5

This question already has an answer here:

The same problem to Find day difference between two dates (excluding weekend days) but it is for javascript. How to do that in Python?

marked as duplicate by jfs python Oct 27 '15 at 15:10

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  • This question seems to be asking for a transliteration of one language source code to another. – Arafangion Aug 29 '11 at 7:20
7

Try it with scikits.timeseries:

import scikits.timeseries as ts
import datetime

a = datetime.datetime(2011,8,1)
b = datetime.datetime(2011,8,29)

diff_business_days = ts.Date('B', b) - ts.Date('B', a)
# returns 20

or with dateutil:

import datetime
from dateutil import rrule

a = datetime.datetime(2011,8,1)
b = datetime.datetime(2011,8,29)

diff_business_days = len(list(rrule.rrule(rrule.DAILY,
                                          dtstart=a,
                                          until=b - datetime.timedelta(days=1),
                                          byweekday=(rrule.MO, rrule.TU, rrule.WE, rrule.TH, rrule.FR))))

scikits.timeseries look depricated : http://pytseries.sourceforge.net/

With pandas instead someone can do :

import pandas as pd

a = datetime.datetime(2015, 10, 1)
b = datetime.datetime(2015, 10, 29)

diff_calendar_days = pd.date_range(a, b).size
diff_business_days = pd.bdate_range(a, b).size
3

Here's a O(1) complexity class solution which uses only built-in Python libraries.

It has constant performance regardless of time interval length and doesn't care about argument order.

#
# by default, the last date is not inclusive
#
def workdaycount(first, second, inc = 0):
   if first == second:
      return 0
   import math
   if first > second:
      first, second = second, first
   if inc:
      from datetime import timedelta
      second += timedelta(days=1)
   interval = (second - first).days
   weekspan = int(math.ceil(interval / 7.0))
   if interval % 7 == 0:
      return interval - weekspan * 2
   else:
      wdf = first.weekday()
      if (wdf < 6) and ((interval + wdf) // 7 == weekspan):
         modifier = 0
      elif (wdf == 6) or ((interval + wdf + 1) // 7 == weekspan):
         modifier = 1
      else:
         modifier = 2
      return interval - (2 * weekspan - modifier)

#
# sample usage
#
print workdaycount(date(2011, 8, 15), date(2011, 8, 22)) # returns 5
print workdaycount(date(2011, 8, 15), date(2011, 8, 22), 1) # last date inclusive, returns 6
1

Not sure that this is the best one solution but it works for me:

from datetime import datetime, timedelta

startDate = datetime(2011, 7, 7)
endDate = datetime(2011, 10, 7)
dayDelta = timedelta(days=1)
diff = 0
while startDate != endDate:
    if startDate.weekday() not in [5,6]:
        diff += 1
    startDate += dayDelta
  • 3
    Or subtract 2 * (the number of days // 7) and then adjust for the position of the start and end days in the week if you want something faster. – agf Aug 29 '11 at 7:39

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