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>>> start_date = date(1983, 11, 23)
>>> start_date.replace(month=start_date.month+1)
datetime.date(1983, 12, 23)

This works until the month is <=11, as soon as I do

>>> start_date = date(1983, 12, 23)
>>> start_date.replace(month=start_date.month+1)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
ValueError: month must be in 1..12

How can I keep adding months which increments the year when new month is added to December?

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1  
It is am implementation based on the Mayan calendar, and trying to go over dec/2012 overflows into the beginning of the cycle. (Sorry could not miss the joke) –  jsbueno Oct 4 '12 at 21:27
    
your joke is bad, and you should feel bad! –  Seçkin Savaşçı Oct 4 '12 at 21:29
1  
What happens if you are on December 31st, and you add two months? Do you want February 31st? February 28th (assuming not a leap year)? March 1st? –  Mark Hildreth Oct 4 '12 at 21:30
    
I did not think about this, but yes, you are right, I should be March 1st –  daydreamer Oct 4 '12 at 21:31
    
So in other words, you want it to be the same day, and if that day is not valid, go to the first of the next month? –  Mark Hildreth Oct 4 '12 at 21:33

5 Answers 5

up vote 5 down vote accepted

The dateutil library is useful for calculations like that:

>>> start_date + relativedelta(months=2)
datetime.date(1984, 1, 23)
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Nice, didn't know about that! Should have used that myself instead of reinventing the wheel a while ago. –  Michael Oct 4 '12 at 21:34
    
Thanks, so handy and awesome, thanks for telling about this @Daniel –  daydreamer Oct 5 '12 at 17:02
try:
    start_date.replace(month=start_date.month+1)
except ValueError:
    if start_date.month == 12:
         start_date.replace(month=1)
         start_date.replace(year=start_date.year+1)
    else:
         raise
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Using datetime.timedelta and calendar.monthrange:

>>> from datetime import date, timedelta
>>> import calendar
>>> start_date = date(1983, 12, 23)
>>> days_in_month = calendar.monthrange(start_date.year, start_date.month)[1]
>>> start_date + timedelta(days=days_in_month)
datetime.date(1984, 1, 23)
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+1 for using stdlib packages –  Luis Artola Feb 28 at 5:28

If you want to have a more general solution for this problem, e.g. adding days, months and years mixed to one date:

import time, datetime, calendar
def upcount(dt, years=0, months=0, **kwargs):
    if months:
        total_months = dt.month + months
        month_years, months = divmod(total_months, 12)
        if months == 0:
            month_years -= 1
            months = 12
        years += month_years
    else:
        months = dt.month

    years = dt.year + years
    try:
        dt = dt.replace(year=years, month=months)
    except ValueError:
        # 31st march -> 31st april gives this error
        max_day = calendar.monthrange(years, months)[1]
        dt = dt.replace(year=years, month=months, day=max_day)

    if kwargs:
        dt += datetime.timedelta(**kwargs)
    return dt
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You're going to have to decide how you want to deal with the weird cases like Jan 31 + 1 month = Feb 31 (which doesn't exist). But I'd lean towards using timedelta to add to your date as in:

import datetime as dt
dt.datetime.now() + dt.timedelta(days=30)

Where you could choose days based on the size of the current or next month, or some such other value so you don't overflow the next month.

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