1
CREATE FUNCTION [dbo].[Test] (@ID INT, @VAL INT)
RETURNS @Return TABLE (ID INT, VAL INT)
AS
BEGIN
    INSERT INTO @Return
    SELECT @ID, @VAL
RETURN;
END
GO
DECLARE @T1 TABLE (ID INT IDENTITY(1,1), VAL INT)
DECLARE @T2 TABLE (ID INT, VAL INT)

INSERT INTO @T1
SELECT 1
UNION ALL
SELECT 2
UNION ALL
SELECT 3
UNION ALL 
SELECT 4

INSERT INTO @T2
SELECT 1,1
UNION
SELECT 2,4
UNION
SELECT 3,3

SELECT  *
FROM    @T1 T1
LEFT JOIN @T2 T2 ON T1.[ID] = T2.[ID]
LEFT JOIN [dbo].[Test] (1, COALESCE(T2.[VAL],T1.VAL)) T ON T1.ID = T.ID
GO

DROP FUNCTION [dbo].[Test]
GO

Goal:

To pass in T2.Val into the 2nd param of the fx if available, else pass in T1.Val. Changing the FX definition is not possible.

I can't seem to get this work. I tried ISNULL and that doesn't work either.

3

If you want to call a table valued function, use APPLY (OUTER APPLY in this case because you are using LEFT JOIN):

SELECT  *
FROM @T1 T1 LEFT JOIN
     @T2 T2 
     ON T1.[ID] = T2.[ID] OUTER APPLY
     [dbo].[Test](1, COALESCE(T2.[VAL], T1.VAL) ) T;

If you want an additional condition, then use a WHERE clause:

SELECT  *
FROM @T1 T1 LEFT JOIN
     @T2 T2 
     ON T1.[ID] = T2.[ID] OUTER APPLY
     [dbo].[Test](1, COALESCE(T2.[VAL], T1.VAL) ) T
WHERE t1.ID = T.ID;

That last condition seems strange, though. Why not just pass T1.ID into the function directly?

| improve this answer | |
  • That works!! Thanks and the reason is, the real FX has more params and such so I tried to mimic the basic stuff with the above sample code. Thanks again, will mark as answer when time limit expires. – 007 Apr 14 '17 at 16:29

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.