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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
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7 Answers 7

up vote 82 down vote accepted

Marginally better...

base = datetime.datetime.today()
date_list = [base - datetime.timedelta(days=x) for x in range(0, numdays)]
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5  
+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 at 20:14
    
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 at 13:31
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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")
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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 at 11:42
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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

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1  
I think this is great answer, I knew I had seen date_range before. –  Aaron Hall May 3 at 20:13
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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()))
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11  
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
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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
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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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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
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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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