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i stuck with a problem where i couldn't find an answer so far.

I have a table like this:

column1 | column2 | column3
---------------------------
name1   | 3       | 12
name1   | 3       | 10
name1   | 2       | 17
name2   | 3       | 15
name2   | 3       | 15
name2   | 2       | 11

How can i delete the rows, which have not the highest values in cloumn2 and column3,(Column2 has priority)?

The result should look like:

column1 | column2 | column3
---------------------------
name1   | 3       | 12
name2   | 3       | 15
name2   | 3       | 15

thanks a lot (in advance)

share|improve this question
    
What have you tried? I suggest you split your complex problem in several simpler problems. –  Jocelyn Feb 21 '13 at 18:17
    
I can separate the problem by deleting duplicates later on using ALTER IGNORE TABLE table ADD UNIQUE KEY idx1(column1, column2, column3) - now i update my 1st post –  user2096557 Feb 21 '13 at 18:20

2 Answers 2

up vote 0 down vote accepted

You could use a query like this:

DELETE FROM yourtable
WHERE
  (column1, column2, column3) NOT IN (
    SELECT * FROM (
      SELECT yourtable.column1, yourtable.column2, max(column3) max_column3
      FROM
        yourtable INNER JOIN (
          SELECT   column1, max(column2) max_column2
          FROM     yourtable
          GROUP BY column1) mx
        ON yourtable.column1=mx.column1
           AND yourtable.column2=mx.max_column2
      GROUP BY
        yourtable.column1) s
  )

Please see fiddle here.

share|improve this answer
    
This one works exactly. However, i'm not sure if i have asked the right question. Thanks a lot –  user2096557 Feb 25 '13 at 9:50

Deleting makes it confusing but these are the rows you want to keep:

SELECT 
    a.col1, a.col2, b.col3 
FROM
    (select col1, max(col2) as col2 from table1 group by col1) as a INNER JOIN
    (select col1, col2, max(col3) as col3 from table1 group by col1, col2) as b 
    ON 
        a.col1 = b.col1 AND a.col2 = b.col2;

You could simply delete the rows that are not in this query as noted by @fthiella.

see this link.

share|improve this answer
    
i didn't try it out yet, because the answer above from fthiella works fine. I'll try it later, when i have more time to play around with alternatives. Thanks a lot –  user2096557 Feb 25 '13 at 9:51

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