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This question already has an answer here:

The range function in python3 takes three arguments two of them are optional. So the argumentlist looks like:

[start], stop, [step]

so this means (correct me if i'm wrong) there is a optional argument before an not-optional argument. But if i try to define a function like this i get this:

>>> def foo(a = 1, b, c = 2):
    print(a, b, c)
SyntaxError: non-default argument follows default argument

is this something i can't do as a 'normal' python user, or can i somehow define such a function? Of course i could do something like

def foo(a, b = None, c = 2):
    if not b:
        b = a
        a = 1

but for example the help function would then show strange informations. So i really want to know if it's possible do define a function like above (the first one).

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marked as duplicate by Martijn Pieters, jamylak, mata, legoscia, IronMan84 Apr 8 '13 at 13:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
See stackoverflow.com/a/4137838/568777 – mattjbray Apr 8 '13 at 9:06
    
oh damn it's relly a duplicate. Sorry. – Kritzefitz Apr 8 '13 at 10:28
up vote 6 down vote accepted

range() takes 1 positional argument and two optional arguments, and interprets these arguments differently depending on how many arguments you passed in.

If only one argument was passed in, it is assumed to be the stop argument, otherwise that first argument is interpreted as the start instead.

In reality, range(), coded in C, takes a variable number of arguments. You could emulate that like this:

def foo(*params):
    if 3 < len(params) < 1:
        raise ValueError('foo takes 1 - 3 arguments')
    elif len(params) == 1
        b = params[0]
    elif:
        a, b = params[:2]
        c = params[2] if len(params) > 2 else 1

but you could also just swap arguments:

def range(start, stop=None, step=1):
    if stop is None:
        start, stop = 0, start
share|improve this answer
    
Your final example doesn't work. TypeError: range() does not take keyword arguments – Rob Smallshire Sep 30 '13 at 9:00
    
@RobSmallshire: The final example is a python replacement for range(). I used keyword arguments to emulate the optional arguments that range() takes; the alternative would be to use a *args catch-all argument and parse up to 2 values from that, but that gets a lot more verbose. That's the first sample in my answer. – Martijn Pieters Sep 30 '13 at 9:04
    
@RobSmallshire: The OP tried to emulate the range() behaviour with keyword arguments, the second part is to illustrate how you could implement the behaviour (accept between 1 and 3 positional arguments) by using keyword arguments, in python code. – Martijn Pieters Sep 30 '13 at 9:06

range does not take keyword arguments:

range(start=0,stop=10)
TypeError: range() takes no keyword arguments

it takes 1, 2 or 3 positional arguments, they are evaluated according to their number:

range(stop)              # 1 argument
range(start, stop)       # 2 arguments
range(start, stop, step) # 3 arguments

i.e. it is not possible to create a range with defined stop and step and default start.

share|improve this answer
def foo(first, second=None, third=1):
     if second is None:
         start, stop, step = 0, first, 1
     else:
         start, stop, step = first, second, third
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