如何在給定日期的情況下獲得星期幾?
[英]How do I get the day of week given a date?
問題描述
我想了解以下內容:給定日期( datetime對象),對應的星期幾是星期幾?
例如,星期日是第一天,星期一:第二天..等等
然后如果輸入類似於今天的日期。
例子
>>> today = datetime.datetime(2017, 10, 20)
>>> today.get_weekday() # what I look for
輸出可能是6 (因為是星期五)
29 個解決方案
解決方案1
1293 已采納 2012-03-23 22:26:41
使用weekday() :
>>> import datetime
>>> datetime.datetime.today()
datetime.datetime(2012, 3, 23, 23, 24, 55, 173504)
>>> datetime.datetime.today().weekday()
4
從文檔中:
以整數形式返回星期幾,其中星期一為 0,星期日為 6。
解決方案2
375 2015-04-08 15:43:58
如果你想用英文寫日期:
from datetime import date
import calendar
my_date = date.today()
calendar.day_name[my_date.weekday()] #'Wednesday'
解決方案3
198 2018-07-25 10:07:41
如果你想用英文寫日期:
from datetime import datetime
datetime.today().strftime('%A')
'Wednesday'
閱讀更多: https ://docs.python.org/3/library/datetime.html#strftime-strptime-behavior
解決方案4
97 2012-03-23 22:24:44
解決方案5
49 2012-03-23 22:36:21
我為 CodeChef 問題解決了這個問題。
import datetime
dt = '21/03/2012'
day, month, year = (int(x) for x in dt.split('/'))
ans = datetime.date(year, month, day)
print (ans.strftime("%A"))
解決方案6
34 2013-06-15 05:18:28
1700/1/1 之后不導入日期的解決方案
def weekDay(year, month, day):
offset = [0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334]
week = ['Sunday',
'Monday',
'Tuesday',
'Wednesday',
'Thursday',
'Friday',
'Saturday']
afterFeb = 1
if month > 2: afterFeb = 0
aux = year - 1700 - afterFeb
# dayOfWeek for 1700/1/1 = 5, Friday
dayOfWeek = 5
# partial sum of days betweem current date and 1700/1/1
dayOfWeek += (aux + afterFeb) * 365
# leap year correction
dayOfWeek += aux / 4 - aux / 100 + (aux + 100) / 400
# sum monthly and day offsets
dayOfWeek += offset[month - 1] + (day - 1)
dayOfWeek %= 7
return dayOfWeek, week[dayOfWeek]
print weekDay(2013, 6, 15) == (6, 'Saturday')
print weekDay(1969, 7, 20) == (0, 'Sunday')
print weekDay(1945, 4, 30) == (1, 'Monday')
print weekDay(1900, 1, 1) == (1, 'Monday')
print weekDay(1789, 7, 14) == (2, 'Tuesday')
解決方案7
17 2019-04-12 09:48:50
如果您將日期作為字符串,則使用 pandas 的 Timestamp 可能會更容易
import pandas as pd
df = pd.Timestamp("2019-04-12")
print(df.dayofweek, df.weekday_name)
輸出:
4 Friday
解決方案8
15 2020-07-21 16:46:27
這是一個簡單的代碼片段來解決這個問題
import datetime
intDay = datetime.date(year=2000, month=12, day=1).weekday()
days = ["Monday", "Tuesday", "Wednesday", "Thursday", "Friday", "Saturday", "Sunday"]
print(days[intDay])
輸出應該是:
Friday
解決方案9
12 2015-10-29 14:01:24
如果日期是日期時間對象,這是一個解決方案。
import datetime
def dow(date):
days=["Monday","Tuesday","Wednesday","Thursday","Friday","Saturday","Sunday"]
dayNumber=date.weekday()
print days[dayNumber]
解決方案10
9 2017-03-12 00:01:28
datetime 庫有時會出現 strptime() 錯誤,所以我切換到 dateutil 庫。 這是一個如何使用它的示例:
from dateutil import parser
parser.parse('January 11, 2010').strftime("%a")
您從中獲得的輸出是'Mon' 。 如果您希望輸出為“星期一”,請使用以下命令:
parser.parse('January 11, 2010').strftime("%A")
這對我來說很快就奏效了。 我在使用 datetime 庫時遇到問題,因為我想存儲工作日名稱而不是工作日編號,並且使用 datetime 庫的格式導致了問題。 如果您對此沒有任何問題,那就太好了! 如果你是,你絕對可以這樣做,因為它也有更簡單的語法。 希望這可以幫助。
解決方案11
9 2019-02-20 05:49:53
假設您有時間戳:字符串變量,YYYY-MM-DD HH:MM:SS
第 1 步:使用打擊代碼將其轉換為 dateTime 函數...
df['timeStamp'] = pd.to_datetime(df['timeStamp'])
第 2 步:現在您可以提取所有必需的功能,如下所示,這將為每個文件小時、月份、星期幾、年份、日期創建新列
df['Hour'] = df['timeStamp'].apply(lambda time: time.hour)
df['Month'] = df['timeStamp'].apply(lambda time: time.month)
df['Day of Week'] = df['timeStamp'].apply(lambda time: time.dayofweek)
df['Year'] = df['timeStamp'].apply(lambda t: t.year)
df['Date'] = df['timeStamp'].apply(lambda t: t.day)
解決方案12
7 2014-04-22 22:38:14
假設給定日期、月份和年份,您可以執行以下操作:
import datetime
DayL = ['Mon','Tues','Wednes','Thurs','Fri','Satur','Sun']
date = DayL[datetime.date(year,month,day).weekday()] + 'day'
#Set day, month, year to your value
#Now, date is set as an actual day, not a number from 0 to 6.
print(date)
解決方案13
6 2015-05-11 17:59:41
如果您有理由避免使用 datetime 模塊,那么此功能將起作用。
注意:假設從儒略歷到公歷的變化發生在 1582 年。如果您感興趣的日歷不是這樣,那么如果年份 > 1582:相應地更改行。
def dow(year,month,day):
""" day of week, Sunday = 1, Saturday = 7
http://en.wikipedia.org/wiki/Zeller%27s_congruence """
m, q = month, day
if m == 1:
m = 13
year -= 1
elif m == 2:
m = 14
year -= 1
K = year % 100
J = year // 100
f = (q + int(13*(m + 1)/5.0) + K + int(K/4.0))
fg = f + int(J/4.0) - 2 * J
fj = f + 5 - J
if year > 1582:
h = fg % 7
else:
h = fj % 7
if h == 0:
h = 7
return h
解決方案14
6 2021-01-21 10:23:16
這不需要星期幾的評論。
我推薦這個代碼~!
import datetime
DAY_OF_WEEK = {
"MONDAY": 0,
"TUESDAY": 1,
"WEDNESDAY": 2,
"THURSDAY": 3,
"FRIDAY": 4,
"SATURDAY": 5,
"SUNDAY": 6
}
def string_to_date(dt, format='%Y%m%d'):
return datetime.datetime.strptime(dt, format)
def date_to_string(date, format='%Y%m%d'):
return datetime.datetime.strftime(date, format)
def day_of_week(dt):
return string_to_date(dt).weekday()
dt = '20210101'
if day_of_week(dt) == DAY_OF_WEEK['SUNDAY']:
None
解決方案15
5 2017-12-22 03:51:51
如果您不僅僅依賴datetime模塊,那么calendar可能是更好的選擇。 例如,這將為您提供日期代碼:
calendar.weekday(2017,12,22);
這會給你一天本身:
days = ["Monday","Tuesday","Wednesday","Thursday","Friday","Saturday","Sunday"]
days[calendar.weekday(2017,12,22)]
或者以 python 的風格,作為一個襯里:
["Monday","Tuesday","Wednesday","Thursday","Friday","Saturday","Sunday"][calendar.weekday(2017,12,22)]
解決方案16
4 2019-05-20 09:10:46
import datetime
int(datetime.datetime.today().strftime('%w'))+1
這應該給你你的真實日期 - 1 = 星期日,2 = 星期一,等等......
解決方案17
3 2014-05-09 01:47:36
要將星期日作為 1 到星期六作為 7,這是您問題的最簡單解決方案:
datetime.date.today().toordinal()%7 + 1
他們全部:
import datetime
today = datetime.date.today()
sunday = today - datetime.timedelta(today.weekday()+1)
for i in range(7):
tmp_date = sunday + datetime.timedelta(i)
print tmp_date.toordinal()%7 + 1, '==', tmp_date.strftime('%A')
輸出:
1 == Sunday
2 == Monday
3 == Tuesday
4 == Wednesday
5 == Thursday
6 == Friday
7 == Saturday
解決方案18
3 2017-07-10 02:05:28
以下是將小端字符串日期列表轉換為datetime的方法:
import datetime, time
ls = ['31/1/2007', '14/2/2017']
for d in ls:
dt = datetime.datetime.strptime(d, "%d/%m/%Y")
print(dt)
print(dt.strftime("%A"))
解決方案19
3 2019-01-23 07:39:50
我們可以借助 Pandas:
import pandas as pd
正如上面問題中提到的我們有:
datetime(2017, 10, 20)
如果在 jupyter notebook 中執行這一行,我們會得到如下輸出:
datetime.datetime(2017, 10, 20, 0, 0)
使用 weekday() 和 weekday_name:
如果您想要整數格式的工作日,請使用:
pd.to_datetime(datetime(2017, 10, 20)).weekday()
輸出將是:
4
如果您希望它作為星期天、星期一、星期五等日期的名稱,您可以使用:
pd.to_datetime(datetime(2017, 10, 20)).weekday_name
輸出將是:
'Friday'
如果在 Pandas 數據框中有一個日期列,那么:
現在假設您有一個具有如下日期列的 pandas 數據框: pdExampleDataFrame['Dates'].head(5)
0 2010-04-01
1 2010-04-02
2 2010-04-03
3 2010-04-04
4 2010-04-05
Name: Dates, dtype: datetime64[ns]
現在,如果我們想知道星期一、星期二、..etc 等工作日的名稱,我們可以使用.weekday_name如下:
pdExampleDataFrame.head(5)['Dates'].dt.weekday_name
輸出將是:
0 Thursday
1 Friday
2 Saturday
3 Sunday
4 Monday
Name: Dates, dtype: object
如果我們想要這個 Dates 列中的工作日整數,那么我們可以使用:
pdExampleDataFrame.head(5)['Dates'].apply(lambda x: x.weekday())
輸出將如下所示:
0 3
1 4
2 5
3 6
4 0
Name: Dates, dtype: int64
解決方案20
3 2019-02-03 18:04:40
import datetime
import calendar
day, month, year = map(int, input().split())
my_date = datetime.date(year, month, day)
print(calendar.day_name[my_date.weekday()])
輸出樣本
08 05 2015
Friday
解決方案21
3 2020-07-06 08:51:34
如果要生成具有日期范圍 ( Date ) 的列並生成一個轉到第一個列並分配工作日 ( Week Day ) 的列,請執行以下操作(我將使用范圍從2008-01-01至2020-02-01 ):
import pandas as pd
dr = pd.date_range(start='2008-01-01', end='2020-02-1')
df = pd.DataFrame()
df['Date'] = dr
df['Week Day'] = pd.to_datetime(dr).weekday
輸出如下:
Week Day從 0 到 6 不等,其中 0 對應於星期一,6 對應於星期日。
解決方案22
2 2020-08-11 00:36:18
一個簡單、直接且仍未提及的選項:
import datetime
...
givenDateObj = datetime.date(2017, 10, 20)
weekday = givenDateObj.isocalendar()[2] # 5
weeknumber = givenDateObj.isocalendar()[1] # 42
解決方案23
1 2018-02-21 18:34:11
使用 Canlendar 模塊
import calendar
a=calendar.weekday(year,month,day)
days=["MONDAY","TUESDAY","WEDNESDAY","THURSDAY","FRIDAY","SATURDAY","SUNDAY"]
print(days[a])
解決方案24
1 2018-03-04 08:18:09
這是我的python3實現。
months = {'jan' : 1, 'feb' : 4, 'mar' : 4, 'apr':0, 'may':2, 'jun':5, 'jul':6, 'aug':3, 'sep':6, 'oct':1, 'nov':4, 'dec':6}
dates = {'Sunday':1, 'Monday':2, 'Tuesday':3, 'Wednesday':4, 'Thursday':5, 'Friday':6, 'Saterday':0}
ranges = {'1800-1899':2, '1900-1999':0, '2000-2099':6, '2100-2199':4, '2200-2299':2}
def getValue(val, dic):
if(len(val)==4):
for k,v in dic.items():
x,y=int(k.split('-')[0]),int(k.split('-')[1])
val = int(val)
if(val>=x and val<=y):
return v
else:
return dic[val]
def getDate(val):
return (list(dates.keys())[list(dates.values()).index(val)])
def main(myDate):
dateArray = myDate.split('-')
# print(dateArray)
date,month,year = dateArray[2],dateArray[1],dateArray[0]
# print(date,month,year)
date = int(date)
month_v = getValue(month, months)
year_2 = int(year[2:])
div = year_2//4
year_v = getValue(year, ranges)
sumAll = date+month_v+year_2+div+year_v
val = (sumAll)%7
str_date = getDate(val)
print('{} is a {}.'.format(myDate, str_date))
if __name__ == "__main__":
testDate = '2018-mar-4'
main(testDate)
解決方案25
1 2019-12-27 14:36:34
import numpy as np
def date(df):
df['weekday'] = df['date'].dt.day_name()
conditions = [(df['weekday'] == 'Sunday'),
(df['weekday'] == 'Monday'),
(df['weekday'] == 'Tuesday'),
(df['weekday'] == 'Wednesday'),
(df['weekday'] == 'Thursday'),
(df['weekday'] == 'Friday'),
(df['weekday'] == 'Saturday')]
choices = [0, 1, 2, 3, 4, 5, 6]
df['week'] = np.select(conditions, choices)
return df
解決方案26
1 2022-04-08 02:54:36
如果你是中國用戶,你可以使用這個包: https ://github.com/LKI/chinese-calendar
import datetime
# 判斷 2018年4月30號 是不是節假日
from chinese_calendar import is_holiday, is_workday
april_last = datetime.date(2018, 4, 30)
assert is_workday(april_last) is False
assert is_holiday(april_last) is True
# 或者在判斷的同時,獲取節日名
import chinese_calendar as calendar # 也可以這樣 import
on_holiday, holiday_name = calendar.get_holiday_detail(april_last)
assert on_holiday is True
assert holiday_name == calendar.Holiday.labour_day.value
# 還能判斷法定節假日是不是調休
import chinese_calendar
assert chinese_calendar.is_in_lieu(datetime.date(2006, 2, 1)) is False
assert chinese_calendar.is_in_lieu(datetime.date(2006, 2, 2)) is True
解決方案27
1 2022-06-16 15:24:06
這是一個新鮮的方法。 周日是 0。
from datetime import datetime
today = datetime(year=2022, month=6, day=17)
print(today.toordinal()%7) # 5
yesterday = datetime(year=1, month=1, day=1)
print(today.toordinal()%7) # 1
解決方案28
0 2019-11-16 17:02:48
import datetime
import calendar
my_date = datetime.date(2017,10,20)
print calendar.day_name[my_date.weekday()]
解決方案29
0 2019-11-25 07:19:34
from datetime import datetime
def get_dayofweek(str_date, format_):
return datetime.strptime(str_date, format_).strftime("%A")
# get_dayofweek('17-January-2020', '%d-%B-%Y') # Friday
# get_dayofweek('17-02-2020', '%d-%m-%Y') # Monday
get_dayofweek('17-02-20', '%d-%m-%y') # Monday
解決方案30
0 2020-06-10 05:30:33
以下是以 DD-MM-YYYY 格式輸入日期的代碼,您可以通過更改 '%d-%m-%Y' 的順序以及更改分隔符來更改輸入格式。
import datetime
try:
date = input()
date_time_obj = datetime.datetime.strptime(date, '%d-%m-%Y')
print(date_time_obj.strftime('%A'))
except ValueError:
print("Invalid date.")
解決方案31
-1 2019-09-09 16:21:23
使用此代碼:
import pandas as pd
from datetime import datetime
print(pd.DatetimeIndex(df['give_date']).day)
解決方案32
-1 2019-11-22 14:02:02
import datetime data['weekday'] = [x.weekday() for x in data['date']]
其中0到6代表星期幾,星期一是0,而星期日是6。
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