Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Well, it can, but I can't query ;)

Here's my query:

SELECT code.id AS codeid, code.title AS codetitle, code.summary AS codesummary, code.author AS codeauthor, code.date, code.challengeid, ratingItems.*, FORMAT((ratingItems.totalPoints / ratingItems.totalVotes), 1) AS rating, code_tags.*, tags.*, users.firstname AS authorname, users.id AS authorid, GROUP_CONCAT(tags.tag SEPARATOR ', ') AS taggroup,
    COUNT(DISTINCT comments.codeid) AS commentcount
FROM (code)
JOIN code_tags ON code_tags.code_id = code.id
JOIN tags ON tags.id = code_tags.tag_id
JOIN users ON users.id = code.author
LEFT JOIN comments ON comments.codeid = code.id
LEFT JOIN ratingItems ON uniqueName = code.id
WHERE `code`.`approved` = 1
GROUP BY code_id
ORDER BY date desc
LIMIT 15 

The important line is the second one - the one I've indented. I'm asking it to COUNT the number of comments on a particular post, but it doesn't return the right number. For example, something with two comments will return "1". Something with 8 comments by two different authors will still return "1"...

Any ideas?

Thanks!

Jack

EDIT: Forgot to mention. When I remove the DISTINCT part, something with 8 comments from two authors returns "28". Sorry, I'm not a MySQL expert and don't really understand why it's returning that :(

share|improve this question

1 Answer 1

up vote 4 down vote accepted

You group by code.id and in each group you count (DISTINCT comments.codeid), but comments.codeid = code.id as defined in JOIN, that's why you always get 1.

You need to count by some other field on comments... if there is a primary surrogate key, this is the way to go COUNT(comments.commentid).

Also, if the comments in every group are known to be distinct, a simple COUNT(*) should work.

share|improve this answer
    
Brilliant, thanks Yacoder - I'm now using COUNT (DISTINCT comments.id) which works great :) –  Jack W Sep 5 '10 at 12:38

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.