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I have an SQL query something along the lines of:

SELECT CONVERT(varchar, DATEPART(month, titlStreaming)) + '/' + CONVERT(varchar, DATEPART(day, titlStreaming)) + '/' + CONVERT(varchar, DATEPART(year, titlStreaming)) AS [Day], 
COUNT(titlTitleID) AS Total 
FROM Title
GROUP BY DATEPART(year, titlStreaming), DATEPART(month, titlStreaming), DATEPART(day, titlStreaming)
ORDER BY DATEPART(year, titlStreaming) DESC, DATEPART(month, titlStreaming) DESC, DATEPART(day, titlStreaming) DESC

That generally returns a table like:

Day       |   Total
--------------------
4/23/2013 |       2
         ...
NULL      |   14234

What I would like to do is filter out the row that has a NULL value from returning. Because Day is a computed column obviously I cannot simply do a WHERE Day IS NOT NULL. I'll admit my knowledge of SQL is quiet lacking so any help or suggestions would be appreciated.

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Hi Nathan, if you get an answer that fixes your problem, don't forget to green check it. We like to help, but we also like reputation points :) –  PowerUser Apr 24 '13 at 15:37
    
Yeah, just have to wait on that 10 min time limit :) –  Nathan R Apr 24 '13 at 15:39

2 Answers 2

up vote 1 down vote accepted

as far as all dateparts depend on titlStreaming a where condition on titlStreaming should be enough.

....
From Title
where titlStreaming is not null
Group by ....
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Wow. Now I feel dumb for asking. That's incredibly simple and works perfectly. –  Nathan R Apr 24 '13 at 15:35

You can use a subquery:

select *
from (SELECT CONVERT(varchar, DATEPART(month, titlStreaming)) + '/' + CONVERT(varchar, DATEPART(day, titlStreaming)) + '/' + CONVERT(varchar, DATEPART(year, titlStreaming)) AS [Day], 
             COUNT(titlTitleID) AS Total 
     FROM Title
     GROUP BY DATEPART(year, titlStreaming), DATEPART(month, titlStreaming), DATEPART(day, titlStreaming)
    ) t
where [day] is not null
ORDER BY [day] DESC
share|improve this answer
    
That was my first thought too, however when I add HAVING [Day] IS NOT NULL I get Invalid column name 'Day'. –  Nathan R Apr 24 '13 at 15:33
    
@NathanR . . . I was originally confused on the database. The subquery or bummi's solution is fine. –  Gordon Linoff Apr 24 '13 at 17:33

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