196

In Javascript, I'm trying to take an initial array of number values and count the elements inside it. Ideally, the result would be two new arrays, the first specifying each unique element, and the second containing the number of times each element occurs. However, I'm open to suggestions on the format of the output.

For example, if the initial array was:

5, 5, 5, 2, 2, 2, 2, 2, 9, 4

Then two new arrays would be created. The first would contain the name of each unique element:

5, 2, 9, 4

The second would contain the number of times that element occurred in the initial array:

3, 5, 1, 1

Because the number 5 occurs three times in the initial array, the number 2 occurs five times and 9 and 4 both appear once.

I've searched a lot for a solution, but nothing seems to work, and everything I've tried myself has wound up being ridiculously complex. Any help would be appreciated!

Thanks :)

  • 6
    If all you needed was to see if a value appears only once (instead of two or more times), you could use if (arr.indexOf(value) == arr.lastIndexOf(value)) – Rodrigo Mar 6 '16 at 12:58
  • 1
    We can use ramda.js to achieve this the easy way. const ary = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]; R.countBy(r=> r)(ary) – Eshwar Prasad Yaddanapudi Jan 4 '17 at 5:50

36 Answers 36

87

Here you go:

function foo(arr) {
    var a = [], b = [], prev;

    arr.sort();
    for ( var i = 0; i < arr.length; i++ ) {
        if ( arr[i] !== prev ) {
            a.push(arr[i]);
            b.push(1);
        } else {
            b[b.length-1]++;
        }
        prev = arr[i];
    }

    return [a, b];
}

Live demo: http://jsfiddle.net/simevidas/bnACW/

Note

This changes the order of the original input array using Array.sort

  • 19
    has side-effect of sorting the array (side effects are bad), also sorting is O(N log(N)) and the elegance gain isn't worth it – ninjagecko May 25 '11 at 17:05
  • 1
    @ninja Which other answer do you prefer? – Šime Vidas May 25 '11 at 18:40
  • In absence of a nice high-level primitive from a third-party library, I would normally implement this like the reduce answer. I was about to submit such an answer before I saw it already existed. Nevertheless the counts[num] = counts[num] ? counts[num]+1 : 1 answer also works (equivalent to the if(!result[a[i]])result[a[i]]=0 answer, which is more elegant but less easy to read); this answers can be modified to use a "nicer" version of the for loop, perhaps a third-party for-loop, but I sort of ignored that since the standard index-based for-loops are sadly the default. – ninjagecko May 25 '11 at 18:51
  • 1
    @ninja I agree. Those answers are better. Unfortunately I cannot un-accept my own answer. – Šime Vidas May 25 '11 at 20:59
  • For small arrays sorting it in-place can be faster than creating an associative array. – quant_dev Sep 29 '17 at 20:24
197

You can use an object to hold the results:

var arr = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
var counts = {};

for (var i = 0; i < arr.length; i++) {
  var num = arr[i];
  counts[num] = counts[num] ? counts[num] + 1 : 1;
}

console.log(counts[5], counts[2], counts[9], counts[4]);

So, now your counts object can tell you what the count is for a particular number:

console.log(counts[5]); // logs '3'

If you want to get an array of members, just use the keys() functions

keys(counts); // returns ["5", "2", "9", "4"]
  • 3
    It should be pointed out, that Object.keys() function is only supported in IE9+, FF4+, SF5+, CH6+ but Opera doesn't support it. I think the biggest show stopper here is IE9+. – Robert Koritnik Jul 28 '11 at 14:45
  • 15
    Similarly, I also like counts[num] = (counts[num] || 0) + 1. That way you only have to write counts[num] twice instead of three times on that one line there. – robru Jul 21 '14 at 1:18
  • 1
    This is a nice answer. This is easily abstracted into a function that accepts an array and returns a 'counts' object. – bitsand Feb 23 '17 at 0:08
81
var a = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4].reduce(function (acc, curr) {
  if (typeof acc[curr] == 'undefined') {
    acc[curr] = 1;
  } else {
    acc[curr] += 1;
  }

  return acc;
}, {});

// a == {2: 5, 4: 1, 5: 3, 9: 1}
  • 32
    acc[curr] ? acc[curr]++ : acc[curr] = 1; – pmandell Nov 9 '15 at 19:48
71

If using underscore or lodash, this is the simplest thing to do:

_.countBy(array);

Such that:

_.countBy([5, 5, 5, 2, 2, 2, 2, 2, 9, 4])
=> Object {2: 5, 4: 1, 5: 3, 9: 1}

As pointed out by others, you can then execute the _.keys() and _.values() functions on the result to get just the unique numbers, and their occurrences, respectively. But in my experience, the original object is much easier to deal with.

  • 8
    , _.identity is optional. You can just write _.countBy(array) – Elmo Jul 13 '16 at 18:52
53

Don't use two arrays for the result, use an object:

a      = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
result = { };
for(var i = 0; i < a.length; ++i) {
    if(!result[a[i]])
        result[a[i]] = 0;
    ++result[a[i]];
}

Then result will look like:

{
    2: 5,
    4: 1,
    5: 3,
    9: 1
}
37

How about an ECMAScript2015 option.

const a = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];

const aCount = new Map([...new Set(a)].map(
    x => [x, a.filter(y => y === x).length]
));
aCount.get(5)  // 3
aCount.get(2)  // 5
aCount.get(9)  // 1
aCount.get(4)  // 1

This example passes the input array to the Set constructor creating a collection of unique values. The spread syntax then expands these values into a new array so we can call map and translate this into a two-dimensional array of [value, count] pairs - i.e. the following structure:

Array [
   [5, 3],
   [2, 5],
   [9, 1],
   [4, 1]
]

The new array is then passed to the Map constructor resulting in an iterable object:

Map {
    5 => 3,
    2 => 5,
    9 => 1,
    4 => 1
}

The great thing about a Map object is that it preserves data-types - that is to say aCount.get(5) will return 3 but aCount.get("5") will return undefined. It also allows for any value / type to act as a key meaning this solution will also work with an array of objects.

function frequencies(/* {Array} */ a){
    return new Map([...new Set(a)].map(
        x => [x, a.filter(y => y === x).length]
    ));
}

let foo = { value: 'foo' },
    bar = { value: 'bar' },
    baz = { value: 'baz' };

let aNumbers = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4],
    aObjects = [foo, bar, foo, foo, baz, bar];

frequencies(aNumbers).forEach((val, key) => console.log(key + ': ' + val));
frequencies(aObjects).forEach((val, key) => console.log(key.value + ': ' + val));

  • do you have by any chance an improved answer of this just for an object array? im having trouble trying to modify it for an object array, where you just create a new array/map/set in which you remove duplicates, and add a new value for the object, let say called "duplicatedCount: value". i managed to remove duplicates in my nested objects array from this answer stackoverflow.com/a/36744732 – sharon gur Apr 4 '17 at 14:32
  • Set uses object references for uniqueness and offers no API for comparison of "similar" objects. If you want to use this approach for such a task you'd need some intermediate reduction function that guarantees an array of unique instances. It's not the most efficient but I put together a quick example here. – Emissary Apr 6 '17 at 9:25
  • Thanks for the answer! but i actually solved it a lilttle bit differently. if you can see the answer i added here stackoverflow.com/a/43211561/4474900 i gave example of what i did. it works well, my case had a complex object needed comparing. dont know about the efficiency of my solution though – sharon gur Apr 6 '17 at 15:26
  • 6
    This might use nice new data structures but has runtime in O() while there are plenty of simple algorithms here that solve it in O(n). – raphinesse Jan 30 '18 at 20:16
35

I think this is the simplest way how to count occurrences with same value in array.

var a = [true, false, false, false];
a.filter(function(value){
    return value === false;
}).length
  • 8
    or a.filter(value => !value).length with the new js syntax – t3chb0t Jun 1 '18 at 8:03
27

const data = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]

function count(arr) {
  return arr.reduce((prev, curr) => (prev[curr] = ++prev[curr] || 1, prev), {})
}

console.log(count(data))

  • 3
    Would anyone care to explain this (prev[curr] = ++prev[curr] || 1, prev) ? – Souljacker May 14 '17 at 9:34
  • 3
    The comma operator “evaluates each of its operands (from left to right) and returns the value of the last operand”, so this increments the value of prev[curr] (or initialises it to 1), then returns prev. – ChrisV Jun 25 '17 at 16:37
  • but is the output an array? – Francesco Oct 8 '17 at 23:47
20

If you favour a single liner.

arr.reduce(function(countMap, word) {countMap[word] = ++countMap[word] || 1;return countMap}, {});

Edit (6/12/2015): The Explanation from the inside out. countMap is a map that maps a word with its frequency, which we can see the anonymous function. What reduce does is apply the function with arguments as all the array elements and countMap being passed as the return value of the last function call. The last parameter ({}) is the default value of countMap for the first function call.

  • 1
    You should explain this. that would make it a much better answer so people can learn how to use it in other use cases. – Andrew Grothe Apr 25 '15 at 23:38
  • A single liner that just removes the linebreak that would usually follow ;, { and }. ... OK. I think with that definition of a one liner we can write Conway's Game of Life as a "oneliner". – trincot Nov 30 '18 at 21:42
15

ES6 version should be much simplifier (another one line solution)

let arr = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
let acc = arr.reduce((acc, val) => acc.set(val, 1 + (acc.get(val) || 0)), new Map());

console.log(acc);
// output: Map { 5 => 3, 2 => 5, 9 => 1, 4 => 1 }

A Map instead of plain Object helping us to distinguish different type of elements, or else all counting are base on strings

13

One line ES6 solution. So many answers using object as map but I can't see anyone using an actual Map

const map = arr.reduce((acc, e) => acc.set(e, (acc.get(e) || 0) + 1), new Map());

Use map.keys() to get unique elements

Use map.values() to get the occurrences

Use map.entries() to get the pairs [element, frequency]

I am a little bit late to the party but I hope that at least one person will find it helpful.

var arr = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]

const map = arr.reduce((acc, e) => acc.set(e, (acc.get(e) || 0) + 1), new Map());

console.info([...map.keys()])
console.info([...map.values()])
console.info([...map.entries()])

  • Modern Javascript gets the best from all worlds – Igniter Nov 30 at 18:35
  • This should be the accepted solution! – lomse Dec 8 at 22:43
8

If you are using underscore you can go the functional route

a = ['foo', 'foo', 'bar'];

var results = _.reduce(a,function(counts,key){ counts[key]++; return counts },
                  _.object( _.map( _.uniq(a), function(key) { return [key, 0] })))

so your first array is

_.keys(results)

and the second array is

_.values(results)

most of this will default to native javascript functions if they are available

demo : http://jsfiddle.net/dAaUU/

6

Based on answer of @adamse and @pmandell (which I upvote), in ES6 you can do it in one line:

  • 2017 edit: I use || to reduce code size and make it more readable.

var a=[7,1,7,2,2,7,3,3,3,7,,7,7,7];
alert(JSON.stringify(

a.reduce((r,k)=>{r[k]=1+r[k]||1;return r},{})

));


It can be used to count characters:

var s="ABRACADABRA";
alert(JSON.stringify(

s.split('').reduce((a, c)=>{a[c]++?0:a[c]=1;return a},{})

));

  • It would be more readable if you used || 0: (r,k)=>{r[k]=(r[k]||0)+1;return r} – 12Me21 May 10 '18 at 17:29
  • You can do anything in one line in JavaScript. – Ry- Apr 15 at 7:28
  • And why is it a bad thing, @Ry-? – ESL Apr 15 at 13:49
  • Sometimes it's more clear in several lines, other is clearer in one line. Althoug it's a matter of "taste". – ESL Apr 15 at 13:50
  • I mean “in ES6 you can do it in one line” applies to every answer, and you could also do this in ES5 in one line. – Ry- Apr 15 at 18:01
5

You could extend the Array prototype, like this:

Array.prototype.frequencies = function() {
    var l = this.length, result = {all:[]};
    while (l--){
       result[this[l]] = result[this[l]] ? ++result[this[l]] : 1;
    }
    // all pairs (label, frequencies) to an array of arrays(2)
    for (var l in result){
       if (result.hasOwnProperty(l) && l !== 'all'){
          result.all.push([ l,result[l] ]);
       }
    }
    return result;
};

var freqs = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4].frequencies();
alert(freqs[2]); //=> 5
// or
var freqs = '1,1,2,one,one,2,2,22,three,four,five,three,three,five'
             .split(',')
             .frequencies();
alert(freqs.three); //=> 3

Alternatively you can utilize Array.map:

  Array.prototype.frequencies  = function () {
    var freqs = {sum: 0}; 
    this.map( function (a){ 
        if (!(a in this)) { this[a] = 1; } 
        else { this[a] += 1; }
        this.sum += 1;
        return a; }, freqs
    );
    return freqs;
  }
5

Here's just something light and easy for the eyes...

function count(a,i){
 var result = 0;
 for(var o in a)
  if(a[o] == i)
   result++;
 return result;
}

Edit: And since you want all the occurences...

function count(a){
 var result = {};
 for(var i in a){
  if(result[a[i]] == undefined) result[a[i]] = 0;
  result[a[i]]++;
 }
 return result;
}
  • 1
    The question asked for counts of all elements. – Ry- Jul 9 '17 at 15:00
  • Ok, missed that. Should be fixed now. – ElDoRado1239 Jul 10 '17 at 19:38
5

So here's how I'd do it with some of the newest javascript features:

First, reduce the array to a Map of the counts:

let countMap = array.reduce(
  (map, value) => {map.set(value, (map.get(value) || 0) + 1); return map}, 
  new Map()
)

By using a Map, your starting array can contain any type of object, and the counts will be correct. Without a Map, some types of objects will give you strange counts. See the Map docs for more info on the differences.

This could also be done with an object if all your values are symbols, numbers, or strings:

let countObject = array.reduce(
  (map, value) => { map[value] = (map[value] || 0) + 1; return map },
  {}
)

Or slightly fancier in a functional way without mutation, using destructuring and object spread syntax:

let countObject = array.reduce(
  (value, {[value]: count = 0, ...rest}) => ({ [value]: count + 1, ...rest }),
  {}
)

At this point, you can use the Map or object for your counts (and the map is directly iterable, unlike an object), or convert it to two arrays.

For the Map:

countMap.forEach((count, value) => console.log(`value: ${value}, count: ${count}`)

let values = countMap.keys()
let counts = countMap.values()

Or for the object:

Object
  .entries(countObject) // convert to array of [key, valueAtKey] pairs
  .forEach(([value, count]) => console.log(`value: ${value}, count: ${count}`)

let values = Object.keys(countObject)
let counts = Object.values(countObject)
4
var array = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];

function countDuplicates(obj, num){
  obj[num] = (++obj[num] || 1);
  return obj;
}

var answer = array.reduce(countDuplicates, {});
// answer => {2:5, 4:1, 5:3, 9:1};

If you still want two arrays, then you could use answer like this...

var uniqueNums = Object.keys(answer);
// uniqueNums => ["2", "4", "5", "9"];

var countOfNums = Object.keys(answer).map(key => answer[key]);
// countOfNums => [5, 1, 3, 1];

Or if you want uniqueNums to be numbers

var uniqueNums = Object.keys(answer).map(key => +key);
// uniqueNums => [2, 4, 5, 9];
  • 1
    es6/7 makes this all much nicer. You may also want to reduce to a Map instead, since it will avoid the typecasting that using a number as an object key (casting as string) does. const answer = array.reduce((a, e) => a.set(e, (a.get(e) || 0) + 1), new Map()) .You can get answer.keys() for the keys, and answer.values() for the values as arrays. [...answer] will give you a big array with all the key/values as 2d arrays. – Josh from Qaribou Jul 9 '17 at 13:08
3

ES6 solution with reduce (fixed):

const arr = [2, 2, 2, 3, 2]

const count = arr.reduce((pre, cur) => (cur === 2) ? ++pre : pre, 0)
console.log(count) // 4

  • Not sure how one number represents the counts of each distinct array element like the question asked. – Ry- Apr 15 at 7:29
3

Using Set you can extract the unique numbers then you can filter your input to get the count of each number:

input = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]
setOcc = new Set(input)
arrOcc = [...setOcc]
arrNumberOcc = arrOcc.map(occ => input.filter(e => e===occ).length);
console.log(arrOcc, arrNumberOcc)

  • 1
    this answer is very good and beautiful .thank you – Vahid Rahmani Nov 28 at 11:02
2

My solution with ramda:

const testArray = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]

const counfFrequency = R.compose(
  R.map(R.length),
  R.groupBy(R.identity),
)

counfFrequency(testArray)

Link to REPL.

1

Check out the code below.

<html>
<head>
<script>
// array with values
var ar = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];

var Unique = []; // we'll store a list of unique values in here
var Counts = []; // we'll store the number of occurances in here

for(var i in ar)
{
    var Index = ar[i];
    Unique[Index] = ar[i];
    if(typeof(Counts[Index])=='undefined')  
        Counts[Index]=1;
    else
        Counts[Index]++;
}

// remove empty items
Unique = Unique.filter(function(){ return true});
Counts = Counts.filter(function(){ return true});

alert(ar.join(','));
alert(Unique.join(','));
alert(Counts.join(','));

var a=[];

for(var i=0; i<Unique.length; i++)
{
    a.push(Unique[i] + ':' + Counts[i] + 'x');
}
alert(a.join(', '));

</script>
</head>
<body>

</body>
</html>
1

Try this:

Array.prototype.getItemCount = function(item) {
    var counts = {};
    for(var i = 0; i< this.length; i++) {
        var num = this[i];
        counts[num] = counts[num] ? counts[num]+1 : 1;
    }
    return counts[item] || 0;
}
1

Using MAP you can have 2 arrays in the output: One containing the occurrences & the other one is containing the number of occurrences.

const dataset = [2,2,4,2,6,4,7,8,5,6,7,10,10,10,15];
let values = [];
let keys = [];

var mapWithOccurences = dataset.reduce((a,c) => {
  if(a.has(c)) a.set(c,a.get(c)+1);
  else a.set(c,1);
  return a;
}, new Map())
.forEach((value, key, map) => {
  keys.push(key);
  values.push(value);
});


console.log(keys)
console.log(values)

1

Here is the simplest solution

const data = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4];
let occurance_arr=[]; 
const aCount =  [...new Set(data)].map(x => {
   occurance_arr.push(data.filter(y=> y==x).length)
});
console.log(occurance_arr);   //[3, 5, 1, 1]
1

This question is more than 8 years old and many, many answers do not really take ES6 and its numerous advantages into account.

Perhaps is even more important to think about the consequences of our code for garbage collection/memory management whenever we create additional arrays, make double or triple copies of arrays or even convert arrays into objects. These are trivial observations for small applications but if scale is a long term objective then think about these, thoroughly.

If you just need a "counter" for specific data types and the starting point is an array (I assume you want therefore an ordered list and take advantage of the many properties and methods arrays offer), you can just simply iterate through array1 and populate array2 with the values and number of occurrences for these values found in array1.

As simple as that.

Example of simple class SimpleCounter (ES6) for Object Oriented Programming and Object Oriented Design

class SimpleCounter { 

    constructor(rawList){ // input array type
        this.rawList = rawList;
        this.finalList = [];
    }

    mapValues(){ // returns a new array

        this.rawList.forEach(value => {
            this.finalList[value] ? this.finalList[value]++ : this.finalList[value] = 1;
        });

        this.rawList = null; // remove array1 for garbage collection

        return this.finalList;

    }

}

module.exports = SimpleCounter;
0

I was solving a similar problem on codewars and devised the following solution which worked for me.

This gives the highest count of an integer in an array and also the integer itself. I think it can be applied to string array as well.

To properly sort Strings, remove the function(a, b){return a-b} from inside the sort() portion

function mostFrequentItemCount(collection) {
    collection.sort(function(a, b){return a-b});
    var i=0;
    var ans=[];
    var int_ans=[];
    while(i<collection.length)
    {
        if(collection[i]===collection[i+1])
        {
            int_ans.push(collection[i]);
        }
        else
        {
            int_ans.push(collection[i]);
            ans.push(int_ans);
            int_ans=[];
        }
        i++;
    }

    var high_count=0;
    var high_ans;

    i=0;
    while(i<ans.length)
    {
        if(ans[i].length>high_count)
        {
            high_count=ans[i].length;
            high_ans=ans[i][0];
        }
        i++;
    }
    return high_ans;
}
0

There is a much better and easy way that we can do this using ramda.js. Code sample here

const ary = [5, 5, 5, 2, 2, 2, 2, 2, 9, 4]; R.countBy(r=> r)(ary) countBy documentation is at documentation

0

In regards of my comment asking @Emissary about an adjustment to his solution. im adding the way i handled it:

let distinctArr = yourArray.filter((curElement, index, array) => array.findIndex(t =>    t.prop1=== curElement.prop1 && t.prop2 === curElement.prop2 && t.prop3=== curElement.prop3) === index);
let distinctWithCount = [...new Set(distinctArr)].map(function(element){element.prop4 = yourArray.filter(t =>    t.prop1=== element.prop1 && t.prop2 === element.prop2 && t.prop2=== element.prop2).length;

What Im doing here is, 1st removing the duplicates and saving the array ( distinctArr) then im counting on the original array (yourArray) the amount of time the object was duplicated and adding a 4th property with the value of the occurrences

Hope it helps for someone in need of this specific solution Ofc it is made with ES6

0

Here is a way to count occurrences inside an array of objects. It also places the first array's contents inside a new array to sort the values so that the order in the original array is not disrupted. Then a recursive function is used to go through each element and count the quantity property of each object inside the array.

var big_array = [
  { name: "Pineapples", quantity: 3 },
  { name: "Pineapples", quantity: 1 },
  { name: "Bananas", quantity: 1 },
  { name: "Limes", quantity: 1 },
  { name: "Bananas", quantity: 1 },
  { name: "Pineapples", quantity: 2 },
  { name: "Pineapples", quantity: 1 },
  { name: "Bananas", quantity: 1 },
  { name: "Bananas", quantity: 1 },
  { name: "Bananas", quantity: 5 },
  { name: "Coconuts", quantity: 1 },
  { name: "Lemons", quantity: 2 },
  { name: "Oranges", quantity: 1 },
  { name: "Lemons", quantity: 1 },
  { name: "Limes", quantity: 1 },
  { name: "Grapefruit", quantity: 1 },
  { name: "Coconuts", quantity: 5 },
  { name: "Oranges", quantity: 6 }
];

function countThem() {
  var names_array = [];
  for (var i = 0; i < big_array.length; i++) {
    names_array.push( Object.assign({}, big_array[i]) );
  }

  function outerHolder(item_array) {
    if (item_array.length > 0) {
      var occurrences = [];
      var counter = 0;
      var bgarlen = item_array.length;
      item_array.sort(function(a, b) { return (a.name > b.name) ? 1 : ((b.name > a.name) ? -1 : 0); });

      function recursiveCounter() {
        occurrences.push(item_array[0]);
        item_array.splice(0, 1);
        var last_occurrence_element = occurrences.length - 1;
        var last_occurrence_entry = occurrences[last_occurrence_element].name;
        var occur_counter = 0;
        var quantity_counter = 0;
        for (var i = 0; i < occurrences.length; i++) {
          if (occurrences[i].name === last_occurrence_entry) {
            occur_counter = occur_counter + 1;
            if (occur_counter === 1) {
              quantity_counter = occurrences[i].quantity;
            } else {
              quantity_counter = quantity_counter + occurrences[i].quantity;
            }
          }
        }

        if (occur_counter > 1) {
          var current_match = occurrences.length - 2;
          occurrences[current_match].quantity = quantity_counter;
          occurrences.splice(last_occurrence_element, 1);
        }

        counter = counter + 1;

        if (counter < bgarlen) {
          recursiveCounter();
        }
      }

      recursiveCounter();

      return occurrences;
    }
  }
  alert(JSON.stringify(outerHolder(names_array)));
}
0
function countOcurrences(arr){
    return arr.reduce((aggregator, value, index, array) => {
      if(!aggregator[value]){
        return aggregator = {...aggregator, [value]: 1};  
      }else{
        return aggregator = {...aggregator, [value]:++aggregator[value]};
      }
    }, {})
}
  • Extremely wasteful to copy the object every time. Creates a quadratic worst case when it could be linear. – Ry- Apr 15 at 7:33

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