Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
function var1() {
    console.log("in function one");
    var varval1 = "life";
    alert("var one value"+varval1);
    return varval1;
}

function var2() {
    console.log("in function two");
    alert("var two value"+varval1);
}

var1();
var2();

I want to access the value of varval1 inside var2(). However, it gives an error saying the value is not defined.

Thanks

share|improve this question

4 Answers 4

How about

function var1(){
    console.log("in function one");
    var varval1 = "life";
    alert("var one value"+varval1);
    return varval1;
}

function var2( varval1 ){
    console.log("in function two");
    alert("var two value"+varval1);
}

var2(var1());
share|improve this answer

varval1 is defined in the scope of the function var1 but not in var2's scope. So, it won't be available to the code outside var1. However, all the functions defined inside var1 will have access to the variables defined inside it.

You have several options here.

  1. Define function var2 inside var1. (but then, you won't be able to call var2 easily using var2())
  2. Declare varval1 as a global variable. (By removing var in front of it. But, this is generally a bad idea) 3)
  3. Return the value of varval1 from function var1 and store it in a variable val2 can access.

Also, try to name your variables and functions meaningfully.

Scope: http://en.wikipedia.org/wiki/Scope_%28programming%29

share|improve this answer

Changing the line where varval1 is defined will do it:

function var1() {
    console.log("in function one");
    varval1 = "life";
    alert("var one value"+varval1);
    return varval1;

}

This is also equivalent to writing

window.varval1 = "life";
share|improve this answer

Change you var2() to

function var2(){
console.log("in function two");
varval1=var1();
alert("var two value"+varval1);
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.