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I have two time objects

Example

time.struct_time(tm_year=2010, tm_mon=9, tm_mday=24, tm_hour=19, tm_min=13, tm_sec=37, tm_wday=4, tm_yday=267, tm_isdst=-1)


time.struct_time(tm_year=2010, tm_mon=9, tm_mday=25, tm_hour=13, tm_min=7, tm_sec=25, tm_wday=5, tm_yday=268, tm_isdst=-1)

I want to have the difference of those two? How could I do that? I need minutes and seconds only, as well as the duration of those two.

Thanks!

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1  
Look at: stackoverflow.com/questions/1697815/… –  shahjapan Oct 13 '10 at 4:55
    
timezone-aware answer: Find if 24 hrs have passed between datetimes - Python –  J.F. Sebastian Feb 9 at 14:24

4 Answers 4

up vote 12 down vote accepted

Time instances do not support the subtraction operation. Given that one way to solve this would be to convert the time to seconds since epoch and then find the difference. For e.g.

>>> t1 = time.localtime()
>>> t1
time.struct_time(tm_year=2010, tm_mon=10, tm_mday=13, tm_hour=10, tm_min=12, tm_sec=27, tm_wday=2, tm_yday=286, tm_isdst=0)
>>> t2 = time.gmtime()
>>> t2
time.struct_time(tm_year=2010, tm_mon=10, tm_mday=13, tm_hour=4, tm_min=42, tm_sec=37, tm_wday=2, tm_yday=286, tm_isdst=0)

>>> (time.mktime(t1) - time.mktime(t2)) / 60
329.83333333333331
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1  
In python 3 the mktime function returns the number of seconds since the Epoch and therefore no need to divide by 60. –  Adam Oren Apr 18 '13 at 15:47
    
local time may be ambiguous therefore mktime() may return a wrong result (50% chance during end-of-DST transitions, or just wrong for past dates if historical tz database is not used). It is incorrect to pass it UTC time (the result of gmtime()) unless the local timezone is UTC. –  J.F. Sebastian Feb 9 at 14:28
    
@AdamOren: mktime() always returns "seconds sicne the epoch". /60 returns number of minutes as OP asks. I would use minutes, seconds = divmod(seconds, 60) to get minutes, seconds separately or use timedelta as @jweyrich suggested. –  J.F. Sebastian Feb 9 at 14:31
>>> t1 = time.mktime(time.strptime("10 Oct 10", "%d %b %y"))
>>> t2 = time.mktime(time.strptime("15 Oct 10", "%d %b %y"))
>>> print datetime.timedelta(seconds=t2-t1)
5 days, 0:00:00
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You can use time.mktime(t) with the struct_time object (passed as "t") to convert it to a "seconds since epoch" floating point value. Then you can subtract those to get difference in seconds, and divide by 60 to get difference in minutes.

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There is another way to find the time difference between any two dates ( no better than previous solution , I guess)

 >>> import datetime
 >>> dt1 = datetime.datetime.strptime("10 Oct 10", "%d %b %y")
 >>> dt2 = datetime.datetime.strptime("15 Oct 10", "%d %b %y")
 >>> (dt2 - dt1).days
 5
 >>> (dt2 - dt1).seconds
 0
 >>>

It will give the difference in days or seconds or combination of that. The type for (dt2 - dt1) is datetime.timedelta. Look in the library for further details.

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