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The out put is 12 12 for the following code.

var omg = function(){

        var space = {q:12} ;

        var sq = [];

        sq[0] = function(){
                console.log(space.q);
                space.q = 14;
        };

        sq[1] = function(){
                console.log(space.q);
        };



        return sq;

};

omg()[0]();
omg()[1]();
~                           

Why is the output not 12 14 ?!?

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3 Answers 3

up vote 4 down vote accepted

Each omg() call returns a new function. Hence, the omg()[0]() call changes the local value of q of that particular instance. I think if you did it like this:

var a = omg()
a[0](); 
a[1](); 

you'd get the expected output.

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Nit: It returns a new array, which has elements (properties) that name two new functions (which "close over" the space in the lexical scope they are created in)... –  user166390 Feb 15 '12 at 6:37
    
Duh, thank you for catching that. –  James Andino Feb 15 '12 at 6:46

Each omg() generates a separate closure with a separate space object.

To get your expected behavior, you need to call omg() once and call both functions in it using the same variable:

var arr = omg();
arr[0]();
arr[1]();
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You execute two times the omg() so you get two different closures with separate space object.

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