278

I need to find "yesterday's" date in this format MMDDYY in Python.

So for instance, today's date would be represented like this: 111009

I can easily do this for today but I have trouble doing it automatically for "yesterday".

6 Answers 6

485

Use datetime.timedelta()

>>> from datetime import date, timedelta
>>> yesterday = date.today() - timedelta(days=1)
>>> yesterday.strftime('%m%d%y')
'110909'
2
  • 2
    If you happen to be working with pandas, you can as well use: print((pd.to_datetime('Today') - pd.Timedelta('1 days')).strftime('%m%d%y'))
    – etna
    Oct 2, 2017 at 7:39
  • If you happen to search for options, you can as well use Pendulum (pendulum.eustace.io): pendulum.now().subtract(days=-1).strftime('%m%d%y')
    – AFD
    May 15, 2019 at 11:22
176
from datetime import datetime, timedelta

yesterday = datetime.now() - timedelta(days=1)
yesterday.strftime('%m%d%y')
0
22

This should do what you want:

import datetime
yesterday = datetime.datetime.now() - datetime.timedelta(days = 1)
print yesterday.strftime("%m%d%y")
2
  • 1
    Why do you care more about the date for people in UTC offset 0 than the date in the system's local timezone? Nov 11, 2009 at 0:09
  • 1
    I copied that from my code, in database usage you often care about UTC. Removed the UTC stuff.
    – Stef
    Nov 11, 2009 at 0:46
11

all answers are correct, but I want to mention that time delta accepts negative arguments.

>>> from datetime import date, timedelta
>>> yesterday = date.today() + timedelta(days=-1)
>>> print(yesterday.strftime('%m%d%y')) #for python2 remove parentheses 
7

Could I just make this somewhat more international and format the date according to the international standard and not in the weird month-day-year, that is common in the US?

from datetime import datetime, timedelta

yesterday = datetime.now() - timedelta(days=1)
yesterday.strftime('%Y-%m-%d')
2
  • 1
    Agree that we use a weird date format in the States, but the OP specifically requested that weird format--which in this case is `'%m%d%y'.
    – DaveL17
    Mar 26, 2019 at 12:31
  • @DaveL17, fair point. I'll leave the answer for all outside US who stumble upon this question. Mar 29, 2019 at 12:19
2

To expand on the answer given by Chris

if you want to store the date in a variable in a specific format, this is the shortest and most effective way as far as I know

>>> from datetime import date, timedelta                   
>>> yesterday = (date.today() - timedelta(days=1)).strftime('%m%d%y')
>>> yesterday
'020817'

If you want it as an integer (which can be useful)

>>> yesterday = int((date.today() - timedelta(days=1)).strftime('%m%d%y'))
>>> yesterday
20817

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