170

I am trying to get the date of the previous month with python. Here is what i've tried:

str( time.strftime('%Y') ) + str( int(time.strftime('%m'))-1 )

However, this way is bad for 2 reasons: First it returns 20122 for the February of 2012 (instead of 201202) and secondly it will return 0 instead of 12 on January.

I have solved this trouble in bash with

echo $(date -d"3 month ago" "+%G%m%d")

I think that if bash has a built-in way for this purpose, then python, much more equipped, should provide something better than forcing writing one's own script to achieve this goal. Of course i could do something like:

if int(time.strftime('%m')) == 1:
    return '12'
else:
    if int(time.strftime('%m')) < 10:
        return '0'+str(time.strftime('%m')-1)
    else:
        return str(time.strftime('%m') -1)

I have not tested this code and i don't want to use it anyway (unless I can't find any other way:/)

Thanks for your help!

1

15 Answers 15

379

datetime and the datetime.timedelta classes are your friend.

  1. find today.
  2. use that to find the first day of this month.
  3. use timedelta to backup a single day, to the last day of the previous month.
  4. print the YYYYMM string you're looking for.

Like this:

 import datetime
 today = datetime.date.today()
 first = today.replace(day=1)
 lastMonth = first - datetime.timedelta(days=1)
 print(lastMonth.strftime("%Y%m"))

201202 is printed.

7
  • 34
    you could use .replace() method: datetime.utcnow().replace(day=1) - timedelta(days=1)
    – jfs
    Mar 16 '12 at 6:43
  • 2
    Cool! I missed the replace method.
    – bgporter
    Mar 16 '12 at 12:55
  • You can also chain the .replace() function. Do it once to get the last month, then do it again to get the day you want. First: d = date.today() then one_month_ago = (d.replace(day=1) - timedelta(days=1)).replace(day=d.day) Jul 15 '15 at 22:12
  • @J.F.Sebastian You are correct -- thanks for pointing that out. There doesn't seem to be an elegant one-liner for this as a "month" is not a constant time period. You can do something ugly by importing calendar and using calendar.mdays[d.month-1] and more ugliness in a min() function in the 2nd replace, but it seems un-Pythonic and doesn't account for corner cases. I've updated my answer below using try - except which accounts for all cases, although a I hate using exceptions as part of an algorithm. Jul 16 '15 at 18:40
  • see the answer of Ivan, and add: min(date.today().day, last_day_of_previous_month.day) Feb 20 '16 at 10:10
96

You should use dateutil. With that, you can use relativedelta, it's an improved version of timedelta.

>>> import datetime 
>>> import dateutil.relativedelta
>>> now = datetime.datetime.now()
>>> print now
2012-03-15 12:33:04.281248
>>> print now + dateutil.relativedelta.relativedelta(months=-1)
2012-02-15 12:33:04.281248
7
  • It's not working for the first month of year: >>> IllegalMonthError: bad month number -1; must be 1-12
    – mtoloo
    Jan 16 '14 at 10:50
  • 1
    I prefer this one because while @bgporter has a very nice solution, his one doesn't work as nice for looking up the next month.
    – Daniel F
    Oct 3 '15 at 10:31
  • 3
    @mtoloo You've probably mistyped months/month
    – r_black
    Mar 9 '16 at 10:00
  • 2
    @r_black Yes You are right. That was my fault. Solution given here is correct and no further check is needed for the first month of the year.
    – mtoloo
    May 18 '16 at 13:17
  • 1
    Note that if the previous month's date doesn't exist (e.g. October 31st exists, but September 31st does not exist), then relativedelta will use the next older day (e.g. September 30th)
    – lobi
    Aug 27 '20 at 22:06
50
from datetime import date, timedelta

first_day_of_current_month = date.today().replace(day=1)
last_day_of_previous_month = first_day_of_current_month - timedelta(days=1)

print "Previous month:", last_day_of_previous_month.month

Or:

from datetime import date, timedelta

prev = date.today().replace(day=1) - timedelta(days=1)
print prev.month
1
  • 1
    part of the solution... to find the day of last month, add something like this: day_previous_month = min(today.day, last_day_of_previous_month.day) to avoid exceeding the number of days. Feb 20 '16 at 10:09
17

For someone who got here and looking to get both the first and last day of the previous month:

from datetime import date, timedelta

last_day_of_prev_month = date.today().replace(day=1) - timedelta(days=1)

start_day_of_prev_month = date.today().replace(day=1) - timedelta(days=last_day_of_prev_month.day)

# For printing results
print("First day of prev month:", start_day_of_prev_month)
print("Last day of prev month:", last_day_of_prev_month)

Output:

First day of prev month: 2019-02-01
Last day of prev month: 2019-02-28
2
9

Building on bgporter's answer.

def prev_month_range(when = None): 
    """Return (previous month's start date, previous month's end date)."""
    if not when:
        # Default to today.
        when = datetime.datetime.today()
    # Find previous month: https://stackoverflow.com/a/9725093/564514
    # Find today.
    first = datetime.date(day=1, month=when.month, year=when.year)
    # Use that to find the first day of this month.
    prev_month_end = first - datetime.timedelta(days=1)
    prev_month_start = datetime.date(day=1, month= prev_month_end.month, year= prev_month_end.year)
    # Return previous month's start and end dates in YY-MM-DD format.
    return (prev_month_start.strftime('%Y-%m-%d'), prev_month_end.strftime('%Y-%m-%d'))
7

Its very easy and simple. Do this

from dateutil.relativedelta import relativedelta
from datetime import datetime

today_date = datetime.today()
print "todays date time: %s" %today_date

one_month_ago = today_date - relativedelta(months=1)
print "one month ago date time: %s" % one_month_ago
print "one month ago date: %s" % one_month_ago.date()

Here is the output: $python2.7 main.py

todays date time: 2016-09-06 02:13:01.937121
one month ago date time: 2016-08-06 02:13:01.937121
one month ago date: 2016-08-06
6

Simple, one liner:

import datetime as dt
previous_month = (dt.date.today().replace(day=1) - dt.timedelta(days=1)).month
4

With the Pendulum very complete library, we have the subtract method (and not "subStract"):

import pendulum
today = pendulum.datetime.today()  # 2020, january
lastmonth = today.subtract(months=1)
lastmonth.strftime('%Y%m')
# '201912'

We see that it handles jumping years.

The reverse equivalent is add.

https://pendulum.eustace.io/docs/#addition-and-subtraction

3
def prev_month(date=datetime.datetime.today()):
    if date.month == 1:
        return date.replace(month=12,year=date.year-1)
    else:
        try:
            return date.replace(month=date.month-1)
        except ValueError:
            return prev_month(date=date.replace(day=date.day-1))
1
  • Breaks on March 31st
    – Mike
    Feb 27 '19 at 5:32
1

Just for fun, a pure math answer using divmod. Pretty inneficient because of the multiplication, could do just as well a simple check on the number of month (if equal to 12, increase year, etc)

year = today.year
month = today.month

nm = list(divmod(year * 12 + month + 1, 12))
if nm[1] == 0:
    nm[1] = 12
    nm[0] -= 1
pm = list(divmod(year * 12 + month - 1, 12))
if pm[1] == 0:
    pm[1] = 12
    pm[0] -= 1

next_month = nm
previous_month = pm
1

There is a high level library dateparser that can determine the past date given natural language, and return the corresponding Python datetime object

from dateparser import parse
parse('4 months ago')
1

You might have come here because you're working with Jython in NiFi. This is how I ended up implementing it. I deviated a little from this answer by Robin Carlo Catacutan because accessing last_day_of_prev_month.day wasn't possible due to a Jython datatype issue explained here that for some reason seems to exist in NiFi'S Jython but not in vanilla Jython.

from datetime import date, timedelta
import calendar
    
flowFile = session.get()
    
if flowFile != None:

    first_weekday_in_prev_month, num_days_in_prev_month = calendar.monthrange(date.today().year,date.today().month-1)

    last_day_of_prev_month = date.today().replace(day=1) - timedelta(days=1)
    first_day_of_prev_month = date.today().replace(day=1) - timedelta(days=num_days_in_prev_month)
            
    last_day_of_prev_month = str(last_day_of_prev_month)
    first_day_of_prev_month = str(first_day_of_prev_month)
    
    flowFile = session.putAllAttributes(flowFile, {
        "last_day_of_prev_month": last_day_of_prev_month,
        "first_day_of_prev_month": first_day_of_prev_month
    })
    
session.transfer(flowFile, REL_SUCCESS)
0

Building off the comment of @J.F. Sebastian, you can chain the replace() function to go back one "month". Since a month is not a constant time period, this solution tries to go back to the same date the previous month, which of course does not work for all months. In such a case, this algorithm defaults to the last day of the prior month.

from datetime import datetime, timedelta

d = datetime(2012, 3, 31) # A problem date as an example

# last day of last month
one_month_ago = (d.replace(day=1) - timedelta(days=1))
try:
    # try to go back to same day last month
    one_month_ago = one_month_ago.replace(day=d.day)
except ValueError:
    pass
print("one_month_ago: {0}".format(one_month_ago))

Output:

one_month_ago: 2012-02-29 00:00:00
0
import pandas as pd

lastmonth = int(pd.to_datetime("today").strftime("%Y%m"))-1

print(lastmonth)

202101

1
  • This doesn't work for January of each year: (202201 - 1) = 202200!!!
    – Roman
    Nov 15 at 11:10
0

You can do it as below:

from datetime import datetime, timedelta    
last_month = (datetime.now() - timedelta(days=32)).strftime("%Y%m")

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