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I have 3 tables: users, courses and courseusers. Courseusers is the intermediary table that joins courses.idCourse with users.idUser. However, the intermediary table has no foreign key constrains and ON DELETE CASCADE or ON UPDATE CASCADE.

Users:
idUser|name

Courses:
idCourse|name

Courseusers:
id|idUser|idCourse

My question is, how do I get the top 3 most subscribed courses (most entries in courseuser), while ignoring manually deleted users from the users and courses tables (they will still exists as entries in courseuser).

What I have right now:

SELECT c.idCourse, c.name, count(*) as count 
FROM courseusers as cu 
     JOIN course as c 
         ON cu.idCourse=c.idCourse 
     JOIN users as usr 
         ON (usr.idUser=u.idUser) 
GROUP BY u.idCourse
ORDER BY count DESC 
LIMIT 3
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1  
Have you tried anything? –  hims056 Sep 7 '12 at 7:35

4 Answers 4

up vote 4 down vote accepted

Try to use the following query

SELECT c.idCourse, c.name, count(*) as count  
FROM courseusers as cu  
   LEFT JOIN course as c  
       ON cu.idCourse=c.idCourse  
   LEFT JOIN users as usr  
       ON (usr.idUser=u.idUser)  
GROUP BY u.idCourse 
ORDER BY count DESC  
LIMIT 3 
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http://sqlfiddle.com/#!2/0567a/1

SELECT
  c.name,
  COUNT(1) AS total
FROM Courceusers cu
JOIN Cources c USING(idCource)
JOIN Users u USING(idUser)
GROUP BY 1
ORDER BY 2 DESC
LIMIT 3;
share|improve this answer

Join all tables based on table Users not on the intermediary table

SELECT  a.idUser, a.Name, COUNT(c.idCourse) totalCount
FROM    Users a
            INNER JOIN  CourseUsers b
                ON a.idUser = b.idUser
            INNER JOIN Courses c
                ON b.idCourse = c.idCourse
GROUP BY a.idUser, a.Name
ORDER BY totalCount DESC
LIMIT 3
share|improve this answer
select 
    CourseUsers.idCourse, 
    Courses.name, 
    COUNT(distinct CourseUsers.idUser) as Subscribers
from CourseUsers
    inner join Courses on CourseUsers.idCourse = Courses.idCourse
    inner join Users on CourseUsers.idUser = Users.idUser
group by CourseUsers.idCourse, Courses.name
order by Subscribers desc
limit 3
share|improve this answer

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