES City (id)
)

In the code above, a CONSTRAINT named buddies_ibfk_1 is created for the city_id column, referencing the id column in the City table.

This CONSTRAINT means that only values in the id column can be inserted into the city_id column.

If we try to insert a value that is not present in id column into the city_id column, it will trigger the error as shown below:

ERROR 1452 (23000): Cannot add or update a child row:
a foreign key constraint fails
(test_db.friends, CONSTRAINT friends_ibfk_1
FOREIGN KEY (city_id) REFERENCES city (id))

How to resolve it?

Today, let us see the steps followed by our Support Techs to resolve it:

There are two ways to fix the ERROR 1452 in MySQL database server:

1. Firstly, add the value into the referenced table
2. Then, disable the FOREIGN_KEY_CHECKS in the server

1. Add the value into the referenced table

The first option is to add the value we need to the referenced table.

In the example above, add the required id value to the City table.

Now we can insert a new row in the Buddies table with the city_id value that we inserted.

Disabling the foreign key check

2. Disable the FOREIGN_KEY_CHECKS variable in MySQL server.

We can check whether the variable is active or not by running the following query:

SHOW GLOBAL VARIABLES LIKE ‘FOREIGN_KEY_CHECKS’;

 — +——————–+——-+
— | Variable_name | Value |
— +——————–+——-+
— | foreign_key_checks | ON |
— +——————–+——-+

This variable causes MySQL to check any foreign key constraint added to our table(s) before inserting or updating.

We can disable the variable for the current session only or globally:

— set for the current session:
SET FOREIGN_KEY_CHECKS=0;

— set globally:
SET GLOBAL FOREIGN_KEY_CHECKS=0;

Now we can INSERT or UPDATE rows in our table without triggering a foreign key constraint fails.

After we are done with the manipulation query, we can set the FOREIGN_KEY_CHECKS active again by setting its value to 1:

— set for the current session:
SET FOREIGN_KEY_CHECKS=1;

— set globally:
SET GLOBAL FOREIGN_KEY_CHECKS=1;

Turning off FOREIGN_KEY_CHECKS variable will cause the city_id column to reference a NULL column in the City table.

It may cause problems when we need to perform a JOIN query later.

[Looking for a solution to another query? We are just a click away.]

Conclusion

To sum up, our skilled Support Engineers at Bobcares demonstrated how to resolve MySQL Error 1452.

How to fix MySQL ERROR 1452 a foreign key constraint fails

Posted on Dec 08, 2021

Learn how to resolve ERROR 1452 in your MySQL database server

The MySQL ERROR 1452 happens when you try to execute a data manipulation query into a table that has one or more failing foreign key constraints.

The cause of this error is the values you’re trying to put into the table are not available in the referencing (parent) table.

Let’s see an example of this error with two MySQL tables.

Suppose you have a Cities table that contains the following data:

Then, you create a Friends table to keep a record of people you know who lives in different cities.

You reference the id column of the Cities table as the FOREIGN KEY of the city_id column in the Friends table as follows:

In the code above, a CONSTRAINT named friends_ibfk_1 is created for the city_id column, referencing the id column in the Cities table.

This CONSTRAINT means that only values recoded in the id column can be inserted into the city_id column.

(To avoid confusion, I have omitted the id column from the Friends table. In real life, You may have an id column in both tables, but a FOREIGN KEY constraint will always refer to a different table.)

When I try to insert 5 as the value of the city_id column, I will trigger the error as shown below:

The response from MySQL:

As you can see, the error above even describes which constraint you are failing from the table.

Based on the Cities table data above, I can only insert numbers between 1 to 4 for the city_id column to make a valid INSERT statement.

The same error will happen when I try to update the Friends row with a city_id value that’s not available.

Take a look at the following example:

There are two ways you can fix the ERROR 1452 in your MySQL database server:

• You add the value into the referenced table
• You disable the FOREIGN_KEY_CHECKS in your server

The first option is to add the value you need to the referenced table.

In the example above, I need to add the id value of 5 to the Cities table:

Now I can insert a new row in the Friends table with the city_id value of 5 :

Disabling the foreign key check

The second way you can fix the ERROR 1452 issue is to disable the FOREIGN_KEY_CHECKS variable in your MySQL server.

You can check whether the variable is active or not by running the following query:

This variable causes MySQL to check any foreign key constraint added to your table(s) before inserting or updating.

You can disable the variable for the current session only or globally:

Now you can INSERT or UPDATE rows in your table without triggering a foreign key constraint fails :

After you’re done with the manipulation query, you can set the FOREIGN_KEY_CHECKS active again by setting its value to 1 :

But please be warned that turning off your FOREIGN_KEY_CHECKS variable will cause the city_id column to reference a NULL column in the cities table.

It may cause problems when you need to perform a JOIN query later.

Now you’ve learned the cause of ERROR 1452 and how to resolve this issue in your MySQL database server. Great work! 👍

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About

Nathan Sebhastian is a software engineer with a passion for writing tech tutorials.
Learn JavaScript and other web development technology concepts through easy-to-understand explanations written in plain English.

Источник

В ситуациях, когда необходимо совершать действия над таблицей, которая уже содержит в себе какие-либо данные, может возникнуть неприятная ошибка: «Mysql error 1452 — Cannot add or update a child row: a foreign key constraint fails«.

Возникает она вследствие того, что мы пытаемся изменить существующую запись таким образом, что нарушается целостность.

Например, присвоение полю ключа, который не существует в родительской таблице. Или создание нового внешнего ключа для поля, которое не должно быть NULL, в таблице, которая уже содержит некоторое количество записей. Последняя проблема у меня и возникла. Необходимо было решение, и оно было найдено.

Решение простое как пять копеек. Нам необходимо избавиться от NULL-значений в поле, на которое навешивается внешний ключ.

Предположим, что вы уже отредактировали схему соответствующим образом и она имеет примерно следующее содержание:

Human:
  columns:
    name:              { type: string(255), notnull: true }
    human_status_id:   { type: integer, notnull: true }
  relations:
    HumanStatus:
      local: human_status_id
      foreign: id
      onDelete: CASCADE

HumanStatus:
  columns:
    name:            { type: string,  notnull: true  }

После успешной генерации миграций должны появиться два файла миграций: один будет содержать создание таблиц, а вторая создание связей между ними. Именно второй файл мы и будем редактировать. Нам это никто не запрещает.

Итак, как я уже сказал, нам необходимо избавиться от NULL-значений. Для этого мы поправим вторую миграцию примерно таким образом:

public function up()
    {
        $conn = Doctrine_Manager::getInstance()->getCurrentConnection();

        $oHumanStatus = new HumanStatus();
        $oHumanStatus->setName('Temp');
        $oHumanStatus->save();

        Doctrine_Query::create()
            ->update()
            ->from('Human')
            ->set('human_status_id', $oHumanStatus->getId())
            ->execute();
        
        $this->createForeignKey('human', 'human_human_status_id_human_status_id', array(
             'name' => 'human_human_status_id_human_status_id',
             'local' => 'human_status_id',
             'foreign' => 'id',
             'foreignTable' => 'human_status',
             'onUpdate' => '',
             'onDelete' => 'CASCADE',
             ));
        $this->addIndex('human', 'human_human_status_id', array(
             'fields' => 
             array(
              0 => 'human_status_id',
             ),
             ));
    }

Думаю, основная идея понятна. Если нет нужды в создании новой записи в таблице HumanStatus, можно поискать уже существующие. Все зависит от вашей ситуации.

Далее накатываем обе миграции. Все должно пройти успешно. Если нет — читайте мануалы дальше. Возможно, это не ваш случай.

P.S. Не оставляйте die() в up() или down() методах миграции. Иначе она не накатится.

Автор: Артур Минимулин ⚫ 6 мая 2013 г. ⚫ Тэги: php, Symfony, Doctrine, MySQL

У меня немного странная проблема. Я пытаюсь добавить внешний ключ к одной таблице, которая ссылается на другую, но по какой-то причине она не работает. Имея мои ограниченные знания MySQL, единственное, что может быть подозрительным, это наличие внешнего ключа в другой таблице, ссылающейся на ту, которую я пытаюсь ссылаться.

Вот изображение моих связей в таблице, сгенерированное с помощью phpMyAdmin:
Отношения

Я выполнил запрос SHOW CREATE TABLE для обеих таблиц, sourcecodes_tags — это таблица с внешним ключом, sourcecodes — ссылочная таблица.

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

Было бы здорово, если бы кто-нибудь мог рассказать мне, что здесь происходит, у меня не было формального обучения или чего-то еще с MySQL:)

Спасибо.

Изменить: Это код, который генерирует ошибку:

ALTER TABLE sourcecodes_tags ADD FOREIGN KEY (sourcecode_id) REFERENCES sourcecodes (id) ON DELETE CASCADE ON UPDATE CASCADE