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In the table below, I'm not sure how to do this but how do I go about writing the query which returns the latest row for each unique PhoneNumber?

PhoneNumber    MessageText               ReceiveTime        
-------------  ------------------------  -------------------
+639148186649  Delivery please           2013-03-19 01:12:55
+639148186649  I need this item          2013-03-22 02:15:01
+639148186649  I need more of this item  2013-03-23 12:01:02
+639194357455  How much for this...      2013-03-24 16:36:33
+639194357455  What time do you open?    2013-03-24 17:55:07
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3 Answers 3

I found the answer!

SELECT s1.PhoneNumber, s1.MessageText, s1.ReceiveTime FROM mytable s1 LEFT JOIN mytable s2
    ON (s1.PhoneNumber = s2.PhoneNumber AND s1.ReceiveTime < s2.ReceiveTime)
    WHERE s2.ReceiveTime IS NULL ORDER BY ReceiveTime DESC
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You cannot group by one column and return other columns that are not dependent on the group. See the answers to this question for some hints.

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I think this should work...

SELECT *
FROM PhoneTable
GROUP BY PhoneNumber
HAVING ReceiveTime = MAX(ReceiveTime)
ORDER BY ReceiveTime

..or you may have to do something like this...

SELECT PhoneNumber, MessageText, ReceiveTime
FROM PhoneTable t
WHERE ReceiveTime = (SELECT MAX(ReceiveTime)
                     FROM t
                     GROUP BY PhoneNumber
                     HAVING PhoneNumber = t.PhoneNumber)
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This use of GROUP BY should not be encouraged. –  Kermit Mar 29 '13 at 23:04
    
Both wrong. Error Code : 1242 Subquery returns more than 1 row –  enchance Mar 29 '13 at 23:14

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