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I have a time difference

time1 = datetime.datetime.fromtimestamp(time.mktime(time.gmtime()))
...
time2 = datetime.datetime.fromtimestamp(time.mktime(time.gmtime()))
diff = time2 - time2

Now, how do I find the total number of seconds that passed? diff.seconds doesn't count days. I could do

diff.seconds + diff.days * 24 * 3600

Is there a builtin method for that?

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3  
With a reputation > 7000 you might know where the Python documentation is. –  Andreas Jung Apr 2 '11 at 8:20
    
@RestRisiko - you're right. Still, it's useful to have the question on Stack Overflow, so the next time me, or someone else, Googles for it, he has a good answer as the top result. –  ripper234 Apr 2 '11 at 8:33
    
We can discuss alternative definitions of "good" later; please read my answer before you run away :) –  John Machin Apr 2 '11 at 10:02

2 Answers 2

up vote 14 down vote accepted

http://docs.python.org/library/datetime.html#datetime.timedelta.total_seconds

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5  
New in python 2.7 –  Evgeny Jun 6 '13 at 14:43
    
If somebody still needs to be compatible with 2.6: See stackoverflow.com/questions/3318348/… for how to extend datetime.timedelta with the new method yourself. –  Uwe Geuder Dec 16 '13 at 18:42

You have a problem one way or the other with your datetime.datetime.fromtimestamp(time.mktime(time.gmtime())) expression.

(1) If all you need is the difference between two instants in seconds, the very simple time.time() does the job.

(2) If you are using those timestamps for other purposes, you need to consider what you are doing, because the result has a big smell all over it:

gmtime() returns a time tuple in UTC but mktime() expects a time tuple in local time.

I'm in Melbourne, Australia where the standard TZ is UTC+10, but daylight saving is still in force until tomorrow morning so it's UTC+11. When I executed the following, it was 2011-04-02T20:31 local time here ... UTC was 2011-04-02T09:31

>>> import time, datetime
>>> t1 = time.gmtime()
>>> t2 = time.mktime(t1)
>>> t3 = datetime.datetime.fromtimestamp(t2)
>>> print t0
1301735358.78
>>> print t1
time.struct_time(tm_year=2011, tm_mon=4, tm_mday=2, tm_hour=9, tm_min=31, tm_sec=3, tm_wday=5, tm_yday=92, tm_isdst=0) ### this is UTC
>>> print t2
1301700663.0
>>> print t3
2011-04-02 10:31:03 ### this is UTC+1
>>> tt = time.time(); print tt
1301736663.88
>>> print datetime.datetime.now()
2011-04-02 20:31:03.882000 ### UTC+11, my local time
>>> print datetime.datetime(1970,1,1) + datetime.timedelta(seconds=tt)
2011-04-02 09:31:03.880000 ### UTC
>>> print time.localtime()
time.struct_time(tm_year=2011, tm_mon=4, tm_mday=2, tm_hour=20, tm_min=31, tm_sec=3, tm_wday=5, tm_yday=92, tm_isdst=1) ### UTC+11, my local time

You'll notice that t3, the result of your expression is UTC+1, which appears to be UTC + (my local DST difference) ... not very meaningful. You should consider using datetime.datetime.utcnow() which won't jump by an hour when DST goes on/off and may give you more precision than time.time()

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Thanks for the clarification. For the purpose I'm using right now, a difference of even a few hours every now and then isn't important, but I'll be sure to check this out in the future when I write something more meaningful. –  ripper234 Apr 2 '11 at 12:24

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