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Are variables defined inside an inner function that have the same name as a variable in an outer function isolated from the outer variable?

function() {
    var myTest = "hi there";
    ( function( myTest ) {
        myTest = "goodbye!";
    } )();
    console.log( myTest ); // myTest should still be "hi there" here, correct?

Naturally if I didn't declare myTest inside the inner function it would create a closure and modify the original. I just want to make sure that variables declared within an inner function are always isolated to that function even if their name may conflict with an outer scope.

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2 Answers 2

up vote 9 down vote accepted

Yes, they effectively do. Each function creates a new scope, and the closest scope in which a requested variable is declared always takes precedence. No exceptions.*

*Indirect eval

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By "used" I assume you mean "declared" correct? – devios Mar 8 '12 at 16:21
@chaiguy: Yes, sorry. Mixed up my words there a bit. – Ryan O'Hara Mar 8 '12 at 22:55
this method also avoids scope lookup. – Lucas Maus Sep 23 '13 at 14:31

Just for the sake of completeness. In these very similar examples, here is what happens with no parameter

var x = 'a';
( function(  ) {   //note that there is no parameter here
    x = 'b';
    alert('inner:'+x); //b
} )();
alert('outer:'+x); //b

and a var with the same name

var x = 'a';
( function(  ) {
    var x = 'b';
    alert('inner:'+x); //b
} )();
alert('outer:'+x); //a
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