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In the following example, JavaScript seems to be completely ignoring my return statement, and just carrying on executing code.

var x = 1;
(function() {
  x = 2;
  return;
  var x = 3;
})();
console.log(x); // Outputs 1 in both Chrome and FF

Surely the code should output 2? If I remove the var keyword from var x = 3, it outputs 2 as expected. Is there some strange compiler optimization at work here?

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I think the x is different inside the function.. easy fix would be to do window.x = 2 –  Madushan Jul 29 '13 at 10:16
1  
As @dystroy said variable declarations get hoisted to the top of the function scope. So because you have the var x = 3, var x get's hoisted to the top and makes the x = 2 a local variable. If you just put x = 3 (without var) then the console.log will output 2 –  Pete D Jul 29 '13 at 10:17

1 Answer 1

up vote 6 down vote accepted

No, the code shouldn't output 2 because variable declarations are hoisted so your code is equivalent to

var x = 1;
(function() {
  var x;
  x = 2; // changes the internal x variable
  return;
  x = 3; // does nothing because it's not reached
})();
console.log(x); // Outputs the outside x, which is still 1

The line

x = 2;

only changes the internal x variable which shadows the outside one.

The scope of a non global variable is the entire function in which it is declared. From the start of this function to its end.

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