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I want to return date of max value for a particular id. Look at this table.

ID       Date       Value 
___      ____       _____
4545     9/17/12    5
4545     9/16/12    100
4545     9/15/12    20
2121     9/16/12    12
2121     9/15/12    132
2121     9/14/12    4
9999     9/16/12    45
9512     9/15/12    128
9512     9/14/12    323
2002     9/17/12    45

The results should be:

ID       Date       Value 
___      ____       _____ 
4545     9/16/12    100       date for ID(4545) for max value(100)  is "9/16/12"
2121     9/15/12    132       date for ID(2121) for max value1(32)  is "9/15/12"
9999     9/16/12    45        date for ID(9999) for max value(45)   is "9/16/12"
9512     9/14/12    323       -||-
2002     9/17/12    45        -||-

How i get this date?

share|improve this question
    
What platform/language/database? And what have you tried? It's hard to reply without details. –  Matt Johnson Sep 14 '13 at 16:03
    
Language sql, database MySQL. I need to copy date of max value for particular id from onne table to another table. I am beginer, so dont know what more do you need to help me. But thx for help :) –  Lukáš Pichl Sep 14 '13 at 16:15
    
This is very similar to this question although not an exact duplicate because it's taking the max date rather than the max value you are looking for. But you should be able to adjust the answer accordingly. –  Matt Johnson Sep 14 '13 at 16:32

2 Answers 2

up vote 0 down vote accepted

Calculate the set of IDs and their maximum values, then intersect that with your original set.

SELECT * FROM t
JOIN (SELECT id, MAX(value) AS value FROM t GROUP BY id) AS max_t
USING (id, value)
share|improve this answer

Assuming you are using SQL, you should try something like this (this is MS SQL syntax):

SELECT [ID], [Date], [Value]
FROM [YourTable] AS [SRC]
WHERE NOT EXISTS (SELECT *
                  FROM [YourTable] AS [OTHER]
                  WHERE [OTHER].[ID] = [SRC].[ID] AND [OTHER].[Date] > [SRC].[Date])

This is probably not the most efficient way to do this, but it should work...

share|improve this answer
    
For me is all good. I try it, thx :) –  Lukáš Pichl Sep 14 '13 at 16:18

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