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Why is this global variable undefined inside a function if the same global variable is re-declared and defined inside that same function?

var a = 1;
function testscope(){
 console.log(a, 'inside func');
 //var a=2;
};
testscope();
console.log(a, 'outside func');

output:
1 "inside func"
1 "outside func" 

Consider same code where var a = 2; inside function block is uncommented

var a = 1;
function testscope(){
 console.log(a, 'inside func');
 var a=2; 
};
testscope();
console.log(a, 'outside func');

Output
undefined "inside func"
1 "outside func"
5
  • 1
    Too many dupetargets... Commented Nov 24, 2017 at 16:44
  • Because var a is hoisted to the top of the scope resulting in the start of the function being var a;.
    – h2ooooooo
    Commented Nov 24, 2017 at 16:45
  • 2
    @T.J.Crowder I'm framing that comment ;)
    – j08691
    Commented Nov 24, 2017 at 16:45
  • 1
    @j08691: 22 characters, two typos. That's not a good ratio. :-) (Fixed.) Commented Nov 24, 2017 at 16:46
  • @T.J.Crowder thanks for finding out. I missed the same question asked earlier. Still voted for the effort.
    – Raj Rj
    Commented Nov 24, 2017 at 17:41

2 Answers 2

5

It's because Javascript is not like Java and variable declaration are always pushed up their block. Your second piece of code is strictly equivalent to:

var a = 1;
function testscope(){
 var a;  // <-- When executed, the declaration goes up here
 console.log(a, 'inside func');
 a=2;  // <-- and assignation stays there
};
testscope();
console.log(a, 'outside func');

Output
undefined "inside func"
1 "outside func"
1
  • 3
    Please, blatantly-obvious duplicates need close votes and comments, not answers. Commented Nov 24, 2017 at 16:45
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because a on the first function refers to the variable a that exists on the function, while a you write after the variable you write. if you want a global variable accessible inside a function that contains the same variable as the global variable you should add this.a. or if you want to access the variable a in the function you have to write the variable before you call it

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