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I have a table that stores data regarding users that visit a system. As the user is browsing the system, I am storing their location, username, date and time in an Oracle 11g database. My table looks like this:

    username   date           time          location

    user1      YYYY-MM-DD    HH24:MI:SS     kitchen
    user2      YYYY-MM-DD    HH24:MI:SS     bathroom

I need a query that will calculate the minutes between the first and last log of each day, for each particular username. How would one go about doing that?

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1  
What are the datatypes of date and time ? – A.B.Cade Mar 21 '13 at 11:43
up vote 0 down vote accepted

Assuming that date and time are varchar2,
Try:

with t as
(
   select username, "date", to_date("date"||time, 'YYYY-MM-DDHH24:MI:SS') dt
   from your_table 
)
select username, "date",  (max(dt)- min(dt)) * 1440
from t
group by username, "date"

Here is a sqlfiddle demo

share|improve this answer
    
They're not. They're both date with the format described above. Date: YYYY-MM-DD and time: HH24:MI:SS – junkystu Mar 21 '13 at 12:09
    
But I see your idea and I got it working, thank you! – junkystu Mar 21 '13 at 12:12
    
@junkystu, a date in oracle is a number representing a date + time it doesn't have a format... – A.B.Cade Mar 21 '13 at 12:15

Group by username, max + min by date? (you probably will need to combine it with dense rank

Something like (pseudo code)

SELECT  . . .
FROM
(SELECT
select *, 
-- dates
    DENSE_RANK() OVER (PARTITION BY TRUNC(date) ORDER BY date DESC) AS rank 
                 FROM
                    your_table
)
) t1
WHERE RANK = 1      
group by
share|improve this answer
    
I need to calculate the minutes between the first and last log of each day, for each particular username. So that won't work. Thanks – junkystu Mar 21 '13 at 12:05

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