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Consider the following data set in a "book" table (group_id, title, check_out_date):

> 1 - "Moby Dick" - 2010-01-01
> 1 - "The Jungle Book" - 2011-05-05
> 1 - "Grapes of Wrath" - 1999-01-12
> 2 - "Huckleberry Finn" - 2000-01-05
> 2 - "Tom Sawyer" - 2011-06-12

I need to write a query that will return the record with the oldest "check_out_date" value from each group (Group 1 and Group 2). This should be fairly easy -- I just don't know how to do it.

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2 Answers 2

up vote 2 down vote accepted

I think you need something like this.

 select group_id, title, check_out_date from book b1 
       where
       check_out_date = 
       (select MIN(check_out_date) 
       from book b2 where b2.group_id =  b1.group_id)
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I think you mean MIN instead of MAX; MAX will return you the newest date, not the oldest. Other than that, the SQL does the job required! –  Nick Shaw Jun 15 '11 at 19:54
    
Yup, thanks @NickShaw. Thought we were looking for the newest. D'oh. Fixed –  NullRef Jun 15 '11 at 20:00

Now that postgres supports windowing functions.

SELECT group_id, title, checkout_date) FROM
 (SELECT group_id, 
  title, 
  checkout_date, 
  rank() OVER (PARTITION BY group_id ORDER BY checkout_date) AS rk
 ) AS subq
WHERE rk=1;

You probably want an index on (group_id, checkout_date), perhaps vice versa. I haven't banged on windowing enough to know what the planner tries to do.

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+1 windowing functions ftw –  justis Jun 15 '11 at 21:54

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