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01  print(x === undefined); // prints "true"
02  var x = 3;
04  //will return a value of undefined
05  var myvar = "my value";
07  (function() {
08    alert(myvar);//undefined       -- here i don't understand ho it print undefined 
09    var myvar = "local value"
10  })();
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is it the complete javascript that you posted, because, it seems like partial! and seeing this you cannot tell the scope of anonymous function printing the "myvar" value. –  Furqan Mar 1 '11 at 11:01
What are you trying to do with your anonymous function within an anonymous function call? –  Martin Mar 1 '11 at 11:03

2 Answers 2

up vote 6 down vote accepted

Because of hoisting. When the function executes, var myvar = "local value" gets pushed to the top of the function with a value of undefined (overwriting the previously defined var myvar = "my value";).

Edit: added slightly modified example from Adequately Good

This means that code like this:

function foo() { 
    var x = 1; 

is actually interpreted like this:

function foo() { 
    var x; 
    alert(x); //alerts undefined 
    x = 1; 
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Why so, and how is it pushed to the top of function? –  NoviceToDotNet Mar 1 '11 at 11:16
I included an example from the link, but seriously, keep reading that article until you understand. There's a lot of really crucial information in there. It's just the way JavaScript gets parsed. –  Bryan Downing Mar 1 '11 at 11:20
very nice article! thanks –  NoviceToDotNet Mar 1 '11 at 11:36

Javascript creates a name for the variable regardless of where it is initialized. It does not actually initialize the variable until after that line of code has run.

print(x === undefined); // prints "true"
var x = 3;
print(x === undefined); // prints "false"   
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