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I need a query to find the standard deviation for a column with daywise. My table has some 30,000 rows with the timestamp of every 10 mins. Please find the below sample data with columns timestamp and TF. i need to get the deviation for rest of the columns as well

Timestamp                  TF
2012-05-17 19:15:35.000    10
2012-05-17 19:25:35.000    10
2012-05-17 19:35:35.000    10
2012-05-17 19:45:35.000    10
2012-05-17 19:55:35.000    10
2012-05-17 20:05:35.000    10
2012-05-17 20:15:35.000    10
2012-05-17 20:26:46.000    10
2012-05-18 00:06:48.000    10
2012-05-18 00:16:48.000    10
2012-05-18 00:26:48.000    10
2012-05-18 00:36:48.000    10
2012-05-18 00:46:48.000    10
2012-05-18 00:56:48.000    10
2012-05-18 01:06:48.000    10
2012-05-18 01:16:48.000    10
2012-05-18 01:26:48.000    10
2012-05-18 01:36:49.000    10

The need output as

Timestamp        TF
2012-05-17     0
2012-05-18       0
---             --
---             --
---             --
---             --

Please help!! Thanks in advance!!

Any ideas?

share|improve this question
    
why doing it here in sql-server. solve it in programmatic way in your server side from the query output.that'll be easier –  polin Dec 17 '12 at 5:08
    
i am new to SQL, i need a query on this. can you help please –  Reyaz Dec 17 '12 at 5:10
    
I think your output is not understandable.Can you put more data in it? –  Kamran Shahid Dec 17 '12 at 5:12
    
There is a similar post at stackoverflow.com/questions/9034504/… Check it might help –  Kamran Shahid Dec 17 '12 at 5:14
    
i need to calculate the standard deviation( may be using SQL builtin function) for the mentioned data day wise. In this case the TF column should not be 10 for all the time, and this has to be checked day wise as i have more data recored every ten minutes.. hope this is clear or please let me know i will try to explain more clear –  Reyaz Dec 17 '12 at 5:15

1 Answer 1

up vote 0 down vote accepted

EDIT: I transposed DAY and DATE: DAY returns day-of-month; DATE returns the time truncated to the day. Answer is updated to include that fix.

You will need to use an aggregate function, grouping by the day:

SELECT DATE(Timestamp), STDDEV(TV) FROM MyTable GROUP BY DATE(Timestamp);

I assume there is a DATE() function.

There might not be a STDDEV function. If there isn't, STDDEV(x)=SQRT(AVG((x-AVG(x))^2), which might have to be implemented as a joined subquery:

SELECT DATE(Timestamp), SQRT(AVG((a.TF-b.mean)*(a.TF-b.mean)) FROM MyTable a LEFT JOIN
    (SELECT DATE(Timestamp) day, AVG(TF) mean FROM MyTable GROUP BY DATE(Timestamp)) b
        ON DATE(a.Timestamp)=b.day 
    GROUP BY b.day;
share|improve this answer
    
Thanks for the reply.. I treid the below query as you posted, select DAY(timestamp) as Timestamp,STDEV(TA) as Deviation from Sensation group by DAY(timestamp) But i did not get the output as expected, as per the above data, i need the deviation for the column each date(recorded every ten minutes) i need the only date with deviation for entire day. pleae help –  Reyaz Dec 17 '12 at 5:46
    
Try it using DATE instead of DAY: sqlfiddle.com/#!2/4d819/5 –  zebediah49 Dec 17 '12 at 21:09
    
i got error message 'DATE' is not a recognized built-in function name. –  Reyaz Dec 18 '12 at 3:38
    
Ah, it appears my-SQL doesn't have that feature. A bit of research indicates that replacing DATE(Timestamp) with CAST(Timestamp as DATE) should fix your problem. –  zebediah49 Dec 18 '12 at 6:19
    
you are super!! thank you so much,.. i got it :-) –  Reyaz Dec 18 '12 at 7:06

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