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def lite(a,b,c):

def big(func): # func = callable()


how to do this?
in what way to pass function with parameters to another function?

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4 Answers 4

up vote 17 down vote accepted

Why not do:

big(lite, (1, 2, 3))


Then you can do:

def big(func, args):
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you can even do big(lite, 1, 2, 3) and def big(func, *args): func(*args) – Anurag Uniyal Feb 27 '10 at 14:35

Similar problem is usually solved in two ways:

  1. With lambda… but then the passed function will expect one argument, so big() needs to be changed
  2. With named functions calling the original functions with arguments. Please note, that such function can be declared inside other function and the arguments can be variables.

See the example:


def lite(a,b,c):
    return "%r,%r,%r" % (a,b,c)

def big(func): # func = callable()
    print func()

def big2(func): # func = callable with one argument
    print func("anything")

def main():
    param1 = 1
    param2 = 2
    param3 = 3

    big2(lambda x: lite(param1, param2, param3))

    def lite_with_params():
        return lite(param1,param2,param3)


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import functools

big(functools.partial(lite, 1,2,3))
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Not this way, you're passing to big the return value of lite() function.

You should do something like:

def lite(a, b, c):
    return a + b + c

def big(func, arg):
    print func(arg[0], arg[1], arg[2])

big(lite, (1, 2, 3))
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This is what tuple unpacking is for - see my answer. – Skilldrick Feb 27 '10 at 13:18

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