358

What is a classy way to way truncate a python datetime object?

In this particular case, to the day. So basically setting hour, minute, seconds, and microseconds to 0.

I would like the output to also be a datetime object, not a string.

0

17 Answers 17

Reset to default
538

I think this is what you're looking for...

>>> import datetime
>>> dt = datetime.datetime.now()
>>> dt = dt.replace(hour=0, minute=0, second=0, microsecond=0) # Returns a copy
>>> dt
datetime.datetime(2011, 3, 29, 0, 0)

But if you really don't care about the time aspect of things, then you should really only be passing around date objects...

>>> d_truncated = datetime.date(dt.year, dt.month, dt.day)
>>> d_truncated
datetime.date(2011, 3, 29)
5
  • 25
    With a timezone-aware dt, datetime.datetime(dt.year, dt.month, dt.day) throws away the tzinfo information.
    – ʇsәɹoɈ
    Mar 29, 2011 at 17:11
  • 2
    if you're looking for just today, you can also do datetime.date.today()
    – galarant
    May 17, 2013 at 17:56
  • 8
    Note that python 2 and python 3 docs both state that the replace() method returns a datetime object, so the correct incantation would be: dt = datetime.datetime.now().replace(hour=0, minute=0, second=0, microsecond=0)
    – Brad M
    Oct 11, 2014 at 10:06
  • 4
    OP wants datetime, not date object (that you could get using dt.date() call (no need to use the explicit constructor)). The .replace() method may fail if datetime adds nanosecond support. You could use datetime.combine() instead.
    – jfs
    Mar 28, 2015 at 11:33
  • @chrisw Why not just write it up in one line datetime.datetime.now().replace(hour=0, minute=0, second=0, microsecond=0) ?
    – 3kstc
    Oct 4, 2018 at 7:45
97

Use a date not a datetime if you dont care about the time.

>>> now = datetime.now()
>>> now.date()
datetime.date(2011, 3, 29)

You can update a datetime like this:

>>> now.replace(minute=0, hour=0, second=0, microsecond=0)
datetime.datetime(2011, 3, 29, 0, 0)
3
52

Four years later: another way, avoiding replace

I know the accepted answer from four years ago works, but this seems a tad lighter than using replace:

dt = datetime.date.today()
dt = datetime.datetime(dt.year, dt.month, dt.day)

Notes

  • When you create a datetime object without passing time properties to the constructor, you get midnight.
  • As others have noted, this assumes you want a datetime object for later use with timedeltas.
  • You can, of course, substitute this for the first line: dt = datetime.datetime.now()
1
  • 5
    With timezone-aware datetimes, tzinfo information does not share between the two.
    – Seyfi
    Aug 3, 2021 at 19:32
27

To get a midnight corresponding to a given datetime object, you could use datetime.combine() method:

>>> from datetime import datetime, time
>>> dt = datetime.utcnow()
>>> dt.date()
datetime.date(2015, 2, 3)
>>> datetime.combine(dt, time.min)
datetime.datetime(2015, 2, 3, 0, 0)

The advantage compared to the .replace() method is that datetime.combine()-based solution will continue to work even if datetime module introduces the nanoseconds support.

tzinfo can be preserved if necessary but the utc offset may be different at midnight e.g., due to a DST transition and therefore a naive solution (setting tzinfo time attribute) may fail. See How do I get the UTC time of “midnight” for a given timezone?

1
  • and it saves you a lot of typing (compared to replace()).
    – ebk
    Feb 5, 2021 at 8:41
26

You cannot truncate a datetime object because it is immutable.

However, here is one way to construct a new datetime with 0 hour, minute, second, and microsecond fields, without throwing away the original date or tzinfo:

newdatetime = now.replace(hour=0, minute=0, second=0, microsecond=0)
2
  • 1
    +1: if you put the replace option first, since that's probably what they want.
    – S.Lott
    Mar 29, 2011 at 18:10
  • 1
    It is incorrect to use tzinfo=now.tzinfo. The tzinfo at midnight may be different e.g., utc offset at 2012-04-01 00:09:00 (9am) in Australia/Melbourne timezone is AEST+10:00 but it is AEDT+11:00 at 2012-04-01 00:00:00 (midnight) -- there is end-of-DST transition on that day. You could use pytz module to fix it, see my answer.
    – jfs
    Mar 28, 2015 at 17:51
15

See more at https://pandas.pydata.org/pandas-docs/stable/reference/api/pandas.Series.dt.floor.html

It's now 2019, I think the most efficient way to do it is:

df['truncate_date'] = df['timestamp'].dt.floor('d')
4
  • yeah, let's use dt.floor!!
    – Eiffelbear
    Mar 4, 2021 at 13:01
  • Waw, exactly what I've been looking for the last three hours. Thanks a lot. That's the only solution that enables to pass the truncating frequency as a parameter...
    – Clej
    Apr 25, 2022 at 14:09
  • Well, df['timestamp'] = df['timestamp'].dt.floor('d') will not work. Column name must be different and this is a serious drawback.
    – cph_sto
    May 3, 2022 at 9:50
  • 1
    This only works in the context of pandas (not Python datetime), but it's a great solution in that context.
    – Attila the Fun
    Aug 3, 2022 at 17:16
10

You could use pandas for that (although it could be overhead for that task). You could use round, floor and ceil like for usual numbers and any pandas frequency from offset-aliases:

import pandas as pd
import datetime as dt

now = dt.datetime.now()
pd_now = pd.Timestamp(now)

freq = '1d'
pd_round = pd_now.round(freq)
dt_round = pd_round.to_pydatetime()

print(now)
print(dt_round)

"""
2018-06-15 09:33:44.102292
2018-06-15 00:00:00
"""
4

There is a great library used to manipulate dates: Delorean

import datetime
from delorean import Delorean
now = datetime.datetime.now()
d = Delorean(now, timezone='US/Pacific')

>>> now    
datetime.datetime(2015, 3, 26, 19, 46, 40, 525703)

>>> d.truncate('second')
Delorean(datetime=2015-03-26 19:46:40-07:00, timezone='US/Pacific')

>>> d.truncate('minute')
Delorean(datetime=2015-03-26 19:46:00-07:00, timezone='US/Pacific')

>>> d.truncate('hour')
Delorean(datetime=2015-03-26 19:00:00-07:00, timezone='US/Pacific')

>>> d.truncate('day')
Delorean(datetime=2015-03-26 00:00:00-07:00, timezone='US/Pacific')

>>> d.truncate('month')
Delorean(datetime=2015-03-01 00:00:00-07:00, timezone='US/Pacific')

>>> d.truncate('year')
Delorean(datetime=2015-01-01 00:00:00-07:00, timezone='US/Pacific')

and if you want to get datetime value back:

>>> d.truncate('year').datetime
datetime.datetime(2015, 1, 1, 0, 0, tzinfo=<DstTzInfo 'US/Pacific' PDT-1 day, 17:00:00 DST>)
1
3

You can use datetime.strftime to extract the day, the month, the year...

Example :

from datetime import datetime
d = datetime.today()

# Retrieves the day and the year
print d.strftime("%d-%Y")

Output (for today):

29-2011

If you just want to retrieve the day, you can use day attribute like :

from datetime import datetime
d = datetime.today()

# Retrieves the day
print d.day

Ouput (for today):

29
2
  • Well the thing is I already do this once, so that might have more overhead then just setting the hour min etc fields in the datetime object.
    – Kyle Brandt
    Mar 29, 2011 at 16:58
  • Heh, thats a weird way to do it, you can actually just do d.day etc.
    – Jochen Ritzel
    Mar 29, 2011 at 17:02
3

If you are dealing with a Series of type DateTime there is a more efficient way to truncate them, specially when the Series object has a lot of rows.

You can use the floor function

For example, if you want to truncate it to hours:

Generate a range of dates

times = pd.Series(pd.date_range(start='1/1/2018 04:00:00', end='1/1/2018 22:00:00', freq='s'))

We can check it comparing the running time between the replace and the floor functions.

%timeit times.apply(lambda x : x.replace(minute=0, second=0, microsecond=0))
>>> 341 ms ± 18.2 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)

%timeit times.dt.floor('h')
>>>>2.26 ms ± 451 µs per loop (mean ± std. dev. of 7 runs, 100 loops each)
1
  • 1
    this answer is the best but got only 1 upvote, so I upvoted your answer:)
    – Eiffelbear
    Mar 4, 2021 at 13:01
3 
>>> import datetime
>>> dt = datetime.datetime.now()
>>> datetime.datetime.date(dt)
datetime.date(2019, 4, 2)
1
  • This is the best if you don't care about getting a datetime.datetime object back and just want a date.
    – Attila the Fun
    Aug 3, 2022 at 17:22
3

Here is yet another way which fits in one line but is not particularly elegant:

dt = datetime.datetime.fromordinal(datetime.date.today().toordinal())
2

If you want to truncate to an arbitrary timedelta:

from datetime import datetime, timedelta
truncate = lambda t, d: t + (datetime.min - t) % - d
# 2022-05-04 15:54:19.979349
now = datetime.now()

# truncates to the last 15 secondes
print(truncate(now, timedelta(seconds=15)))
# truncates to the last minute
print(truncate(now, timedelta(minutes=1)))
# truncates to the last 2 hours
print(truncate(now, timedelta(hours=2)))
# ...

"""
2022-05-04 15:54:15
2022-05-04 15:54:00
2022-05-04 14:00:00
"""

PS: This is for python3

1

There is a module datetime_truncate which handlers this for you. It just calls datetime.replace.

1

6 years later... I found this post and I liked more the numpy aproach:

import numpy as np
dates_array = np.array(['2013-01-01', '2013-01-15', '2013-01-30']).astype('datetime64[ns]')
truncated_dates = dates_array.astype('datetime64[D]')

cheers

1

You could do it by specifying isoformat

>>> import datetime
>>> datetime.datetime.now().isoformat(timespec='seconds', sep=' ')
2022-11-24 12:42:05

The documentation offers more details about the isoformat() usage.

https://docs.python.org/3/library/datetime.html#datetime.datetime.isoformat

0

You can just use

datetime.date.today()

It's light and returns exactly what you want.

4
  • The same answer has been given before, there is nothing new.
    – slfan
    Jan 7, 2019 at 18:03
  • Sorry @slfan but i didn't see any post with your name, even using "search" from browser.
    – Bordotti
    Apr 22, 2019 at 19:58
  • 2
    Not by me, by zx81 3 years ago. search for datetime.date.today(). If an answer is correct, you should upvote, not answer again.
    – slfan
    Apr 22, 2019 at 20:56
  • cast as datetime
    – mathtick
    Sep 1, 2020 at 12:12

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge that you have read and understand our privacy policy and code of conduct.

Not the answer you're looking for? Browse other questions tagged or ask your own question.