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I have some dates which format is d/m/yyyy, for example : 2/28/1987 I would like to have it in the ISO format : 1987-02-28
I think we can do it that way, but it seems a little heavy:

str_date = '2/28/1987'
arr_str = re.split('/', str_date)
iso_date = arr_str[2]+'-'+arr_str[0][:2]+'-'+arr_str[1]

Is there another way to do it ? (format cell with a spreadsheet editor does not work)

Thanks a lot

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I have huge list of dates so,my first option would be to copy/paste in a spreadsheet editor like LibreOffice and to change the format cell in order to set the right format but that does not work.. –  Reveclaire Oct 7 '12 at 19:27
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3 Answers 3

up vote 9 down vote accepted

You could use the datetime module:

datetime.datetime.strptime(str_date, '%m/%d/%Y').date().isoformat()

or, as running code:

>>> import datetime
>>> str_date = '2/28/1987'
>>> datetime.datetime.strptime(str_date, '%m/%d/%Y').date().isoformat()
'1987-02-28'
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+1 for isoformat(). I never knew about that one. –  Blender Oct 7 '12 at 19:28
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I would use the datetime module to parse it:

>>> from datetime import datetime
>>> date = datetime.strptime('2/28/1987', '%m/%d/%Y')
>>> date.strftime('%Y-%m-%d')
'1987-02-28'
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.isoformat() on dates uses the same formatting string OOTB. :-) –  Martijn Pieters Oct 7 '12 at 19:28
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What you have is very nearly how I would write it, the only major improvement I can suggest is using plain old split instead of re.split, since you do not need a regular expression:

arr_str = str_date.split('/')

If you needed to do anything more complicated like that I would recommend time.strftime, but that's significantly more expensive than string bashing.

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