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date1 = datetime.datetime(2012, 10, 10, 10, 15, 44)
date2 = datetime.datetime(2012, 10, 17, 8, 45, 38)
roundedA = date2.replace(second = 0, microsecond = 0)
print roundedA
roundedB = date1.replace(second = 0, microsecond = 0)
print roundedB
minutes = (roundedA - roundedB).min
print minutes

Result is:

-999999999 days, 0:00:00

I want to count 2 different dates differences. I subtracted above, but it does not give me what I want. How to do subtract two dates and get the result in minutes or hours.

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1  
Why not take the days and hours from your result and multiply them out accordingly? –  inspectorG4dget Oct 17 '12 at 1:36
    
but, I want to be exact!, it may eliminate some minutes differences –  John Smith Oct 17 '12 at 1:37

2 Answers 2

The timedelta.min attribute does not represent minutes- it means the smallest possible timedelta (see here). If you want to get it in minutes, you can do:

d = roundedA - roundedB
minutes = d.days * 1440 + d.seconds / 60

This is because only seconds and days are stored internally in timedelta.

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1  
Thanks, you are right. –  John Smith Oct 17 '12 at 1:43

You can use also time module to get result of subtraction in seconds:

import time
import datetime
date1 = datetime.datetime(2012, 10, 10, 10, 15, 44)
date2 = datetime.datetime(2012, 10, 17, 8, 45, 38)
var1 = time.mktime(date1.timetuple())
var2 = time.mktime(date2.timetuple())
result_in_seconds = var2 - var1

>>> var2 - var1
599394.0

Or use function provided in answer

>>> def days_hours_minutes(td):
...     return td.days, td.seconds//3600, (td.seconds//60)%60
... 
>>> date2 - date1
datetime.timedelta(6, 80994)
>>> days_hours_minutes(datetime.timedelta(6, 80994))
(6, 22, 29)
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