246

I see a lot on converting a date string to an datetime object in Python, but I want to go the other way.
I've got

datetime.datetime(2012, 2, 23, 0, 0)

and I would like to convert it to string like '2/23/2012'.

427

You can use strftime to help you format your date.

E.g.,

import datetime
t = datetime.datetime(2012, 2, 23, 0, 0)
t.strftime('%m/%d/%Y')

will yield:

'02/23/2012'

More information about formatting see here

  • 6
    Very useful for DateTimeField or DateField in django. Thanks – erajuan Feb 24 '16 at 20:46
  • 3
    use t = datetime.datetime.now() to use current date – gizzmole Jul 17 '17 at 18:36
  • As far as I can tell from the docs there is no way to return a non-zero padded date ie '2/23/2012'. – Ron Kalian Oct 31 '17 at 10:41
153
+100

date and datetime objects (and time as well) support a mini-language to specify output, and there are two ways to access it:

  • direct method call: dt.strftime('format here'); and
  • new format method: '{:format here}'.format(dt)

So your example could look like:

dt.strftime('%m/%d/%Y')

or

'{:%m/%d/%Y}'.format(dt)

For completeness' sake: you can also directly access the attributes of the object, but then you only get the numbers:

'%s/%s/%s' % (dt.month, dt.day, dt.year)

The time taken to learn the mini-language is worth it.


For reference, here are the codes used in the mini-language:

  • %a Weekday as locale’s abbreviated name.
  • %A Weekday as locale’s full name.
  • %w Weekday as a decimal number, where 0 is Sunday and 6 is Saturday.
  • %d Day of the month as a zero-padded decimal number.
  • %b Month as locale’s abbreviated name.
  • %B Month as locale’s full name.
  • %m Month as a zero-padded decimal number. 01, ..., 12
  • %y Year without century as a zero-padded decimal number. 00, ..., 99
  • %Y Year with century as a decimal number. 1970, 1988, 2001, 2013
  • %H Hour (24-hour clock) as a zero-padded decimal number. 00, ..., 23
  • %I Hour (12-hour clock) as a zero-padded decimal number. 01, ..., 12
  • %p Locale’s equivalent of either AM or PM.
  • %M Minute as a zero-padded decimal number. 00, ..., 59
  • %S Second as a zero-padded decimal number. 00, ..., 59
  • %f Microsecond as a decimal number, zero-padded on the left. 000000, ..., 999999
  • %z UTC offset in the form +HHMM or -HHMM (empty if naive), +0000, -0400, +1030
  • %Z Time zone name (empty if naive), UTC, EST, CST
  • %j Day of the year as a zero-padded decimal number. 001, ..., 366
  • %U Week number of the year (Sunday is the first) as a zero padded decimal number.
  • %W Week number of the year (Monday is first) as a decimal number.
  • %c Locale’s appropriate date and time representation.
  • %x Locale’s appropriate date representation.
  • %X Locale’s appropriate time representation.
  • %% A literal '%' character.
  • 5
    bounty goes here for a good sum up – midori Mar 10 '16 at 2:07
  • Thats a great list to follow for Various kinds of Date Manipulations :-) – Vetrivel PS Dec 27 '18 at 9:17
22

Another option:

import datetime
now=datetime.datetime.now()
now.isoformat()
# ouptut --> '2016-03-09T08:18:20.860968'
  • 1
    The best and simplest solution here – AlexKh Mar 7 at 18:18
12

You could use simple string formatting methods:

>>> dt = datetime.datetime(2012, 2, 23, 0, 0)
>>> '{0.month}/{0.day}/{0.year}'.format(dt)
'2/23/2012'
>>> '%s/%s/%s' % (dt.month, dt.day, dt.year)
'2/23/2012'
  • 3
    similarly, you can do something like '{:%Y-%m-%d %H:%M}'.format(datetime(2001, 2, 3, 4, 5)). See more at pyformat.info – mway Dec 16 '15 at 14:23
9

type-specific formatting can be used as well:

t = datetime.datetime(2012, 2, 23, 0, 0)
"{:%m/%d/%Y}".format(t)

Output:

'02/23/2012'
2

It is possible to convert a datetime object into a string by working directly with the components of the datetime object.

from datetime import date  

myDate = date.today()    
#print(myDate) would output 2017-05-23 because that is today
#reassign the myDate variable to myDate = myDate.month 
#then you could print(myDate.month) and you would get 5 as an integer
dateStr = str(myDate.month)+ "/" + str(myDate.day) + "/" + str(myDate.year)    
# myDate.month is equal to 5 as an integer, i use str() to change it to a 
# string I add(+)the "/" so now I have "5/" then myDate.day is 23 as
# an integer i change it to a string with str() and it is added to the "5/"   
# to get "5/23" and then I add another "/" now we have "5/23/" next is the 
# year which is 2017 as an integer, I use the function str() to change it to 
# a string and add it to the rest of the string.  Now we have "5/23/2017" as 
# a string. The final line prints the string.

print(dateStr)  

Output --> 5/23/2017

2

You can convert datetime to string.

published_at = "{}".format(self.published_at)
2

String concatenation, str.join, can be used to build the string.

d = datetime.now()
'/'.join(str(x) for x in (d.month, d.day, d.year))
'3/7/2016'
1

If you looking for a simple way of datetime to string conversion and can omit the format. You can convert datetime object to str and then use array slicing.

In [1]: from datetime import datetime

In [2]: now = datetime.now()

In [3]: str(now)
Out[3]: '2019-04-26 18:03:50.941332'

In [5]: str(now)[:10]
Out[5]: '2019-04-26'

In [6]: str(now)[:19]
Out[6]: '2019-04-26 18:03:50'

But note the following thing. If other solutions will rise an AttributeError when the variable is None in this case you will receive a 'None' string.

In [9]: str(None)[:19]
Out[9]: 'None'

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