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I tried following code:

var a = 5;

function x() {
  console.log(a);
}

x();

It runs as expected and prints 5.

But i changed the code so the global variable a will be overwrite as follows:

var a = 5;

function x() {
  console.log(a);
  var a = 1;
}

x();

It prints undefined. It doesn't make sense for me since the overwrite should be happened right after console.log(a). So what is the problem?

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2 Answers

up vote 5 down vote accepted

This is happening because your second a variable is being 'hoisted' to the top of the function and it hides the first a. What is actually happening is this:

var a = 5;

function x() {
  var a;
  console.log(a);
  a = 1;
}

x();

Here is an article on hoisting from adequately good for further reading on the subject.

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When variable gets hoisted its value also doesnt get hoisted? For example why wasnt the expression var a =1; hoisted. And why just var a; –  smk Mar 30 '13 at 3:50
    
The value isn't hoisted because you set it at that position, consider an example of initialising a variable to be equal to the contents of another variable which wouldn't have been filled at the start of the function. Setting it to 1 would break the flow of the program. –  Daniel Imms Mar 30 '13 at 3:52
    
Ah. Makes sense.Thank you. –  smk Mar 30 '13 at 3:54
    
Wew. It is still hard for me to accept the scoping & hoisting concept. I come from java and i think javascript scoping is a little bit strange. Anyway thanks for the answer and the article. –  user1725316 Mar 30 '13 at 4:14
1  
jslint.com actually complains if you don't define all of a function's variables at the beginning, the thinking behind that is you wouldn't run into these sort of issues that would be very difficult to debug. –  Daniel Imms Mar 30 '13 at 4:16
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var a = 5;

function x() {
    var a = 1;
console.log(a);
}

x();

you need to initalize variable a before console.log();

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