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This question already has an answer here:

I have a datasets where all the dates have the following format:

2012-10-09T19:00:55Z

I'd like to be able to be able to use methods like .weekday on them. How do I convert them to the proper format in Python?

marked as duplicate by Martijn Pieters python Jan 31 '15 at 12:48

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

165

You can use dateutil.parser.parse to parse strings into datetime objects.

dateutil.parser.parse will attempt to guess the format of your string, if you know the exact format in advance then you can use datetime.strptime which you supply a format string to (see Brent Washburne's answer).

from dateutil.parser import parse

a = "2012-10-09T19:00:55Z"

b = parse(a)

print(b.weekday())
# 1 (equal to a Tuesday)
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    I don't know why I haven't heard of dateutil.parser. These are the little things that make Python awesome. from somemodule import problemsolver && problemsolver.solvemyspecificproblem() – kraxor Oct 3 '14 at 7:49
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    @kraxor probably because it's not actually part of Python, rather a 3rd-part library. git clone http://example.com/module/problemsolver problemsolver && cd problemsolver && python problemsolver.py myspecificproblem – Jonathan Baldwin Nov 15 '14 at 0:49
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    @Ffisegydd My mistake, I did 'pip install dateutil' rather than prepending with python-. – Paul Jan 13 '15 at 13:42
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    You need to indicate that thus us a third party lib – frostymarvelous Jul 9 '15 at 13:37
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    @kraxor Python is awesome because it the accepted answer on how to parse a date requires installing a 3rd party library? That seems somewhat less than awesome. – Greg Ennis Sep 7 '17 at 13:58
88

This has already been answered here: How do I translate a ISO 8601 datetime string into a Python datetime object?

d = datetime.datetime.strptime( "2012-10-09T19:00:55Z", "%Y-%m-%dT%H:%M:%SZ" )
d.weekday()
  • This is suboptimal, since it requires the caller to provide format strings for the rather wide range of ISO 8601 variants (unless one likes ValueError if the seconds are omitted, e.g). The dateutil parser, on the other hand, handles these much better. – Alex North-Keys Apr 25 '17 at 15:46
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    @AlexNorth-Keys: How is this suboptimal? The OP stated "I have a datasets where all the dates have the following format" and didn't mention any variants. This answer is actually optimal because it doesn't require any external modules, it uses the built-in datetime module. By using the exact format string (instead of having dateutil guess the format every time), the code performance is optimal. – Brent Washburne Apr 25 '17 at 17:48
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    I was thinking from a maintenance perspective (oops) - but you're right, the strptime method is faster, running in about 1/6th of the time the dateutil.parser approach does. – Alex North-Keys Apr 26 '17 at 5:02
10

You should have a look at moment which is a python port of the excellent js lib momentjs.

One advantage of it is the support of ISO 8601 strings formats, as well as a generic "% format" :

import moment
time_string='2012-10-09T19:00:55Z'

m = moment.date(time_string, '%Y-%m-%dT%H:%M:%SZ')
print m.format('YYYY-M-D H:M')
print m.weekday

Result:

2012-10-09 19:10
2

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