I wrote the following script just to see what happens when a variable and a function that has a function assigned to it have their names clash:

var f = function() {
    console.log("Me original.");
}

function f() {
    console.log("Me duplicate.");
}

f();

The output I'm getting is "Me original." Why was the other function not called?

Also, if I change my original assignment to var f = new function() {, I get "Me original", followed by a TypeError saying object is not a function. Can someone please explain?

  • 26
    @Dean.DePue — There's no confusion on JavaScript's part. The rules for handling them are quite clear (and explained by Benjamin in his answer). – Quentin May 27 '14 at 12:28
  • 4
    Curiosity, still the best way to learn about a language. :-D – Cerbrus May 27 '14 at 12:28
  • 2
    Also, I imagine it's pretty impossible for something as immaterial as "JavaScript" to "feel" confused (or any emotion, for that matter) ;-) – Cerbrus May 27 '14 at 12:30
  • 2
    Why should hoisting reverse the order in the second example? – Cerbrus May 27 '14 at 12:48
  • 5
    Steps for growing in knowledge of javascript: 1) Use 'use strict' 2) Always use either jslint or jshint 3) Look up the things that jslint or jshint complains about 4) Rinse and repeat – steve-er-rino May 30 '14 at 17:05
up vote 171 down vote accepted

Function declarations are hoisted (moved to the top) in JavaScript. While incorrect in terms of parsing order, the code you have is semantically the same as the following since function declarations are hoisted:

function f() {
    console.log("Me duplicate.");
}
var f = function() {
    console.log("Me original.");
}


f();

Which in turn, with the exception of the function's name is the same as:

var f = function() {
    console.log("Me duplicate.");
}
var f = function() {
    console.log("Me original.");
}


f();

Which in turn, because of variable hoisting is the same as:

var f;
f = function() {
    console.log("Me duplicate.");
}
f = function() {
    console.log("Me original.");
}

f();

Which explains what you're getting, you're overriding the function. More generally, multiple var declarations are allowed in JavaScript - var x = 3; var x = 5 is perfectly legal. In the new ECMAScript 6 standard, let statements forbid this.

This article by @kangax does a fantastic job in demystifying functions in javascript

  • 2
    Can you really simplify function f() to var f = function() that much? Are hoisting and function names really the only difference? – djechlin May 27 '14 at 12:28
  • 6
    @djechlin in the context of this question - yes. Generally, it's more subtle - see stackoverflow.com/questions/336859/… . From the compiler perspective, they're different - but from the programmer perspective - we're close enough to it to claim that. That's why I added that long "while incorrect in terms of parsing order, the code you have is semantically the same as" instead of saying "is the same as". Good point. – Benjamin Gruenbaum May 27 '14 at 12:30
  • 5
    In strict mode you can't var the same name twice in the same scope. – Hoffmann May 27 '14 at 16:05
  • 2
    @bjb568: How so? – Ry- May 31 '14 at 1:05
  • 4
    "That should be obvious" - to you perhaps, but it was not obvious to me at a point, and it was not obvious to OP when he asked it, and naming, and more generally how the lexical environment is managed in JavaScript was one of the hardest things to grasp when first learning JavaScript to me. I would not be so quick to insult people who do not understand it. – Benjamin Gruenbaum May 31 '14 at 1:18

If doesn't look like anyone answered your follow-up question so I'll answer it here, though you should generally ask follow-up questions as separate questions.

You asked why this:

var f = new function() {
    console.log("Me original.");
}

function f() {
    console.log("Me duplicate.");
}

f();

prints out "Me original." and then an error.

What is happening here is that the new causes the function to be used as a constructor. So this is equivalent to the following:

function myConstructor() {
    console.log("Me original.");
}
var f = new myConstructor();

function f() {
    console.log("Me duplicate.");
}

f();

And thanks to the function hoisting that Benjamin explained, the above is essentially equivalent to this:

var myConstructor = function() {
    console.log("Me original.");
};
var f = function() {
    console.log("Me duplicate.");
};

f = new myConstructor();

f();

This expression:

var f = new function() {
    console.log("Me original.");
}

causes a new object to be constructed and assigned to f, using an anonymous function as the constructor. "Me original." is printed out as the constructor executes. But the object that is constructed is not itself a function, so when this eventually executes:

f();

you get an error, because f is not a function.

  • Oh, wonderful! Thanks a lot for taking the trouble to answer it! :) :) – dotslash Jun 4 '14 at 2:00

Forgive me if this is the wrong way to approach adding a point. I haven't been around here all the much, and would welcome constructive direction and/or criticism.

Benjamin's answer addresses the OP's question excellently, but I'd like to add one tweak that'll give us a full tour of hoisting and its oddities.

If we begin the original code with a call to f, like so:

f();

var f = function() {
   console.log("Me original.");
};

function f() {
   console.log("Me duplicate.");
}

f();

The output will then be:

Me duplicate.
Me original.

The reason being that var and function statements are hoisted in slightly different ways.

For var the declaration is moved to the top of the current scope*, but any assignment is not hoisted. As far as the value of the declared var goes, it's undefined until the original assignment line is reached.

For functionstatements, both the declaration and definition are hoisted. Function expressions, as used in the var f = function() {... construct, are not hoisted.

So after hoisting, execution is as if the code were:

var f; // declares var f, but does not assign it.

// name and define function f, shadowing the variable
function f() { 
  console.log("Me duplicate.");
}

// call the currently defined function f
f(); 

// assigns the result of a function expression to the var f,
// which shadows the hoisted function definition once past this point lexically
f = function() { 
  console.log("Me original."); 
}

// calls the function referenced by the var f
f();

*All JavaScript scope is lexical, or function, scope, but it seemed like it would just confuse things to use the f word at that point.

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