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.

This question already has an answer here:

What is the purpose of the outer extra parentheses on the below JavaScript closure function? I have been told in other posts that they are not strictly necessary, but they're a convention to make it clear that the result of the function is being passed, not the function itself. The below quote from http://www.adequatelygood.com/JavaScript-Module-Pattern-In-Depth.html , however, conflicts. Which is correct?

Notice the () around the anonymous function. This is required by the language, since statements that begin with the token function are always considered to be function declarations. Including () creates a function expression instead.

(function () {
    // ... all vars and functions are in this scope only
    // still maintains access to all globals
}());
share|improve this question

marked as duplicate by deceze, Ja͢ck, Trott, Shikiryu, Roman C Apr 4 '13 at 9:13

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
You can also prefix it with void or an arithmetic operator. –  Ja͢ck Apr 3 '13 at 14:21
1  
@Jack. Please elaberate. –  user1032531 Apr 3 '13 at 14:21
1  
benalman.com/news/2010/11/… –  Rocket Hazmat Apr 3 '13 at 14:23
    
void function() { dostuff(); }(); –  Ja͢ck Apr 3 '13 at 14:24

4 Answers 4

up vote 4 down vote accepted

I think that different engines have different ways of interpreting

function(){...}();

so the most popular and accepted way to make it clear, to all engines, is to group the code in parentheses.

(function(){...}());

At the same time, what you quoted makes a very interesting point. A function expression might go:

var f = function() {...}

Whereas a function declaration looks like:

function f() {...}

You see how it's easy/convenient for the parser to tell the difference by looking at the first token?

IF TOKEN1 EQ "function": FXN DECLARATION
ELSE: FXN EXPRESSION

But it wouldn't make sense for your (immediately-invoked) function to be a function declaration (it's not going to be re-used, you don't want to have it hoisted, or in the namespace, etc.) so adding some innocuous parentheses is a good way of indicating that it's a function expression.

share|improve this answer
    
So, it is sometimes required and sometimes not based on the given engine, and I should just do it all the time? –  user1032531 Apr 3 '13 at 14:27
    
Yeah. It's a very strong convention. You should probably do it all the time... unless you find some other popular way to make it clear to the engine, and want to champion that. –  ktm5124 Apr 3 '13 at 14:29
    
FF results in s syntax error without it. –  user1032531 Apr 3 '13 at 16:34

The extra surrounding parentheses disambiguate a function expression from a regular function declaration.

Though the extra parentheses are standard practice, the same thing can be achieved by doing this instead:

void function() {
    // do stuff
}();

Or, even:

+function() {
    // do stuff
}();

Though, out of these two alternatives, I prefer the void notation because in most cases we don't really care about the return value of an immediate invocation.

Other places where the parentheses aren't required is when an expression is expected:

setTimeout(function() {
    return function() {
        alert('hello');
    }
}(), 1000);
share|improve this answer

First of all, I must clear up:

(function () {

}());

is equivalent for

(function () {

})();

and also for (Backbone.js uses it)

(function(){

}).call(this);

Second, if you're going to use it that way, then it's not an anonymous/closure function. its Immediately-Invoked Function expression

it would act as a closure (because it won't be immediately-invoked) if you assign its returned context to a variable. This kinda useful if you need a static class (when properties and methods could be accessed without instantiation). For example:

var stuff = (function(){

    // AGAIN: its not an IIFE in this case

    function foo() // <- public method
    {
        alert('Jeeez');
    }

    return {
       foo : foo,
    }
})();


stuff.foo(); //Alerts Jeeez

What is the purpose of the outer extra parentheses on the below JavaScript closure function?

The purpose isn't usual and quite strange - its all about function arguments. For example,

(function(window, document){ // <- you see this? 2 "arguments"

  alert(arguments.lenght); // undefined!

})();

but if we pass them to that outer parentheses

(function(/* So its not for arguments */ ){

  alert(arguments.lenght); // 2

})(window, document); // <- Instead we pass arguments here
share|improve this answer
    
Great explanation. I wish I can vote more. I believe other answers better met my specific question, but this clarified a bigger mystery of mine. (function (c, d) {console.log(a,b,c,d);}(a, b)); will display a,b,a,b. I get it thanks to you! Thanks –  user1032531 Apr 3 '13 at 15:59

They are necessary because the parser goes in the function declaration mode when it sees

function

in a statement context.

After function token, it is expecting a name for the function because a function declaration must include a name for the function. But instead of a name it sees ( instead, so it's a syntax error.

I think, it could backtrack and unambiguously just treat it as a function expression but it doesn't.


var module = XXX

In the above, XXX is in expression context, if a function appears there, it is treated as a start of a function expression. Function expressions don't have to have a name for the function, so it's not a syntax error to have ( appear right after function.

So you can write:

var module = function(){}();

But not

function(){}()

You can use many tricks to make the above an expression:

(XXX)
!XXX
~XXX
+XXX

//This doesn't work however:
{YYY} //the braces are delimiting a block, and inside block you start in
      //a statement context

XXX is in expression context because it's enclosed by parenthesis or is following a unary operator, therefore any function substituted for XXX is a function expression.

share|improve this answer

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