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How do you convert a python time.struct_time object into a datetime.datetime object? I have a library that provides the first one and a second library that wants the second one...

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3 Answers 3

up vote 232 down vote accepted

Use time.mktime() to convert the time tuple (in localtime) into seconds since the Epoch, then use datetime.fromtimestamp() to get the datetime object.

from time import mktime
from datetime import datetime

dt = datetime.fromtimestamp(mktime(struct))
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1  
@Nadia Why is that? Yours seems simpler and requires fewer modules. –  Jordan Reiter Jun 16 '11 at 18:34
10  
Note that this fails before 1900. You modern people never remember this limitation! –  mlissner Feb 18 '12 at 7:40
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will this lose the tm_isdst data? I think so, the resulting datetime object remains naive to the extent to return None on .dst() even if struct.tm_isdst is 1. –  naxa May 8 at 14:43
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This will usually work. However, it will fail if the time tuple is beyond the values mktime accepts, for example for the value (1970, 1, 1, 0, 0, 0, 0, 1, -1). I have encountered this after parsing the Date header on an HTTP request which returned this tuple. –  user3820547 Jul 9 at 14:20
    
As @naxa hints, this will give you a datetime with DST correction, even if the original had no DST offset. –  richvdh Sep 10 at 21:33

Like this:

>>> structTime = time.localtime()
>>> datetime.datetime(*structTime[:6])
datetime.datetime(2009, 11, 8, 20, 32, 35)
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4  
@jhwist - some things people can be trusted to figure it out on their own :) –  orip Nov 8 '09 at 21:10
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I like this one. It's concise. –  twneale Feb 23 '10 at 17:59
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what does * in front of structTime do? –  rodling Dec 7 '12 at 18:44
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@rodling the * and ** syntax allows you to expand a listy or dicty type object in to separate arguments - it's one of my favourite pieces of Python lovelyness. See docs.python.org/2/tutorial/… for more info –  OrganicPanda Jan 17 '13 at 16:02
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Just remember this will give you a ValueError if the struct_time has a leapsecond, eg: t=time.strptime("30 Jun 1997 22:59:60", "%d %b %Y %H:%M:%S"); datetime.datetime(*t[:6]) –  berdario Jan 20 at 0:17

This is not a direct answer to your question (which was answered pretty well above). However, having had times bite me on the fundament several times, I cannot stress enough that it would behoove you to look closely at what your time.struct_time object is providing, vs. what other time fields may have.

Assuming you have both a time.struct_time object, and some other date/time string, compare the two, and be sure you are not losing data and inadvertently creating a naive datetime object, when you can do otherwise.

For example, the excellent feedparser module will return a "published" field and may return a time.struct_time object in it's "published_parsed" field:

time.struct_time(tm_year=2013, tm_mon=9, tm_mday=9, tm_hour=23, tm_min=57, tm_sec=42, tm_wday=0, tm_yday=252, tm_isdst=0)

Now note what you actually get with the "published" field.

Mon, 09 Sep 2013 19:57:42 -0400

By Stallman's Beard! Timezone info!

In this case, the lazy man might want to use the excellent dateutil module to keep the timezone info:

from dateutil import parser
dt = parser.parse(entry["published"])
print "published", entry["published"])
print "dt", dt
print "utcoffset", dt.utcoffset()
print "tzinfo", dt.tzinfo
print "dst", dt.dst()

which gives us:

published Mon, 09 Sep 2013 19:57:42 -0400
dt 2013-09-09 19:57:42-04:00
utcoffset -1 day, 20:00:00
tzinfo tzoffset(None, -14400)
dst 0:00:00

One could then use the timezone aware datetime object to normalize all time to UTC or whatever you think is awesome.

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