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My task is to define a function weekdays(weekday) that returns a list of weekdays, starting with weekday. It should work like this:

>>> weekdays('Wednesday')
['Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday', 'Monday', 'Tuesday']

So far I've come up with this one:

def weekdays(weekday):
    days = ('Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday',
            'Sunday')
    result = ""
    for day in days:
        if day == weekday:
            result += day
    return result

But this prints the input day only:

>>> weekdays("Sunday")
'Sunday'

What am I doing wrong?

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9 Answers 9

up vote 3 down vote accepted
def weekdays(day):
    days = ['Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday']
    i=days.index(day) # get the index of the selected day
    d1=days[i:] #get the list from an including this index
    d1.extend(days[:i]) # append the list form the beginning to this index
    return d1

And if you want to test that it works:

def test_weekdays():
    days = ['Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday']
    for day in days:
        print weekdays(day)
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nice and simple solution) –  Gusto Nov 4 '10 at 10:25

The reason your code is only returning one day name is becauseweekdaywill never match more than one string in thedaystuple and therefore won't add any of the days of the week that follow it (nor wrap around to those before it).

Here's a simple solution that uses thedatetimemodule to creates a list of all the weekday names starting with 'Monday'. This list can then be used to create a new list of names by finding the index of designated day in that list and then splicing together two slices of it relative to that index to form the returned value.

import datetime

def weekdays(weekday):
    # January 1, 2001 was a Monday
    days = [datetime.date(2001, 1, i).strftime('%A') for i in range(1,8)]
    index = days.index(weekday)
    return days[index:] + days[:index]

print(weekdays('Wednesday'))
# ['Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday', 'Monday', 'Tuesday']

Besides not needing to hard-code days names in the function, another advantage to using thedatetimemodule is that code utilizing it will automatically work in other languages. This can be illustrated by changing the locale and then calling the function with a day name in the corresponding language.

For example, although France is not my default locale, but I can simulate it for testing as shown below. Note: According to this Capitalization of day names article, the names of the days of the week are not capitalized in French like they are in my default English locale, but that is taken into account automatically, too, which means theweekdayname passed to it must be in the language of the current locale and is case-sensitive. Of course you could modify the function to ignore the lettercase of the input argument, if desired.

import locale
locale.setlocale(locale.LC_ALL, 'french_france')  # force specific locale

print(weekdays('mercredi'))  # call function with French equivalent of 'Wednesday'
# ['mercredi', 'jeudi', 'vendredi', 'samedi', 'dimanche', 'lundi', 'mardi']
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thaks for this piece of code, how you get days: days = [datetime.date(2001, 1, i).strftime('%A') for i in range(1,8)] –  andi Oct 15 '13 at 23:44
1  
That line of code generates a list of the names of all the weekdays of a week by calling datetime.date.strftime('%A') seven times starting from a date known to be a Monday. Doing it that way means it's unnecessary to hard-code weekday names into the code and therefore it becomes locale independent because the function being called is. –  martineau Oct 16 '13 at 0:04

A far quicker approach would be to keep in mind, that the weekdays cycle. As such, we just need to get the first day we want to include the list, and add the remaining 6 elements to the end. Or in other words, we get the weekday list starting from the starting day, append another full week, and return only the first 7 elements (for the full week).

days = ('Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday')
def weekdays ( weekday ):
    index = days.index( weekday )
    return list( days[index:] + days )[:7]

>>> weekdays( 'Wednesday' )
['Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday', 'Monday', 'Tuesday']
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Should be i = days.index( weekday ) –  ncray Nov 3 '10 at 0:00
    
@ncray: Ugh, thanks, didn't notice that there was a naming difference between my two versions! –  poke Nov 3 '10 at 0:04

Hmm, you are currently only searching for the given weekday and set as result :) You can use the slice ability in python list to do this:

result = days[days.index(weekday):] + days[:days.index(weekdays)]
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Good idea -- basically just circularly rotate the days list so that the requested weekday is first in the result. Would be better to just find the index once, though, only that would take two lines. (Also, there's a typo, the weekdays at the end should just be weekday). –  martineau Nov 3 '10 at 0:10

Here's more what you want:

def weekdays(weekday):
    days = ['Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday']
    index = days.index(weekday)
    return (days + days)[index:index+7]
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exactly, what i thought of :) –  st0le Nov 8 '10 at 8:05

Every time you run the for loop, the day variable changes. So day is equal to your input only once. Using "Sunday" as input, it first checked if Monday = Sunday, then if Tuesday = Sunday, then if Wednesday = Sunday, until it finally found that Sunday = Sunday and returned Sunday.

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Another approach using the standard library:

days = ['Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday',
        'Sunday']
def weekdays(weekday):
  n = days.index(weekday)
  return list(itertools.islice(itertools.cycle(days), n, n + 7))

Itertools is a bit much in this case. Since you know at most one extra cycle is needed, you could do that manually:

days = ['Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday',
        'Sunday']
days += days
def weekdays(weekday):
  n = days.index(weekday)
  return days[n:n+7]

Both give the expected output:

>>> weekdays("Wednesday")
['Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday', 'Monday', 'Tuesday']
>>> weekdays("Sunday")
['Sunday', 'Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday']
>>> weekdays("Monday")
['Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday']
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Your result variable is a string and not a list object. Also, as others have mentioned, it only gets updated one time which is when it is equal to the passed weekday argument.

Yet another implementation but does not use indexes:

def weekdays(weekday):
    days = ['Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday']
    for day in days:
        days.insert(0, days.pop())    # add last day as new first day of list           
        if days[0] == weekday:        # if new first day same as weekday then all done
            break       
    return days
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You don't need to hardcode array of weekdays. It's already available in calendar module.

import calendar as cal

def weekdays(weekday):
    start = [d for d in cal.day_name].index(weekday)
    return [cal.day_name[(i+start) % 7] for i in range(7)]
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