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My table is:

╔════╦════════╦════════════╦════════════╦════════╗
║ ID ║ TESTID ║ SESSIONID  ║ TOTALSCORE ║ USERID ║
╠════╬════════╬════════════╬════════════╬════════╣
║  1 ║     10 ║ 55cff3fbfs ║        250 ║    972 ║
║  2 ║     10 ║ 55cff3fbfs ║        440 ║    972 ║
║  3 ║     11 ║ 66fdf3fbfs ║        500 ║    972 ║
║  4 ║     11 ║ 66fdf3fbfs ║        700 ║    972 ║
║  5 ║     12 ║ 77ksfjskfs ║        800 ║    972 ║
║  6 ║     12 ║ 77ksfjskfs ║        700 ║    972 ║
║  7 ║     13 ║ 8fsfskffsf ║        900 ║    972 ║
║  8 ║     13 ║ 8fsfskffsf ║        750 ║    972 ║
╚════╩════════╩════════════╩════════════╩════════╝

I need to get maxscore full rows with by giving the userid

Result would be:

id  TestId sessionId     TotalScore   UserId
---|-----|------------|------------|---------
2  | 10  | 55cff3fbfs |     440    | 972
4  | 11  | 66fdf3fbfs |     700    | 972
5  | 12  | 77ksfjskfs |     800    | 972
7  | 13  | 8fsfskffsf |     900    | 972

So Please help me.......how to write the query/stored procedure in MYSQL

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1 Answer 1

up vote 4 down vote accepted

The idea of having a subquery is that it gets the greatest totalScore for each TestID. The result of which is then joined to the table itself provided that it match on the following condition, that the TestID and greatest TotalScore from the subquery matches to the values on the original table.

SELECT  a.*
FROM    tableName a
        INNER JOIN
        (
            SELECT TestID, MAX(TotalScore) maxScore
            FROM tableName
            GROUP BY TestID
        ) b ON  a.TestID = b.TestID AND
                a.TotalScore = b.maxScore

The Output

╔════╦════════╦════════════╦════════════╦════════╗
║ ID ║ TESTID ║ SESSIONID  ║ TOTALSCORE ║ USERID ║
╠════╬════════╬════════════╬════════════╬════════╣
║  2 ║     10 ║ 55cff3fbfs ║        440 ║    972 ║
║  4 ║     11 ║ 66fdf3fbfs ║        700 ║    972 ║
║  5 ║     12 ║ 77ksfjskfs ║        800 ║    972 ║
║  7 ║     13 ║ 8fsfskffsf ║        900 ║    972 ║
╚════╩════════╩════════════╩════════════╩════════╝
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1  
Thanks you very much Kuya John. It was great help to me. –  Srinivas Dec 8 '12 at 7:46
    
you are welcome :D –  John Woo Dec 8 '12 at 7:46

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