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I have the method:

 def checkAgainstDate():
     currentDate = date.today()
     currentMonth = date.today().month
     if currentMonth == 1
         year = currentDate.year-1
         return date(year, 11, 01)
     elif currentMonth == 2:
         year = currentDate.year-1
         return date(year, 12, 01)
     else
         return date(currentDate.year, currentMonth-2, 01)

This just returns the first of the month 2 months ago, which is what i want is there a better approach i could have used using timedeltas? I choose my way because weeks in a month are not always constant.
Thanks in Advance,
Dean

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1  
else if should be elif. –  delnan Aug 15 '10 at 20:15
    
What a positively weird function name given its functionality -- why not name it "two months before" in whatever your favorite style of capitalization and underscores? –  Alex Martelli Aug 15 '10 at 20:24
    
Yes I know however i usually am the only person developing on a project and comment everything. So this isn't an issue. And at time of writing and thinking about it, it was the first thing I wrote, the content was more important as I couldn't write it on paper. –  Dean Aug 15 '10 at 20:27

2 Answers 2

up vote 1 down vote accepted

dateutil is an amazing thing. It really should become stdlib someday.

>>> from dateutil.relativedelta import relativedelta
>>> from datetime import datetime
>>> (datetime.now() - relativedelta(months=2)).replace(day=1)
datetime.datetime(2010, 6, 1, 13, 16, 29, 643077)
>>> (datetime(2010, 4, 30) - relativedelta(months=2)).replace(day=1)
datetime.datetime(2010, 2, 1, 0, 0)
>>> (datetime(2010, 2, 28) - relativedelta(months=2)).replace(day=1)
datetime.datetime(2009, 12, 1, 0, 0)
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Convert to an "absolute month number", subtract 2, convert back to year & month:

currentdate = date.today()
monthindex = 12*currentdate.year + (currentdate.month-1) -2
return datetime( monthindex // 12, monthindex % 12 + 1, 1)
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