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I have a table that has (among others) a timestamp column (named timestamp; it's a standard Oracle DATE datatype). The records are about 4-11 minutes apart, about 7 or 8 records every hour, and I'm trying to determine if there is any pattern to them.

Is there an easy way to see each record, and the number of minutes that record occurred after the previous record?

Thanks, AndyDan

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2 Answers 2

up vote 6 down vote accepted

This is Oracle 9i+, using the LAG function to get the previous timestamp value without needing to self join:

SELECT t.timestamp - LAG(t.timestamp) OVER (ORDER BY t.timestamp) AS diff
  FROM YOUR_TABLE t

...but because whole numbers represent the number of days in the result, a difference of less than 24 hours will be a fraction. Also, the LAG will return NULL if there's no earlier value -- same as if having used an OUTER JOIN.

To see minutes, use the ROUND function:

SELECT ROUND((t.timestamp - LAG(t.timestamp) OVER (ORDER BY t.timestamp)) *1440) AS diff_in_minutes
  FROM YOUR_TABLE t
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Perfect! I changed the SELECT clause to "SELECT t.*, (t.timestamp - LAG(t.timestamp) OVER (ORDER BY t.timestamp)) * 1440 AS difference" to get the record plus the number of minutes as the difference, and it gives me exactly what I need. Thanks!!! –  AndyDan Nov 29 '10 at 22:29

If the records have sequential id's you could do a self join like this:

SELECT t2.*, t2.timestamp - t1.timestamp AS timediff
FROM foo t1 inner join foo.t2 on t1.id = t2.id-1

You'd probably need to tweak this to handle the first and last records, but that's the basics.

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Unfortunately, there is no id, sequential or otherwise. The only reliable way to sort the records is by the timestamp. Thanks, though. –  AndyDan Nov 29 '10 at 22:22
    
Even if there was, there's no guarantee that they will always be sequential -- a timestamp value could be backdated, but the id value is the most recent. –  OMG Ponies Nov 29 '10 at 22:29

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