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how can I calculate number of days between two dates ignoring weekends ?

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How are you representing the dates? –  aaronasterling Sep 1 '10 at 6:04
    
do you want also to exclude public holidays? –  djna Sep 1 '10 at 6:05

8 Answers 8

>>> from datetime import date,timedelta
>>> fromdate = date(2010,1,1)
>>> todate = date(2010,3,31)
>>> daygenerator = (fromdate + timedelta(x + 1) for x in xrange((todate - fromdate).days))
>>> sum(1 for day in daygenerator if day.weekday() < 5)
63

This creates a generator using a generator expression which will yield the list of days to get from the fromdate to todate.

We could then create a list from the generator, filtering out weekends using the weekday() function, and the size of the list gives the number of days we want. However, to save having the whole list in memory which could be a problem if the dates are a long time apart we use another generator expression which filters out weekends but returns 1 instead of each date. We can then just add all these 1s together to get the length without having to store the whole list.

Note, if fromdate == todate this calculate 0 not 1.

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3  
Your note indicates that this counts up to but not including todate. Just change the xrange expression to xrange((todate-fromdate).days + 1), and that will give you a daygenerator inclusive of todate. Also, just an aside, but since True = 1, your sum expression can simply read (if you care), sum(day.weekday() < 5 for day in daygenerator). Maybe a bit clever, but this not a terrible idiom for counting the number of things that match a condition. –  Paul McGuire Sep 1 '10 at 9:25
    
This is a great use for a generator expression! –  br1ckb0t Sep 19 '14 at 4:30

The answers given so far will work, but are highly inefficient if the dates are a large distance apart (due to the loop).

This should work:

import datetime

start = datetime.date(2010,1,1)
end = datetime.date(2010,3,31)

daydiff = end.weekday() - start.weekday()

days = ((end-start).days - daydiff) / 7 * 5 + min(daydiff,5) - (max(end.weekday() - 4, 0) % 5)

This turns it into whole weeks (which have 5 working days) and then deals with the remaining days.

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b-a undefined, should be end-start? –  Tony Veijalainen Sep 1 '10 at 20:08
    
Good point - I wrote it with a and b and then changed to meaningful names. I see you have worked on the edge cases that I may have missed. I may revisit this if I have time and check it is watertight. –  neil Sep 3 '10 at 9:40

The lazy way is to pip install workdays to get the python package that does exactly this.

https://pypi.python.org/pypi/workdays/

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import datetime

# some givens
dateB = datetime.date(2010, 8, 31)
dateA = datetime.date(2010, 7, 8)
delta = datetime.timedelta(1)

# number of days
days = 0

while dateB != dateA:
    #subtract a day
    dateB -= delta

    # if not saturday or sunday, add to count
    if dateB.isoweekday() not in (6, 7):
        days += 1

I think something like that should work. I don't have the tools to test it right now.

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Fixed Saturday to Sunday same weekend to function.

from __future__ import print_function
from datetime import date, timedelta

def workdaycount(startdate,enddate):
    if startdate.year != enddate.year:
        raise ValueError("Dates to workdaycount must be during same year")
    if startdate == enddate:
        return int(startdate.weekday() < 5)
    elif (enddate - startdate).days == 1 and enddate.weekday() == 6: # Saturday and Sunday same weekend
        return 0
    first_week_workdays = min(startdate.weekday(), 4) + 1
    last_week_workdays = min(enddate.weekday(), 4) + 1
    workweeks = int(enddate.strftime('%W')) - int(startdate.strftime('%W'))
    return (5 * workweeks)  + last_week_workdays - first_week_workdays + 1

for comment, start,end in (
     ("Two dates same weekend:", date(2010,9,18), date(2010,9,19)),
     ("Same dates during weekend:", date(2010,9,19), date(2010,9,19)),
     ("Same dates during week", date(2010,9,16), date(2010,9,16)),
     ("Dates during same week", date(2010,9,13), date(2010,9,16)),
     ("Dates during following weeks", date(2010,9,7), date(2010,9,16)),
     ("Dates after two weeks", date(2010,9,7), date(2010,9,24)),
     ("Dates from other solution", date(2010,1, 1), date(2010, 3,31))):

    daydiff = end.weekday() - start.weekday()
    days = ((end-start).days - daydiff) / 7 * 5 + min(daydiff,5)
    daygenerator = (start + timedelta(x + 1) for x in xrange((end - start).days))
    gendays = sum(day.weekday() < 5 for day in daygenerator)

    print(comment,start,end,workdaycount(start,end))
    print('Other formula:', days, '. Generator formula: ', gendays)
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I adapted Dave Webb's answer into a function and added some test cases:

import datetime

def weekdays_between(start, end):
    return sum([1 for daydelta in xrange(1, (end - start).days + 1)
                if (start + datetime.timedelta(daydelta)).weekday() < 5])

assert 7 == weekdays_between(
    datetime.date(2014,2,19),
    datetime.date(2014,3,1))

assert 1 == weekdays_between(
    datetime.date(2014,2,19),
    datetime.date(2014,2,20))

assert 2 == weekdays_between(
    datetime.date(2014,2,19),
    datetime.date(2014,2,22))

assert 2 == weekdays_between(
    datetime.date(2014,2,19),
    datetime.date(2014,2,23))

assert 3 == weekdays_between(
    datetime.date(2014,2,19),
    datetime.date(2014,2,24))

assert 1 == weekdays_between(
    datetime.date(2014,2,21),
    datetime.date(2014,2,24))

assert 1 == weekdays_between(
    datetime.date(2014,2,22),
    datetime.date(2014,2,24))

assert 2 == weekdays_between(
    datetime.date(2014,2,23),
    datetime.date(2014,2,25))
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I think the cleanest solution is to use the numpy function busday_count

import numpy as np
import datetime as dt

start = dt.date( 2014, 1, 1 )
end = dt.date( 2014, 1, 16 )

days = np.busday_count( start, end )
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I tried the top two answers (Dave Webb's and neil's) and for some reason I was getting incorrect answers from both. It might have been an error on my part but I went with an existing library on the basis that it probably had more functionality and was better tested for edge cases:

https://bitbucket.org/shelldweller/python-bizdatetime

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