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I want to select all users that have an average timeout rate of less that 50%:

SELECT * 
FROM   user u 
WHERE  (SELECT Avg(gu.didtimeout) 
        FROM   (SELECT didtimeout 
                FROM   gameuser 
                WHERE  userid = u.userid 
                LIMIT  50) gu) < 0.5; 

However, I am getting this error:

ERROR 1054 (42S22): Unknown column 'u.userID' in 'where clause'

How might I make this query in legal MySQL?

EDIT 1:

Here are the relevant parts of the schemas of GameUser and User.

CREATE TABLE `User` (
  `userID` mediumint(8) unsigned NOT NULL AUTO_INCREMENT,
  PRIMARY KEY (`userID`)
) ENGINE=InnoDB AUTO_INCREMENT=1000 DEFAULT CHARSET=latin1;

CREATE TABLE `GameUser` (
  `gameID` mediumint(8) unsigned NOT NULL,
  `userID` mediumint(8) unsigned NOT NULL,
  `didTimeout` tinyint(1) unsigned NOT NULL
) ENGINE=InnoDB DEFAULT CHARSET=latin1;

EDIT 2:

Using MySQL 5.7.11.

  • Can you show the structure of your tables?\ – Cristian Oct 22 '16 at 23:49
  • @Cristian added – mntruell Oct 22 '16 at 23:52
  • try using joins as oppose to nested selects – waqasahmed Oct 22 '16 at 23:53
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SELECT * FROM user WHERE userid  in (SELECT gu.userid 
FROM gameuser gu
GROUP BY gu.userid
HAVING AVG(gu.didtimeout) < 0.5);
| improve this answer | |
4

To get the user ids, do this:

SELECT gu.userid 
FROM gameuser gu
GROUP BY gu.userid
HAVING AVG(gu.didtimeout) < 0.5;

You can join in additional user information if that is required.

| improve this answer | |
0

I don't have the reputation to comment, however the product of aggregate functions cannot be used in a WHERE clause, use HAVING instead.

SELECT Avg(gu.didtimeout) as average_timeout
FROM   user u
JOIN   gameuser gu
ON     gu.userid = u.userid
GROUP BY u.userid
HAVING  average_timeout < .5
LIMIT  50;
| improve this answer | |

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