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i have a datatable in SQL server which contains 3 columns. 1st is DateTime, and the 2nd & 3rd are both float. Im trying to calc the mean of the difference between columns 2 and 3 between a specific time interval, ie every 15 mins.

I managed to find the following example

SELECT * FROM dbo.data
WHERE CAST(DateTime AS TIME) BETWEEN '14:00' and '14:30'

but im unsure how to now calc the difference between the 2nd and 3rd column from the results of the above query. Id prefer to do this in t-sql unless someone believe performing this in c# would be more appropriate.

Thanks

EDIT

2010-01-04 14:30:00.0000000 1.44377 1.44386
2010-01-04 14:30:00.0000000 1.4438  1.44389
2010-01-04 14:30:00.0000000 1.44377 1.44386
2010-01-05 14:00:01.0000000 1.44258 1.44267

the results id like would be as follows

0.00009  ie 1.44386 - 1.44377
0.00009     1.44389 - 1.4438
0.00009     1.44386 - 1.44377
0.00009     1.44267 - 1.44258
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1 Answer 1

up vote 1 down vote accepted

If you just cast the date column as TIME you'll end up with multiple dates, which I don't think is your intent (see the results of the first query below to illustrate what I mean)

DECLARE @Date DATETIME
SELECT @Date = '05/15/2012 14:15'
SELECT CAST(@Date AS TIME)
SELECT @Date = '04/15/2012 14:15'
SELECT CAST(@Date AS TIME)

I think the query you want is the following:

SELECT
    DATEADD(MINUTE, 15 * (DATEDIFF(MINUTE, 0, [Date]) / 15), 0), -- Assuming [Date] is the DATETIME column, this will give you 15 minute intervals
    AVG([Col2] - [Col3])
FROM
    dbo.data
GROUP BY
    DATEADD(MINUTE, 15 * (DATEDIFF(MINUTE, 0, [Date]) / 15), 0)

If you want to search a specific time frame, just force it in your WHERE clause:

SELECT
    AVG([Col2] - [Col3])
FROM
    dbo.data
WHERE
    [Date] BETWEEN '05/15/2012 14:00' AND '05/15/2012 14:30'
share|improve this answer
    
I just saw your edit. Could you explain how you are arriving to the result of 9 from your data? –  diaho May 15 '12 at 16:59
    
1.44386 - 1.44377 = 0.00009 (ive just corrected the original post to include the decimals) –  Hans Rudel May 15 '12 at 17:07
    
Your last command works, id made a mistake with my dates. Thanks for your help. –  Hans Rudel May 15 '12 at 17:28

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