Week number of the month?
Question:
Does python offer a way to easily get the current week of the month (1:4) ?
Answers:
If your first week starts on the first day of the month you can use integer division:
import datetime
day_of_month = datetime.datetime.now().day
week_number = (day_of_month - 1) // 7 + 1
Check out the python calendar module
I found a quite simple way:
import datetime
def week(year, month, day):
first_week_month = datetime.datetime(year, month, 1).isocalendar()[1]
if month == 1 and first_week_month > 10:
first_week_month = 0
user_date = datetime.datetime(year, month, day).isocalendar()[1]
if month == 1 and user_date > 10:
user_date = 0
return user_date - first_week_month
returns 0 if first week
In order to use straight division, the day of month for the date you’re looking at needs to be adjusted according to the position (within the week) of the first day of the month. So, if your month happens to start on a Monday (the first day of the week), you can just do division as suggested above. However, if the month starts on a Wednesday, you’ll want to add 2 and then do the division. This is all encapsulated in the function below.
from math import ceil
def week_of_month(dt):
""" Returns the week of the month for the specified date.
"""
first_day = dt.replace(day=1)
dom = dt.day
adjusted_dom = dom + first_day.weekday()
return int(ceil(adjusted_dom/7.0))
This version could be improved but as a first look in python modules (datetime and calendar), I make this solution, I hope could be useful:
from datetime import datetime
n = datetime.now()
#from django.utils.timezone import now
#n = now() #if you use django with timezone
from calendar import Calendar
cal = Calendar() # week starts Monday
#cal = Calendar(6) # week stars Sunday
weeks = cal.monthdayscalendar(n.year, n.month)
for x in range(len(weeks)):
if n.day in weeks[x]:
print x+1
I know this is years old, but I spent a lot of time trying to find this answer. I made my own method and thought I should share.
The calendar module has a monthcalendar method that returns a 2D array where each row represents a week. For example:
import calendar
calendar.monthcalendar(2015,9)
result:
[[0,0,1,2,3,4,5],
[6,7,8,9,10,11,12],
[13,14,15,16,17,18,19],
[20,21,22,23,24,25,26],
[27,28,29,30,0,0,0]]
So numpy’s where is your friend here. And I’m in USA so I want the week to start on Sunday and the first week to be labelled 1:
import calendar
import numpy as np
calendar.setfirstweekday(6)
def get_week_of_month(year, month, day):
x = np.array(calendar.monthcalendar(year, month))
week_of_month = np.where(x==day)[0][0] + 1
return(week_of_month)
get_week_of_month(2015,9,14)
returns
3
This should do it.
#! /usr/bin/env python2
import calendar, datetime
#FUNCTIONS
def week_of_month(date):
"""Determines the week (number) of the month"""
#Calendar object. 6 = Start on Sunday, 0 = Start on Monday
cal_object = calendar.Calendar(6)
month_calendar_dates = cal_object.itermonthdates(date.year,date.month)
day_of_week = 1
week_number = 1
for day in month_calendar_dates:
#add a week and reset day of week
if day_of_week > 7:
week_number += 1
day_of_week = 1
if date == day:
break
else:
day_of_week += 1
return week_number
#MAIN
example_date = datetime.date(2015,9,21)
print "Week",str(week_of_month(example_date))
#Returns 'Week 4'
Josh’s answer has to be tweaked slightly to accomodate the first day falling on a Sunday.
def get_week_of_month(date):
first_day = date.replace(day=1)
day_of_month = date.day
if(first_day.weekday() == 6):
adjusted_dom = (1 + first_day.weekday()) / 7
else:
adjusted_dom = day_of_month + first_day.weekday()
return int(ceil(adjusted_dom/7.0))
Josh’ answer seems the best but I think that we should take into account the fact that a week belongs to a month only if its Thursday falls into that month. At least that’s what the iso says.
According to that standard, a month can have up to 5 weeks. A day could belong to a month, but the week it belongs to may not.
I have taken into account that just by adding a simple
if (first_day.weekday()>3) :
return ret_val-1
else:
return ret_val
where ret_val is exactly Josh’s calculated value. Tested on June 2017 (has 5 weeks) and on September 2017. Passing ‘2017-09-01’ returns 0 because that day belongs to a week that does not belong to September.
The most correct way would be to have the method return both the week number and the month name the input day belongs to.
Check out the package Pendulum
>>> dt = pendulum.parse('2018-09-30')
>>> dt.week_of_month
5
Move to last day of week in month and divide to 7
from math import ceil
def week_of_month(dt):
""" Returns the week of the month for the specified date.
"""
# weekday from monday == 0 ---> sunday == 6
last_day_of_week_of_month = dt.day + (7 - (1 + dt.weekday()))
return int(ceil(last_day_of_week_of_month/7.0))
def week_of_month(date_value):
week = date_value.isocalendar()[1] - date_value.replace(day=1).isocalendar()[1] + 1
return date_value.isocalendar()[1] if week < 0 else week
date_value should in timestamp format
This will give the perfect answer in all the cases. It is purely based on ISO calendar
A variation on @Manuel Solorzano’s answer:
from calendar import monthcalendar
def get_week_of_month(year, month, day):
return next(
(
week_number
for week_number, days_of_week in enumerate(monthcalendar(year, month), start=1)
if day in days_of_week
),
None,
)
E.g.:
>>> get_week_of_month(2020, 9, 1)
1
>>> get_week_of_month(2020, 9, 30)
5
>>> get_week_of_month(2020, 5, 35)
None
Say we have some month’s calender as follows:
Mon Tue Wed Thur Fri Sat Sun
1 2 3
4 5 6 7 8 9 10
We say day 1 ~ 3 belongs to week 1 and day 4 ~ 10 belongs to week 2 etc.
In this case, I believe the week_of_month for a specific day should be calculated as follows:
import datetime
def week_of_month(year, month, day):
weekday_of_day_one = datetime.date(year, month, 1).weekday()
weekday_of_day = datetime.date(year, month, day)
return (day - 1)//7 + 1 + (weekday_of_day < weekday_of_day_one)
However, if instead we want to get the nth of the weekday that date is, such as day 1 is the 1st Friday, day 8 is the 2nd Friday, and day 6 is the 1st Wednesday, then we can simply return (day – 1)//7 + 1
import datetime
def week_number_of_month(date_value):
week_number = (date_value.isocalendar()[1] - date_value.replace(day=1).isocalendar()[1] + 1)
if week_number == -46:
week_number = 6
return week_number
date_given = datetime.datetime(year=2018, month=12, day=31).date()
week_number_of_month(date_given)
The answer you are looking for is (dm-dw+(dw-dm)%7)/7+1 where dm is the day of the month, dw is the day of the week, and % is the positive remainder.
This comes from relating the month offset (mo) and the week of the month (wm), where the month offset is how far into the week the first day starts. If we consider all of these variables to start at 0 we have
wm*7+dw = dm+mo
You can solve this modulo 7 for mo as that causes the wm variable drops out as it only appears as a multiple of 7
dw = dm+mo (%7)
mo = dw-dm (%7)
mo = (dw-dm)%7 (since the month offset is 0-6)
Then you just substitute the month offset into the original equation and solve for wm
wm*7+dw = dm+mo
wm*7 = dm-dw + mo
wm*7 = dm-dw + (dw-dm)%7
wm = (dm-dw + (dw-dm)%7) / 7
As dm and dw are always paired, these can be offset by any amount, so, switching everything to start a 1 only changes the the equation to (dm-dw + (dw-dm)%7)/7 + 1.
Of course the python datetime library starts dm at 1 and dw at 0. So, assuming date is a datatime.date object, you can go with
(date.day-1-date.dayofweek() + (date.dayofweek()-date.day+1)%7) / 7 + 1
As the inner bit is always a multiple of 7 (it is literally dw*7), you can see that the first -date.dayofweek() simply adjusts the value backwards to closest multiple of 7. Integer division does this too, so it can be further simplified to
(date.day-1 + (date.dayofweek()-date.day+1)%7) // 7 + 1
Be aware that dayofweek() puts Sunday at the end of the week.
You can simply do as follow:
- First extract the month and the week of year number
df['month'] = df['Date'].dt.month
df['week'] = df['Date'].dt.week
- Then group by month and rank the week numbers
df['weekOfMonth'] = df.groupby('month')["week"].rank("dense", ascending=False)
One more solution, where Sunday is first day of week, base Python only.
def week_of_month(dt):
""" Returns the week of the month for the specified date.
TREATS SUNDAY AS FIRST DAY OF WEEK!
"""
first_day = dt.replace(day=1)
dom = dt.day
adjusted_dom = dom + (first_day.weekday() + 1) % 7
return (adjusted_dom - 1) // 7 + 1
def week_number(time_ctime = None):
import time
import calendar
if time_ctime == None:
time_ctime = str(time.ctime())
date = time_ctime.replace(' ',' ').split(' ')
months = {'Jan':1,'Feb':2,'Mar':3,'Apr':4,'May':5,'Jun':6,'Jul':7,'Aug':8,'Sep':9,'Oct':10,'Nov':11,'Dec':12}
week, day, month, year = (-1, str(date[2]), months[date[1]], int(date[-1]))
cal = calendar.monthcalendar(year,month)
for wk in range(len(cal)):
wstr = [str(x) for x in cal[wk]]
if day in wstr:
week = wk
break
return week
import time
print(week_number())
print(week_number(time.ctime()))
An Easy way to get a week number of month;
if the datatype is datetime64 then
week_number_of_month = date_value.dayofweek
data[‘wk_of_mon’] = (data[‘dataset_date’].dt.day – 1) // 7 + 1
the best solution that I found is this function
def get_week_of_month(date):
date = datetime.strptime(date, "%Y-%m-%d") # date is str
first_day = date.replace(day=1)
print(first_day)
day_of_month = date.day
print(day_of_month)
print(first_day.weekday())
if(first_day.weekday() == 6):
adjusted_dom = day_of_month + ((1 + first_day.weekday()) / 7)
else:
adjusted_dom = day_of_month + first_day.weekday()
print(adjusted_dom)
return int(ceil(adjusted_dom/7.0))
This solution was intended to replicate the Java implementation of WeekOfMonth in Python and follow a pattern similar to the ISO 8601 convention.
-
First day of the week is Monday
-
Minimal number of days in the first week is 4. This implies weeks starting on and between Monday and Thursday inclusive are full weeks
from datetime import date
def week_of_month(calendar_date: date) -> int:
"""
Python implementation of Week of Month
following ISO 8601 https://en.wikipedia.org/wiki/ISO_week_date,
1. First day of the week is Monday
2. Minimal days in the first week is 4 so
weeks starting on and between Monday and Thursday
inclusive are full weeks
This function returns the week's number
within a month for a calendar date
:param calendar_date:
:return: week of the month
"""
_, month, _ = calendar_date.year,
calendar_date.month,
calendar_date.day
_, week_of_year, _ = calendar_date.isocalendar()
date_at_month_start = calendar_date.replace(day=1)
_, month_start_week_of_year, month_start_day_of_week =
date_at_month_start.isocalendar()
if month == 1:
return 0 if week_of_year >= 51 else week_of_year
elif month_start_day_of_week > 4:
return week_of_year - month_start_week_of_year
else:
return week_of_year - month_start_week_of_year + 1
Does python offer a way to easily get the current week of the month (1:4) ?
If your first week starts on the first day of the month you can use integer division:
import datetime day_of_month = datetime.datetime.now().day week_number = (day_of_month - 1) // 7 + 1
Check out the python calendar module
I found a quite simple way:
import datetime
def week(year, month, day):
first_week_month = datetime.datetime(year, month, 1).isocalendar()[1]
if month == 1 and first_week_month > 10:
first_week_month = 0
user_date = datetime.datetime(year, month, day).isocalendar()[1]
if month == 1 and user_date > 10:
user_date = 0
return user_date - first_week_month
returns 0 if first week
In order to use straight division, the day of month for the date you’re looking at needs to be adjusted according to the position (within the week) of the first day of the month. So, if your month happens to start on a Monday (the first day of the week), you can just do division as suggested above. However, if the month starts on a Wednesday, you’ll want to add 2 and then do the division. This is all encapsulated in the function below.
from math import ceil
def week_of_month(dt):
""" Returns the week of the month for the specified date.
"""
first_day = dt.replace(day=1)
dom = dt.day
adjusted_dom = dom + first_day.weekday()
return int(ceil(adjusted_dom/7.0))
This version could be improved but as a first look in python modules (datetime and calendar), I make this solution, I hope could be useful:
from datetime import datetime
n = datetime.now()
#from django.utils.timezone import now
#n = now() #if you use django with timezone
from calendar import Calendar
cal = Calendar() # week starts Monday
#cal = Calendar(6) # week stars Sunday
weeks = cal.monthdayscalendar(n.year, n.month)
for x in range(len(weeks)):
if n.day in weeks[x]:
print x+1
I know this is years old, but I spent a lot of time trying to find this answer. I made my own method and thought I should share.
The calendar module has a monthcalendar method that returns a 2D array where each row represents a week. For example:
import calendar
calendar.monthcalendar(2015,9)
result:
[[0,0,1,2,3,4,5],
[6,7,8,9,10,11,12],
[13,14,15,16,17,18,19],
[20,21,22,23,24,25,26],
[27,28,29,30,0,0,0]]
So numpy’s where is your friend here. And I’m in USA so I want the week to start on Sunday and the first week to be labelled 1:
import calendar
import numpy as np
calendar.setfirstweekday(6)
def get_week_of_month(year, month, day):
x = np.array(calendar.monthcalendar(year, month))
week_of_month = np.where(x==day)[0][0] + 1
return(week_of_month)
get_week_of_month(2015,9,14)
returns
3
This should do it.
#! /usr/bin/env python2
import calendar, datetime
#FUNCTIONS
def week_of_month(date):
"""Determines the week (number) of the month"""
#Calendar object. 6 = Start on Sunday, 0 = Start on Monday
cal_object = calendar.Calendar(6)
month_calendar_dates = cal_object.itermonthdates(date.year,date.month)
day_of_week = 1
week_number = 1
for day in month_calendar_dates:
#add a week and reset day of week
if day_of_week > 7:
week_number += 1
day_of_week = 1
if date == day:
break
else:
day_of_week += 1
return week_number
#MAIN
example_date = datetime.date(2015,9,21)
print "Week",str(week_of_month(example_date))
#Returns 'Week 4'
Josh’s answer has to be tweaked slightly to accomodate the first day falling on a Sunday.
def get_week_of_month(date):
first_day = date.replace(day=1)
day_of_month = date.day
if(first_day.weekday() == 6):
adjusted_dom = (1 + first_day.weekday()) / 7
else:
adjusted_dom = day_of_month + first_day.weekday()
return int(ceil(adjusted_dom/7.0))
Josh’ answer seems the best but I think that we should take into account the fact that a week belongs to a month only if its Thursday falls into that month. At least that’s what the iso says.
According to that standard, a month can have up to 5 weeks. A day could belong to a month, but the week it belongs to may not.
I have taken into account that just by adding a simple
if (first_day.weekday()>3) :
return ret_val-1
else:
return ret_val
where ret_val is exactly Josh’s calculated value. Tested on June 2017 (has 5 weeks) and on September 2017. Passing ‘2017-09-01’ returns 0 because that day belongs to a week that does not belong to September.
The most correct way would be to have the method return both the week number and the month name the input day belongs to.
Check out the package Pendulum
>>> dt = pendulum.parse('2018-09-30')
>>> dt.week_of_month
5
Move to last day of week in month and divide to 7
from math import ceil
def week_of_month(dt):
""" Returns the week of the month for the specified date.
"""
# weekday from monday == 0 ---> sunday == 6
last_day_of_week_of_month = dt.day + (7 - (1 + dt.weekday()))
return int(ceil(last_day_of_week_of_month/7.0))
def week_of_month(date_value):
week = date_value.isocalendar()[1] - date_value.replace(day=1).isocalendar()[1] + 1
return date_value.isocalendar()[1] if week < 0 else week
date_value should in timestamp format
This will give the perfect answer in all the cases. It is purely based on ISO calendar
A variation on @Manuel Solorzano’s answer:
from calendar import monthcalendar
def get_week_of_month(year, month, day):
return next(
(
week_number
for week_number, days_of_week in enumerate(monthcalendar(year, month), start=1)
if day in days_of_week
),
None,
)
E.g.:
>>> get_week_of_month(2020, 9, 1)
1
>>> get_week_of_month(2020, 9, 30)
5
>>> get_week_of_month(2020, 5, 35)
None
Say we have some month’s calender as follows:
Mon Tue Wed Thur Fri Sat Sun
1 2 3
4 5 6 7 8 9 10
We say day 1 ~ 3 belongs to week 1 and day 4 ~ 10 belongs to week 2 etc.
In this case, I believe the week_of_month for a specific day should be calculated as follows:
import datetime
def week_of_month(year, month, day):
weekday_of_day_one = datetime.date(year, month, 1).weekday()
weekday_of_day = datetime.date(year, month, day)
return (day - 1)//7 + 1 + (weekday_of_day < weekday_of_day_one)
However, if instead we want to get the nth of the weekday that date is, such as day 1 is the 1st Friday, day 8 is the 2nd Friday, and day 6 is the 1st Wednesday, then we can simply return (day – 1)//7 + 1
import datetime
def week_number_of_month(date_value):
week_number = (date_value.isocalendar()[1] - date_value.replace(day=1).isocalendar()[1] + 1)
if week_number == -46:
week_number = 6
return week_number
date_given = datetime.datetime(year=2018, month=12, day=31).date()
week_number_of_month(date_given)
The answer you are looking for is (dm-dw+(dw-dm)%7)/7+1 where dm is the day of the month, dw is the day of the week, and % is the positive remainder.
This comes from relating the month offset (mo) and the week of the month (wm), where the month offset is how far into the week the first day starts. If we consider all of these variables to start at 0 we have
wm*7+dw = dm+mo
You can solve this modulo 7 for mo as that causes the wm variable drops out as it only appears as a multiple of 7
dw = dm+mo (%7)
mo = dw-dm (%7)
mo = (dw-dm)%7 (since the month offset is 0-6)
Then you just substitute the month offset into the original equation and solve for wm
wm*7+dw = dm+mo
wm*7 = dm-dw + mo
wm*7 = dm-dw + (dw-dm)%7
wm = (dm-dw + (dw-dm)%7) / 7
As dm and dw are always paired, these can be offset by any amount, so, switching everything to start a 1 only changes the the equation to (dm-dw + (dw-dm)%7)/7 + 1.
Of course the python datetime library starts dm at 1 and dw at 0. So, assuming date is a datatime.date object, you can go with
(date.day-1-date.dayofweek() + (date.dayofweek()-date.day+1)%7) / 7 + 1
As the inner bit is always a multiple of 7 (it is literally dw*7), you can see that the first -date.dayofweek() simply adjusts the value backwards to closest multiple of 7. Integer division does this too, so it can be further simplified to
(date.day-1 + (date.dayofweek()-date.day+1)%7) // 7 + 1
Be aware that dayofweek() puts Sunday at the end of the week.
You can simply do as follow:
- First extract the month and the week of year number
df['month'] = df['Date'].dt.month
df['week'] = df['Date'].dt.week
- Then group by month and rank the week numbers
df['weekOfMonth'] = df.groupby('month')["week"].rank("dense", ascending=False)
One more solution, where Sunday is first day of week, base Python only.
def week_of_month(dt):
""" Returns the week of the month for the specified date.
TREATS SUNDAY AS FIRST DAY OF WEEK!
"""
first_day = dt.replace(day=1)
dom = dt.day
adjusted_dom = dom + (first_day.weekday() + 1) % 7
return (adjusted_dom - 1) // 7 + 1
def week_number(time_ctime = None):
import time
import calendar
if time_ctime == None:
time_ctime = str(time.ctime())
date = time_ctime.replace(' ',' ').split(' ')
months = {'Jan':1,'Feb':2,'Mar':3,'Apr':4,'May':5,'Jun':6,'Jul':7,'Aug':8,'Sep':9,'Oct':10,'Nov':11,'Dec':12}
week, day, month, year = (-1, str(date[2]), months[date[1]], int(date[-1]))
cal = calendar.monthcalendar(year,month)
for wk in range(len(cal)):
wstr = [str(x) for x in cal[wk]]
if day in wstr:
week = wk
break
return week
import time
print(week_number())
print(week_number(time.ctime()))
An Easy way to get a week number of month;
if the datatype is datetime64 then
week_number_of_month = date_value.dayofweek
data[‘wk_of_mon’] = (data[‘dataset_date’].dt.day – 1) // 7 + 1
the best solution that I found is this function
def get_week_of_month(date):
date = datetime.strptime(date, "%Y-%m-%d") # date is str
first_day = date.replace(day=1)
print(first_day)
day_of_month = date.day
print(day_of_month)
print(first_day.weekday())
if(first_day.weekday() == 6):
adjusted_dom = day_of_month + ((1 + first_day.weekday()) / 7)
else:
adjusted_dom = day_of_month + first_day.weekday()
print(adjusted_dom)
return int(ceil(adjusted_dom/7.0))
This solution was intended to replicate the Java implementation of WeekOfMonth in Python and follow a pattern similar to the ISO 8601 convention.
-
First day of the week is Monday
-
Minimal number of days in the first week is 4. This implies weeks starting on and between Monday and Thursday inclusive are full weeks
from datetime import date def week_of_month(calendar_date: date) -> int: """ Python implementation of Week of Month following ISO 8601 https://en.wikipedia.org/wiki/ISO_week_date, 1. First day of the week is Monday 2. Minimal days in the first week is 4 so weeks starting on and between Monday and Thursday inclusive are full weeks This function returns the week's number within a month for a calendar date :param calendar_date: :return: week of the month """ _, month, _ = calendar_date.year, calendar_date.month, calendar_date.day _, week_of_year, _ = calendar_date.isocalendar() date_at_month_start = calendar_date.replace(day=1) _, month_start_week_of_year, month_start_day_of_week = date_at_month_start.isocalendar() if month == 1: return 0 if week_of_year >= 51 else week_of_year elif month_start_day_of_week > 4: return week_of_year - month_start_week_of_year else: return week_of_year - month_start_week_of_year + 1