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I have the following date/time:

2011-09-27 13:42:16

I need to convert it to:

9/27/2011 13:42:16

I also need to be able to subtract one date from another and get the result in HH:MM:SS format. I have tried to use the dateutil.parser.parse function, and it parses the date fine but sadly it doesn't seem to get the time correctly. I also tried to use another method I found on stackoverflow that uses "time", but I get an error that time is not defined.

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3 Answers 3

up vote 4 down vote accepted

You can use datetime's strptime function:

from datetime import datetime

date = '2011-09-27 13:42:16'
result = datetime.strptime(date, '%Y-%m-%d %H:%M:%S')

You were lucky, as I had that above line written for a project of mine.

To print it back out, try strftime:

print result.strftime('%m/%d/%Y %H:%M:%S')
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2  
I guess you should use '%d' (day of the month as a decimal number [01,31]) instead of '%j' (day of the year as a decimal number [001,366]) to get the desired result. –  Chaos Manor Oct 6 '11 at 6:45

Use python dateutil: http://labix.org/python-dateutil

import dateutil.parser as dateparser

mydate = dateparser.parse("2011-09-27 13:42:16",fuzzy=True)
print(mydate.strftime('%m/%d/%Y T%H:%M:%S'))
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http://docs.python.org/library/datetime.html#datetime.datetime.strptime

and

http://docs.python.org/library/datetime.html#datetime.datetime.strftime

(And the rest of the datetime module.)

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and strftime for outputting in the new format –  Donkopotamus Oct 6 '11 at 0:57

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