Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Here are examples of the 3 tables I'm working with.


    Teams
    +----+------+
    | id | name |
    +----+------+
    |  1 | abc  |
    |  2 | def  |
    |  3 | ghi  |
    +----+------+


    Members
    +----+-----------+----------+---------+
    | id | firstname | lastname | team_id |
    +----+-----------+----------+---------+
    |  1 | joe       | smith    |       1 |
    |  2 | jared     | robinson |       1 |
    |  3 | sarah     | cole     |       3 |
    |  4 | jaci      | meyers   |       2 |
    +----+-----------+----------+---------+


    Goals
    +----+-----------+
    | id | member_id |
    +----+-----------+
    |  1 |         3 |
    |  2 |         2 |
    |  3 |         2 |
    |  4 |         3 |
    |  5 |         1 |
    +----+-----------+
    


And I'm trying to get a query that outputs something like this ...


    Output
    +--------+----------------+-------------+
    | t.name | Count(members) | Count(goals)|
    +--------+----------------+-------------+
    | abc    |              2 |           3 |
    | def    |              1 |           2 |
    | ghi    |              1 |           0 |
    +--------+----------------+-------------+
    


This is the closest I've come, but when I use the group by in the subquery I get "Subquery returns more than 1 row".

select t.name, count(*), 
    (select count(*)
    from teams t 
    inner join members m on m.team_id = t.id
    group by t.id)
from teams t 
inner join members m on m.team_id = t.id 
inner join goals g on g.member_id = m.id
group by t.id
share|improve this question
    
Just for clarification, isn't in the final result team ghi should have count(goals) of 2 and def is 0? As member id 3 in Goals table should belong to ghi team? – momo Oct 4 '11 at 1:03
up vote 2 down vote accepted

Based on my understanding, here is the query that I come up with:


    SELECT name, membersCount, IFNULL(totalCount, 0) goalsCount FROM
    (
      SELECT m.team_id, SUM(innerQuery.goalsCount) totalCount
      FROM (
        SELECT m.id memberId, COUNT(*) goalsCount
        FROM Members m
        JOIN Goals g
        ON m.id = g.member_id
        GROUP BY member_id
      ) innerQuery
      JOIN Members m
      ON innerQuery.memberId = m.id
      GROUP BY m.team_id
    ) inner_1
    RIGHT JOIN 
    (
      SELECT t.id, t.name, COUNT(*) membersCount
      FROM Teams t
      JOIN Members m
      ON t.id = m.team_id
      GROUP BY team_id
    ) inner_2
    ON inner_1.team_id = inner_2.id

The breakdown of the query:

#1. Get the member ID with its associated goals count (innerQuery)


SELECT m.id memberId, COUNT(*) goalsCount
    FROM Members m
    JOIN Goals g
    ON m.id = g.member_id
    GROUP BY member_id

#2. Get the team id for with the total SUM of the goals (inner_1)


     SELECT m.team_id, SUM(innerQuery.goalsCount) totalCount
      FROM (
          .... Sub-query in step 1
      ) innerQuery
      JOIN Members m
      ON innerQuery.memberId = m.id
      GROUP BY m.team_id

#3. Get total members count per team (inner_2)


    SELECT t.id, t.name, COUNT(*) membersCount
      FROM Teams t
      JOIN Members m
      ON t.id = m.team_id
      GROUP BY team_id

#4. RIGHT JOIN inner_1 and inner_2 (since there will be NULL) and use IFNULL to check and replace that 0


    SELECT name, membersCount, IFNULL(totalCount, 0) goalsCount FROM
    (
     .... Sub-query in step 2
    ) inner_1
    RIGHT JOIN 
    (
      .... Sub-query in step 3
    ) inner_2
    ON inner_1.team_id = inner_2.id

share|improve this answer
    
Good lord I'm glad I asked for help ;) That works! You're clutch, thanks man! – Ryan Grush Oct 4 '11 at 1:31

Your Answer

 
discard

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.