208

I have an array:

[1, 2, 3, 5, 2, 8, 9, 2]

I would like to know how many 2s are in the array.

What is the most elegant way to do it in JavaScript without looping with for loop?

0

22 Answers 22

101

Very simple:

var count = 0;
for(var i = 0; i < array.length; ++i){
    if(array[i] == 2)
        count++;
}
7
  • 79
    No, what I mean is without looping with "for" – Leem May 25 '11 at 7:42
  • 13
    @Leem: Why is looping bad? There is always looping at some point. Obviously you would create a function that hides the loop. These "I don't want to use the right tool for the job" -requests never made much sense to me. And we can argue what is most elegant. E.g. for me, making a function call per element to just to compare it to a value is not elegant. – Felix Kling May 25 '11 at 8:33
  • 2
    for laughs: alert(eval('('+my_array.join('==2)+(')+'==2)')) jsfiddle.net/gaby_de_wilde/gujbmych – user40521 Jan 7 '16 at 19:29
  • 50
    The OP probably thinks looping is bad because it is 5 lines of code and requires mutable state. A developer who comes to read that later will have to spend some time to check what it does, and lose focus from their task. An abstraction is far superior: const count = countItems(array, 2); and the implementation details can be argued inside. – joeytwiddle Jul 14 '16 at 5:37
  • 4
    This isn't the right answer because the question clearly ask for not using loops. Check my solution that makes no use of loops. stackoverflow.com/a/44743436/8211014 – Luis Orantes Apr 2 '18 at 1:38
369

[this answer is a bit dated: read the edits]

Say hello to your friends: map and filter and reduce and forEach and every etc.

(I only occasionally write for-loops in javascript, because of block-level scoping is missing, so you have to use a function as the body of the loop anyway if you need to capture or clone your iteration index or value. For-loops are more efficient generally, but sometimes you need a closure.)

The most readable way:

[....].filter(x => x==2).length

(We could have written .filter(function(x){return x==2}).length instead)

The following is more space-efficient (O(1) rather than O(N)), but I'm not sure how much of a benefit/penalty you might pay in terms of time (not more than a constant factor since you visit each element exactly once):

[....].reduce((total,x) => (x==2 ? total+1 : total), 0)

(If you need to optimize this particular piece of code, a for loop might be faster on some browsers... you can test things on jsperf.com.)


You can then be elegant and turn it into a prototype function:

[1, 2, 3, 5, 2, 8, 9, 2].count(2)

Like this:

Object.defineProperties(Array.prototype, {
    count: {
        value: function(value) {
            return this.filter(x => x==value).length;
        }
    }
});

You can also stick the regular old for-loop technique (see other answers) inside the above property definition (again, that would likely be much faster).


2017 edit:

Whoops, this answer has gotten more popular than the correct answer. Actually, just use the accepted answer. While this answer may be cute, the js compilers probably don't (or can't due to spec) optimize such cases. So you should really write a simple for loop:

Object.defineProperties(Array.prototype, {
    count: {
        value: function(query) {
            /* 
               Counts number of occurrences of query in array, an integer >= 0 
               Uses the javascript == notion of equality.
            */
            var count = 0;
            for(let i=0; i<this.length; i++)
                if (this[i]==query)
                    count++;
            return count;
        }
    }
});

You could define a version .countStrictEq(...) which used the === notion of equality. The notion of equality may be important to what you're doing! (for example [1,10,3,'10'].count(10)==2, because numbers like '4'==4 in javascript... hence calling it .countEq or .countNonstrict stresses it uses the == operator.)

Caveat: Defining a common name on the prototype should be done with care. It is fine if you control your code, but bad if everyone wants to declare their own [].count function, especially if they behave differently. You may ask yourself "but .count(query) surely sounds quite perfect and canonical"... but consider perhaps you could do something like [].count(x=> someExpr of x). In that case you define functions like countIn(query, container) (under myModuleName.countIn), or something, or [].myModuleName_count().

Also consider using your own multiset data structure (e.g. like python's 'collections.Counter') to avoid having to do the counting in the first place. This works for exact matches of the form [].filter(x=> x==???).length (worst case O(N) down to O(1)), and modified will speed up queries of the form [].filter(filterFunction).length (roughly by a factor of #total/#duplicates).

class Multiset extends Map {
    constructor(...args) {
        super(...args);
    }
    add(elem) {
        if (!this.has(elem))
            this.set(elem, 1);
        else
            this.set(elem, this.get(elem)+1);
    }
    remove(elem) {
        var count = this.has(elem) ? this.get(elem) : 0;
        if (count>1) {
            this.set(elem, count-1);
        } else if (count==1) {
            this.delete(elem);
        } else if (count==0)
            throw `tried to remove element ${elem} of type ${typeof elem} from Multiset, but does not exist in Multiset (count is 0 and cannot go negative)`;
            // alternatively do nothing {}
    }
}

Demo:

> counts = new Multiset([['a',1],['b',3]])
Map(2) {"a" => 1, "b" => 3}

> counts.add('c')
> counts
Map(3) {"a" => 1, "b" => 3, "c" => 1}

> counts.remove('a')
> counts
Map(2) {"b" => 3, "c" => 1}

> counts.remove('a')
Uncaught tried to remove element a of type string from Multiset, but does not exist in Multiset (count is 0 and cannot go negative)

sidenote: Though, if you still wanted the functional-programming way (or a throwaway one-liner without overriding Array.prototype), you could write it more tersely nowadays as [...].filter(x => x==2).length. If you care about performance, note that while this is asymptotically the same performance as the for-loop (O(N) time), it may require O(N) extra memory (instead of O(1) memory) because it will almost certainly generate an intermediate array and then count the elements of that intermediate array.

6
  • 1
    This is a good FP solution, the only "problem" (irrelevant for most cases) it creates an intermediate array. – tokland May 25 '11 at 8:35
  • 1
    @tokland: If that is a concern, you can do array.reduce(function(total,x){return x==value? : total+1 : total}, 0) – ninjagecko Sep 11 '12 at 14:57
  • 1
    @ninjagecko Shouldn't there only be one colon in the ternary operator? [...].reduce(function(total,x){return x==2 ? total+1 : total}, 0) – A.Krueger Mar 11 '14 at 19:23
  • 2
    @tokland Maybe the filter will not create an intermediate array. A good optimizing compiler can easily recognize that only the length of the array is used. Maybe none of the current JS compilers are smart enough to do this, but that is not important. As Fowler says, "If something hurts, then do more of it". It is short-sighted to avoid compiler deficiencies by writing poor code. If the compiler sucks, fix the compiler. mlafeldt.github.io/blog/if-it-hurts-do-it-more-often – John Henckel Sep 21 '17 at 14:37
  • I would consider this an optimal 2017 solution: const count = (list) => list.filter((x) => x == 2).length. Then use it by calling count(list) where list is an array of numbers. You can also do const count = (list) => list.filter((x) => x.someProp === 'crazyValue').length to count instances of crazyValue in the array of objects. Note, it is an exact match for the property. – agm1984 Sep 30 '17 at 7:43
109

Modern JavaScript:

Note that you should always use triple equals === when doing comparison in JavaScript (JS). The triple equals makes sure, that JS comparison behaves like double equals == in other languages. The following solution shows how to solve this the functional way, which will never have out of bounds error:

// Let has local scope
let array = [1, 2, 3, 5, 2, 8, 9, 2]

// Functional filter with an Arrow function
array.filter(x => x === 2).length  // -> 3

The following anonymous Arrow function (lambda function) in JavaScript:

(x) => {
   const k = 2
   return k * x
}

may be simplified to this concise form for a single input:

x => 2 * x

where the return is implied.

2
  • Is the filter function more performant than using the es6 for of loop? – Niklas Feb 18 '20 at 16:06
  • 1
    @Niklas, I think it's the same (as both have to check all elements, O(N)), but, I guess it's browser dependent and also on the number of elements and computer as to what fits in cache memory. So, I guess the answer is: "It's complex" :) – Sverrisson Feb 18 '20 at 23:08
72

2017: If someone is still interested in the question, my solution is the following:

const arrayToCount = [1, 2, 3, 5, 2, 8, 9, 2];
const result = arrayToCount.filter(i => i === 2).length;
console.log('number of the found elements: ' + result);

11

If you are using lodash or underscore the _.countBy method will provide an object of aggregate totals keyed by each value in the array. You can turn this into a one-liner if you only need to count one value:

_.countBy(['foo', 'foo', 'bar'])['foo']; // 2

This also works fine on arrays of numbers. The one-liner for your example would be:

_.countBy([1, 2, 3, 5, 2, 8, 9, 2])[2]; // 3
1
  • 7
    Huge overkill. As it creates counters for all unique elements. Wasted storage and time. – metalim Dec 4 '17 at 7:38
8

Here is an ES2017+ way to get the counts for all array items in O(N):

const arr = [1, 2, 3, 5, 2, 8, 9, 2];
const counts = {};

arr.forEach((el) => {
  counts[el] = counts[el] ? (counts[el] += 1) : 1;
});

You can also optionally sort the output:

const countsSorted = Object.entries(counts).sort(([_, a], [__, b]) => a - b);

console.log(countsSorted) for your example array:

[
  [ '2', 3 ],
  [ '1', 1 ],
  [ '3', 1 ],
  [ '5', 1 ],
  [ '8', 1 ],
  [ '9', 1 ]
]
4

Weirdest way I can think of doing this is:

(a.length-(' '+a.join(' ')+' ').split(' '+n+' ').join(' ').match(/ /g).length)+1

Where:

  • a is the array
  • n is the number to count in the array

My suggestion, use a while or for loop ;-)

0
4

I'm a begin fan of js array's reduce function.

const myArray =[1, 2, 3, 5, 2, 8, 9, 2];
const count = myArray.reduce((count, num) => num === 2 ? count + 1 : count, 0)

In fact if you really want to get fancy you can create a count function on the Array prototype. Then you can reuse it.

Array.prototype.count = function(filterMethod) {
  return this.reduce((count, item) => filterMethod(item)? count + 1 : count, 0);
} 

Then do

const myArray =[1, 2, 3, 5, 2, 8, 9, 2]
const count = myArray.count(x => x==2)
3

Not using a loop usually means handing the process over to some method that does use a loop.

Here is a way our loop hating coder can satisfy his loathing, at a price:

var a=[1, 2, 3, 5, 2, 8, 9, 2];

alert(String(a).replace(/[^2]+/g,'').length);


/*  returned value: (Number)
3
*/

You can also repeatedly call indexOf, if it is available as an array method, and move the search pointer each time.

This does not create a new array, and the loop is faster than a forEach or filter.

It could make a difference if you have a million members to look at.

function countItems(arr, what){
    var count= 0, i;
    while((i= arr.indexOf(what, i))!= -1){
        ++count;
        ++i;
    }
    return count
}

countItems(a,2)

/*  returned value: (Number)
3
*/
2
  • 2
    You could reduce your regex to just String(a).match(/2/g).length + 1 -- though beware this or your implementation won't play nice with double digits. – Gary Green May 25 '11 at 23:10
  • 3
    how about [2, 22, 2] ? – Oduvan Apr 20 '17 at 6:06
2

Most of the posted solutions using array functions such as filter are incomplete because they aren't parameterized.

Here goes a solution with which the element to count can be set at run time.

function elementsCount(elementToFind, total, number){
    return total += number==elementToFind;
}

var ar = [1, 2, 3, 5, 2, 8, 9, 2];
var elementToFind=2;
var result = ar.reduce(elementsCount.bind(this, elementToFind), 0);

The advantage of this approach is that could easily change the function to count for instance the number of elements greater than X.

You may also declare the reduce function inline

var ar = [1, 2, 3, 5, 2, 8, 9, 2];
var elementToFind=2;
var result = ar.reduce(function (elementToFind, total, number){
    return total += number==elementToFind;
}.bind(this, elementToFind), 0);
1
  • var elementToFind=2; ... function (elementToFind, total, number){ return total += number==elementToFind; }.bind(this, elementToFind) ... is harder to read and gives no advantage over just ... (acc, x) => acc += number == 2.... I like your use of += instead of acc + (number == 2) though. Feels like an unwarranted syntax HACK though. – masterxilo Oct 15 '18 at 14:46
2

Really, why would you need map or filter for this? reduce was "born" for these kind of operations:

[1, 2, 3, 5, 2, 8, 9, 2].reduce( (count,2)=>count+(item==val), 0);

that's it! (if item==val in each iteration, then 1 will be added to the accumulator count, as true will resolve to 1).

As a function:

function countInArray(arr, val) {
   return arr.reduce((count,item)=>count+(item==val),0)
}

Or, go ahead and extend your arrays:

Array.prototype.count = function(val) {
   return this.reduce((count,item)=>count+(item==val),0)
}
2

It is better to wrap it into function:

let countNumber = (array,specificNumber) => {
    return array.filter(n => n == specificNumber).length
}

countNumber([1,2,3,4,5],3) // returns 1
1

I believe what you are looking for is functional approach

    const arr = ['a', 'a', 'b', 'g', 'a', 'e'];
    const count = arr.filter(elem => elem === 'a').length;
    console.log(count); // Prints 3

elem === 'a' is the condition, replace it with your own.

1
  • It won't print 3, but 0. To fix it, your second line should be count = arr.filter(elem => elem === 'a').length or count = arr.filter(elem => {return elem === 'a'}).length – WPomier Mar 29 '19 at 22:19
1

Array.prototype.count = function (v) {
    var c = 0;
    for (let i = 0; i < this.length; i++) {
        if(this[i] == v){
            c++;
        }
    }
    return c;
}

var arr = [1, 2, 3, 5, 2, 8, 9, 2];

console.log(arr.count(2)); //3

0

Solution by recursion

function count(arr, value) {
   if (arr.length === 1)    {
      return arr[0] === value ? 1 : 0;
   } else {
      return (arr.shift() === value ? 1 : 0) + count(arr, value);
   }
}

count([1,2,2,3,4,5,2], 2); // 3
3
  • 1
    Does this handle an empty array? – Andrew Grimm May 31 '17 at 8:00
  • @AndrewGrimm has it right. Base case is arr.length == 0 – Justin Meiners Oct 4 '18 at 18:15
  • Nice solution! I was trying to do something using recursion just for practice and your example was more elegant than what I was doing. It's definitely a more complex way than using filter, reduce or a simple forLoop, and also, more expensive when looking at performance, but still a great way of doing it with recursion. My only change is: I just think it would be better to create a function and add a filter inside it to copy the array and avoid a mutation of the original array, then use the recursive as an inner function. – R. Marques Oct 28 '19 at 20:28
0

var arrayCount = [1,2,3,2,5,6,2,8];
var co = 0;
function findElement(){
    arrayCount.find(function(value, index) {
      if(value == 2)
        co++;
    });
    console.log( 'found' + ' ' + co + ' element with value 2');
}

I would do something like that:

var arrayCount = [1,2,3,4,5,6,7,8];

function countarr(){
  var dd = 0;
  arrayCount.forEach( function(s){
    dd++;
  });

  console.log(dd);
}

0

Create a new method for Array class in core level file and use it all over your project.

// say in app.js
Array.prototype.occurrence = function(val) {
  return this.filter(e => e === val).length;
}

Use this anywhere in your project -

[1, 2, 4, 5, 2, 7, 2, 9].occurrence(2);
// above line returns 3
0

Here is a one liner in javascript.

  1. Use map. Find the matching values (v === 2) in the array, returning an array of ones and zeros.
  2. Use Reduce. Add all the values of the array for the total number found.
[1, 2, 3, 5, 2, 8, 9, 2]
  .map(function(v) {
    return v === 2 ? 1 : 0;
  })
  .reduce((a, b) => a + b, 0);

The result is 3.

0

Depending on how you want to run it:

const reduced = (array, val) => { // self explanatory
    return array.filter((element) => element === val).length;
}

console.log(reduced([1, 2, 3, 5, 2, 8, 9, 2], 2));

// 3

const reducer = (array) => { // array to set > set.forEach > map.set
    const count = new Map();
    const values = new Set(array);
    values.forEach((element)=> {
        count.set(element, array.filter((arrayElement) => arrayElement === element).length);
    });
    return count;
}
console.log(reducer([1, 2, 3, 5, 2, 8, 9, 2]));

// Map(6) {1 => 1, 2 => 3, 3 => 1, 5 => 1, 8 => 1, …}
0

Another approach using RegExp

const list = [1, 2, 3, 5, 2, 8, 9, 2]
const d = 2;
const counter = (`${list.join()},`.match(new RegExp(`${d}\\,`, 'g')) || []).length

console.log(counter)

The Steps follows as below

  1. Join the string using a comma Remember to append ',' after joining so as not to have incorrect values when value to be matched is at the end of the array
  2. Match the number of occurrence of a combination between the digit and comma
  3. Get length of matched items
-7

You can use length property in JavaScript array:

var myarray = [];
var count = myarray.length;//return 0

myarray = [1,2];
count = myarray.length;//return 2
1
  • If you filter it first then you can use length. ie array.filter(x => x === 2).length – Scott Blanch Apr 17 '20 at 21:52
-8
        @{
            /**/

            var x = from z in Model.ListOfFaculty
                    select z;
        }



        @foreach (var c in x)
        {
            <div class="row">
                <div class="col-lg-3">
                    <label>FacultyName :@c.Name </label>
                </div>
                <div class="col-lg-3">
                    <label>
                        Count :@{
                            var b = from v in Model.ListOfDepartment
                                    where (v.Faculty_id == c.ID)
                                    select v;


                        }
                        @b.Count()
                    </label>
                </div>
            </div>



        }

    </div>

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