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def maker(n):
    def action(x):
        return x ** n
    return action

f = maker(2)
print(f)
print(f(3))
print(f(4))

g = maker(3)
print(g(3))

print(f(3)) # still remembers 2

... why does the nested function remembers the first value (2) even though maker() has returned and exited by the time we call action()?

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40  
You always answer each (atleast mine) question with that tone. YOU have 66k rep and you seem to be great programmer, good for you :) but I'm just starting out and I ask what I don't understand and need more explanation on — thats what SO is for I believe. –  Nimbuz Jan 5 '10 at 12:35
17  
@S.Lott It's really not obvious why/how that should work. It's fair enough that a new programmer should be confused when a function has returned yet its scope still exists. Especially if they come from a language like C++ where everything in scope is destroyed when a function returns. –  Skilldrick Jan 5 '10 at 12:44
10  
@S.Lott: SO isn't just about solving problems, it's about gaining knowledge. If Nimbuz finds out the reason why Python works like this, he's gained a greater understanding. He'll also know what makes it different to other languages and why. As will others reading the question and answer. I think that this question is far from useless. –  Skilldrick Jan 5 '10 at 13:00
11  
Surely it's apparent that the original poster would want to know why it is useful behaviour? Typically, when a programming language does something that appears confusing to a beginner, it's to facilitate something powerful for an expert, and he probably wants to know precisely what that something is, to further his understanding. I would disagree that Nimbuz 'learned everything there was to know about it' - he appears unsure as to where those bound values are coming from, which is understandable given that function arguments in 99% of cases are transient. –  Kylotan Jan 5 '10 at 16:32
7  
^ exactly! I understand some experts here get annoyed by the same newbie questions, but no one likes to waste your (or their own) time really. Why would I ask a question if I already knew the answer? I saw the result but I wanted to know the functioning behind it so I could better understand the concept. Sure, if it sounds too stupid to you, which is quite possible, just move on, why criticize and discourage beginners from asking questions that might help others too ? :) –  Nimbuz Jan 5 '10 at 17:21
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7 Answers

up vote 12 down vote accepted

You can see it as all the variables originating in the parent function being replaced by their actual value inside the child function. This way, there is no need to keep track of the scope of the parent function to make the child function run correctly.

See it as "dynamically creating a function".

def maker(n):
  def action(x):
    return x ** n
  return action

f = maker(2)
--> def action(x):
-->   return x ** 2

This is basic behavior in python, it does the same with multiple assignments.

a = 1
b = 2
a, b = b, a

Python reads this as

a, b = 2, 1

It basically inserts the values before doing anything with them.

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You are basically creating a closure.

In computer science, a closure is a first-class function with free variables that are bound in the lexical environment. Such a function is said to be "closed over" its free variables.

Related reading: http://stackoverflow.com/questions/1305570/closures-why-are-they-so-useful

A closure is simply a more convenient way to give a function access to local state.

From http://docs.python.org/reference/compound_stmts.html:

Programmer’s note: Functions are first-class objects. A 'def' form executed inside a function definition defines a local function that can be returned or passed around. Free variables used in the nested function can access the local variables of the function containing the def. See section Naming and binding for details.

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You are defining TWO functions. When you call

f = maker(2)

you're defining a function that returns twice the number, so

f(2) --> 4
f(3) --> 6

Then, you define ANOTHER DIFFERENT FUNCTION

g = maker(3)

that return three times the number

g(3) ---> 9

But they are TWO different functions, it's not the same function referenced, each one it's a independent one. Even in the scope inside the function 'maker' are called the same, is't not the same function, each time you call maker() you're defining a different function. It's like a local variable, each time you call the function takes the same name, but can contain different values. In this case, the variable 'action' contains a function (which can be different)

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That is what's called "closure". Simply put, for most if not all programming languages that treat functions as first-class object, any variables that are used within a function object are enclosed (i.e. remembered) so long as the function is still alive. It is a powerful concept if you know how to make use of it.

In your example, the nested action function uses variable n so it forms a closure around that variable and remembers it for later function calls.

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Because at the time when you create the function, n was 2, so your function is:

def action(x):
    return x ** 2

When you call f(3), x is set to 3, so your function will return 3 ** 2

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People answered correctly about the closure, that is: the valid value for "n" inside action is the last value it had whenever "maker" was called.

One ease way to overcome this is to make your freevar (n) a variable inside the "action" function, which receives a copy of "n" in the moment it is run:

The easiest way to do this is to set "n" as a parameter whose default value is "n" at themomentof creation. This value for "n" stays fixed because default parameters for a function are stored in a tuple which is an attribute of the function itself (action.func_defaults in this case):

def maker(n):
    def action(x):
        return x ** n
    return action
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When you create a function with the def keyword, you are doing exactly that: you are creating a new function object and assigning it to a variable. In the code you gave you are assigning that new function object to a local variable called action.

WHen you call it a second time you are creating a second function object. So f points to the first function object (square-the-value) and g points to the second function object (cube-the-value). When Python sees "f(3)" it takes it to means "execute the function object pointed to be variable f and pass it the value 3". f and g and different function objects and so return different values.

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Wait. Any function is defined by keyword def. Do you mean that there is no way to call a funciton, since every time you refer a definition, you are creating a second object? –  Val Jun 4 at 18:50
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