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I am trying to write a query for a large dataset with many joins and having trouble accomplishing a particular piece without some sort of subquery, which I am trying to avoid.

For an example table with columns ID, Size, Item there may be multiple records with the same ID. I want to return the record per ID which has the largest Size.

ID  Size    Item
1   5   a
1   10  b
2   3   c
2   6   d
2   11  e
3   2   f

Expected result

ID  Size    Item
1   10  b
2   11  e
3   2   f

I've tried various group and having approaches without success.

Using a subquery I can do it like this but for a large dataset I'd prefer not to do it this way

select id, size, item
from test
where size = (select max(size) from test t2 where id = test.id)

Any suggestions?

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5 Answers

up vote 5 down vote accepted

This should satisfy your requirements: For each id, return only the row with the largest size

SELECT test.id, test.size, test.item
FROM test
INNER JOIN (
    SELECT id, MAX(size) AS size
    FROM test
    GROUP BY id
) max_size ON max_size.id = test.id AND max_size.size = test.size
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WITH    T AS ( SELECT   * ,
                        ROW_NUMBER() OVER ( PARTITION BY ID 
                                                ORDER BY Size DESC ) AS RN
               FROM     YourTable
             )
    SELECT  ID ,
            Size ,
            Item
    FROM    T
    WHERE   RN = 1
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SELECT id, item, MAX(size)
FROM Test
GROUP BY id, item

Assuming item is the same for every occurrence of that id.

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Item is different which is what makes this more complicated. I have added example data to make this clearer. –  Dan Roberts Aug 26 '11 at 20:46
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select id, max(size), item
from test
group by id, item

Edit: Ah, the data you just added changes this and my above query no longer applies.

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You can use this query(I mean your query) but it's necessary to create composite index (id, size)

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.... and the query is?!?!? Where?!?!? .... –  marc_s Aug 26 '11 at 20:47
    
Provided query is optimal for me. So I have added suggestion about the one using. –  Andrej L Aug 26 '11 at 20:48
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