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I hope someone can help me with my MySQL problem. I have a bug where if there is one left outer join on contribution table, result of amount is $100 (which is correct). If I include a second left outer join of another table (ikes). And I have 2 ikes, it doubles amount ($200), if I have 3 ikes, it triples ($300). For the life of me, I cannot figure this out. What do the ikes have any to do with the contribution amount? I've separated the queries and they work by themselves. But together they cause the problem.

Can anyone see the problem? I've included the query and the tables below.

         SELECT COUNT(i.type) AS xlike, 
                SUM(c.amount) AS amount, 
                w.* 
           FROM wish w 
LEFT OUTER JOIN contributions c ON w.ID=c.receiveid
LEFT OUTER JOIN ikes i ON w.ID=i.wishid 
          WHERE w.ID = 236

Tables:

CREATE TABLE IF NOT EXISTS `contributions` (
  `ID` int(11) NOT NULL AUTO_INCREMENT,
  `amount` decimal(19,2) NOT NULL,
  PRIMARY KEY (`ID`)
) ENGINE=MyISAM  DEFAULT CHARSET=latin1 AUTO_INCREMENT=3 ;

CREATE TABLE IF NOT EXISTS `ikes` (
  `ID` int(11) NOT NULL AUTO_INCREMENT,
  `type` enum('likes','dislikes') NOT NULL,
  `wishid` int(11) NOT NULL,
  PRIMARY KEY (`ID`)
) ENGINE=MyISAM  DEFAULT CHARSET=latin1 AUTO_INCREMENT=1;
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what's the structure of the wish table? –  nemesisfixx Apr 30 '11 at 5:55

1 Answer 1

up vote 1 down vote accepted

While most will tell you to use JOINs, you have to be aware that joins will duplicate parent records if more than one child record is associated to it. This is what can inflate values from aggregate functions.

I re-wrote your query as:

   SELECT w.*,
          COALESCE(x.amount, 0) AS amount,
          COALESCE(y.type, 0) AS type
     FROM WISH w 
LEFT JOIN (SELECT c.receiveid,
                  SUM(c.amount) AS amount
             FROM CONTRIBUTIONS c
         GROUP BY c.receiveid) x ON x.receiveid = w.ID
LEFT JOIN (SELECT i.wishid,
                  COUNT(i.type) AS type
             FROM IKES i
         GROUP BY i.wishid) y ON y.wishid = w.ID
    WHERE w.ID = 236
share|improve this answer
    
Thanks OMG! This worked like a charm. But I still would like to know why the Above code fails? I don't want to run into it again later. –  edgar Apr 30 '11 at 16:24
    
@edgar: I explained where the duplication was coming from - is there some other issue with your query that I missed? –  OMG Ponies Apr 30 '11 at 16:41
    
@edgar : Just take off the COUNT() and SUM() and look at the resulting tables without aggregation in your 3 cases -- then is should be quite clear. –  Hogan May 1 '11 at 1:32
    
this query works, but i don't think the subqueries are doing any filtering so it'll be slow if you have big contributions and likes tables –  Shouguo Li Apr 3 '13 at 1:14

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