6

How can I modify the local namespace of a function in python? I know that locals() returns the local namespace of the function when called inside it, but I want to do something like this (I have a reason why I want to do this where g is not accessible to f, but it's quicker to give a trivial, stupid example to illustrate the problem):

def g():
   pass

def f():
    g()

f.add_to_locals({'g':g})
  • What is your ultimate goal using this strange technique? Why you can't just define g() before f()? – Mikhail Churbanov Jul 17 '09 at 8:50
  • I've tried to mess with the namespace of a function at runtime previously (for testing/mocking) and failed... just FYI. – Mike Mazur Jul 17 '09 at 8:52
  • what the heck is add_to_locals ? It doesnt seem to exist for me. AttributeError: 'function' object has no attribute 'add_to_locals' – Charlie Parker Jun 22 '17 at 22:08
  • @CharlieParker it doesn't exist. That's what he's trying to implement / asking if there is a solution to do just that. – JeromeJ Jul 15 '17 at 21:35
  • did you manage to get this to work? – Charlie Parker Oct 16 '17 at 23:12
9

You've a couple of options. First, note that g in your example isn't actually a local to the function (ie. not assigned within it), it's a global (ie hasn't been assigned to a local variable). This means that it will be looked up in the module the function is defined in. This is fortunate, as there's no way of altering locals externally (short of patching the bytecode), as they get assigned when the function runs, not before.

One option is simply to inject your function into the function's module's namespace. This will work, but will affect every function in that module that accesses the variable, rather than just the one function.

To affect just the one function, you need to instead point that func_globals somewhere else. Unfortunately, this is a read-only property, but you can do what you want by recreating the function with the same body, but a different global namespace:

import new
f = new.function(f.func_code, {'g': my_g_function}, f.func_name, f.func_defaults, f.func_closure)

f will now be indentical, except that it will look for globals in the provided dict. Note that this rebinds the whole global namespace - if there are variables there that f does look up, make sure you provide them too. This is also fairly hacky though, and may not work on versions of python other than cpython.

  • 2
    I don't know if this is "good" code, but it was exactly what I wanted. I am converting one codebase to another and I wanted to be able to simulate a language construct from the other language. The other language can package code and add or remove that code from the namespace. It is useful in overriding different functions. So it manipulates the namespace in a stack like fashion. This is the closest thing that I can find that would allow me to do that efficiently. Thanks – Demolishun Dec 5 '12 at 18:33
  • what is this new library? – Charlie Parker Oct 16 '17 at 23:13
  • whats wrong with exec or locals().update(d)? – Charlie Parker Oct 16 '17 at 23:14
3

Since the function isn't invoked, it has no "local" stack frame, yet. The most simple solution is to use a global context:

handler = None
def f():
    handler()

def g(): pass

handler = g

Or you could set g on the function object:

f.g = g

But I'm not sure how you can get the function object from within the function itself. If it was a method, you would use self.

  • If you really wanted to use the function object inside the function, you could use inspect: import inspect import pprint def fn(): frame = inspect.currentframe() print frame.f_globals[frame.f_code.co_name].g fn.g = 'hello' fn() – Ivo Jul 17 '09 at 15:07
  • That's broken for class functions, nested functions/closures, and lambdas, and anything decorated--it'll return the decorator's wrapping function, not the actual function. – Glenn Maynard Jul 17 '09 at 18:31
  • what if f is a class/instance method? – Charlie Parker Jun 22 '17 at 22:23
3

Why don't you just add an argument to f() and pass a reference to g()?

def g():
    pass

def f(func):
    func()

f(g)
2

I think you could solve the problem tackling it from a completely different point.
Functions are object, with their dictionaries; therefore, you can add g to f, and use it:

def g():
   print "g"

def f():
    f.g()

f.g = g
  • Very elegant solution. +1 – Josip Jul 17 '09 at 12:54
  • This only works for global functions; there's no way to access f reliably from within f. – Glenn Maynard Jul 17 '09 at 18:41
  • Could you expand this? Python functions are objects, and there are no differences if local or global - unless you mean methods but that's a completely different story, and not what OP was asking for. – rob Jul 17 '09 at 21:10
  • what if f is a class/instance method? – Charlie Parker Jun 22 '17 at 22:23
2

I assume you want to do this, because the function f is defined not by you, but by some other module. So you want to change how f() works. In particular, you want to change what is called when g is called.

So I'll suggest this:

import thirdpartypackage

def mynewg():
   pass

thirdpartypackage.g = mynewg

This will change the global g for the module thirdpartypackage. So when thirdpartypackage.f() now is called, it will call mynewg() instead of g().

If this doesn't solve it, maybe g() is in fact imported from withing f(), or somthing. Then the solution is this:

import thirdpartypackage

def mynewg():
   pass

deg mynewf():
   mynewg()

thirdpartypackage.f = mynewf

That is, you override f() completely with a modified version that does what you want it to.

1

A function that's not executing doesn't have any locals; the local context is created when you run the function, and destroyed when it exits, so there's no "local namespace" to modify from outside the function.

You can do something like this, though:

def f():
    g = [1]
    def func():
        print g[0]
    return func, g

f, val = f()
f()
val[0] = 2
f()

This uses an array to simulate a reference.

  • 2
    This site should really require explanations for -1 votes, so people can't anonymously vote down correct answers without a reason. – Glenn Maynard Jul 29 '09 at 1:54
0

This seems to work

def add_to_locals(l):
    l['newlocal'] = 1

add_to_locals(locals())
assert newlocal
  • This does not work inside a function. It does not add the value to the namespace. – Demolishun Dec 5 '12 at 18:40

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