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 have a table tester which has a primary id and a foreign key that references the id of a table called test.

The test table has a column numAllowed that indicates how many people can take this particular test.

I want to insert a new tester whose test column references a test only if there are less testers that also reference the same test than numAllowed for that particular test. Ex, "Alex", a tester, can only take the test "Geography" if less than 20 people (numAllowed) are taking/have taken it already.

Also, how does the count function operate in a query like this? Does it only count the columns that are included in the joins or is its "scope" outside the query? will it return the count of all ids in that table?

   insert into tester (test, createddate, ipaddress) 
      11, NOW(), 
   where exists 
   ( select * from 
      test ts inner join 
         tester tr 
      on tr.test = 
      where ts.numAllowed - count( > 0 
      and = '11')
share|improve this question
what do you have in your dual table? – fthiella Feb 20 '14 at 18:23
Nothing, it's for selecting your own values as far as i know. – cplty Feb 20 '14 at 18:24
Don't know if dual is supported by mySQL, but i am pretty sure you cannot use aggregate functions like count() in WHERE clause. You need to group the data and use a HAVING clause. – scraatz Feb 20 '14 at 18:43
Why don't you use a trigger to enforce your business rule? – scraatz Feb 20 '14 at 18:43

1 Answer 1

up vote 1 down vote accepted

I would write your query like this:

INSERT INTO tester (test, createddate, ipaddress) 
  test.ID, NOW(), ''
  test.ID = 1
              FROM tester
              WHERE tester.test = test.ID
              HAVING test.numAllowed-COUNT(*)>0);

Please see fiddle here.

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.