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I have a string like the following "0:07:38.701" which means 0 hours, 7 minutes, 38 seconds and 701 ms.

I then have a datetime object like the following: datetime.datetime(1945, 1, 3, 11, 45, 0, 44000)

I would like to add these times (the first one is a delta, while the second is an absolute time reference) and get a new datetime.datetime object.

How can I do this?

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4 Answers 4

up vote 2 down vote accepted

Once you have a datetime and a timedelta, adding them is as simple as using the + operator:

>>> dt = datetime.datetime(1945, 1, 3, 11, 45, 0, 44000)
>>> td = datetime.timedelta(hours=0, minutes=7, seconds=38.701)
>>> dt + td
datetime.datetime(1945, 1, 3, 11, 52, 38, 745000)

There is no built-in parser for timedelta objects akin to strptime for datetime objects.

You can sometimes fake it by actually parsing the string as a datetime, then extracting the fields to build a timedelta, but this is both hacky and complicated—and, for your simple format, you can write one trivially:

def strpdelta(s):
    hr, min, sec = map(float, s.split(':'))
    return datetime.timedelta(hours=hr, minutes=min, seconds=sec)
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You can use a time delta:

>>> import datetime, re
>>> s = "0:07:38.701"
>>> hours, minutes, seconds = [float(val) for val in s.split(':')]
>>> delta = datetime.timedelta(hours=hours, minutes=minutes, seconds=seconds)
>>> datetime.datetime(1945, 1, 3, 11, 45, 0, 44000) + delta
datetime.datetime(1945, 1, 3, 11, 52, 38, 745000)
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Thanks. Any way to convert the string to a timedelta in first place? (e.g. something similar to datetime.strptime) –  Josh Oct 7 '13 at 21:09
    
@Josh, as abarnert points out, there is no builtin parser for timedeltas, but if you know the format before hand, it should not be too complicated (see my updated answer). –  miku Oct 7 '13 at 21:16
    
There's no need to parse out the milliseconds separately; 38.701 is a perfectly valid seconds argument. Also, you've left out the hours. Also, using a regex is overkill here; if you were using it to write something more robust than just split(':') that would be one thing, but here the added complexity is actually making it less robust… –  abarnert Oct 7 '13 at 21:17
    
@abarnert, thanks for the hints, I updated my answer. –  miku Oct 7 '13 at 21:19
    
@miku: The new version won't work, because int('38.701') is a ValueError (and, even if it weren't, it would obviously lose the millis part). –  abarnert Oct 7 '13 at 21:21
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EDIT: As pointed out in the comment, timedelta can handle float values. i.e. if seconds=38.701, it will convert it to seconds and milliseconds

from datetime import timedelta, datetime

dtime = datetime(1945, 1, 3, 11, 45, 0, 44000)
str = "0:07:38.701"

elems = str.split(':')
hr, min, sec= int(elems[0]), int(elems[1]), float(elems[2])

tdelta = timedelta(hours=hr, minutes=min, seconds=sec)

new_datetime = dtime + tdelta

Version before edit:

from datetime import timedelta, datetime

dtime = datetime(1945, 1, 3, 11, 45, 0, 44000)
str = "0:07:38.701"

stuff = str.split(':')
elems = stuff[:-1] + stuff[2].split('.')
hr, min, sec, mls= int(elems[0]), int(elems[1]), int(elems[2], int(elems[3]))

tdelta = timedelta(hours=hr, minutes=min, seconds=sec, milliseconds=mls)

new_datetime = dtime + tdelta
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You don't need to parse the milliseconds out; timedelta can handle float values. And the extra complexity let you to at least two bugs here: elems[2] is the unsplit seconds part, like 38.701, which will raise a ValueError when you call int on it; elems[3] is the integral part of the seconds part, so you'll end up with milliseconds=38 instead of milliseconds=701. You can fix that by using elems[3] and elems[4] for the last part, but I wouldn't exactly call that obviously correct; someone would have to read and think about the code to figure out that it works right. –  abarnert Oct 7 '13 at 21:18
    
Your new version still doesn't work; int(elems[2]) is still a ValueError. And if you fix this, it's exactly the same as the two answers that already exist. –  abarnert Oct 7 '13 at 21:22
    
Thankyou for pointing out the 'seconds could be float part'. Also fixed the millisecond=38 in the previous answer. Yes the answers are similar. When I started writing the answer, the first answer was not edited for string conversion and the second answer wasn't posted. –  shshank Oct 7 '13 at 21:30
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One more solution, and my favorite so far since it requires no manual parsing and uses existing functionality in datetime to parse dates in string format:

# Input times:
init_time       =  datetime.datetime(1945, 1, 3, 11, 45, 0, 44000)
time_to_add_str = '0:00:05.00'

# Adding them up:
time_to_add = datetime.strptime(time_to_add_str, '%H:%M:%S.%f') - datetime(1900,1,1)
final_time  = time_to_add  + init_time
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You really think [float(val) for val in s.split(':')] is more complicated/brittle/whatever than datetime.strptime(s, '%H:%M:%S.%f') - datetime(1900,1,1)? –  abarnert Oct 22 '13 at 21:45
    
Thanks @abarnert - I guess that I what I like about this approach is that it uses existing functionality to parse dates in string format (strptime), but you are right, it's a very close call. –  Josh Oct 22 '13 at 21:57
    
What I don't like about it is that it relies on knowing about the 1900-1-1-default rule, which is actually only really guaranteed for strftime, not strptime. But that's a pretty minor quibble; the only real downside to doing it this way is that it's not nicely extensible to days or beyond—and since you're not in any way implying that it is, or giving any indication that you want to do that, that isn't relevant here. –  abarnert Oct 22 '13 at 22:19
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