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I need to a condition on my select where I would get the latest (id) row if the query will return more than one result. (IBM db2)

I.e:

ID--NUM1--COUNTRY--NUM2

1--123--SE--123

2--123--US--123

Instead of having the two rows returned I would like to have row 2 returned.

EDIT:

My query looks like this now:

SELECT   LET1.INSTANCE_ID, COU.CODE, SUP1.SUPPLIERID, PAR.PARTNUMBER 

FROM     TABLES

WHERE    TABLEJOIN_CONDITIONS

AND      TABLE.COLUMN IN ('11994', '12345' and so on)

But this query can return duplicate rows.

Like:

ID--NUM1--COUNTRY--NUM2

1--123--SE--11994 (11994 appearing twice, then I want the latest row which is row number 2)

2--123--US--11994
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So you want the row with the greatest ID ? –  Alex K. Aug 3 '12 at 12:01
    
@AlexK exactly! –  Peter Warbo Aug 3 '12 at 12:05

2 Answers 2

Sort on the id in descendng order, and get only the first record.

I'm not up to date on db2 syntax, but something like:

SELECT id, num1, country, num2
FROM SomeTable
ORDER BY ID DESC
FETCH FIRST 1 ROW ONLY
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This of course assumes he's directly querying per num1/country/num2, or it's only going to give him one row total, as opposed to one row per tuple. –  Clockwork-Muse Aug 3 '12 at 16:22

I'm a little confused on which numbers make it "unique", but if you just wanted the latest ID for each NUM1, NUM2 combination, then you could do something like:

SELECT *
FROM (
    SELECT A.*, 
           ROW_NUMBER() OVER (PARTITION BY NUM1, NUM2 ORDER BY ID DESC) AS RN
    FROM YOUR_TABLE A
)
WHERE RN = 1

The sub-select will assign a row number for each num1, num2 combination, order it by the ID, and only pick the first row for that combination.

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