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I need a SQL query that returns the top 2 Plans by PlanDate per ClientID. This is all on one table where PlanID is the PrimaryID, ClientID is a foreignID.

This is what I have so far -->

SELECT *
FROM [dbo].[tblPlan] 
WHERE [PlanID] IN (SELECT TOP (2) PlanID FROM [dbo].[tblPlan] ORDER BY [PlanDate] DESC)

This, obviously, only returns 2 records where I actually need up to 2 records per ClientID.

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2 Answers 2

up vote 4 down vote accepted

This can be done using ROW_NUMBER:

SELECT PlanId, ClientId, PlanDate FROM (
    SELECT ROW_NUMBER() OVER (PARTITION BY ClientId ORDER BY PlanDate DESC) rn, *
    FROM [dbo].[tblPlan]
) AS T1
WHERE rn <=2

Add any other columns you need to the select to get those too.

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Edit, Dec 2011. Corrected CROSS APPLY solution

Try both to see what is best

SELECT *
FROM
  ( -- distinct ClientID values
   SELECT DISTINCT ClientID 
   FROM [dbo].[tblPlan]
  ) P1
  CROSS APPLY
  ( -- top 2 per ClientID 
   SELECT TOP (2) P2.PlanID
   FROM [dbo].[tblPlan] P2
   WHERE P1.ClientID = P2.ClientID
   ORDER BY P2.[PlanDate] DESC
  ) foo

Or

;WITH cTE AS (
  SELECT
     *,
     ROW_NUMBER () OVER (PARTITION BY clientid ORDER BY [PlanDate] DESC) AS Ranking
  FROM
     [dbo].[tblPlan]
)
SELECT * FROM cTE WHERE Ranking <= 2
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Hmm, thanks but I get this Msg 102, Level 15, State 1, Line 5 Incorrect syntax near ')'. –  Refracted Paladin Feb 2 '10 at 20:55
    
@Refracted Paladin: my mistake, need alias on "applied" table –  gbn Feb 2 '10 at 20:56
    
Interesting, your Second option and Mark Byers option each return 7062 rows. Your first option returns 21948 rows. Idea on the disparity? –  Refracted Paladin Feb 2 '10 at 20:58
    
@Refracted Paladin: fixed it (eventually!) –  gbn Dec 14 '11 at 14:24

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