563

I have an object that contains an array of objects.

things = new Object();

things.thing = new Array();

things.thing.push({place:"here",name:"stuff"});
things.thing.push({place:"there",name:"morestuff"});
things.thing.push({place:"there",name:"morestuff"});

I'm wondering what is the best method to remove duplicate objects from an array. So for example, things.thing would become...

{place:"here",name:"stuff"},
{place:"there",name:"morestuff"}
4
  • Do you mean how do you stop a hashtable/object with all the same parameters being added to an array? – Matthew Lock Feb 8 '10 at 0:46
  • 5
    Mathew -> If it is simpler to prevent a duplicate object from being added to the array in the first place, instead of filtering it out later, yes, that would be fine too. – Travis Feb 8 '10 at 1:01
  • 13
    It keeps on surprising me how people name their variables. Sometimes I think they really want to make it unnecessarily complicated. Next to see will aaaaa.aaaa.push(...) :) – dazito Jan 25 '20 at 22:40
  • 3
    Downmodded for things.thing. This unnecessarily complicates both the question and the answer. – mikemaccana Nov 24 '20 at 13:26

68 Answers 68

186

A primitive method would be:

var obj = {};

for ( var i=0, len=things.thing.length; i < len; i++ )
    obj[things.thing[i]['place']] = things.thing[i];

things.thing = new Array();
for ( var key in obj )
    things.thing.push(obj[key]);
6
  • 47
    You should never user the length in the for loop, because it will slow everything down calculating it on every iteration. Assign it to a variable outside the loop and pass the variable instead of the things.thing.length. – 0v3rth3d4wn Aug 26 '14 at 12:56
  • 16
    @aefxx I do not quite understand this function, how do you handle the situation that the "place" is same but name is different, should that be consider dup or not? – Kuan Jun 23 '15 at 21:48
  • 2
    Though this works, it does not take care of a sorted array since fetching keys is never order guaranteed. So, you end up sorting it again. Now, suppose the array was not sorted but yet its order is important, there is no way you can make sure that order stays intact – Deepak G M Apr 17 '19 at 6:31
  • 3
    @DeepakGM You're absolutely right. The answer won't (necessarily) preserve a given order. If that is a requirement, one should look for another solution. – aefxx Apr 17 '19 at 17:03
  • How could I modify the above to remove objects from an array that contain X as well as de-duped? – Ryan H Feb 9 '20 at 12:36
597

How about with some es6 magic?

things.thing = things.thing.filter((thing, index, self) =>
  index === self.findIndex((t) => (
    t.place === thing.place && t.name === thing.name
  ))
)

Reference URL

A more generic solution would be:

const uniqueArray = things.thing.filter((thing, index) => {
  const _thing = JSON.stringify(thing);
  return index === things.thing.findIndex(obj => {
    return JSON.stringify(obj) === _thing;
  });
});

Using the above property strategy instead of JSON.stringify:

const isPropValuesEqual = (subject, target, propNames) =>
  propNames.every(propName => subject[propName] === target[propName]);

const getUniqueItemsByProperties = (items, propNames) => 
  items.filter((item, index, array) =>
    index === array.findIndex(foundItem => isPropValuesEqual(foundItem, item, propNames))
  );

You can add a wrapper if you want the propNames property to be either an array or a value:

const getUniqueItemsByProperties = (items, propNames) => {
  const propNamesArray = Array.from(propNames);

  return items.filter((item, index, array) =>
    index === array.findIndex(foundItem => isPropValuesEqual(foundItem, item, propNamesArray))
  );
};

allowing both getUniqueItemsByProperties('a') and getUniqueItemsByProperties(['a']);

Stackblitz Example

Explanation

  • Start by understanding the two methods used:
  • Next take your idea of what makes your two objects equal and keep that in mind.
  • We can detect something as a duplicate, if it satisfies the criterion that we have just thought of, but it's position is not at the first instance of an object with the criterion.
  • Therefore we can use the above criterion to determine if something is a duplicate.
14
  • 98
    This can be shortened to: things.thing = things.thing.filter((thing, index, self) => self.findIndex(t => t.place === thing.place && t.name === thing.name) === index) – Josh Cole Mar 13 '17 at 12:12
  • 9
    @vsync just take @BKM's answer and put it together, a generic solution would be: const uniqueArray = arrayOfObjects.filter((object,index) => index === arrayOfObjects.findIndex(obj => JSON.stringify(obj) === JSON.stringify(object))); jsfiddle.net/x9ku0p7L/28 – Eydrian Jul 18 '18 at 11:33
  • 21
    The key here is that the findIndex() method returns the index of the first element, so if there is a second element that matches, it will never be found and added during the filter. I was staring at it for a minute :) – JBaczuk Sep 13 '19 at 23:21
  • 1
    The "more generic solution" might not work in some cases as the order of JSON.stringify is unpredictable. Besides you are not caching the JSON.stringify(obj) so it will be called more times than you expect it to which is a major performance hit – ibrahim mahrir Nov 6 '19 at 11:25
  • 1
    One question, wouldn't this be an O(n^2) approach. In case I'm working with 30 records, I'd be doing 900 iterations, right? (Worst case scenario, no duplicates) – Jose A Apr 23 '20 at 10:29
287

Shortest one liners for ES6+

Find unique id's in an array.

arr.filter((v,i,a)=>a.findIndex(t=>(t.id === v.id))===i)

Unique by multiple properties ( place and name )

arr.filter((v,i,a)=>a.findIndex(t=>(t.place === v.place && t.name===v.name))===i)

Unique by all properties (This will be slow for large arrays)

arr.filter((v,i,a)=>a.findIndex(t=>(JSON.stringify(t) === JSON.stringify(v)))===i)

Keep the last occurrence.

arr.slice().reverse().filter((v,i,a)=>a.findIndex(t=>(t.id === v.id))===i).reverse()
6
  • 23
    v,i,a == value, index, array – James B Oct 9 '20 at 18:23
  • findIndex is not working in IE11. getting error "object doesn't support property or method 'findindex'". – Ganesh Sanap Dec 3 '20 at 6:50
  • This worked great to find if the key,value pairs in my vue modal had duplicates. +1 – Arriel Feb 1 at 22:23
  • Don't use filter + findIndex at all with large arrays. If your array has 200,000 entries you're going to have to make 40 BILLION iterations. Use a map instead. Only use these suggestions for very small arrays. – JP_ Feb 23 at 22:50
  • 1
    arr.filter((v,i,a)=>a.findIndex(t=>(JSON.stringify(t) === JSON.stringify(v)))===i) this will not work if the keys are not in the same order – Jamal Hussain Mar 19 at 14:11
152

Using ES6+ in a single line you can get a unique list of objects by key:

const unique = [...new Map(arr.map(item => [item[key], item])).values()]

It can be put into a function:

function getUniqueListBy(arr, key) {
    return [...new Map(arr.map(item => [item[key], item])).values()]
}

Here is a working example:

const arr = [
    {place: "here",  name: "x", other: "other stuff1" },
    {place: "there", name: "x", other: "other stuff2" },
    {place: "here",  name: "y", other: "other stuff4" },
    {place: "here",  name: "z", other: "other stuff5" }
]

function getUniqueListBy(arr, key) {
    return [...new Map(arr.map(item => [item[key], item])).values()]
}

const arr1 = getUniqueListBy(arr, 'place')

console.log("Unique by place")
console.log(JSON.stringify(arr1))

console.log("\nUnique by name")
const arr2 = getUniqueListBy(arr, 'name')

console.log(JSON.stringify(arr2))

How does it work

First the array is remapped in a way that it can be used as an input for a Map.

arr.map(item => [item[key], item]);

which means each item of the array will be transformed in another array with 2 elements; the selected key as first element and the entire initial item as second element, this is called an entry (ex. array entries, map entries). And here is the official doc with an example showing how to add array entries in Map constructor.

Example when key is place:

[["here", {place: "here",  name: "x", other: "other stuff1" }], ...]

Secondly, we pass this modified array to the Map constructor and here is the magic happening. Map will eliminate the duplicate keys values, keeping only last inserted value of the same key. Note: Map keeps the order of insertion. (check difference between Map and object)

new Map(entry array just mapped above)

Third we use the map values to retrieve the original items, but this time without duplicates.

new Map(mappedArr).values()

And last one is to add those values into a fresh new array so that it can look as the initial structure and return that:

return [...new Map(mappedArr).values()]

8
  • This does not answer the original question as this is searches for an id. The question needs the entire object to be unique across all fields such as place and name – L. Holanda Dec 10 '19 at 18:54
  • Your ES6 function seems very concise and practical. Can you explain it a bit more? What is happening exactly? Are first or last duplicates removed? Or is it random, which duplicate gets removed? That would be helpful, thanks. – David Schumann Mar 25 '20 at 17:15
  • As far as i can tell, a Map with the property value as key is created. But it is not 100% how or if the order of the array is preserved. – David Schumann Mar 25 '20 at 18:16
  • 1
    Hi @DavidSchumann, I will update the answer and will explain how it works. But for short answer the order is preserved and the first one are removed... Just think about how it is inserted in the map... it checks if the key already exists it will update it, therfore the last one will remain – V. Sambor Mar 25 '20 at 18:21
  • There is an error in case of null items or some items without the called key, any fix for this? – Milad Abooali Jun 4 at 9:17
141

If you can use Javascript libraries such as underscore or lodash, I recommend having a look at _.uniq function in their libraries. From lodash:

_.uniq(array, [isSorted=false], [callback=_.identity], [thisArg])

Basically, you pass in the array that in here is an object literal and you pass in the attribute that you want to remove duplicates with in the original data array, like this:

var data = [{'name': 'Amir', 'surname': 'Rahnama'}, {'name': 'Amir', 'surname': 'Stevens'}];
var non_duplidated_data = _.uniq(data, 'name'); 

UPDATE: Lodash now has introduced a .uniqBy as well.

3
  • 4
    @Praveen Pds: Did I say anything about underscore in the code example? I said 'lodash' has this function and underscore has similar ones. Before voting down, please read answers carefully. – ambodi Jan 25 '15 at 11:08
  • //Lists unique objects using _underscore.js holdingObject = _.uniq(holdingObject , function(item, key, name) { return item.name; }); – praveenpds Jan 26 '15 at 8:31
  • 34
    Note: you now need to use uniqBy instead of uniq, e.g. _.uniqBy(data, 'name')... documentation: lodash.com/docs#uniqBy – drmrbrewer Jun 14 '17 at 7:46
92

I had this exact same requirement, to remove duplicate objects in a array, based on duplicates on a single field. I found the code here: Javascript: Remove Duplicates from Array of Objects

So in my example, I'm removing any object from the array that has a duplicate licenseNum string value.

var arrayWithDuplicates = [
    {"type":"LICENSE", "licenseNum": "12345", state:"NV"},
    {"type":"LICENSE", "licenseNum": "A7846", state:"CA"},
    {"type":"LICENSE", "licenseNum": "12345", state:"OR"},
    {"type":"LICENSE", "licenseNum": "10849", state:"CA"},
    {"type":"LICENSE", "licenseNum": "B7037", state:"WA"},
    {"type":"LICENSE", "licenseNum": "12345", state:"NM"}
];

function removeDuplicates(originalArray, prop) {
     var newArray = [];
     var lookupObject  = {};

     for(var i in originalArray) {
        lookupObject[originalArray[i][prop]] = originalArray[i];
     }

     for(i in lookupObject) {
         newArray.push(lookupObject[i]);
     }
      return newArray;
 }

var uniqueArray = removeDuplicates(arrayWithDuplicates, "licenseNum");
console.log("uniqueArray is: " + JSON.stringify(uniqueArray));

The results:

uniqueArray is:

[{"type":"LICENSE","licenseNum":"10849","state":"CA"},
{"type":"LICENSE","licenseNum":"12345","state":"NM"},
{"type":"LICENSE","licenseNum":"A7846","state":"CA"},
{"type":"LICENSE","licenseNum":"B7037","state":"WA"}]
3
  • 1
    This would be more useful if the function could filter the 'falsy' objects too. for(var i in array) { if(array[i][prop]){ //valid lookupObject[array[i][prop]] = array[i]; } else { console.log('falsy object'); } } – Abdul Sadik Yalcin Nov 6 '17 at 17:49
  • Why not bring down the complexity 0(n) by using: for (let i in originalArray) { if (lookupObject[originalArray[i]['id']] === undefined) { newArray.push(originalArray[i]); } lookupObject[originalArray[i]['id']] = originalArray[i]; } – Tudor B. Feb 17 '19 at 22:17
  • this is the best way because it is important to know what it is that you want to not be duplicated. Now can this be done through reducer for e6 standards? – Christian Matthew Sep 16 '19 at 19:09
92

Here is a short ES6 way with a better runtime than the 65+ answers that already exist:

let ids = array.map(o => o.id)
let filtered = array.filter(({id}, index) => !ids.includes(id, index + 1))

Example:

const arr = [{id: 1, name: 'one'}, {id: 2, name: 'two'}, {id: 1, name: 'one'}]

const ids = arr.map(o => o.id)
const filtered = arr.filter(({id}, index) => !ids.includes(id, index + 1))

console.log(filtered)

How it works:

Array.filter() removes all duplicate objects by checking if the previously mapped id-array includes the current id ({id} destructs the object into only its id). To only filter out actual duplicates, it is using Array.includes()'s second parameter fromIndex with index + 1 which will ignore the current object and all previous.

Since every iteration of the filter callback method will only search the array beginning at the current index + 1, this also dramatically reduces the runtime because only objects not previously filtered get checked.

This obviously also works for any other key that is not called id or even multiple or all keys.

5
  • Would it make sense to use a Set instead of an array? – user239558 Feb 20 at 18:00
  • @user239558 Good question but not really, it would be orders of magnitude slower and for objects with a different order like {id: 1, name: 'one'} and {namd: 'one', id: 1} it would fail to detect the duplicate. – leonheess Feb 21 at 23:52
  • what is this magic with { id } you're pulling here? I'm following everything else. Was about to implement a Set for my own purposes but found this – Timotronadon Mar 4 at 17:34
  • Good question, @Timotronadon. { id } is destructuring the object into only its id-key. To illustrate let's look at this these two loops: 1. arr.forEach(object => console.log(object.id)) and 2. arr.forEach({id} => console.log(id)). They are both doing exactly the same thing: printing the id-key of all objects in arr. However, one is using destructuring and the other one is using a more conventional key access via the dot notation. – leonheess Mar 4 at 23:54
  • You can even destructure an object into multiple keys like so: { id, name }. – leonheess Mar 4 at 23:57
64

One liner using Set

var things = new Object();

things.thing = new Array();

things.thing.push({place:"here",name:"stuff"});
things.thing.push({place:"there",name:"morestuff"});
things.thing.push({place:"there",name:"morestuff"});

// assign things.thing to myData for brevity
var myData = things.thing;

things.thing = Array.from(new Set(myData.map(JSON.stringify))).map(JSON.parse);

console.log(things.thing)

Explanation:

  1. new Set(myData.map(JSON.stringify)) creates a Set object using the stringified myData elements.
  2. Set object will ensure that every element is unique.
  3. Then I create an array based on the elements of the created set using Array.from.
  4. Finally, I use JSON.parse to convert stringified element back to an object.
3
  • 24
    the problem being {a: 1, b:2} wont be equal to {b:2,a:1} – PirateApp Oct 2 '17 at 10:00
  • 2
    keep in mind that there would be a problems with Date properties – MarkosyanArtur Mar 5 '18 at 6:31
  • This line creates random null values with a row object that do not exist in the original array of objects. Can you please help? – B1K Oct 16 '18 at 16:26
46

ES6 one liner is here

let arr = [
  {id:1,name:"sravan ganji"},
  {id:2,name:"pinky"},
  {id:4,name:"mammu"},
  {id:3,name:"sanju"},
  {id:3,name:"ram"},
];

console.log(Object.values(arr.reduce((acc,cur)=>Object.assign(acc,{[cur.id]:cur}),{})))

5
  • 6
    Nice and clean if you only want to remove objects with a single duplicate value, not so clean for fully duplicated objects. – David Barker May 29 '19 at 23:56
  • @DavidBarker you mean multiple duplicate values with an object ? – sravan ganji Sep 1 '20 at 20:08
  • yes, but more specifically objects that have all identical values. – David Barker Sep 2 '20 at 7:42
  • 1
    What is the functionality of :cur in cur.id]:cur? I dont understand this piece of the code. – Jonathan Arias Feb 17 at 16:12
  • using lodash( _ ) we can do the same thing using _.uniqBy(arr,'id') – Puttamarigowda M S Apr 5 at 10:59
29

Here's another option to do it using Array iterating methods if you need comparison only by one field of an object:

    function uniq(a, param){
        return a.filter(function(item, pos, array){
            return array.map(function(mapItem){ return mapItem[param]; }).indexOf(item[param]) === pos;
        })
    }

    uniq(things.thing, 'place');
1
  • Although this has an order greater than O(n²), this fits my use case because my array size will always be less than 30. Thanks! – Sterex Jul 13 '16 at 11:44
28

The simplest way is use filter:

var uniq = {}
var arr  = [{"id":"1"},{"id":"1"},{"id":"2"}]
var arrFiltered = arr.filter(obj => !uniq[obj.id] && (uniq[obj.id] = true));
console.log('arrFiltered', arrFiltered)

3
  • 8
    It's good practice on Stack Overflow to add an explanation as to why your solution should work, especially how yours is better than the other answers. For more information read How To Answer. – Samuel Liew Sep 15 '18 at 5:14
  • This does not answer the original question as this is searches for an id. The question needs the entire object to be unique across all fields such as place and name – L. Holanda Dec 10 '19 at 18:47
  • Fantastic!!! The elegant way! – David Dias Jul 8 at 21:31
24

If you can wait to eliminate the duplicates until after all the additions, the typical approach is to first sort the array and then eliminate duplicates. The sorting avoids the N * N approach of scanning the array for each element as you walk through them.

The "eliminate duplicates" function is usually called unique or uniq. Some existing implementations may combine the two steps, e.g., prototype's uniq

This post has few ideas to try (and some to avoid :-) ) if your library doesn't already have one! Personally I find this one the most straight forward:

    function unique(a){
        a.sort();
        for(var i = 1; i < a.length; ){
            if(a[i-1] == a[i]){
                a.splice(i, 1);
            } else {
                i++;
            }
        }
        return a;
    }  

    // Provide your own comparison
    function unique(a, compareFunc){
        a.sort( compareFunc );
        for(var i = 1; i < a.length; ){
            if( compareFunc(a[i-1], a[i]) === 0){
                a.splice(i, 1);
            } else {
                i++;
            }
        }
        return a;
    }
4
  • That won't work for generic objects without a natural sort order. – Tim Down Feb 8 '10 at 9:28
  • True, I added a user-supplied comparison version. – maccullt Feb 8 '10 at 10:57
  • Your user-supplied comparison version won't work because if your comparison function is function(_a,_b){return _a.a===_b.a && _a.b===_b.b;} then the array won't be sorted. – graham.reeds Mar 25 '10 at 6:02
  • 1
    That is an invalid compare function. From developer.mozilla.org/en/Core_JavaScript_1.5_Reference/… ... function compare(a, b) { if (a is less than b by some ordering criterion) return -1; if (a is greater than b by the ordering criterion) return 1; // a must be equal to b return 0; } ... – maccullt Mar 25 '10 at 17:01
22

This is a generic way of doing this: you pass in a function that tests whether two elements of an array are considered equal. In this case, it compares the values of the name and place properties of the two objects being compared.

ES5 answer

function removeDuplicates(arr, equals) {
    var originalArr = arr.slice(0);
    var i, len, val;
    arr.length = 0;

    for (i = 0, len = originalArr.length; i < len; ++i) {
        val = originalArr[i];
        if (!arr.some(function(item) { return equals(item, val); })) {
            arr.push(val);
        }
    }
}

function thingsEqual(thing1, thing2) {
    return thing1.place === thing2.place
        && thing1.name === thing2.name;
}

var things = [
  {place:"here",name:"stuff"},
  {place:"there",name:"morestuff"},
  {place:"there",name:"morestuff"}
];

removeDuplicates(things, thingsEqual);
console.log(things);

Original ES3 answer

function arrayContains(arr, val, equals) {
    var i = arr.length;
    while (i--) {
        if ( equals(arr[i], val) ) {
            return true;
        }
    }
    return false;
}

function removeDuplicates(arr, equals) {
    var originalArr = arr.slice(0);
    var i, len, j, val;
    arr.length = 0;

    for (i = 0, len = originalArr.length; i < len; ++i) {
        val = originalArr[i];
        if (!arrayContains(arr, val, equals)) {
            arr.push(val);
        }
    }
}

function thingsEqual(thing1, thing2) {
    return thing1.place === thing2.place
        && thing1.name === thing2.name;
}

removeDuplicates(things.thing, thingsEqual);
3
  • 1
    Two objects won't evaluate equal, even if they share the same properties and values. – kennebec Feb 8 '10 at 4:06
  • Yes, I know. But fair point, I've failed to read the question correctly: I hadn't spotted that it was objects with identical properties he needed to weed out. I'll edit my answer. – Tim Down Feb 8 '10 at 9:14
  • 1
    instead of while inside arrayContains- use Array.prototype..some method Returns true if one of array members match condition – MarkosyanArtur Mar 5 '18 at 6:29
15

A TypeScript solution

This will remove duplicate objects and also preserve the types of the objects.

function removeDuplicateObjects(array: any[]) {
  return [...new Set(array.map(s => JSON.stringify(s)))]
    .map(s => JSON.parse(s));
}
2
  • 4
    Using type any entirely defeats the purpose of TypeScript – leonheess Dec 11 '20 at 10:14
  • Definitely I think this removes any inferred checking that the tax compiler will do. – Neil Jan 25 at 1:49
14

To add one more to the list. Using ES6 and Array.reduce with Array.find.
In this example filtering objects based on a guid property.

let filtered = array.reduce((accumulator, current) => {
  if (! accumulator.find(({guid}) => guid === current.guid)) {
    accumulator.push(current);
  }
  return accumulator;
}, []);

Extending this one to allow selection of a property and compress it into a one liner:

const uniqify = (array, key) => array.reduce((prev, curr) => prev.find(a => a[key] === curr[key]) ? prev : prev.push(curr) && prev, []);

To use it pass an array of objects and the name of the key you wish to de-dupe on as a string value:

const result = uniqify(myArrayOfObjects, 'guid')
13

Dang, kids, let's crush this thing down, why don't we?

let uniqIds = {}, source = [{id:'a'},{id:'b'},{id:'c'},{id:'b'},{id:'a'},{id:'d'}];
let filtered = source.filter(obj => !uniqIds[obj.id] && (uniqIds[obj.id] = true));
console.log(filtered);
// EXPECTED: [{id:'a'},{id:'b'},{id:'c'},{id:'d'}];

2
  • This does not answer the original question as this is searches for an id. The question needs the entire object to be unique across all fields such as place and name – L. Holanda Dec 10 '19 at 18:55
  • This is a refinement of an above generalization of the problem. The original question was posted 9 years ago, so the original poster probably isn't worried about place and name today. Anyone reading this thread is looking for an optimal way to dedup a list of objects, and this is a compact way of doing so. – Cliff Hall Dec 11 '19 at 19:25
12

You could also use a Map:

const dedupThings = Array.from(things.thing.reduce((m, t) => m.set(t.place, t), new Map()).values());

Full sample:

const things = new Object();

things.thing = new Array();

things.thing.push({place:"here",name:"stuff"});
things.thing.push({place:"there",name:"morestuff"});
things.thing.push({place:"there",name:"morestuff"});

const dedupThings = Array.from(things.thing.reduce((m, t) => m.set(t.place, t), new Map()).values());

console.log(JSON.stringify(dedupThings, null, 4));

Result:

[
    {
        "place": "here",
        "name": "stuff"
    },
    {
        "place": "there",
        "name": "morestuff"
    }
]
1
  • +1, nice tho explaining a bit more the inner working of dedupThings would be good - on the bright side I now understand reduce :D – MimiEAM Apr 6 '17 at 12:53
12

I think the best approach is using reduce and Map object. This is a single line solution.

const data = [
  {id: 1, name: 'David'},
  {id: 2, name: 'Mark'},
  {id: 2, name: 'Lora'},
  {id: 4, name: 'Tyler'},
  {id: 4, name: 'Donald'},
  {id: 5, name: 'Adrian'},
  {id: 6, name: 'Michael'}
]

const uniqueData = [...data.reduce((map, obj) => map.set(obj.id, obj), new Map()).values()];

console.log(uniqueData)

/*
  in `map.set(obj.id, obj)`
  
  'obj.id' is key. (don't worry. we'll get only values using the .values() method)
  'obj' is whole object.
*/

0
10

Considering lodash.uniqWith

var objects = [{ 'x': 1, 'y': 2 }, { 'x': 2, 'y': 1 }, { 'x': 1, 'y': 2 }];

_.uniqWith(objects, _.isEqual);
// => [{ 'x': 1, 'y': 2 }, { 'x': 2, 'y': 1 }]
1
  • 1
    Neither lodash's uniq nor uniqBy did the trick, but your solution did. Thanks! Please give the source of your code however, if it's a direct copy. lodash.com/docs/4.17.10#uniqWith – Manu CJ Jun 18 '18 at 8:21
9

let myData = [{place:"here",name:"stuff"}, 
 {place:"there",name:"morestuff"},
 {place:"there",name:"morestuff"}];


let q = [...new Map(myData.map(obj => [JSON.stringify(obj), obj])).values()];

console.log(q)

One-liner using ES6 and new Map().

// assign things.thing to myData
let myData = things.thing;

[...new Map(myData.map(obj => [JSON.stringify(obj), obj])).values()];

Details:-

  1. Doing .map() on the data list and converting each individual object into a [key, value] pair array(length =2), the first element(key) would be the stringified version of the object and second(value) would be an object itself.
  2. Adding above created array list to new Map() would have the key as stringified object and any same key addition would result in overriding the already existing key.
  3. Using .values() would give MapIterator with all values in a Map (obj in our case)
  4. Finally, spread ... operator to give new Array with values from the above step.
9

 const things = [
  {place:"here",name:"stuff"},
  {place:"there",name:"morestuff"},
  {place:"there",name:"morestuff"}
];
const filteredArr = things.reduce((thing, current) => {
  const x = thing.find(item => item.place === current.place);
  if (!x) {
    return thing.concat([current]);
  } else {
    return thing;
  }
}, []);
console.log(filteredArr)

Solution Via Set Object | According to the data type

const seen = new Set();
 const things = [
  {place:"here",name:"stuff"},
  {place:"there",name:"morestuff"},
  {place:"there",name:"morestuff"}
];

const filteredArr = things.filter(el => {
  const duplicate = seen.has(el.place);
  seen.add(el.place);
  return !duplicate;
});
console.log(filteredArr)

Set Object Feature

Each value in the Set Object has to be unique, the value equality will be checked

The Purpose of Set object storing unique values according to the Data type , whether primitive values or object references.it has very useful four Instance methods add, clear , has & delete.

Unique & data Type feature:..

addmethod

it's push unique data into collection by default also preserve data type .. that means it prevent to push duplicate item into collection also it will check data type by default...

has method

sometime needs to check data item exist into the collection and . it's handy method for the collection to cheek unique id or item and data type..

delete method

it will remove specific item from the collection by identifying data type..

clear method

it will remove all collection items from one specific variable and set as empty object

Set object has also Iteration methods & more feature..

Better Read from Here : Set - JavaScript | MDN

0
8

This way works well for me:

function arrayUnique(arr, uniqueKey) {
  const flagList = new Set()
  return arr.filter(function(item) {
    if (!flagList.has(item[uniqueKey])) {
      flagList.add(item[uniqueKey])
      return true
    }
  })
}
const data = [
  {
    name: 'Kyle',
    occupation: 'Fashion Designer'
  },
  {
    name: 'Kyle',
    occupation: 'Fashion Designer'
  },
  {
    name: 'Emily',
    occupation: 'Web Designer'
  },
  {
    name: 'Melissa',
    occupation: 'Fashion Designer'
  },
  {
    name: 'Tom',
    occupation: 'Web Developer'
  },
  {
    name: 'Tom',
    occupation: 'Web Developer'
  }
]
console.table(arrayUnique(data, 'name'))// work well

printout

┌─────────┬───────────┬────────────────────┐
│ (index) │   name    │     occupation     │
├─────────┼───────────┼────────────────────┤
│    0    │  'Kyle'   │ 'Fashion Designer' │
│    1    │  'Emily'  │   'Web Designer'   │
│    2    │ 'Melissa' │ 'Fashion Designer' │
│    3    │   'Tom'   │  'Web Developer'   │
└─────────┴───────────┴────────────────────┘

ES5:

function arrayUnique(arr, uniqueKey) {
  const flagList = []
  return arr.filter(function(item) {
    if (flagList.indexOf(item[uniqueKey]) === -1) {
      flagList.push(item[uniqueKey])
      return true
    }
  })
}

These two ways are simpler and more understandable.

8

removeDuplicates() takes in an array of objects and returns a new array without any duplicate objects (based on the id property).

const allTests = [
  {name: 'Test1', id: '1'}, 
  {name: 'Test3', id: '3'},
  {name: 'Test2', id: '2'},
  {name: 'Test2', id: '2'},
  {name: 'Test3', id: '3'}
];

function removeDuplicates(array) {
  let uniq = {};
  return array.filter(obj => !uniq[obj.id] && (uniq[obj.id] = true))
}

removeDuplicates(allTests);

Expected outcome:

[
  {name: 'Test1', id: '1'}, 
  {name: 'Test3', id: '3'},
  {name: 'Test2', id: '2'}
];

First, we set the value of variable uniq to an empty object.

Next, we filter through the array of objects. Filter creates a new array with all elements that pass the test implemented by the provided function.

return array.filter(obj => !uniq[obj.id] && (uniq[obj.id] = true));

Above, we use the short-circuiting functionality of &&. If the left side of the && evaluates to true, then it returns the value on the right of the &&. If the left side is false, it returns what is on the left side of the &&.

For each object(obj) we check uniq for a property named the value of obj.id (In this case, on the first iteration it would check for the property '1'.) We want the opposite of what it returns (either true or false) which is why we use the ! in !uniq[obj.id]. If uniq has the id property already, it returns true which evaluates to false (!) telling the filter function NOT to add that obj. However, if it does not find the obj.id property, it returns false which then evaluates to true (!) and returns everything to the right of the &&, or (uniq[obj.id] = true). This is a truthy value, telling the filter method to add that obj to the returned array, and it also adds the property {1: true} to uniq. This ensures that any other obj instance with that same id will not be added again.

4
  • Perhaps explain your code, and how it answers the question? – mix3d Aug 28 '18 at 20:56
  • Thanks, mix3d. I added clarification. – MarkN Aug 29 '18 at 22:22
  • Thanks for explaining this! This solution works for me, and is similar to a couple of others posted here, though I didn't understand what was happening :) – Tim Molloy Mar 7 '19 at 19:37
  • Thanks, neat solution – Олександр Данильченко Apr 20 at 13:46
6

Here is a solution for ES6 where you only want to keep the last item. This solution is functional and Airbnb style compliant.

const things = {
  thing: [
    { place: 'here', name: 'stuff' },
    { place: 'there', name: 'morestuff1' },
    { place: 'there', name: 'morestuff2' }, 
  ],
};

const removeDuplicates = (array, key) => {
  return array.reduce((arr, item) => {
    const removed = arr.filter(i => i[key] !== item[key]);
    return [...removed, item];
  }, []);
};

console.log(removeDuplicates(things.thing, 'place'));
// > [{ place: 'here', name: 'stuff' }, { place: 'there', name: 'morestuff2' }]
1
  • You can remove the duplicate and you can also remove all the duplicate with this code. Nice – sg28 May 23 '19 at 18:02
6

I know there is a ton of answers in this question already, but bear with me...

Some of the objects in your array may have additional properties that you are not interested in, or you simply want to find the unique objects considering only a subset of the properties.

Consider the array below. Say you want to find the unique objects in this array considering only propOne and propTwo, and ignore any other properties that may be there.

The expected result should include only the first and last objects. So here goes the code:

const array = [{
    propOne: 'a',
    propTwo: 'b',
    propThree: 'I have no part in this...'
},
{
    propOne: 'a',
    propTwo: 'b',
    someOtherProperty: 'no one cares about this...'
},
{
    propOne: 'x',
    propTwo: 'y',
    yetAnotherJunk: 'I am valueless really',
    noOneHasThis: 'I have something no one has'
}];

const uniques = [...new Set(
    array.map(x => JSON.stringify(((o) => ({
        propOne: o.propOne,
        propTwo: o.propTwo
    }))(x))))
].map(JSON.parse);

console.log(uniques);

4
  • It works but the other properties will be cleared, is it possible to keep the rest properties of the selected object? – Thanwa Ch. Sep 19 '20 at 11:43
  • @ThanwaCh. That's doable, and it is a matter of preference really - just need to determine which object the rest of the properties should be taken from in case of duplicates. Using my example, first and second objects in the array become one in the uniques. Now should that object contain propThree from array[0], or someOtherProperty from array[1], or both, or something else? As long as we know exactly what to do in such case, what you asked for is doable for sure. – Sнаđошƒаӽ Sep 19 '20 at 12:05
  • This solution worked beautifully for the use case I was coding. Can you explain what this part is/does (({ propOne, propTwo }) => ({ propOne, propTwo }))(x)? – knot22 May 26 at 14:12
  • 1
    @knot22 the part before (x) is an arrow function which is unpacking the argument object into properties propOne and propTwo. Learn about object destructuring here. Now that I have read the code again, I think it should have been written a little more clearly. I have updated the code. – Sнаđошƒаӽ May 26 at 15:12
5

Another option would be to create a custom indexOf function, which compares the values of your chosen property for each object and wrap this in a reduce function.

var uniq = redundant_array.reduce(function(a,b){
      function indexOfProperty (a, b){
          for (var i=0;i<a.length;i++){
              if(a[i].property == b.property){
                   return i;
               }
          }
         return -1;
      }

      if (indexOfProperty(a,b) < 0 ) a.push(b);
        return a;
    },[]);
1
  • this worked out great for me - I paired this with lodash.isequal npm package as a lightweight object comparator to perform unique array filtering ...e.g. distinct array of objects. Just swapped in if (_.isEqual(a[i], b)) { instead of looking @ a single property – SliverNinja - MSFT Nov 29 '17 at 17:40
2

Continuing exploring ES6 ways of removing duplicates from array of objects: setting thisArg argument of Array.prototype.filter to new Set provides a decent alternative:

const things = [
  {place:"here",name:"stuff"},
  {place:"there",name:"morestuff"},
  {place:"there",name:"morestuff"}
];

const filtered = things.filter(function({place, name}) {

  const key =`${place}${name}`;

  return !this.has(key) && this.add(key);

}, new Set);

console.log(filtered);

However, it will not work with arrow functions () =>, as this is bound to their lexical scope.

0
2
let data = [
  {
    'name': 'Amir',
    'surname': 'Rahnama'
  }, 
  {
    'name': 'Amir',
    'surname': 'Stevens'
  }
];
let non_duplicated_data = _.uniqBy(data, 'name');
2
  • 14
    Please add an explanation around your code so future visitors can understand what it is you are doing. Thanks. – Bugs Jun 20 '17 at 8:06
  • Sorry...what is this code doing? how did you get _.uniqBy ? is this javascript ? – jovialcore May 22 at 15:54
2

Source

JSFiddle

This will remove the duplicate object without passing any key.

uniqueArray = a => [...new Set(a.map(o => JSON.stringify(o)))].map(s => JSON.parse(s));

var objects = [{ 'x': 1, 'y': 2 }, { 'x': 2, 'y': 1 }, { 'x': 1, 'y': 2 }];

var unique = uniqueArray(objects);
console.log('Original Object',objects);
console.log('Unique',unique);

uniqueArray = a => [...new Set(a.map(o => JSON.stringify(o)))].map(s => JSON.parse(s));

    var objects = [{ 'x': 1, 'y': 2 }, { 'x': 2, 'y': 1 }, { 'x': 1, 'y': 2 }];

    var unique = uniqueArray(objects);
    console.log(objects);
    console.log(unique);
2
  • Could you explain what's happening and how it's working? – MillerC Mar 3 '20 at 19:28
  • 1
    I played with it and from what I can see, the [...new Set(a.map(o => JSON.stringify(o))) returns the dup free values because a new Set removes duplicates. The set has to have the (o) stringified so it can correctly remove duplicate "strings", and then the following .map is converting the stringified values back into objects. – MillerC Mar 3 '20 at 19:51
2

If you strictly want to remove duplicates based on one property, you can reduce the array into and object based on the place property, since the object can only have unique keys, you can then just get the values to get back to an array:

const unique = Object.values(things.thing.reduce((o, t) => ({ ...o, [t.place]: t }), {}))

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