提问人:defrex 提问时间:1/14/2009 最后编辑:cottontaildefrex 更新时间:2/23/2023 访问量:1152552
如何从日期中减去一天?
How to subtract a day from a date?
答:
1947赞
Steve B.
1/14/2009
#1
您可以使用 timedelta 对象:
from datetime import datetime, timedelta
d = datetime.today() - timedelta(days=days_to_subtract)
评论
35赞
jfs
8/21/2014
如果你不忽略时区,那么答案就更复杂了。
1赞
WJA
3/29/2017
另外,您如何将其与特定日期联系起来。看到我的问题:stackoverflow.com/questions/43092508/......
1赞
Nagev
2/17/2018
它也可以与其他单位一起使用,例如我曾使用过它。timedelta(minutes=12)
0赞
oldboy
7/20/2018
文档说,这将返回“表示两个日期、时间或日期时间实例之间差异的持续时间......”。您如何获得 5 天前或 5 天后的实际日期?
1赞
at54321
10/13/2021
@jfs 我认为这个答案在时区方面很好。如果减去一天,实际上可能会减去 23 或 25 小时,但时间部分将保持不变。这就是我所期望的正常行为。夏令时 (DST) 使 1 天并不总是 24 小时。
106赞
S.Lott
1/14/2009
#2
减去datetime.timedelta(days=1)
53赞
Sahil kalra
6/5/2014
#3
只是为了详细说明一种替代方法和它有帮助的用例:
- 从当前日期时间中减去 1 天:
from datetime import datetime, timedelta print datetime.now() + timedelta(days=-1) # Here, I am adding a negative timedelta
- 在这种情况下很有用,如果您想从当前日期时间中增加 5 天并减去 5 小时。即从现在起 5 天但少 5 小时的日期时间是多少?
from datetime import datetime, timedelta print datetime.now() + timedelta(days=5, hours=-5)
它同样可以与其他参数一起使用,例如秒、周等
95赞
jfs
8/21/2014
#4
如果您的 Python 日期时间对象是时区感知的,则应注意避免 DST 转换错误(或由于其他原因更改 UTC 偏移量):
from datetime import datetime, timedelta
from tzlocal import get_localzone # pip install tzlocal
DAY = timedelta(1)
local_tz = get_localzone() # get local timezone
now = datetime.now(local_tz) # get timezone-aware datetime object
day_ago = local_tz.normalize(now - DAY) # exactly 24 hours ago, time may differ
naive = now.replace(tzinfo=None) - DAY # same time
yesterday = local_tz.localize(naive, is_dst=None) # but elapsed hours may differ
一般情况下,如果本地时区的 UTC 偏移量在最后一天发生了变化,则可能会有所不同。day_agoyesterday
例如,夏令时/夏令时结束于 2014 年 11 月 2 日星期日上午 02:00:00(美国/Los_Angeles时区),因此,如果:
import pytz # pip install pytz
local_tz = pytz.timezone('America/Los_Angeles')
now = local_tz.localize(datetime(2014, 11, 2, 10), is_dst=None)
# 2014-11-02 10:00:00 PST-0800
然后和不同:day_agoyesterday
day_ago正好是 24 小时前(相对于 ),但在上午 11 点,而不是在上午 10 点,因为nownowyesterday是昨天上午 10 点,但它是 25 小时前(相对于 ),而不是 24 小时。now
Pendulum模块会自动处理它:
>>> import pendulum # $ pip install pendulum
>>> now = pendulum.create(2014, 11, 2, 10, tz='America/Los_Angeles')
>>> day_ago = now.subtract(hours=24) # exactly 24 hours ago
>>> yesterday = now.subtract(days=1) # yesterday at 10 am but it is 25 hours ago
>>> (now - day_ago).in_hours()
24
>>> (now - yesterday).in_hours()
25
>>> now
<Pendulum [2014-11-02T10:00:00-08:00]>
>>> day_ago
<Pendulum [2014-11-01T11:00:00-07:00]>
>>> yesterday
<Pendulum [2014-11-01T10:00:00-07:00]>
14赞
PlagTag
3/18/2015
#5
这也是另一个不错的函数,我喜欢在我想计算时使用,即上个月的第一天/最后一天或其他相对时间增量等。
dateutil 函数中的 relativedelta 函数(日期时间库的强大扩展)
import datetime as dt
from dateutil.relativedelta import relativedelta
#get first and last day of this and last month)
today = dt.date.today()
first_day_this_month = dt.date(day=1, month=today.month, year=today.year)
last_day_last_month = first_day_this_month - relativedelta(days=1)
print (first_day_this_month, last_day_last_month)
>2015-03-01 2015-02-28
8赞
gr4viton
4/6/2017
#6
Genial 箭头模块存在
import arrow
utc = arrow.utcnow()
utc_yesterday = utc.shift(days=-1)
print(utc, '\n', utc_yesterday)
输出:
2017-04-06T11:17:34.431397+00:00
2017-04-05T11:17:34.431397+00:00
-15赞
VISHAKHA AGARWAL
6/15/2021
#7
class myDate:
def __init__(self):
self.day = 0
self.month = 0
self.year = 0
## for checking valid days month and year
while (True):
d = int(input("Enter The day :- "))
if (d > 31):
print("Plz 1 To 30 value Enter ........")
else:
self.day = d
break
while (True):
m = int(input("Enter The Month :- "))
if (m > 13):
print("Plz 1 To 12 value Enter ........")
else:
self.month = m
break
while (True):
y = int(input("Enter The Year :- "))
if (y > 9999 and y < 0000):
print("Plz 0000 To 9999 value Enter ........")
else:
self.year = y
break
## method for aday ands cnttract days
def adayDays(self, n):
## aday days to date day
nd = self.day + n
print(nd)
## check days subtract from date
if nd == 0: ## check if days are 7 subtracted from 7 then,........
if(self.year % 4 == 0):
if(self.month == 3):
self.day = 29
self.month -= 1
self.year = self. year
else:
if(self.month == 3):
self.day = 28
self.month -= 1
self.year = self. year
if (self.month == 5) or (self.month == 7) or (self.month == 8) or (self.month == 10) or (self.month == 12):
self.day = 30
self.month -= 1
self.year = self. year
elif (self.month == 2) or (self.month == 4) or (self.month == 6) or (self.month == 9) or (self.month == 11):
self.day = 31
self.month -= 1
self.year = self. year
elif(self.month == 1):
self.month = 12
self.year -= 1
## nd == 0 if condition over
## after subtract days to day io goes into negative then
elif nd < 0 :
n = abs(n)## return positive if no is negative
for i in range (n,0,-1): ##
if self.day == 0:
if self.month == 1:
self.day = 30
self.month = 12
self.year -= 1
else:
self.month -= 1
if(self.month == 1) or (self.month == 3)or (self.month == 5) or (self.month == 7) or (self.month == 8) or (self.month == 10) or (self.month ==12):
self.day = 30
elif(self.month == 4)or (self.month == 6) or (self.month == 9) or (self.month == 11):
self.day = 29
elif(self.month == 2):
if(self.year % 4 == 0):
self.day == 28
else:
self.day == 27
else:
self.day -= 1
## enf of elif negative days
## adaying days to DATE
else:
cnt = 0
while (True):
if self.month == 2: # check leap year
if(self.year % 4 == 0):
if(nd > 29):
cnt = nd - 29
nd = cnt
self.month += 1
else:
self.day = nd
break
## if not leap year then
else:
if(nd > 28):
cnt = nd - 28
nd = cnt
self.month += 1
else:
self.day = nd
break
## checking month other than february month
elif(self.month == 1) or (self.month == 3) or (self.month == 5) or (self.month == 7) or (self.month == 8) or (self.month == 10) or (self.month == 12):
if(nd > 31):
cnt = nd - 31
nd = cnt
if(self.month == 12):
self.month = 1
self.year += 1
else:
self.month += 1
else:
self.day = nd
break
elif(self.month == 4) or (self.month == 6) or (self.month == 9) or (self.month == 11):
if(nd > 30):
cnt = nd - 30
nd = cnt
self.month += 1
else:
self.day = nd
break
## end of month condition
## end of while loop
## end of else condition for adaying days
def formatDate(self,frmt):
if(frmt == 1):
ff=str(self.day)+"-"+str(self.month)+"-"+str(self.year)
elif(frmt == 2):
ff=str(self.month)+"-"+str(self.day)+"-"+str(self.year)
elif(frmt == 3):
ff =str(self.year),"-",str(self.month),"-",str(self.day)
elif(frmt == 0):
print("Thanky You.....................")
else:
print("Enter Correct Choice.......")
print(ff)
dt = myDate()
nday = int(input("Enter No. For Aday or SUBTRACT Days :: "))
dt.adayDays(nday)
print("1 : day-month-year")
print("2 : month-day-year")
print("3 : year-month-day")
print("0 : EXIT")
frmt = int (input("Enter Your Choice :: "))
dt.formatDate(frmt)
enter code here
评论
2赞
Gabriel Avendaño
5/5/2022
最好尽可能使用标准库,因为它通常由很多人维护,错误少,执行速度更快
0赞
Ido Bleicher
9/8/2022
DateTime lib 在此处完成工作:)无需特殊逻辑
1赞
cottontail
2/23/2023
#8
你也可以使用熊猫(它非常灵活,你甚至可以通过 1 天 5 小时 9 秒的东西)。pd.Timedelta('1D')pd.Timedelta('1d 5h 9s')
关于 pandas 的一个方便之处在于它的 datetime 对象是建立在 上,因此任何涉及 Python 对象的操作都可以在 pandas datetime 对象上正常工作,反之亦然。datetime.datetimedatetime
import pandas as pd
import numpy as np
from datetime import datetime, date, timedelta
datetime.now() - pd.Timedelta('1d') # datetime.datetime(2023, 2, 21, 15, 35, 23, 603832)
pd.Timestamp('now') - timedelta(days=1) # Timestamp('2023-02-21 15:35:23.741866')
pd.Timestamp('now') - pd.Timedelta('1d') # Timestamp('2023-02-21 15:35:23.882746')
pd.Timestamp('now') - np.timedelta64(1, 'D') # Timestamp('2023-02-21 15:35:24.032356')
date(2022, 2, 22) - pd.Timedelta('10d') # datetime.date(2022, 2, 12)
pandas 的优点是可以执行矢量化操作(即使 dtype 是 object)。您可以使用 // 中的任何一个。pd.Timedeltadatetime.timedeltanp.timedelta64
pd.Series([datetime(2023,2,22), datetime(2023,2,21), datetime(2023,2,20)]) - pd.Timedelta('1d')
pd.Series([date(2023,2,22), date(2023,2,21), date(2023,2,20)]) - timedelta(days=1)
pd.Series([date(2023,2,22), date(2023,2,21), date(2023,2,20)]) - np.timedelta64(1, 'D')
上一个:用 C 语言计算相对时间#
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