如何在python中找到两个日期时间对象之间的时差?


Answers:


373
>>> import datetime
>>> first_time = datetime.datetime.now()
>>> later_time = datetime.datetime.now()
>>> difference = later_time - first_time
>>> seconds_in_day = 24 * 60 * 60
datetime.timedelta(0, 8, 562000)
>>> divmod(difference.days * seconds_in_day + difference.seconds, 60)
(0, 8)      # 0 minutes, 8 seconds

从第一次减去之后的时间将difference = later_time - first_time创建一个仅保留时差的datetime对象。在上面的示例中,它是0分钟,8秒和562000微秒。


2
参考:docs.python.org/library/datetime.html#datetime-objects。阅读“支持的操作”。
S.Lott

@SilentGhost,如何用小时,分钟,秒来计算
Mulagala

1
@markcial:delorean错误表示datetimepytz方法,例如,入门代码示例可以写为d = datetime.now(timezone(EST))(一行可读而不是五行)。
jfs 2015年

1
注意:在代表本地时间的初始日期时间对象上执行日期/时间算术时应小心。例如在DST转换周围,它可能会失败。请参阅我的答案中包含更多详细信息的链接
jfs 2015年

如何使用c查找天,分钟,秒的差异?
Zeeshan Mahmood

151

timedelta实例方法是Python 2.7的新功能.total_seconds()。在Python文档中,这等效于(td.microseconds + (td.seconds + td.days * 24 * 3600) * 10**6) / 10**6

参考:http : //docs.python.org/2/library/datetime.html#datetime.timedelta.total_seconds

>>> import datetime
>>> time1 = datetime.datetime.now()
>>> time2 = datetime.datetime.now() # waited a few minutes before pressing enter
>>> elapsedTime = time2 - time1
>>> elapsedTime
datetime.timedelta(0, 125, 749430)
>>> divmod(elapsedTime.total_seconds(), 60)
(2.0, 5.749430000000004) # divmod returns quotient and remainder
# 2 minutes, 5.74943 seconds


106

使用日期时间示例

>>> from datetime import datetime
>>> then = datetime(2012, 3, 5, 23, 8, 15)        # Random date in the past
>>> now  = datetime.now()                         # Now
>>> duration = now - then                         # For build-in functions
>>> duration_in_s = duration.total_seconds()      # Total number of seconds between dates

持续时间(年)

>>> years = divmod(duration_in_s, 31536000)[0]    # Seconds in a year=365*24*60*60 = 31536000.

持续天数

>>> days  = duration.days                         # Build-in datetime function
>>> days  = divmod(duration_in_s, 86400)[0]       # Seconds in a day = 86400

持续时间(小时)

>>> hours = divmod(duration_in_s, 3600)[0]        # Seconds in an hour = 3600

持续时间(分钟)

>>> minutes = divmod(duration_in_s, 60)[0]        # Seconds in a minute = 60

持续时间(秒)

>>> seconds = duration.seconds                    # Build-in datetime function
>>> seconds = duration_in_s

持续时间(以微秒为单位)

>>> microseconds = duration.microseconds          # Build-in datetime function  

两个日期之间的总持续时间

>>> days    = divmod(duration_in_s, 86400)        # Get days (without [0]!)
>>> hours   = divmod(days[1], 3600)               # Use remainder of days to calc hours
>>> minutes = divmod(hours[1], 60)                # Use remainder of hours to calc minutes
>>> seconds = divmod(minutes[1], 1)               # Use remainder of minutes to calc seconds
>>> print("Time between dates: %d days, %d hours, %d minutes and %d seconds" % (days[0], hours[0], minutes[0], seconds[0]))

或者简单地:

>>> print(now - then)

编辑2019 由于此答案已受到关注,因此我将添加一个函数,该函数可能会简化某些应用程序的用法

from datetime import datetime

def getDuration(then, now = datetime.now(), interval = "default"):

    # Returns a duration as specified by variable interval
    # Functions, except totalDuration, returns [quotient, remainder]

    duration = now - then # For build-in functions
    duration_in_s = duration.total_seconds() 

    def years():
      return divmod(duration_in_s, 31536000) # Seconds in a year=31536000.

    def days(seconds = None):
      return divmod(seconds if seconds != None else duration_in_s, 86400) # Seconds in a day = 86400

    def hours(seconds = None):
      return divmod(seconds if seconds != None else duration_in_s, 3600) # Seconds in an hour = 3600

    def minutes(seconds = None):
      return divmod(seconds if seconds != None else duration_in_s, 60) # Seconds in a minute = 60

    def seconds(seconds = None):
      if seconds != None:
        return divmod(seconds, 1)   
      return duration_in_s

    def totalDuration():
        y = years()
        d = days(y[1]) # Use remainder to calculate next variable
        h = hours(d[1])
        m = minutes(h[1])
        s = seconds(m[1])

        return "Time between dates: {} years, {} days, {} hours, {} minutes and {} seconds".format(int(y[0]), int(d[0]), int(h[0]), int(m[0]), int(s[0]))

    return {
        'years': int(years()[0]),
        'days': int(days()[0]),
        'hours': int(hours()[0]),
        'minutes': int(minutes()[0]),
        'seconds': int(seconds()),
        'default': totalDuration()
    }[interval]

# Example usage
then = datetime(2012, 3, 5, 23, 8, 15)
now = datetime.now()

print(getDuration(then)) # E.g. Time between dates: 7 years, 208 days, 21 hours, 19 minutes and 15 seconds
print(getDuration(then, now, 'years'))      # Prints duration in years
print(getDuration(then, now, 'days'))       #                    days
print(getDuration(then, now, 'hours'))      #                    hours
print(getDuration(then, now, 'minutes'))    #                    minutes
print(getDuration(then, now, 'seconds'))    #                    seconds

7
我不知道为什么没有人感谢您。非常感谢您提供如此精确的答案。@Attaque
Amandeep Singh Sawhney

TypeError: 'float' object is not subscriptable当用于以下用途时出现错误:then = datetime(2017, 8, 11, 15, 58, tzinfo=pytz.UTC) now = datetime(2018, 8, 11, 15, 58, tzinfo=pytz.UTC) getDuration(then, now, 'years')
Piotr Wasilewicz

1
那是因为我无法计算一年中的秒数:) 365 * 24 * 60 * 60 = 31536000而不是31556926。我更新了答案和功能,现在应该可以使用了。
阿塔克

1
这应该是公认的答案。
saran3h 19/12/17

28

只需从另一个中减去一个即可。您会得到一个timedelta与众不同的对象。

>>> import datetime
>>> d1 = datetime.datetime.now()
>>> d2 = datetime.datetime.now() # after a 5-second or so pause
>>> d2 - d1
datetime.timedelta(0, 5, 203000)

你可以转换dd.daysdd.secondsdd.microseconds以分钟。


这些参数是什么?评论会很好
TheRealChx101 '19

22

如果ab是datetime对象,然后找到在Python 3它们之间的时间差:

from datetime import timedelta

time_difference = a - b
time_difference_in_minutes = time_difference / timedelta(minutes=1)

在早期的Python版本上:

time_difference_in_minutes = time_difference.total_seconds() / 60

如果ab是通过返回的天真的日期时间对象,datetime.now()那么结果可能是错的,如果该对象表示本地时间与UTC不同偏移例如,围绕DST转换或过去/将来的日期。更多详细信息:查找日期时间之间是否经过了24小时-Python

为了获得可靠的结果,请使用UTC时间或可识别时区的datetime对象。


17

使用divmod:

now = int(time.time()) # epoch seconds
then = now - 90000 # some time in the past

d = divmod(now-then,86400)  # days
h = divmod(d[1],3600)  # hours
m = divmod(h[1],60)  # minutes
s = m[1]  # seconds

print '%d days, %d hours, %d minutes, %d seconds' % (d[0],h[0],m[0],s)

1
这应该放在datetime模块中。我只是不明白为什么它只用几天,几秒钟和一
毫秒

这不能回答有关日期时间对象的问题。
elec3647 '10 -10-5

10

这是我如何获取两个datetime.datetime对象之间经过的小时数:

before = datetime.datetime.now()
after  = datetime.datetime.now()
hours  = math.floor(((after - before).seconds) / 3600)

9
这不太有效:timedelta.seconds仅给出显式存储的秒数-文档保证的总时间少于一天。您想要(after - before).total_seconds(),它给出了跨越整个增量的秒数。
lvc

1
(after - before).total_seconds() // 3600(Python 2.7)或(after - before) // timedelta(seconds=3600)(Python 3)
jfs

@lvc我的旧代码实际上是用这种方式编写的,我认为自己很聪明,正在“修复”它。感谢您的更正。
托尼

@JFSebastian谢谢,我忘记了//运算符。我确实更喜欢py3语法,但是使用的是2.7。
托尼

9

仅查找天数:timedelta具有“天数”属性。您可以简单地查询。

>>>from datetime import datetime, timedelta
>>>d1 = datetime(2015, 9, 12, 13, 9, 45)
>>>d2 = datetime(2015, 8, 29, 21, 10, 12)
>>>d3 = d1- d2
>>>print d3
13 days, 15:59:33
>>>print d3.days
13

5

只是认为考虑到timedelta的格式问题也很有用。strptime()根据格式解析表示时间的字符串。

from datetime import datetime

datetimeFormat = '%Y/%m/%d %H:%M:%S.%f'    
time1 = '2016/03/16 10:01:28.585'
time2 = '2016/03/16 09:56:28.067'  
time_dif = datetime.strptime(time1, datetimeFormat) - datetime.strptime(time2,datetimeFormat)
print(time_dif)

这将输出:0:05:00.518000


3

我用这样的东西:

from datetime import datetime

def check_time_difference(t1: datetime, t2: datetime):
    t1_date = datetime(
        t1.year,
        t1.month,
        t1.day,
        t1.hour,
        t1.minute,
        t1.second)

    t2_date = datetime(
        t2.year,
        t2.month,
        t2.day,
        t2.hour,
        t2.minute,
        t2.second)

    t_elapsed = t1_date - t2_date

    return t_elapsed

# usage 
f = "%Y-%m-%d %H:%M:%S+01:00"
t1 = datetime.strptime("2018-03-07 22:56:57+01:00", f)
t2 = datetime.strptime("2018-03-07 22:48:05+01:00", f)
elapsed_time = check_time_difference(t1, t2)

print(elapsed_time)
#return : 0:08:52

2
您获得了非常好的约会时间,为什么要复制它们呢?那就是您的代码的75%可以由return t1-t2
Patrick Artner

2

这是为了找出当前时间和9.30 am之间的时差

t=datetime.now()-datetime.now().replace(hour=9,minute=30)

1

这是我使用mktime的方法。

from datetime import datetime, timedelta
from time import mktime

yesterday = datetime.now() - timedelta(days=1)
today = datetime.now()

difference_in_seconds = abs(mktime(yesterday.timetuple()) - mktime(today.timetuple()))
difference_in_minutes = difference_in_seconds / 60

mktime()期望将本地时间作为输入。当地时间可能不明确,mktime()在这种情况下可能返回错误的答案。使用a - b替代(A,B - datetime对象)mktime()是不必要的,有时是错误的。在这种情况下不要使用它。
jfs 2014年

@AnneTheAgile,已修复,我的导入错误。在Python 2.7.12上进行了测试
Eduardo

1

以其他方式获取日期之间的差异;

import dateutil.parser
import datetime
last_sent_date = "" # date string
timeDifference = current_date - dateutil.parser.parse(last_sent_date)
time_difference_in_minutes = (int(timeDifference.days) * 24 * 60) + int((timeDifference.seconds) / 60)

因此,以分钟为单位获取输出。

谢谢


1

我使用时差进行连续集成测试,以检查和改进我的功能。如果有人需要,这是简单的代码

from datetime import datetime

class TimeLogger:
    time_cursor = None

    def pin_time(self):
        global time_cursor
        time_cursor = datetime.now()

    def log(self, text=None) -> float:
        global time_cursor

        if not time_cursor:
            time_cursor = datetime.now()

        now = datetime.now()
        t_delta = now - time_cursor

        seconds = t_delta.total_seconds()

        result = str(now) + ' tl -----------> %.5f' % seconds
        if text:
            result += "   " + text
        print(result)

        self.pin_time()

        return seconds


time_logger = TimeLogger()

使用:

from .tests_time_logger import time_logger
class Tests(TestCase):
    def test_workflow(self):
    time_logger.pin_time()

    ... my functions here ...

    time_logger.log()

    ... other function(s) ...

    time_logger.log(text='Tests finished')

我在日志输出中有类似的东西

2019-12-20 17:19:23.635297 tl -----------> 0.00007
2019-12-20 17:19:28.147656 tl -----------> 4.51234   Tests finished

0

基于@Attaque很好的答案,我提出了一个日期时间差计算器的简化版本:

seconds_mapping = {
    'y': 31536000,
    'm': 2628002.88, # this is approximate, 365 / 12; use with caution
    'w': 604800,
    'd': 86400,
    'h': 3600,
    'min': 60,
    's': 1,
    'mil': 0.001,
}

def get_duration(d1, d2, interval, with_reminder=False):
    if with_reminder:
        return divmod((d2 - d1).total_seconds(), seconds_mapping[interval])
    else:
        return (d2 - d1).total_seconds() / seconds_mapping[interval]

我已对其进行了更改,以避免声明重复功能,删除了漂亮的打印默认时间间隔,并增加了对毫秒,周和ISO个月的支持(请注意,月份仅是近似值,假设每个月都等于365/12)。

产生:

d1 = datetime(2011, 3, 1, 1, 1, 1, 1000)
d2 = datetime(2011, 4, 1, 1, 1, 1, 2500)

print(get_duration(d1, d2, 'y', True))      # => (0.0, 2678400.0015)
print(get_duration(d1, d2, 'm', True))      # => (1.0, 50397.12149999989)
print(get_duration(d1, d2, 'w', True))      # => (4.0, 259200.00149999978)
print(get_duration(d1, d2, 'd', True))      # => (31.0, 0.0014999997802078724)
print(get_duration(d1, d2, 'h', True))      # => (744.0, 0.0014999997802078724)
print(get_duration(d1, d2, 'min', True))    # => (44640.0, 0.0014999997802078724)
print(get_duration(d1, d2, 's', True))      # => (2678400.0, 0.0014999997802078724)
print(get_duration(d1, d2, 'mil', True))    # => (2678400001.0, 0.0004999997244524721)

print(get_duration(d1, d2, 'y', False))     # => 0.08493150689687975
print(get_duration(d1, d2, 'm', False))     # => 1.019176965856293
print(get_duration(d1, d2, 'w', False))     # => 4.428571431051587
print(get_duration(d1, d2, 'd', False))     # => 31.00000001736111
print(get_duration(d1, d2, 'h', False))     # => 744.0000004166666
print(get_duration(d1, d2, 'min', False))   # => 44640.000024999994
print(get_duration(d1, d2, 's', False))     # => 2678400.0015
print(get_duration(d1, d2, 'mil', False))   # => 2678400001.4999995
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