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How does one work with time periods greater than 24 hours in python? I looked at the datetime.time object but this seems to be for handling the time of a day, not time in general.

datetime.time has the requirement of 0 <= hour < 24 which makes it useless if you want to record a time of more than 24 hours unless I am missing something?

Say for example I wanted to calculate the total time worked by someone. I know the time they've taken to complete tasks individually. What class should I be using to safely calculate that total time.

My input data would look something like this:

# The times in HH:MM:SS
times = ["16:35:21", "8:23:14"]
total_time = ? # 24:58:35
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1  
The point is that these are not times but durations, and the representation of a duration is a timedelta – katrielalex Aug 18 '13 at 20:46
    
Yeah, I realise that now. When I was reading the available types for datetime the timedelta had a misleading description in that it was the difference between datetime classes. It doesn't state that it can be used for durations so I didn't read any deeper into it. – Lerp Aug 18 '13 at 20:49
up vote 5 down vote accepted

As I understand, you want a sum of all times and not difference. So you can convert your time to timedelta and then sum it:

>>> from datetime import timedelta
# get hours, minutes and seconds
>>> tm1 = [map(int, x.split(':')) for x in times]
# convert to timedelta
>>> tm2 = [timedelta(hours=x[0], minutes=x[1], seconds=x[2]) for x in tm1]
# sum
>>> print sum(tm2, timedelta())
1 day, 0:58:35
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Thank you! The datetime docs are misleading, the summary for datetime.timedelta states it's used for calculating the difference between the datetime classes. It doesn't describe that it is, infact, a generic time class. – Lerp Aug 18 '13 at 20:43

Unfortunately there is not a builtin way to construct timedeltas from strings (like strptime() for datetime objects) so we have to build a parser:

>>> from datetime import timedelta
>>> import re

>>> def interval(s):
        "Converts a string to a timedelta"
        d = re.match(r'((?P<days>\d+) days, )?(?P<hours>\d+):'
                     r'(?P<minutes>\d+):(?P<seconds>\d+)', str(s)).groupdict(0)
        return timedelta(**dict(((key, int(value)) for key, value in d.items())))

>>> times = ["16:35:21", "8:23:14"]    
>>> print sum([interval(time) for time in times])
1 day, 0:58:35

EDIT: Old wrong answer (where I misread the question):

If you substract datetimes you get a timedelta object:

>>> import datetime as dt

>>> times = ["16:35:21", "8:23:14"]
>>> fmt = '%H:%M:%S'
>>> start = dt.datetime.strptime(times[1], fmt )
>>> end = dt.datetime.strptime(times[0], fmt)
>>> diff = (end - start)

>>> diff.total_seconds()
29527.0

>>> (diff.days, diff.seconds, diff.microseconds)
(0, 29527, 0)

>>> print diff
8:12:07
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1  
datetime.datetime.strptime returns a datetime.datetime object which again can't handle a period of more than 24 hours. Try: >>> datetime.datetime.strptime("25:00:00", "%H:%M:%S") – Lerp Aug 18 '13 at 20:38
1  
This doesn't answer the OP's question. They want to know the how long the sum of the given times is, not the difference. The times are not absolute times on the clock, but the length of time to complete a task. – SethMMorton Aug 18 '13 at 20:40
1  
@Lerp, You are both right, I read the question too fast. Now should be better. – elyase Aug 18 '13 at 21:20
    
To be fair, my post was less about converting the string to an object and more about storing a duration which timedelta is for (as I now know) – Lerp Aug 18 '13 at 21:22

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