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In TSql what is the recommended approach for grouping data containing nulls?

Example of the type of query:

Select Group, Count([Group]) 
From [Data] 
Group by [Group]

It appears that the count(*) and count(Group) both result in the null group displaying 0.

Example of the expected table data:

Id, Group
---------
1 , Alpha
2 , Null
3 , Beta
4 , Null

Example of the expected result:

Group, Count
---------
Alpha, 1
Beta,  1
Null,  0

This is the desired result which can be obtained by count(Id). Is this the best way to get this result and why does count(*) and count(Group) return an "incorrect" result?

Group, Count
---------
Alpha, 1
Beta,  1
Null,  2

edit: I don't remember why I thought count(*) did this, it may be the answer I'm looking for..

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Would this work? Select Group, Count(IsNull([Group],1)) –  Nilesh Feb 24 '14 at 6:45
    
@Nilesh I could just do Count(1) if I wanted to do that –  Daniel Little Feb 24 '14 at 6:47
    
Yep thats right, you can do just count(1) as well. :) –  Nilesh Feb 24 '14 at 6:50
    
I think that you know all the things which are needed here,then why you ask this question? –  Hamidreza Feb 24 '14 at 8:42
    
@Hamidreza You know how you write a question and you figure it out while you write it. –  Daniel Little Feb 24 '14 at 23:42

4 Answers 4

up vote 1 down vote accepted

The best approach is to use count(*) which behaves exactly like count(1) or any other constant.

The * will ensure every row is counted.

Select Group, Count(*) 
From [Data] 
Group by [Group]

The reason null shows 0 instead of 2 in this case is because each cell is counted as either 1 or null and null + null = null so the total of that group would also be null. However the column type is an integer so it shows up as 0.

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Just do

SELECT [group], count([group])
GROUP BY [group]

SQL Fiddle Demo

Count(id) doesn't gives the expected result as mentioned in question. Gives value of 2 for group NULL

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I think you misread the question. –  Daniel Little Feb 24 '14 at 23:53

try this..

Select Group, Count(isNull(Group,0)) 
From [Data] 
Group by [Group]
share|improve this answer

COUNT(*) should work:

SELECT Grp,COUNT(*)
FROM tab
GROUP BY Grp

One more solution could be following:

SELECT Grp, COUNT(COALESCE(Grp, ' '))
FROM tab
GROUP BY Grp

Here is code at SQL Fiddle

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