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I was wondering if it is possible to use a bound joined table in a CASE statment when declaring a column in a select statment. I have included a simplified example of my problem in the snippet below.Any ideas? Thanks!

SELECT  M.MID 
    ,[Count] =  CASE (SELECT COUNT(*) FROM Refund R2 
            WHERE R2.RefundID = R.RefundID) = 1
                        THEN 'One'
                        ELSE 'Many'
                        END

FROM #temp T
JOIN Refund R ON R.RefundID = T.RefundID

The "WHERE R2.RefundID = R.RefundID says that the "R.RefundID cannot be bound.

share|improve this question
    
If you take out the word CASE you have a valid query... – Parris Varney Aug 4 '11 at 20:10
    
It seems like you need a CASE WHEN (for SQL Server at least) – Narnian Aug 4 '11 at 20:11
    
What is the alias R2 supposed to refer to? I don't see it anywhere else in your query. – Joe Stefanelli Aug 4 '11 at 20:16
up vote 1 down vote accepted

If you are using SQL Server 2005 or later, you could try a different approach:

SELECT
  M.MID, 
  [Count] = CASE COUNT(*) OVER (PARTITION BY R.RefundID)
    WHEN 1 THEN 'One'
    ELSE 'Many'
  END
FROM #temp T
JOIN Refund R ON R.RefundID = T.RefundID
share|improve this answer

You have a bad alias. You have an R but not an R2, which is referenced:

SELECT  M.MID 
        ,[Count] =  CASE WHEN (SELECT COUNT(*) FROM ReferralTypeKey R2
                               WHERE R2.RefundID = R.RefundID) = 1
                               THEN 'One'
                               ELSE 'Many'
                               END

FROM #temp T
JOIN Refund R ON R.RefundID = T.RefundID
share|improve this answer
    
Your are right copy error i fixed it here in the site but it doesnt work still – JBone Aug 4 '11 at 20:17
    
@Jbone - there is now that you corrected it... – JNK Aug 4 '11 at 20:18
    
@Jbone - I also corrected the CASE syntax, which was incorrect. – JNK Aug 4 '11 at 20:18
    
@Jbone - can you clarify "Doesn't work"? Is it the same error message? What's the line number of the error indicate? – JNK Aug 4 '11 at 20:21

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