656

In PHP, you can do...

range(1, 3); // Array(1, 2, 3)
range("A", "C"); // Array("A", "B", "C")

That is, there is a function that lets you get a range of numbers or characters by passing the upper and lower bounds.

Is there anything built-in to JavaScript natively for this? If not, how would I implement it?

  • 1
    Prototype.js has the $R function, but other than that I don't really think so. – Yi Jiang Oct 9 '10 at 2:42
  • This (related) question has some excellent answers: stackoverflow.com/questions/6299500/… – btk Feb 25 '15 at 14:47
  • Array.from("ABC") //['A', 'B', 'C'] This is the closest thing I can find for the second part of the question. – Andrew_1510 May 16 '16 at 1:51
  • @Andrew_1510 You could use split("") there also – alex May 22 '16 at 17:46
  • When lover bound is zero this oneliner: Array.apply(null, { length: 10 }).map(eval.call, Number) – csharpfolk Jul 25 '16 at 16:32

51 Answers 51

1062

Numbers

[...Array(5).keys()];
 => [0, 1, 2, 3, 4]

Character iteration

String.fromCharCode(...[...Array('D'.charCodeAt(0) - 'A'.charCodeAt(0) + 1).keys()].map(i => i + 'A'.charCodeAt(0)));
 => "ABCD"

Iteration

for (const x of Array(5).keys()) {
  console.log(x, String.fromCharCode('A'.charCodeAt(0) + x));
}
 => 0,"A" 1,"B" 2,"C" 3,"D" 4,"E"

As functions

function range(size, startAt = 0) {
    return [...Array(size).keys()].map(i => i + startAt);
}

function characterRange(startChar, endChar) {
    return String.fromCharCode(...range(endChar.charCodeAt(0) -
            startChar.charCodeAt(0), startChar.charCodeAt(0)))
}

As typed functions

function range(size:number, startAt:number = 0):ReadonlyArray<number> {
    return [...Array(size).keys()].map(i => i + startAt);
}

function characterRange(startChar:string, endChar:string):ReadonlyArray<string> {
    return String.fromCharCode(...range(endChar.charCodeAt(0) -
            startChar.charCodeAt(0), startChar.charCodeAt(0)))
}

lodash.js _.range() function

_.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]
String.fromCharCode(..._.range('A'.charCodeAt(0), 'D'.charCodeAt(0) + 1));
 => "ABCD"

Old non es6 browsers without a library:

Array.apply(null, Array(5)).map(function (_, i) {return i;});
 => [0, 1, 2, 3, 4]

console.log([...Array(5).keys()]);

Thanks.

(ES6 credit to nils petersohn and other commenters)

  • 65
    Because if it's useful anywhere it is probably useful in JS. (JS can do functional programming type stuff, which can benefit from a range(0 statement. That and a thousand other reasons it might be useful in some semirare case) – Lodewijk May 18 '13 at 19:47
  • 4
    Any idea why simply using (new Array(5)).map(function (value, index) { return index; }) wouldn't work? This returns [undefined × 5] for me in Chrome DevTools. – Lewis Dec 15 '15 at 21:52
  • 10
    @Lewis Because an array defined with that has empty slots that won't be iterated over with map() or one of its friends. – alex Dec 15 '15 at 23:09
  • 57
    Array.from(Array(5).keys()) – nils petersohn Apr 15 '16 at 10:18
  • 12
    Array(5).fill() is also mappable – nils petersohn Mar 21 '17 at 12:54
272

For numbers you can use ES6 Array.from(), which works in everything these days except IE:

Shorter version:

Array.from({length: 20}, (x,i) => i);

Longer version:

Array.from(new Array(20), (x,i) => i)

which creates an array from 0 to 19 inclusive. This can be further shortened to one of these forms:

Array.from(Array(20).keys())
// or
[...Array(20).keys()]

Lower and upper bounds can be specified too, for example:

Array.from(new Array(20), (x,i) => i + *lowerBound*)

An article describing this in more detail: http://www.2ality.com/2014/05/es6-array-methods.html

  • 49
    The first example can even be simplified to [...Array(20).keys()] – Delapouite Nov 20 '15 at 17:39
  • 23
    Slightly more succinct than the Array.from() method, and faster than both: Array(20).fill().map((_, i) => i) – Stu Cox Feb 20 '16 at 8:34
  • 1
    @Delapouite Awesome! You should make that a separate answer, and I'll vote for it! It's also the perfect answer to this duplicate. – jib Apr 29 '16 at 23:12
  • 8
    @Delapouite @jib And this as well: Array.from({length: end - start}, (v, k) => k + start) – Aditya Singh May 15 '16 at 7:11
  • 1
    @icc97 Yes, linters may complain, although in JavaScript omitting a function argument defined to be the same as passing undefined, so fill() (with no argument) isn’t wrong per se. The fill value isn’t used in that solution, so if you like you could use fill(0) to save a few characters. – Stu Cox Jan 16 at 8:17
100

My new favorite form (ES2015)

Array(10).fill(1).map((x, y) => x + y)

And if you need a function with a step param:

const range = (start, stop, step = 1) =>
  Array(Math.ceil((stop - start) / step)).fill(start).map((x, y) => x + y * step)
  • 5
    let range = (start, stop, step=1) => Array(stop - start).fill(start).map((x, y) => x + y * step) – rodfersou Feb 25 '18 at 2:32
  • 4
    @rodfersou FYI: your example is wrong. stop is not actually the stop / end position but count / distance. (no offense, just to make people aware of the typo) – F Lekschas Jul 26 '18 at 2:45
  • 4
    For the confused - due to rodfersou's edit after F Lekschas' comment, his code is now correct. – eedrah Sep 13 '18 at 17:15
  • 1
    The argument you pass into Array(Math.ceil((stop - start) / step) + 1), needs the +1 at the end, to really mimic php's "inclusive" behaviour. – Johan Dettmar Oct 26 '18 at 8:16
  • 3
    This is the top answer that actually answers the full question of a Javascript function that fully implements a range method. All the others currently above this (except for lodash's _.range) implement basic iterators rather than an actual range function with start, stop and step – icc97 Jan 6 at 17:53
93

Here's my 2 cents:

function range(start, count) {
  return Array.apply(0, Array(count))
    .map((element, index) => index + start);
}
  • 1
    Excellent use of high order functions. – Farzad YZ May 18 '16 at 10:19
  • 4
    This is actually wrong because the question is asking for start & end values. Not start & count/distance. – James Robey Mar 31 '18 at 6:52
67

It works for characters and numbers, going forwards or backwards with an optional step.

var range = function(start, end, step) {
    var range = [];
    var typeofStart = typeof start;
    var typeofEnd = typeof end;

    if (step === 0) {
        throw TypeError("Step cannot be zero.");
    }

    if (typeofStart == "undefined" || typeofEnd == "undefined") {
        throw TypeError("Must pass start and end arguments.");
    } else if (typeofStart != typeofEnd) {
        throw TypeError("Start and end arguments must be of same type.");
    }

    typeof step == "undefined" && (step = 1);

    if (end < start) {
        step = -step;
    }

    if (typeofStart == "number") {

        while (step > 0 ? end >= start : end <= start) {
            range.push(start);
            start += step;
        }

    } else if (typeofStart == "string") {

        if (start.length != 1 || end.length != 1) {
            throw TypeError("Only strings with one character are supported.");
        }

        start = start.charCodeAt(0);
        end = end.charCodeAt(0);

        while (step > 0 ? end >= start : end <= start) {
            range.push(String.fromCharCode(start));
            start += step;
        }

    } else {
        throw TypeError("Only string and number types are supported");
    }

    return range;

}

jsFiddle.

If augmenting native types is your thing, then assign it to Array.range.

var range = function(start, end, step) {
    var range = [];
    var typeofStart = typeof start;
    var typeofEnd = typeof end;

    if (step === 0) {
        throw TypeError("Step cannot be zero.");
    }

    if (typeofStart == "undefined" || typeofEnd == "undefined") {
        throw TypeError("Must pass start and end arguments.");
    } else if (typeofStart != typeofEnd) {
        throw TypeError("Start and end arguments must be of same type.");
    }

    typeof step == "undefined" && (step = 1);

    if (end < start) {
        step = -step;
    }

    if (typeofStart == "number") {

        while (step > 0 ? end >= start : end <= start) {
            range.push(start);
            start += step;
        }

    } else if (typeofStart == "string") {

        if (start.length != 1 || end.length != 1) {
            throw TypeError("Only strings with one character are supported.");
        }

        start = start.charCodeAt(0);
        end = end.charCodeAt(0);

        while (step > 0 ? end >= start : end <= start) {
            range.push(String.fromCharCode(start));
            start += step;
        }

    } else {
        throw TypeError("Only string and number types are supported");
    }

    return range;

}

console.log(range("A", "Z", 1));
console.log(range("Z", "A", 1));
console.log(range("A", "Z", 3));


console.log(range(0, 25, 1));

console.log(range(0, 25, 5));
console.log(range(20, 5, 5));

41

Simple range function:

function range(start, stop, step) {
    var a = [start], b = start;
    while (b < stop) {
        a.push(b += step || 1);
    }
    return a;
}
  • 3
    PLUS UNO for usable and readable. Best code snippet I've seen in a long time. – monsto Dec 7 '15 at 17:26
  • 1
    This doesn't work when step != 1, the while condition needs to take step into account. My updated version with a default step value: function range(start, stop, step){ step = step || 1 var a=[start], b=start; while((b+step) < stop){ console.log("b: " + b + ". a: " + a + "."); b+=step; a.push(b); } return a; } – daveharris Oct 25 '17 at 21:51
  • @daveharris I added a default step above, (step || 1). – Mr. Polywhirl May 9 '18 at 14:57
34
Array.range= function(a, b, step){
    var A= [];
    if(typeof a== 'number'){
        A[0]= a;
        step= step || 1;
        while(a+step<= b){
            A[A.length]= a+= step;
        }
    }
    else{
        var s= 'abcdefghijklmnopqrstuvwxyz';
        if(a=== a.toUpperCase()){
            b=b.toUpperCase();
            s= s.toUpperCase();
        }
        s= s.substring(s.indexOf(a), s.indexOf(b)+ 1);
        A= s.split('');        
    }
    return A;
}


    Array.range(0,10);
    // [0,1,2,3,4,5,6,7,8,9,10]

    Array.range(-100,100,20);
    // [-100,-80,-60,-40,-20,0,20,40,60,80,100]

    Array.range('A','F');
    // ['A','B','C','D','E','F')

    Array.range('m','r');
    // ['m','n','o','p','q','r']
34

OK, in JavaScript we don't have a range() function like PHP, so we need to create the function which is quite easy thing, I write couple of one-line functions for you and separate them for Numbers and Alphabets as below:

for Numbers:

function numberRange (start, end) {
  return new Array(end - start).fill().map((d, i) => i + start);
}

and call it like:

numberRange(5, 10); //[5, 6, 7, 8, 9]

for Alphabets:

function alphabetRange (start, end) {
  return new Array(end.charCodeAt(0) - start.charCodeAt(0)).fill().map((d, i) => String.fromCharCode(i + start.charCodeAt(0)));
}

and call it like:

alphabetRange('c', 'h'); //["c", "d", "e", "f", "g"]
  • 2
    I think there are off-by-one errors in these functions. Should be Array(end - start + 1), and Array(end.charCodeAt(0) - start.charCodeAt(0) + 1). – earcanal Apr 5 '18 at 16:59
23

Handy function to do the trick, run the code snippet below

function range(start, end, step, offset) {
  
  var len = (Math.abs(end - start) + ((offset || 0) * 2)) / (step || 1) + 1;
  var direction = start < end ? 1 : -1;
  var startingPoint = start - (direction * (offset || 0));
  var stepSize = direction * (step || 1);
  
  return Array(len).fill(0).map(function(_, index) {
    return startingPoint + (stepSize * index);
  });
  
}

console.log('range(1, 5)=> ' + range(1, 5));
console.log('range(5, 1)=> ' + range(5, 1));
console.log('range(5, 5)=> ' + range(5, 5));
console.log('range(-5, 5)=> ' + range(-5, 5));
console.log('range(-10, 5, 5)=> ' + range(-10, 5, 5));
console.log('range(1, 5, 1, 2)=> ' + range(1, 5, 1, 2));

here is how to use it

range (Start, End, Step=1, Offset=0);

  • inclusive - forward range(5,10) // [5, 6, 7, 8, 9, 10]
  • inclusive - backward range(10,5) // [10, 9, 8, 7, 6, 5]
  • step - backward range(10,2,2) // [10, 8, 6, 4, 2]
  • exclusive - forward range(5,10,0,-1) // [6, 7, 8, 9] not 5,10 themselves
  • offset - expand range(5,10,0,1) // [4, 5, 6, 7, 8, 9, 10, 11]
  • offset - shrink range(5,10,0,-2) // [7, 8]
  • step - expand range(10,0,2,2) // [12, 10, 8, 6, 4, 2, 0, -2]

hope you find it useful.


And here is how it works.

Basically I'm first calculating the length of the resulting array and create a zero filled array to that length, then fill it with the needed values

  • (step || 1) => And others like this means use the value of step and if it was not provided use 1 instead
  • We start by calculating the length of the result array using (Math.abs(end - start) + ((offset || 0) * 2)) / (step || 1) + 1) to put it simpler (difference* offset in both direction/step)
  • After getting the length, then we create an empty array with initialized values using new Array(length).fill(0); check here
  • Now we have an array [0,0,0,..] to the length we want. We map over it and return a new array with the values we need by using Array.map(function() {})
  • var direction = start < end ? 1 : 0; Obviously if start is not smaller than the end we need to move backward. I mean going from 0 to 5 or vice versa
  • On every iteration, startingPoint + stepSize * index will gives us the value we need
  • 8
    Handy, most certainly. Simple? I beg to differ; regardless that you make it a one liner. Coming from Python this is a shock. – PascalVKooten Mar 2 '16 at 16:02
  • @PascalvKooten, yeah of course it would have been great if there was built-in method for that like python I guess, but this was the simplest one I could come by. And it has proven to be handy in my projects. – azerafati Mar 3 '16 at 7:02
  • 1
    I ended up using it anyway... – PascalVKooten Mar 3 '16 at 12:56
  • Posting a painfully complex code snippet like that, especially as a one-liner and with no explanation of how it works? Poor example of a good SO answer, regardless of whether or not it "works". – Madbreaks Dec 21 '16 at 19:34
  • 1
    @Madbreaks, yea you're right. I've been naive to make it a one liner. just wanted to give everyone a quick and easy solution – azerafati Dec 22 '16 at 7:16
22
var range = (l,r) => new Array(r - l).fill().map((_,k) => k + l);
  • What's the _? – nikk wong Apr 13 '16 at 18:41
  • @nikkwong, the _ is just a name of argument in the mapping callback. You know, in some languages you would use the _ as a name to point out that the variable is not used. – Artur Klesun Apr 13 '16 at 19:34
  • Here though, _ isn't passed through the arguments to range. Why not? – nikk wong Apr 13 '16 at 20:55
  • 2
    Very neat! Although, it's important to note it doesn't work on any IE or Opera. – Rafael Xavier May 22 '16 at 0:45
  • 4
    This answer needs explanation, as it stands its a poor fit for SO. – Madbreaks Dec 21 '16 at 19:57
16

Using Harmony spread operator and arrow functions:

var range = (start, end) => [...Array(end - start + 1)].map((_, i) => start + i);

Example:

range(10, 15);
[ 10, 11, 12, 13, 14, 15 ]
  • that's the best answer! – Henry H. Dec 20 '15 at 9:25
  • 1
    Not the fastest though. – mjwrazor May 9 '17 at 21:05
  • What does underscore '_' symbol represents in this case? – Oleh Berehovskyi Feb 27 at 9:24
  • @OlehBerehovskyi It means a lambda function parameter that you have no intent of actually using. A linter that warns about unused variables should ignore it. – Micah Zoltu Mar 16 at 6:23
16

The standard Javascript doesn't have a built-in function to generate ranges. Several javascript frameworks add support for such features, or as others have pointed out you can always roll your own.

If you'd like to double-check, the definitive resource is the ECMA-262 Standard.

  • While I'm sure a perfectly good answer in 2010, this should no longer be considered the best approach. You should not extend built in types, like Prototype.js tended to do 👍 – Dana Woodman Jul 19 '18 at 3:34
  • @DanaWoodman thanks for bringing this up - I've updated the answer to take out the reference to Prototype.js since that is indeed pretty much obsolete in 2018 – Mike Dinescu Jul 19 '18 at 5:39
  • 1
    Well this didn't help at all. – Pithikos Apr 1 at 19:09
  • @Pithikos I see this question has been edited since it was originally asked and the OP wanted to know if there is a native range function in JS. – Mike Dinescu Apr 3 at 2:57
13

Did some research on some various Range Functions. Checkout the jsperf comparison of the different ways to do these functions. Certainly not a perfect or exhaustive list, but should help :)

The Winner is...

function range(lowEnd,highEnd){
    var arr = [],
    c = highEnd - lowEnd + 1;
    while ( c-- ) {
        arr[c] = highEnd--
    }
    return arr;
}
range(0,31);

Technically its not the fastest on firefox, but crazy speed difference (imho) on chrome makes up for it.

Also interesting observation is how much faster chrome is with these array functions than firefox. Chrome is at least 4 or 5 times faster.

  • Note that this was compared against range functions that included a step size parameter – binaryfunt Aug 24 '17 at 13:01
12

You can use lodash or Undescore.js range:

var range = require('lodash/range')
range(10)
// -> [ 0, 1, 2, 3, 4, 5, 6, 7, 8, 9 ]

Alternatively, if you only need a consecutive range of integers you can do something like:

Array.apply(undefined, { length: 10 }).map(Number.call, Number)
// -> [ 0, 1, 2, 3, 4, 5, 6, 7, 8, 9 ]

In ES6 range can be implemented with generators:

function* range(start=0, end=null, step=1) {
  if (end == null) {
    end = start;
    start = 0;
  }

  for (let i=start; i < end; i+=step) {
    yield i;
  }
}

This implementation saves memory when iterating large sequences, because it doesn't have to materialize all values into an array:

for (let i of range(1, oneZillion)) {
  console.log(i);
}
  • The ES6 part is now the correct answer to this question. I would recommend removing the other parts, which are covered by other answers. – joews Nov 8 '15 at 15:24
  • generators are somewhat strange if used outside a loop though: x=range(1, 10);//{} x;//{}// looks like an empty map WTF!?! x.next().value;// OK 1 ;x[3] // undefined, only with real array – Anona112 Dec 8 '16 at 20:06
  • @Anona112 you can use Array.from to convert generators to array instances and inspect the output. – Paolo Moretti Dec 8 '16 at 21:43
10

An interesting challenge would be to write the shortest function to do this. Recursion to the rescue!

function r(a,b){return a>b?[]:[a].concat(r(++a,b))}

Tends to be slow on large ranges, but luckily quantum computers are just around the corner.

An added bonus is that it's obfuscatory. Because we all know how important it is to hide our code from prying eyes.

To truly and utterly obfuscate the function, do this:

function r(a,b){return (a<b?[a,b].concat(r(++a,--b)):a>b?[]:[a]).sort(function(a,b){return a-b})}
  • 4
    Short != simple, but simpler is better. Here's an easier to read version: const range = (a, b) => (a>=b) ? [] : [a, ...range(a+1, b)], using ES6 syntax – nafg Dec 26 '16 at 7:27
  • 1
    @nafg: const range = (a, b, Δ = 1) => (a > b) ? [] : [a, ...range(a + Δ, b, Δ)];. Also upvoting the whole answer for the comment. – 7vujy0f0hy Dec 29 '17 at 16:38
8

I would code something like this:

function range(start, end) {
    return Array(end-start).join(0).split(0).map(function(val, id) {return id+start});
}  

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

range(3,9);
// [3,4,5,6,7,8]

It behaves similarly to Python range:

>>> range(-4,2)
[-4, -3, -2, -1, 0, 1]
8

A rather minimalistic implementation that heavily employs ES6 can be created as follows, drawing particular attention to the Array.from() static method:

const getRange = (start, stop) => Array.from(
  new Array((stop - start) + 1),
  (_, i) => i + start
);
  • As a side note, I've created a Gist in which I made an "enhanced" getRange() function of sorts. In particular, I aimed to capture edge cases that might be unaddressed in the bare-bones variant above. Additionally, I added support for alphanumeric ranges. In other words, calling it with two supplied inputs like 'C' and 'K' (in that order) returns an array whose values are the sequential set of characters from the letter 'C' (inclusive) through the letter 'K' (exclusive): getRange('C', 'K'); // => ["C", "D", "E", "F", "G", "H", "I", "J"] – IsenrichO Mar 14 '17 at 3:10
  • you don't need the new keyword – Soldeplata Saketos Mar 14 at 17:41
8

Another version using ES6 generators ( see great Paolo Moretti answer with ES6 generators ):

const RANGE = (a,b) => Array.from((function*(x,y){
  while (x <= y) yield x++;
})(a,b));

console.log(RANGE(3,7));  // [ 3, 4, 5, 6, 7 ]

Or, if we only need iterable, then:

const RANGE_ITER = (a,b) => (function*(x,y){
  while (x++< y) yield x;
})(a,b);

for (let n of RANGE_ITER(3,7)){
  console.log(n);
}
7

Though this is not from PHP, but an imitation of range from Python.

function range(start, end) {
    var total = [];

    if (!end) {
        end = start;
        start = 0;
    }

    for (var i = start; i < end; i += 1) {
        total.push(i);
    }

    return total;
}

console.log(range(10)); // [0, 1, 2, 3, 4, 5, 6, 7, 8, 9] 
console.log(range(0, 10)); // [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]
console.log(range(5, 10)); // [5, 6, 7, 8, 9] 
  • +1 for the fastest. with an array of -36768 - 36768, took 3ms, 2nd place was 13 ms and has IDE red lines. – mjwrazor May 9 '17 at 21:12
6

Using Harmony generators, supported by all browsers except IE11:

var take = function (amount, generator) {
    var a = [];

    try {
        while (amount) {
            a.push(generator.next());
            amount -= 1;
        }
    } catch (e) {}

    return a;
};

var takeAll = function (gen) {
    var a = [],
        x;

    try {
        do {
            x = a.push(gen.next());
        } while (x);
    } catch (e) {}

    return a;
};

var range = (function (d) {
    var unlimited = (typeof d.to === "undefined");

    if (typeof d.from === "undefined") {
        d.from = 0;
    }

    if (typeof d.step === "undefined") {
        if (unlimited) {
            d.step = 1;
        }
    } else {
        if (typeof d.from !== "string") {
            if (d.from < d.to) {
                d.step = 1;
            } else {
                d.step = -1;
            }
        } else {
            if (d.from.charCodeAt(0) < d.to.charCodeAt(0)) {
                d.step = 1;
            } else {
                d.step = -1;
            }
        }
    }

    if (typeof d.from === "string") {
        for (let i = d.from.charCodeAt(0); (d.step > 0) ? (unlimited ? true : i <= d.to.charCodeAt(0)) : (i >= d.to.charCodeAt(0)); i += d.step) {
            yield String.fromCharCode(i);
        }
    } else {
        for (let i = d.from; (d.step > 0) ? (unlimited ? true : i <= d.to) : (i >= d.to); i += d.step) {
            yield i;
        }
    }
});

Examples

take

Example 1.

take only takes as much as it can get

take(10, range( {from: 100, step: 5, to: 120} ) )

returns

[100, 105, 110, 115, 120]

Example 2.

to not neccesary

take(10, range( {from: 100, step: 5} ) )

returns

[100, 105, 110, 115, 120, 125, 130, 135, 140, 145]

takeAll

Example 3.

from not neccesary

takeAll( range( {to: 5} ) )

returns

[0, 1, 2, 3, 4, 5]

Example 4.

takeAll( range( {to: 500, step: 100} ) )

returns

[0, 100, 200, 300, 400, 500]

Example 5.

takeAll( range( {from: 'z', to: 'a'} ) )

returns

["z", "y", "x", "w", "v", "u", "t", "s", "r", "q", "p", "o", "n", "m", "l", "k", "j", "i", "h", "g", "f", "e", "d", "c", "b", "a"]

  • 1
    Nice, but it could benefit from being a bit more readable. – alex Oct 30 '12 at 21:47
  • @alex: suggestions welcome :) hehehe – Janus Troelsen Oct 31 '12 at 0:20
  • Edited with my suggestions :) – Xotic750 Jun 12 '13 at 12:50
  • +1 for the approach. To @alex's point, not having ternary operations (especially not nested) in the for clause would improve readability here. – Justin Johnson May 27 '14 at 6:03
6

range(start,end,step): With ES6 Iterators

You only ask for an upper and lower bounds. Here we create one with a step too.

You can easily create range() generator function which can function as an iterator. This means you don't have to pre-generate the entire array.

function * range ( start, end, step = 1 ) {
  let state = start;
  while ( state < end ) {
    yield state;
    state += step;
  }
  return;
};

Now you may want to create something that pre-generates the array from the iterator and returns a list. This is useful for functions that accept an array. For this we can use Array.from()

const generate_array = (start,end,step) =>
  Array.from( range(start,end,step) );

Now you can generate a static array easily,

const array1 = generate_array(1,10,2);
const array1 = generate_array(1,7);

But when something desires an iterator (or gives you the option to use an iterator) you can easily create one too.

for ( const i of range(1, Number.MAX_SAFE_INTEGER, 7) ) {
  console.log(i)
}

Special Notes

5

you can use lodash function _.range(10) https://lodash.com/docs#range

5

As far as generating a numeric array for a given range, I use this:

function range(start, stop)
{
    var array = [];

    var length = stop - start; 

    for (var i = 0; i <= length; i++) { 
        array[i] = start;
        start++;
    }

    return array;
}

console.log(range(1, 7));  // [1,2,3,4,5,6,7]
console.log(range(5, 10)); // [5,6,7,8,9,10]
console.log(range(-2, 3)); // [-2,-1,0,1,2,3]

Obviously, it won't work for alphabetical arrays.

  • Setting array = [] inside the loop may not give you what you want. – alex May 23 '15 at 2:36
  • @alex, thank you. You're right, I also forgot to increment the "start" parameter on each pass of the loop. It's fixed now. – jhaskell May 24 '15 at 2:56
  • It still won't produce the desired output, if I want range 5-10, it will give me [5, 6, 7, 8, 9, 10, 11, 12, 13, 14], I would expect only the first half of that array. – alex May 24 '15 at 7:55
  • @alex, thank you again, I had not considered a length constraint based on input. See updated version. – jhaskell May 25 '15 at 16:46
5

d3 also has a built-in range function. See https://github.com/mbostock/d3/wiki/Arrays#d3_range:

d3.range([start, ]stop[, step])

Generates an array containing an arithmetic progression, similar to the Python built-in range. This method is often used to iterate over a sequence of numeric or integer values, such as the indexes into an array. Unlike the Python version, the arguments are not required to be integers, though the results are more predictable if they are due to floating point precision. If step is omitted, it defaults to 1.

Example:

d3.range(10)
// returns [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]
  • I never knew D3 existed. Not going to use their range method but will be using this package. – mjwrazor May 9 '17 at 19:24
  • Thank you so much. I use D3 and was looking for a native JS method, not knowing that I D3 offers it already. – cezar Jul 1 at 7:24
5

... more range, using a generator function.

function range(s, e, str){
  // create generator that handles numbers & strings.
  function *gen(s, e, str){
    while(s <= e){
      yield (!str) ? s : str[s]
      s++
    }
  }
  if (typeof s === 'string' && !str)
    str = 'abcdefghijklmnopqrstuvwxyz'
  const from = (!str) ? s : str.indexOf(s)
  const to = (!str) ? e : str.indexOf(e)
  // use the generator and return.
  return [...gen(from, to, str)]
}

// usage ...
console.log(range('l', 'w'))
//=> [ 'l', 'm', 'n', 'o', 'p', 'q', 'r', 's', 't', 'u', 'v', 'w' ]

console.log(range(7, 12))
//=> [ 7, 8, 9, 10, 11, 12 ]

// first 'o' to first 't' of passed in string.
console.log(range('o', 't', "ssshhhooooouuut!!!!"))
// => [ 'o', 'o', 'o', 'o', 'o', 'u', 'u', 'u', 't' ]

// only lowercase args allowed here, but ...
console.log(range('m', 'v').map(v=>v.toUpperCase()))
//=> [ 'M', 'N', 'O', 'P', 'Q', 'R', 'S', 'T', 'U', 'V' ]

// => and decreasing range ...
console.log(range('m', 'v').map(v=>v.toUpperCase()).reverse())

// => ... and with a step
console.log(range('m', 'v')
          .map(v=>v.toUpperCase())
          .reverse()
          .reduce((acc, c, i) => (i % 2) ? acc.concat(c) : acc, []))

// ... etc, etc.

Hope this is useful.

4

Complete ES6 implementation using range([start, ]stop[, step]) signature:

function range(start, stop, step=1){
  if(!stop){stop=start;start=0;}
  return Array.from(new Array(int((stop-start)/step)), (x,i) => start+ i*step)
}

If you want automatic negative stepping, add

if(stop<start)step=-Math.abs(step)

Or more minimalistically:

range=(b, e, step=1)=>{
  if(!e){e=b;b=0}
  return Array.from(new Array(int((e-b)/step)), (_,i) => b<e? b+i*step : b-i*step)
}

If you have huge ranges look at Paolo Moretti's generator approach

  • Replace !stop with typeof stop === 'undefined', then replace int with Math.floor, and add a check if (start > stop && step > 0) (otherwise, range(-3, -10) throws an exception instead of doing something sane (either flipping the sign of step or returning [])). Otherwise, good! – Ahmed Fasih Dec 7 '16 at 18:34
4

There's an npm module bereich for that ("bereich" is the German word for "range"). It makes use of modern JavaScript's iterators, so you can use it in various ways, such as:

console.log(...bereich(1, 10));
// => 1, 2, 3, 4, 5, 6, 7, 8, 9, 10

const numbers = Array.from(bereich(1, 10));
// => [ 1, 2, 3, 4, 5, 6, 7, 8, 9, 10 ]

for (const number of bereich(1, 10)) {
  // ...
}

It also supports descending ranges (by simply exchanging min and max), and it also supports steps other than 1.

Disclaimer: I am the author of this module, so please take my answer with a grain of salt.

  • 2
    Why the downvote? – Golo Roden Apr 5 '18 at 9:42
3

I was surprised to come across this thread and see nothing like my solution (maybe I missed an answer), so here it is. I use a simple range function in ES6 syntax :

// [begin, end[
const range = (b, e) => Array.apply(null, Array(e - b)).map((_, i) => {return i+b;});

But it works only when counting forward (ie. begin < end), so we can modify it slightly when needed like so :

const range = (b, e) => Array.apply(null, Array(Math.abs(e - b))).map((_, i) => {return b < e ? i+b : b-i;});
  • Use [...Array(e-b)] while you are at it. – andlrc Feb 9 '16 at 21:22
3

Here's a nice short way to do it in ES6 with numbers only (don't know its speed compares):

Array.prototype.map.call(' '.repeat(1 + upper - lower), (v, i) => i + lower)

For a range of single characters, you can slightly modify it:

Array.prototype.map.call(' '.repeat(1 + upper.codePointAt() - lower.codePointAt()), (v, i) => String.fromCodePoint(i + lower.codePointAt()));
3

You can also do the following:

const range = Array.from(Array(size)).map((el, idx) => idx+1).slice(begin, end);

protected by Hovercraft Full Of Eels Aug 11 '18 at 11:34

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