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Suppose I have function with with 10 args:

def foo(arg1,arg2,arg3,arg4.....):

I need to call somtimes with arg1 , somtimes arg1, arg4, , somtimes arg 4 , arg7 , my program doesn't specify to type of call. Does python same way to help me?

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Use default argument parameters –  Grijesh Chauhan Aug 25 '13 at 9:31
    
def foo(arg1 = val, arg2 = val2, arg3 = val3,...): –  Grijesh Chauhan Aug 25 '13 at 9:32

3 Answers 3

up vote 1 down vote accepted

One way to do it is to make the parameters optional:

def foo(arg1=None,arg2=None,arg3=None...)

which can be called like this:

foo(arg1=1,arg3=2)

or like this:

a = {'arg1':1, 'arg3':2}
foo(**a)

If this list of parameters is spinning out of control you could simply use **kwargs to let your function take an optional number of (named) keyword arguments:

def foo(**kwargs):
    print kwargs

params = {'arg1':1, 'arg2':2}

foo(**params)         # Version 1
foo(arg1=3,arg2=4)    # Version 2

Output:

{'arg1': 1, 'arg2': 2}
{'arg1': 3, 'arg2': 4}

Note: You can use one asterisk (*) for an arbitrary number of arguments that will be wrapped up in a tuple.

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Give your args a default value like None:

def foo(arg1=None, arg2=None, ..., arg10=None):

Now, when calling the function pass a dictionary of keyword arguments:

kwargs = {
    'arg1': 'test',
    'arg7': 'test2',
}

foo(**kwargs)

It's equivalent to:

foo('test', None, None, None, ..., 'test2', None, None, None)

Or, to be more specific:

foo(arg1='test', arg7='test2')
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You could use keyword arguments

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