344

Let's say that I have an Javascript array looking as following:

["Element 1","Element 2","Element 3",...]; // with close to a hundred elements.

What approach would be appropriate to chunk (split) the array into many smaller arrays with, lets say, 10 elements at its most?

44 Answers 44

464

The array.slice method can extract a slice from the beginning, middle, or end of an array for whatever purposes you require, without changing the original array.

var i,j,temparray,chunk = 10;
for (i=0,j=array.length; i<j; i+=chunk) {
    temparray = array.slice(i,i+chunk);
    // do whatever
}
  • 10
    Remember if this is a util function to assert against chunk being 0. (infinite loop) – Steven Lu Jan 25 '14 at 0:51
  • 13
    Nope, the last chunk should just be smaller than the others. – Blazemonger Jul 22 '14 at 23:27
  • 2
    @Blazemonger, indeed! Next time I will actually try it myself before jumping to conclusions. I assumed (incorrectly) that passing an input into array.slice that exceeded the bounds of the array would be a problem, but it works just perfect! – rysqui Jul 23 '14 at 18:48
  • 18
    For one-liners (chain-lovers): const array_chunks = (array, chunk_size) => Array(Math.ceil(array.length / chunk_size)).fill().map((_, index) => index * chunk_size).map(begin => array.slice(begin, begin + chunk_size));. – Константин Ван Feb 4 '18 at 12:39
  • 1
    @Alex It's a micro-optimization, caching the value of j (which can improve performance if j is large enough). In your code, array.length is being re-computed at every iteration (or at least, it was when I wrote this answer; I'm sure some JS engines have improved since then). – Blazemonger Mar 16 '18 at 16:02
128

Modified from an answer by dbaseman: https://stackoverflow.com/a/10456344/711085

Object.defineProperty(Array.prototype, 'chunk_inefficient', {
    value: function(chunkSize) {
        var array=this;
        return [].concat.apply([],
            array.map(function(elem,i) {
                return i%chunkSize ? [] : [array.slice(i,i+chunkSize)];
            })
        );
    }
});

Demo:

> [1,2,3,4,5,6,7].chunk_inefficient(3)
[[1,2,3],[4,5,6],[7]]

minor addendum:

I should point out that the above is a not-that-elegant (in my mind) workaround to use Array.map. It basically does the following, where ~ is concatenation:

[[1,2,3]]~[]~[]~[] ~ [[4,5,6]]~[]~[]~[] ~ [[7]]

It has the same asymptotic running time as the method below, but perhaps a worse constant factor due to building empty lists. One could rewrite this as follows (mostly the same as Blazemonger's method, which is why I did not originally submit this answer):

More efficient method:

Object.defineProperty(Array.prototype, 'chunk', {
    value: function(chunkSize) {
        var R = [];
        for (var i=0; i<this.length; i+=chunkSize)
            R.push(this.slice(i,i+chunkSize));
        return R;
    }
});
// refresh page if experimenting and you already defined Array.prototype.chunk

My preferred way nowadays is the above, or one of the following:

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

Object.defineProperty(Array.prototype, 'chunk', {
  value: function(n) {

    // ACTUAL CODE FOR CHUNKING ARRAY:
    return Array.range(Math.ceil(this.length/n)).map((x,i) => this.slice(i*n,i*n+n));

  }
});

Demo:

> JSON.stringify( Array.range(10).chunk(3) );
[[1,2,3],[4,5,6],[7,8,9],[10]]

Or if you don't want an Array.range function, it's actually just a one-liner (excluding the fluff):

var ceil = Math.ceil;

Object.defineProperty(Array.prototype, 'chunk', {value: function(n) {
    return Array(ceil(this.length/n)).fill().map((_,i) => this.slice(i*n,i*n+n));
}});

or

Object.defineProperty(Array.prototype, 'chunk', {value: function(n) {
    return Array.from(Array(ceil(this.length/n)), (_,i)=>this.slice(i*n,i*n+n));
}});
  • 26
    Eh, I'd avoid messing with the prototype as the feeling of coolness you get from calling the chunk function on the array doesn't really outweigh the extra complexity you're adding and the subtle bugs that messing with built-in prototypes can cause. – Gordon Gustafson Jul 4 '12 at 1:19
  • 9
    He's not messing with them he's extending them for Arrays. I understand never touching Object.prototype because that would bubble to all objects (everything) but for this Array specific function I don't see any issues. – rlemon Jul 24 '12 at 19:45
  • Pretty sure that should be array.map(function(i) not array.map(function(elem,i) though – Nigel Angel Mar 14 '13 at 17:19
  • 2
    Based on the compatibility chart on the mozilla dev site, Array.map for for IE9+. Be careful. – Maikel D Jun 4 '13 at 6:13
  • Be careful to pass floating - 7.5 type of numbers - lead to unpredictable chunks – Gal Bracha Jan 19 '15 at 23:25
72

Try to avoid mucking with native prototypes, including Array.prototype, if you don't know who will be consuming your code (3rd parties, coworkers, yourself at a later date, etc.).

There are ways to safely extend prototypes (but not in all browsers) and there are ways to safely consume objects created from extended prototypes, but a better rule of thumb is to follow the Principle of Least Surprise and avoid these practices altogether.

If you have some time, watch Andrew Dupont's JSConf 2011 talk, "Everything is Permitted: Extending Built-ins", for a good discussion about this topic.

But back to the question, while the solutions above will work, they are overly complex and requiring unnecessary computational overhead. Here is my solution:

function chunk (arr, len) {

  var chunks = [],
      i = 0,
      n = arr.length;

  while (i < n) {
    chunks.push(arr.slice(i, i += len));
  }

  return chunks;
}

// Optionally, you can do the following to avoid cluttering the global namespace:
Array.chunk = chunk;
  • 7
    "avoid mucking with native prototypes" new js developers should get a temporary, if not permanent, tattoo of this phrase. – Jacob Dalton Feb 15 '17 at 22:04
  • 1
    I've been using javascript for years and spend next to no time bothering with prototype, at the very most calling functions, never modifying like you see some people do. – 1984 Jun 22 '17 at 19:54
  • the best suggestion in my eyes, the simplest to understand and in implementation, thank you very much! – Olga Farber May 15 '18 at 11:45
49

Here's a ES6 version using reduce

perChunk = 2 // items per chunk    

inputArray = ['a','b','c','d','e']

inputArray.reduce((resultArray, item, index) => { 
  const chunkIndex = Math.floor(index/perChunk)

  if(!resultArray[chunkIndex]) {
    resultArray[chunkIndex] = [] // start a new chunk
  }

  resultArray[chunkIndex].push(item)

  return resultArray
}, [])

// result: [['a','b'], ['c','d'], ['e']]

And you're ready to chain further map/reduce transformations. Your input array is left intact


If you prefer a shorter but less readable version, you can sprinkle some concat into the mix for the same end result:

inputArray.reduce((all,one,i) => {
   const ch = Math.floor(i/perChunk); 
   all[ch] = [].concat((all[ch]||[]),one); 
   return all
}, [])
  • This seems like the most condensed solution. What is chunkIndex = Math.floor(index/perChunk) getting ? Is it the average ? – me-me Jun 5 '18 at 3:32
  • 5/2 = 2.5 and Math.floor(2.5) = 2 so item with index 5 will placed in bucket 2 – Andrei R Jun 7 '18 at 3:34
  • Thanks Andrei R. Ah so it steps through 0 - 2. So what is this called in Math terms? I guess my point is I would have never thought to divide index / 2 every index to get the index of the each slice. So I'm trying to wrap my head around it because I really like it but don't fully understand it in Math terms. I usually do this to get averages of a total number but this looks different. – me-me Jun 7 '18 at 13:35
24

I'd prefer to use splice method:

var chunks = function(array, size) {
  var results = [];
  while (array.length) {
    results.push(array.splice(0, size));
  }
  return results;
};
  • 9
    Must be careful with this splice solution since it modifies the original array, so be sure to clearly document the side effects. – bdrx May 13 '14 at 16:26
  • 3
    Then use slice instead – mplungjan Apr 24 '15 at 21:29
  • @mplungjan The result would be the same array over and over again when using slice. So it's not really a drop-in replacement without some more modifications. – nietonfir Jan 2 '16 at 0:23
  • The only thing that I would add to this answer is a clone to the original array. I would do that with ES6's spread operator. var clone = [...array] then do the lenght checking and splicing over that cloned array. – MauricioLeal Nov 1 '17 at 16:35
24

I tested the different answers into jsperf.com. The result is available there: http://jsperf.com/chunk-mtds

And the fastest functio (and that works from IE8) is this one:

function chunk(arr, chunkSize) {
  var R = [];
  for (var i=0,len=arr.length; i<len; i+=chunkSize)
    R.push(arr.slice(i,i+chunkSize));
  return R;
}
  • Thanks @AymKdn for making this benchmark: This was so helpful! I was using the splice approach and it crashed my Chrome v70 browser at a chunk size of 884432. With your suggested "slice" approach in place, my code doesn't crash the "render" process of the browser anymore. :) – Benny Neugebauer Aug 9 '18 at 13:57
23

Old question: New answer! I actually was working with an answer from this question and had a friend improve on it! So here it is:

Array.prototype.chunk = function ( n ) {
    if ( !this.length ) {
        return [];
    }
    return [ this.slice( 0, n ) ].concat( this.slice(n).chunk(n) );
};

[1,2,3,4,5,6,7,8,9,0].chunk(3);
> [[1,2,3],[4,5,6],[7,8,9],[0]]
  • 12
    fyi, the performance of this method is O(N^2), so it should not be used in performance-critical sections of code, or with long arrays (specifically, when the array's .length is much greater than the chunk-size n). If this was a lazy language (unlike javascript), this algorithm would not suffer from O(N^2) time. That said, the recursive implementation is elegant. You can probably modify it to improve performance by first defining a helper function that recurses on array,position, then dispatching: Array.prototype.chunk returns [your helper function](...) – ninjagecko Aug 23 '12 at 1:52
  • thanks sensai for blessing me with your spirit that i must have chanelled tonight – bitten Oct 11 '16 at 20:25
  • 1
    or... var chunk = (arr, n) => { if ( !arr.length ) return []; return [ arr.slice( 0, n ) ].concat( chunk(arr.slice(n), n) ) } – Ed Williams Dec 13 '17 at 9:13
21

One-liner in ECMA 6

const [list,chuckSize] = [[1,2,3,4,5,6,7,8,9,10,11,12,13,14,15], 6]

new Array(Math.ceil(list.length / chuckSize)).fill().map(_ => list.splice(0,chuckSize))
  • 6
    it modifies the original list array – Jacka Jul 18 '17 at 14:32
  • 5
    Easy fix using .slice().. .map((_,i) => list.slice(i*chuckSize,i*chuckSize+chuckSize)) – James Robey Apr 9 '18 at 11:11
  • 2
    On JSPerf this is drastically more performant than many of the other answers. – Micah Henning Sep 6 '18 at 1:59
20

Nowadays you can use lodash' chunk function to split the array into smaller arrays https://lodash.com/docs#chunk No need to fiddle with the loops anymore!

  • 2
    I feel like there should be disclaimer to SO javascript questions: have you tried lodash? Pretty much the first thing I include in node or the browser. – Jacob Dalton Apr 5 '16 at 22:38
12

Ok, let's start with a fairly tight one:

function chunk(arr, n) {
    return arr.slice(0,(arr.length+n-1)/n|0).
           map(function(c,i) { return arr.slice(n*i,n*i+n); });
}

Which is used like this:

chunk([1,2,3,4,5,6,7], 2);

Then we have this tight reducer function:

function chunker(p, c, i) {
    (p[i/this|0] = p[i/this|0] || []).push(c);
    return p;
}

Which is used like this:

[1,2,3,4,5,6,7].reduce(chunker.bind(3),[]);

Since a kitten dies when we bind this to a number, we can do manual currying like this instead:

// Fluent alternative API without prototype hacks.
function chunker(n) {
   return function(p, c, i) {
       (p[i/n|0] = p[i/n|0] || []).push(c);
       return p;
   };
}

Which is used like this:

[1,2,3,4,5,6,7].reduce(chunker(3),[]);

Then the still pretty tight function which does it all in one go:

function chunk(arr, n) {
    return arr.reduce(function(p, cur, i) {
        (p[i/n|0] = p[i/n|0] || []).push(cur);
        return p;
    },[]);
}

chunk([1,2,3,4,5,6,7], 3);
  • Doesnt Works in iE8. – Nadeemmnn Mohd Jun 8 '16 at 11:30
  • 1
    HA! i love the kitten comment. sorry for no additional constructive input :) – 29er Apr 5 '17 at 17:26
  • I would do (p[i/n|0] || (p[i/n|0] = [])), so you don't assign a value, if not necessary... – yckart May 25 '17 at 15:02
9

I aimed at creating a simple non-mutating solution in pure ES6. Peculiarities in javascript make it necessary to fill the empty array before mapping :-(

function chunk(a, l) { 
    return new Array(Math.ceil(a.length / l)).fill(0)
        .map((_, n) => a.slice(n*l, n*l + l)); 
}

This version with recursion seem simpler and more compelling:

function chunk(a, l) { 
    if (a.length == 0) return []; 
    else return [a.slice(0, l)].concat(chunk(a.slice(l), l)); 
}

The ridiculously weak array functions of ES6 makes for good puzzles :-)

  • 1
    Very elegant solution! – The F Nov 8 '17 at 22:57
  • I also wrote mine much like this. It still works if you remove the 0 from the fill, which makes the fill look a little more sensible, imho. – Coert Grobbelaar Jul 31 '18 at 21:32
7
in coffeescript:

b = (a.splice(0, len) while a.length)

demo 
a = [1, 2, 3, 4, 5, 6, 7]

b = (a.splice(0, 2) while a.length)
[ [ 1, 2 ],
  [ 3, 4 ],
  [ 5, 6 ],
  [ 7 ] ]
  • 1
    Give little bit explanation about your code. – Sulthan Allaudeen Apr 11 '14 at 10:12
  • a.splice(0, 2) removes the subarray of a[0..1] from a and returns the subarray a[0..1]. I am making an array of all those arrays – Arpit Jain Apr 15 '14 at 19:19
  • 2
    I recommend using the non-destructive slice() method instead of splice() – Ash Blue Aug 27 '14 at 20:15
7

If you use EcmaScript version >= 5.1, you can implement a functional version of chunk() using array.reduce() that has O(N) complexity:

function chunk(chunkSize, array) {
    return array.reduce(function(previous, current) {
        var chunk;
        if (previous.length === 0 || 
                previous[previous.length -1].length === chunkSize) {
            chunk = [];   // 1
            previous.push(chunk);   // 2
        }
        else {
            chunk = previous[previous.length -1];   // 3
        }
        chunk.push(current);   // 4
        return previous;   // 5
    }, []);   // 6
}

console.log(chunk(2, ['a', 'b', 'c', 'd', 'e']));
// prints [ [ 'a', 'b' ], [ 'c', 'd' ], [ 'e' ] ]

Explanation of each // nbr above:

  1. Create a new chunk if the previous value, i.e. the previously returned array of chunks, is empty or if the last previous chunk has chunkSize items
  2. Add the new chunk to the array of existing chunks
  3. Otherwise, the current chunk is the last chunk in the array of chunks
  4. Add the current value to the chunk
  5. Return the modified array of chunks
  6. Initialize the reduction by passing an empty array

Currying based on chunkSize:

var chunk3 = function(array) {
    return chunk(3, array);
};

console.log(chunk3(['a', 'b', 'c', 'd', 'e']));
// prints [ [ 'a', 'b', 'c' ], [ 'd', 'e' ] ]

You can add the chunk() function to the global Array object:

Object.defineProperty(Array.prototype, 'chunk', {
    value: function(chunkSize) {
        return this.reduce(function(previous, current) {
            var chunk;
            if (previous.length === 0 || 
                    previous[previous.length -1].length === chunkSize) {
                chunk = [];
                previous.push(chunk);
            }
            else {
                chunk = previous[previous.length -1];
            }
            chunk.push(current);
            return previous;
        }, []);
    }
});

console.log(['a', 'b', 'c', 'd', 'e'].chunk(4));
// prints [ [ 'a', 'b', 'c' 'd' ], [ 'e' ] ]
  • Thanks a lot..!! – Ritesh May 30 '17 at 11:20
7

There have been many answers but this is what I use:

const chunk = (arr, size) =>
  arr
    .reduce((acc, _, i) =>
      (i % size)
        ? acc
        : [...acc, arr.slice(i, i + size)]
    , [])

// USAGE
const numbers = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
chunk(numbers, 3)

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

First, check for a remainder when dividing the index by the chunk size.

If there is a remainder then just return the accumulator array.

If there is no remainder then the index is divisible by the chunk size, so take a slice from the original array (starting at the current index) and add it to the accumulator array.

So, the returned accumulator array for each iteration of reduce looks something like this:

// 0: [[1, 2, 3, 4]]
// 1: [[1, 2, 3, 4]]
// 2: [[1, 2, 3, 4]]
// 3: [[1, 2, 3, 4]]
// 4: [[1, 2, 3, 4], [5, 6, 7, 8]]
// 5: [[1, 2, 3, 4], [5, 6, 7, 8]]
// 6: [[1, 2, 3, 4], [5, 6, 7, 8]]
// 7: [[1, 2, 3, 4], [5, 6, 7, 8]]
// 8: [[1, 2, 3, 4], [5, 6, 7, 8], [9, 10]]
// 9: [[1, 2, 3, 4], [5, 6, 7, 8], [9, 10]]
6

Created a npm package for this https://www.npmjs.com/package/array.chunk

  var result = [];
  for (var i = 0; i < arr.length; i += size) {
    result.push(arr.slice(i, size + i));
  }

  return result;
5
results = []
chunk_size = 10
while(array.length > 0){
   results.push(array.splice(0, chunk_size))
}
  • 1
    Not sure why this was down-voted, but the code could use some explanation. – jpaugh Apr 19 '17 at 15:00
  • Because splice is destructive to original array. – metalim Dec 26 '17 at 19:10
5

And this would be my contribution to this topic. I guess .reduce() is the best way.

var segment = (arr, n) => arr.reduce((r,e,i) => i%n ? (r[r.length-1].push(e), r)
                                                    : (r.push([e]), r), []),
        arr = Array.from({length: 31}).map((_,i) => i+1);
        res = segment(arr,7);
console.log(JSON.stringify(res));

But the above implementation is not very efficient since .reduce() runs through all arr function. A more efficient approach (very close to the fastest imperative solution) would be, iterating over the reduced (to be chunked) array since we can calculate it's size in advance by Math.ceil(arr/n);. Once we have the empty result array like Array(Math.ceil(arr.length/n)).fill(); the rest is to map slices of the arr array into it.

function chunk(arr,n){
  var r = Array(Math.ceil(arr.length/n)).fill();
  return r.map((e,i) => arr.slice(i*n, i*n+n));
}

arr = Array.from({length: 31},(_,i) => i+1);
res = chunk(arr,7);
console.log(JSON.stringify(res));

4

ES6 one-line approach based on Array.prototype reduce and push methods:

const doChunk = (list, size) => list.reduce((r, v) =>
  (!r.length || r[r.length - 1].length === size ?
    r.push([v]) : r[r.length - 1].push(v)) && r
, []);

console.log(doChunk([0,1,2,3,4,5,6,7,8,9,10,11,12], 5));
// [[0, 1, 2, 3, 4], [5, 6, 7, 8, 9], [10, 11, 12]]
3

This is the most efficient and straight-forward solution I could think of:

function chunk(array, chunkSize) {
    let chunkCount = Math.ceil(array.length / chunkSize);
    let chunks = new Array(chunkCount);
    for(let i = 0, j = 0, k = chunkSize; i < chunkCount; ++i) {
        chunks[i] = array.slice(j, k);
        j = k;
        k += chunkSize;
    }
    return chunks;
}
2

EDIT: @mblase75 added more concise code to the earlier answer while I was writing mine, so I recommend going with his solution.

You could use code like this:

var longArray = ["Element 1","Element 2","Element 3", /*...*/];
var smallerArrays = []; // will contain the sub-arrays of 10 elements each
var arraySize = 10;
for (var i=0;i<Math.ceil(longArray.length/arraySize);i++) {
    smallerArrays.push(longArray.slice(i*arraySize,i*arraySize+arraySize));
}

Change the value of arraySize to change the maximum length of the smaller arrays.

2

Here is a non-mutating solution using only recursion and slice().

const splitToChunks = (arr, chunkSize, acc = []) => (
    arr.length > chunkSize ?
        splitToChunks(
            arr.slice(chunkSize),
            chunkSize,
            [...acc, arr.slice(0, chunkSize)]
        ) :
        [...acc, arr]
);

Then simply use it like splitToChunks([1, 2, 3, 4, 5], 3) to get [[1, 2, 3], [4, 5]].

Here is a fiddle for you to try out: https://jsfiddle.net/6wtrbx6k/2/

2

ES6 Generator version

function* chunkArray(array,size=1){
    var clone = array.slice(0);
    while (clone.length>0) 
      yield clone.splice(0,size); 
};
var a = new Array(100).fill().map((x,index)=>index);
for(const c of chunkArray(a,10)) 
    console.log(c);
1

I changed BlazeMonger's slightly to use for a jQuery object..

var $list = $('li'),
    $listRows = [];


for (var i = 0, len = $list.length, chunk = 4, n = 0; i < len; i += chunk, n++) {
   $listRows[n] = $list.slice(i, i + chunk);
}
1

I created the following JSFiddle to demonstrate my approach to your question.

(function() {
  // Sample arrays
  var //elements = ["0", "1", "2", "3", "4", "5", "6", "7"],
      elements = ["0", "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", "26", "27", "28", "29", "30", "31", "32", "33", "34", "35", "36", "37", "38", "39", "40", "41", "42", "43"];

  var splitElements = [],
      delimiter = 10; // Change this value as needed
      
  // parameters: array, number of elements to split the array by
  if(elements.length > delimiter){
  	splitElements = splitArray(elements, delimiter);
  }
  else {
  	// No need to do anything if the array's length is less than the delimiter
  	splitElements = elements;
  }
  
  //Displaying result in console
  for(element in splitElements){
  	if(splitElements.hasOwnProperty(element)){
    	console.log(element + " | " + splitElements[element]);
    }
  }
})();

function splitArray(elements, delimiter) {
  var elements_length = elements.length;

  if (elements_length > delimiter) {
    var myArrays = [], // parent array, used to store each sub array
      first = 0, // used to capture the first element in each sub array
      index = 0; // used to set the index of each sub array

    for (var i = 0; i < elements_length; ++i) {
      if (i % delimiter === 0) {
      	// Capture the first element of each sub array from the original array, when i is a modulus factor of the delimiter.
        first = i;
      } else if (delimiter - (i % delimiter) === 1) {
      // Build each sub array, from the original array, sliced every time the i one minus the modulus factor of the delimiter.
        index = (i + 1) / delimiter - 1;
        myArrays[index] = elements.slice(first, i + 1);
      }
      else if(i + 1 === elements_length){
      	// Build the last sub array which contain delimiter number or less elements
      	myArrays[index + 1] = elements.slice(first, i + 1);
      }
    }
    // Returned is an array of arrays
    return myArrays;
  }
}

First of all, I have two examples: an array with less than eight elements, another with an array with more than eight elements (comment whichever one you do not want to use).

I then check for the size of the array, simple but essential to avoid extra computation. From here if the array meets the criteria (array size > delimiter) we move into the splitArray function.

The splitArray function takes in the delimiter (meaning 8, since that is what you want to split by), and the array itself. Since we are re-using the array length a lot, I am caching it in a variable, as well as the first and last.

first represents the position of the first element in an array. This array is an array made of 8 elements. So in order to determine the first element we use the modulus operator.

myArrays is the array of arrays. In it we will store at each index, any sub array of size 8 or below. This is the key strategy in the algorithm below.

index represents the index for the myArrays variable. Every time a sub array of 8 elements or less is to be stored, it needs to be stored in the corresponding index. So if we have 27 elements, that means 4 arrays. The first, second and third array will have 8 elements each. The last will have 3 elements only. So index will be 0, 1, 2, and 3 respectively.

The tricky part is simply figuring out the math and optimizing it as best as possible. For example else if (delimiter - (i % delimiter) === 1) this is to find the last element that should go in the array, when an array will be full (example: contain 10 elements).

This code works for every single scenario, you can even change the delimiter to match any array size you'd like to get. Pretty sweet right :-)

Any questions? Feel free to ask in the comments below.

1

I just wrote this with the help of a groupBy function.

// utils
const group = (source) => ({
  by: (grouping) => {
    const groups = source.reduce((accumulator, item) => {
      const name = JSON.stringify(grouping(item));
      accumulator[name] = accumulator[name] || [];
      accumulator[name].push(item);
      return accumulator;
    }, {});

    return Object.keys(groups).map(key => groups[key]);
  }
});

const chunk = (source, size) => group(source.map((item, index) => ({ item, index })))
.by(x => Math.floor(x.index / size))
.map(x => x.map(v => v.item));


// 103 items
const arr = [6,2,6,6,0,7,4,9,3,1,9,6,1,2,7,8,3,3,4,6,8,7,6,9,3,6,3,5,0,9,3,7,0,4,1,9,7,5,7,4,3,4,8,9,0,5,1,0,0,8,0,5,8,3,2,5,6,9,0,0,1,5,1,7,0,6,1,6,8,4,9,8,9,1,6,5,4,9,1,6,6,1,8,3,5,5,7,0,8,3,1,7,1,1,7,6,4,9,7,0,5,1,0];

const chunks = chunk(arr, 10);

console.log(JSON.stringify(chunks));

1

Here's my approach using Coffeescript list comprehension. A great article detailing comprehensions in Coffeescript can be found here.

chunk: (arr, size) ->
    chunks = (arr.slice(index, index+size) for item, index in arr by size)
    return chunks
  • Could the downvoter please explain their reason? – pymarco Dec 12 '17 at 17:20
1

Here is neat & optimised implemention of chunk() function. Assuming default chunk size is 10.

var chunk = function(list, chunkSize) {
  if (!list.length) {
    return [];
  }
  if (typeof chunkSize === undefined) {
    chunkSize = 10;
  }

  var i, j, t, chunks = [];
  for (i = 0, j = list.length; i < j; i += chunkSize) {
    t = list.slice(i, i + chunkSize);
    chunks.push(t);
  }

  return chunks;
};

//calling function
var list = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12];
var chunks = chunk(list);
1

This should be straightforward answer without many mathematical complications.

function chunkArray(array, sizeOfTheChunkedArray) {
  const chunked = [];

  for (let element of array) {
    const last = chunked[chunked.length - 1];

    if(!last || last.length === sizeOfTheChunkedArray) {
      chunked.push([element])
    } else {
      last.push(element);
    }
  }
  return chunked;
}
1

Hi try this -

 function split(arr, howMany) {
        var newArr = []; start = 0; end = howMany;
        for(var i=1; i<= Math.ceil(arr.length / howMany); i++) {
            newArr.push(arr.slice(start, end));
            start = start + howMany;
            end = end + howMany
        }
        console.log(newArr)
    }
    split([1,2,3,4,55,6,7,8,8,9],3)
1

I think this a nice recursive solution with ES6 syntax:

const chunk = function(array, size) {
  if (!array.length) {
    return [];
  }
  const head = array.slice(0, size);
  const tail = array.slice(size);

  return [head, ...chunk(tail, size)];
};

console.log(chunk([1,2,3], 2));

protected by Taryn Jul 21 '17 at 16:58

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