150

How can I get a list of unique values in an array? Do I always have to use a second array or is there something similar to java's hashmap in JavaScript?

I am going to be using JavaScript and jQuery only. No additional libraries can be used.

  • 2
    stackoverflow.com/questions/5381621/… - describes exactly what you want I think? – SpaceBison Jun 28 '12 at 14:24
  • 1
    are you open to using the underscore.js library? – jakee Jun 28 '12 at 14:29
  • a java hashmap is basically the same as a javascript object. syntax is {"key": "value", "key2": "value2"} – Ian Jun 28 '12 at 14:29
  • JavaScript/TypeScript collection APIs are terrible compared to Scala, list.toSet – Jordan Stewart Dec 12 '19 at 2:36

29 Answers 29

115

Since I went on about it in the comments for @Rocket's answer, I may as well provide an example that uses no libraries. This requires two new prototype functions, contains and unique

Array.prototype.contains = function(v) {
  for (var i = 0; i < this.length; i++) {
    if (this[i] === v) return true;
  }
  return false;
};

Array.prototype.unique = function() {
  var arr = [];
  for (var i = 0; i < this.length; i++) {
    if (!arr.contains(this[i])) {
      arr.push(this[i]);
    }
  }
  return arr;
}

var duplicates = [1, 3, 4, 2, 1, 2, 3, 8];
var uniques = duplicates.unique(); // result = [1,3,4,2,8]

console.log(uniques);

For more reliability, you can replace contains with MDN's indexOf shim and check if each element's indexOf is equal to -1: documentation

  • 1
    ~a.indexOf(b) === (a.indexOf(b) == -1) – Orwellophile Jan 9 '14 at 11:54
  • 1
    @Lexynux: that was the kind if geeky javascript-nerd answer that should only be used by someone who understands what it means, and possibly not even then. What it is saying, is that writing if (~a.indexOf(b)) ... is identical to writing the longer if (a.indexOf(b) == -1) .... – Orwellophile Jul 18 '16 at 18:36
  • 4
    this has a high run time complexity (worst case: O(n^2) ) – Rahul Arora Oct 21 '17 at 8:40
  • 1
    this is a really inefficient implementation. checking the result array to see if it already contains an item is horrible. a better approach would be to either use an object that tracks the counts, or if you dont want to use aux storage, sort it first in O(n log n) then to a linear sweep and compare side by side elements – Isaiah Lee Dec 17 '17 at 2:50
  • 1
    Do we really need the "contains" function? – Animesh Kumar Mar 18 '18 at 8:42
188

Or for those looking for a one-liner (simple and functional), compatible with current browsers:

let a = ["1", "1", "2", "3", "3", "1"];
let unique = a.filter((item, i, ar) => ar.indexOf(item) === i);
console.log(unique);

Update 18-04-2017

It appears as though 'Array.prototype.includes' now has widespread support in the latest versions of the mainline browsers (compatibility)

Update 29-07-2015:

There are plans in the works for browsers to support a standardized 'Array.prototype.includes' method, which although does not directly answer this question; is often related.

Usage:

["1", "1", "2", "3", "3", "1"].includes("2");     // true

Pollyfill (browser support, source from mozilla):

// https://tc39.github.io/ecma262/#sec-array.prototype.includes
if (!Array.prototype.includes) {
  Object.defineProperty(Array.prototype, 'includes', {
    value: function(searchElement, fromIndex) {

      // 1. Let O be ? ToObject(this value).
      if (this == null) {
        throw new TypeError('"this" is null or not defined');
      }

      var o = Object(this);

      // 2. Let len be ? ToLength(? Get(O, "length")).
      var len = o.length >>> 0;

      // 3. If len is 0, return false.
      if (len === 0) {
        return false;
      }

      // 4. Let n be ? ToInteger(fromIndex).
      //    (If fromIndex is undefined, this step produces the value 0.)
      var n = fromIndex | 0;

      // 5. If n ≥ 0, then
      //  a. Let k be n.
      // 6. Else n < 0,
      //  a. Let k be len + n.
      //  b. If k < 0, let k be 0.
      var k = Math.max(n >= 0 ? n : len - Math.abs(n), 0);

      // 7. Repeat, while k < len
      while (k < len) {
        // a. Let elementK be the result of ? Get(O, ! ToString(k)).
        // b. If SameValueZero(searchElement, elementK) is true, return true.
        // c. Increase k by 1.
        // NOTE: === provides the correct "SameValueZero" comparison needed here.
        if (o[k] === searchElement) {
          return true;
        }
        k++;
      }

      // 8. Return false
      return false;
    }
  });
}
  • 1
    Thanks for this, quite elegant – felipekm Oct 30 '14 at 15:39
  • It's almost copy paste from kennebec, but admittedly passing the array as a parameter rather than using the closure will probably improve performance. – user1115652 Jan 4 '15 at 21:10
  • - must say I did not connect the dots, simply scanned through for a one liner, looked like a large post so skipped, went and found an alternative source and re-posted for others to find quickly. That said, your right; pretty much the same as kennebec. – Josh Mc Jan 4 '15 at 22:34
  • Nice -- Didn't realize that filter sent in the array as a parameter, and didn't want to work on an external object. This is exactly what I need -- my version of javascript (older xerces version) won't have the new goodies for a while. – Gerard ONeill Apr 25 '17 at 23:19
  • 1
    @GerardONeill yeah, some situations it is very vital, eg if it is functionally chained and you want access to an array that has not been assigned a variable such as .map(...).filter(...) – Josh Mc Apr 26 '17 at 5:03
114

Here's a much cleaner solution for ES6 that I see isn't included here. It uses the Set and the spread operator: ...

var a = [1, 1, 2];

[... new Set(a)]

Which returns [1, 2]

  • 1
    Thats so clever! – Josh Mc Apr 6 '17 at 22:40
  • 1
    Now, THIS is a one-liner! – Mac Dec 8 '17 at 20:21
  • 8
    In Typescript you have to use Array.from(... new Set(a)) since Set can't be implicitly converted to an array type. Just a heads up! – Zachscs Apr 27 '18 at 21:25
  • 2
    @Zachscs, I got a compile error when I tried that. Did you mean just Array.from(new Set(a))? That seems to work. – adam0101 Apr 14 '19 at 1:19
69

One Liner, Pure JavaScript

With ES6 syntax

list = list.filter((x, i, a) => a.indexOf(x) == i)

x --> item in array
i --> index of item
a --> array reference, (in this case "list")

enter image description here

With ES5 syntax

list = list.filter(function (x, i, a) { 
    return a.indexOf(x) == i; 
});

Browser Compatibility: IE9+

  • 4
    not sure why this was voted down. It may be little obscure at first, and perhaps classed as 'clever' and not pragmatic to read, but it's declarative, non-destructive, and concise, where most of the other answers are lacking. – Larry Sep 19 '16 at 15:08
  • 1
    @Larry this was down-voted because exactly the same answer was provided years prior to this one. – Alex Okrushko Sep 19 '16 at 21:51
  • @AlexOkrushko fair enough - missed that answer because of the way it was formatted – Larry Sep 20 '16 at 9:29
  • 5
    Everything's a one-liner if you put everything on one line :-) – Gary McGill Sep 18 '17 at 15:42
  • It might be nice to tighten up the equality a.indexOf(x) === i note the three equal signs. – treejanitor Aug 24 '18 at 14:26
17

Using EcmaScript 2016 you can simply do it like this.

 var arr = ["a", "a", "b"];
 var uniqueArray = Array.from(new Set(arr)); // Unique Array ['a', 'b'];

Sets are always unique, and using Array.from() you can convert a Set to an array. For reference have a look at the documentations.

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/from https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Set

16

If you want to leave the original array intact,

you need a second array to contain the uniqe elements of the first-

Most browsers have Array.prototype.filter:

var unique= array1.filter(function(itm, i){
    return array1.indexOf(itm)== i; 
    // returns true for only the first instance of itm
});


//if you need a 'shim':
Array.prototype.filter= Array.prototype.filter || function(fun, scope){
    var T= this, A= [], i= 0, itm, L= T.length;
    if(typeof fun== 'function'){
        while(i<L){
            if(i in T){
                itm= T[i];
                if(fun.call(scope, itm, i, T)) A[A.length]= itm;
            }
            ++i;
        }
    }
    return A;
}
 Array.prototype.indexOf= Array.prototype.indexOf || function(what, i){
        if(!i || typeof i!= 'number') i= 0;
        var L= this.length;
        while(i<L){
            if(this[i]=== what) return i;
            ++i;
        }
        return -1;
    }
15

Now in ES6 we can use the newly introduced ES6 function

var items = [1,1,1,1,3,4,5,2,23,1,4,4,4,2,2,2]
var uniqueItems = Array.from(new Set(items))

It will return the unique result.

[1, 3, 4, 5, 2, 23]
  • 1
    Cleanest solution! – Dimitris Filippou Sep 14 '18 at 8:47
  • This is the way to go, when in a JS environment that supports new Set like this (such as modern Angular/TypeScript) – Don Cheadle Nov 10 '18 at 17:56
  • 1
    It's worthwhile noting that you can also use the Array spread syntax on iterables like Set and Map: let items = [1,1,1,1,3,4,5,2,23,1,4,4,4,2,2,2]; let uniqueItems = [...new Set(items)]; – jacobedawson Oct 15 '19 at 15:01
  • I love these ES6 answers! – Glen Thompson Nov 20 '19 at 20:16
12

These days, you can use ES6's Set data type to convert your array to a unique Set. Then, if you need to use array methods, you can turn it back into an Array:

var arr = ["a", "a", "b"];
var uniqueSet = new Set(arr); // {"a", "b"}
var uniqueArr = Array.from(uniqueSet); // ["a", "b"]
//Then continue to use array methods:
uniqueArr.join(", "); // "a, b"
  • 1
    Neat, would be nice to see some perfomance numbers, I think converting thosesets in particular if they are very dynamic and large could be a performance hickup, only way to tell is to test :) – Astronaut Mar 8 '16 at 1:48
  • 1
    If you're using a transpiler or are in an environment that supports it, you can do the same thing more concisely as: var uniqueArr = [...new Set(arr)]; // ["a", "b"] – Stenerson Jul 14 '16 at 19:55
  • Hey @Astronaut have made some tests about performance like you said? – alexventuraio Jul 18 '16 at 21:05
7

Not native in Javascript, but plenty of libraries have this method.

Underscore.js's _.uniq(array) (link) works quite well (source).

  • Thanks for share! This function take iterator and context along with array as an argument list from v1.4.3. – Kunj Mar 15 '17 at 9:13
6

Using jQuery, here's an Array unique function I made:

Array.prototype.unique = function () {
    var arr = this;
    return $.grep(arr, function (v, i) {
        return $.inArray(v, arr) === i;
    });
}

console.log([1,2,3,1,2,3].unique()); // [1,2,3]
  • 5
    if you're going to use jQuery inside a core javascript object's prototype, might it not be better to write a jQuery function, such as $.uniqueArray(arr)? Embedding references to jQuery within Array's prototype seems questionable – jackwanders Jun 28 '12 at 14:38
  • 1
    @jackwanders: What's so questionable about it? If you got jQuery on the page, let's use it. – Rocket Hazmat Jun 28 '12 at 14:40
  • Just that the new unique function you wrote is now dependent on jQuery; you can't move it to a new site or app without ensuring that jQuery is in use there. – jackwanders Jun 28 '12 at 14:45
  • 2
    that was my point; if you're going to use jQuery, then make the function itself part of jQuery. If I were going to extend the prototype of a core object, I'd stick to core javascript, just to keep things reusable. If someone else is looking at your code, it's obvious that $.uniqueArray is reliant on jQuery; less obvious that Array.prototype.unique is as well. – jackwanders Jun 28 '12 at 14:47
  • 1
    @jackwanders: I guess. I use this in my code, as I always use jQuery, and I just like extending prototypes. But, I understand your point now. I'll leave this here anyway. – Rocket Hazmat Jun 28 '12 at 14:48
6

Short and sweet solution using second array;

var axes2=[1,4,5,2,3,1,2,3,4,5,1,3,4];

    var distinct_axes2=[];

    for(var i=0;i<axes2.length;i++)
        {
        var str=axes2[i];
        if(distinct_axes2.indexOf(str)==-1)
            {
            distinct_axes2.push(str);
            }
        }
    console.log("distinct_axes2 : "+distinct_axes2); // distinct_axes2 : 1,4,5,2,3
  • Short? and sweet? Have you looked at the top solutions? – Alex Okrushko Sep 16 '16 at 20:04
4

You only need vanilla JS to find uniques with Array.some and Array.reduce. With ES2015 syntax it's only 62 characters.

a.reduce((c, v) => b.some(w => w === v) ? c : c.concat(v)), b)

Array.some and Array.reduce are supported in IE9+ and other browsers. Just change the fat arrow functions for regular functions to support in browsers that don't support ES2015 syntax.

var a = [1,2,3];
var b = [4,5,6];
// .reduce can return a subset or superset
var uniques = a.reduce(function(c, v){
    // .some stops on the first time the function returns true                
    return (b.some(function(w){ return w === v; }) ?  
      // if there's a match, return the array "c"
      c :     
      // if there's no match, then add to the end and return the entire array                                        
      c.concat(v)}),                                  
  // the second param in .reduce is the starting variable. This is will be "c" the first time it runs.
  b);                                                 

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/some https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/Reduce

3

Majority of the solutions above have a high run time complexity.

Here is the solution that uses reduce and can do the job in O(n) time.

Array.prototype.unique = Array.prototype.unique || function() {
        var arr = [];
	this.reduce(function (hash, num) {
		if(typeof hash[num] === 'undefined') {
			hash[num] = 1; 
			arr.push(num);
		}
		return hash;
	}, {});
	return arr;
}
    
var myArr = [3,1,2,3,3,3];
console.log(myArr.unique()); //[3,1,2];

Note:

This solution is not dependent on reduce. The idea is to create an object map and push unique ones into the array.

2

Fast, compact, no nested loops, works with any object not just strings and numbers, takes a predicate, and only 5 lines of code!!

function findUnique(arr, predicate) {
  var found = {};
  arr.forEach(d => {
    found[predicate(d)] = d;
  });
  return Object.keys(found).map(key => found[key]); 
}

Example: To find unique items by type:

var things = [
  { name: 'charm', type: 'quark'},
  { name: 'strange', type: 'quark'},
  { name: 'proton', type: 'boson'},
];

var result = findUnique(things, d => d.type);
//  [
//    { name: 'charm', type: 'quark'},
//    { name: 'proton', type: 'boson'}
//  ] 

If you want it to find the first unique item instead of the last add a found.hasOwnPropery() check in there.

1

ES6 way:

const uniq = (arr) => (arr.filter((item, index, arry) => (arry.indexOf(item) === index)));
1

you can use,

let arr1 = [1,2,1,3];
let arr2 = [2,3,4,5,1,2,3];

let arr3 = [...new Set([...arr1,...arr2])];

it will give you unique elements,

**> but there is a catch,

for this "1" and 1 and are diff elements,**

second option is to use filter method on the array.

1

If you don't need to worry so much about older browsers, this is exactly what Sets are designed for.

The Set object lets you store unique values of any type, whether primitive values or object references.

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Set

const set1 = new Set([1, 2, 3, 4, 5, 1]);
// returns Set(5) {1, 2, 3, 4, 5}
1

You can enter array with duplicates and below method will return array with unique elements.

function getUniqueArray(array){
    var uniqueArray = [];
    if (array.length > 0) {
       uniqueArray[0] = array[0];
    }
    for(var i = 0; i < array.length; i++){
        var isExist = false;
        for(var j = 0; j < uniqueArray.length; j++){
            if(array[i] == uniqueArray[j]){
                isExist = true;
                break;
            }
            else{
                isExist = false;
            }
        }
        if(isExist == false){
            uniqueArray[uniqueArray.length] = array[i];
        }
    }
    return uniqueArray;
}
0

The only problem with the solutions given so far is efficiency. If you are concerned about that (and you probably should) you need to avoid nested loops: for * for, filter * indexOf, grep * inArray, they all iterate the array multiple times. You can implement a single loop with solutions like this or this

0
Array.prototype.unique = function () {
    var dictionary = {};
    var uniqueValues = [];
    for (var i = 0; i < this.length; i++) {
        if (dictionary[this[i]] == undefined){
            dictionary[this[i]] = i;
            uniqueValues.push(this[i]);
        }
    }
    return uniqueValues; 
}
0

I have tried this problem in pure JS. I have followed following steps 1. Sort the given array, 2. loop through the sorted array, 3. Verify previous value and next value with current value

// JS
var inpArr = [1, 5, 5, 4, 3, 3, 2, 2, 2,2, 100, 100, -1];

//sort the given array
inpArr.sort(function(a, b){
    return a-b;
});

var finalArr = [];
//loop through the inpArr
for(var i=0; i<inpArr.length; i++){
    //check previous and next value 
  if(inpArr[i-1]!=inpArr[i] && inpArr[i] != inpArr[i+1]){
        finalArr.push(inpArr[i]);
  }
}
console.log(finalArr);

Demo

0
function findUniques(arr){
  let uniques = []
  arr.forEach(n => {
    if(!uniques.includes(n)){
      uniques.push(n)
    }       
  })
  return uniques
}

let arr = ["3", "3", "4", "4", "4", "5", "7", "9", "b", "d", "e", "f", "h", "q", "r", "t", "t"]

findUniques(arr)
// ["3", "4", "5", "7", "9", "b", "d", "e", "f", "h", "q", "r", "t"]
0

Having in mind that indexOf will return the first occurence of an element, you can do something like this:

Array.prototype.unique = function(){
        var self = this;
        return this.filter(function(elem, index){
            return self.indexOf(elem) === index;
        })
    }
0

Another thought of this question. Here is what I did to achieve this with fewer code.

var distinctMap = {};
var testArray = ['John', 'John', 'Jason', 'Jason'];
for (var i = 0; i < testArray.length; i++) {
  var value = testArray[i];
  distinctMap[value] = '';
};
var unique_values = Object.keys(distinctMap);

console.log(unique_values);

0

function findUnique(arr) {
  var result = [];
  arr.forEach(function(d) {
    if (result.indexOf(d) === -1)
      result.push(d);
  });
  return result;
}

var unique = findUnique([1, 2, 3, 1, 2, 1, 4]); // [1,2,3,4]
console.log(unique);

0

Here is an approach with customizable equals function which can be used for primitives as well as for custom objects:

Array.prototype.pushUnique = function(element, equalsPredicate = (l, r) => l == r) {
    let res = !this.find(item => equalsPredicate(item, element))
    if(res){
        this.push(element)
    }
    return res
}

usage:

//with custom equals for objects
myArrayWithObjects.pushUnique(myObject, (left, right) => left.id == right.id)

//with default equals for primitives
myArrayWithPrimitives.pushUnique(somePrimitive)
-1

I was just thinking if we can use linear search to eliminate the duplicates:

JavaScript:
function getUniqueRadios() {

var x=document.getElementById("QnA");
var ansArray = new Array();
var prev;


for (var i=0;i<x.length;i++)
  {
    // Check for unique radio button group
    if (x.elements[i].type == "radio")
    {
            // For the first element prev will be null, hence push it into array and set the prev var.
            if (prev == null)
            {
                prev = x.elements[i].name;
                ansArray.push(x.elements[i].name);
            } else {
                   // We will only push the next radio element if its not identical to previous.
                   if (prev != x.elements[i].name)
                   {
                       prev = x.elements[i].name;
                       ansArray.push(x.elements[i].name);
                   }
            }
    }

  }

   alert(ansArray);

}

HTML:

<body>

<form name="QnA" action="" method='post' ">

<input type="radio"  name="g1" value="ANSTYPE1"> good </input>
<input type="radio" name="g1" value="ANSTYPE2"> avg </input>

<input type="radio"  name="g2" value="ANSTYPE3"> Type1 </input>
<input type="radio" name="g2" value="ANSTYPE2"> Type2 </input>


<input type="submit" value='SUBMIT' onClick="javascript:getUniqueRadios()"></input>


</form>
</body>
-1

Here is the one liner solution to the problem:

var seriesValues = [120, 120, 120, 120];
seriesValues = seriesValues.filter((value, index, seriesValues) => (seriesValues.slice(0, index)).indexOf(value) === -1);
console.log(seriesValues);

Copy paste this to browsers console and get the results, yo :-)

-3

i have inbuilt JQuery Unique function.

uniqueValues= jQuery.unique( duplicateValues );

For more you can refer to the jquery API Documentations.

http://api.jquery.com/jquery.unique/

  • 8
    Note that this only works on arrays of DOM elements, not strings or numbers. -- quote from documentation. – mco Feb 8 '15 at 22:56

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