0

Get all the rooms which this "user" is part of and list each room details including its

  • id (roomId)
  • name (roomName)
  • total active users of this room (activeUsers)
  • total users included in the room (totalUsers)

Provided with the table structure below:

Table:users
+---------+-------------------------+
| id(int) |  active(bool/tiny int)  |
+---------+-------------------------+

Table:rooms
+---------+----------------------+
| id(int) |  name(varchar(255))  |
+---------+----------------------+

Table:room_members
+-------------+---------------+
| userId(int) |  roomId(int)  |
+-------------+---------------+

I'm kind of lost with my SQL so far:

SELECT
    rooms.id,
    rooms.name,
    (SELECT SUM(users.active) FROM users WHERE room_members.roomId = rooms.id) activeUsers,
    (SELECT COUNT(users.id) FROM users WHERE room_members.roomId = rooms.id) totalUsers
FROM room_members
INNER JOIN rooms
ON room_members.roomId = rooms.id
INNER JOIN users
ON room_members.userId = users.id
WHERE room_members.userId = 1

Basing from this data:

sample users data

I can conclude that I've got the wrong results.

capture of mysql query

I guess I need some help from you guys.

2
1

You could use a dynamic table with group by ( and a join between user and room_members)

SELECT
  rooms.id,
  rooms.name,
  t1.activeUsers,
  t1.totalUsers
FROM room_members 
INNER JOIN rooms  ON room_members.roomId = rooms.id
INNER JOIN users  ON room_members.userId = users.id
INNER JOIN  (  
                SELECT roomId, SUM(users.active)  as activeUsers, COUNT(users.id) as totalUsers
                FROM users 
                INNER JOIN room_members on users.id = room_members.userId
                group by roomId
            ) t1 on t1.roomID = rooms.id
WHERE room_members.userId = 1
3
  • Hi! I have edited a little your answer and I think you got it right. As of now, I'm satisfied with the query. Thank you :) – mr5 Oct 22 '16 at 12:07
  • @mr5 . well if my answer is correct and/or useful please marki is as accepted and/or rate as useful .... thanks – scaisEdge Oct 22 '16 at 12:10
  • Done. Thanks for the heads-up! – mr5 Oct 22 '16 at 12:12

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