Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I am having trouble with this table

CREATE TABLE `Participants` (
  `meetid` int(11) NOT NULL,
  `pid` varchar(15) NOT NULL,
  `status` char(1) DEFAULT NULL,
  PRIMARY KEY (`meetid`,`pid`),
  CONSTRAINT `participants_ibfk_1` FOREIGN KEY (`meetid`) REFERENCES `Meetings` (`meetid`) ON DELETE CASCADE
  CONSTRAINT `participants_ibfk_2` CHECK (status IN ('a','d','u'))
  CONSTRAINT `participants_ibfk_3` CHECK (pid IN (SELECT name FROM Rooms) OR pid IN (SELECT userid FROM People))

I want to have a foreign key constraint, and that works. Then i want to add a constraint to the attribute status so it can only take the values 'a', 'd' and 'u'. It is not possible for me to set the field as Enum or set.

Can anyone tell me why this code does not work in MySQL?

share|improve this question

3 Answers 3

up vote 20 down vote accepted

CHECK constraints are not supported by MySQL. You can define them, but they do nothing (as of MySQL 5.7).

From the manual:

The CHECK clause is parsed but ignored by all storage engines.

The workaround is to create triggers, but they aren't the easiest thing to work with.

If you want an open-source RDBMS that supports CHECK constraints, try PostgreSQL. It's actually a very good database.

share|improve this answer
Thank you for the short and concrete answer – Mathias Bak Sep 22 '11 at 22:07
Sometimes I wonder why anybody uses MySQL anymore--"oops, sorry, we decided not to implement data integrity!". If you have any sort of control of your RDBMS, and you want open source, Postgres is The Way. – Jordan Sep 22 '11 at 22:18
True that. MySQL is not a good choice for numerous reasons and this is one of them. – Dmitri Sep 14 at 8:15

Beside triggers, for simple constraints like the one you have:

CONSTRAINT `participants_ibfk_2` 
  CHECK status IN ('a','d','u')

you could use a Foreign Key from status to a Reference table (ParticipantStatus with 3 rows: 'a','d','u' ):

CONSTRAINT ParticipantStatus_Participant_fk
  FOREIGN KEY (status)
    REFERENCES ParticipantStatus(status) 
share|improve this answer
Thank you for the suggestion. – Mathias Bak Sep 24 '11 at 10:51

Here is a way of getting the checks you wanted quickly and easily:

drop database if exists gtest;

create database if not exists gtest;
use gtest;

create table users (
  user_id       integer unsigned not null auto_increment primary key,
  username      varchar(32) not null default '',
  password      varchar(64) not null default '',
  unique key ix_username (username)
) Engine=InnoDB auto_increment 10001;

create table owners (
  owner_id      integer unsigned not null auto_increment primary key,
  ownername     varchar(32) not null default '',
  unique key ix_ownername (ownername)
) Engine=InnoDB auto_increment 5001;

create table users_and_owners (
  id    integer unsigned not null primary key,
  name  varchar(32) not null default '',
  unique key ix_name(name)
) Engine=InnoDB;

create table p_status (
  a_status      char(1) not null primary key
) Engine=InnoDB;

create table people (
  person_id integer unsigned not null auto_increment primary key,
  pid       integer unsigned not null,
  name      varchar(32) not null default '',
  status    char(1) not null,
  unique key ix_name (name),
  foreign key people_ibfk_001 (pid) references users_and_owners(id),
  foreign key people_ibfk_002 (status) references p_status (a_status)
) Engine=InnoDB;

create or replace view vw_users_and_owners as
  user_id id,
  username name
from users
  owner_id id,
  ownername name
from owners
order by id asc

create trigger newUser after insert on users for each row replace into users_and_owners select * from vw_users_and_owners;
create trigger newOwner after insert on owners for each row replace into users_and_owners select * from vw_users_and_owners;

insert into users ( username, password ) values
( 'fred Smith', password('fredSmith')),
( 'jack Sparrow', password('jackSparrow')),
( 'Jim Beam', password('JimBeam')),
( 'Ted Turner', password('TedTurner'))

insert into owners ( ownername ) values ( 'Tom Jones'),( 'Elvis Presley'),('Wally Lewis'),('Ted Turner');

insert into people (pid, name, status) values ( 5001, 'Tom Jones', 1),(10002,'jack Sparrow',1),(5002,'Elvis Presley',1);
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.