This question already has an answer here:

I have a very simple JavaScript array that may or may not contain duplicates.

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

I need to remove the duplicates and put the unique values in a new array.

I could point to all the codes that I've tried but I think it's useless because they don't work. I accept jQuery solutions too.

Similar question:

marked as duplicate by Samuel Liew javascript Nov 15 '17 at 10:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 36
    _.uniq(peoplenames) solves this lodash.com/docs#uniq – Connor Leech Jul 29 '14 at 19:29
  • 4
    @ConnorLeech its easy with lodash but not optimized way – Suhail Mumtaz Awan May 16 '17 at 10:35
  • Best Solution has simple converting array to object, with object keys be arrary elements, value of each key let say "true". Then just convert back to array with Object.keys(obj_name) – nirbhaygp Dec 30 '17 at 13:46
  • 1
    @SuhailMumtazAwan that's not necessarily true, authors of lodash think about perf as well. Example on a random 1000 element array of numbers between 0-10: jsperf.com/lodash-es6set-unique-array Perf is quite close – xlm Sep 4 at 23:26

54 Answers 54

up vote 388 down vote accepted

Quick and dirty using jQuery:

var names = ["Mike","Matt","Nancy","Adam","Jenny","Nancy","Carl"];
var uniqueNames = [];
$.each(names, function(i, el){
    if($.inArray(el, uniqueNames) === -1) uniqueNames.push(el);
});
  • 13
    Isn't this O(n^2)? – Darthfett Oct 25 '16 at 3:10
  • 3
    This can now be done without jQuery using Array.prototype.filter – iblamefish Dec 25 '16 at 7:55
  • 75
    wouldn't mind a non-jquery answer for those who don't use it – Matej Voboril Apr 11 '17 at 18:08
  • 3
    @EyoelD Says that acceps jQuery solutions too. Btw, I don't know why using jQuery solution when a non-jQuery can be done. – Jorge Fuentes González Nov 14 '17 at 11:26
  • 4
    @JorgeFuentesGonzález because Stackoverflow has this weird thing for jQuery – robertmain Aug 13 at 17:48

"Smart" but naïve way

uniqueArray = a.filter(function(item, pos) {
    return a.indexOf(item) == pos;
})

Basically, we iterate over the array and, for each element, check if the first position of this element in the array is equal to the current position. Obviously, these two positions are different for duplicate elements.

Using the 3rd ("this array") parameter of the filter callback we can avoid a closure of the array variable:

uniqueArray = a.filter(function(item, pos, self) {
    return self.indexOf(item) == pos;
})

Although concise, this algorithm is not particularly efficient for large arrays (quadratic time).

Hashtables to the rescue

function uniq(a) {
    var seen = {};
    return a.filter(function(item) {
        return seen.hasOwnProperty(item) ? false : (seen[item] = true);
    });
}

This is how it's usually done. The idea is to place each element in a hashtable and then check for its presence instantly. This gives us linear time, but has at least two drawbacks:

  • since hash keys can only be strings in Javascript, this code doesn't distinguish numbers and "numeric strings". That is, uniq([1,"1"]) will return just [1]
  • for the same reason, all objects will be considered equal: uniq([{foo:1},{foo:2}]) will return just [{foo:1}].

That said, if your arrays contain only primitives and you don't care about types (e.g. it's always numbers), this solution is optimal.

The best from two worlds

A universal solution combines both approaches: it uses hash lookups for primitives and linear search for objects.

function uniq(a) {
    var prims = {"boolean":{}, "number":{}, "string":{}}, objs = [];

    return a.filter(function(item) {
        var type = typeof item;
        if(type in prims)
            return prims[type].hasOwnProperty(item) ? false : (prims[type][item] = true);
        else
            return objs.indexOf(item) >= 0 ? false : objs.push(item);
    });
}

sort | uniq

Another option is to sort the array first, and then remove each element equal to the preceding one:

function uniq(a) {
    return a.sort().filter(function(item, pos, ary) {
        return !pos || item != ary[pos - 1];
    })
}

Again, this doesn't work with objects (because all objects are equal for sort). Additionally, we silently change the original array as a side effect - not good! However, if your input is already sorted, this is the way to go (just remove sort from the above).

Unique by...

Sometimes it's desired to uniquify a list based on some criteria other than just equality, for example, to filter out objects that are different, but share some property. This can be done elegantly by passing a callback. This "key" callback is applied to each element, and elements with equal "keys" are removed. Since key is expected to return a primitive, hash table will work fine here:

function uniqBy(a, key) {
    var seen = {};
    return a.filter(function(item) {
        var k = key(item);
        return seen.hasOwnProperty(k) ? false : (seen[k] = true);
    })
}

A particularly useful key() is JSON.stringify which will remove objects that are physically different, but "look" the same:

a = [[1,2,3], [4,5,6], [1,2,3]]
b = uniqBy(a, JSON.stringify)
console.log(b) // [[1,2,3], [4,5,6]]

If the key is not primitive, you have to resort to the linear search:

function uniqBy(a, key) {
    var index = [];
    return a.filter(function (item) {
        var k = key(item);
        return index.indexOf(k) >= 0 ? false : index.push(k);
    });
}

or use the Set object in ES6:

function uniqBy(a, key) {
    var seen = new Set();
    return a.filter(item => {
        var k = key(item);
        return seen.has(k) ? false : seen.add(k);
    });
}

(Some people prefer !seen.has(k) && seen.add(k) instead of seen.has(k) ? false : seen.add(k)).

Libraries

Both underscore and Lo-Dash provide uniq methods. Their algorithms are basically similar to the first snippet above and boil down to this:

var result = [];
a.forEach(function(item) {
     if(result.indexOf(item) < 0) {
         result.push(item);
     }
});

This is quadratic, but there are nice additional goodies, like wrapping native indexOf, ability to uniqify by a key (iteratee in their parlance), and optimizations for already sorted arrays.

If you're using jQuery and can't stand anything without a dollar before it, it goes like this:

  $.uniqArray = function(a) {
        return $.grep(a, function(item, pos) {
            return $.inArray(item, a) === pos;
        });
  }

which is, again, a variation of the first snippet.

Performance

Function calls are expensive in Javascript, therefore the above solutions, as concise as they are, are not particularly efficient. For maximal performance, replace filter with a loop and get rid of other function calls:

function uniq_fast(a) {
    var seen = {};
    var out = [];
    var len = a.length;
    var j = 0;
    for(var i = 0; i < len; i++) {
         var item = a[i];
         if(seen[item] !== 1) {
               seen[item] = 1;
               out[j++] = item;
         }
    }
    return out;
}

This chunk of ugly code does the same as the snippet #3 above, but an order of magnitude faster (as of 2017 it's only twice as fast - JS core folks are doing a great job!)

function uniq(a) {
    var seen = {};
    return a.filter(function(item) {
        return seen.hasOwnProperty(item) ? false : (seen[item] = true);
    });
}

function uniq_fast(a) {
    var seen = {};
    var out = [];
    var len = a.length;
    var j = 0;
    for(var i = 0; i < len; i++) {
         var item = a[i];
         if(seen[item] !== 1) {
               seen[item] = 1;
               out[j++] = item;
         }
    }
    return out;
}

/////

var r = [0,1,2,3,4,5,6,7,8,9],
    a = [],
    LEN = 1000,
    LOOPS = 1000;

while(LEN--)
    a = a.concat(r);

var d = new Date();
for(var i = 0; i < LOOPS; i++)
    uniq(a);
document.write('<br>uniq, ms/loop: ' + (new Date() - d)/LOOPS)

var d = new Date();
for(var i = 0; i < LOOPS; i++)
    uniq_fast(a);
document.write('<br>uniq_fast, ms/loop: ' + (new Date() - d)/LOOPS)

ES6

ES6 provides the Set object, which makes things a whole lot easier:

function uniq(a) {
   return Array.from(new Set(a));
}

or

let uniq = a => [...new Set(a)];

Note that, unlike in python, ES6 sets are iterated in insertion order, so this code preserves the order of the original array.

However, if you need an array with unique elements, why not use sets right from the beginning?

Generators

A "lazy", generator-based version of uniq can be built on the same basis:

  • take the next value from the argument
  • if it's been seen already, skip it
  • otherwise, yield it and add it to the set of already seen values

function* uniqIter(a) {
    let seen = new Set();

    for (let x of a) {
        if (!seen.has(x)) {
            seen.add(x);
            yield x;
        }
    }
}

// example:

function* randomsBelow(limit) {
    while (1)
        yield Math.floor(Math.random() * limit);
}

// note that randomsBelow is endless

count = 20;
limit = 30;

for (let r of uniqIter(randomsBelow(limit))) {
    console.log(r);
    if (--count === 0)
        break
}

// exercise for the reader: what happens if we set `limit` less than `count` and why

  • 12
    filter and indexOf have been introduced in ECMAScript 5, so this will not work in old IE versions (<9). If you care about those browsers, you will have to use libraries with similar functions (jQuery, underscore.js etc.) – Roman Bataev Feb 10 '12 at 15:26
  • 13
    @RoderickObrist you might if you want your page to work in older browsers – Michael Robinson Dec 17 '12 at 2:25
  • 10
    This is O(n^2) solution, which can run very slow in large arrays... – seriyPS Feb 3 '13 at 0:47
  • 6
    Try this array: ["toString", "valueOf", "failed"]. toString and valueOf are stripped completely. Use Object.create(null) instead of {}. – Charles Beattie Jun 16 '14 at 14:02
  • 3
    Anyone know how fast the Set conversion solution is, compared to the others? – Eric Nguyen Aug 12 '16 at 19:34

Got tired of seeing all bad examples with for-loops or jQuery. Javascript has the perfect tools for this nowadays: sort, map and reduce.

Uniq reduce while keeping existing order

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

var uniq = names.reduce(function(a,b){
    if (a.indexOf(b) < 0 ) a.push(b);
    return a;
  },[]);

console.log(uniq, names) // [ 'Mike', 'Matt', 'Nancy', 'Adam', 'Jenny', 'Carl' ]

// one liner
return names.reduce(function(a,b){if(a.indexOf(b)<0)a.push(b);return a;},[]);

Faster uniq with sorting

There are probably faster ways but this one is pretty decent.

var uniq = names.slice() // slice makes copy of array before sorting it
  .sort(function(a,b){
    return a > b;
  })
  .reduce(function(a,b){
    if (a.slice(-1)[0] !== b) a.push(b); // slice(-1)[0] means last item in array without removing it (like .pop())
    return a;
  },[]); // this empty array becomes the starting value for a

// one liner
return names.slice().sort(function(a,b){return a > b}).reduce(function(a,b){if (a.slice(-1)[0] !== b) a.push(b);return a;},[]);

Update 2015: ES6 version:

In ES6 you have Sets and Spread which makes it very easy and performant to remove all duplicates:

var uniq = [ ...new Set(names) ]; // [ 'Mike', 'Matt', 'Nancy', 'Adam', 'Jenny', 'Carl' ]

Sort based on occurrence:

Someone asked about ordering the results based on how many unique names there are:

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

var uniq = names
  .map((name) => {
    return {count: 1, name: name}
  })
  .reduce((a, b) => {
    a[b.name] = (a[b.name] || 0) + b.count
    return a
  }, {})

var sorted = Object.keys(uniq).sort((a, b) => uniq[a] < uniq[b])

console.log(sorted)
  • 4
    This is perfect because unlike filter it actually allows to do some deep manipulation of objects – Necronet Jul 18 '14 at 23:00
  • 4
    This answer deserves more upvotes. Just beautiful, and only Javascript solution as requested by OP! Thank you!! – Mbuso Jul 20 '14 at 12:14
  • 4
    Perfect answer, clean and functional. – amaurs Jul 16 '15 at 1:30
  • Nice! Would it be possible to sort the array based on the frequency of duplicate objects? So that "Nancy" in the above example is moved to the front (or back) of the modified array? – ALx Nov 25 '15 at 13:38
  • 9
    The ES6 version is beautiful. – superluminary Aug 4 '16 at 9:01

Vanilla JS: Remove duplicates using an Object like a Set

You can always try putting it into an object, and then iterating through its keys:

function remove_duplicates(arr) {
    var obj = {};
    var ret_arr = [];
    for (var i = 0; i < arr.length; i++) {
        obj[arr[i]] = true;
    }
    for (var key in obj) {
        ret_arr.push(key);
    }
    return ret_arr;
}

Vanilla JS: Remove duplicates by tracking already seen values (order-safe)

Or, for an order-safe version, use an object to store all previously seen values, and check values against it before before adding to an array.

function remove_duplicates_safe(arr) {
    var seen = {};
    var ret_arr = [];
    for (var i = 0; i < arr.length; i++) {
        if (!(arr[i] in seen)) {
            ret_arr.push(arr[i]);
            seen[arr[i]] = true;
        }
    }
    return ret_arr;

}

ECMAScript 6: Use the new Set data structure (order-safe)

ECMAScript 6 adds the new Set Data-Structure, which lets you store values of any type. Set.values returns elements in insertion order.

function remove_duplicates_es6(arr) {
    let s = new Set(arr);
    let it = s.values();
    return Array.from(it);
}

Example usage:

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

b = remove_duplicates(a);
// b:
// ["Adam", "Carl", "Jenny", "Matt", "Mike", "Nancy"]

c = remove_duplicates_safe(a);
// c:
// ["Mike", "Matt", "Nancy", "Adam", "Jenny", "Carl"]

d = remove_duplicates_es6(a);
// d:
// ["Mike", "Matt", "Nancy", "Adam", "Jenny", "Carl"]
  • 4
    In more recent browsers, you could even do var c = Object.keys(b). It should be noted that this approach will only work for strings, but it's alright, that's what the original question was asking for. – amenthes Aug 26 '14 at 8:33
  • 1
    It should also be noted that you may lose the order of the array because objects don't keep their properties in order. – Juan Mendes May 27 '15 at 19:38
  • 1
    @JuanMendes I have created an order-safe version, which simply copies to the new array if the value has not been seen before. – Darthfett Jun 23 '15 at 21:36
  • What is happening on this line obj[arr[i]] = true; ?? – kittu Oct 11 at 16:46
  • 1
    @kittu, that is getting the ith element of the array, and putting it into the object (being used as a set). The key is the element, and the value is true, which is entirely arbitrary, as we only care about the keys of the object. – Darthfett Oct 12 at 2:54

Use Underscore.js

It's a library with a host of functions for manipulating arrays.

It's the tie to go along with jQuery's tux, and Backbone.js's suspenders.

_.uniq

_.uniq(array, [isSorted], [iterator]) Alias: unique
Produces a duplicate-free version of the array, using === to test object equality. If you know in advance that the array is sorted, passing true for isSorted will run a much faster algorithm. If you want to compute unique items based on a transformation, pass an iterator function.

Example

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

alert(_.uniq(names, false));

Note: Lo-Dash (an underscore competitor) also offers a comparable .uniq implementation.

  • 2
    unfortunately underscore does not provide the ability to define a custom equality function. The callback they do allow is for an 'iteratee' function e.g. with args (item, value, array). – Rene Wooller Nov 17 '14 at 7:02

A single line version using array filter and indexOf functions:

arr = arr.filter (function (value, index, array) { 
    return array.indexOf (value) == index;
});
  • care to explain how it eliminates dupes? – neelmeg Jun 22 '16 at 4:59
  • @web_dev: it doesn't !! I have corrected a previous edit which broke the code. Hope it makes more sens now. Thanks for asking! – HBP Jun 22 '16 at 7:06
  • This unfortunately has poor performance if this is a large array -- arr.indexOf is O(n), which makes this algorithm O(n^2) – Darthfett Oct 18 '16 at 16:59
  • @HBP hi can you please check stackoverflow.com/questions/48355599/… thank you... – Sudarshan Kalebere Jan 24 at 9:49

You can simply do it in JavaScript, with the help of the second - index - parameter of the filter method:

var a = [2,3,4,5,5,4];
a.filter(function(value, index){ return a.indexOf(value) == index });

or in short hand

a.filter((v,i) => a.indexOf(v) == i)
  • this only works for an array containing primitives? – frozen Jul 16 '17 at 3:36
  • Yes , you are correct @frozen – Ashutosh Jha Jul 16 '17 at 13:58
  • this a.indexOf(v)==i should be a.indexOf(v) === a.lastIndexOf(v) – Hitmands Jul 17 '17 at 14:43
  • 4
    @Hitmands You are comparing from right , I am comparing from left . nothing else . – Ashutosh Jha Jul 18 '17 at 5:54
  • Works also without requiring the a variable, as the array is the 3rd parameter of filter: [1/0, 2,1/0,2,3].filter((v,i,a) => a.indexOf(v) === i) (note that it also works nice with Infinity ☺ ) – Xenos Dec 20 '17 at 10:36

One line:

let names = ['Mike','Matt','Nancy','Adam','Jenny','Nancy','Carl', 'Nancy'];
let dup = [...new Set(names)];
console.log(dup);
  • 2
    Best answer, if you're using ES6 – chetan92 Apr 14 at 21:03

The most concise way to remove duplicates from an array using native javascript functions is to use a sequence like below:

vals.sort().reduce(function(a, b){ if (b != a[0]) a.unshift(b); return a }, [])

there's no need for slice nor indexOf within the reduce function, like i've seen in other examples! it makes sense to use it along with a filter function though:

vals.filter(function(v, i, a){ return i == a.indexOf(v) })

Yet another ES6(2015) way of doing this that already works on a few browsers is:

Array.from(new Set(vals))

or even using the spread operator:

[...new Set(vals)]

cheers!

  • Set is great and very intuitive for those used to python. Too bad they do not have those great (union, intersect, difference) methods. – caiohamamura Oct 28 '15 at 1:38
  • I went with the simplistic one line of code that utilizes the set mechanic. This was for a custom automation task so I was not leery of using it in the latest version of Chrome (within jsfiddle). However, I would still like to know the shortest all browser compliant way to de-dupe an array. – Alexander Dixon Jun 10 '16 at 14:07
  • sets are part of the new specification, you should use the sort/reduce combo to assure cross-browser compatibility @AlexanderDixon – Ivo Jun 10 '16 at 14:17
  • .reduce() is not cross-browser compatible as I would have to apply a poly-fill. I appreciate your response though. developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – Alexander Dixon Jun 10 '16 at 14:56

use Array.filter() like this

var actualArr = ['Apple', 'Apple', 'Banana', 'Mango', 'Strawberry', 'Banana'];

console.log('Actual Array: ' + actualArr);

var filteredArr = actualArr.filter(function(item, index) {
  if (actualArr.indexOf(item) == index)
    return item;
});

console.log('Filtered Array: ' + filteredArr);

this can be made shorter in ES6 to

actualArr.filter((item,index,self) => self.indexOf(item)==index);

Here is nice explanation of Array.filter()

  • Can you elaborate what you've done here? :-) – Sketchy Coder Sep 14 '17 at 7:03
  • Great! It helps users if you add that to your answer. – Sketchy Coder Sep 14 '17 at 8:56
  • doesn't work when the array is an array of arrays – DCR Mar 12 at 19:04

Go for this one:

var uniqueArray = duplicateArray.filter(function(elem, pos) {
    return duplicateArray.indexOf(elem) == pos;
}); 

Now uniqueArray contains no duplicates.

Simplest One I've run into so far. In es6.

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

 var noDupe = Array.from(new Set(names))

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

  • For Mac users, even though this is an ES6 function, it works in macOS 10.11.6 El Capitan, using the Script Editor. – JMichaelTX Apr 6 '17 at 20:08

I had done a detailed comparison of dupes removal at some other question but having noticed that this is the real place i just wanted to share it here as well.

I believe this is the best way to do this

var myArray = [100, 200, 100, 200, 100, 100, 200, 200, 200, 200],
    reduced = Object.keys(myArray.reduce((p,c) => (p[c] = true,p),{}));
console.log(reduced);

OK .. even though this one is O(n) and the others are O(n^2) i was curious to see benchmark comparison between this reduce / look up table and filter/indexOf combo (I choose Jeetendras very nice implementation https://stackoverflow.com/a/37441144/4543207). I prepare a 100K item array filled with random positive integers in range 0-9999 and and it removes the duplicates. I repeat the test for 10 times and the average of the results show that they are no match in performance.

  • In firefox v47 reduce & lut : 14.85ms vs filter & indexOf : 2836ms
  • In chrome v51 reduce & lut : 23.90ms vs filter & indexOf : 1066ms

Well ok so far so good. But let's do it properly this time in the ES6 style. It looks so cool..! But as of now how it will perform against the powerful lut solution is a mystery to me. Lets first see the code and then benchmark it.

var myArray = [100, 200, 100, 200, 100, 100, 200, 200, 200, 200],
    reduced = [...myArray.reduce((p,c) => p.set(c,true),new Map()).keys()];
console.log(reduced);

Wow that was short..! But how about the performance..? It's beautiful... Since the heavy weight of the filter / indexOf lifted over our shoulders now i can test an array 1M random items of positive integers in range 0..99999 to get an average from 10 consecutive tests. I can say this time it's a real match. See the result for yourself :)

var ranar = [],
     red1 = a => Object.keys(a.reduce((p,c) => (p[c] = true,p),{})),
     red2 = a => reduced = [...a.reduce((p,c) => p.set(c,true),new Map()).keys()],
     avg1 = [],
     avg2 = [],
       ts = 0,
       te = 0,
     res1 = [],
     res2 = [],
     count= 10;
for (var i = 0; i<count; i++){
  ranar = (new Array(1000000).fill(true)).map(e => Math.floor(Math.random()*100000));
  ts = performance.now();
  res1 = red1(ranar);
  te = performance.now();
  avg1.push(te-ts);
  ts = performance.now();
  res2 = red2(ranar);
  te = performance.now();
  avg2.push(te-ts);
}

avg1 = avg1.reduce((p,c) => p+c)/count;
avg2 = avg2.reduce((p,c) => p+c)/count;

console.log("reduce & lut took: " + avg1 + "msec");
console.log("map & spread took: " + avg2 + "msec");

Which one would you use..? Well not so fast...! Don't be deceived. Map is at displacement. Now look... in all of the above cases we fill an array of size n with numbers of range < n. I mean we have an array of size 100 and we fill with random numbers 0..9 so there are definite duplicates and "almost" definitely each number has a duplicate. How about if we fill the array in size 100 with random numbers 0..9999. Let's now see Map playing at home. This time an Array of 100K items but random number range is 0..100M. We will do 100 consecutive tests to average the results. OK let's see the bets..! <- no typo

var ranar = [],
     red1 = a => Object.keys(a.reduce((p,c) => (p[c] = true,p),{})),
     red2 = a => reduced = [...a.reduce((p,c) => p.set(c,true),new Map()).keys()],
     avg1 = [],
     avg2 = [],
       ts = 0,
       te = 0,
     res1 = [],
     res2 = [],
     count= 100;
for (var i = 0; i<count; i++){
  ranar = (new Array(100000).fill(true)).map(e => Math.floor(Math.random()*100000000));
  ts = performance.now();
  res1 = red1(ranar);
  te = performance.now();
  avg1.push(te-ts);
  ts = performance.now();
  res2 = red2(ranar);
  te = performance.now();
  avg2.push(te-ts);
}

avg1 = avg1.reduce((p,c) => p+c)/count;
avg2 = avg2.reduce((p,c) => p+c)/count;

console.log("reduce & lut took: " + avg1 + "msec");
console.log("map & spread took: " + avg2 + "msec");

Now this is the spectacular comeback of Map()..! May be now you can make a better decision when you want to remove the dupes.

Well ok we are all happy now. But the lead role always comes last with some applause. I am sure some of you wonder what Set object would do. Now that since we are open to ES6 and we know Map is the winner of the previous games let us compare Map with Set as a final. A typical Real Madrid vs Barcelona game this time... or is it? Let's see who will win the el classico :)

var ranar = [],
     red1 = a => reduced = [...a.reduce((p,c) => p.set(c,true),new Map()).keys()],
     red2 = a => Array.from(new Set(a)),
     avg1 = [],
     avg2 = [],
       ts = 0,
       te = 0,
     res1 = [],
     res2 = [],
     count= 100;
for (var i = 0; i<count; i++){
  ranar = (new Array(100000).fill(true)).map(e => Math.floor(Math.random()*10000000));
  ts = performance.now();
  res1 = red1(ranar);
  te = performance.now();
  avg1.push(te-ts);
  ts = performance.now();
  res2 = red2(ranar);
  te = performance.now();
  avg2.push(te-ts);
}

avg1 = avg1.reduce((p,c) => p+c)/count;
avg2 = avg2.reduce((p,c) => p+c)/count;

console.log("map & spread took: " + avg1 + "msec");
console.log("set & A.from took: " + avg2 + "msec");

Wow.. man..! Well unexpectedly it didn't turn out to be an el classico at all. More like Barcelona FC against CA Osasuna :))

  • Just btw I get arr.reduce(...).keys(...).slice is not a function in Typescript trying to use your ES6 method – mjwrazor Dec 1 '17 at 0:37

The following is more than 80% faster than the jQuery method listed (see tests below). It is an answer from a similar question a few years ago. If I come across the person who originally proposed it I will post credit. Pure JS.

var temp = {};
for (var i = 0; i < array.length; i++)
  temp[array[i]] = true;
var r = [];
for (var k in temp)
  r.push(k);
return r;

My test case comparison: http://jsperf.com/remove-duplicate-array-tests

  • 1
    I add a more fast version in revision 4. Please, review! – seriyPS Feb 3 '13 at 0:46
  • 2
    the test didn't seem to be using arrays??? i've added (yet another) one that seems to be consistently fast over different browsers (see jsperf.com/remove-duplicate-array-tests/10) : for (var n = array.length, result = [array[n--]], i; n--;) { i = array[n]; if (!(i in result)) result.push(i); } return result; – imma Aug 9 '13 at 12:58

Here is a simple answer to the question.

var names = ["Alex","Tony","James","Suzane", "Marie", "Laurence", "Alex", "Suzane", "Marie", "Marie", "James", "Tony", "Alex"];
var uniqueNames = [];

    for(var i in names){
        if(uniqueNames.indexOf(names[i]) === -1){
            uniqueNames.push(names[i]);
        }
    }
  • +1 for === . It wont work for arrays with mixed types if we dont check for it types. Simple but effective answer – San Krish Jan 19 '16 at 16:45

In ECMAScript 6 (aka ECMAScript 2015), Set can be used to filter out duplicates. Then it can be converted back to an array using the spread operator.

var names = ["Mike","Matt","Nancy","Adam","Jenny","Nancy","Carl"],
    unique = [...new Set(names)];
  • the constructor of Set actually requires the new keyword – Ivo Jan 8 '16 at 11:49
  • @Ivo Thanks. Previously Firefox's implementation didn't require new, I wonder if the ES6 draft changed about this behavior. – Oriol Jan 8 '16 at 11:52
  • some constructors might be indeed called as functions though this kind of behaviour depends on the browser's implementation of the spec ;) – Ivo Jan 8 '16 at 11:57

Solution 1

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

Solution 2 (using Set)

Array.prototype.unique = function() {
    return Array.from(new Set(this));
}

Test

var x=[1,2,3,3,2,1];
x.unique() //[1,2,3]

Performance

When I tested both implementation (with and without Set) for performance in chrome, I found that the one with Set is much much faster!

Array.prototype.unique1 = function() {
    var a = [];
    for (i = 0; i < this.length; i++) {
        var current = this[i];
        if (a.indexOf(current) < 0) a.push(current);
    }
    return a;
}


Array.prototype.unique2 = function() {
    return Array.from(new Set(this));
}

var x=[];
for(var i=0;i<10000;i++){
	x.push("x"+i);x.push("x"+(i+1));
}

console.time("unique1");
console.log(x.unique1());
console.timeEnd("unique1");



console.time("unique2");
console.log(x.unique2());
console.timeEnd("unique2");

  • 2
    Upvote for the use of Set. I don't know the performance comparison though – lwhken 天安门事件 May 24 at 2:03
  • I have read somewhere that an Array is faster than a Set (overall performance), But when I tested in chrome, the implementation with Set was much much faster! see the edited answer :) – ShAkKiR May 25 at 7:04
  • better practice is to use Object.defineProperty(Array.prototype,"unique".. instead of Array.prototype.unique = ... See more info here stackoverflow.com/questions/10105824/… – ShAkKiR Jun 6 at 10:11
  • the Set approach doesn't seem to work for me in Node. new Set([5,5]) seems to return [5,5] in some cases. I'm as baffled as you are. Edit: I found out what's happening. new Set([new Number(5), new Number(5)]) returns [5,5]. Apparently Node thinks the two number 5s are different if I instantiate them with new... which is honestly the stupidest thing I've ever seen. – Demonblack Jun 18 at 13:43
  • @Demonblack This is a valid concern. x=new Number(5) and another y=new Number(5) will be two different Objects, as oppose to just var x=5 and var y=5. new keyword will create a new object. I know this explanation is obvious but that's all I know :) – ShAkKiR Aug 28 at 13:47

A simple but effective technique, is to use the filter method in combination with the filter function(value, index){ return this.indexOf(value) == index }.

Code example :

var data = [2,3,4,5,5,4];
var filter = function(value, index){ return this.indexOf(value) == index };
var filteredData = data.filter(filter, data );

document.body.innerHTML = '<pre>' + JSON.stringify(filteredData, null, '\t') +  '</pre>';

See also this Fiddle.

  • 1
    Genious! And, for instances, if you want to have the repeated ones, (instead of removing them) all you have to do is replace this.indexOf(value) == index by this.indexOf(value, index+1) > 0 Thanks! – Pedro Ferreira Apr 3 '17 at 13:17
  • You could even resume it to a single "filter" line: filterData = data.filter((v, i) => (data.indexOf(v) == i) ); – Pedro Ferreira Apr 4 '17 at 22:03
  • Last time I bother! Sorry... picking up my 1st answer, in 2 lines you could get a JSON var JSON_dupCounter = {}; with the repeated ones and how many times they were repeated: data.filter((testItem, index) => (data.indexOf(testItem, index + 1) > 0)).forEach((found_duplicated) => (JSON_dupCounter[found_duplicated] = (JSON_dupCounter [found_duplicated] || 1) + 1)); – Pedro Ferreira Apr 5 '17 at 0:12
  • this only works for arrays of primitives? – frozen Jul 16 '17 at 3:37
  • 1
    @frozen : If works with everything where == can be used to determine equality. So, if you're dealing with eg. arrays, objects or functions, the filter will work only for different entries that are references to the same array, object or function (see demo). If you want to determine equality based on different criteria, you'll need to include those criteria in your filter. – John Slegers Jul 16 '17 at 9:07

The top answers have complexity of O(n²), but this can be done with just O(n) by using an object as a hash:

function getDistinctArray(arr) {
    var dups = {};
    return arr.filter(function(el) {
        var hash = el.valueOf();
        var isDup = dups[hash];
        dups[hash] = true;
        return !isDup;
    });
}

This will work for strings, numbers, and dates. If your array contains complex objects (ie, they have to be compared with ===), the above solution won't work. You can get an O(n) implementation for objects by setting a flag on the object itself:

function getDistinctObjArray(arr) {
    var distinctArr = arr.filter(function(el) {
        var isDup = el.inArray;
        el.inArray = true;
        return !isDup;
    });
    distinctArr.forEach(function(el) {
        delete el.inArray;
    });
    return distinctArr;
}
  • Did you consider the performance hit in your method? – Tushar Sep 6 '13 at 11:11
  • @Tushar - Where do you see a performance issue? – gilly3 Sep 6 '13 at 15:57
  • 1
    @Tushar - Your gist gives a 404. No sorting algorithm has O(n) complexity. Sorting would not be faster. – gilly3 Sep 9 '13 at 18:41
  • 1
    @Tushar - there are no actual duplicates in that array. If you want to remove objects from an array that have exactly the same properties and values as other objects in the array, you would need to write a custom equality checking function to support it. – gilly3 Sep 10 '13 at 21:58
  • 1
    @Tushar - None of the answers on this page would remove any duplicates from such an array as is in your gist. – gilly3 Sep 10 '13 at 22:12

here is the simple method without any special libraries are special function,

name_list = ["Mike","Matt","Nancy","Adam","Jenny","Nancy","Carl"];
get_uniq = name_list.filter(function(val,ind) { return name_list.indexOf(val) == ind; })

console.log("Original name list:"+name_list.length, name_list)
console.log("\n Unique name list:"+get_uniq.length, get_uniq)

enter image description here

Apart from being a simpler, more terse solution than the current answers (minus the future-looking ES6 ones), I perf tested this and it was much faster as well:

var uniqueArray = dupeArray.filter(function(item, i, self){
  return self.lastIndexOf(item) == i;
});

One caveat: Array.lastIndexOf() was added in IE9, so if you need to go lower than that, you'll need to look elsewhere.

So the options is:

let a = [11,22,11,22];
let b = []


b = [ ...new Set(a) ];     
// b = [11, 22]

b = Array.from( new Set(a))   
// b = [11, 22]

b = a.filter((val,i)=>{
  return a.indexOf(val)==i
})                        
// b = [11, 22]

Generic Functional Approach

Here is a generic and strictly functional approach with ES2015:

// small, reusable auxiliary functions

const apply = f => a => f(a);

const flip = f => b => a => f(a) (b);

const uncurry = f => (a, b) => f(a) (b);

const push = x => xs => (xs.push(x), xs);

const foldl = f => acc => xs => xs.reduce(uncurry(f), acc);

const some = f => xs => xs.some(apply(f));


// the actual de-duplicate function

const uniqueBy = f => foldl(
   acc => x => some(f(x)) (acc)
    ? acc
    : push(x) (acc)
 ) ([]);


// comparators

const eq = y => x => x === y;

// string equality case insensitive :D
const seqCI = y => x => x.toLowerCase() === y.toLowerCase();


// mock data

const xs = [1,2,3,1,2,3,4];

const ys = ["a", "b", "c", "A", "B", "C", "D"];


console.log( uniqueBy(eq) (xs) );

console.log( uniqueBy(seqCI) (ys) );

We can easily derive unique from unqiueBy or use the faster implementation utilizing Sets:

const unqiue = uniqueBy(eq);

// const unique = xs => Array.from(new Set(xs));

Benefits of this approach:

  • generic solution by using a separate comparator function
  • declarative and succinct implementation
  • reuse of other small, generic functions

Performance Considerations

uniqueBy isn't as fast as an imperative implementation with loops, but it is way more expressive due to its genericity.

If you identify uniqueBy as the cause of a concrete performance penalty in your app, replace it with optimized code. That is, write your code first in an functional, declarative way. Afterwards, provided that you encounter performance issues, try to optimize the code at the locations, which are the cause of the problem.

Memory Consumption and Garbage Collection

uniqueBy utilizes mutations (push(x) (acc)) hidden inside its body. It reuses the accumulator instead of throwing it away after each iteration. This reduces memory consumption and GC pressure. Since this side effect is wrapped inside the function, everything outside remains pure.

$(document).ready(function() {

    var arr1=["dog","dog","fish","cat","cat","fish","apple","orange"]

    var arr2=["cat","fish","mango","apple"]

    var uniquevalue=[];
    var seconduniquevalue=[];
    var finalarray=[];

    $.each(arr1,function(key,value){

       if($.inArray (value,uniquevalue) === -1)
       {
           uniquevalue.push(value)

       }

    });

     $.each(arr2,function(key,value){

       if($.inArray (value,seconduniquevalue) === -1)
       {
           seconduniquevalue.push(value)

       }

    });

    $.each(uniquevalue,function(ikey,ivalue){

        $.each(seconduniquevalue,function(ukey,uvalue){

            if( ivalue == uvalue)

            {
                finalarray.push(ivalue);
            }   

        });

    });
    alert(finalarray);
});

Here is very simple for understanding and working anywhere (even in PhotoshopScript) code. Check it!

var peoplenames = new Array("Mike","Matt","Nancy","Adam","Jenny","Nancy","Carl");

peoplenames = unique(peoplenames);
alert(peoplenames);

function unique(array){
    var len = array.length;
    for(var i = 0; i < len; i++) for(var j = i + 1; j < len; j++) 
        if(array[j] == array[i]){
            array.splice(j,1);
            j--;
            len--;
        }
    return array;
}

//*result* peoplenames == ["Mike","Matt","Nancy","Adam","Jenny","Carl"]
for (i=0; i<originalArray.length; i++) {  
    if (!newArray.includes(originalArray[i])) {
        newArray.push(originalArray[i]); 
    }
}
  • love vanilla js. Thanks – Teja Nov 26 '17 at 14:19

This is probably one of the fastest way to remove permanently the duplicates from an array 10x times faster than the most functions here.& 78x faster in safari

function toUnique(a,b,c){               //array,placeholder,placeholder
 b=a.length;while(c=--b)while(c--)a[b]!==a[c]||a.splice(c,1)
}
  1. Test: http://jsperf.com/wgu
  2. Demo: http://jsfiddle.net/46S7g/
  3. More: https://stackoverflow.com/a/25082874/2450730

if you can't read the code above ask, read a javascript book or here are some explainations about shorter code. https://stackoverflow.com/a/21353032/2450730

  • 7
    I'd guess its due to posting minified code as a solution... – Mark K Cowan Nov 6 '14 at 12:26
  • You would deserve a downvote for claiming to be "fastest" when using while within while and splice (which is a loop too). The fastest way uses a hash-map (JS-Object) and a single loop and is O(n). Try to write the function only using hasOwnProperty(), push() and forEach() and it will be fast. See: en.wikipedia.org/wiki/Big_O_notation – cat Jul 26 '15 at 10:17
  • From tests i made and read on many other sites ... direct setting is faster than push (x[0] vs x.push()), forEach is much slower then while & hasOwnProperty() is useless if you don't mess up your array. but i would be happy if you post a code which is faster . You can also downvote. anyway i wrote the function in many different ways , and even if i find it also strange that this one works, this one gave the best results in most browsers on normal arrays. – cocco Jul 26 '15 at 14:18
  • by normal arrays i mean in the range of 10-100000 elements. Note... again i would be really happy to find a better way as i'm using this function and i'm also someone who tries to avoi useless loops. check out my other functions. – cocco Jul 26 '15 at 14:24
  • At the other side by fastest i mean fastest code based on the one listed in this specific post.. copy and past those codes and try it yourself... none of the codes here is faster than this strange whilewhile function. – cocco Jul 26 '15 at 14:31

If by any chance you were using

D3.js

You could do

d3.set(["foo", "bar", "foo", "baz"]).values() ==> ["foo", "bar", "baz"]

https://github.com/mbostock/d3/wiki/Arrays#set_values

https://jsfiddle.net/2w0k5tz8/

function remove_duplicates(array_){
    var ret_array = new Array();
    for (var a = array_.length - 1; a >= 0; a--) {
        for (var b = array_.length - 1; b >= 0; b--) {
            if(array_[a] == array_[b] && a != b){
                delete array_[b];
            }
        };
        if(array_[a] != undefined)
            ret_array.push(array_[a]);
    };
    return ret_array;
}

console.log(remove_duplicates(Array(1,1,1,2,2,2,3,3,3)));

Loop through, remove duplicates, and create a clone array place holder because the array index will not be updated.

Loop backward for better performance ( your loop wont need to keep checking the length of your array)

This was just another solution but different than the rest.

function diffArray(arr1, arr2) {
  var newArr = arr1.concat(arr2);
  newArr.sort();
  var finalArr = [];
  for(var i = 0;i<newArr.length;i++) {
   if(!(newArr[i] === newArr[i+1] || newArr[i] === newArr[i-1])) {
     finalArr.push(newArr[i]);
   } 
  }
  return finalArr;
}

protected by Quentin Mar 24 '17 at 13:35

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