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If I do:

var i = j = 0;
  1. Is j a local variable?
  2. Prove it.
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1  
It depends on whether j was declared earlier in the environment :P. Since the statement is evaluated as var i = (j = 0); it should be clear that the var keyword does not apply to j. –  Felix Kling Jan 30 '13 at 2:12

7 Answers 7

After hoisting, your code looks like:

var i;
j = 0;
i = j;

Therefore i is a local variable, but j is not.

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j would be a global variable, or get assigned to a variable in an out scope:

(function() { var i = j = 0;  })()

// i is undefined
// j is 0


var i = 42;
var j = 1;

(function() { var i = j = 0;  })()

// i remains 42
// j is 0
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For fun, here is another "proof":

(function() {"use strict"; var i = j = 0;}());
// throws "ReferenceError: assignment to undeclared variable j"

(Read more about strict mode)

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1  
You guys are awesome! –  MattDiPasquale Jan 30 '13 at 2:19

Since the declaration of j isn't in the same declaration expression as i, the variable is either created in the outer scope or, if it exists there it will overwrite the value in the outer scope.

The reason why i is now global is because of variable hoisting. You can break this down like this:

1) var i

2) j, which now declares j in the current scope, which is the containing scope since the expression is not bound to the current context because it's not using var.

3) = 0, which now assigns j to 0, and subsequently assigns j to i.

Proof?

enter image description here

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That was my suspicion, but how can it be proved programmatically? –  MattDiPasquale Jan 30 '13 at 2:09
    
@MattDiPasquale Compare result of typeof with 'undefined'? –  elmigranto Jan 30 '13 at 2:13
(function(){
    var i = j = 0;
})();

try{
    alert(i);   
}catch(e){
    alert(e);  
}

alert(j);

http://jsfiddle.net/kDGM3/1/

Not particularly proof...nor would I use an exception in a normal program flow unless it was indeed an exceptional case. But it does demonstrate the behavior.

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function test(a){
    var i=j=0;
    return i;
};
test(100);
alert(j);
alert(i);
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please do explain your answer –  johannes Jan 30 '13 at 2:32

check if it's on the window object alert(window.j) if it alerts it's value then it's global if not it's local (if it's not in a function when using the var keyword then it's global and without var then it's global no matter were you define it. so j and i are both global). example:

var i = j = 0;

 function x(){
   var r = 100;
    alert(r); 
 }
  alert(window.i); //will alert 0.
  alert(window.j); //will alert 0.
  x(); // will alert 100.
  alert(window.r); //will alert undefined.

or you can use hasOwnProperty like so alert(window.hasOwnProperty("i")) which returns a boolean value.

by the way, trying to test this using jsfiddle will make i return undefined (might have something to do with the way jsfiddle protects it's own global namespace) so you'll need a blank html page to test this

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