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When I'm going to execute this code, I'm getting this error message:

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'ADD CONSTRAINT fk_pay_grade_scale FOREIGN KEY pay_scale_id REFERENCES `pay_s' at line 11

But I don't understand the problem. Your help is appreciated!

CREATE TABLE IF NOT EXISTS `pay_grades` (
    `pay_grade_id` int(20) NOT NULL,
  `pay_scale_id` tinyint(4) NOT NULL,
  `name` varchar(100) NOT NULL,
  `basic_salary` decimal(10,2) NOT NULL,  
  `status` int(2) NOT NULL DEFAULT '1',  
   PRIMARY KEY (`pay_grade_id`),
   INDEX (`pay_scale_id`, `pay_grade_id`),  
   ADD CONSTRAINT `fk_pay_grade_scale` FOREIGN KEY `pay_scale_id` REFERENCES `pay_scales`(`id`) ON UPDATE CASCADE ON DELETE RESTRICT
) ENGINE=InnoDB DEFAULT CHARSET=utf8;


CREATE TABLE IF NOT EXISTS `pay_scales` (
`id` tinyint(4) NOT NULL,
  `name` varchar(100) NOT NULL,
  PRIMARY KEY(id)
) ENGINE=InnoDB DEFAULT CHARSET=utf8;
4

You can not use ADD CONSTRAINT in a CREATE TABLE declaration. Declare your constraint after creating the table or in the CREATE TABLE.


First solution: Add the constraint in CREATE TABLE

CREATE TABLE IF NOT EXISTS `pay_grades` (
  `pay_grade_id` int(20) NOT NULL,
  `pay_scale_id` tinyint(4) NOT NULL,
  `name` varchar(100) NOT NULL,
  `basic_salary` decimal(10,2) NOT NULL,  
  `status` int(2) NOT NULL DEFAULT '1',  
   PRIMARY KEY (`pay_grade_id`),
   INDEX (`pay_scale_id`, `pay_grade_id`),  
   FOREIGN KEY (`pay_scale_id`) REFERENCES `pay_scales`(`id`) ON UPDATE CASCADE ON DELETE RESTRICT
) ENGINE=InnoDB DEFAULT CHARSET=utf8;

Second solution: Alter table to add the constraint

Create your table without the constraint, and then add your constraint as follow:

ALTER TABLE `pay_grades` 
ADD CONSTRAINT `pay_scale_id` FOREIGN KEY REFERENCES `pay_scales`(`id`) 
ON UPDATE CASCADE ON DELETE RESTRICT;

MySQL documentation for foreign keys declaration.

  • yes I accept :) – zaman sarker Jul 29 '16 at 14:42
  • 1
    @zamansarker to accept an answer means to click that small tick mark next to the answer. If other answers were helpfull, you should consider upvoting them too. More details at stackoverflow.com/help/someone-answers – e4c5 Aug 1 '16 at 3:09
0

It seems the difference in order of table creation. First create primary key table than create the table of foreign key.

CREATE TABLE IF NOT EXISTS `pay_scales` (
`id` tinyint(4) NOT NULL,
  `name` varchar(100) NOT NULL,
  PRIMARY KEY(id)
) ENGINE=InnoDB DEFAULT CHARSET=utf8;


CREATE TABLE IF NOT EXISTS `pay_grades` (
    `pay_grade_id` int(20) NOT NULL,
  `pay_scale_id` tinyint(4) NOT NULL,
  `name` varchar(100) NOT NULL,
  `basic_salary` decimal(10,2) NOT NULL,  
  `status` int(2) NOT NULL DEFAULT '1',  
   PRIMARY KEY (`pay_grade_id`),
   INDEX (`pay_scale_id`, `pay_grade_id`),  
   ADD CONSTRAINT `fk_pay_grade_scale` FOREIGN KEY `pay_scale_id` REFERENCES `pay_scales`(`id`) ON UPDATE CASCADE ON DELETE RESTRICT
) ENGINE=InnoDB DEFAULT CHARSET=utf8;

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