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SELECT MIN (snap_id) AS FIRST_SNAP,
     MAX (snap_id) AS LAST_SNAP,
     MIN (BEGIN_INTERVAL_TIME) AS FIRST_QUERY,
     MAX (END_INTERVAL_TIME) AS LAST_QUERY,
     max(end_interval_time) - min(begin_interval_time) as "TIME_ELAPSED"
FROM dba_hist_snapshot
ORDER BY snap_id;

2931    3103    5/28/2012 6:00:11.065 AM    6/4/2012 11:00:40.967 AM    +07 05:00:29.902000

I would like the last columns output to be 7 (for the days). I have tried trunc and extract like some other posts mentioned but can't seem to get the syntax right. Any ideas?

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1 Answer 1

up vote 1 down vote accepted

Judging from your comment, you're using timestamp columns, not datetime. You could use extract to retrieve the hour difference, and then trunc(.../24) to get the whole number of days:

trunc(extract(hour from max(end_interval_time) - min(begin_interval_time))/24)

Or you could cast the timestamp to a date:

trunc(cast(max(end_interval_time) as date) -
    cast(min(begin_interval_time) as date))
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This is one I tried and gives me an error. "inconsistent datatypes: expected NUMBER got INTERVAL DAY TO SECOND" –  Scuba_Steve Jun 4 '12 at 17:23
    
The extract method didn't seem to work. It was only outputting "5" which is the difference between the two times in hours(did not take into account the different days). The casting method worked though! Thanks for the help! –  Scuba_Steve Jun 4 '12 at 18:44

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