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I am using javascript i create a global variable. by define it outside of function i want to change the global variable value from inside a function and use it from other function how to do this?

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1  
@RajeshPaul lol its almost more than 1.5year old question and you are telling now...although your blog shows really good efforts :) –  StaticVariable Dec 5 '13 at 6:27
    
Thanx for that. Was just kidding being judgemental. –  Rajesh Paul Dec 5 '13 at 6:35
    
@RajeshPaul welcome ... –  StaticVariable Dec 5 '13 at 6:48

4 Answers 4

up vote 26 down vote accepted

Just reference the variable inside the function; no magic, just use it's name. If it's been created globally, then you'll be updating the global variable.

You can override this behaviour by declaring it locally using var, but if you don't use var, then a variable name used in a function will be global if that variable has been declared globally.

That's why it's considered best practice to always declare your variables explicitly with var. Because if you forget it, you can start messing with globals by accident. It's an easy mistake to make. But in your case, this turn around and becomes an easy answer to your question.

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This doesn't work for me: country = 'foo' $.ajax({ url: '/some-endpoint', success: function(data) { country = data.country; } }); console.log(country) // outputs 'foo' –  Mark Simpson Jan 12 '13 at 7:46
9  
@MarkSimpson - the reason it doesn't work is because in your example, the console.log is run immediately, but the ajax success function only runs at some point later when the ajax call actually returns a response. This is a fundamental point about the asynchronous nature of ajax: code in closure functions does not run in sequence with the code around it. This is an important to grasp when learning about event-driven code. –  Spudley Jan 12 '13 at 12:10
    
Thanks for the explanation, @Spudley –  Mark Simpson Jan 13 '13 at 0:43
    
The way to get the console.log to be more accurate in this case would be to put it inside the ajax success function. –  DWils Jan 9 at 17:13
var a = 10;

myFunction();

function myFunction()
   {
   a = 20;
   }

alert("Value of 'a' outside the function " + a);
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Just use the name of that variable.

In JavaScript, variables are only local to a function, if they are the function's parameter(s) or if you declare them as local explicitely by typing the var keyword before the name of the variable.

If the name of the local value has the same name as the global value, use the window object

See this jsfiddle

x = 1;
y = 2;
function a(y) {
    // y is local to the function, because it is a function parameter
    alert(y); // 10
    y = 3; // will only overwrite local y, not 'global' y
    var x; // makes x a local variable
    x = 4; // only overwrites local x
    alert(y); // 3
    alert(x); // 4
    // global value could be by referencing outside scope by window object
    alert(window.y) // 2 global y
}
a(10);
alert(x); // 1; this is the global value
alert(y); // 2; global as well
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You can use global variables inside a function and manipulate the value but remember when the function exit and you came back to the global codes then again variable has the value which had before starting function. But I found a trick to solve this problem so I can change the value of var in a function and outside of function you can use the new value too. Actually I used a trick and saved the final value in a hidden type outside of the function. See the code:

<input type="hidden" id="outside" value="">
<script>
var x = 2; //X is global and value is 2.

function myFunction()
{
var x = 7; //x is local variable and value is 7.
document.getElementById("outside").value = x; // we saved the new value of local variable in the input tag outside of this function

}

myFunction();
x = document.getElementById("outside").value; // updates the global variable with new value

alert(x); //x is gobal variable and the value is 7
</script>
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