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      def main():
                 x=2
      def cool():
                 y=4

nonlocal x
print (x)

It is showing an error as --nonlocal x is a invalid syntax--.And if I dont declare it as nonlocal it says undefined x. So, how do i acess a variable which is in some other function ?Now how do i access x variable which is defined at main().

share|improve this question
    
its Python 2.5.5 why? – niko Jul 11 '11 at 10:54
    
nonlocal is new to python 3 and it is for accessing variables from the outer scope (non-global). docs.python.org/release/3.0.1/reference/… docs.python.org/release/3.0.1/whatsnew/3.0.html – Jacob Jul 11 '11 at 10:56
    
ok how do i access if it is python 2.5.5? – niko Jul 11 '11 at 11:00
    
nonlocal is not for what you think it is. why do you need to access the variable anyway and not just return the value? – Jacob Jul 11 '11 at 11:01
    
Its not any project cularis Iam a beginner Iam expermenting with it.I am learning global concepts, so In the tutorial he defined a variable outside the main and accesed it in the function using global but i wanted to make it in reverse but its not working. – niko Jul 11 '11 at 11:03
up vote 3 down vote accepted

You can't.

You shouldn't. Doing so would just make it hard to read code because code from anywhere could read and modify your variables. By keeping access restricted to the one function it is easier to follow.

share|improve this answer

You do not. The variables local to a function only exist while that function is running; so once main has returned, its x does not exist. This also ties in to the fact that a separate call to the function gets a separate variable.

What you describe is a bit like reading the value of a static variable in C. The difference with static variables is that they're independent of the call; they still exist, and that makes most functions that use them non-reentrant. Sometimes this is emulated in Python by adding a default argument with a mutable value, with the same downsides.

In CPython, you actually can find out what the local variables of a pure Python function are by inspecting its code object, but their values will only exist in the call itself, normally on a call stack.

def func():
     x=2
import dis
print func.__code__.co_varnames
dis.disassemble(func.__code__)

yields:

('x',)
  2           0 LOAD_CONST               1 (2)
              3 STORE_FAST               0 (x)
              6 LOAD_CONST               0 (None)
              9 RETURN_VALUE

So x is actually local variable 0.

I would suggest looking up a debugger for details on call stack inspection.

share|improve this answer

Once you start needing attributes on a function, turn it into a functor:

class MainFactory(object):
    def __call__(self):
        self.x = 4

main = MainFactory() # Create the function-like object main
main()               # call it
print main.x         # inspect internal attributes

A functor in python is simply a normal object whose class implements the special __call__ method. It can have an __init__ method as well, in which you may pre-set the values of attributes if you wish. Then you can create different "flavours" of your functor by supplying different arguments when instantiating:

class MainFactory(object):
    def __init__(self, parameter=1):
        self.parameter = parameter

    def __call__(self):
        self.x = 4 * self.parameter

Now main = MainFactory(2); main() will have main.x set to 8.

Obviously, you can keep unimportant variables of the function inaccessible by simply using local variables instead of attributes of self:

   def __call__(self):
       # i and p are not accessible from outside, self.x is
       for i in range(10):
           p = i ** self.parameter
           self.x += p
share|improve this answer
    
While this is an interesting technique, you've missed the OP's actual question, which is a beginner-level misunderstanding about the nature of Python's scopes. – Ned Batchelder Jul 11 '11 at 12:25
    
@Ned I perfectly understood the OP's question. Already present comments explained that it was not possible to do it the way he wanted to, I did not see the need to repeat it. My answer is the only one that shows how to do exactly what OP wanted, though not in the way he tried to do it: call a function without arguments, then access variable used inside function afterwards, without using globals. I think the downvote was uncalled for. – Lauritz V. Thaulow Jul 11 '11 at 13:05
x = 0
def main():
    global x
    x = 2 # accesses global x

main()
print x  # prints 2
share|improve this answer
    
This isn't exactly answering niko's question, is it? You've changed x into a global variable. – Tim Pietzcker Jul 11 '11 at 10:53
    
your totally wrong that is not my question – niko Jul 11 '11 at 10:55

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