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>>> import datetime
>>> now1=datetime.datetime.now()
>>> now2=datetime.datetime.now()
>>> timedelta=now2-now1
>>> halfdt=timedelta/2  #This works just fine
>>> halfdt=timedelta/2. #TypeError: unsupported operand type(s) for /: 'datetime.timedelta' and 'float'

Does anybody know the rational for only allowing timedeltas to be divisible by integers?

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1  
FWIW, works fine in Py3K. –  Wooble May 17 '12 at 12:59
    
@Woobie -- You're correct. I hadn't tried that... –  mgilson May 17 '12 at 13:16

2 Answers 2

up vote 3 down vote accepted

It's actually pretty simple - it was a missing feature.

The upside of this is that it's been added as a feature in Python 3.x.

Note the difference between the supported operation tables in 2.x and 3.x.

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Thanks. I was just floored when it didn't work, and I was wondering if there was any rational behind it. Since it works in python 3.x, I'll assume you're right and it was just an oversight. Thanks. –  mgilson May 17 '12 at 13:18
2  
Well, floor it, and try again! *chuckle. –  jpaugh May 17 '12 at 13:29

Very interesting -- I would have expected that to work too. I just wrote a function with some examples/doctests that does this in Python 2.x. Also posted as an ActiveState recipe:

import datetime

def divide_timedelta(td, divisor):
    """Python 2.x timedelta doesn't support division by float, this function does.

    >>> td = datetime.timedelta(10, 100, 1000)
    >>> divide_timedelta(td, 2) == td / 2
    True
    >>> divide_timedelta(td, 100) == td / 100
    True
    >>> divide_timedelta(td, 0.5)
    datetime.timedelta(20, 200, 2000)
    >>> divide_timedelta(td, 0.3)
    datetime.timedelta(33, 29133, 336667)
    >>> divide_timedelta(td, 2.5)
    datetime.timedelta(4, 40, 400)
    >>> td / 0.5
    Traceback (most recent call last):
      ...
    TypeError: unsupported operand type(s) for /: 'datetime.timedelta' and 'float'

    """
    # timedelta.total_seconds() is new in Python version 2.7, so don't use it
    total_seconds = (td.microseconds + (td.seconds + td.days * 24 * 3600) * 1e6) / 1e6
    divided_seconds = total_seconds / float(divisor)
    return datetime.timedelta(seconds=divided_seconds)

if __name__ == '__main__':
    import doctest
    doctest.testmod()
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It's worth noting that this is different to Python 3.x's functionality, as far as I can tell, as Python 3.x does 'Delta divided by a float or an int. The result is rounded to the nearest multiple of timedelta.resolution using round-half-to-even.', and yours doesn't use the resolution, so it's not quite a drop-in replacement. Still useful, however, so +1. –  Lattyware May 17 '12 at 22:04
    
Fair call -- I don't suppose you could suggest edits to fix this? (Assuming it's simple enough -- I think this is enough of an edge case that it probably doesn't matter much.) –  Ben Hoyt May 18 '12 at 13:22

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