For the function below, I am inputting a string like "6/29/2020" and "8/10/2010" and I want to get a numbers of days after Jan. 1, 2010. For example, if I input "1/29/2010", I want the integer 29 to be returned.
Currently, I have gotten "6/29/2020" to a string "2020-06-29". Now I just need help with converting that string into the days after Jan. 1, 2010.
I feel like I have posted everything needed for you to help, but if you need more information, let me know. Thank You for helping me with this problem.
def day_conversion(dates):
import datetime
i = 0
for day in dates:
day = day.split('/')
if len(day[0]) == 1:
day[0] = f"0{day[0]}"
if len(day[1]) == 1:
day[1] = f"0{day[1]}"
day = f"{day[2]}-{day[0]}-{day[1]}"
# day = date.format(day)
# from datetime import date
# day0 = date(2000, 1, 1)
# day = day - day0
dates[i] = day
i += 1
return dates
datetime has a function for parsing dates, and subtracting two datetime objects gives a timedelta object with a .days attribute:
from datetime import datetime
def days_since_jan1_2010(date):
dt = datetime.strptime(date, '%m/%d/%Y')
diff = dt - datetime(2010, 1, 1)
return diff.days
def day_conversion(dates):
return [days_since_jan1_2010(d) for d in dates]
print(day_conversion(['6/29/2020', '8/10/2010', '1/1/2010', '1/2/2010']))
Output:
[3832, 221, 0, 1]
Everything in the previous answer is correct, but just thought I'd point out that you were very nearly there if you include the commented out part in your code above except for the following points:
from datetime import date needs to come before you try to use date.
You want date.fromisoformat, not date.format.
Your code has Jan 1 2000 but you state in your question that you want the number of days from Jan 1 2010.
If you substitute the commented part of your original code for the following four lines you should get the result you are after.
from datetime import date
day = date.fromisoformat(day)
day0 = date(2010, 1, 1)
day = day - day0
I am making a program where I input start date to dataStart(example 21.10.2000) and then input int days dateEnd and I convert it to another date (example 3000 = 0008-02-20)... Now I need to count these dates together, but I didn't managed myself how to do that. Here is my code.
from datetime import date
start=str(input("type start date (DD.MM.YYYY)"))
end=int(input("how many days from it?"))
dataStart=start.split(".")
days=int(dataStart[0])
months=int(dataStart[1])
years=int(dataStart[2])
endYears=0
endMonths=0
endDays=0
dateStart = date(years, months, days)
while end>=365:
end-=365
endYears+=1
else:
while end>=30:
end-=30
endMonths+=1
else:
while end>=1:
end-=1
endDays+=1
dateEnd = date(endYears, endMonths, endDays)
For adding days into date, you need to user datetime.timedelta
start=str(input("type start date (DD.MM.YYYY)"))
end=int(input("how many days from it?"))
date = datetime.strptime(start, "%d.%m.%Y")
modified_date = date + timedelta(days=end)
print(datetime.strftime(modified_date, "%d.%m.%Y"))
You may use datetime.timedelta to add certain units of time to your datetime object.
See the answers here for code snippets: Adding 5 days to a date in Python
Alternatively, you may wish to use the third-party dateutil library if you need support for time additions in units larger than weeks. For example:
>>> from datetime import datetime
>>> from dateutil import relativedelta
>>> one_month_later = datetime(2017, 5, 1) + relativedelta.relativedelta(months=1)
>>> one_month_later
>>> datetime.datetime(2017, 6, 1, 0, 0)
It will be easier to convert to datetime using datetime.datetime.strptime and for the part about adding days just use datetime.timedelta.
Below is a small snippet on how to use it:
import datetime
start = "21.10.2000"
end = 8
dateStart = datetime.datetime.strptime(start, "%d.%m.%Y")
dateEnd = dateStart + datetime.timedelta(days=end)
dateEnd.date() # to get the date format of the endDate
If you have any doubts please look at the documentation python3/python2.
I am using the datetime Python module in django. I am looking to calculate the date if the expiry date is less than or equal to 6 months from the current date.
The reason I want to generate a date 6 months from the current date is to set an alert that will highlight the field/column in which that event occurs. I dont know if my question is clear. I have been reading about timedelta function but cant really get my head round it. I am trying to write an if statement to statisfy this condition. Anyone able to help me please? Am a newbie to django and python.
There are two approaches, one only slightly inaccurate, one inaccurate in a different way:
Add a datetime.timedelta() of 365.25 / 2 days (average year length divided by two):
import datetime
sixmonths = datetime.datetime.now() + datetime.timedelta(days=365.25/2)
This method will give you a datetime stamp 6 months into the future, where we define 6 monhs as exactly half a year (on average).
Use the external dateutil library, it has a excellent relativedelta class that will add 6 months based on calendar calculations to your current date:
import datetime
from dateutil.relativedelat import relativedelta
sixmonths = datetime.datetime.now() + relativedelta(months=6)
This method will give you a datetime stamp 6 months into the future, where the month component of the date has been forwarded by 6, and it'll take into account month boundaries, making sure not to cross them. August 30th plus 6 months becomes February 28th or 29th (leap years permitting), for example.
A demonstration could be helpful. In my timezone, at the time of posting, this translates to:
>>> import datetime
>>> from dateutil.relativedelta import relativedelta
>>> now = datetime.datetime.now()
>>> now
datetime.datetime(2013, 2, 18, 12, 16, 0, 547567)
>>> now + datetime.timedelta(days=365.25/2)
datetime.datetime(2013, 8, 20, 3, 16, 0, 547567)
>>> now + relativedelta(months=6)
datetime.datetime(2013, 8, 18, 12, 16, 0, 547567)
So there is a 1 day and 15 hour difference between the two methods.
The same methods work fine with datetime.date objects too:
>>> today = datetime.date.today()
>>> today
datetime.date(2013, 2, 18)
>>> today + datetime.timedelta(days=365.25/2)
datetime.date(2013, 8, 19)
>>> today + relativedelta(months=6)
datetime.date(2013, 8, 18)
The half-year timedelta becomes a teensy less accurate when applied to dates only (the 5/8th day component of the delta is ignored now).
If by "6 months" you mean 180 days, you can use:
import datetime
d = datetime.date.today()
d + datetime.timedelta(6 * 30)
Alternatively if you, mean actual 6 months by calendar you'll have to lookup the calendar module and do some lookups on each month. For example:
import datetime
import calendar
def add_6_months(a_date):
month = a_date.month - 1 + 6
year = a_date.year + month / 12
month = month % 12 + 1
day = min(a_date.day,calendar.monthrange(year, month)[1])
return datetime.date(year, month, day)
I would give Delorean a look a serious look. It is built on top of dateutil and pytz to do what you asked would simply be the following.
>>> d = Delorean()
>>> d
Delorean(datetime=2013-02-21 06:00:21.195025+00:00, timezone=UTC)
>>> d.next_month(6)
Delorean(datetime=2013-08-21 06:00:21.195025+00:00, timezone=UTC)
It takes into account all the dateutil calculations as well as provide and interface for timezone shifts. to get the needed datetime simple .datetime on the Delorean object.
this might work for you in case you want to get an specfic date back:
from calendar import datetime
datetime.date(2019,1,1).strftime("%a %d")
#The arguments here are: year, month, day and the method is there to return a formated kind of date - in this case - day of the week and day of the month.
The outcome would be:
Tue 01
Hope it helps!
This question already has answers here:
Closed 10 years ago.
Possible Duplicate:
What’s the best way to find the inverse of datetime.isocalendar()?
I have an ISO 8601 year and week number, and I need to translate this to the date of the first day in that week (Monday). How can I do this?
datetime.strptime() takes both a %W and a %U directive, but neither adheres to the ISO 8601 weekday rules that datetime.isocalendar() use.
Update: Python 3.6 supports the %G, %V and %u directives also present in libc, allowing this one-liner:
>>> from datetime import datetime
>>> datetime.strptime('2011 22 1', '%G %V %u')
datetime.datetime(2011, 5, 30, 0, 0)
Update 2: Python 3.8 added the fromisocalendar() method, which is even more intuitive:
>>> from datetime import datetime
>>> datetime.fromisocalendar(2011, 22, 1)
datetime.datetime(2011, 5, 30, 0, 0)
With the isoweek module you can do it with:
from isoweek import Week
d = Week(2011, 40).monday()
%W takes the first Monday to be in week 1 but ISO defines week 1 to contain 4 January. So the result from
datetime.strptime('2011221', '%Y%W%w')
is off by one iff the first Monday and 4 January are in different weeks.
The latter is the case if 4 January is a Friday, Saturday or Sunday.
So the following should work:
from datetime import datetime, timedelta, date
def tofirstdayinisoweek(year, week):
ret = datetime.strptime('%04d-%02d-1' % (year, week), '%Y-%W-%w')
if date(year, 1, 4).isoweekday() > 4:
ret -= timedelta(days=7)
return ret
How to find out what week number is current year on June 16th (wk24) with Python?
datetime.date has a isocalendar() method, which returns a tuple containing the calendar week:
>>> import datetime
>>> datetime.date(2010, 6, 16).isocalendar()[1]
24
datetime.date.isocalendar() is an instance-method returning a tuple containing year, weeknumber and weekday in respective order for the given date instance.
In Python 3.9+ isocalendar() returns a namedtuple with the fields year, week and weekday which means you can access the week explicitly using a named attribute:
>>> import datetime
>>> datetime.date(2010, 6, 16).isocalendar().week
24
You can get the week number directly from datetime as string.
>>> import datetime
>>> datetime.date(2010, 6, 16).strftime("%V")
'24'
Also you can get different "types" of the week number of the year changing the strftime parameter for:
%U - Week number of the year (Sunday as the first day of the week) as a zero padded decimal number. All days in a new year preceding the first Sunday are considered to be in week 0. Examples: 00, 01, …, 53
%W - Week number of the year (Monday as the first day of the week) as a decimal number. All days in a new year preceding the first Monday are considered to be in week 0. Examples: 00, 01, …, 53
[...]
(Added in Python 3.6, backported to some distribution's Python 2.7's) Several additional directives not required by the C89 standard are included for convenience. These parameters all correspond to ISO 8601 date values. These may not be available on all platforms when used with the strftime() method.
[...]
%V - ISO 8601 week as a decimal number with Monday as the first day of the week. Week 01 is the week containing Jan 4. Examples: 01, 02, …, 53
from: datetime — Basic date and time types — Python 3.7.3 documentation
I've found out about it from here. It worked for me in Python 2.7.6
I believe date.isocalendar() is going to be the answer. This article explains the math behind ISO 8601 Calendar. Check out the date.isocalendar() portion of the datetime page of the Python documentation.
>>> dt = datetime.date(2010, 6, 16)
>>> wk = dt.isocalendar()[1]
24
.isocalendar() return a 3-tuple with (year, wk num, wk day). dt.isocalendar()[0] returns the year,dt.isocalendar()[1] returns the week number, dt.isocalendar()[2] returns the week day. Simple as can be.
There are many systems for week numbering. The following are the most common systems simply put with code examples:
ISO: First week starts with Monday and must contain the January 4th (or first Thursday of the year). The ISO calendar is already implemented in Python:
>>> from datetime import date
>>> date(2014, 12, 29).isocalendar()[:2]
(2015, 1)
North American: First week starts with Sunday and must contain the January 1st. The following code is my modified version of Python's ISO calendar implementation for the North American system:
from datetime import date
def week_from_date(date_object):
date_ordinal = date_object.toordinal()
year = date_object.year
week = ((date_ordinal - _week1_start_ordinal(year)) // 7) + 1
if week >= 52:
if date_ordinal >= _week1_start_ordinal(year + 1):
year += 1
week = 1
return year, week
def _week1_start_ordinal(year):
jan1 = date(year, 1, 1)
jan1_ordinal = jan1.toordinal()
jan1_weekday = jan1.weekday()
week1_start_ordinal = jan1_ordinal - ((jan1_weekday + 1) % 7)
return week1_start_ordinal
>>> from datetime import date
>>> week_from_date(date(2014, 12, 29))
(2015, 1)
MMWR (CDC): First week starts with Sunday and must contain the January 4th (or first Wednesday of the year). I created the epiweeks package specifically for this numbering system (also has support for the ISO system). Here is an example:
>>> from datetime import date
>>> from epiweeks import Week
>>> Week.fromdate(date(2014, 12, 29))
(2014, 53)
Here's another option:
import time
from time import gmtime, strftime
d = time.strptime("16 Jun 2010", "%d %b %Y")
print(strftime(d, '%U'))
which prints 24.
See: http://docs.python.org/library/datetime.html#strftime-and-strptime-behavior
The ISO week suggested by others is a good one, but it might not fit your needs. It assumes each week begins with a Monday, which leads to some interesting anomalies at the beginning and end of the year.
If you'd rather use a definition that says week 1 is always January 1 through January 7, regardless of the day of the week, use a derivation like this:
>>> testdate=datetime.datetime(2010,6,16)
>>> print(((testdate - datetime.datetime(testdate.year,1,1)).days // 7) + 1)
24
Generally to get the current week number (starts from Sunday):
from datetime import *
today = datetime.today()
print today.strftime("%U")
For the integer value of the instantaneous week of the year try:
import datetime
datetime.datetime.utcnow().isocalendar()[1]
If you are only using the isocalendar week number across the board the following should be sufficient:
import datetime
week = date(year=2014, month=1, day=1).isocalendar()[1]
This retrieves the second member of the tuple returned by isocalendar for our week number.
However, if you are going to be using date functions that deal in the Gregorian calendar, isocalendar alone will not work! Take the following example:
import datetime
date = datetime.datetime.strptime("2014-1-1", "%Y-%W-%w")
week = date.isocalendar()[1]
The string here says to return the Monday of the first week in 2014 as our date. When we use isocalendar to retrieve the week number here, we would expect to get the same week number back, but we don't. Instead we get a week number of 2. Why?
Week 1 in the Gregorian calendar is the first week containing a Monday. Week 1 in the isocalendar is the first week containing a Thursday. The partial week at the beginning of 2014 contains a Thursday, so this is week 1 by the isocalendar, and making date week 2.
If we want to get the Gregorian week, we will need to convert from the isocalendar to the Gregorian. Here is a simple function that does the trick.
import datetime
def gregorian_week(date):
# The isocalendar week for this date
iso_week = date.isocalendar()[1]
# The baseline Gregorian date for the beginning of our date's year
base_greg = datetime.datetime.strptime('%d-1-1' % date.year, "%Y-%W-%w")
# If the isocalendar week for this date is not 1, we need to
# decrement the iso_week by 1 to get the Gregorian week number
return iso_week if base_greg.isocalendar()[1] == 1 else iso_week - 1
I found these to be the quickest way to get the week number; all of the variants.
from datetime import datetime
dt = datetime(2021, 1, 3) # Date is January 3rd 2021 (Sunday), year starts with Friday
dt.strftime("%W") # '00'; Monday is considered first day of week, Sunday is the last day of the week which started in the previous year
dt.strftime("%U") # '01'; Sunday is considered first day of week
dt.strftime("%V") # '53'; ISO week number; result is '53' since there is no Thursday in this year's part of the week
Further clarification for %V can be found in the Python doc:
The ISO year consists of 52 or 53 full weeks, and where a week starts on a Monday and ends on a Sunday. The first week of an ISO year is the first (Gregorian) calendar week of a year containing a Thursday. This is called week number 1, and the ISO year of that Thursday is the same as its Gregorian year.
https://docs.python.org/3/library/datetime.html#datetime.date.isocalendar
NOTE: Bear in mind the return value is a string, so pass the result to a int constructor if you need a number.
I summarize the discussion to two steps:
Convert the raw format to a datetime object.
Use the function of a datetime object or a date object to calculate the week number.
Warm up
from datetime import datetime, date, time
d = date(2005, 7, 14)
t = time(12, 30)
dt = datetime.combine(d, t)
print(dt)
1st step
To manually generate a datetime object, we can use datetime.datetime(2017,5,3) or datetime.datetime.now().
But in reality, we usually need to parse an existing string. we can use strptime function, such as datetime.strptime('2017-5-3','%Y-%m-%d') in which you have to specific the format. Detail of different format code can be found in the official documentation.
Alternatively, a more convenient way is to use dateparse module. Examples are dateparser.parse('16 Jun 2010'), dateparser.parse('12/2/12') or dateparser.parse('2017-5-3')
The above two approaches will return a datetime object.
2nd step
Use the obtained datetime object to call strptime(format). For example,
python
dt = datetime.strptime('2017-01-1','%Y-%m-%d') # return a datetime object. This day is Sunday
print(dt.strftime("%W")) # '00' Monday as the 1st day of the week. All days in a new year preceding the 1st Monday are considered to be in week 0.
print(dt.strftime("%U")) # '01' Sunday as the 1st day of the week. All days in a new year preceding the 1st Sunday are considered to be in week 0.
print(dt.strftime("%V")) # '52' Monday as the 1st day of the week. Week 01 is the week containing Jan 4.
It's very tricky to decide which format to use. A better way is to get a date object to call isocalendar(). For example,
python
dt = datetime.strptime('2017-01-1','%Y-%m-%d') # return a datetime object
d = dt.date() # convert to a date object. equivalent to d = date(2017,1,1), but date.strptime() don't have the parse function
year, week, weekday = d.isocalendar()
print(year, week, weekday) # (2016,52,7) in the ISO standard
In reality, you will be more likely to use date.isocalendar() to prepare a weekly report, especially in the Christmas-New Year shopping season.
You can try %W directive as below:
d = datetime.datetime.strptime('2016-06-16','%Y-%m-%d')
print(datetime.datetime.strftime(d,'%W'))
'%W': Week number of the year (Monday as the first day of the week) as a decimal number. All days in a new year preceding the first Monday are considered to be in week 0. (00, 01, ..., 53)
For pandas users, if you want to get a column of week number:
df['weekofyear'] = df['Date'].dt.week
isocalendar() returns incorrect year and weeknumber values for some dates:
Python 2.7.3 (default, Feb 27 2014, 19:58:35)
[GCC 4.6.3] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> import datetime as dt
>>> myDateTime = dt.datetime.strptime("20141229T000000.000Z",'%Y%m%dT%H%M%S.%fZ')
>>> yr,weekNumber,weekDay = myDateTime.isocalendar()
>>> print "Year is " + str(yr) + ", weekNumber is " + str(weekNumber)
Year is 2015, weekNumber is 1
Compare with Mark Ransom's approach:
>>> yr = myDateTime.year
>>> weekNumber = ((myDateTime - dt.datetime(yr,1,1)).days/7) + 1
>>> print "Year is " + str(yr) + ", weekNumber is " + str(weekNumber)
Year is 2014, weekNumber is 52
Let's say you need to have a week combined with the year of the current day as a string.
import datetime
year,week = datetime.date.today().isocalendar()[:2]
week_of_the_year = f"{year}-{week}"
print(week_of_the_year)
You might get something like 2021-28
If you want to change the first day of the week you can make use of the calendar module.
import calendar
import datetime
calendar.setfirstweekday(calendar.WEDNESDAY)
isodate = datetime.datetime.strptime(sweek,"%Y-%m-%d").isocalendar()
week_of_year = isodate[1]
For example, calculate the sprint number for a week starting on WEDNESDAY:
def calculate_sprint(sweek):
calendar.setfirstweekday(calendar.WEDNESDAY)
isodate=datetime.datetime.strptime(sweek,"%Y-%m-%d").isocalendar()
return "{year}-{month}".format(year=isodate[0], month=isodate[1])
calculate_sprint('2021-01-01')
>>>'2020-53'
We have a similar issue and we came up with this logic
I have tested for 1year test cases & all passed
import datetime
def week_of_month(dt):
first_day = dt.replace(day=1)
dom = dt.day
if first_day.weekday() == 6:
adjusted_dom = dom
else:
adjusted_dom = dom + first_day.weekday()
if adjusted_dom % 7 == 0 and first_day.weekday() != 6:
value = adjusted_dom / 7.0 + 1
elif first_day.weekday() == 6 and adjusted_dom % 7 == 0 and adjusted_dom == 7:
value = 1
else:
value = int(ceil(adjusted_dom / 7.0))
return int(value)
year = 2020
month = 01
date = 01
date_value = datetime.datetime(year, month, date).date()
no = week_of_month(date_value)
userInput = input ("Please enter project deadline date (dd/mm/yyyy/): ")
import datetime
currentDate = datetime.datetime.today()
testVar = datetime.datetime.strptime(userInput ,"%d/%b/%Y").date()
remainDays = testVar - currentDate.date()
remainWeeks = (remainDays.days / 7.0) + 1
print ("Please pay attention for deadline of project X in days and weeks are : " ,(remainDays) , "and" ,(remainWeeks) , "Weeks ,\nSo hurryup.............!!!")
A lot of answers have been given, but id like to add to them.
If you need the week to display as a year/week style (ex. 1953 - week 53 of 2019, 2001 - week 1 of 2020 etc.), you can do this:
import datetime
year = datetime.datetime.now()
week_num = datetime.date(year.year, year.month, year.day).strftime("%V")
long_week_num = str(year.year)[0:2] + str(week_num)
It will take the current year and week, and long_week_num in the day of writing this will be:
>>> 2006