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Suppose I have a function

def oldfunction(arg1,arg2,arg3):
    print(arg1,arg2,arg3)

I want to create a new function in which I have set the first argument to 10. The new function behaviour would be:

>>> new_function(20,"30")
10 20 '30'

One way to do this would be to use a lambda function:

>>> newfunction = lambda arg2,arg3: function(10,arg2,arg3)
>>> newfunction("ten",[10])
(10, 'ten', [10])

But, suppose I didn't know in advance how many arguments "oldfunction" takes. I still want to create a new function that is the same as "oldfunction", but with the first argument set, and all subsequent arguments left open.

Is there a way to do this?

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3 Answers 3

up vote 3 down vote accepted

The following example allows you to bind a 10 to the first argument position in oldfunction and then supply the remaining two arguments in *args. So, try this:

def newfunction(*args):
    return oldfunction(10, *args)
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Try functools.partial:

from functools import partial

new_function = partial( oldfunction, 10 )
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This can be a functional solution, and your code would look something like this for your exact case:

from functools import partial

def newfunction(*args):
    return oldfunction(10, *args)

newfunction(20, 30)
(10, 20, 30)

10 is bound as the first argument to oldfunction, followed by *args.

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