2

I would like to do something like the following:

def add(a, b):
    #some code

def subtract(a, b):
    #some code

operations = [add, subtract]
operations[0]( 5,3)
operations[1](5,3)

In python, is it possible to assign something like a function pointer?

  • Try actually executing that code in the interactive environment and see what happens. – Robert Rossney Nov 21 '08 at 1:27
  • I'm tempted to delete the silly [function-pointer] and [anonymous-methods] tags because they don't makes sense in Python. But then, this kind of question shows that Python lacks those complexities. – S.Lott Nov 21 '08 at 2:22
  • 2
    you're in luck, my friend, but they're neither anonymous nor unbound – Jeremy Cantrell Nov 21 '08 at 2:42
  • I think by "unbound functions" he meant "functions, not methods". – tzot Nov 21 '08 at 8:26
  • No, "unbound functions" is a hair-splitting in C++ and "prothon" to explain functions that are not (yet) bound to a class, but could be. And Java folks have to give functions fancy-sounding names. – S.Lott Nov 21 '08 at 11:30
17

Did you try it? What you wrote works exactly as written. Functions are first-class objects in Python.

4

Python has nothing called pointers, but your code works as written. Function are first-class objects, assigned to names, and used as any other value.

You can use this to implement a Strategy pattern, for example:

def the_simple_way(a, b):
    # blah blah

def the_complicated_way(a, b):
    # blah blah

def foo(way):
    if way == 'complicated':
        doit = the_complicated_way
    else:
        doit = the_simple_way

    doit(a, b)

Or a lookup table:

def do_add(a, b):
    return a+b

def do_sub(a, b):
    return a-b

handlers = {
    'add': do_add,
    'sub': do_sub,
}

print handlers[op](a, b)

You can even grab a method bound to an object:

o = MyObject()
f = o.method
f(1, 2) # same as o.method(1, 2)
1

Just a quick note that most Python operators already have an equivalent function in the operator module.

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