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In a comment on another thread I started, someone said this:

@adlwalrus yes. try this: var foo = function bar(){}; console.log(foo); But be aware that bar is only function name (what does it mean I'm not sure exactly myself) and not a reference to it, so you can't call it by doing bar(). And assigning (even named function) is not the same as declaring a function. Hoisting (bumping to top of the scope) only works for declarations, assignment will stay in place. – valentinas 6 hours ago

What purpose does a function name serve if you can't call it with bar()?

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1  
What's the difference between your name and your address? –  Hot Licks Sep 6 '12 at 3:25
    
In addition to the name/address analogy, you can actually call bar() within the scope of bar(), but out of the scope of bar(), you have to use foo(). –  Jeremy Sep 6 '12 at 3:27
    
@HotLicks - That analogy makes no sense. foo and bar are both clearly names here. They both refer to the same address. It's just that one is only available within the scope of the new function. –  lwburk Sep 6 '12 at 3:46
    
@Iwburk that answers the question for me, I think. –  wwaawaw Sep 6 '12 at 4:08

3 Answers 3

up vote 3 down vote accepted

There are two ways to create a function in JavaScript, a "function declaration" and a "function expression." I believe it was Doug Crockford who explained it best when he pointed out that unless "function" is the very first set of characters on a given line, you're performing a function expression (not a declaration).

Function declarations are finicky creatures. You'll recognize them when you see them. They look like this:

function foo() { /* ... */ }

They're always given a name (it's requited) and the name is locally scoped to the lexical context under which the function is declared. So if you perform a function declaration in the global context, then the function can be referenced via it's name globally. If you do it within a function, the function's name can be referenced only within that function and any functions declared within that function.

I think the most important aspect of this method of declaring a function (one that is rarely commented on) is that the function initialization gets hoisted to the top of the current lexical context. Therefore, you should never, ever use a function declaration within a conditional, such as this:

//DON'T DO THIS!
if (x) {
    function foo() { return 1; }
} else {
    function foo() { return 2; }
}

foo(); //will always be 2, regardless of the value of x.

A function expression is slightly different. Often, they're directly assigned to a variable, like so:

var foo = function() { /* ... */ };

This is nearly identical to the function declaration above except that the initialization is not hoisted. So you can do the following:

var foo;
if (x) {
    foo = function() { return 1; };
} else {
    foo = function() { return 2; };
}

foo(); //will be 1 or 2, depending on the truthy-ness of x. 

So, back to the original question. Function expressions can also have a name, though it's not required and it's not scoped to the context in which the function is declared (as with function declarations). Instead, it gets scoped to the function's own lexical context. This is very useful in some cases. My personal favorite is this pattern:

(function foo() {
    //Do something.

    setTimeout(foo, 1000);
}());

foo; //undefined

Because of the parenthesis before the word "function", this is a function expression and the name is scoped internally only. But that's okay, because we only need to call it internally (via setTimeout()). The result is that the function will execute once immediately, then will re-execute every second or so after it's finishes execution. This is safer than using setInterval() because it will wait until it's done executing before rescheduling itself, preventing overlaps that could cause missed executions and/or "domination" of the JavaScript thread.

Essentially, the use of a named function expression is limited, but when you need it, it's very powerful.

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This was an incredibly informative answer. It's been accepted, and I thought there was a way to "gift" reputation, which I would do if there is, but I can't find it. I wish you could be my JS teacher. If you wrote a textbook, I'd buy it. Do you have a blog or anything? –  wwaawaw Sep 6 '12 at 5:31
    
@adlwalrus I appreciate the praise. I don't have a blog or a book or anything like that. But I do recommend you check out Doug Crockford's JavaScript lectures (do a search for "Crockford on JavaScript"). They're fantastic and the source of most of what I know about JavaScript. :-) –  Pete Sep 6 '12 at 5:43
    
Have you read / would you recommend /The Good Parts/? A friend of mine has it so I could borrow it if I wanted. –  wwaawaw Sep 6 '12 at 5:46
    
Also, any specific lectures you'd recommend as a gateway? –  wwaawaw Sep 6 '12 at 5:46
1  
@lwburk Yeah, I've moved on to a company that actually gives a crap about their clients and associates. (offtopic) –  Pete Sep 6 '12 at 16:08

For the function to call itself.

var x = function y(val){
            if (val){
                console.log(val);
                y(val-1);
            }
        }; 
x(5);
> 3  
> 2  
> 1 
y(3); 
> ReferenceError: y is not defined
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Okay, so then they don't conflict with anything else then, really. IE, you could have: var x = function z(v) { if (v) {console.log(v); z(v-1);} }; var y = function z(v) { if (v) {console.log(v); z(v-1);} }; –  wwaawaw Sep 6 '12 at 4:12
    
note the two functions that are both internally labelled z. –  wwaawaw Sep 6 '12 at 4:13
    
@adlwalrus yes thats right see jsfiddle.net/mowglisanu/gAHXg –  Musa Sep 6 '12 at 4:16
    
Right -- sweet. –  wwaawaw Sep 6 '12 at 5:22

You're referring to a named function expression. The spec requires that the name of such functions only be available within the scope of the new function. Spec quote:

The Identifier in a FunctionExpression can be referenced from inside the FunctionExpression's FunctionBody to allow the function to call itself recursively. However, unlike in a FunctionDeclaration, the Identifier in a FunctionExpression cannot be referenced from and does not affect the scope enclosing the FunctionExpression.

On the other hand, the result of that expression is a reference to the new function, which can be saved and referenced anywhere.

Lots of details here:

I'd read the whole thing.

As for benefits, another is that it makes them easier to identify in a debugger.

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Very interesting, and complicated. –  wwaawaw Sep 6 '12 at 4:09

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