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I'm trying to create a query that returns the closest (above) price for each id from table price for every date in table date.

date has these dates in it:

date
2010-11-25
2010-11-24
2010-11-10

price is as follows:

id  date        price
A   2010-11-26  24.99
A   2010-11-24  27.99
A   2010-11-13  22.12
B   2010-11-26  26.51
B   2010-11-24  23.24
B   2010-11-22  27.95

So for 2010-11-25 I should get

id  date        price
A   2010-11-26  24.99
B   2010-11-26  26.51

for 2010-11-10

id  date        price
A   2010-11-13  22.12
B   2010-11-22  27.95

for 2010-11-24

id  date        price
A   2010-11-24  27.99
B   2010-11-24  23.24

etc.

I believe getting the result for a given date is doable (maybe group by...having), however I am looking for a solution that does it for all the dates.

EDIT:

There was an error in the example, corrected...

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I really can't see the logic in those 'B' records. Why should you get '2010-11-26' for '2010-10-25'? –  GolezTrol Aug 24 '11 at 21:07
    
@Golez Because that's the closest date for id B (I am guessing here) –  NullUserException Aug 24 '11 at 21:09
    
I'd think so, if I read the explanation, but 2010-11-22 seems closer to me. –  GolezTrol Aug 24 '11 at 21:14
    
@Golez Indeed. It might be just an error. –  NullUserException Aug 24 '11 at 21:19
    
I think so. And I based my answer on that assumption. :) –  GolezTrol Aug 24 '11 at 21:22
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3 Answers 3

up vote 2 down vote accepted

I think you mean this, but there may be an error in your example. (Or misunderstand it).

select
  id, date,price
from
  (select
    p.id,
    p.date,
    p.price,
    dense_rank() over (partition by d.date, p.id order by p.date) as rank
  from
    date d
    inner join price p on p.date > d.date)
where
  rank = 1
share|improve this answer
    
I think you are generating more rows than there should be –  NullUserException Aug 24 '11 at 21:58
    
I think that may have been caused by order by d.date which should be order by p.date. Fixed this. Although I got to admit I don't have Oracle here and Notepad is a lousy query-tester. :) –  GolezTrol Aug 24 '11 at 22:02
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This should work for you, I think:

select x.date_1 as candidate_date ,
       t.*
from ( select d."date"        as date_1  ,
              p.id ,
              min( p."date" ) as date_2
        from      "date" d
        left join price  p on p."date" >= d."date"
        group by p.id     ,
                 d."date"
     ) x
left join price t on t.id     = x.id
                 and t."date" = x.date_2
order by 1,2,3

The virtual table in the from clause should give you 1 row for every "id" in the price table with a date greater than or equal to your candidate date from the date table.

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I think you are also generating more rows than there should be –  NullUserException Aug 24 '11 at 21:56
    
It's important to group by the correct criteria. –  Nicholas Carey Aug 24 '11 at 22:06
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SELECT
    d.date AS searchDate
    p.id
    p.date
    p.price
FROM 
    date d
  ,                              --- this is a CROSS JOIN
    ( SELECT DISTINCT id
      FROM price
    ) product
  JOIN
    price p
      ON  p.id = product.id
      AND p.date =
          ( SELECT MIN(p2.date)
            FROM price AS p2
            WHERE p2.date >= d.date
          )
share|improve this answer
    
This gives me a syntax error –  NullUserException Aug 24 '11 at 21:56
    
@NullUserException: Can you try replacing CROSS JOIN with a comma , ? –  ypercube Aug 24 '11 at 22:06
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