Difference between today,week start
Question:
How to get the difference between datetime.datetime.utcnow(), and the start of week?
I want start of week of
"date=17,month=12,year=2022,hour=x,minute=y,second=z" to be:
"date=12,month=12,year=2022,hour=0,minute=0,second=0", where x,y,z are variables,while they have to be converted to 0,0,0 only.
I tried the following code:
from datetime import datetime as dt,
timezone as tz,
timedelta as td
print(dt.isoformat(dt.utcnow()-td(days=dt.weekday(dt.now(tz.utc)))))
I used iso format to demonstrate what I mean,
for the ‘now’ value, I gave above,where date=17,
I get the following output:
"date=12,month=12,year=2022,hour=x,minute=y,second=z"(not what i expected)
Q.s Whats the best way to make these hours,minutes,seconds 0,taking into account all special cases:
- A range which includes feb 29, of a leap year
- A Example where week day is of previous month, of current day
- etc.
Answers:
Would this help?
from datetime import datetime as dt, timedelta as td
def getStartOfTheWeekDate(someDate: dt):
return someDate - td(days=someDate.weekday())
def getDifferenceBetweenMyDateAndStartOfTheWeek(someDate: dt):
return someDate - getStartOfTheWeekDate(someDate)
myStartOfTheWeek = getStartOfTheWeekDate(dt.now())
myStartOfTheWeekISO = dt.isoformat(myStartOfTheWeek)
myStartOfTheWeekStrippedISO = dt.isoformat(dt.combine(myStartOfTheWeek, dt.min.time()))
myDifference = getDifferenceBetweenMyDateAndStartOfTheWeek(dt.now())
print(myStartOfTheWeek)
print(myStartOfTheWeekISO)
print(myStartOfTheWeekStrippedISO)
print(myDifference)
Outputs:
How to get the difference between datetime.datetime.utcnow(), and the start of week?
I want start of week of
"date=17,month=12,year=2022,hour=x,minute=y,second=z" to be:
"date=12,month=12,year=2022,hour=0,minute=0,second=0", where x,y,z are variables,while they have to be converted to 0,0,0 only.
I tried the following code:
from datetime import datetime as dt,
timezone as tz,
timedelta as td
print(dt.isoformat(dt.utcnow()-td(days=dt.weekday(dt.now(tz.utc)))))
I used iso format to demonstrate what I mean,
for the ‘now’ value, I gave above,where date=17,
I get the following output:
"date=12,month=12,year=2022,hour=x,minute=y,second=z"(not what i expected)
Q.s Whats the best way to make these hours,minutes,seconds 0,taking into account all special cases:
- A range which includes feb 29, of a leap year
- A Example where week day is of previous month, of current day
- etc.
Would this help?
from datetime import datetime as dt, timedelta as td
def getStartOfTheWeekDate(someDate: dt):
return someDate - td(days=someDate.weekday())
def getDifferenceBetweenMyDateAndStartOfTheWeek(someDate: dt):
return someDate - getStartOfTheWeekDate(someDate)
myStartOfTheWeek = getStartOfTheWeekDate(dt.now())
myStartOfTheWeekISO = dt.isoformat(myStartOfTheWeek)
myStartOfTheWeekStrippedISO = dt.isoformat(dt.combine(myStartOfTheWeek, dt.min.time()))
myDifference = getDifferenceBetweenMyDateAndStartOfTheWeek(dt.now())
print(myStartOfTheWeek)
print(myStartOfTheWeekISO)
print(myStartOfTheWeekStrippedISO)
print(myDifference)
Outputs: