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I've run into the following code in the es-discuss mailing list:

Array.apply(null, { length: 5 }).map(Number.call, Number);

This produces

[0, 1, 2, 3, 4]

Why is this the result of the code? What's happening here?

share|improve this question
    
IMO Array.apply(null, Array(30)).map(Number.call, Number) is easier to read since it avoids pretending that a plain object is an Array. –  fncomp Sep 24 '13 at 22:45
6  
@fncomp Please don't use either to actually create a range. Not only is it slower than the straightforward approach - it's not nearly as easy to understand. It's hard to understand the syntax (well, really the API and not the syntax) here which makes this an interesting question but terrible production code IMO. –  Benjamin Gruenbaum Sep 25 '13 at 8:29
    
Yes, not suggesting anyone uses it, but thought it was still easier to read, relative to the object literal version. –  fncomp Sep 25 '13 at 17:46
    
I'm not sure why anyone would want to do this. The amount of time it takes to create the array this way could have been done in a slightly less sexy but much quicker way: jsperf.com/basic-vs-extreme –  Relic Oct 29 '13 at 18:42

4 Answers 4

up vote 171 down vote accepted
+1000

Understanding this "hack" requires understanding several things:

  1. Why we don't just do Array(5).map(...)
  2. How Function.prototype.apply handles arguments
  3. How Array handles multiple arguments
  4. How the Number function handles arguments
  5. What Function.prototype.call does

They're rather advanced topics in javascript, so this will be more-than-rather long. We'll start from the top. Buckle up!

1. Why not just Array(5).map?

What's an array, really? A regular object, containing integer keys, which map to values. It has other special features, for instance the magical length variable, but at it's core, it's a regular key => value map, just like any other object. Let's play with arrays a little, shall we?

var arr = ['a', 'b', 'c'];
arr.hasOwnProperty(0); //true
arr[0]; //'a'
Object.keys(arr); //['0', '1', '2']
arr.length; //3, implies arr[3] === undefined

//we expand the array by 1 item
arr.length = 4;
arr[3]; //undefined
arr.hasOwnProperty(3); //false
Object.keys(arr); //['0', '1', '2']

We get to the inherent difference between the number of items in the array, arr.length, and the number of key=>value mappings the array has, which can be different than arr.length.

Expanding the array via arr.length does not create any new key=>value mappings, so it's not that the array has undefined values, it does not have these keys. And what happens when you try to access a non-existent property? You get undefined.

Now we can lift our heads a little, and see why functions like arr.map don't walk over these properties. If arr[3] was merely undefined, and the key existed, all these array functions would just go over it like any other value:

//just to remind you
arr; //['a', 'b', 'c', undefined];
arr.length; //4
arr[4] = 'e';

arr; ['a', 'b', 'c', undefined, 'e'];
arr.length; //5
Object.keys(arr); //['0', '1', '2', '4']

arr.map(function (item) { return item.toUpperCase() });
//["A", "B", "C", undefined, "E"]

I intentionally used a method call to further prove the point that the key itself was never there: Calling undefined.toUpperCase would have raised an error, but it didn't. To prove that:

arr[5] = undefined;
arr; //["a", "b", "c", undefined, "e", undefined]
arr.hasOwnProperty(5); //true
arr.map(function (item) { return item.toUpperCase() });
//TypeError: Cannot call method 'toUpperCase' of undefined

And now we get to my point: How Array(N) does things. Section 15.4.2.2 describes the process. There's a bunch of mumbo jumbo we don't care about, but if you manage to read between the lines (or you can just trust me on this one, but don't), it basically boils down to this:

function Array(len) {
    var ret = [];
    ret.length = len;
    return ret;
}

(operates under the assumption (which is checked in the actual spec) that len is a valid uint32, and not just any number of value)

So now you can see why doing Array(5).map(...) wouldn't work - we don't define len items on the array, we don't create the key => value mappings, we simply alter the length property.

Now that we have that out of the way, let's look at the second magical thing:

2. How Function.prototype.apply works

What apply does is basically take an array, and unroll it as a function call's arguments. That means that the following are pretty much the same:

function foo (a, b, c) {
    return a + b + c;
}
foo(0, 1, 2); //3
foo.apply(null, [0, 1, 2]); //3

Now, we can ease the process of seeing how apply works by simply logging the arguments special variable:

function log () {
    console.log(arguments);
}

log.apply(null, ['mary', 'had', 'a', 'little', 'lamb']);
 //["mary", "had", "a", "little", "lamb"]

//arguments is a pseudo-array itself, so we can use it as well
(function () {
    log.apply(null, arguments);
})('mary', 'had', 'a', 'little', 'lamb');
 //["mary", "had", "a", "little", "lamb"]

//a NodeList, like the one returned from DOM methods, is also a pseudo-array
log.apply(null, document.getElementsByTagName('script'));
 //[script, script, script, script, script, script, script, script, script, script, script, script, script, script, script, script, script, script, script, script]

//carefully look at the following two
log.apply(null, Array(5));
//[undefined, undefined, undefined, undefined, undefined]
//note that the above are not undefined keys - but the value undefined itself!

log.apply(null, {length : 5});
//[undefined, undefined, undefined, undefined, undefined]

It's easy to prove my claim in the second-to-last example:

function ahaExclamationMark () {
    console.log(arguments.length);
    console.log(arguments.hasOwnProperty(0));
}

ahaExclamationMark.apply(null, Array(2)); //2, true

(yes, pun intended). The key => value mapping may not have existed in the array we passed over to apply, but it certainly exists in the arguments variable. It's the same reason the last example works: The keys do not exist on the object we pass, but they do exist in arguments.

Why is that? Let's look at Section 15.3.4.3, where Function.prototype.apply is defined. Mostly things we don't care about, but here's the interesting portion:

  1. Let len be the result of calling the [[Get]] internal method of argArray with argument "length".

Which basically means: argArray.length. The spec then proceeds to do a simple for loop over length items, making a list of corresponding values (list is some internal voodoo, but it's basically an array). In terms of very, very loose code:

Function.prototype.apply = function (thisArg, argArray) {
    var len = argArray.length,
        argList = [];

    for (var i = 0; i < len; i += 1) {
        argList[i] = argArray[i];
    }

    //yeah...
    superMagicalFunctionInvocation(this, thisArg, argList);
};

So all we need to mimic an argArray in this case is an object with a length property. And now we can see why the values are undefined, but the keys aren't, on arguments: We create the key=>value mappings.

Phew, so this might not have been shorter than the previous part. But there'll be cake when we finish, so be patient! However, after the following section (which'll be short, I promise) we can begin dissecting the expression. In case you forgot, the question was how does the following work:

Array.apply(null, { length: 5 }).map(Number.call, Number);

3. How Array handles multiple arguments

So! We saw what happens when you pass a length argument to Array, but in the expression, we pass several things as arguments (an array of 5 undefined, to be exact). Section 15.4.2.1 tells us what to do. The last paragraph is all that matters to us, and it's worded really oddly, but it kind of boils down to:

function Array () {
    var ret = [];
    ret.length = arguments.length;

    for (var i = 0; i < arguments.length; i += 1) {
        ret[i] = arguments[i];
    }

    return ret;
}

Array(0, 1, 2); //[0, 1, 2]
Array.apply(null, [0, 1, 2]); //[0, 1, 2]
Array.apply(null, Array(2)); //[undefined, undefined]
Array.apply(null, {length:2}); //[undefined, undefined]

Tada! We get an array of several undefined values, and we return an array of these undefined values.

The first part of the expression

Finally, we can decipher the following:

Array.apply(null, { length: 5 })

We saw that it returns an array containing 5 undefined values, with keys all in existence.

Now, to the second part of the expression:

[undefined, undefined, undefined, undefined, undefined].map(Number.call, Number)

This will be the easier, non-convoluted part, as it doesn't so much rely on obscure hacks.

4. How Number treats input

Doing Number(something) (section 15.7.1) converts something to a number, and that is all. How it does that is a bit convoluted, especially in the cases of strings, but the operation is defined in section 9.3 in case you're interested.

5. Games of Function.prototype.call

call is apply's brother, defined in section 15.3.4.4. Instead of taking an array of arguments, it just takes the arguments it received, and passes them forward.

Things get interesting when you chain more than one call together, crank the weird up to 11:

function log () {
    console.log(this, arguments);
}
log.call.call(log, {a:4}, {a:5});
//{a:4}, [{a:5}]
//^---^  ^-----^
// this   arguments

This is quite wtf worthy until you grasp what's going on. log.call is just a function, equivalent to any other function's call method, and as such, has a call method on itself as well:

log.call === log.call.call; //true
log.call === Function.call; //true

And what does call do? It accepts a thisArg and a bunch of arguments, and calls its parent function. We can define it via apply (again, very loose code, won't work):

Function.prototype.call = function (thisArg) {
    var args = arguments.slice(1); //I wish that'd work
    return this.apply(thisArg, args);
};

Let's track how this goes down:

log.call.call(log, {a:4}, {a:5});
  this = log.call
  thisArg = log
  args = [{a:4}, {a:5}]

  log.call.apply(log, [{a:4}, {a:5}])

    log.call({a:4}, {a:5})
      this = log
      thisArg = {a:4}
      args = [{a:5}]

      log.apply({a:4}, [{a:5}])

The later part, or the .map of it all

It's not over yet. Let's see what happens when you supply a function to most array methods:

function log () {
    console.log(this, arguments);
}

var arr = ['a', 'b', 'c'];
arr.forEach(log);
//window, ['a', 0, ['a', 'b', 'c']]
//window, ['b', 1, ['a', 'b', 'c']]
//window, ['c', 2, ['a', 'b', 'c']]
//^----^  ^-----------------------^
// this         arguments

If we don't provide a this argument ourselves, it defaults to window. Take note of the order in which the arguments are provided to our callback, and let's weird it up all the way to 11 again:

arr.forEach(log.call, log);
//'a', [0, ['a', 'b', 'c']]
//'b', [1, ['a', 'b', 'c']]
//'b', [2, ['a', 'b', 'c']]
// ^    ^

Whoa whoa whoa...let's back up a bit. What's going on here? We can see in section 15.4.4.18, where forEach is defined, the following pretty much happens:

var callback = log.call,
    thisArg = log;

for (var i = 0; i < arr.length; i += 1) {
    callback.call(thisArg, arr[i], i, arr);
}

So, we get this:

log.call.call(log, arr[i], i, arr);
//After one `.call`, it cascades to:
log.call(arr[i], i, arr);
//Further cascading to:
log(i, arr);

Now we can see how .map(Number.call, Number) works:

Number.call.call(Number, arr[i], i, arr);
Number.call(arr[i], i, arr);
Number(i, arr);

Which returns the transformation of i, the current index, to a number.

In conclusion,

The expression

Array.apply(null, { length: 5 }).map(Number.call, Number);

Works in two parts:

var arr = Array.apply(null, { length: 5 }); //1
arr.map(Number.call, Number); //2

The first part creates an array of 5 undefined items. The second goes over that array and takes its indices, resulting in an array of element indices:

[0, 1, 2, 3, 4]
share|improve this answer
    
Nice answer! Good read. –  Josh Crozier Sep 24 '13 at 23:41
14  
This is a fantastic answer, one of the best I've read on StackOverflow. Nice work! –  Daniel Lo Nigro Sep 25 '13 at 1:31
4  
@Geek We only pass one argument to apply, but that argument is "splatted" into two arguments passed to the function. You can see that more easily in the first apply examples. The first console.log then shows that indeed, we received two arguments (the two array items), and the second console.log shows that the array has a key=>value mapping in the 1st slot (as explained in the 1st part of the answer). –  Zirak Sep 25 '13 at 4:20
3  
Due to (some) request, you can now enjoy the audio version: dl.dropboxusercontent.com/u/24522528/SO-answer.mp3 –  Zirak Sep 27 '13 at 14:24
1  
Note that passing a NodeList, which is a host object, to a native method as in log.apply(null, document.getElementsByTagName('script')); is not required to work and does not work in some browsers, and [].slice.call(NodeList) to turn a NodeList into an array will not work in them either. –  RobG Oct 29 '13 at 13:15

disclaimer: This is a very formal description of the above code - this is how I know how to explain it.For a simpler answer - check Zirak's great answer above. This is more in depth spec in your face and less "aha".


Several things are happening here, let's break it up a bit.

var arr = Array.apply(null, { length: 5 }); // create an array of 5 `undefined` values

arr.map(Number.call, Number);// calculate and return a number based on the index passed

In the first line,the array constructor is called as a function with Function.prototype.apply.

  • The this value is null which does not matter for the Array constructor (this is the same this as in the context according to 15.3.4.3.2.a.
  • Then new Array is called being passed an object with a length property - that causes that object to be array like for all it matters to .apply because of the following clause in .apply:
    • Let len be the result of calling the [[Get]] internal method of argArray with argument "length".
  • As such, .apply is passing arguments from 0 to .length , since calling [[Get]] on { length: 5 } with the values 0 to 4 yields undefined the array constructor is called with 5 arguments whose value is undefined (getting an undeclared property of an object).
  • The array constructor is called with 0,2 or more arguments. The length property of the newly constructed array is set to the number of arguments according to the spec and the values to the same values.
  • Thus var arr = Array.apply(null, { length: 5 }); creates a list of 5 undefined values.

Note: Notice the difference here between Array.apply(0,{length: 5}) and Array(5), the first creating 5 times the primitive value type undefined and the latter creating an empty array of length 5. Specifically, because of .map's behavior (8.b) and specifically [[HasProperty] .

So the code above in a complaint specification is the same as:

var arr = [undefined, undefined, undefined, undefined, undefined];
arr.map(Number.call, Number);// calculate and return a number based on the index passed

Now off to the second part.

  • Array.prototype.map calls the callback function (in this case Number.call) on each element of the array and uses the specified this value (in this case setting the this value to `Number).
  • The second parameter of the callback in map (in this case Number.call) is the index, the first is the this value.
  • This means that Number is called with this as undefined (the array value) and the index as the parameter. So it's basically the same as mapping each undefined to its array index (since calling Number performs type conversion, in this case from number to number not changing the index).

Thus, the code above takes the 5 undefined values and maps each to its index in the array.

Which is why we get the result to our code.

share|improve this answer
1  
For docs: Specification for how map works: es5.github.io/#x15.4.4.19, Mozilla has a sample script that functions according to that specification at developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… –  Patrick Evans Sep 22 '13 at 19:52
1  
But why does it only work with Array.apply(null, { length: 2 }) and not Array.apply(null, [2]) which would also call the Array constructor passing 2 as the length value? fiddle –  Andreas Sep 22 '13 at 19:58
    
@Andreas Array.apply(null,[2]) is like Array(2) which creates an empty array of length 2 and not an array containing the primitive value undefined two times. See my most recent edit in the note after the first part, let me know if it's clear enough and if not I'll clarify on that. –  Benjamin Gruenbaum Sep 22 '13 at 20:00
    
I haven't understood the way it works on the first run... After the second reading it makes sense. {length: 2} fakes an array with two elements which the Array constructor would insert into the newly created array. As there is no real array accessing the not present elements yields undefined which is then inserted. Nice trick :) –  Andreas Sep 22 '13 at 20:29

As you said, the first part:

var arr = Array.apply(null, { length: 5 }); 

creates an array of 5 undefined values.

The second part is calling the map function of the array which takes 2 arguments and returns a new array of the same size.

The first argument which map takes is actually a function to apply on each element in the array, it is expected to be a function which takes 3 arguments and returns a value. For example:

function foo(a,b,c){
    ...
    return ...
}

if we pass the function foo as the first argument it will be called for each element with

  • a as the value of the current iterated element
  • b as the index of the current iterated element
  • c as the whole original array

The second argument which map takes is being passed to the function which you pass as the first argument. But it would not be a, b, nor c in case of foo, it would be this.

Two examples:

function bar(a,b,c){
    return this
}
var arr2 = [3,4,5]
var newArr2 = arr2.map(bar, 9);
//newArr2 is equal to [9,9,9]

function baz(a,b,c){
    return b
}
var newArr3 = arr2.map(baz,9);
//newArr3 is equal to [0,1,2]

and another one just to make it clearer:

function qux(a,b,c){
    return a
}
var newArr4 = arr2.map(qux,9);
//newArr4 is equal to [3,4,5]

So what about Number.call ?

Number.call is a function that takes 2 arguments, and tries to parse the second argument to a number (I'm not sure what it does with the first argument).

Since the second argument that map is passing is the index, the value that will be placed in the new array at that index is equal to the index. Just like the function baz in the example above. Number.call will try to parse the index - it will naturally return the same value.

The second argument you passed to the map function in your code doesn't actually have an effect on the result. Correct me if I'm wrong, please.

share|improve this answer
1  
Number.call is no special function that parses arguments to numbers. It is just === Function.prototype.call. Only the second argument, the function that gets passed as the this-value to call, is relevant - .map(eval.call, Number), .map(String.call, Number) and .map(Function.prototype.call, Number) are all equivalent. –  Bergi Sep 22 '13 at 21:35

An array is simply an object comprising the 'length' field and some methods (e.g. push). So arr in var arr = { length: 5} is basically the same as an array where the fields 0..4 have the default value which is undefined (i.e. arr[0] === undefined yields true).
As for the second part, map, as the name implies, maps from one array to a new one. It does so by traversing through the original array and invoking the mapping-function on each item.

All that's left is to convince you that the result of mapping-function is the index. The trick is to use the method named 'call'(*) which invokes a function with the small exception that the first param is set to be the 'this' context, and the second becomes the first param (and so on). Coincidentally, when the mapping-function is invoked, the second param is the index.

Last but not least, the method which is invoked is the Number "Class", and as we know in JS, a "Class" is simply a function, and this one (Number) expects the first param to be the value.

(*) found in Function's prototype (and Number is a function).

MASHAL

share|improve this answer
1  
There's a huge difference between [undefined, undefined, undefined, …] and new Array(n) or {length: n} - the latter ones are sparse, i.e. they have no elements. This is very relevant for map, and that's why the odd Array.apply was used. –  Bergi Sep 22 '13 at 22:33

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