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I want to create a list of dates, starting with today, and going back an arbitrary number of days, say, in my example 100 days. Is there a better way to do it than this?

import datetime

a = datetime.datetime.today()
numdays = 100
dateList = []
for x in range (0, numdays):
    dateList.append(a - datetime.timedelta(days = x))
print dateList
share|improve this question
1  
If you want "dates" you should use date, not datetime – Antoine Pelisse Feb 22 '15 at 4:34

13 Answers 13

up vote 156 down vote accepted

Marginally better...

base = datetime.datetime.today()
date_list = [base - datetime.timedelta(days=x) for x in range(0, numdays)]
share|improve this answer
8  
+1. It should work as a generator as well. just replace square brackets with parens. – muhuk Jun 14 '09 at 20:08
1  
This is great, but see also @fantabolous 's answer using pandas below. – Aaron Hall May 3 '14 at 20:14
13  
Arguably it's a little silly to pull in a library dependency to save one line of code. To read the pandas option, most people probably would have to read the docs. – jtoberon Jul 2 '14 at 13:31
1  
+1 on the library dependency as a general point, but working with timeseries data it is highly likely that pandas is already being pulled in. – Thomas Browne Jul 27 '14 at 12:26
1  
This does not work if you use timezone aware datetimes and there is a shift of DST!!! I mean, when you use a start and end date and fill it up in between this way... – gabn88 Jul 30 '15 at 9:22

You can write a generator function that returns date objects starting from today:

import datetime

def date_generator():
  from_date = datetime.datetime.today()
  while True:
    yield from_date
    from_date = from_date - datetime.timedelta(days=1)

This generator returns dates starting from today and going backwards one day at a time. Here is how to take the first 3 dates:

>>> import itertools
>>> dates = itertools.islice(date_generator(), 3)
>>> list(dates)
[datetime.datetime(2009, 6, 14, 19, 12, 21, 703890), datetime.datetime(2009, 6, 13, 19, 12, 21, 703890), datetime.datetime(2009, 6, 12, 19, 12, 21, 703890)]

The advantage of this approach over a loop or list comprehension is that you can go back as many times as you want.

Edit

A more compact version using a generator expression instead of a function:

date_generator = (datetime.datetime.today() - datetime.timedelta(days=i) for i in itertools.count())

Usage:

>>> dates = itertools.islice(date_generator, 3)
>>> list(dates)
[datetime.datetime(2009, 6, 15, 1, 32, 37, 286765), datetime.datetime(2009, 6, 14, 1, 32, 37, 286836), datetime.datetime(2009, 6, 13, 1, 32, 37, 286859)]
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A bit of a late answer I know, but I just had the same problem and decided that Python's internal range function was a bit lacking in this respect so I've overridden it in a util module of mine.

from __builtin__ import range as _range
from datetime import datetime, timedelta

def range(*args):
    if len(args) != 3:
        return _range(*args)
    start, stop, step = args
    if start < stop:
        cmp = lambda a, b: a < b
        inc = lambda a: a + step
    else:
        cmp = lambda a, b: a > b
        inc = lambda a: a - step
    output = [start]
    while cmp(start, stop):
        start = inc(start)
        output.append(start)

    return output

print range(datetime(2011, 5, 1), datetime(2011, 10, 1), timedelta(days=30))
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1  
I think you want output = [] and to swap the lines in the while cmp(...) loop. Compare range(0,10,1) and _range(0,10,1). – sigfpe Mar 14 '12 at 20:58
1  
I think this answer would be better if you named the function date_range. – Brandon Bradley Dec 12 '15 at 21:50

Here is gist I created, from my own code, this might help. (I know the question is too old, but others can use it)

https://gist.github.com/2287345

(same thing below)

import datetime
from time import mktime

def convert_date_to_datetime(date_object):
    date_tuple = date_object.timetuple()
    date_timestamp = mktime(date_tuple)
    return datetime.datetime.fromtimestamp(date_timestamp)

def date_range(how_many=7):
    for x in range(0, how_many):
        some_date = datetime.datetime.today() - datetime.timedelta(days=x)
        some_datetime = convert_date_to_datetime(some_date.date())
        yield some_datetime

def pick_two_dates(how_many=7):
    a = b = convert_date_to_datetime(datetime.datetime.now().date())
    for each_date in date_range(how_many):
        b = a
        a = each_date
        if a == b:
            continue
        yield b, a
share|improve this answer

yeah, reinvent the wheel.... just search the forum and you'll get something like this:

from dateutil import rrule
from datetime import datetime

list(rrule.rrule(rrule.DAILY,count=100,dtstart=datetime.now()))
share|improve this answer
14  
Requires labix.org/python-dateutil. Looks nice but hardly worth an external dependency just to save one line. – Beni Cherniavsky-Paskin Jul 11 '12 at 16:31
    
Can't believe anyone things the other answers are very pythonic. While rrule is a terrible name, this one is at least easy on the eyes. – boatcoder Sep 23 '15 at 11:44
    
@BeniCherniavsky-Paskin: it is very easy to introduce subtle bugs while implementing period (calendar) arithmetic. dateutil.rrule implements iCalendar RFC -- it is easier to use functions with a well-defined behavior instead of multiple implementations of almost the same functionality that are ever so slightly different. dateutil.rrule allows to limit bug fixing to a single place. – J.F. Sebastian Sep 28 '15 at 17:37
    
@Mark0978: rrule name is not arbitrary; it is from the corresponding rfc – J.F. Sebastian Sep 28 '15 at 17:37
1  
Granted in general, but for the OP's simple goal of jumping exactly N days, date + timedelta as used in most solutions sounds like a well-defined way to express it. I'd love to learn of an actual bug. – Beni Cherniavsky-Paskin Sep 30 '15 at 22:11

Pandas is great for time series in general, and has direct support for date ranges.

import pandas as pd
datelist = pd.date_range(pd.datetime.today(), periods=100).tolist()

It also has lots of options to make life easier. For example if you only wanted weekdays, you would just swap in bdate_range.

See http://pandas.pydata.org/pandas-docs/stable/timeseries.html#generating-ranges-of-timestamps

In addition it fully supports pytz timezones and can smoothly span spring/autumn DST shifts.

share|improve this answer
2  
I think this is great answer, I knew I had seen date_range before. – Aaron Hall May 3 '14 at 20:13
6  
Defo the best answer if pandas is already being used. Only thing I would add is that you'd use the end = parameter if your dates are going backwards as per the original post. pd.date_range(end = pd.datetime.today(), periods = 100).tolist() – Thomas Browne Jul 27 '14 at 12:38

Get range of dates between specified start and end date (Optimized for time & space complexity):

import datetime

start = datetime.datetime.strptime("21-06-2014", "%d-%m-%Y")
end = datetime.datetime.strptime("07-07-2014", "%d-%m-%Y")
date_generated = [start + datetime.timedelta(days=x) for x in range(0, (end-start).days)]

for date in date_generated:
    print date.strftime("%d-%m-%Y")
share|improve this answer
    
Initial suggestion is to use () instead of [] to get a date_generator. Efficient in the sense there will be no need to store the whole array of dates and generate one only when needed. – Sandeep Jul 17 '14 at 11:42
    
Note the end_date is not generated. – Thorbjørn Ravn Andersen Sep 25 '14 at 12:16
    
use (end-start+1) to get the end date. – Sandeep Jul 23 '15 at 15:57

Matplotlib related

from matplotlib.dates import drange
import datetime

base = datetime.date.today()
end  = base + datetime.timedelta(days=100)
delta = datetime.timedelta(days=1)
l = drange(base, end, delta)
share|improve this answer
import datetime    
def date_generator():
    cur = base = datetime.date.today()
    end  = base + datetime.timedelta(days=100)
    delta = datetime.timedelta(days=1)
    while(end>base):
        base = base+delta
        print base

date_generator()
share|improve this answer
    
He wanted to go back, not forward.. So the end should be base - datetime.timedelta. Moreover... Why is this solution better than the original one? – frarugi87 Jul 16 '15 at 11:31

You can also use the day ordinal to make it simpler:

def daterange(start_date, end_date):
    for ordinal in range(start_date.toordinal(), end_date.toordinal()):
        yield datetime.date.fromordinal(ordinal)
share|improve this answer
1  
Much more like python code than several of the others. – boatcoder Sep 23 '15 at 11:45
    
The best solution – jwg Mar 2 at 15:02

Here's a one liner for bash scripts to get a list of weekdays, this is python 3. Easily modified for whatever, the int at the end is the number of days in the past you want.

python -c "import sys,datetime; print('\n'.join([(datetime.datetime.today() - datetime.timedelta(days=x)).strftime(\"%Y/%m/%d\") for x in range(0,int(sys.argv[1])) if (datetime.datetime.today() - datetime.timedelta(days=x)).isoweekday()<6]))" 10

Here is a variant to provide a start (or rather, end) date

python -c "import sys,datetime; print('\n'.join([(datetime.datetime.strptime(sys.argv[1],\"%Y/%m/%d\") - datetime.timedelta(days=x)).strftime(\"%Y/%m/%d \") for x in range(0,int(sys.argv[2])) if (datetime.datetime.today() - datetime.timedelta(days=x)).isoweekday()<6]))" 2015/12/30 10

Here is a variant for arbitrary start and end dates. not that this isn't terribly efficient, but is good for putting in a for loop in a bash script:

python -c "import sys,datetime; print('\n'.join([(datetime.datetime.strptime(sys.argv[1],\"%Y/%m/%d\") + datetime.timedelta(days=x)).strftime(\"%Y/%m/%d\") for x in range(0,int((datetime.datetime.strptime(sys.argv[2], \"%Y/%m/%d\") - datetime.datetime.strptime(sys.argv[1], \"%Y/%m/%d\")).days)) if (datetime.datetime.strptime(sys.argv[1], \"%Y/%m/%d\") + datetime.timedelta(days=x)).isoweekday()<6]))" 2015/12/15 2015/12/30
share|improve this answer
    
Might want to update your answer post with the code in your comment. Python gets mangled in comments, and kinda needs the formatting. – Jake B. Dec 30 '15 at 16:50
    
moved them, thanks for the heads up – Tim P Dec 30 '15 at 17:13
from datetime import datetime, timedelta
from dateutil import parser
def getDateRange(begin, end):
    """  """
    beginDate = parser.parse(begin)
    endDate =  parser.parse(end)
    delta = endDate-beginDate
    numdays = delta.days + 1
    dayList = [datetime.strftime(beginDate + timedelta(days=x), '%Y%m%d') for x in range(0, numdays)]
    return dayList
share|improve this answer

From the title of this question I was expecting to find something like range(), that would let me specify two dates and create a list with all the dates in between. That way one does not need to calculate the number of days between those two dates, if one does not know it beforehand.

So with the risk of being slightly off-topic, this one-liner does the job:

import datetime
start_date = datetime.date(2011, 01, 01)
end_date   = datetime.date(2014, 01, 01)

dates_2011_2013 = [ start_date + datetime.timedelta(n) for n in range(int ((end_date - start_date).days))]

All credits to this answer!

share|improve this answer
    
That is not a one liner any more than many of the other answers to the question. – Thomas Browne Apr 16 at 16:48
    
I have never pretended that this was more a one-liner than the others answers, neither that this was a better solution. I showed a piece of code that does something slightly different than what you asked for but that I would have been glad to find here given the title of the question. – snake_charmer Apr 16 at 17:43

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