19

I want to generate a list of dates between two dates and store them in a list in string format. This list is useful to compare with other dates I have.

My code is given below:

from datetime import date, timedelta

sdate = date(2019,3,22)   # start date
edate = date(2019,4,9)   # end date

def dates_bwn_twodates(start_date, end_date):
    for n in range(int ((end_date - start_date).days)):
        yield start_date + timedelta(n)
print(dates_bwn_twodates(sdate,edate))

My present output:

<generator object dates_bwn_twodates at 0x000002A8E7929410>

My expected output:

['2019-03-22',.....,'2019-04-08']

Something wrong in my code.

5
  • 2
    Using yield means that your function will return a generator. If you want to run the generator to get all of the elements, you can do print(list(dates_bwn_twodates(sdate, edate))). – FiddleStix Jan 23 '20 at 16:10
  • @anky_91 Yes! It worked perfectly. – Mainland Jan 23 '20 at 16:10
  • @anky_91 I need advise. If I want to check if a date is in above list? how to compare with a list? – Mainland Jan 23 '20 at 16:13
  • @Mainland Is your goal to check if a date is between two other dates? If so, the list is unnecessary and there are simpler ways to accomplish that check – ALollz Jan 23 '20 at 16:16
  • @ALollz Yes! goal is having a list of dates in hand (stored in a list) and compare if a date is already in the list. I thought this is the only way. I appreciate any alternative solution. – Mainland Jan 23 '20 at 16:20
39

You can use pd.date_range() for this:

pd.date_range(sdate,edate-timedelta(days=1),freq='d')

DatetimeIndex(['2019-03-22', '2019-03-23', '2019-03-24', '2019-03-25',
           '2019-03-26', '2019-03-27', '2019-03-28', '2019-03-29',
           '2019-03-30', '2019-03-31', '2019-04-01', '2019-04-02',
           '2019-04-03', '2019-04-04', '2019-04-05', '2019-04-06',
           '2019-04-07', '2019-04-08'],
          dtype='datetime64[ns]', freq='D')
7
  • I need advise. If I want to check if a date is in above list? how to compare with a list? – Mainland Jan 23 '20 at 16:14
  • 1
    @Mainland something like : idx = pd.date_range(sdate,edate-timedelta(days=1),freq='d') , idx.isin(['2019-03-22', '2019-03-23']) ? – anky Jan 23 '20 at 16:15
  • 1
    Yes! this is what I wanted. On top of the that I prefer .any() at end to get a simple True or False but not a list. – Mainland Jan 23 '20 at 16:24
  • I see data_range function returning Sunday date by default, How to change the default option to the date that's given as start date? – ramreddy bolla Oct 30 '20 at 7:48
  • @ramreddybolla the start date is the date which you put in the start= argument. – anky Nov 2 '20 at 7:49
9

Your code rewritten as a list comprehension:

[sdate+timedelta(days=x) for x in range((edate-sdate).days)]

results:

[datetime.date(2019, 3, 22),
 datetime.date(2019, 3, 23),
 datetime.date(2019, 3, 24),
          :
 datetime.date(2019, 4, 7),
 datetime.date(2019, 4, 8)]
3

You'd need to turn it into a list with strings explicitly:

print([str(d) for d in dates_bwn_twodates(sdate,edate)])
2
from datetime import date, timedelta

sdate = date(2019,3,22)   # start date
edate = date(2019,4,9)   # end date
date_modified=sdate
list=[sdate] 


while date_modified<edate:
    date_modified+=timedelta(days=nbDaysbtw2dates) 
    list.append(date_modified)

print(list) 
1
  • Of course, need to specify nbDaysbtw2dates – phloem7 Jan 12 at 23:46
1

You can use the moment library from https://github.com/zachwill/moment.git to make your life easier.

import moment

def dates_bwn_twodates(start_date, end_date):
    diff = abs(start_date.diff(end_date).days)
    
    for n in range(0,diff+1):
        yield start_date.strftime("%Y-%m-%d")
        start_date = (start_date).add(days=1)

sdate = moment.date('2019-03-22')   #start date
edate = moment.date('2019-04-09')   #end date  

and then you have options

dates = list(dates_bwn_twodates(sdate,edate)) #dates as a list

or you can iterate

for date in dates_bwn_twodates(sdate,edate):
    #do something with each date

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