152

Say I have an interval like

4 days 10:00:00

in postgres. How do I convert that to a number of hours (106 in this case?) Is there a function or should I bite the bullet and do something like

extract(days, my_interval) * 24 + extract(hours, my_interval)
  • 7
    Note: If your interval contains months or years, there is no defined answer of how many hours there are, since the number of days in a month or year vary. So watch out for that! – Teddy Jul 26 '17 at 8:57
295

Probably the easiest way is:

SELECT EXTRACT(epoch FROM my_interval)/3600
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  • 6
    And maybe floor or cast the result to integer if the interval contains minutes and/or seconds – rasjani Jun 4 '09 at 19:25
  • 62
    Extract epoch? Oh my, that wouldn't have crossed my mind in a million years. – agnul Jun 4 '09 at 19:31
  • 3
    SELECT EXTRACT(epoch FROM my_interval/3600) (interval has native 'divide integer' support, result is interval, and extract result is integer, not float). So. Autocast/Floor done. – Offenso Aug 12 '15 at 13:24
  • 17
    Warning: simply extracting epoch implicitly assumes that one month = 30 days and one year = 365.25 days. – Teddy Jul 26 '17 at 8:58
  • @Teddy what can we do with it? How to avoid this issue and get real number of epochs? – Asmox Oct 19 '19 at 10:49
17

If you want integer i.e. number of days:

SELECT (EXTRACT(epoch FROM (SELECT (NOW() - '2014-08-02 08:10:56')))/86400)::int
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  • Great! Thank you for that :) Yet, I found that we can now modify this to be SELECT extract('epoch' FROM age('2014-08-02'::timestamp)) / 86400 (I'm using Pg 9.4), since age(ts) automatically use CURRENT_DATE when only one argument. – 1111161171159459134 Dec 11 '15 at 19:19
  • 4
    Warning: simply extracting epoch implicitly assumes that one month = 30 days and one year = 365.25 days. – Teddy Jul 26 '17 at 8:58
4

To get the number of days the easiest way would be:

SELECT EXTRACT(DAY FROM NOW() - '2014-08-02 08:10:56');

As far as I know it would return the same as:

SELECT (EXTRACT(epoch FROM (SELECT (NOW() - '2014-08-02 08:10:56')))/86400)::int;
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  • 25
    If your interval is '1 month 0 days', using extract(day from …) will give you 0 as the result. – Underyx Mar 1 '17 at 13:02
2

If you convert table field:

  1. Define the field so it contains seconds:

     CREATE TABLE IF NOT EXISTS test (
         ...
         field        INTERVAL SECOND(0)
     );
    
  2. Extract the value. Remember to cast to int other wise you can get an unpleasant surprise once the intervals are big:

    EXTRACT(EPOCH FROM field)::int

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  • I don't think Redshift supports the INTERVAL datatype. It would just be BIGINT. – matt2000 Mar 26 '19 at 19:34
1
select floor((date_part('epoch', order_time - '2016-09-05 00:00:00') / 3600)), count(*)
from od_a_week
group by floor((date_part('epoch', order_time - '2016-09-05 00:00:00') / 3600));

The ::int conversion follows the principle of rounding. If you want a different result such as rounding down, you can use the corresponding math function such as floor.

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-4
         select date 'now()' - date '1955-12-15';

Here is the simple query which calculates total no of days.

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  • 4
    That does not take an interval value. – Teddy Jul 26 '17 at 9:00

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