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I need to know about how to declare foreign key in mysql and how it works. Here's one sample first table contains name, age the second table refer the first tables name. While I run this, I receive error only.

<?php
$conn=new mysqli("localhost","root","12345");
$sql="USE new";
$conn->query($sql);
$sql="CREATE TABLE test(name varchar(20),age integer)";
$conn->query($sql);
$sql="CREATE TABLE test2(name varchar(10),FOREIGN KEY (name) REFERENCES test     (name)";
if($conn->query($sql)==true)
{
    header('Locaton:test3.html');
}
else
{
    echo "error";
}
?> 

Can anyone help me?

share|improve this question
    
Foreign key docs ==> dev.mysql.com/doc/refman/5.6/en/create-table-foreign-keys.html –  Blu Angel Mar 31 '14 at 11:43
    
The idea of using names as Foreign key.. God plz no.. –  Naruto Mar 31 '14 at 11:48

4 Answers 4

up vote 0 down vote accepted

foreign key must refrence from a Primary key then use a primary key on name,

$sql="CREATE TABLE test(name varchar(20) PRIMARY KEY,age integer)";

and also change on

$sql="CREATE TABLE test2(name varchar(10),FOREIGN KEY (name) REFERENCES test(name))";

if your name field have chance to duplicate then take one another field id and use it to reference.

share|improve this answer

You are missing a ) parenthesis at the end

$sql="CREATE TABLE test2(name varchar(10),FOREIGN KEY (name) REFERENCES test (name))";
share|improve this answer

Please note that you must use InnoDB when using foreign keys. Unless you have InnoDB as default, you need to specify the table type when creating the table.

CREATE TABLE test(name varchar(20) primary key,age integer) engine=innodb;
CREATE TABLE test2(name varchar(10) primary key,FOREIGN KEY (name) REFERENCES test     (name)) engine=innodb;

Also note that the you foreign keys need to be referencing indexed columns. Using primary key is one way to achieve this.

share|improve this answer
    
now also i get error only –  Pranavadurai Mar 31 '14 at 12:05
    
What version of MySQL do you use and what error do you get? Above works fine with MySQL 5.5.25. –  vhu Mar 31 '14 at 12:08
    
i am using server xampp 1.8.3 with mysql version 5.6.16..error is second table not created and no error message i am created using php code –  Pranavadurai Mar 31 '14 at 12:12
    
Are you sure that the referenced column in first table is indexed - i.e. did you drop/create the table with index or primary key? Try var_dump($conn->error) after the error occures. –  vhu Mar 31 '14 at 12:18

FOREIGN KEY constraint defined at the Column level

Query

   $sql="CREATE TABLE test2(name varchar(10) FOREIGN KEY REFERENCES test(name))";

FOREIGN KEY constraint defined at the Table level

Query

   $sql="CREATE TABLE test2(
                name varchar(10), 
                FOREIGN KEY (name) REFERENCES test(name)
   )";

Check this reference URL. Both way you can do.

share|improve this answer
    
now also i get error only –  Pranavadurai Mar 31 '14 at 12:04
    
url reference i add check it. –  user1153551 Mar 31 '14 at 12:09

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