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I have two columns of Data type time. I'm using datediff to find the difference in hours. The problem is when I try to find the difference between 00:00:00 to 06:00:00, it returns -18. How can I fix it? note: I need to calculate more difference with this so I can't just divide it with -3

my function- (datediff(HOUR, startHour, endHour))*60

Thanks in advance

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Dividing by -3 would only yield the correct result in this special case. Replace 06:00:00 by 07:00:00 and you'll see that I mean. –  Thorsten Dittmar May 7 '12 at 12:57
    
Can you post some code and data that shows the problem? Testing what you say gives 6 as a result. Try here –  Mikael Eriksson May 7 '12 at 13:02
    
What datatypes are startHour and endHour? –  gbn May 7 '12 at 13:07
2  
In my (clearly twisted from reading math for long periods) eyes, -18 and 6 are the same thing when ones works in mod 24 hours mode. Much like as 17:00 and 5:00 is the same when one works in mod 12 mode. –  ypercube May 7 '12 at 15:55
    
If the above comment is obscure: Do a mod 24 operation on the result. –  ypercube May 7 '12 at 15:56

3 Answers 3

You are not comparing 00:00:00 to 06:00:00. You have some date component

This gives -18 as an example

DECLARE @starthour datetime = '00:00:00';
DECLARE @endhour datetime = '18991231 06:00:00';    
SELECT @starthour, @endhour, DATEDIFF(hour, @starthour, @endhour); 

SET @starthour = '20120507 00:00:00';
SET @endhour = '20120506 06:00:00';
SELECT @starthour, @endhour, DATEDIFF(hour, @starthour, @endhour); 
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Thanks, but startHour and endHour are from datatype time hh:mm:ss , without date –  user1232948 May 7 '12 at 13:21
    
@user1232948: check and double check please: I've just demonstrated how to get -18... –  gbn May 7 '12 at 14:09
    
I don't want -18 or 18, I want 6 :) –  user1232948 May 7 '12 at 15:16
2  
@user1232948: well, you can't because you have an end value before your start value. Simple. it is the only way to get a negative value... –  gbn May 7 '12 at 15:43
1  
@user1232948 Are you sure about what row gives you trouble? Because 18:00-00:00 will give you -18. –  Mikael Eriksson May 7 '12 at 16:47

Reverse the parameters:

my function- (datediff(HOUR, endHour, startHour))*60 

Edit:

The function DATEDIFF works with dates and for some reason, it thinks you're subtracting 6AM - Midnight (next day), which is 18 hours.

The following code sample works fine for me in SQL 2008, so you need to check your data type to make sure you're using TIME and not DATETIME or SMALLDATETIME.

declare @t1 time
set @t1 = '00:00:00'
declare @t2 time 
set @t2 = '06:00:00'

select datediff(hour, @t1, @t2)

-- returns 6
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I tried to reverse them but it just returned 18. And I need to calculate more time differences with it anyway. –  user1232948 May 7 '12 at 12:59
    
Mikael- I have table with 4 shifts, start hour end end hour for each one. datediff(HOUR, startHour, endHour) is working fine for the the first 3, but for 00:00:00-6:00:00 it returns -18, not even -6. –  user1232948 May 7 '12 at 13:13
    
gbn- the startHour and endHour are from datatype time –  user1232948 May 7 '12 at 13:13
    
I'm using time. When I tried it like that I got 6, but when I pull it from the table I get 18. –  user1232948 May 7 '12 at 16:13
    
Can you post your table structure, scripted from SQL Mgmt Studio? –  Chris Gessler May 7 '12 at 20:18

Syntax:

DATEDIFF (datepart, startdate, enddate )

Examples:

SELECT DATEDIFF(hour, '00:00:00', '06:00:00');  

Result: 6

SELECT DATEDIFF(hour, '00:00:00', '06:00:00')*60;  

Result: 360

Refer DATEDIFF (Transact-SQL)

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You results are wrong way round, no? –  gbn May 7 '12 at 13:08
    
@gbn: sorry, typo mistake.. I have corrected. –  Siva Charan May 7 '12 at 13:09

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