Is there a way using Python's standard library to easily determine (i.e. one function call) the last day of a given month?

If the standard library doesn't support that, does the dateutil package support this?

  • 32
    Am I the only one who thought that you were asking for the Last Day of Monty Python? :D [20081124 Moved from reply to a comment --- the original reply was posted before the comment system was introduced on SO] – onnodb Nov 24 '08 at 20:38

26 Answers 26

up vote 835 down vote accepted

I didn't notice this earlier when I was looking at the documentation for the calendar module, but a method called monthrange provides this information:

monthrange(year, month)
    Returns weekday of first day of the month and number of days in month, for the specified year and month.

>>> import calendar
>>> calendar.monthrange(2002,1)
(1, 31)
>>> calendar.monthrange(2008,2)
(4, 29)
>>> calendar.monthrange(2100,2)
(0, 28)

so:

calendar.monthrange(year, month)[1]

seems like the simplest way to go.

Just to be clear, monthrange supports leap years as well:

>>> from calendar import monthrange
>>> monthrange(2012, 2)
(2, 29)

My previous answer still works, but is clearly suboptimal.

  • This is not a correct answer to the original question! What if the last day of the month is a Sat/Sun. – Mahdi Jul 25 '17 at 21:08
  • 3
    @mahdi: it is correct, the second number is the "nr of days in the month" == "the last day", irrespective what kind of day that is. – RickyA Dec 1 '17 at 10:49
  • It's returns wrong day for year 1800 february. I don't get it – sword1st May 2 at 15:52
  • 3
    @sword1st, I see 28 as the answer, which is correct, using the rules for the Gregorian calendar – Blair Conrad May 3 at 13:44

If you don't want to import the calendar module, a simple two-step function can also be:

import datetime

def last_day_of_month(any_day):
    next_month = any_day.replace(day=28) + datetime.timedelta(days=4)  # this will never fail
    return next_month - datetime.timedelta(days=next_month.day)

Outputs:

>>> for month in range(1, 13):
...     print last_day_of_month(datetime.date(2012, month, 1))
...
2012-01-31
2012-02-29
2012-03-31
2012-04-30
2012-05-31
2012-06-30
2012-07-31
2012-08-31
2012-09-30
2012-10-31
2012-11-30
2012-12-31

EDIT: See @Blair Conrad's answer for a cleaner solution


>>> import datetime
>>> datetime.date (2000, 2, 1) - datetime.timedelta (days = 1)
datetime.date(2000, 1, 31)
>>> 
  • 32
    I would actually call this cleaner, except for the fact that it fails in December when today.month + 1 == 13 and you get a ValueError. – fletom Mar 18 '14 at 22:10

EDIT: see my other answer. It has a better implementation than this one, which I leave here just in case someone's interested in seeing how one might "roll your own" calculator.

@John Millikin gives a good answer, with the added complication of calculating the first day of the next month.

The following isn't particularly elegant, but to figure out the last day of the month that any given date lives in, you could try:

def last_day_of_month(date):
    if date.month == 12:
        return date.replace(day=31)
    return date.replace(month=date.month+1, day=1) - datetime.timedelta(days=1)

>>> last_day_of_month(datetime.date(2002, 1, 17))
datetime.date(2002, 1, 31)
>>> last_day_of_month(datetime.date(2002, 12, 9))
datetime.date(2002, 12, 31)
>>> last_day_of_month(datetime.date(2008, 2, 14))
datetime.date(2008, 2, 29)
  • It sounds silly but How do I get first day of month similarly like this. – Kishan Jul 16 '16 at 9:35
  • 7
    Is it not always 1? – Blair Conrad Jul 17 '16 at 10:41
  • Yeah but i was confused I was looking something like this : start_date = date(datetime.now().year, datetime.now().month, 1) – Kishan Jul 18 '16 at 7:45
  • 2
    Ah. today = datetime.date.today(); start_date = today.replace(day=1). You'd want to avoid calling datetime.now twice, in case you called it just before midnight on December 31 and then just after midnight. You'd get 2016-01-01 instead of either 2016-12-01 or 2017-01-01. – Blair Conrad Jul 19 '16 at 10:34

This is actually pretty easy with dateutil.relativedelta (package python-datetutil for pip). day=31 will always always return the last day of the month.

Example:

from datetime import datetime
from dateutil.relativedelta import relativedelta

date_in_feb = datetime.datetime(2013, 2, 21)
print datetime.datetime(2013, 2, 21) + relativedelta(day=31)  # End-of-month
>>> datetime.datetime(2013, 2, 28, 0, 0)
  • 5
    I personally like relativedelta(months=+1, seconds=-1) seems more obvious what is going on – BenH Mar 27 '13 at 18:14
  • You're wrong. datetime(2014, 2, 1) + relativedelta(days=31) gives datetime(2014, 3, 4, 0, 0)... – Emmanuel Jun 18 '14 at 7:40
  • 6
    you used days= instead of day= – Vince Spicer Aug 26 '14 at 19:24
  • @VinceSpicer working for leap years? – CarMoreno May 30 at 19:42

Using relativedelta you would get last date of month like this:

from dateutil.relativedelta import relativedelta
last_date_of_month = datetime(mydate.year,mydate.month,1)+relativedelta(months=1,days=-1)

The idea is to get the fist day of month and use relativedelta to go 1 month ahead and 1 day back so you would get the last day of the month you wanted.

Another solution would be to do something like this:

from datetime import datetime

def last_day_of_month(year, month):
    """ Work out the last day of the month """
    last_days = [31, 30, 29, 28, 27]
    for i in last_days:
        try:
            end = datetime(year, month, i)
        except ValueError:
            continue
        else:
            return end.date()
    return None

And use the function like this:

>>> 
>>> last_day_of_month(2008, 2)
datetime.date(2008, 2, 29)
>>> last_day_of_month(2009, 2)
datetime.date(2009, 2, 28)
>>> last_day_of_month(2008, 11)
datetime.date(2008, 11, 30)
>>> last_day_of_month(2008, 12)
datetime.date(2008, 12, 31)
  • 4
    Too complex, breaks the third rule of the zen of python. – markuz Apr 1 '11 at 22:32
  • 11
    Suboptimal solution, but it works. Doesn't deserve -3. +1 ;) – Gringo Suave Jul 1 '11 at 20:24
from datetime import timedelta
(any_day.replace(day=1) + timedelta(days=32)).replace(day=1) - timedelta(days=1)
  • This is what bugs are made of ;) Try with 31 of January – LeartS Nov 3 '16 at 18:51
  • @LeartS: it works for me. What happens when you try? – Collin Anderson Nov 17 '16 at 18:08
  • set any_day to 31 of January,this would not work – Edye Chan May 4 at 3:30
  • It works. any_day is Jan 31, we replace day with 1, so Jan 1, add 32 days, we get Feb 2nd, replace with day=1 again and we get Feb 1. Subtract one day and we get Jan 31. I don't see what the issue is. What day do you get? – Collin Anderson May 4 at 12:58
>>> import datetime
>>> import calendar
>>> date  = datetime.datetime.now()

>>> print date
2015-03-06 01:25:14.939574

>>> print date.replace(day = 1)
2015-03-01 01:25:14.939574

>>> print date.replace(day = calendar.monthrange(date.year, date.month)[1])
2015-03-31 01:25:14.939574
import datetime

now = datetime.datetime.now()
start_month = datetime.datetime(now.year, now.month, 1)
date_on_next_month = start_month + datetime.timedelta(35)
start_next_month = datetime.datetime(date_on_next_month.year, date_on_next_month.month, 1)
last_day_month = start_next_month - datetime.timedelta(1)

if you are willing to use an external library, check out http://crsmithdev.com/arrow/

U can then get the last day of the month with:

import arrow
arrow.utcnow().ceil('month').date()

This returns a date object which you can then do your manipulation.

To get the last date of the month we do something like this:

from datetime import date, timedelta
import calendar
last_day = date.today().replace(day=calendar.monthrange(date.today().year, date.today().month)[1])

Now to explain what we are doing here we will break it into two parts:

first is getting the number of days of the current month for which we use monthrange which Blair Conrad has already mentioned his solution:

calendar.monthrange(date.today().year, date.today().month)[1]

second is getting the last date itself which we do with the help of replace e.g

>>> date.today()
datetime.date(2017, 1, 3)
>>> date.today().replace(day=31)
datetime.date(2017, 1, 31)

and when we combine them as mentioned on the top we get a dynamic solution.

  • Although this code may help to solve the problem, it doesn't explain why and/or how it answers the question. Providing this additional context would significantly improve its long-term educational value. Please edit your answer to add explanation, including what limitations and assumptions apply. – Toby Speight Aug 30 '16 at 15:57
  • This seems the most straightforward.. if you are wiling to give it two lines you can get a nice date.replace(day=day) so everyone knows what's going on. – Adam Starrh Dec 21 '17 at 21:08

For me it's the simplest way:

selected_date = date(some_year, some_month, some_day)

if selected_date.month == 12: # December
     last_day_selected_month = date(selected_date.year, selected_date.month, 31)
else:
     last_day_selected_month = date(selected_date.year, selected_date.month + 1, 1) - timedelta(days=1)

The easiest way (without having to import calendar), is to get the first day of the next month, and then subtract a day from it.

import datetime as dt
from dateutil.relativedelta import relativedelta

thisDate = dt.datetime(2017, 11, 17)

last_day_of_the_month = dt.datetime(thisDate.year, (thisDate + relativedelta(months=1)).month, 1) - dt.timedelta(days=1)
print last_day_of_the_month

Output:

datetime.datetime(2017, 11, 30, 0, 0)

PS: This code runs faster as compared to the import calendarapproach; see below:

import datetime as dt
import calendar
from dateutil.relativedelta import relativedelta

someDates = [dt.datetime.today() - dt.timedelta(days=x) for x in range(0, 10000)]

start1 = dt.datetime.now()
for thisDate in someDates:
    lastDay = dt.datetime(thisDate.year, (thisDate + relativedelta(months=1)).month, 1) - dt.timedelta(days=1)

print ('Time Spent= ', dt.datetime.now() - start1)


start2 = dt.datetime.now()
for thisDate in someDates:
    lastDay = dt.datetime(thisDate.year, 
                          thisDate.month, 
                          calendar.monthrange(thisDate.year, thisDate.month)[1])

print ('Time Spent= ', dt.datetime.now() - start2)

OUTPUT:

Time Spent=  0:00:00.097814
Time Spent=  0:00:00.109791

This code assumes that you want the date of the last day of the month (i.e., not just the DD part, but the entire YYYYMMDD date)

  • why would you not want to import calendar? – Adam Venturella Nov 28 '17 at 14:02
  • Because it's faster. I have modified my answer above to include this. – Vishal Nov 28 '17 at 19:34
  • @Vishal you got the concept right but the following line was not: ``` dt.datetime(thisDate.year, (thisDate + relativedelta(months=1)).month, 1) - dt.timedelta(days=1) ``` especially if the month is at the end of the year. try ``` last_date_of_month = \ first_date_of_month + relativedelta(months=1) - relativedelta(days=1) ``` instead – kyng Mar 6 at 22:09

You can calculate the end date yourself. the simple logic is to subtract a day from the start_date of next month. :)

So write a custom method,

import datetime

def end_date_of_a_month(date):


    start_date_of_this_month = date.replace(day=1)

    month = start_date_of_this_month.month
    year = start_date_of_this_month.year
    if month == 12:
        month = 1
        year += 1
    else:
        month += 1
    next_month_start_date = start_date_of_this_month.replace(month=month, year=year)

    this_month_end_date = next_month_start_date - datetime.timedelta(days=1)
    return this_month_end_date

Calling,

end_date_of_a_month(datetime.datetime.now().date())

It will return the end date of this month. Pass any date to this function. returns you the end date of that month.

This does not address the main question, but one nice trick to get the last weekday in a month is to use calendar.monthcalendar, which returns a matrix of dates, organized with Monday as the first column through Sunday as the last.

# Some random date.
some_date = datetime.date(2012, 5, 23)

# Get last weekday
last_weekday = np.asarray(calendar.monthcalendar(some_date.year, some_date.month))[:,0:-2].ravel().max()

print last_weekday
31

The whole [0:-2] thing is to shave off the weekend columns and throw them out. Dates that fall outside of the month are indicated by 0, so the max effectively ignores them.

The use of numpy.ravel is not strictly necessary, but I hate relying on the mere convention that numpy.ndarray.max will flatten the array if not told which axis to calculate over.

Use pandas!

def isMonthEnd(date):
    return date + pd.offsets.MonthEnd(0) == date

isMonthEnd(datetime(1999, 12, 31))
True
isMonthEnd(pd.Timestamp('1999-12-31'))
True
isMonthEnd(pd.Timestamp(1965, 1, 10))
False
  • you can also implemented using pd.series.dt.is_month_end link – Pablo Oct 2 '17 at 20:12

I prefer this way

import datetime
import calendar

date=datetime.datetime.now()
month_end_date=datetime.datetime(date.year,date.month,1) + datetime.timedelta(days=calendar.monthrange(date.year,date.month)[1] - 1)
import calendar
from time import gmtime, strftime
calendar.monthrange(int(strftime("%Y", gmtime())), int(strftime("%m", gmtime())))[1]

Output:

31



This will print the last day of whatever the current month is. In this example it was 15th May, 2016. So your output may be different, however the output will be as many days that the current month is. Great if you want to check the last day of the month by running a daily cron job.

So:

import calendar
from time import gmtime, strftime
lastDay = calendar.monthrange(int(strftime("%Y", gmtime())), int(strftime("%m", gmtime())))[1]
today = strftime("%d", gmtime())
lastDay == today

Output:

False

Unless it IS the last day of the month.

If you want to make your own small function, this is a good starting point:

def eomday(year, month):
    """returns the number of days in a given month"""
    days_per_month = [31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31]
    d = days_per_month[month - 1]
    if month == 2 and (year % 4 == 0 and year % 100 != 0 or year % 400 == 0):
        d = 29
    return d

For this you have to know the rules for the leap years:

  • every fourth year
  • with the exception of every 100 year
  • but again every 400 years
  • Sure, but the system libraries already have this data, and should the rules be changed by decree the updating of the libraries is somebody else's problem. – Jasen Sep 4 '17 at 4:54
  • Well, possible, but highly unlikely, and even if - it would only bite you in about 2000 years... en.wikipedia.org/wiki/Gregorian_calendar#Accuracy – mathause Sep 4 '17 at 8:35
  • These rules don't work for 500 years into the past I have no confidence that they will stand for thousands of years into the future, – Jasen Sep 8 '17 at 0:26

If you pass in a date range, you can use this:

def last_day_of_month(any_days):
    res = []
    for any_day in any_days:
        nday = any_day.days_in_month -any_day.day
        res.append(any_day + timedelta(days=nday))
    return res

In the code below 'get_last_day_of_month(dt)' will give you this, with date in string format like 'YYYY-MM-DD'.

import datetime

def DateTime( d ):
    return datetime.datetime.strptime( d, '%Y-%m-%d').date()

def RelativeDate( start, num_days ):
    d = DateTime( start )
    return str( d + datetime.timedelta( days = num_days ) )

def get_first_day_of_month( dt ):
    return dt[:-2] + '01'

def get_last_day_of_month( dt ):
    fd = get_first_day_of_month( dt )
    fd_next_month = get_first_day_of_month( RelativeDate( fd, 31 ) )
    return RelativeDate( fd_next_month, -1 )

Here is a solution based python lambdas:

next_month = lambda y, m, d: (y, m + 1, 1) if m + 1 < 13 else ( y+1 , 1, 1)
month_end  = lambda dte: date( *next_month( *dte.timetuple()[:3] ) ) - timedelta(days=1)

The next_month lambda finds the tuple representation of the first day of the next month, and rolls over to the next year. The month_end lambda transforms a date (dte) to a tuple, applies next_month and creates a new date. Then the "month's end" is just the next month's first day minus timedelta(days=1).

import datetime
today = datetime.datetime.today() # currentr day for date example
last_date = today + relativedelta(day=31)
print "Date:", last_date.date(),"Day:", last_date.date().day

output:

Date: 2018-10-31 Day: 31

I hope,It's usefull for very much..Try it on this way..we must need import some package

import time
from datetime import datetime, date
from datetime import timedelta
from dateutil import relativedelta

  start_date = fields.Date(
        string='Start Date', 
        required=True,
        ) 

    end_date = fields.Date(
        string='End Date', 
        required=True,
        )

    _defaults = {
        'start_date': lambda *a: time.strftime('%Y-%m-01'),
        'end_date': lambda *a: str(datetime.now() + relativedelta.relativedelta(months=+1, day=1, days=-1))[:10],
    }
  • Can you please explain this answer? This code doesn't even run. – Unni Sep 27 '17 at 12:27
  • must import relative package....Then create one lambda function creating map value to filed.... if you want last date only take last date.. last_date = fields.Date(string='Last Date', required=True, ) _defaults = { 'last_date': lambda *a: str(datetime.now() + relativedelta.relativedelta(months=+1, day=1, days=-1))[:10], } – Vinoth Jo Sep 27 '17 at 13:29
  • I'm not sure why you've posted an answer that is related to an open source ERP system (Odoo). This implementation uses way too many imports too.. – Yenthe Oct 31 '17 at 13:39

i have a simple solution:

import datetime   
datetime.date(2012,2, 1).replace(day=1,month=datetime.date(2012,2,1).month+1)-timedelta(days=1)
datetime.date(2012, 2, 29)
  • 2
    This won't work for december; you cannot use 13 for a month value. – Martijn Pieters Nov 15 '12 at 7:12

protected by jezrael Nov 19 '17 at 6:18

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