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I am wondering why the following Python code works:

def sum(a, b):
    return a+b+c
c=3
print sum(1,2)
# result: 6

I would have expected an compiling error.
How can the sum function already be defined when variable c is not (I would say that c is not in scope of the sum function) ?

Is this what they call a closure?

As I understood closures, the variable had to be already 'mentioned', like in the following code snippets (copied from this site). Here the x is already mentioned (although not 'filled in') above the definition of the inc() function.

def makeInc(x):
  def inc(y):
     # x is "closed" in the definition of inc
     return y + x
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  • 4
    @BoltClock: Not really. sum() doesn't carry any scopes. Commented Mar 16, 2011 at 10:43
  • 4
    This is not a closure this just how python scoping work
    – mouad
    Commented Mar 16, 2011 at 10:43
  • 1
    It might help to understand the difference between compile time and run time. And I doubt it's a closure, when it references global variables. en.wikipedia.org/wiki/Closure_%28computer_science%29#Python
    – Boldewyn
    Commented Mar 16, 2011 at 10:46
  • 1
    you should look for the "namespace" concept, and that's not a closure. Commented Mar 16, 2011 at 11:01

3 Answers 3

6

In this case, c is found in the globals table. If you try to call sum(1,2) and c cannot be found in the function's scope, or it's parent scope (the global scope), then you will get a NameError exception.

Whilst this is similar to a closure, accessing global variables inside a function body is generally frowned upon, as it makes debugging much harder. A better example of a named closure in python (from Wikipedia):

def outer():
    y = 0
    def inner():
        nonlocal y
        y += 1
        return y
    return inner

f = outer() 
print(f(), f(), f()) #prints 1 2 3

For more details, see the Wikipedia entry on Closures: Python example.

3
  • Strangely enough, inner works if the y = 0 occurs after its definition. Commented Mar 16, 2011 at 10:53
  • Omnifarious: Not that strange. Python scopes are mutable. Commented Mar 16, 2011 at 11:31
  • 2
    Python uses a 2-pass compiler - it sees the outer definition on the first pass, so it knows how to hook it up on the second pass. You would get an exception if you tried to call the inner function before the definition of y though.
    – ncoghlan
    Commented Mar 16, 2011 at 11:40
4

Python would throw an error if a variable is not defined when the function is called.
You call Sum when c is defined.

1
  • 1
    I think it's not. As it was said: this is just how python scoping work
    – Sergey
    Commented Mar 16, 2011 at 11:22
3

Python doesn't evaluate the body of sum until it is called. Since c is defined before sum is called, it is available to be used by sum.

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