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I have a table with column a having not necessarily distinct values and column b having for each value of a a number of distinct values. I want to get a result having each value of a appearing only once and getting the first found value of b for that value of a. How do I do this in sql server 2000?

example table:

a  b
1  aa
1  bb
2  zz
3  aa
3  zz
3  bb
4  bb
4  aa

Wanted result:

a  b
1  aa
2  zz
3  aa
4  bb

In addition, I must add that the values in column b are all text values. I updated the example to reflect this. Thanks

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2 Answers 2

;with cte as
    (
  select *,
    row_number() over(partition by a order by a) as rn
  from yourtablename
    )    
    select  
a,b
from cte 
where rn = 1 
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Works brilliantly, did not know about the row_number() function! –  Hein du Plessis Jan 3 '12 at 10:45

SQL does not know about ordering by table rows. You need to introduce order in the table structure (usually using an id column). That said, once you have an id column, it's rather easy:

SELECT a, b FROM test WHERE id in (SELECT MIN(id) FROM test GROUP BY a)

There might be a way to do this, using internal SQL Server functions. But this solution is portable and more easily understood by anyone who knows SQL.

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2  
+1 on mentioning the fact that you can't assume the order of records to be the same as the order of inserts. –  Lieven Keersmaekers Apr 6 '11 at 9:22
    
Use the CTE way. This is a much more inefficient way to do this. –  wes.stueve Aug 31 '12 at 10:12

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