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I have a table x that's like the one bellow:

id | name | observed_value |
1  | a    | 100            |
2  | b    | 200            |
3  | b    | 300            |
4  | a    | 150            |
5  | c    | 300            |

I want to make a query so that in the result set I have exactly one record for one name:

  (1, a, 100)
  (2, b, 200)
  (5, c, 300)

If there are multiple records corresponding to a name, say 'a' in the table above, I just pick up one of them.

In my current implementation, I make a query like this:

select x.* from x , 
(select distinct name, min(observed_value) as minimum_val
from x group by name) x1
where x.name = x1.name and x.observed_value = x1.observed_value;

But I think there may be some better way around, please tell me if you know, thanks in advance.

EDIT

I am using MySQL and my table contains more than the three columns shown here, so it seems to me that the inner query can not fulfill my requirement.

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I'm positive this has been asked before, but I can't find it :( –  Michael Mrozek May 31 '10 at 6:01
    
Which database engine are you using (e.g. MySQL, MS-SQL)? –  Senseful May 31 '10 at 6:33
    
The distinct in your inner query is extraneous, group by will guarantee that you will only get distinct values. Any duplicates will be grouped together. –  Senseful May 31 '10 at 6:40

4 Answers 4

up vote 3 down vote accepted
SELECT  t.*
FROM    (
        SELECT  DISTINCT name
        FROM    mytable
        ) q
JOIN    mytable t
ON      t.id =
        (
        SELECT  id
        FROM    mytable ti
        WHERE   ti.name = q.name
        ORDER BY
                ti.name, ti.observed_value, ti.id
        LIMIT 1
        )

Create an index on (name, observed_value, id) for this query to be efficient.

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Thanks for you answer. But when I run this, it is slower than my current query which is in my question descritpion. –  satoru May 31 '10 at 9:35
    
@Satoru: did you create the index I suggested? –  Quassnoi May 31 '10 at 9:45
    
Not yet. But I think my solution will also speed up if I create those indexes, or am I missing something? –  satoru May 31 '10 at 10:00
    
@Satoru: yes it will. Your solution, BTW, is fine, unless it's possible for your model to have duplicates of observed_value. For instance, if record 4 had observed value of 100 (instead of 150), your solution would return two records for a, while mine is guaranteed to return only one (in case of a tie, the least id is returned). You may want to read this article in my blog: explainextended.com/2009/11/25/… –  Quassnoi May 31 '10 at 13:00
    
Thanks, your explanation is insightful to me :) –  satoru May 31 '10 at 13:38

Use just group by

select id, name, min(observed_value) as minimum_val  from x group by name;
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1  
This query will result in an error: column id is not part of the group by clause and there is no aggregate function specified for it. –  Tommi May 31 '10 at 6:09
    
@Tommi Unless the OP is using MySQL –  Martin Smith May 31 '10 at 8:50
2  
@Martin: in MySQL, this query will not fail, however, MIN(observed_value) and id are not guaranteed to originate from the same record (and most probably won't) –  Quassnoi May 31 '10 at 9:28

Since you didn't specify which DBMS you are using, I'll provide a couple of solutions:

If you are using a DBMS that has the FIRST() aggregate function, you could use:

SELECT 
  FIRST(id) as id, 
  name, 
  FIRST(observed_value) as observed_value 
FROM x
GROUP BY name;

If you are using MySQL, you could use ORDER BY in conjunction with LIMIT to get something similar to a FIRST() aggregate function.

SELECT
  ( SELECT x2.id 
    FROM x as x2 
    WHERE x2.name = x.name 
    ORDER BY observed_value ASC 
    LIMIT 1
  ) AS id,
  name,
  MIN(observed_value) as observed_value
FROM x
GROUP BY name
share|improve this answer

Your query looks to be too complex for your purpose... just group the query by column name, and use an aggregate function for rest of the columns. For example

SELECT name, min(id), min(observed_value) FROM x GROUP BY name

(Obviously, choose aggregate function other than min if you want to get other values for each name.)

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