32

Let's say I have a string: "10/12/13" and "10/15/13", how can I convert them into date objects so that I can compare the dates? For example to see which date is before or after.

34

Use datetime.datetime.strptime:

>>> from datetime import datetime as dt
>>> a = dt.strptime("10/12/13", "%m/%d/%y")
>>> b = dt.strptime("10/15/13", "%m/%d/%y")
>>> a > b
False
>>> a < b
True
>>>
  • for some reason %y (lower case y) gave me "Unconverted data remains " error, while %Y (upper case Y) worked. Why? – LazerSharks Nov 6 '14 at 22:27
  • 4
    @Gnuey - The datetime format strings are case-sensitive. %Y is not the same as %y. %Y tells Python to match a 4-digit year such as 2014. %y however matches a 2-digit year such as 14 for the year 2014. You must be trying to match a 4-digit year with the 2-digit %y specifier. Here is a reference on the available format specifiers: docs.python.org/2/library/… – iCodez Nov 6 '14 at 22:34
  • Ahh I see. Didn't catch that very valuable detail of "!4"vs"2014". Thank you for the answer and many thanks for the reference! – LazerSharks Nov 6 '14 at 22:39
9

If you like to use the dateutil and its parser:

from dateutil.parser import parse

date1 = parse('10/12/13')
date2 = parse('10/15/13')

print date1 - date2
print date2 > date2
9

Here's one solution using datetime.datetime.strptime:

>>> date1 = datetime.datetime.strptime('10/12/13', '%m/%d/%y')
>>> date2 = datetime.datetime.strptime('10/15/13', '%m/%d/%y')
>>> date1 < date2
True
>>> date1 > date2
False
  • for some reason %y (lower case y) gave me "Unconverted data remains " error, while %Y (upper case Y) worked. Why? – LazerSharks Nov 6 '14 at 22:26
  • 1
    %y works with year without centuries - as a zero padded number (01, 02, 03.. and so on). While %Yworks with year with century (decimal) number: (1999, 1979). What's your data? – aIKid Dec 11 '14 at 2:57
2

Use datetime.datetime.strptime.

from datetime import datetime

a = datetime.strptime('10/12/13', '%m/%d/%y')
b = datetime.strptime('10/15/13', '%m/%d/%y')

print 'a' if a > b else 'b' if b > a else 'tie'

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