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I am trying to have some clever dates since a post has been made on my site ("seconds since, hours since, weeks since, etc..") and I'm using datetime.timedelta difference between utcnow and utc dated stored in the database for a post.

Looks like, according to the docs, I have to use the days attribute AND the seconds attribute, to get the fancy date strings I want.

Can't I just get in whatever time unit I want the value of the entire difference? Am I missing something?

It would be perfect if I could just get the entire difference in seconds.

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4 Answers

up vote 19 down vote accepted

It seems that Python 2.7 has introduced a total_seconds() method, which is what you were looking for, I believe!

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You can compute the difference in seconds.

total_seconds = delta.days * 86400 + delta.seconds

No, you're no "missing something". It doesn't provide deltas in seconds.

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That's what I plan on doing, but I just didn't want that kludge in my code if there was something I didn't know about. Thanks. –  Bjorn Tipling Feb 1 '09 at 4:28
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Wish they had .total_seconds, .total_minutes, etc etc on timedeltas... –  romkyns Jun 26 '09 at 0:04
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This approach, like total_seconds() in Python 2.7, will return an incorrect result if the days don't have 24 hours (for example, because of changes in daylight saving time). –  Bruno Sep 14 '11 at 14:41
    
I have to agree with Bruno - this will give wrong results twice a year, so it's not a correct answer. –  Tom Swirly Jan 31 '12 at 18:04
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The correct value is "(td.microseconds + (td.seconds + td.days * 24 * 3600) * 10**6) / 10**6". (for python versions less than 2.7 that can't use total_seconds) –  markwatson Apr 23 '12 at 20:45
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It would be perfect if I could just get the entire difference in seconds.

Then plain-old-unix-timestamp as provided by the 'time' module may be more to your taste.

I personally have yet to be convinced by a lot of what's in 'datetime'.

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+1 for suggesting a solution that doesn't assume that all days have 24 hours. –  Bruno Sep 14 '11 at 14:34
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Like bobince said, you could use timestamps, like this:

# assuming ts1 and ts2 are the two datetime objects
from time import mktime
mktime(ts1.timetuple()) - mktime(ts2.timetuple())

Although I would think this is even uglier than just calculating the seconds from the timedelta object...

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You can further complicate things: reduce(float.__sub__, (mktime(d.utctimetuple()) for d in (ts1, ts2))) –  J.F. Sebastian Feb 1 '09 at 10:04
    
@J.F.Sebastian: but why? –  Claudiu Aug 6 '13 at 18:38
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