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I have two datetime.time values, exit and enter and I want to do something like:

duration = exit - enter

However, I get this error:

TypeError: unsupported operand type(s) for -: 'datetime.time' and 'datetime.time

How do I do this correctly? One possible solution is converting the time variables to datetime variables and then subtruct, but I'm sure you guys must have a better and cleaner way.

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import datetime

def diff_times_in_seconds(t1, t2):
    # caveat emptor - assumes t1 & t2 are python times, on the same day and t2 is after t1
    h1, m1, s1 = t1.hour, t1.minute, t1.second
    h2, m2, s2 = t2.hour, t2.minute, t2.second
    t1_secs = s1 + 60 * (m1 + 60*h1)
    t2_secs = s2 + 60 * (m2 + 60*h2)
    return( t2_secs - t1_secs)

# using it
diff_times_in_seconds( datetime.datetime.strptime( "13:23:34", '%H:%M:%S').time(),datetime.datetime.strptime( "14:02:39", '%H:%M:%S').time())
share|improve this answer

Try this:

from datetime import datetime, date

datetime.combine(date.today(), exit) - datetime.combine(date.today(), enter)

combine builds a datetime, that can be subtracted.

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15  
Hope it doesn't straddle midnight... – Ignacio Vazquez-Abrams Mar 10 '11 at 13:02
1  
To @IgnacioVazquez-Abrams point, one could use, say,datetime(1,1,1,0,0,0) instead of date.today(). – Akavall Mar 7 '14 at 18:54
1  
Don't name a datetime exit, since exit is a built-in function. – orokusaki Sep 30 '15 at 3:28
>>> from datetime import datetime
>>> from time import sleep
>>> d1=datetime.now();sleep(1);d2=datetime.now()
>>> diff=d2-d1
>>> print diff
0:00:01.001153
>>> type(diff)
<type 'datetime.timedelta'>
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9  
This does not answer how to do it for datetime.time. – Ignacio Vazquez-Abrams Mar 10 '11 at 13:08

datetime.time does not support this, because it's nigh meaningless to subtract times in this manner. Use a full datetime.datetime if you want to do this.

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20  
If you know from your domain that two datetime.time objects a and b are from the same day, and that b > a, then the operation b - a has perfect meaning. – swalog Feb 5 '14 at 13:51
2  
Even if they aren't the same day, it still makes fine sense. At least as much sense as arctan(0) = (0, pi, 2pi, ...), but we just don't care about any of those values after the first. So, 4:00 - 20:00 is 8:00 - it's also (32:00, 56:00, ... ), but who cares? – naught101 Mar 10 '15 at 23:34
    

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