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This question already has an answer here:

For example:

from datetime import date

d1 = date(2008,8,15)
d2 = date(2008,9,15)

I'm looking for simple code to print all dates in-between:

2008,8,15  
2008,8,16  
2008,8,17  
...  
2008,9,14  
2008,9,15

Thanks

share|improve this question

marked as duplicate by Ciro Santilli 巴拿馬文件 六四事件 法轮功, Foon, Bhargav Rao python Dec 9 '15 at 8:58

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
Take a look at stackoverflow.com/questions/1060279/… – Mikhail Korobov Sep 1 '11 at 17:47
    
thanks, I searched before, but did not find that post – zetah Sep 1 '11 at 17:50
up vote 83 down vote accepted

I came up with this:

from datetime import date, timedelta as td

d1 = date(2008, 8, 15)
d2 = date(2008, 9, 15)

delta = d2 - d1

for i in range(delta.days + 1):
    print d1 + td(days=i)

The output:

2008-08-15
2008-08-16
...
2008-09-13
2008-09-14
2008-09-15

Your question asks for dates in-between but I believe you meant including the start and end points, so they are included. To remove the end date, delete the +1 at the end of the for loop. To remove the start date, add a 1 to the beginning of the range function.

share|improve this answer
    
Hello all, i tried it but It prints only the last day, i need full list day dates_list = [] result = d1 + td(days=i) dates_list.append(result) print(result) It prints only the last day, how to solve this? – PyDroid May 18 '15 at 21:27
    
Sounds like your loop is wrong somehow. Please reply with the value of your range(delta.days). – Gringo Suave May 30 '15 at 2:12

Using a list comprehension:

from datetime import date, timedelta

d1 = date(2008,8,15)
d2 = date(2008,9,15)

# this will give you a list containing all of the dates
dd = [d1 + timedelta(days=x) for x in range((d2-d1).days + 1)]

for d in dd:
    print d

# you can't join dates, so if you want to use join, you need to
# cast to a string in the list comprehension:
ddd = [str(d1 + timedelta(days=x)) for x in range((d2-d1).days + 1)]
# now you can join
print "\n".join(ddd)
share|improve this answer
import datetime

d1 = datetime.date(2008,8,15)
d2 = datetime.date(2008,9,15)
diff = d2 - d1
for i in range(diff.days + 1):
    print (d1 + datetime.timedelta(i)).isoformat()
share|improve this answer

Essentially the same as Gringo Suave's answer, but with a generator:

from datetime import datetime, timedelta


def datetime_range(start=None, end=None):
    span = end - start
    for i in xrange(span.days + 1):
        yield start + timedelta(days=i)

Then you can use it as follows:

In: list(datetime_range(start=datetime(2014, 1, 1), end=datetime(2014, 1, 5)))
Out: 
[datetime.datetime(2014, 1, 1, 0, 0),
 datetime.datetime(2014, 1, 2, 0, 0),
 datetime.datetime(2014, 1, 3, 0, 0),
 datetime.datetime(2014, 1, 4, 0, 0),
 datetime.datetime(2014, 1, 5, 0, 0)]

Or like this:

In []: for date in datetime_range(start=datetime(2014, 1, 1), end=datetime(2014, 1, 5)):
   ...:     print date
   ...:     
2014-01-01 00:00:00
2014-01-02 00:00:00
2014-01-03 00:00:00
2014-01-04 00:00:00
2014-01-05 00:00:00
share|improve this answer
import datetime

begin = datetime.date(2008, 8, 15)
end = datetime.date(2008, 9, 15)

next_day = begin
while True:
    if next_day > end:
        break
    print next_day
    next_day += datetime.timedelta(days=1)
share|improve this answer
    
Thanks, as both answers are correct I'll mark first one – zetah Sep 1 '11 at 17:52

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