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Let's imagine this datetime

>>> import datetime
>>> dt = datetime.datetime(2012, 10, 25, 17, 32, 16)

I'd like to ceil it to the next quarter of hour, in order to get

datetime.datetime(2012, 10, 25, 17, 45)

I imagine something like

>>> quarter = datetime.timedelta(minutes=15)
>>> import math
>>> ceiled_dt = math.ceil(dt / quarter) * quarter

But of course this does not work

share|improve this question
up vote 12 down vote accepted

This one takes microseconds into account!

import math

def ceil_dt(dt):
    # how many secs have passed this hour
    nsecs = dt.minute*60 + dt.second + dt.microsecond*1e-6  
    # number of seconds to next quarter hour mark
    # Non-analytic (brute force is fun) way:  
    #   delta = next(x for x in xrange(0,3601,900) if x>=nsecs) - nsecs
    # analytic way:
    delta = math.ceil(nsecs / 900) * 900
    #time + number of seconds to quarter hour mark.
    return dt + datetime.timedelta(seconds=delta)

Explanation of delta:

  • 900 seconds is 15 minutes (a quarter of an hour sans leap seconds which I don't think datetime handles...)
  • nsecs / 900 is the number of quarter hour chunks that have transpired. Taking the ceil of this rounds up the number of quarter hour chunks.
  • Multiply the number of quarter hour chunks by 900 to figure out how many seconds have transpired in since the start of the hour after "rounding".
share|improve this answer
    
Working fine. Seems to be the simplest. Thanks – Pierre de LESPINAY Oct 25 '12 at 15:53
    
I tried it with 3600 instead of 900 and it's not working. It's adding 3600 even if the time is already rounded. – Anuj May 17 at 9:19
    
I'm thinking that I should have used delta = math.ceil(nsecs / 900.) * 900. – mgilson May 17 at 15:55
def ceil(dt):
    if dt.minute % 15 or dt.second:
        return dt + datetime.timedelta(minutes = 15 - dt.minute % 15,
                                       seconds = -(dt.second % 60))
    else:
        return dt

This gives you:

>>> ceil(datetime.datetime(2012,10,25, 17,45))
datetime.datetime(2012, 10, 25, 17, 45)
>>> ceil(datetime.datetime(2012,10,25, 17,45,1))
datetime.datetime(2012, 10, 25, 18, 0)
>>> ceil(datetime.datetime(2012,12,31,23,59,0))
datetime.datetime(2013,1,1,0,0)
share|improve this answer
3  
This is a little funky because you operate on dt in place, but then you return it. from an API perspective, It seems like you should either do one or the other ... (Also, this doesn't take microseconds into account) – mgilson Oct 25 '12 at 15:17
    
@mgilson: Thanks for the comment, you're right of course. I did ignore microseconds because the OP was constructing his datetimes without them. But of course that may be a problem if that's not his real-world use case. – Tim Pietzcker Oct 25 '12 at 15:24
    
Yeah. I'm happy enough with it now that you fixed the API stuff (+1) – mgilson Oct 25 '12 at 15:29
    
I also like that you said "you're right of course". While I have a nasty habit of assuming I'm always right, I don't think that other people usually agree O:^) – mgilson Oct 25 '12 at 15:38

@Mark Dickinson suggested the best formula so far:

def ceil_dt(dt, delta):
    return dt + (datetime.min - dt) % delta

In Python 3, for an arbitrary time delta (not just 15 minutes):

#!/usr/bin/env python3
import math
from datetime import datetime, timedelta

def ceil_dt(dt, delta):
    return datetime.min + math.ceil((dt - datetime.min) / delta) * delta

print(ceil_dt(datetime(2012, 10, 25, 17, 32, 16), timedelta(minutes=15)))
# -> 2012-10-25 17:45:00

To avoid intermediate floats, divmod() could be used:

def ceil_dt(dt, delta):
    q, r = divmod(dt - datetime.min, delta)
    return (datetime.min + (q + 1)*delta) if r else dt

Example:

>>> ceil_dt(datetime(2012, 10, 25, 17, 32, 16), timedelta(minutes=15))
datetime.datetime(2012, 10, 25, 17, 45)
>>> ceil_dt(datetime.min, datetime.resolution) 
datetime.datetime(1, 1, 1, 0, 0)
>>> ceil_dt(datetime.min, 2*datetime.resolution)
datetime.datetime(1, 1, 1, 0, 0)
>>> ceil_dt(datetime.max, datetime.resolution)
datetime.datetime(9999, 12, 31, 23, 59, 59, 999999)
>>> ceil_dt(datetime.max, 2*datetime.resolution)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "<stdin>", line 3, in ceil_dt
OverflowError: date value out of range
>>> ceil_dt(datetime.min+datetime.resolution, datetime.resolution)
datetime.datetime(1, 1, 1, 0, 0, 0, 1)
>>> ceil_dt(datetime.min+datetime.resolution, 2*datetime.resolution)
datetime.datetime(1, 1, 1, 0, 0, 0, 2)
>>> ceil_dt(datetime.max-datetime.resolution, datetime.resolution)
datetime.datetime(9999, 12, 31, 23, 59, 59, 999998)
>>> ceil_dt(datetime.max-datetime.resolution, 2*datetime.resolution)
datetime.datetime(9999, 12, 31, 23, 59, 59, 999998)
>>> ceil_dt(datetime.max-2*datetime.resolution, datetime.resolution)
datetime.datetime(9999, 12, 31, 23, 59, 59, 999997)
>>> ceil_dt(datetime.max-2*datetime.resolution, 2*datetime.resolution)
datetime.datetime(9999, 12, 31, 23, 59, 59, 999998)
>>> ceil_dt(datetime.max-timedelta(1), datetime.resolution)
datetime.datetime(9999, 12, 30, 23, 59, 59, 999999)
>>> ceil_dt(datetime.max-timedelta(1), 2*datetime.resolution)
datetime.datetime(9999, 12, 31, 0, 0)
>>> ceil_dt(datetime.min, datetime.max-datetime.min)
datetime.datetime(1, 1, 1, 0, 0)
>>> ceil_dt(datetime.max, datetime.max-datetime.min)
datetime.datetime(9999, 12, 31, 23, 59, 59, 999999)
share|improve this answer
1  
If you're restricting to Python 3, then the simpler expression dt + (datetime.min - dt) % delta also works. – Mark Dickinson Sep 19 '15 at 19:51
    
@MarkDickinson: yes. It does work on CPython (for all the examples in the answer). You should post: def ceil_dt(dt, delta): return dt + (datetime.min - dt) % delta as an answer. – J.F. Sebastian Sep 19 '15 at 20:39

You just need to calculate correct minutes and add them in datetime object after setting minutes, seconds to zero

import datetime

def quarter_datetime(dt):
    minute = (dt.minute//15+1)*15
    return dt.replace(minute=0, second=0)+datetime.timedelta(minutes=minute)

for minute in [12, 22, 35, 52]:
    print quarter_datetime(datetime.datetime(2012, 10, 25, 17, minute, 16))

It works for all cases:

2012-10-25 17:15:00
2012-10-25 17:30:00
2012-10-25 17:45:00
2012-10-25 18:00:00
share|improve this answer
    
This is a duplicated of Pierre GM's answer, except yours will only work as expected in Python 2.x due to the use of / over //. – Gareth Latty Oct 25 '12 at 15:07
    
@Lattyware I think we posted it at same time + now it is not same as I have fixed a bug, and his solution has defect – Anurag Uniyal Oct 25 '12 at 15:09
    
Great, although I'd note the use of / over // is still sub-optimal. Also, SO notifies you when someone else posts an answer, it's worth looking before you post yours to check you are not duplicating an answer. – Gareth Latty Oct 25 '12 at 15:11
1  
Don't forget about microseconds ... – mgilson Oct 25 '12 at 15:12
    
I thin we had 15 secs difference and I did not see any other post – Anurag Uniyal Oct 25 '12 at 15:12

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