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I have the following code:

>>> def f(v=1):
...     def ff():
...             print v
...             v = 2
...     ff()
...
>>> f()
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "<stdin>", line 5, in f
  File "<stdin>", line 3, in ff
UnboundLocalError: local variable 'v' referenced before assignment

I do understand why this message occurs (Python variable scope question), but how can I work with v variable in this case? global v doesn't work in this case.

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3  
Why not just pass v to the ff() function? –  Rich Jun 6 '11 at 18:46
    
@Rich for example there are can be multiple nested functions –  rsk Jun 6 '11 at 19:17

2 Answers 2

up vote 6 down vote accepted

In Python 3.x, you can use nonlocal:

def f(v=1):
    def ff():
        nonlocal v
        print(v)
        v = 2
    ff()

In Python 2.x, there is no easy solution. A hack is to make v a list:

def f(v=None):
    if v is None:
        v = [1]
    def ff():
        print v[0]
        v[0] = 2
    ff()
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1  
Note that the second falls to stackoverflow.com/questions/1132941/… (calling it a second time without providing v prints 2). –  delnan Jun 6 '11 at 19:11
    
@delnan: Of course, my bad! –  Sven Marnach Jun 6 '11 at 19:13

You haven't passed v to the inner function ff. It creates its own scope when you declare it. This should work in python 2.x:

def f(v=1):
  def ff(v=1):
    print v
    v = 2
  ff(v)

But the assignment call to v = 2 would not be persistent in other calls to the function.

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2  
Perhaps def ff(v=v) would come closer to what the OP wants. –  senderle Jun 6 '11 at 18:55

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