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Is there a library in python that can produce date dimensions given a certain day? I'd like to use this for data analysis. Often I have a time series of dates, but for aggregation purposes I'd like to be able to quickly produce dates associated with that day - like first date of month, first day in week, and the like.

I think I could create my own, but if there is something out there already it'd be nice.

Thanks

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2 Answers 2

up vote 6 down vote accepted

Have a look at dateutil.

The recurrence rules and relative deltas are what you want.

For example, if you wanted to get last monday:

import dateutil.relativedelta as rd
import datetime

last_monday = datetime.date.today() + rd.relativedelta(weekday=rd.MO(-1))
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That'll do, thanks. –  tshauck Mar 4 '12 at 1:36

time and datetime modules

For some of your purposes you can use time module with strftime() method or date module with its strftime() method. It allows you to pull, among other data:

  • number of the week of the year,
  • number of the weekday (you can also use weekday() method for getting weekday number between 0 for Monday and 6 for Sunday),
  • year,
  • month,

Which will suffice to calculate first day of the month, first day of the week and some other data.

Examples

To pull the data you need, do just:

  • to pull the number of the day of the week

    >>> from datetime import datetime
    >>> datetime.now().weekday()
    6
    
  • to pull the first day of the month use replace() function of datetime object:

    >>> from datetime import datetime
    >>> datetime.now()
    datetime.datetime(2012, 3, 3, 21, 41, 20, 953000)
    >>> first_day_of_the_month = datetime.now().replace(day=1)
    >>> first_day_of_the_month
    datetime.datetime(2012, 3, 1, 21, 41, 20, 953000)
    

EDIT: As J.F. Sebastian suggested within comments, datetime objects have weekday() methods, which makes using int(given_date.strftime('%w')) rather pointless. I have updated the answer above.

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datetime object has weekday() method, you don't need strftime() for that. –  J.F. Sebastian Mar 3 '12 at 21:33
    
@J.F.Sebastian: Thanks, I have updated my answer. –  Tadeck Mar 3 '12 at 23:44

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