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Sorry for my english.

I have a two dates(DateTime):
latest_client = Client.objects.all().latest('id').ordered_at
first_client = Client.objects.order_by()[0].ordered_at

2011-04-22 15:27:28 - latest_client
2010-03-17 21:00:0 - first_client

I need to get the difference between dates in the form of list years and months:
2011(04,03,02,01)
2010(12,11,10,09,08,07,06,05,04,03)

Advice please algorithm, how?

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1. Convert from year/month to a 12*year+month index value. 2. Use range. Please code this, update the question, and we'll comment on how well you did. –  S.Lott Apr 22 '11 at 17:43
    
checked datetime.timedelta ??? –  Andreas Jung Apr 22 '11 at 17:44
    
Do you need full dates (e.g. iteration over datetime.date(year, month, 1)) or a specialized structure (e.g. iteration over year, (month, month, month) structures)? –  Martijn Pieters Apr 22 '11 at 17:57
    
@Martijn Pieters, i need datetime.date() –  Vladimir Apr 22 '11 at 18:05
    
Ok, i'm try to use range and timedelta. –  Vladimir Apr 22 '11 at 18:06

1 Answer 1

up vote 3 down vote accepted

Here is a generator that gives you datetime.date() spanning the months between start and end (inclusive)

from datetime import date, datetime
def spanning_months(start, end):
    assert start <= end
    current = start.year * 12 + start.month - 1
    end = end.year * 12 + end.month - 1
    while current <= end:
        yield date(current // 12, current % 12 + 1, 1)
        current += 1

Demonstration:

>>> latest = datetime(2011, 4, 22, 15, 27, 28)
>>> first = datetime(2010, 3, 17, 21, 0, 0)
>>> for d in spanning_months(first, latest):
...     print d
2010-03-01
2010-04-01
2010-05-01
2010-06-01
2010-07-01
2010-08-01
2010-09-01
2010-10-01
2010-11-01
2010-12-01
2011-01-01
2011-02-01
2011-03-01
2011-04-01
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Thanks a lot guys and special thank Martijn Pieters –  Vladimir Apr 22 '11 at 18:21

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