906

I'm looking for any alternatives to the below for creating a JavaScript array containing 1 through to N where N is only known at runtime.

var foo = [];

for (var i = 1; i <= N; i++) {
   foo.push(i);
}

To me it feels like there should be a way of doing this without the loop.

  • 187
    After reading this entire page, I have come to the conclusion that your own simple for-loop is the simplest, most readable, and least error-prone. – Kokodoko May 8 '14 at 16:09
  • If anyone needs something more advanced, I created a node.js lib that does this for numbers, letters, negative/positive ranges, etc. github.com/jonschlinkert/fill-range. It's used in github.com/jonschlinkert/braces for brace expansion and github.com/jonschlinkert/micromatch for glob patterns – jonschlinkert Jun 9 '15 at 5:21
  • 1
    You should edit to say "How to create an array of length N" instead of "... containing 1...N", the latter implies there will be elements with values of 1 to N – Steven Landow Oct 9 '15 at 23:29
  • 3
    @StevenLandow why should OP rename? He wants an array with values 1 ... N? – Andre Elrico Nov 19 '18 at 8:54
  • Good question, good title, (kinda) silly answers. – Bitterblue Mar 27 at 17:11

57 Answers 57

300

If I get what you are after, you want an array of numbers 1..n that you can later loop through.

If this is all you need, can you do this instead?

var foo = new Array(45); // create an empty array with length 45

then when you want to use it... (un-optimized, just for example)

for(var i = 0; i < foo.length; i++){
  document.write('Item: ' + (i + 1) + ' of ' + foo.length + '<br/>'); 
}

e.g. if you don't need to store anything in the array, you just need a container of the right length that you can iterate over... this might be easier.

See it in action here: http://jsfiddle.net/3kcvm/

  • 3
    impressed you managed to phrase my question better than I could, you are indeed correct as on reflection all I need is an array of numbers that I can later loop through :) Thanks for your answer. – Godders Sep 19 '10 at 18:08
  • 119
    @Godders: If this is what you're looking for, why do you need an array? A simple var n = 45; and then looping from 1..n would do. – casablanca Sep 19 '10 at 18:33
  • 3
    @Godders - To note, if you want to decrease the size of the array after it is created to length M, simply use foo.length = M --- The cut off info is lost. See it in action ==> jsfiddle.net/ACMXp – Peter Ajtai Sep 20 '10 at 2:11
  • 20
    I really dont get why this answer even have upvotes... especially when the OP himself agrees it doesn't make any sense in a few comments above since he could just have done var n = 45;. – plalx Nov 4 '13 at 14:39
  • 58
    @scunliffe: Please note, that new Array(45); does not "create a 45 element array" (in same meaning as [undefined,undefined,..undefined] does). It rather "creates empty array with length = 45" ([undefined x 45]), same as var foo = []; foo.length=45;. That's why forEach, and map will not apply in this case. – tomalec Jan 24 '14 at 14:00
896

In ES6 using Array from() and keys() methods.

Array.from(Array(10).keys())
//=> [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]

Shorter version using spread operator.

[...Array(10).keys()]
//=> [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]
  • 50
    Just a note, this will always start at 0. Will need to chain a map to the array to adjust the values ([...Array(10).keys()].map(x => x++);) to start at 1 – Sterling Archer Dec 29 '15 at 21:42
  • 23
    Just change map(x => x++) to map(x => ++x) due to precedence increment happens after the value return :) – Brock Feb 12 '16 at 9:39
  • 70
    Er what!? Why map when you can simply slice? [...Array(N+1).keys()].slice(1) – Robin Apr 24 '16 at 19:51
  • 16
    Or don't use keys and only 1 map -> Array.from(Array(10)).map((e,i)=>i+1) – yonatanmn Jun 29 '16 at 14:03
  • 40
    Or don't use keys and map and just pass a mapping function to from Array.from(Array(10), (e,i)=>i+1) – Fabio Antunes Feb 21 '17 at 13:10
821

You can do so:

var N = 10; 
Array.apply(null, {length: N}).map(Number.call, Number)

result: [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]

or with random values:

Array.apply(null, {length: N}).map(Function.call, Math.random)

result: [0.7082694901619107, 0.9572225909214467, 0.8586748542729765, 0.8653848143294454, 0.008339877473190427, 0.9911756622605026, 0.8133423360995948, 0.8377588465809822, 0.5577575915958732, 0.16363654541783035]

Explanation

First, note that Number.call(undefined, N) is equivalent to Number(N), which just returns N. We'll use that fact later.

Array.apply(null, [undefined, undefined, undefined]) is equivalent to Array(undefined, undefined, undefined), which produces a three-element array and assigns undefined to each element.

How can you generalize that to N elements? Consider how Array() works, which goes something like this:

function Array() {
    if ( arguments.length == 1 &&
         'number' === typeof arguments[0] &&
         arguments[0] >= 0 && arguments &&
         arguments[0] < 1 << 32 ) {
        return [ … ];  // array of length arguments[0], generated by native code
    }
    var a = [];
    for (var i = 0; i < arguments.length; i++) {
        a.push(arguments[i]);
    }
    return a;
}

Since ECMAScript 5, Function.prototype.apply(thisArg, argsArray) also accepts a duck-typed array-like object as its second parameter. If we invoke Array.apply(null, { length: N }), then it will execute

function Array() {
    var a = [];
    for (var i = 0; i < /* arguments.length = */ N; i++) {
        a.push(/* arguments[i] = */ undefined);
    }
    return a;
}

Now we have an N-element array, with each element set to undefined. When we call .map(callback, thisArg) on it, each element will be set to the result of callback.call(thisArg, element, index, array). Therefore, [undefined, undefined, …, undefined].map(Number.call, Number) would map each element to (Number.call).call(Number, undefined, index, array), which is the same as Number.call(undefined, index, array), which, as we observed earlier, evaluates to index. That completes the array whose elements are the same as their index.

Why go through the trouble of Array.apply(null, {length: N}) instead of just Array(N)? After all, both expressions would result an an N-element array of undefined elements. The difference is that in the former expression, each element is explicitly set to undefined, whereas in the latter, each element was never set. According to the documentation of .map():

callback is invoked only for indexes of the array which have assigned values; it is not invoked for indexes which have been deleted or which have never been assigned values.

Therefore, Array(N) is insufficient; Array(N).map(Number.call, Number) would result in an uninitialized array of length N.

Compatibility

Since this technique relies on behaviour of Function.prototype.apply() specified in ECMAScript 5, it will not work in pre-ECMAScript 5 browsers such as Chrome 14 and Internet Explorer 9.

  • 59
    +1 for cleverness but please note this is orders of magnitude SLOWER than a primitive for loop: jsperf.com/array-magic-vs-for – warpech Jan 24 '14 at 13:59
  • 7
    Very clever -- probably too so. Exploiting the fact that Function.prototype.call's first param is the this object to map directly over Array.prototype.map's iterator parameter has a certain brilliance to it. – Noah Freitas Aug 17 '14 at 22:46
  • 13
    This is really, really clever (borders on abusing JS). The really important insight here is the idiosyncrasy of map on unassigned values, in my opinion. Another version (and possibly slightly clearer, albeit longer) is: Array.apply(null, { length: N }).map(function(element, index) { return index; }) – Ben Reich Oct 22 '14 at 14:23
  • 6
    @BenReich Even better (in terms of JS abuse levels): Array.apply(null, new Array(N)).map(function(_,i) { return i; }) or, in case of es6 and arrow functions, even shorter: Array.apply(null, new Array(N)).map((_,i) => i) – oddy Nov 25 '14 at 0:07
  • 1
    IF this returns an array that starts at 1, it would actually answer the OP's question – Hai Phan May 17 '17 at 3:59
347

Simple & Brief way in ES6:

Array.from({length: 5}, (v, k) => k+1); 
// [1,2,3,4,5]

Thus :

    Array.from({length: N}, (v, k) => k+1);  
   // [1,2,3,...,N]

Since the array is initialized with undefined on each position, the value of v will be undefined

const range = (N) => Array.from({length: N}, (v, k) => k+1) ;

console.log(
  range(5)
)

  • 24
    Best answer IMHO. See also developer.mozilla.org/de/docs/Web/JavaScript/Reference/… – le_m Jul 9 '16 at 22:59
  • 5
    Use k++ for arrays starting at 0 – Borgboy Mar 15 '17 at 1:55
  • 7
    @Borgboy ...or just return k? – kbtzr Dec 5 '17 at 19:37
  • 1
    If you want to increment, don't use k++, use ++k. – Alex Feb 13 '18 at 18:42
  • 3
    Beware Array.from is not supported in IE, unless you're poly-filling it. – Lauren May 4 '18 at 21:30
181

Arrays innately manage their lengths. As they are traversed, their indexes can be held in memory and referenced at that point. If a random index needs to be known, the indexOf method can be used.


This said, for your needs you may just want to declare an array of a certain size:

var foo = new Array(N);   // where N is a positive integer

/* this will create an array of size, N, primarily for memory allocation, 
   but does not create any defined values

   foo.length                                // size of Array
   foo[ Math.floor(foo.length/2) ] = 'value' // places value in the middle of the array
*/


ES6

Spread

Making use of the spread operator (...) and keys method, enables you to create a temporary array of size N to produce the indexes, and then a new array that can be assigned to your variable:

var foo = [ ...Array(N).keys() ];

Fill/Map

You can first create the size of the array you need, fill it with undefined and then create a new array using map, which sets each element to the index.

var foo = Array(N).fill().map((v,i)=>i);

Array.from

This should be initializing to length of size N and populating the array in one pass.

Array.from({ length: N }, (v, i) => i)
  • I believe this is useful when the array of numbers is being used for data that cannot be processed at the receiving end. (Like an HTML template that is just replacing values.) – Neil Monroe Aug 22 '12 at 15:01
  • Why someone would do this is to have an array of numbers to populate a dropdown list, giving the user a choice from 1 to 10. A small array by hand [1,2,3...10] make sense, but what if it's from 1 to 50? What if the end number changes? – CigarDoug Oct 23 '18 at 20:33
  • @CigarDoug I don’t doubt there is a usecase, but my guess it is small. Why would an array of numbers be needed, usually when iterating over an array an index would be used as part of the loop construct — either as an argument to the looping body function, or a counter variable — so holding the array of numbers seems trivial to just creating an array of specified width, or just a variable that holds the upper bound of the array. I can think of a few use cases, but none of those had been expressed by the OP – vol7ron Oct 23 '18 at 21:19
  • 4
    Like I said, I need to populate a dropdown with the numbers 1 through 10. That's all. There IS a usecase, MY usecase. That's how I found this page. So just building an array by hand was less complicated than anything I saw here. So my requirements aren't the requirements of the OP. But I have my answer. – CigarDoug Oct 24 '18 at 11:24
  • 1
    @vol7ron There is a usecase, I also have one. In angular, in paging, I want to show the pages in the footer that are clickable. So I loop the elements in a view with *ngFor="let p of pagesCounter". You have a better solution for that? BTW, check out stackoverflow.com/questions/36354325/… – Dalibor Mar 30 at 8:47
179

In ES6 you can do:

Array(N).fill().map((e,i)=>i+1);

http://jsbin.com/molabiluwa/edit?js,console

Edit: Changed Array(45) to Array(N) since you've updated the question.

console.log(
  Array(45).fill(0).map((e,i)=>i+1)
);

  • 3
    +1 because it's a whole big O better than the nasty .join.splitversion - but I still think the humble loop is better. – Robin Apr 24 '16 at 19:33
  • I agree @Robin - Algorithmic complexity aside, the humble loop is always more readable. However, with the advent of lambdas in Java, I think map will soon become a standard for things like this. – Nate Apr 24 '16 at 19:37
  • 4
    const gen = N => [...(function*(){let i=0;while(i<N)yield i++})()] – Robin Apr 24 '16 at 21:26
  • 8
    I don't understand why .fill() is necessary. I see that it is when I test on node's repl, but since Array(1)[0] === undefined, what difference does the call to fill() in Array(1).fill(undefined) make? – Dominic Oct 14 '16 at 9:45
  • 10
    For anyone else who is interested, the difference between Array(N) and Array(N).fill() is explained well here – Dominic Oct 17 '16 at 8:59
103

Use the very popular Underscore _.range method

// _.range([start], stop, [step])

_.range(10); // => [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]
_.range(1, 11); // => [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
_.range(0, 30, 5); // => [0, 5, 10, 15, 20, 25]
_.range(0, -10, -1); //  => [0, -1, -2, -3, -4, -5, -6, -7, -8, -9]
_.range(0); // => []
63
function range(start, end) {
    var foo = [];
    for (var i = start; i <= end; i++) {
        foo.push(i);
    }
    return foo;
}

Then called by

var foo = range(1, 5);

There is no built-in way to do this in Javascript, but it's a perfectly valid utility function to create if you need to do it more than once.

Edit: In my opinion, the following is a better range function. Maybe just because I'm biased by LINQ, but I think it's more useful in more cases. Your mileage may vary.

function range(start, count) {
    if(arguments.length == 1) {
        count = start;
        start = 0;
    }

    var foo = [];
    for (var i = 0; i < count; i++) {
        foo.push(start + i);
    }
    return foo;
}
  • 2
    I like this. If you wanted to go the extra mile with it, you could declare it as Array.prototype.range = function(start, end) { ... };. Then, you can call range(x, y) on any Array object. – Zach Rattner Sep 19 '10 at 17:44
  • 8
    Rather make it a method of Array instead of Array.prototype as there is no reason (it might even be considered rather dumb) to have this method on every array. – adamse Sep 19 '10 at 17:47
  • 9
    Array.range(1, 5) would probably be more appropriate, but there is something kind of cool about writing [].range(1, 5). – MooGoo Sep 19 '10 at 17:54
  • "Rather make it a method of Array instead of Array.prototype" - What's the difference? You mean on a specific array only? – pilau Apr 11 '13 at 13:32
  • 3
    @pilau Just as adamse says, it looks weird. If it's on the prototype, you can say foo = [1, 2, 3]; bar = foo.range(0, 10);. But that's just...confusing. bar = Array.range(0, 10) is a lot more clear and explicit. The range has nothing to do with the instance, so there's no reason to make it an instance method. – Ian Henry Apr 11 '13 at 14:19
53

the fastest way to fill an Array in v8 is:

[...Array(5)].map((_,i) => i);

result will be: [0, 1, 2, 3, 4]

  • Worked for me! Definitely not what I expected... – Malachi Bazar Mar 23 at 15:29
  • is there a way to do it without the extra variable _ – bluejayke Mar 26 at 23:16
  • @bluejayke no :( – аlex dykyі Mar 27 at 10:50
  • harsh, do you know what the source code of .map is? I'm not sure if its any faster than a for loop, but if not then theoretically we can just defineProperty and make a new one – bluejayke Mar 27 at 10:54
43

You can use this:

new Array(/*any number which you want*/)
    .join().split(',')
    .map(function(item, index){ return ++index;})

for example

new Array(10)
    .join().split(',')
    .map(function(item, index){ return ++index;})

will create following array:

[1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
  • Also, why not new Array(10).join().split(',').map(function() {return ++arguments[1]});? – super Jan 3 '16 at 20:31
  • 1
    @Murplyx for some cases function with arguments inside will be not optimized by JS engine (true even for V8, see jsperf.com/arguments-vs-array-argument/2) – nktssh Jan 5 '16 at 21:25
  • 3
    This is an interesting solution but it's entirely impractical - having to parse the array 3 times (once to join, once to split, and once for the thing you actually want to do) is just not nice - I know they seem to have fallen out of favor for some reason, but it would be far better to simply use a good old fashioned loop! – Robin Apr 24 '16 at 19:29
41

This question has a lot of complicated answers, but a simple one-liner:

[...Array(255).keys()].map(x => x + 1)

Also, although the above is short (and neat) to write, I think the following is a bit faster (for a max length of:

127, Int8,

255, Uint8,

32,767, Int16,

65,535, Uint16,

2,147,483,647, Int32,

4,294,967,295, Uint32.

(based on the max integer values), also here's more on Typed Arrays):

(new Uint8Array(255)).map(($,i) => i + 1);

Although this solution is also not so ideal, because it creates two arrays, and uses the extra variable declaration "$" (not sure any way to get around that using this method). I think the following solution is the absolute fastest possible way to do this:

for(var i = 0, arr = new Uint8Array(255); i < arr.length; i++) arr[i] = i + 1;

Anytime after this statement is made, you can simple use the variable "arr" in the current scope;

If you want to make a simple function out of it (with some basic verification):

function range(min, max) {
    min = min && min.constructor == Number ? min : 0;
    !(max && max.constructor == Number && max > min) && // boolean statements can also be used with void return types, like a one-line if statement.
        ((max = min) & (min = 0));  //if there is a "max" argument specified, then first check if its a number and if its graeter than min: if so, stay the same; if not, then consider it as if there is no "max" in the first place, and "max" becomes "min" (and min becomes 0 by default)

    for(var i = 0, arr = new (
        max < 128 ? Int8Array : 
        max < 256 ? Uint8Array :
        max < 32768 ? Int16Array : 
        max < 65536 ? Uint16Array :
        max < 2147483648 ? Int32Array :
        max < 4294967296 ? Uint32Array : 
        Array
    )(max - min); i < arr.length; i++) arr[i] = i + min;
    return arr;
}



//and you can loop through it easily using array methods if you want
range(1,11).forEach(x => console.log(x));

//or if you're used to pythons `for...in` you can do a similar thing with `for...of` if you want the individual values:
for(i of range(2020,2025)) console.log(i);

//or if you really want to use `for..in`, you can, but then you will only be accessing the keys:

for(k in range(25,30)) console.log(k);

console.log(
    range(1,128).constructor.name,
    range(200).constructor.name,
    range(400,900).constructor.name,
    range(33333).constructor.name,
    range(823, 100000).constructor.name,
    range(10,4) // when the "min" argument is greater than the "max", then it just considers it as if there is no "max", and the new max becomes "min", and "min" becomes 0, as if "max" was never even written
);


so, with the above function, the above super-slow "simple one-liner" becomes the super-fast, even-shorter:

range(1,14000);
  • Upvote for the one-liner, nice and simple – JVG May 8 at 0:57
  • @JVG but not for the faster function? – bluejayke May 9 at 3:54
  • Exactly right. It's this simple one liner everyone is looking for! – supersan Jun 9 at 8:35
  • @supersan although its super slow :) – bluejayke Jun 12 at 18:44
  • Modern javascript with the new fill method: Array(255).fill(0,0,255) – cacoder Jun 22 at 18:29
39

If you happen to be using d3.js in your app as I am, D3 provides a helper function that does this for you.

So to get an array from 0 to 4, it's as easy as:

d3.range(5)
[0, 1, 2, 3, 4]

and to get an array from 1 to 5, as you were requesting:

d3.range(1, 5+1)
[1, 2, 3, 4, 5]

Check out this tutorial for more info.

  • This comment gave me the idea to look up the range() function in RamdaJS, which happens to be the JS library I'm working with on my current project. Perfect. – morphatic Dec 24 '15 at 5:34
39

ES6 this will do the trick:

[...Array(12).keys()]

check out the result:

[...Array(12).keys()].map(number => console.log(number))

  • 5
    actually, they asked for 1..N, not 0..N-1 – YakovL Mar 19 '18 at 12:26
  • 1
    yes, [...Array(N + 1).keys()].slice(1) will yield 1..N – David G Apr 11 '18 at 23:44
  • For some reason this solution dosen't works in the Production Version from Expo (react-native) App. [...Array(N + 1).keys()] this code returns a empty array, but just in the production mode, using the development mode works. – FabianoLothor Jun 2 '18 at 5:28
  • 2
    The .keys() answer was already given years ago and has 500+ upvotes. What does your answer add to it? – Dan Dascalescu Sep 13 '18 at 23:13
38

This is probably the fastest way to generate an array of numbers

Shortest

var a=[],b=N;while(b--)a[b]=b+1;

Inline

var arr=(function(a,b){while(a--)b[a]=a;return b})(10,[]);
//arr=[0,1,2,3,4,5,6,7,8,9]

If you want to start from 1

var arr=(function(a,b){while(a--)b[a]=a+1;return b})(10,[]);
//arr=[1,2,3,4,5,6,7,8,9,10]

Want a function?

function range(a,b,c){c=[];while(a--)c[a]=a+b;return c}; //length,start,placeholder
var arr=range(10,5);
//arr=[5,6,7,8,9,10,11,12,13,14]

WHY?

  1. while is the fastest loop

  2. Direct setting is faster than push

  3. [] is faster than new Array(10)

  4. it's short... look the first code. then look at all other functions in here.

If you like can't live without for

for(var a=[],b=7;b>0;a[--b]=b+1); //a=[1,2,3,4,5,6,7]

or

for(var a=[],b=7;b--;a[b]=b+1); //a=[1,2,3,4,5,6,7]
  • 6
    It would be better to back up these claims with benchmarks. Try jsperf.com. – Matt Ball Aug 21 '13 at 13:58
  • 2
    lol jsperf... pls Matt just beacuse you don't like my answer stop downvoting my others ... stackoverflow.com/a/18344296/2450730 ... use console.time() or how it's called ... NOT jsperf. – cocco Aug 21 '13 at 14:00
  • 4
    FYI: As John Reisig first published a few years ago - on some platforms (meaning windows:P) time is being fed to the browser once every 16ms. Also there are other problems with measuring time of execution in multitasking environments. jsperf.com has implemented running the tests so that they are statistically correct. It's ok to run console.time() to get an intuition, but for a proof, you need jsperf.com AND it shows you cross-browser results from other people (different hardware etc) – naugtur Sep 14 '13 at 8:58
  • 3
    @cocco this is incorrect: var a=[],b=N;while(b--){a[b]=a+1}; – vintagexav May 15 '15 at 23:28
  • 5
    @cocco— while isn't always faster than other loops. In some browsers, a decrementing while loop is much slower than a for loop, you can't make general statements about javascript performance like that because there are so many implementations with so many different optimisations. However, in general I like your approach. ;-) – RobG Aug 9 '15 at 23:57
38

Using ES2015/ES6 spread operator

[...Array(10)].map((_, i) => i + 1)

console.log([...Array(10)].map((_, i) => i + 1))

  • 6
    i + 1 would make more sense than ++i. – Vincent Cantin May 29 '17 at 7:38
30

If you are using lodash, you can use _.range:

_.range([start=0], end, [step=1])

Creates an array of numbers (positive and/or negative) progressing from start up to, but not including, end. A step of -1 is used if a negative start is specified without an end or step. If end is not specified, it's set to start with start then set to 0.

Examples:

_.range(4);
// ➜ [0, 1, 2, 3]

_.range(-4);
// ➜ [0, -1, -2, -3]

_.range(1, 5);
// ➜ [1, 2, 3, 4]

_.range(0, 20, 5);
// ➜ [0, 5, 10, 15]

_.range(0, -4, -1);
// ➜ [0, -1, -2, -3]

_.range(1, 4, 0);
// ➜ [1, 1, 1]

_.range(0);
// ➜ []
30

the new way to filling Array is:

const array = [...Array(5).keys()]
console.log(array)

result will be: [0, 1, 2, 3, 4]

  • This s a really good answer, although tecnically the question was from 1-N, not 0-(N-1) – bluejayke Mar 10 at 3:41
25

Final Summary report .. Drrruummm Rolll -

This is the shortest code to generate an Array of size N (here 10) without using ES6. Cocco's version above is close but not the shortest.

(function(n){for(a=[];n--;a[n]=n+1);return a})(10)

But the undisputed winner of this Code golf(competition to solve a particular problem in the fewest bytes of source code) is Niko Ruotsalainen . Using Array Constructor and ES6 spread operator . (Most of the ES6 syntax is valid typeScript, but following is not. So be judicious while using it)

[...Array(10).keys()]
  • Why down vote ? Long answer list hard to follow , so thought of summarizing . – sapy Feb 28 '16 at 5:15
  • isn't this 0-10? [...Array(10).keys()] – Greg May 25 '16 at 18:19
  • Webstorm suggests (new Array(10)).keys(), is it right? – Guy Jul 15 '16 at 9:09
  • (new Array(10)).keys() , returns ArrayIterator {} , not the array – sapy Jul 15 '16 at 19:34
  • This creates a global variable a. The loop should be for(var a=[];n--;a[n]=n+1) – kube Aug 4 '16 at 17:09
18

There is another way in ES6, using Array.from which takes 2 arguments, the first is an arrayLike (in this case an object with length property), and the second is a mapping function (in this case we map the item to its index)

Array.from({length:10}, (v,i) => i)

this is shorter and can be used for other sequences like generating even numbers

Array.from({length:10}, (v,i) => i*2)

Also this has better performance than most other ways because it only loops once through the array. Check the snippit for some comparisons

// open the dev console to see results

count = 100000

console.time("from object")
for (let i = 0; i<count; i++) {
  range = Array.from({length:10}, (v,i) => i )
}
console.timeEnd("from object")

console.time("from keys")
for (let i =0; i<count; i++) {
  range = Array.from(Array(10).keys())
}
console.timeEnd("from keys")

console.time("apply")
for (let i = 0; i<count; i++) {
  range = Array.apply(null, { length: 10 }).map(function(element, index) { return index; })
}
console.timeEnd("apply")

  • Hey that's neat, I like it. However it doesn't return the results OP expects. To do that it would need to be written as Array.from({length:N}, (v,i) => i+1) – CervEd Oct 22 '16 at 11:17
  • These neato hacks are still 5-10x slower than a good old for loop. – Dan Dascalescu Sep 13 '18 at 23:22
13

Using new Array methods and => function syntax from ES6 standard (only Firefox at the time of writing).

By filling holes with undefined:

Array(N).fill().map((_, i) => i + 1);

Array.from turns "holes" into undefined so Array.map works as expected:

Array.from(Array(5)).map((_, i) => i + 1)
  • 7
    Similarly, you can also do the following in ES6: Array.from({length: N}, (v, k) => k). – XåpplI'-I0llwlg'I - Jun 8 '15 at 9:19
  • Xappli's approach is preferred: Array.from was created for almost this exact scenario, and it implies a mapping callback. It's an excellent solution to the general problem of wanting to use Array methods on something array-like, without resorting to verbose approaches like Array.prototype.map.call, e.g. for NodeLists returned from document.querySelectorAll. developer.mozilla.org/en/docs/Web/JavaScript/Reference/… – Josh from Qaribou Oct 16 '15 at 2:50
  • I'm weighing this vs the underscore range syntax, and range reads better. – ooolala Nov 6 '15 at 5:13
  • Technically it's not Array.from which turns the sparse values into undefined. Rather Array(5) is called as an arguments object which in turn interprets the sparse values as undefined values :) – CervEd Oct 22 '16 at 11:21
13
for(var i,a=[i=0];i<10;a[i++]=i);

a = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]

9

It seems the only flavor not currently in this rather complete list of answers is one featuring a generator; so to remedy that:

const gen = N => [...(function*(){let i=0;while(i<N)yield i++})()]

which can be used thus:

gen(4) // [0,1,2,3]

The nice thing about this is you don't just have to increment... To take inspiration from the answer @igor-shubin gave, you could create an array of randoms very easily:

const gen = N => [...(function*(){let i=0;
  while(i++<N) yield Math.random()
})()]

And rather than something lengthy operationally expensive like:

const slow = N => new Array(N).join().split(',').map((e,i)=>i*5)
// [0,5,10,15,...]

you could instead do:

const fast = N => [...(function*(){let i=0;while(i++<N)yield i*5})()]
9

A little bit simpler than the string variant:

// create range by N
Array(N).join(0).split(0);

// create a range starting with 0 as the value
Array(7).join(0).split(0).map((v, i) => i + 1) // [1, 2, 3, 4, 5, 6, 7]

Update (1/4/2018): Updated to address the exact OP question. Thanks @lessless for calling this out!

  • how to make it starting from 1? – lessless Mar 27 '15 at 6:42
  • @lessless you'll have to modify the Map: Array(7).join(0).split(0).map(function (v, i) {return i + 1}); – Matt Lo Mar 29 '15 at 17:13
8

Just another ES6 version.

By making use of Array.from second optional argument:

Array.from(arrayLike[, mapFn[, thisArg]])

We can build the numbered array from the empty Array(10) positions:

Array.from(Array(10), (_, i) => i)

var arr = Array.from(Array(10), (_, i) => i);
document.write(arr);

  • This is more complicated and ~10x slower than [...Array(11).keys()].slice(1). – Dan Dascalescu Sep 13 '18 at 23:27
8

Iterable version using a generator function that doesn't modify Number.prototype.

function sequence(max, step = 1) {
  return {
    [Symbol.iterator]: function* () {
      for (let i = 1; i <= max; i += step) yield i
    }
  }
}

console.log([...sequence(10)])

7

The following function returns an array populated with numbers:

var createArrayOfNumbers = function (n) {
    return Array.apply(null, new Array(n)).map(function (empty, index) {
        return index;
    });
};

Note that an array created with the array constructor consists of holes, so it cannot be traversed with array functions like map. Hence using the Array.apply function.

7

Using ES6

const generateArray = n => [...Array(n)].map((_, index) => index + 1);
  • Thanks! This was the most elegant answer in my opinion! One could also use Array.from(Array(n)) if the spread operator is not supported. – Amit Oct 8 '17 at 8:36
  • At first I didn't know why you had to use the spread operator, but then I read the following about map on MDN: "It is not called for missing elements of the array (that is, indexes that have never been set, which have been deleted or which have never been assigned a value)." – battmanz Feb 9 '18 at 19:06
7

Object.keys(Array.apply(0, Array(3))).map(Number)

Returns [0, 1, 2]. Very similar to Igor Shubin's excellent answer, but with slightly less trickery (and one character longer).

Explanation:

  • Array(3) // [undefined × 3] Generate an array of length n=3. Unfortunately this array is almost useless to us, so we have to…
  • Array.apply(0,Array(3)) // [undefined, undefined, undefined] make the array iterable. Note: null's more common as apply's first arg but 0's shorter.
  • Object.keys(Array.apply(0,Array(3))) // ['0', '1', '2'] then get the keys of the array (works because Arrays are the typeof array is an object with indexes for keys.
  • Object.keys(Array.apply(0,Array(3))).map(Number) // [0, 1, 2] and map over the keys, converting strings to numbers.
7

You can use a function generator or function* expression. Here's [https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Operators/function] And a reference to the function generator link to [https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Statements/function].

let a = 1, b = 10;

function* range(a, b) { for (var i = a; i <= b; ++i) yield i; }

Array.from(range(a, b)); // [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]

[...range(a, b)] // [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]

7

Try this:

var foo = [1, 2, 3, 4, 5];

If you are using CoffeeScript, you can create a range by doing:

var foo = [1..5]; 

Otherwise, if you are using vanilla JavaScript, you'll have to use a loop if you want to initialize an array up to a variable length.

  • 1
    +1 more clarity than other answers, also includes "why" – Nader Shirazie Sep 19 '10 at 17:42
  • 3
    This answer is unfortunately not valid anymore since the OP updated his question. – BalusC Sep 19 '10 at 17:46
  • 9
    please don't give code examples of non existing commands – Uri Oct 14 '15 at 12:51
  • If you can use coffeescript, you can specify a range to quickly create arrays with n elements. For example: arr = [1..10] will produce arr = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10] – Rui Nunes Mar 30 '16 at 8:55

protected by Tushar Gupta - curioustushar Oct 6 '14 at 14:03

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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