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The following code:

x = 0
print "Initialization: ", x
def f1():
    x = 1
    print "In f1 before f2:", x
    def f2():
        global x
        x = 2
        print "In f2:          ", x
    f2()
    print "In f1 after f2: ", x
f1()
print "Final:          ", x

prints:

Initialization:  0
In f1 before f2: 1
In f2:           2
In f1 after f2:  1
Final:           2

Is there a way for f2 to access f1's variables?

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2  
This is a dreadful thing. Why are you trying to do this? Why not just make f1 a callable object and properly share instance variables? –  S.Lott Feb 18 '10 at 18:48
    
I agree, it is very dreadful, but I was wondering if it was possible. I would hope that nobody would put something like this out in the wild. –  kzh Feb 19 '10 at 14:26

3 Answers 3

up vote 3 down vote accepted

You can access the variables, the problem is the assignment. In Python 2 there is no way to rebind x to a new value. See PEP 227 (nested scopes) for more on this.

In Python 3 you can use the new nonlocal keyword instead of global. See PEP 3104.

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In Python 3, you can define x as nonlocal in f2.

In Python 2, you can't assign directly to f1's x in f2. However, you can read its value and access its members. So this could be a workaround:

def f1():
    x = [1]
    def f2():
        x[0] = 2
    f2()
    print x[0]
f1()
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remove global statement:

>>> x
0
>>> def f1():
    x = 1
    print(x)
    def f2():
        print(x)
    f2()
    print(x)


>>> f1()
1
1
1

if you want to change variable x from f1 then you need to use global statement in each function.

share|improve this answer
    
That won't allow you to assign to x from f2. –  interjay Feb 18 '10 at 17:25
    
that was fixed, interjay. However, from the question it is not clear that OP wants to assign to x. He says access. –  SilentGhost Feb 18 '10 at 17:27

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