2050

I have an array of numbers that I need to make sure are unique. I found the code snippet below on the internet and it works great until the array has a zero in it. I found this other script here on Stack Overflow that looks almost exactly like it, but it doesn't fail.

So for the sake of helping me learn, can someone help me determine where the prototype script is going wrong?

Array.prototype.getUnique = function() {
 var o = {}, a = [], i, e;
 for (i = 0; e = this[i]; i++) {o[e] = 1};
 for (e in o) {a.push (e)};
 return a;
}

More answers from duplicate question:

Similar question:

7
  • 5
    @hippietrail That older question is about finding and returning only the duplicates (I was confused too!). My question is more about why this function fails when an array has a zero in it.
    – Mottie
    Feb 12 '14 at 17:34
  • For future readers, when start finding that you have to algorithmically modify the contents of your data structure all the time, (order them, remove repeating elements, etc.) or search for elements inside it at every iteration, it's safe to assume that you're using the wrong data structure in the first place and start using one that is more appropriate for the task at hand (in this case a hash set instead of array).
    – nurettin
    Dec 30 '14 at 11:16
  • I copied the code from somewhere else, a loooong time ago... but it seems pretty straight-forward: o = object, a = array, i = index and e = umm, something :P
    – Mottie
    Aug 4 '15 at 12:38
  • Possible duplicate of How to get unique values in an array Dec 25 '17 at 19:36
  • Just wanted to point out, a lot of people have suggested using JavaScript Set as a solution, proceed with caution because it is not supported in Internet Explorer. If you have to support IE, then use a polyfill.
    – Nam Kim
    Nov 18 '19 at 22:16

73 Answers 73

3586

With JavaScript 1.6 / ECMAScript 5 you can use the native filter method of an Array in the following way to get an array with unique values:

function onlyUnique(value, index, self) {
  return self.indexOf(value) === index;
}

// usage example:
var a = ['a', 1, 'a', 2, '1'];
var unique = a.filter(onlyUnique);

console.log(unique); // ['a', 1, 2, '1']

The native method filter will loop through the array and leave only those entries that pass the given callback function onlyUnique.

onlyUnique checks, if the given value is the first occurring. If not, it must be a duplicate and will not be copied.

This solution works without any extra library like jQuery or prototype.js.

It works for arrays with mixed value types too.

For old Browsers (<ie9), that do not support the native methods filter and indexOf you can find work arounds in the MDN documentation for filter and indexOf.

If you want to keep the last occurrence of a value, simple replace indexOf by lastIndexOf.

With ES6 it could be shorten to this:

// usage example:
var myArray = ['a', 1, 'a', 2, '1'];
var unique = myArray.filter((v, i, a) => a.indexOf(v) === i);

console.log(unique); // unique is ['a', 1, 2, '1']

Thanks to Camilo Martin for hint in comment.

ES6 has a native object Set to store unique values. To get an array with unique values you could now do this:

var myArray = ['a', 1, 'a', 2, '1'];

let unique = [...new Set(myArray)];

console.log(unique); // unique is ['a', 1, 2, '1']

The constructor of Set takes an iterable object, like Array, and the spread operator ... transform the set back into an Array. Thanks to Lukas Liese for hint in comment.

multi array

var a = [[2,4],[2,3],[1,3],[1,3],[1,8]]

var unique = (value, index, self) =>{
  var findIndex = (element) => element[0] == value[0];
  return self.findIndex(findIndex) === index;
}

console.log(a.filter(unique))
4
  • 82
    This solution will run much slower, unfortunately. You're looping twice, once with filter and once with index of Nov 23 '13 at 10:11
  • 30
    In modern JS: .filter((v,i,a)=>a.indexOf(v)==i) (fat arrow notation). Jul 24 '16 at 8:43
  • 260
    let unique_values = [...new Set(random_array)]; developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… Nov 19 '16 at 15:07
  • 1
    Using some() method also we can do the HashMap kind of solution. var temp = []; for(let i =0; i< names.length;i++) { if(!temp.some((x)=> x==names[i])) { temp.push(names[i]); } } Aug 7 at 13:59
1282

Updated answer for ES6/ES2015: Using the Set and the spread operator (thanks le-m), the single line solution is:

let uniqueItems = [...new Set(items)]

Which returns

[4, 5, 6, 3, 2, 23, 1]
2
  • 16
    Notice, that inner array wouldn't work Array.from(new Set([[1,2],[1,2],[1,2,3]])) Oct 24 '16 at 13:49
  • 74
    Please note that if you use the Set and add objects instead of primitive values it will contain unique references to the objects. Thus the set s in let s = new Set([{Foo:"Bar"}, {Foo:"Bar"}]); will return this: Set { { Foo: 'Bar' }, { Foo: 'Bar' } } which is a Set with unique object references to objects that contain the same values. If you write let o = {Foo:"Bar"}; and then create a set with two references like so: let s2 = new Set([o,o]);, then s2 will be Set { { Foo: 'Bar' } }
    – mortb
    Apr 5 '17 at 9:14
254

I split all answers to 4 possible solutions:

  1. Use object { } to prevent duplicates
  2. Use helper array [ ]
  3. Use filter + indexOf
  4. Bonus! ES6 Sets method.

Here's sample codes found in answers:

Use object { } to prevent duplicates

function uniqueArray1( ar ) {
  var j = {};

  ar.forEach( function(v) {
    j[v+ '::' + typeof v] = v;
  });

  return Object.keys(j).map(function(v){
    return j[v];
  });
} 

Use helper array [ ]

function uniqueArray2(arr) {
    var a = [];
    for (var i=0, l=arr.length; i<l; i++)
        if (a.indexOf(arr[i]) === -1 && arr[i] !== '')
            a.push(arr[i]);
    return a;
}

Use filter + indexOf

function uniqueArray3(a) {
  function onlyUnique(value, index, self) { 
      return self.indexOf(value) === index;
  }

  // usage
  var unique = a.filter( onlyUnique ); // returns ['a', 1, 2, '1']

  return unique;
}

Use ES6 [...new Set(a)]

function uniqueArray4(a) {
  return [...new Set(a)];
}

And I wondered which one is faster. I've made sample Google Sheet to test functions. Note: ECMA 6 is not avaliable in Google Sheets, so I can't test it.

Here's the result of tests: enter image description here

I expected to see that code using object { } will win because it uses hash. So I'm glad that tests showed the best results for this algorithm in Chrome and IE. Thanks to @rab for the code.

Update 2020

Google Script enabled ES6 Engine. Now I tested the last code with Sets and it appeared faster than the object method.

0
150

You can also use underscore.js.

console.log(_.uniq([1, 2, 1, 3, 1, 4]));
<script src="http://underscorejs.org/underscore-min.js"></script>

which will return:

[1, 2, 3, 4]
3
  • 23
    Please do this folks. Don't jack something onto to the Array prototype. Please. Apr 26 '16 at 20:06
  • 46
    @JacobDalton Please don't do this. There's no need to add an extra library just for a small job that can be done with array = [...new Set(array)]
    – user6269864
    Jul 6 '18 at 7:02
  • @JacobDalton why not? Is there a downside to "jacking something" onto the array?
    – anshul
    Jul 27 at 14:48
88

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+

0
53

I have since found a nice method that uses jQuery

arr = $.grep(arr, function(v, k){
    return $.inArray(v ,arr) === k;
});

Note: This code was pulled from Paul Irish's duck punching post - I forgot to give credit :P

2
  • 9
    A concise solution, but calling inArray is way less efficient than calling hasOwnProperty. Jun 5 '13 at 14:16
  • 1
    This is also O(N^2), right? Whereas the dictionary or hasOwnProperty approach would likely be O(N*logN).
    – speedplane
    Aug 24 '17 at 4:46
48

Many of the answers here may not be useful to beginners. If de-duping an array is difficult, will they really know about the prototype chain, or even jQuery?

In modern browsers, a clean and simple solution is to store data in a Set, which is designed to be a list of unique values.

const cars = ['Volvo', 'Jeep', 'Volvo', 'Lincoln', 'Lincoln', 'Ford'];
const uniqueCars = Array.from(new Set(cars));
console.log(uniqueCars);

The Array.from is useful to convert the Set back to an Array so that you have easy access to all of the awesome methods (features) that arrays have. There are also other ways of doing the same thing. But you may not need Array.from at all, as Sets have plenty of useful features like forEach.

If you need to support old Internet Explorer, and thus cannot use Set, then a simple technique is to copy items over to a new array while checking beforehand if they are already in the new array.

// Create a list of cars, with duplicates.
var cars = ['Volvo', 'Jeep', 'Volvo', 'Lincoln', 'Lincoln', 'Ford'];
// Create a list of unique cars, to put a car in if we haven't already.
var uniqueCars = [];

// Go through each car, one at a time.
cars.forEach(function (car) {
    // The code within the following block runs only if the
    // current car does NOT exist in the uniqueCars list
    // - a.k.a. prevent duplicates
    if (uniqueCars.indexOf(car) === -1) {
        // Since we now know we haven't seen this car before,
        // copy it to the end of the uniqueCars list.
        uniqueCars.push(car);
    }
});

To make this instantly reusable, let's put it in a function.

function deduplicate(data) {
    if (data.length > 0) {
        var result = [];

        data.forEach(function (elem) {
            if (result.indexOf(elem) === -1) {
                result.push(elem);
            }
        });

        return result;
    }
}

So to get rid of the duplicates, we would now do this.

var uniqueCars = deduplicate(cars);

The deduplicate(cars) part becomes the thing we named result when the function completes.

Just pass it the name of any array you like.

2
  • How would this work if I wanted the new array to not be uniques, but be an array of values that were duplicated? So using the above example, the array I'm looking for is ["volvo","lincoln"]
    – Jason
    Jun 17 at 17:13
  • @Jason I'd probably create a Map to store previously seen items and an array to store the duplicate items. Then loop through the cars array and check if the Map has the current item, if it does then push it to the duplicates array, if not then add it to the Map. I'd be happy to create a code example for you if you create a new question and we can continue the discussion there. Jun 17 at 18:09
35

The simplest, and fastest (in Chrome) way of doing this:

Array.prototype.unique = function() {
    var a = [];
    for (var i=0, l=this.length; i<l; i++)
        if (a.indexOf(this[i]) === -1)
            a.push(this[i]);
    return a;
}

Simply goes through every item in the array, tests if that item is already in the list, and if it's not, pushes to the array that gets returned.

According to JSBench, this function is the fastest of the ones I could find anywhere - feel free to add your own though.

The non-prototype version:

function uniques(arr) {
    var a = [];
    for (var i=0, l=arr.length; i<l; i++)
        if (a.indexOf(arr[i]) === -1 && arr[i] !== '')
            a.push(arr[i]);
    return a;
}

Sorting

When also needing to sort the array, the following is the fastest:

Array.prototype.sortUnique = function() {
    this.sort();
    var last_i;
    for (var i=0;i<this.length;i++)
        if ((last_i = this.lastIndexOf(this[i])) !== i)
            this.splice(i+1, last_i-i);
    return this;
}

or non-prototype:

function sortUnique(arr) {
    arr.sort();
    var last_i;
    for (var i=0;i<arr.length;i++)
        if ((last_i = arr.lastIndexOf(arr[i])) !== i)
            arr.splice(i+1, last_i-i);
    return arr;
}

This is also faster than the above method in most non-Chrome browsers.

6
  • On Linux, Chrome 55.0.2883 prefers your arr.unique() and swilliams' arrclone2.sortFilter() is slowest (78% slower). However, Firefox 51.0.0 (with lots of addons) has swilliams as fastest (yet still slower by Ops/sec than any other Chrome result) with mottie's jQuery $.grep(arr, jqFilter) being slowest (46% slower). Your arr.uniq() was 30% slower. I ran each test twice and got consistent results. Rafael's arr.getUnique() got second place in both browsers.
    – Adam Katz
    Feb 7 '17 at 0:11
  • jsPerf is buggy at the moment, so my edit to this test didn't commit everything, but it did result in adding two tests: Cocco's toUnique() beats Vamsi's ES6 list.filter() on both browsers, beating swilliams' sortFilter() for #1 on FF (sortFilter was 16% slower) and beating your sorted testing (which was slower by 2%) for #3 on Chrome.
    – Adam Katz
    Feb 7 '17 at 0:21
  • Ah, I hadn't caught that those tests were trivially small and don't really matter. A comment to the accepted answer describes that problem and offers a correction in a revision to the test, in which Rafael's code is easily the fastest and Joetje50's arr.unique code is 98% slower. I've also made another revision as noted in this comment.
    – Adam Katz
    Feb 7 '17 at 1:21
  • 4
    Well, actually the algorithm you implemented in unique function has O(n^2) complexity while the one in getUnique is O(n). The first one may be faster on small data sets, but how can you argue with the maths :) You can make sure the latter one is faster if you run it on an array of, say, 1e5 unique items Nov 14 '18 at 10:55
  • also used by lodash.uniq for input_array.length < 200, otherwise uses the [...new Set(input_array)] method. expressed as reducer: input_array.reduce((c, v) => {if (!c.includes(v)) c.push(v); return c;}, []) Sep 30 '20 at 9:04
24
["Defects", "Total", "Days", "City", "Defects"].reduce(function(prev, cur) {
  return (prev.indexOf(cur) < 0) ? prev.concat([cur]) : prev;
 }, []);

[0,1,2,0,3,2,1,5].reduce(function(prev, cur) {
  return (prev.indexOf(cur) < 0) ? prev.concat([cur]) : prev;
 }, []);
0
23

We can do this using ES6 sets:

var duplicatedArray = [1, 2, 3, 4, 5, 1, 1, 1, 2, 3, 4];
var uniqueArray = Array.from(new Set(duplicatedArray));

console.log(uniqueArray);

//The output will be

uniqueArray = [1,2,3,4,5];
23

Magic

a.filter(e=>!(t[e]=e in t)) 

O(n) performance (is faster than new Set); we assume your array is in a and t={}. Explanation here (+Jeppe impr.)

let t, unique= a=> ( t={}, a.filter(e=>!(t[e]=e in t)) );

// "stand-alone" version working with global t:
// a1.filter((t={},e=>!(t[e]=e in t)));

// Test data
let a1 = [5,6,0,4,9,2,3,5,0,3,4,1,5,4,9];
let a2 = [[2, 17], [2, 17], [2, 17], [1, 12], [5, 9], [1, 12], [6, 2], [1, 12]];
let a3 = ['Mike', 'Adam','Matt', 'Nancy', 'Adam', 'Jenny', 'Nancy', 'Carl'];

// Results
console.log(JSON.stringify( unique(a1) ))
console.log(JSON.stringify( unique(a2) ))
console.log(JSON.stringify( unique(a3) ))

4
  • 30
    this look so super cool, that without a solid explanation i fell you're gonna mine bitcoins when i run this Jan 8 '19 at 14:16
  • 4
    what i meant is that you should expand your answer with some explanation and commented deconstruction of it. don't expect people will find useful answers like this. (though it really looks cool a probably works) Jan 9 '19 at 9:49
  • 1
    Not magic, but is much like the "Set"-answers, using O(1) key-lookups in the dictionary. Do you need to increment the counters though? How about "e=>!(t[e]=e in t)". Nice answer though.
    – Jeppe
    Jan 13 '19 at 20:21
  • 1
    @Jeppe when I run your improvement then I experience aha effect (before I don't know that I can use in operator outside the other construction than for loop :P) - Thank you - I appreciate it and will give +2 to your other good answers. Jan 14 '19 at 3:32
17

This prototype getUnique is not totally correct, because if i have a Array like: ["1",1,2,3,4,1,"foo"] it will return ["1","2","3","4"] and "1" is string and 1 is a integer; they are different.

Here is a correct solution:

Array.prototype.unique = function(a){
    return function(){ return this.filter(a) }
}(function(a,b,c){ return c.indexOf(a,b+1) < 0 });

using:

var foo;
foo = ["1",1,2,3,4,1,"foo"];
foo.unique();

The above will produce ["1",2,3,4,1,"foo"].

3
  • 2
    Note that $foo = 'bar' is the PHP way of declaring variables. It will work in javascript, but will create an implicit global, and generally shouldn't be done. Jun 12 '13 at 5:58
  • @CamiloMartin sorry but you're wrong, $foo is global because the example is not in a closure and he's missing the var keyword. Nothing to do with the dollar jsfiddle.net/robaldred/L2MRb
    – Rob
    Jul 17 '13 at 13:09
  • 9
    @Rob that's exactly what I'm saying, PHP people will think $foo is the way of declaring variables in javascript while actually var foo is. Jul 18 '13 at 17:57
17

After looking into all the 90+ answers here, I saw there is room for one more:

Array.includes has a very handy second-parameter: "fromIndex", so by using it, every iteration of the filter callback method will search the array, starting from [current index] + 1 which guarantees not to include currently filtered item in the lookup and also saves time.

//                🚩              🚩 🚩
var list = [0,1,2,2,3,'a','b',4,5,2,'a']

console.log( 
  list.filter((v,i) => !list.includes(v,i+1))
)

// [0,1,3,"b",4,5,2,"a"]

Explanation:

For example, lets assume the filter function is currently iterating at index 2) and the value at that index happens to be 2. The section of the array that is then scanned for duplicates (includes method) is everything after index 2 (i+1):

           👇                    👇
[0, 1, 2,   2 ,3 ,'a', 'b', 4, 5, 2, 'a']
       👆   |---------------------------|

And since the currently filtered item's value 2 is included in the rest of the array, it will be filtered out, because of the leading exclamation mark which negates the filter rule.

1
  • Unfortunately, this keeps the LAST instance of each value, not the first. (which might be ok, but I think keeping the first is generally what's expected)
    – lapo
    Dec 15 '20 at 14:16
16
[...new Set(duplicates)]

This is the simplest one and referenced from MDN Web Docs.

const numbers = [2,3,4,4,2,3,3,4,4,5,5,6,6,7,5,32,3,4,5]
console.log([...new Set(numbers)]) // [2, 3, 4, 5, 6, 7, 32]
1
  • 1
    While this code may solve the question, including an explanation of how and why this solves the problem would really help to improve the quality of your post, and probably result in more up-votes. Remember that you are answering the question for readers in the future, not just the person asking now. Please edit your answer to add explanation, and give an indication of what limitations and assumptions apply.
    – id.ot
    Jul 19 '19 at 18:59
14

That's because 0 is a falsy value in JavaScript.

this[i] will be falsy if the value of the array is 0 or any other falsy value.

1
  • 1
    Ahhhh, ok I see now... but would there be an easy fix to make it work?
    – Mottie
    Dec 25 '09 at 4:46
14

Without extending Array.prototype (it is said to be a bad practice) or using jquery/underscore, you can simply filter the array.

By keeping last occurrence:

    function arrayLastUnique(array) {
        return array.filter(function (a, b, c) {
            // keeps last occurrence
            return c.indexOf(a, b + 1) < 0;
        });
    },

or first occurrence:

    function arrayFirstUnique(array) {
        return array.filter(function (a, b, c) {
            // keeps first occurrence
            return c.indexOf(a) === b;
        });
    },

Well, it's only javascript ECMAScript 5+, which means only IE9+, but it's nice for a development in native HTML/JS (Windows Store App, Firefox OS, Sencha, Phonegap, Titanium, ...).

2
  • 2
    The fact that it's js 1.6 does not mean you can't use filter. At the MDN page they have an implementation for Internet Explorer, I mean, older browsers. Also: JS 1.6 refers only to Firefox's js engine, but the right thing to say it's that it is ECMAScript 5. May 23 '13 at 14:06
  • @CamiloMartin I changed 1.6 to ECMAScript5. Thanks.
    – Cœur
    May 23 '13 at 14:22
14

This has been answered a lot, but it didn't address my particular need.

Many answers are like this:

a.filter((item, pos, self) => self.indexOf(item) === pos);

But this doesn't work for arrays of complex objects.

Say we have an array like this:

const a = [
 { age: 4, name: 'fluffy' },
 { age: 5, name: 'spot' },
 { age: 2, name: 'fluffy' },
 { age: 3, name: 'toby' },
];

If we want the objects with unique names, we should use array.prototype.findIndex instead of array.prototype.indexOf:

a.filter((item, pos, self) => self.findIndex(v => v.name === item.name) === pos);
3
  • 1
    Great solution, beware that a new array will return from a function. (it doesn't modify itself)
    – Thanwa Ch.
    Apr 2 '20 at 17:33
  • Works will with a complex array of objets Dec 15 '20 at 10:10
  • 1
    @EdgarQuintero only if the elements are actually the exact same object, so the array [ { a: 2 }, { a: 2 } ] won't work as many people might expect if you use the indexOf solution, but the findIndex solution might be useful
    – Dave
    Dec 15 '20 at 13:34
14

If you're using Prototype framework there is no need to do 'for' loops, you can use http://prototypejs.org/doc/latest/language/Array/prototype/uniq/ like this:

var a = Array.uniq();  

Which will produce a duplicate array with no duplicates. I came across your question searching a method to count distinct array records so after uniq() I used size() and there was my simple result. p.s. Sorry if i mistyped something

edit: if you want to escape undefined records you may want to add compact() before, like this:

var a = Array.compact().uniq();  
2
  • 14
    because i found a better answer, i think about topics are for all people not just for the one who asked
    – Decebal
    Nov 1 '11 at 15:10
  • Thanks for time machine yet iirc around 15 years ago JS community had debate and result is - do not extend prototype cause of side effects and cause you pollute all JS arrays this way. Jul 10 at 15:49
13
Array.prototype.getUnique = function() {
    var o = {}, a = []
    for (var i = 0; i < this.length; i++) o[this[i]] = 1
    for (var e in o) a.push(e)
    return a
}
3
  • 1
    I think this won't work if the array contains objects/arrays, and I'm not sure if it will preserve the type of scalars. May 23 '13 at 14:02
  • 1
    Yes, everything gets stringified. That could be fixed by storing the original value in o instead of just a 1, although equality comparison would still be stringwise (although, out of all the possible Javascript equalities, it doesn't seem too unreasonable).
    – ephemient
    May 23 '13 at 17:43
  • 1
    The Array.prototype could be extended only with non enumerable methods .... Object.defineProperty(Array.prototype,"getUnique",{}) ... but the idea of using a helper object is very nice
    – bortunac
    Nov 17 '16 at 11:05
12

Now using sets you can remove duplicates and convert them back to the array.

var names = ["Mike","Matt","Nancy", "Matt","Adam","Jenny","Nancy","Carl"];

console.log([...new Set(names)])

Another solution is to use sort & filter

var names = ["Mike","Matt","Nancy", "Matt","Adam","Jenny","Nancy","Carl"];
var namesSorted = names.sort();
const result = namesSorted.filter((e, i) => namesSorted[i] != namesSorted[i+1]);
console.log(result);

11

I had a slightly different problem where I needed to remove objects with duplicate id properties from an array. this worked.

let objArr = [{
  id: '123'
}, {
  id: '123'
}, {
  id: '456'
}];

objArr = objArr.reduce((acc, cur) => [
  ...acc.filter((obj) => obj.id !== cur.id), cur
], []);

console.log(objArr);

0
11

The simplest answer is :

const array = [1, 1, 2, 2, 3, 5, 5, 2];
const uniqueArray = [...new Set(array)];
console.log(uniqueArray); // [1, 2, 3, 5]
1
  • 2
    Simple but it doesn't work with an array of objects.
    – Thanwa Ch.
    Apr 2 '20 at 16:55
8

If you're okay with extra dependencies, or you already have one of the libraries in your codebase, you can remove duplicates from an array in place using LoDash (or Underscore).

Usage

If you don't have it in your codebase already, install it using npm:

npm install lodash

Then use it as follows:

import _ from 'lodash';
let idArray = _.uniq ([
    1,
    2,
    3,
    3,
    3
]);
console.dir(idArray);

Out:

[ 1, 2, 3 ]
1
  • You can also use lodash to remove objects with duplicate properties from an array: _.uniqWith(objectArray, _.isEqual).
    – Mike
    Nov 21 '20 at 3:35
7

I'm not sure why Gabriel Silveira wrote the function that way but a simpler form that works for me just as well and without the minification is:

Array.prototype.unique = function() {
  return this.filter(function(value, index, array) {
    return array.indexOf(value, index + 1) < 0;
  });
};

or in CoffeeScript:

Array.prototype.unique = ->
  this.filter( (value, index, array) ->
    array.indexOf(value, index + 1) < 0
  )
7

Finding unique Array values in simple method

function arrUnique(a){
  var t = [];
  for(var x = 0; x < a.length; x++){
    if(t.indexOf(a[x]) == -1)t.push(a[x]);
  }
  return t;
}
arrUnique([1,4,2,7,1,5,9,2,4,7,2]) // [1, 4, 2, 7, 5, 9]
1
  • How can this answer be correct? Expected result for unique array is [5,9] as per the input given [1,4,2,7,1,5,9,2,4,7,2] Nov 9 '20 at 17:44
7

strange this hasn't been suggested before.. to remove duplicates by object key (id below) in an array you can do something like this:

const uniqArray = array.filter((obj, idx, arr) => (
  arr.findIndex((o) => o.id === obj.id) === idx
)) 
2
  • Don't both filter() and findIndex() have to iterate through the array? That would make this a double-loop and therefore twice as expensive to run as any other answer here.
    – Adam Katz
    Nov 25 '19 at 16:25
  • @AdamKatz yes it will iterate over the array n+1 times. Please be aware that the other answers here using a combination of map, filter, indexOf, reduce etc. also must do this, it's sort of inherent in the problem. To avoid, you could use new Set(), or a lookup object similar to the answer by Grozz.
    – daviestar
    Nov 26 '19 at 17:38
6

It appears we have lost Rafael's answer, which stood as the accepted answer for a few years. This was (at least in 2017) the best-performing solution if you don't have a mixed-type array:

Array.prototype.getUnique = function(){
    var u = {}, a = [];
    for (var i = 0, l = this.length; i < l; ++i) {
        if (u.hasOwnProperty(this[i])) {
            continue;
        }
        a.push(this[i]);
        u[this[i]] = 1;
    }
return a;
}

If you do have a mixed-type array, you can serialize the hash key:

Array.prototype.getUnique = function() {
    var hash = {}, result = [], key; 
    for ( var i = 0, l = this.length; i < l; ++i ) {
        key = JSON.stringify(this[i]);
        if ( !hash.hasOwnProperty(key) ) {
            hash[key] = true;
            result.push(this[i]);
        }
    }
    return result;
}
5

For an object-based array with some unique id's, I have a simple solution through which you can sort in linear complexity

function getUniqueArr(arr){
    const mapObj = {};
    arr.forEach(a => { 
       mapObj[a.id] = a
    })
    return Object.values(mapObj);
}
0
5

The task is to get a unique array from an array consisted of arbitrary types (primitive and non primitive).

The approach based on using new Set(...) is not new. Here it is leveraged by JSON.stringify(...), JSON.parse(...) and [].map method. The advantages are universality (applicability for an array of any types), short ES6 notation and probably performance for this case:

const dedupExample = [
    { a: 1 },
    { a: 1 },
    [ 1, 2 ],
    [ 1, 2 ],
    1,
    1,
    '1',
    '1'
]

const getUniqArrDeep = arr => {
    const arrStr = arr.map(item => JSON.stringify(item))
    return [...new Set(arrStr)]
        .map(item => JSON.parse(item))
}

console.info(getUniqArrDeep(dedupExample))
   /* [ {a: 1}, [1, 2], 1, '1' ] */

1
  • 1
    nice answer! Thanks a lot. Jul 22 at 15:37
4

Using object keys to make unique array, I have tried following

function uniqueArray( ar ) {
  var j = {};

  ar.forEach( function(v) {
    j[v+ '::' + typeof v] = v;
  });


  return Object.keys(j).map(function(v){
    return j[v];
  });
}   

uniqueArray(["1",1,2,3,4,1,"foo", false, false, null,1]);

Which returns ["1", 1, 2, 3, 4, "foo", false, null]

1
  • 1
    I think, your answer is the fastest solution because it uses hash. Mar 27 '17 at 12:22

Not the answer you're looking for? Browse other questions tagged or ask your own question.