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Suppose I wanted to write a function similar to range

Recall that range has a one argument and 2/3 argument form:

class range(object)
 |  range(stop) -> range object
 |  range(start, stop[, step]) -> range object

If I wanted the method or function to have the same interface, is there a more elegant way than this:

def range_like(*args):
    start,stop,step=[None]*3
    if len(args)==1:
        stop=args[0]
    elif len(args)==2:
        start,stop=args
    elif len(args)==3:
        start,stop,step=args
    else:
        raise ValueError       
    print(start,stop,step)
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up vote 5 down vote accepted

Not much to suggest here, but one alternative could be using optional arguments and swapping the first two if only one were provided:

def range_like(start, stop=None, step=1):
    if stop is None:
        start, stop = 0, start
    ...
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3  
I did not give the downvote, but both of your answers do have an issue if None is a valid argument. Consider slice() which accepts similar arguments, slice(1) needs to be equivalent to slice(None, 1, None), but slice(1, None) needs to equivalent to slice(1, None, None). – Andrew Clark Jun 17 '13 at 19:52
1  
in that case you can use sentinel objects. but using None as a missing argument marker is standard python practice. – andrew cooke Jun 17 '13 at 19:53

i would write this as:

def range_like(start=None, stop=None, step=1):
    if stop is None:
        start, stop = stop, start
    ...

if that does what you want?

[update] you can also add:

    if stop is start is None:
        raise ValueError()

also, to use sentinel objects instead of None (this isn't normal in Python, but you see it sometimes):

NOTSET = object()
def range_like(start=NOTSET, stop=NOTSET, step=1):
    if stop is NOTSET:
        start, stop = stop, start

which allows None as an argument.

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1  
why did this get two downvotes? other people have since posted almost identical answers. what are we all doing wrong? if you downvoted, please explain why. – andrew cooke Jun 17 '13 at 19:52
2  
It should be more explicit that the first argument is not optional. If you use def range_like(start, stop=None, step=1) instead, calling range_like() will result in a more useful error message. – FastTurtle Jun 17 '13 at 19:54

You can't make an optional argument appear before mandatory arguments.

You can devise workarounds like swapping arguments:

def range_like(s, t=None, u=None):
    if t is None: 
        s,t = t,s
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