Using Python...

How can I select all of the Sundays (or any day for that matter) in a year?

[ '01/03/2010','01/10/2010','01/17/2010','01/24/2010', ...]

These dates represent the Sundays for 2010. This could also apply to any day of the week I suppose.

up vote 41 down vote accepted

You can use date from the datetime module to find the first Sunday in a year and then keep adding seven days, generating new Sundays:

from datetime import date, timedelta

def allsundays(year):
   d = date(year, 1, 1)                    # January 1st
   d += timedelta(days = 6 - d.weekday())  # First Sunday
   while d.year == year:
      yield d
      d += timedelta(days = 7)

for d in allsundays(2010):
   print d
  • Hey, I know its too late, but how to adjust the code for fetching saturdays – sjpatel Aug 21 '14 at 13:15
  • 2
    @sjpatel: You need to change the offset calculation to start with the first saturday instead of sunday. This could be done with timedelta(days = (5 - d.weekday() + 7) % 7). Or, more explicitly timedelta(days = (5 - d.weekday() if d.weekday() <= 5 else 7 + 5 - d.weekday())) – sth Aug 21 '14 at 14:21

Using the dateutil module, you could generate the list this way:

#!/usr/bin/env python
import dateutil.relativedelta as relativedelta
import dateutil.rrule as rrule
import datetime
year=2010
before=datetime.datetime(year,1,1)
after=datetime.datetime(year,12,31)
rr = rrule.rrule(rrule.WEEKLY,byweekday=relativedelta.SU,dtstart=before)
print rr.between(before,after,inc=True)

Although finding all Sundays is not too hard to do without dateutil, the module is handy especially if you have more complicated or varied date calculations.

If you are using Debian/Ubuntu, dateutil is provided by the python-dateutil package.

You can iterate over a calendar for that year. The below should return all Tuesdays and Thursdays for a given year.

# Returns all Tuesdays and Thursdays of a given year
from datetime import date
import calendar

year = 2016
c = calendar.TextCalendar(calendar.SUNDAY)
for m in range(1,13):
    for i in c.itermonthdays(year,m):
        if i != 0:                                      #calendar constructs months with leading zeros (days belongng to the previous month)
            day = date(year,m,i)
            if day.weekday() == 1 or day.weekday() == 3: #if its Tuesday or Thursday
                print "%s-%s-%s" % (year,m,i)
  • 2
    Nice answer! For strangers I want to notice, just add brackets to the print expression and this code will run by Python 3 – Queue Overflow Jan 10 '17 at 23:22

Pandas has great functionality for this purpose with its date_range function.

The result is a pandas DatetimeIndex, but can be converted to a list easily.

import pandas as pd

def allsundays(year):
    return pd.date_range(start=str(year), end=str(year+1), 
                         freq='W-SUN').strftime('%m/%d/%Y').tolist()

allsundays(2017)[:5]  # First 5 Sundays of 2017
# ['01/01/2017', '01/08/2017', '01/15/2017', '01/22/2017', '01/29/2017']

using list comprehension:

from datetime import date, timedelta
dstart = date(2018,1,1)
dend = date(2018,12,31)
# this will return all sundays between start-end dates.
days = [dstart + timedelta(days=x) for x in range((dend-dstart).days + 1) if (dstart + timedelta(days=x)).weekday() == 6]
  • sorry i took it from a pesonal piece of code needed to retrieve all weekend days, now edited to reflect a correct answer. – Bravhek Mar 7 at 20:40

Here's a complete generator function that builds on the solution from @sth. It includes the crucial fix that was mentioned in his solution's comments.

You can specify the day of week (using Python's indexing with 0=Monday to 6=Sunday), the starting date, and the number of weeks to enumerate.

def get_all_dates_of_day_of_week_in_year(day_of_week, start_year, start_month, 
                                         start_day, max_weeks=None):
    '''
    Generator function to enumerate all calendar dates for a specific day
    of the week during one year. For example, all Wednesdays in 2018 are:
    1/3/2018, 1/10/2018, 1/17/2018, 1/24/2018, 1/31/2018, 2/7/2018, etc.

    Parameters:
    ----------
    day_of_week : int
        The day_of_week should be one of these values: 0=Monday, 1=Tuesday, 
        2=Wednesday, 3=Thursday, 4=Friday, 5=Saturday, 6=Sunday.
    start_year : int
    start_month : int
    start_day : int
        The starting date from which to list out all the dates
    max_weeks : int or None
        If None, then list out all dates for the rest of the year.
        Otherwise, end the list after max_weeks number of weeks.
    '''

    if day_of_week < 0 or day_of_week > 6:
        raise ValueError('day_of_week should be in [0, 6]')

    date_iter = date(start_year, start_month, start_day)

    # First desired day_of_week
    date_iter += timedelta(days=(day_of_week - date_iter.weekday() + 7) % 7) 
    week = 1
    while date_iter.year == start_year:
        yield date_iter
        date_iter += timedelta(days=7)
        if max_weeks is not None:
            week += 1
            if week > max_weeks:
                break

Example usage to get all Wednesdays starting on January 1, 2018, for 10 weeks.

import calendar
day_of_week = 2
max_weeks = 10
for d in get_all_dates_of_day_of_week_in_year (day_of_week, 2018, 1, 1, max_weeks):
    print "%s, %d/%d/%d" % (calendar.day_name[d.weekday()], d.year, d.month, d.day)

The above code produces:

Wednesday, 2018/1/3
Wednesday, 2018/1/10
Wednesday, 2018/1/17
Wednesday, 2018/1/24
Wednesday, 2018/1/31
Wednesday, 2018/2/7
Wednesday, 2018/2/14
Wednesday, 2018/2/21
Wednesday, 2018/2/28
Wednesday, 2018/3/7

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.