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I have a date variable: 2011-01-15 and I would like to get a boolean back if said date is within 3 days from TODAY. Im not quite sure how to construct this in Python. Im only dealing with date, not datetime.

My working example is a "grace period". A user logs into my site and if the grace period is within 3 days of today, additional scripts, etc. are omitted for that user.

I know you can do some fancy/complex things in Python's date module(s) but Im not sure where to look.

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3 Answers 3

up vote 32 down vote accepted

In Python to check a range you can use a <= x <= b:

>>> import datetime
>>> today = datetime.date.today()
>>> margin = datetime.timedelta(days = 3)

>>> today - margin <= datetime.date(2011, 1, 15) <= today + margin
True
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+1 Much more readable than mine. –  Thomas Jan 14 '11 at 20:49
    
Point given to Mark Byers. I agree, more readable but equally valid to Thomas's answer. Thank you both. I've added both methods to my Diary. Makes perfect sense. –  Flowpoke Jan 14 '11 at 20:58

Subtracting two date objects gives you a timedelta object, which you can compare to other timedelta objects.

For example:

>>> from datetime import date, timedelta
>>> date(2011, 1, 15) - date.today()
datetime.timedelta(1)
>>> date(2011, 1, 15) - date.today() < timedelta(days = 3)
True
>>> date(2011, 1, 18) - date.today() < timedelta(days = 3)
False

As to "where to look": the official documentation is excellent.

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I tried this in Python 3.1.3 and get a "SyntaxError: invalid token" when using 01 for January vs. using 1 for January. Still giving you #1 though...:) –  a2j Jan 14 '11 at 20:46
    
Oh, sorry. Python 2 will interpret that as octal, but they dropped this syntax in Python 3 because it was confusing. I always write my dates in octal, don't you? ;) –  Thomas Jan 14 '11 at 20:47
    
I'm new to learning Python, so I don't know what I do. I welcome all direction! Thus why I come to SO daily. –  a2j Jan 14 '11 at 20:49

Others have already more than adequately answered, so no need to vote on this answer.
(Uses technique shown in Mark Byers' answer; +1 to him).

import datetime as dt

def within_days_from_today(the_date, num_days=7):
    '''
        return True if date between today and `num_days` from today
        return False otherwise

        >>> today = dt.date.today()
        >>> within_days_from_today(today - dt.timedelta(days=1), num_days=3)
        False
        >>> within_days_from_today(dt.date.today(), num_days=3)
        True
        >>> within_days_from_today(today + dt.timedelta(days=1), num_days=3)
        True
        >>> within_days_from_today(today + dt.timedelta(days=2), num_days=3)
        True
        >>> within_days_from_today(today + dt.timedelta(days=3), num_days=3)
        True
        >>> within_days_from_today(today + dt.timedelta(days=4), num_days=3)
        False
    '''
    lower_limit = dt.date.today()
    upper_limit = lower_limit + dt.timedelta(days=num_days)
    if lower_limit <= the_date <= upper_limit:
        return True
    else:
        return False

if __name__ == "__main__":
    import doctest
    doctest.testmod()
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I like this too. I like the support for lower and upper, as I may not want to count a days prior to today. Complete with doctest! ;) –  Flowpoke Jan 14 '11 at 21:46

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