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I have 2 tables of concern - 'videoComments', 'storyComments'.

I need to find the 'posterID' that has the most entries in videoComments and storyComments. Here's the code I have so far, but it only calls videoComments:

$sql = "SELECT (SELECT posterID 
                  FROM videoComments 
              GROUP BY posterID 
              ORDER BY COUNT(posterID) DESC LIMIT 1) ) AS mostSocialUser ";

How do I pull it and compare the COUNT of posterID from both tables?

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2 Answers 2

up vote 0 down vote accepted


   SELECT x.posterid,
          COUNT(y.posterid) + COUNT(z.posterid) AS numComments
     FROM (SELECT vc.posterid
             FROM VIDEOCOMMENTS vc
           SELECT sc.posterid
             FROM STORYCOMMENTS sc) x
LEFT JOIN VIDEOCOMMENTS y ON y.posterid = x.posterid
LEFT JOIN STORYCOMMENTS z ON z.posterid = x.posterid
 GROUP BY x.posterid
 ORDER BY numComments DESC
    LIMIT 1
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that did the trick! now to figure out WHAT it means! :-) thank you OMG Ponies!!! –  Joel Hackney May 11 '11 at 1:43
@Joel Hackney: x is a derived table that contains a unique list of all the posters, because a poster might only exist in one of the two tables. That list of users is then used to LEFT JOIN to the tables, in order to count respective comments. The ORDER BY and LIMIT ensures that the single highest poster is returned, but that's not to say there couldn't be ties... –  OMG Ponies May 11 '11 at 1:47
before yesterday, I didn't even know about nested statements, so this is all new and wonderful stuff to me… thank you for the explaination, and the answer, it works wonderfully - i don't care about ties, but I can see how that's a common next step. –  Joel Hackney May 11 '11 at 2:24

Try this:

    SELECT posterID FROM (
        SELECT posterID FROM videoComments 
        SELECT posterID FROM storyComments
    ) GROUP BY posterID 
) AS mostSocialUser
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Hey Andrew, Thanks bud, I was playing with UNION but no love… either way, your suggestion returns a mysql_error() = "Every derived table must have its own alias." Any ideas? –  Joel Hackney May 11 '11 at 1:33

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