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Possible Duplicate:
Easiest way to find duplicate values in a javascript array

How do I check if an array has duplicate values?

If some elements in the array are the same, then return true. Otherwise, return false.

['hello','goodbye','hey'] //return false because no duplicates exist
['hello','goodbye','hello'] // return true because duplicates exist

Notice I don't care about finding the duplication, only want Boolean result whether arrays contains duplications.

8
  • Here it is: stackoverflow.com/questions/840781/…
    – Ofer Zelig
    Sep 11, 2011 at 6:06
  • 2
    I don't want a list of duplicates removed. I just want to know true or false if a list has duplicates in it.
    – user847495
    Sep 11, 2011 at 6:08
  • 9
    This question is not a duplicate. Since @user847495 simply wants to check if duplicates exists, the solution is faster/easier than what's needed to find all occurrences of duplicates. For example, you can do this: codr.io/v/bvzxhqm
    – alden
    Sep 26, 2015 at 16:32
  • 2
    using underscore ,simple technique var test=['hello','goodbye','hello'] ; if ( test.length != _.unique(test).length ) { // some code }
    – Sai Ram
    Mar 3, 2016 at 13:16
  • 4
    Not a duplicate of the marked question. Please pay attention before marking questions as such.
    – John Weisz
    Sep 2, 2016 at 10:08

9 Answers 9

302

If you have an ES2015 environment (as of this writing: io.js, IE11, Chrome, Firefox, WebKit nightly), then the following will work, and will be fast (viz. O(n)):

function hasDuplicates(array) {
    return (new Set(array)).size !== array.length;
}

If you only need string values in the array, the following will work:

function hasDuplicates(array) {
    var valuesSoFar = Object.create(null);
    for (var i = 0; i < array.length; ++i) {
        var value = array[i];
        if (value in valuesSoFar) {
            return true;
        }
        valuesSoFar[value] = true;
    }
    return false;
}

We use a "hash table" valuesSoFar whose keys are the values we've seen in the array so far. We do a lookup using in to see if that value has been spotted already; if so, we bail out of the loop and return true.


If you need a function that works for more than just string values, the following will work, but isn't as performant; it's O(n2) instead of O(n).

function hasDuplicates(array) {
    var valuesSoFar = [];
    for (var i = 0; i < array.length; ++i) {
        var value = array[i];
        if (valuesSoFar.indexOf(value) !== -1) {
            return true;
        }
        valuesSoFar.push(value);
    }
    return false;
}

The difference is simply that we use an array instead of a hash table for valuesSoFar, since JavaScript "hash tables" (i.e. objects) only have string keys. This means we lose the O(1) lookup time of in, instead getting an O(n) lookup time of indexOf.

9
  • 3
    About the first example you gave. Isn't the validation exactly the other way around? If your function is named hasDuplicates, then it should check if the set's size actually shrunk during the process of casting it, right? Therefore the boolean operator should be !== and not === Jul 1, 2015 at 13:45
  • pls edit. I can't edit as I'm not changing more than 6 characters. Jul 3, 2015 at 9:32
  • 1
    According to MDN IE11 does not the support the constructor used in the first example
    – adam77
    Feb 1, 2016 at 19:40
  • 1
    Normal JS version returns true for the following array: [1, '1']
    – Kunal
    Jan 28, 2018 at 6:31
  • Thus "if you only need string values in the array" preceding the answer.
    – Domenic
    Feb 15, 2018 at 5:03
11

You could use SET to remove duplicates and compare, If you copy the array into a set it will remove any duplicates. Then simply compare the length of the array to the size of the set.

function hasDuplicates(a) {

  const noDups = new Set(a);

  return a.length !== noDups.size;
}
9

One line solutions with ES6

const arr1 = ['hello','goodbye','hey'] 
const arr2 = ['hello','goodbye','hello'] 

const hasDuplicates = (arr) => arr.length !== new Set(arr).size;
console.log(hasDuplicates(arr1)) //return false because no duplicates exist
console.log(hasDuplicates(arr2)) //return true because duplicates exist

const s1 = ['hello','goodbye','hey'].some((e, i, arr) => arr.indexOf(e) !== i)
const s2 = ['hello','goodbye','hello'].some((e, i, arr) => arr.indexOf(e) !== i);

console.log(s1) //return false because no duplicates exist
console.log(s2) //return true because duplicates exist

1
  • 2
    FYI - Set has a .size property, so you don't have to spread into an array to get .length
    – KyleMit
    Jan 22 at 13:01
5

Another approach (also for object/array elements within the array1) could be2:

function chkDuplicates(arr,justCheck){
  var len = arr.length, tmp = {}, arrtmp = arr.slice(), dupes = [];
  arrtmp.sort();
  while(len--){
   var val = arrtmp[len];
   if (/nul|nan|infini/i.test(String(val))){
     val = String(val);
    }
    if (tmp[JSON.stringify(val)]){
       if (justCheck) {return true;}
       dupes.push(val);
    }
    tmp[JSON.stringify(val)] = true;
  }
  return justCheck ? false : dupes.length ? dupes : null;
}
//usages
chkDuplicates([1,2,3,4,5],true);                           //=> false
chkDuplicates([1,2,3,4,5,9,10,5,1,2],true);                //=> true
chkDuplicates([{a:1,b:2},1,2,3,4,{a:1,b:2},[1,2,3]],true); //=> true
chkDuplicates([null,1,2,3,4,{a:1,b:2},NaN],true);          //=> false
chkDuplicates([1,2,3,4,5,1,2]);                            //=> [1,2]
chkDuplicates([1,2,3,4,5]);                                //=> null

See also...

1 needs a browser that supports JSON, or a JSON library if not.
2 edit: function can now be used for simple check or to return an array of duplicate values

4
  • 3
    Non-showstopper issues worth being aware of: 1) mutates the original array to be sorted; 2) does not differentiate between null, NaN, Infinity, +Infinity, and -Infinity; 3) objects are considered equal if they have the same own-properties, even if they have different prototypes.
    – Domenic
    Sep 11, 2011 at 6:40
  • 1
    @Domenic: yep, should've mentioned it. Edited to circumvent mutation of original array.
    – KooiInc
    Sep 11, 2011 at 6:45
  • @Domenic: corrected for null/NaN/[+/-]Infinity, see edits.
    – KooiInc
    Sep 11, 2011 at 6:53
  • @Domenic: Issue 3) is actually not a problem for me, because it is exactly what I want. I don't care about the prototype, just the values.
    – awe
    Nov 19, 2015 at 5:59
3

You can take benefit of indexOf and lastIndexOf. if both indexes are not same, you have duplicate.

function containsDuplicates(a) {
  for (let i = 0; i < a.length; i++) {
    if (a.indexOf(a[i]) !== a.lastIndexOf(a[i])) {
      return true
    }
  }
  return false
}
3

If you are dealing with simple values, you can use array.some() and indexOf()

for example let's say vals is ["b", "a", "a", "c"]

const allUnique = !vals.some((v, i) => vals.indexOf(v) < i);

some() will return true if any expression returns true. Here we'll iterate values (from the index 0) and call the indexOf() that will return the index of the first occurrence of given item (or -1 if not in the array). If its id is smaller that the current one, there must be at least one same value before it. thus iteration 3 will return true as "a" (at index 2) is first found at index 1.

2

One nice thing about solutions that use Set is O(1) performance on looking up existing items in a list, rather than having to loop back over it.

One nice thing about solutions that use Some is short-circuiting when the duplicate is found early, so you don't have to continue evaluating the rest of the array when the condition is already met.

One solution that combines both is to incrementally build a set, early terminate if the current element exists in the set, otherwise add it and move on to the next element.

const hasDuplicates = (arr) => {
  let set = new Set()
  return arr.some(el => {
    if (set.has(el)) return true
    set.add(el)
  })
}

hasDuplicates(["a","b","b"]) // true
hasDuplicates(["a","b","c"]) // false

According to JSBench.me, should preform pretty well for the varried use cases. The set size approach is fastest with no dupes, and checking some + indexOf is fatest with a very early dupe, but this solution performs well in both scenarios, making it a good all-around implementation.

1

is just simple, you can use the Array.prototype.every function

function isUnique(arr) {
  const isAllUniqueItems = input.every((value, index, arr) => {
    return arr.indexOf(value) === index; //check if any duplicate value is in other index
  });

  return isAllUniqueItems;
}
-4
function hasAllUniqueChars( s ){ 
    for(let c=0; c<s.length; c++){
        for(let d=c+1; d<s.length; d++){
            if((s[c]==s[d])){
                return false;
            }
        }
    }
    return true;
}
1
  • 1
    Welcome to Stackoverflow. It would be great if you'd explain your answer instead of only posting some code. Thanks!
    – progNewbie
    Apr 27, 2021 at 15:59

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