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There is a scenario. There is an ask-and-answer website. An answerer can modify his answer, and the history of modification is saved on the server. Be default, only the latest version of each answer is displayed.

select * from answers where questionid='$questionid' group by answerer_id

So I can group all answers by answerer, then I need to select the latest version of each subgroup. How to achieve this?

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1  
MAX(date) would get the most recent, but you need to provide more detail regarding the columns in the ANSWERS table. –  OMG Ponies Dec 6 '09 at 6:38
    
What if I want to get the number of modifications in the meantime? –  Steven Dec 6 '09 at 6:50

3 Answers 3

up vote 0 down vote accepted

The GROUP BY clause seems to just use the first available row, so you could try using a sub-query to re-arrange them so the latest answer is on top.

SELECT * 
FROM (
    SELECT * FROM `answers`
    WHERE questionid='$questionid'
    ORDER BY answerer_id DESC
) as `dyn_answers` 
GROUP BY answerer_id
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Do you mean SELECT * FROM ( SELECT * FROM answers WHERE questionid='$questionid' ORDER BY answer_id DESC ) as dyn_answers GROUP BY answerer_id –  Steven Dec 6 '09 at 6:53
    
That is exactly what I wrote, just without the back-ticks on the table names... –  Atli Dec 6 '09 at 6:56
    
P.S., you can do SELECT *, COUNT(answerer_id) as 'num_revisions' to get the number of revisions. –  Atli Dec 6 '09 at 6:58

Do a self-join and find the user/question with no higher id:

SELECT a.*
FROM answers AS a
    LEFT JOIN answers AS b
    ON a.answerer_id = b.answerer_id
        AND a.question_id = b.question_id
        AND a.id < b.id
WHERE
    b.id IS NULL

Or, if you have a timestamp you can use that.

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If you are using autoincrement ids, you could select based on the highest id.

Possible SQL:

select * from answers where questionid='$questionid' 
    and id in (select max(id) from answers group by answerer_id)
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It is a solution. –  Steven Dec 6 '09 at 6:46
    
What if I want to get the number of modifications in the meantime? –  Steven Dec 6 '09 at 6:48

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