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Please ignore that this can be re-written without variables. It's just to have a simple example.

window.onload = function() {
    var a = document.body, b = function() {console.log(1)};
    a.onkeydown = b;
};

I know what happens: it works. But how?

If b was a global variable, the interpreter would store a reference to it. In this example, does the interpreter store a reference to the local variable, only to replace it, with what I assume is a copy of the function, when the local variable is destroyed? Or is the reference to the local variable still stored somewhere behind the scenes, and is then re-purposed?

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I actually can't get this to work .. how can you trigger onkeydown on document.body? –  Explosion Pills Jan 29 '13 at 4:01

1 Answer 1

up vote 4 down vote accepted

Functions (and other objects) are always passed by reference. b does not contain the function, rather it points to it. When you assign a.onkeydown = b, you are making a.onkeydown point to the same function object. Then the function ends, so the local b variable is destroyed but the function it points to is still there - it would only be removed by the garbage collector if there were nothing else pointing it to it.

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So basically this can also be read as a.onkeydown = b = function() {console.log(1)}, and when b is destroyed, it makes no difference because the function is already also assigned to a.onkeydown, correct? –  pdknsk Jan 29 '13 at 4:09
    
Basically, yup. –  Niet the Dark Absol Jan 29 '13 at 4:16
    
    
@ExplosionPills That script proves nothing. The parameter is being masked by the local variable, so the one in the global scope is completely unaffected by the function... I fail to see how that script proves anything other than that local variables mask parameters. –  Niet the Dark Absol Jan 29 '13 at 6:39
    
@Kolink check again; I just updated it so that a local variable is not declared in memory (i.e. it uses the parameter) –  Explosion Pills Jan 29 '13 at 6:41

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