294

I have an array of objects. I want to find by some field, and then to change it:

var item = {...}
var items = [{id:2}, {id:2}, {id:2}];

var foundItem = items.find(x => x.id == item.id);
foundItem = item;

I want it to change the original object. How? (I don't care if it will be in Lodash too.)

1
  • Dose your newer object item contains a id key? or do you mind having the id as well as all the properties from item object in the array entry? Sep 20, 2018 at 10:37

12 Answers 12

460

You can use findIndex to find the index in the array of the object and replace it as required:

var item = {...}
var items = [{id:2}, {id:2}, {id:2}];

var foundIndex = items.findIndex(x => x.id == item.id);
items[foundIndex] = item;

This assumes unique IDs. If your IDs are duplicated (as in your example), it's probably better if you use forEach:

items.forEach((element, index) => {
    if(element.id === item.id) {
        items[index] = item;
    }
});
7
  • 16
    @georg That would return a new array though. Feb 4, 2016 at 16:33
  • 3
    The => function won't work in IE11. Recently bitten by this. Jan 23, 2018 at 23:44
  • 2
    may be it would be better to use let keyword instead of var
    – Inus Saha
    Feb 23, 2018 at 7:28
  • Just FYI, this does not work in some versions of phantomJS
    – Sid
    Mar 6, 2018 at 16:25
  • 2
    I prefer the more verbose method @CodingIntrigue uses instead of using the one-liner map that @georg uses. Less mental gymnastics required to figure out what's going on. Worth the extra line of code. Sep 10, 2018 at 19:10
104

My best approach is:

var item = {...}
var items = [{id:2}, {id:2}, {id:2}];

items[items.findIndex(el => el.id === item.id)] = item;

Reference for findIndex

And in case you don't want to replace with new object, but instead to copy the fields of item, you can use Object.assign:

Object.assign(items[items.findIndex(el => el.id === item.id)], item)

as an alternative with .map():

Object.assign(items, items.map(el => el.id === item.id? item : el))

Functional approach:

Don't modify the array, use a new one, so you don't generate side effects

const updatedItems = items.map(el => el.id === item.id ? item : el)

Note

Properly used, references to objects are not lost, so you could even use the original object reference, instead of creating new ones.

const myArr = [{ id: 1 }, { id: 2 }, { id: 9 }];
const [a, b, c] = myArr;
// modify original reference will change object in the array
a.color = 'green';
console.log(myArr[0].color); // outputs 'green'

This issue usually happens when consuming lists from database and then mapping the list to generate HTML content which will modify the elements of the list, and then we need to update the list and send it back to database as a list.

Good news is, references are kept, so you could organize your code to get advantage of it, and think about a list as an Object with identities for free, which are integers from 0 to length -1. So every time you access any property of your Object, do it as list[i], and you don't lose reference, and original object is changed. Keep in mind that this is useful when your source of truth is only one (the Object created), and your app is always consistently consuming the same Object (not fetching several times from database and assigning it to list along the lifespan of the component).

Bad news is that the architecture is wrong, and you should receive an object by ids (dictionary) if this is what you need, something like

{ 
  1232: { id: 1232, ...},
  asdf234asf: { id: 'asdf234asf', ...},
  ...
}

This way, you don't search in arrays, which is resource consuming. You "just access by key in the object", which is instant and performant.

5
  • 3
    Please link to an English page if the original question was in English. Also, this example assumes the object is always found.
    – raarts
    Jul 3, 2017 at 10:45
  • 2
    You can always wrap it in a try catch expression then... right? Jul 4, 2017 at 11:11
  • 2
    And being completely literal to the posts' question, he wants to edit an element in an array. He doesn't want to know if it exists or not, so we assume he already did that before. May 11, 2018 at 12:58
  • 1
    @SoldeplataSaketos yes, you could wrap it in a try/catch, but you shouldn't, because not finding the element is not an exceptional case; it's a standard case you should account for by checking the return value of findIndex and then only updating the array when the element was found.
    – Wayne
    Jun 9, 2020 at 4:17
  • @Wayne not finding the item is not an exception. Right. But let's be imaginative. Trying to access a property of an item that is undefined will be an Type Error and this is what we are expecting here to happen. That's the unexpected exception. We want to modify an item we know it exists (probably it's in a list and user wants to modify it) Jan 28, 2022 at 10:14
74

One-liner using spread operator.

 const updatedData = originalData.map(x => (x.id === id ? { ...x, updatedField: 1 } : x));
3
  • Exactly what I was looking for!
    – Ben in CA
    Nov 15, 2021 at 20:45
  • 2
    The "issue" is that if let's say id are created in a random way, you end up with objects having same id Nov 22, 2021 at 11:16
  • This is very elegant, much appreciated. Dec 1, 2023 at 20:08
40

An other approach is to use splice.

The splice() method changes the contents of an array by removing or replacing existing elements and/or adding new elements in place.

N.B : In case you're working with reactive frameworks, it will update the "view", your array "knowing" you've updated it.

Answer :

var item = {...}
var items = [{id:2}, {id:2}, {id:2}];

let foundIndex = items.findIndex(element => element.id === item.id)
items.splice(foundIndex, 1, item)

And in case you want to only change a value of an item, you can use find function :

// Retrieve item and assign ref to updatedItem
let updatedItem = items.find((element) => { return element.id === item.id })

// Modify object property
updatedItem.aProp = ds.aProp
1
  • means find return a reference and we can directly update the record ... gemini was misguiding me :D May 1 at 9:07
33

Given a changed object and an array:

const item = {...}
let items = [{id:2}, {id:3}, {id:4}];

Update the array with the new object by iterating over the array:

items = items.map(x => (x.id === item.id) ? item : x)
3
  • 1
    I think this is the best solution since it is has the best performance since it go over the array only once and also change the reference of the array ,so it will avoid mutable situations
    – Ohad Sadan
    Nov 26, 2019 at 10:50
  • 1
    @Spencer so the map loops over each item in the items array and checks if that item has id the same as the id of the item in the const variable. If it finds one, it maps that item which is x to item which is the one in the const variable, otherwise it keeps the same element x in the items array.
    – Dejazmach
    May 3, 2021 at 13:20
  • Where is the match updated in this example? Jun 15, 2022 at 20:47
6

May be use Filter.

const list = [{id:0}, {id:1}, {id:2}];
let listCopy = [...list];
let filteredDataSource = listCopy.filter((item) => {
       if (item.id === 1) {
           item.id = 12345;
        }

        return item;
    });
console.log(filteredDataSource);

Array [Object { id: 0 }, Object { id: 12345 }, Object { id: 2 }]

1
  • I like filter because it allows to create a new array and for this also not existent entries are 'deleted'
    – pungggi
    Dec 25, 2018 at 17:50
5

I don't see this approach in the answers yet, so here's a simple little one liner

let item = {id: 1, new: true};
let items = [{id: 1}, {id: 2}];

let replaced = [item, ...items.filter(i => i.id !== item.id)]

You're just adding the item to the original array filtered of the item you're replacing.

1
  • 4
    This way will not update the item in place, so original order is changed. Jul 27, 2022 at 10:01
4

Whereas most of the existing answers are great, I would like to include an answer using a traditional for loop, which should also be considered here. The OP requests an answer which is ES5/ES6 compatible, and the traditional for loop applies :)

The problem with using array functions in this scenario, is that they don't mutate objects, but in this case, mutation is a requirement. The performance gain of using a traditional for loop is just a (huge) bonus.

const findThis = 2;
const items = [{id:1, ...}, {id:2, ...}, {id:3, ...}];

for (let i = 0, l = items.length; i < l; ++i) {
  if (items[i].id === findThis) {
    items[i].iAmChanged = true;
    break;
  }
}

Although I am a great fan of array functions, don't let them be the only tool in your toolbox. If the purpose is mutating the array, they are not the best fit.

1

In my case, I wanted to find some element ( and its length) and wanted to add a new element no_of_agents in the object itself. So following did help me

  details.forEach(obj => {
                const length = obj["fleet_ids"].length || 0;
                obj.set("no_of_agents" , length)
            });

Somehow map() returned with other details(like '$__': InternalCache, strictMode, shardval, etc) which was not required,

1

find and update values in an array using useState and map es6

    const item = {id:5}
    const items = [{id:2}, {id:2}, {id:2}];

    const [list, setList] = useState(items)

    const onChange = (item) => {
        const newList = list.map((el) => {
                if (el.id === item.id) {
                    return item;
                }
                return el;
            });
        setList(newList);
    }
2
  • This is using react hook, the question looks for a solution in JS. Oct 20, 2023 at 13:08
  • everyone has already written how to do this in pure js. but not with a hook. that's why the title in my post is appropriate. it will help people.
    – Ivan K.
    Oct 21, 2023 at 14:39
0

worked for me

let returnPayments = [ ...this.payments ];

returnPayments[this.payments.findIndex(x => x.id == this.payment.id)] = this.payment;
2
  • 1
    Please don't just paste code. Explain what is being done and how this solves the issue. Dec 17, 2019 at 15:20
  • 2
    The accepted most upvoted answer is not much different, yet you didn't point towards them updating there answer.. why is that?
    – li x
    Mar 3, 2020 at 10:08
-2

You can do like this too

var item = {...}
var items = [{id:2}, {id:2}, {id:2}];

var foundItem = items.filter((x) => x.id ==  item.id).pop();
foundItem = item;

OR

items.filter((x) => x.id ==  item.id).pop()=item;

 
0

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