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Say I have the following checkbox:

<input type="checkbox" value="1-25" />

To get the two numbers that define the boundaries of range I'm looking for, I use the following jQuery:

var value = $(this).val();
var lowEnd = Number(value.split('-')[0]);
var highEnd = Number(value.split('-')[1]);

How do I then create an array that contains all integers between lowEnd and highEnd, including lowEnd and highEnd themselves? For this specific example, obviously, the resulting array would be:

[1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25]
share|improve this question

marked as duplicate by m59 javascript Oct 31 '15 at 23:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
What have you tried so far? – Igor Nov 9 '11 at 17:54
    
Nothing of note. Creating the array is part of a larger issue I've been trying to work through, which I had been approaching from a completely different direction. I realized this might be a more effective approach, despite the fact arrays are one element of JS I've always had trouble fully grasping. Unfortunately, I couldn't find anything on Stack Overflow or elsewhere that specifically dealt with this question. – 40 Degree Day Nov 9 '11 at 18:08

15 Answers 15

up vote 66 down vote accepted
var list = [];
for (var i = lowEnd; i <= highEnd; i++) {
    list.push(i);
}
share|improve this answer
7  
And just for general information, in CoffeeScript it would look like "1..25" which actually transforms to something like this in JavaScript. So there is no easier way to do this. – FreeCandies Nov 9 '11 at 18:02
    
This is perfect -- thank you! – 40 Degree Day Nov 9 '11 at 18:23
2  
@FreeCandies - True, CoffeeScript has this convenience, but you'd still have to run it through the compiler - slow or inconvenient, and you'd remain clueless as to how to do it by hand. I sincerely hope we're not going to replace the 'just use jQuery' era with 'just use CoffeeScript' – meouw Nov 9 '11 at 20:23
1  
Note, the correct coffeescript notation is [1..25] – Alain Jacomet Forte Aug 22 '13 at 16:51

My version of the loop ;)

var lowEnd = 1;
var highEnd = 25;
var arr = [];
while(lowEnd <= highEnd){
   arr.push(lowEnd++);
}
share|improve this answer
3  
This method vastly outperformed the chosen answer just FYI. – Brian Nov 17 '12 at 4:58
1  
That would be sveral times faster if one used var arr = new Array(highEnd - lowEnd + 1). – polkovnikov.ph Nov 19 '14 at 2:10

I highly recommend underscore or lo-dash libraries

http://underscorejs.org/#range

(apparently almost completely compatible, lodash runs quicker, apparently, but underscore has better doco (IMHO)

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

Not just for this but a bunch of very useful utilities

share|improve this answer

fastest way

  1. while-- is faster on most browsers
  2. direct setting a variable is faster than push

function:

var x=function(a,b,c,d){d=[];c=b-a+1;while(c--){d[c]=b--}return d},

theArray=x(lowEnd,highEnd);

or

var arr=[],c=highEnd-lowEnd+1;
while(c--){arr[c]=highEnd--}

EDIT

readable version

var arr = [],
c = highEnd - lowEnd + 1;
while ( c-- ) {
 arr[c] = highEnd--
}

Demo

http://jsfiddle.net/W3CUn/

FOR THE DOWNVOTERS

performance

http://jsperf.com/for-push-while-set/2

faster in ie and 3x faster in firefox

only on aipad air the for loop is a little faster.

tested on win8, osx10.8, ubuntu14.04, ipad, ipad air, ipod;

with chrome,ff,ie,safari,mobile safari.

i would like to see the performance on older ie browsers where the for loop isn't that optimized!

share|improve this answer
2  
These are great ideas... but I would try and make your code more easily readable for others with proper indenting, word spacing, and line returns.. – Blaine Kasten Sep 24 '13 at 16:33
    
As this are very short functions with not manyparameters i intendendly wrote it this way so you just can copy and past.in the first case just replace x with whatever function name you want.there is also noo need to change the functions abcd as they are only that functions private parameters. – cocco Sep 24 '13 at 17:09
    
And c & d are put inside the functions parameters as placeholder to leave out the 'var' – cocco Sep 24 '13 at 17:15

If the start is always less than the end, we can do:

function range(start, end) {
  var myArray = [];
  for (var i = start; i <= end; i += 1) {
    myArray.push(i);
  }
  return myArray;
};
console.log(range(4, 12));                 // → [4, 5, 6, 7, 8, 9, 10, 11, 12]

If we want to be able to take a third argument to be able to modify the step used to build the array, and to make it work even though the start is greater than the end:

function otherRange(start, end, step) {
  otherArray = [];
  if (step == undefined) {
    step = 1;
  };
  if (step > 0) {
    for (var i = start; i <= end; i += step) {
      otherArray.push(i);
    }
  } else {
    for (var i = start; i >= end; i += step) {
      otherArray.push(i);
    }
  };
  return otherArray;
};
console.log(otherRange(10, 0, -2));        // → [10, 8, 6, 4, 2, 0]
console.log(otherRange(10, 15));           // → [10, 11, 12, 13, 14, 15]
console.log(otherRange(10, 20, 2));        // → [10, 12, 14, 16, 18, 20]

This way the function accepts positive and negative steps and if no step is given, it defaults to 1.

share|improve this answer
var values = $(this).val().split('-'),
    i = +values[0],
    l = +values[1],
    range = [];

while (i < l) {
    range[range.length] = i;
    i += 1;
}

range[range.length] = l;

There's probably a DRYer way to do the loop, but that's the basic idea.

share|improve this answer
function createNumberArray(lowEnd, highEnd) {
    var start = lowEnd;
    var array = [start];
    while (start < highEnd) {
        array.push(start);
        start++;
    }
} 
share|improve this answer
2  
var array = {start}; gives you a standard object which doesn't have the push method. you mean var array = []; surely – meouw Nov 9 '11 at 18:02
    
+1 thanks for catching that – Igor Nov 9 '11 at 18:03
function range(j, k) { 
    return Array
        .apply(null, Array((k - j) + 1))
        .map(function(discard, n){ return n + j; }); 
}

this is roughly equivalent to

function range(j, k) { 
    var targetLength = (k - j) + 1;
    var a = Array(targetLength);
    var b = Array.apply(null, a);
    var c = b.map(function(discard, n){ return n + j; });
    return c;
}

breaking it down:

var targetLength = (k - j) + 1;

var a = Array(targetLength);

this creates a sparse matrix of the correct nominal length. Now the problem with a sparse matrix is that although it has the correct nominal length, it has no actual elements, so, for

j = 7, k = 13

console.log(a);

gives us

Array [ <7 empty slots> ]

Then

var b = Array.apply(null, a);

passes the sparse matrix as an argument list to the Array constructor, which produces a dense matrix of (actual) length targetLength, where all elements have undefined value. The first argument is the 'this' value for the the array constructor function execution context, and plays no role here, and so is null.

So now,

 console.log(b);

yields

 Array [ undefined, undefined, undefined, undefined, undefined, undefined, undefined ]

finally

var c = b.map(function(discard, n){ return n + j; });

makes use of the fact that the Array.map function passes: 1. the value of the current element and 2. the index of the current element, to the map delegate/callback. The first argument is discarded, while the second can then be used to set the correct sequence value, after adjusting for the start offset.

So then

console.log(c);

yields

 Array [ 7, 8, 9, 10, 11, 12, 13 ]
share|improve this answer
3  
Thank you for posting an answer to this question! Code-only answers are discouraged on Stack Overflow, because it can be difficult for the original poster (or future readers) to understand the logic behind them. Please, edit your question and include an explanation of your code so that others can benefit from your answer. Thanks! – Maximillian Laumeister Sep 17 '15 at 18:17
    
@MaximillianLaumeister annotated – david.barkhuizen Sep 18 '15 at 7:09
    
This is a great answer now! – jcuenod May 27 at 23:13

In JavaScript ES6:

var result = fillRange(9, 18); // [9, 10, 11, 12, 13, 14, 15, 16, 17, 18]

function fillRange(start, end) {
  return Array(end-start+1).fill().map((i, idx) => start+idx)
}
share|improve this answer

You can design a range method that increments a 'from' number by a desired amount until it reaches a 'to' number. This example will 'count' up or down, depending on whether from is larger or smaller than to.

Array.range= function(from, to, step){
    if(typeof from== 'number'){
        var A= [from];
        step= typeof step== 'number'? Math.abs(step):1;
        if(from> to){
            while((from -= step)>= to) A.push(from);
        }
        else{
            while((from += step)<= to) A.push(from);
        }
        return A;
    }   
}

If you ever want to step by a decimal amount : Array.range(0,1,.01) you will need to truncate the values of any floating point imprecision. Otherwise you will return numbers like 0.060000000000000005 instead of .06.

This adds a little overhead to the other version, but works correctly for integer or decimal steps.

Array.range= function(from, to, step, prec){
    if(typeof from== 'number'){
        var A= [from];
        step= typeof step== 'number'? Math.abs(step):1;
        if(!prec){
            prec= (from+step)%1? String((from+step)%1).length+1:0;
        }
        if(from> to){
            while(+(from -= step).toFixed(prec)>= to) A.push(+from.toFixed(prec));
        }
        else{
            while(+(from += step).toFixed(prec)<= to) A.push(+from.toFixed(prec));
        }
        return A;
    }   
}
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Use Case

var genArr=(1)['..'](10)  //[1,2,3,4,5,6,7,8,9,10]

API ;

Number.prototype['..']=function(to,step){
     var arr = [],from=this;
     while(from <= to){
        arr.push(from++);
     }
     return arr;
};

FIDDLE :

http://jsfiddle.net/abdennour/mcpnvsmm/

share|improve this answer
    
..then , ... : (1)['..'](10).forEach(function(e){console.log(e)}) . . for example – Abdennour TOUMI Jan 31 '15 at 2:00

My five cents:

Both direction array of integers function.

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

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

Based on this answer.

function range(start, end) {
    isReverse = (start > end);
    var targetLength = isReverse ? (start - end) + 1 : (end - start ) + 1;
    var arr = new Array(targetLength);
    var b = Array.apply(null, arr);
    var result = b.map(function (discard, n) {
        return (isReverse) ? n + end : n + start;
    });

    return (isReverse) ? result.reverse() : result;
}

P.S. For use in real life you should also check args for isFinite() and isNaN().

share|improve this answer

        function getRange(a,b)
        {
            ar = new Array();
            var y = a - b > 0 ? a - b : b - a;
            for (i=1;i<y;i++)
            {
                ar.push(i+b);
            }
            return ar;
        }

share|improve this answer

Adding http://minifiedjs.com/ to the list of answers :)

Code is similar to underscore and others:

var l123 = _.range(1, 4);      // same as _(1, 2, 3)
var l0123 = _.range(3);        // same as _(0, 1, 2)
var neg123 = _.range(-3, 0);   // same as _(-3, -2, -1)
var empty = _.range(2,1);      // same as _()

Docs here: http://minifiedjs.com/api/range.html

I use minified.js because it solves all my problems with low footprint and easy to understand syntax. For me, it is a replacement for jQuery, MustacheJS and Underscore/SugarJS in one framework.

Of course, it is not that popular as underscore. This might be a concern for some.

Minified was made available by Tim Jansen using the CC-0 (public domain) license.

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Solving in underscore

data = [];
_.times( highEnd, function( n ){ data.push( lowEnd ++ ) } );
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