I got this function. What I need is to make some changes in my model depending on the day. As my if statements shown below, if the "ddate" is today or tomorrow make some changes in my "pull_ins" column and set it up as "Ready to ship" but if is the day after tomorrow and the next day, set "Not yet". This is working but my problem is that I need to jump weekends and keep the 4 days logic, any ideas?
As an example if today is Thrusday to get the ddate from today, tomorrow(friday) -----jump weekend --- monday, tuesday.
This is what I got:
def Ship_status():
week = {0, 1, 2, 3, 4}
deltaday = timedelta(days=1)
today = datetime.now().date()
day = today
day1 = day + deltaday
day2 = day1 + deltaday
day3 = day2 + deltaday
for i in Report.objects.all():
if i.ddate.weekday() in week:
if i.ddate == day:
i.pull_ins = "Ready to ship"
i.save()
if i.date == day1:
i.pull_ins = "Ready to ship"
i.save()
if i.date == day2:
i.pull_ins = "Not yet"
i.save()
if i.date == day3:
i.pull_ins = "not yet"
i.save()
Thanks for your time.
dateutil.rrule is library you could leverage. To get the next weekday:
from dateutil import rrule
next_weekday = rrule.rrule(rrule.DAILY, count=3, byweekday=(0, 1, 2, 3, 4), dtstart=dt))
So, in your query, you could do something like this:
def compute_shipping(dt=datetime.datetime.date(), count=2):
next_weekdays = rrule.rrule(rrule.DAILY, count=count, byweekday=(0, 1, 2, 3, 4), dtstart=dt))
return list(next_weekdays)
#Ready to ship
Report.objects.filter(ddate__in=compute_shipping()).update(pull_ins="Ready to ship")
#For Not yet
#Query would be similar - just set the appropriate start date
Related
I have this code
today = datetime.now().date()
# prints: 2022/1/14
rd = REL.relativedelta(days=1, weekday=REL.SU)
nextSunday = today + rd
#prints : 2022/1/16
How do i add 10 hours to the date so i can get a variable nextSunday_10am that i can substract to the current time
difference = nextSunday_10am - today
and schedule what I need to do
You can do the same thing as suggested by #Dani3le_ more directly with the following:
def getSundayTime(tme: datetime.date) -> datetime:
nxt_sndy = tme + timedelta(days= 6 - tme.weekday())
return datetime.combine(nxt_sndy, datetime.strptime('10:00', '%H:%M').time())
This will compute calculate the next Sunday and set time to 10:00
You can add hours to a DateTime by using datetime.timedelta().
nextSunday += datetime.timedelta(hours=10)
For example:
import datetime
today = datetime.datetime.today()
print("Today is "+str(today))
while today.weekday()+1 != 6: #0 = "Monday", 1 = "Tuesday"...
today += datetime.timedelta(1)
nextSunday = today + datetime.timedelta(hours=10)
print("Next sunday +10hrs will be "+str(nextSunday))
Language Python
I am wondering if anyone can help me print out some dates.
i cam trying to create a loop in which i pass in a date say 01/1/2017 and the loop will then output the first and last day in every month between then and the present day.
Example
01/01/2017
31/01/2017
01/02/2017
28/02/2017
etc
Any help will be appreciated
Hope this will help,
Code:
from datetime import date
from dateutil.relativedelta import relativedelta
from calendar import monthrange
d1 = date(2018, 2, 26)
d2 = date.today()
def print_month_day_range(date):
first_day = date.replace(day = 1)
last_day = date.replace(day = monthrange(date.year, date.month)[1])
print (first_day.strftime("%d/%m/%Y"))
print (last_day.strftime("%d/%m/%Y"))
print_month_day_range(d1)
while (d1 < d2):
d1 = d1 + relativedelta(months=1)
print_month_day_range(d1)
Output:
01/02/2018
28/02/2018
01/03/2018
31/03/2018
...
01/07/2018
31/07/2018
you can use calendar module. Below is the code:
import datetime
from calendar import monthrange
strt_date = '01/1/2017'
iter_year = datetime.datetime.strptime(strt_date, '%m/%d/%Y').year
iter_month = datetime.datetime.strptime(strt_date, '%m/%d/%Y').month
cur_year = datetime.datetime.today().year
cur_month = datetime.datetime.today().month
while cur_year > iter_year or (cur_year == iter_year and iter_month <= cur_month):
number_of_days_in_month = monthrange(iter_year, iter_month)[1]
print '/'.join([str(iter_month) , '01', str(iter_year)])
print '/'.join([str(iter_month), str(number_of_days_in_month), str(iter_year)])
if iter_month == 12:
iter_year += 1
iter_month = 1
else:
iter_month += 1
this could work, as long as the first date you give is always the first of the month
from datetime import datetime
from datetime import timedelta
date_string = '01/01/2017'
date = datetime.strptime(date_string, '%d/%m/%Y').date()
today = datetime.now().date()
months = range(1,13)
years = range(date.year, today.year + 1)
for y in years:
for m in months:
new_date = date.replace(month=m, year=y)
last_day = new_date - timedelta(days=1)
if (date < new_date) & (new_date <= today):
print last_day.strftime('%d/%m/%Y')
print new_date.strftime('%d/%m/%Y')
elif (date <= new_date) & (new_date <= today):
print new_date.strftime('%d/%m/%Y')
This code would print the first and last days of all months in a year.
Maybe add some logic to iterate through the years
import datetime
def first_day_of_month(any_day):
first_month = any_day.replace(day=1)
return first_month
def last_day_of_month(any_day):
next_month = any_day.replace(day=28) + datetime.timedelta(days=4)
return next_month - datetime.timedelta(days=next_month.day)
for month in range(1, 13):
print first_day_of_month(datetime.date(2017, month, 1))
print last_day_of_month(datetime.date(2017, month, 1))
I'm calling a function to get the calculation for driver revenue but, I keep getting this error:
"line 396, in driver_get_revenue
monthly[month.strftime("%m")] = orders.count() * settings.DRIVER_DELIVERY_PRICE
AttributeError: 'int' object has no attribute 'strftime'"
The function is this:
def driver_get_revenue(request):
driver = JWTAuthentication().authenticate(request)[0].driver
#Returns the difference between date and time.
from datetime import timedelta
revenue = {}
monthly = {}
yearly = {}
today = timezone.now()
month = today.month
year = today.year
#Created a range to calculate the current weekday.
current_weekdays = [today + timedelta(days = i) for i in range(0 - today.weekday(), 7 - today.weekday())]
for day in current_weekdays:
orders = Order.objects.filter(
driver = driver,
status = Order.DELIVERED,
created_at__year = day.year,
created_at__month = day.month,
created_at__day = day.day
)
revenue[day.strftime("%A")] = orders.count() * settings.DRIVER_DELIVERY_PRICE
for day in range(0, 30):
orders = Order.objects.filter(
driver = driver,
status = Order.DELIVERED,
created_at__month = month,
created_at__day = day
)
(Line 396) monthly[month.strftime("%m")] = orders.count() * settings.DRIVER_DELIVERY_PRICE
for month in range(0, 12):
orders = Order.objects.filter(
driver = driver,
status = Order.DELIVERED,
created_at__year = year,
created_at__month = month
)
yearly[year.strftime("%y")] = orders.count() * settings.DRIVER_DELIVERY_PRICE
return JsonResponse({"revenue": revenue,
"month": monthly,
"yearly": yearly})
I'm not exactly sure where I went wrong. I marked line 396 so that you see where the error is. Any help will be greatly appreciated.
Thanks.
When you do this: month = today.month, month becomes an integer. The strftime function works with datetime objects, not with integers.
Therefore, month.strftime("%m") doesn't work.
Try day.strftime("%m") instead, or perhaps just month, depending on your requirements.
If instead you're looking for the month's name, you could do it like this:
today = timezone.now()
month = today.month
month_name = today.strftime("%B") # e.g. December
...
...and use the month_name variable in your code.
I want to count summer days between two dates. Summer is May first to August last.
This will count all days:
import datetime
startdate=datetime.datetime(2015,1,1)
enddate=datetime.datetime(2016,6,1)
delta=enddate-startdate
print delta.days
>>517
But how can only count the passed summer days?
You could define a generator to iterate over every date between startdate and enddate, define a function to check if a date represents a summer day and use sum to count the summer days:
import datetime
startdate = datetime.datetime(2015,1,1)
enddate = datetime.datetime(2016,6,1)
all_dates = (startdate + datetime.timedelta(days=x) for x in range(0, (enddate-startdate).days))
def is_summer_day(date):
return 5 <= date.month <= 8
print(sum(1 for date in all_dates if is_summer_day(date)))
# 154
Thanks to the generator, you don't need to create a huge list in memory with every day between startdate and enddate.
This iteration still considers every single day, even if it's not needed. For very large gaps, you could use the fact that every complete year has 123 summer days according to your definition.
You can create a few functions to count how many summer days you have between two days:
from datetime import date
def get_summer_start(year):
return date(year, 5, 1)
def get_summer_end(year):
return date(year, 8, 31)
def get_start_date(date, year):
return max(date, get_summer_start(year))
def get_end_date(date, year):
return min(date, get_summer_end(year))
def count_summer_days(date1, date2):
date1_year = date1.year
date2_year = date2.year
if date1_year == date2_year:
s = get_start_date(date1, date1_year)
e = get_end_date(date2, date1_year)
return (e - s).days
else:
s1 = max(date1, get_summer_start(date1_year))
e1 = get_summer_end(date1_year)
first_year = max(0,(e1 -s1).days)
s1 = get_summer_start(date2_year)
e1 = min(date2, get_summer_end(date2_year))
last_year = max(0,(e2 -s2).days)
other_years = date2_year - date1_year - 1
summer_days_per_year = (get_summer_end(date1_year) - get_summer_start(date1_year)).days
return first_year + last_year + (other_years * summer_days_per_year)
date1 = date(2015,1,1)
date2 = date(2016,6,1)
print count_summer_days(date1, date2)
Here is a better solution for large periods:
first_summer_day = (5,1)
last_summer_day = (8,31)
from datetime import date
startdate = date(2015,1,1)
enddate = date(2016,6,1)
# make sure that startdate > endate
if startdate > enddate:
startdate, endate = endate, startdate
def iter_yearly_summer_days(startdate, enddate):
for year in range(startdate.year, enddate.year+1):
start_period = startdate if year == startdate.year else date(year, 1, 1)
end_period = enddate if year == enddate.year else date(year, 12, 31)
year_first_summer_day = date(year, *first_summer_day)
year_last_summer_day = date(year, *last_summer_day)
summer_days_that_year = (min(year_last_summer_day, end_period) - max(year_first_summer_day, start_period)).days
print('year {} had {} days of summer'.format(year, summer_days_that_year))
yield summer_days_that_year
print(sum(iter_yearly_summer_days(startdate, enddate)))
I am using Python 2.7.
I want to get the next 25th day of the month from now on. Today is February 17th, so I should get February 25th. If we were on February 26th, I should get March 25th.
I was not able to find anything about getting the next specific day of the month, but I am pretty sure that Python has something to make it easy.
Does anyone know how?
You could use python-dateutil for that and play with the rrule:
import datetime
from dateutil.rrule import *
now = datetime.datetime.today().date()
days = rrule(MONTHLY, dtstart=now, bymonthday=25)
print (days[0]) # datetime.datetime(2016, 2, 25, 0, 0)
print (days[1]) # datetime.datetime(2016, 3, 25, 0, 0)
import datetime
def get_next_date_with_day(day_of_the_month):
today_date = datetime.datetime.today()
today = today_date.day
if today == day_of_the_month:
return today_date
if today < day_of_the_month:
return datetime.date(today_date.year, today_date.month, day_of_the_month)
if today > day_of_the_month:
if today_date.month == 12:
return datetime.date(today_date.year+1, 1, day_of_the_month)
return datetime.date(today_date.year, today_date.month+1, day_of_the_month)
print get_next_date_with_day(25)
>>2016-02-25
def get_25_th_day(curr_date):
if curr_date.day <= 25:
return datetime.date(curr_date.year, curr_date.month, 25)
else:
new_month = curr_date.month + 1
new_year = curr_date.year
if curr_date.month == 12:
new_month = 1
new_year = curr_date.year + 1
return datetime.date(new_year, new_month, 25)
print get_25_th_day(datetime.date.today())
>> 2016-02-25
print get_25_th_day(datetime.date(2016, 2, 25))
>> 2016-02-25
print get_25_th_day(datetime.date(2016, 2, 26))
>> 2016-03-25
print get_25_th_day(datetime.date(2016, 12, 26))
>> 2017-01-25