565

Say I have an object:

elmo = { 
  color: 'red',
  annoying: true,
  height: 'unknown',
  meta: { one: '1', two: '2'}
};

I want to make a new object with a subset of its properties.

 // pseudo code
 subset = elmo.slice('color', 'height')

 //=> { color: 'red', height: 'unknown' }

How may I achieve this?

4

29 Answers 29

887

Using Object Destructuring and Property Shorthand

const object = { a: 5, b: 6, c: 7  };
const picked = (({ a, c }) => ({ a, c }))(object);

console.log(picked); // { a: 5, c: 7 }


From Philipp Kewisch:

This is really just an anonymous function being called instantly. All of this can be found on the Destructuring Assignment page on MDN. Here is an expanded form

let unwrap = ({a, c}) => ({a, c});

let unwrap2 = function({a, c}) { return { a, c }; };

let picked = unwrap({ a: 5, b: 6, c: 7 });

let picked2 = unwrap2({a: 5, b: 6, c: 7})

console.log(picked)
console.log(picked2)

20
  • 46
    How did you learn about how to do this? Nowhere in any docs or articles I've seen (including MDN) does it show the arrow syntax being used in Object Destructuring. This is very nice to know. – papiro Jan 3 '17 at 5:25
  • 61
    This is really just an anonymous function being called instantly. All of this can be found on the Destructuring Assignment page on MDN. Here is an expanded form: let unwrap = ({a, c}) => ({a, c}); let unwrap2 = function({a, c}) { return { a, c }; }; let picked = unwrap({ a: 5, b: 6, c: 7 }); – Philipp Kewisch Jan 27 '17 at 11:41
  • 11
    is there a way to do it dynamically with the spread operator? – Tom Sarduy Jun 13 '17 at 17:24
  • 5
    @TomSarduy you could use rest if you want to specify which props to remove, e.g. const { b, ...picked } = object would create picked as { a: 5, c: 7 }. You've specified simply to remove b. Your eslint will probably be annoyed at you for declaring a var that you're not using, though. – Josh from Qaribou Aug 28 '17 at 2:13
  • 41
    A disadvantage here is that you need to fully type out the series of attribute names twice. That could be quite an issue in cases where many attributes need to be picked. – Gershy Oct 9 '18 at 19:29
187

I suggest taking a look at Lodash; it has a lot of great utility functions.

For example pick() would be exactly what you seek:

var subset = _.pick(elmo, ['color', 'height']);

fiddle

6
  • 2
    same for underscore.js – Dan Nov 28 '16 at 4:52
  • 2
    Is there any function to exclude only certain fields instead of selecting? so I have about 50 fields in my json and want everything except just 2 fields. – Shrikant Prabhu Jul 3 '18 at 1:01
  • 16
    yep! you can use _.omit(elmo, ['voice']) to return everything but voice – xavdid Jul 4 '18 at 1:03
  • 1
    what I don't like about this approach is you're putting the field names in quotes so it's susceptible to typos, common refactorings like renaming a property in your IDE won't pick it up, etc.etc. – Andy May 12 '20 at 18:03
  • 1
    @ShrikantPrabhu codeburst.io/… – Trevor Sep 28 '20 at 21:37
154

If you are using ES6 there is a very concise way to do this using destructuring. Destructuring allows you to easily add on to objects using a spread, but it also allows you to make subset objects in the same way.

const object = {
  a: 'a',
  b: 'b',
  c: 'c',
  d: 'd',
}

// Remove "c" and "d" fields from original object:
const {c, d, ...partialObject} = object;
const subset = {c, d};

console.log(partialObject) // => { a: 'a', b: 'b'}
console.log(subset) // => { c: 'c', d: 'd'};
4
  • 10
    this only works to remove a field, not to select a known subset? potentially an infinite number of unknown fields to remove, but it might be what some people are looking for – Alexander Mills May 26 '18 at 2:10
  • True, but it can remove several known fields which can then be reassigned to a new object so it still feels relevant to this question. Added to the answer to further illustrate. – Lauren May 27 '18 at 19:16
  • 1
    This is essentially the same as what is in as @Ivan Nosov's answer, albeit it's explained in a more understandable way here – icc97 Sep 10 '18 at 12:53
  • @icc97 I think this is the opposite of Ivan's answer. Ivan is specifying a subset within an IIFE, whereas this answer is using spread to essentially destructure all except. That is, one is a blacklist, the other is a whitelist. This could matter a lot if you were using Lauren's answer to destructure an object containing sensitive data (e.g., a user session) – Nick Bull Jan 7 at 19:09
102

While it's a bit more verbose, you can accomplish what everyone else was recommending underscore/lodash for 2 years ago, by using Array.prototype.reduce.

var subset = ['color', 'height'].reduce(function(o, k) { o[k] = elmo[k]; return o; }, {});

This approach solves it from the other side: rather than take an object and pass property names to it to extract, take an array of property names and reduce them into a new object.

While it's more verbose in the simplest case, a callback here is pretty handy, since you can easily meet some common requirements, e.g. change the 'color' property to 'colour' on the new object, flatten arrays, etc. -- any of the things you need to do when receiving an object from one service/library and building a new object needed somewhere else. While underscore/lodash are excellent, well-implemented libs, this is my preferred approach for less vendor-reliance, and a simpler, more consistent approach when my subset-building logic gets more complex.

edit: es7 version of the same:

const subset = ['color', 'height'].reduce((a, e) => (a[e] = elmo[e], a), {});

edit: A nice example for currying, too! Have a 'pick' function return another function.

const pick = (...props) => o => props.reduce((a, e) => ({ ...a, [e]: o[e] }), {});

The above is pretty close to the other method, except it lets you build a 'picker' on the fly. e.g.

pick('color', 'height')(elmo);

What's especially neat about this approach, is you can easily pass in the chosen 'picks' into anything that takes a function, e.g. Array#map:

[elmo, grover, bigBird].map(pick('color', 'height'));
// [
//   { color: 'red', height: 'short' },
//   { color: 'blue', height: 'medium' },
//   { color: 'yellow', height: 'tall' },
// ]
8
  • 3
    es6 makes it possible for this to be even cleaner via arrow functions, and Object.assign's return (since assigning to an object property returns the property value, but Object.assign returns the object.) – Josh from Qaribou Mar 7 '16 at 12:59
  • Another es6 note: you'll very seldom need to do this at all anymore, since you typically just destructure assignment or args. e.g. function showToy({ color, height }) { would put only what you need in scope. The reduce approach mainly makes sense when you're simplifying objects for serialization. – Josh from Qaribou Apr 8 '16 at 16:43
  • 8
    That ES6 version is less performant, because it makes a copy of all the properties with each iteration. It makes an O(n) operation into O(n^2). An ES6 equivalent of your first code block would be const pick = (obj, props) => props.reduce((a, e) => (a[e] = obj[e], a), {}); – 4castle Feb 24 '17 at 18:52
  • @4castle yep good call - no sense iterating so much. I like the comma syntax - better than a bunch of returns. – Josh from Qaribou Feb 24 '17 at 20:58
  • 1
    @ShevchenkoViktor I'd actually used that approach in my original es6 version, but changed it after @4castle 's comment. I think the spread is more clear, but it's a huge difference for larger objects in code that could easily be on a bottleneck (eg delaying rendering data returned from fetch), so I'd recommend adding a comment explaining the comma operator use. – Josh from Qaribou Jul 11 '17 at 11:30
90

Two common approaches are destructuring and conventional Lodash-like pick/omit implementation. The major practical difference between them is that destructuring requires a list of keys to be static, can't omit them, includes non-existent picked keys, i.e. it's inclusive. This may or not be desirable and cannot be changed for destructuring syntax.

Given:

var obj = { foo: 1, bar: 2, qux: 3 };

The expected result for regular picking of foo, bar, baz keys:

{ foo: 1, bar: 2 }

The expected result for inclusive picking:

{ foo: 1, bar: 2, baz: undefined }

Destructuring

Destructuring syntax allows to destructure and recombine an object, with either function parameters or variables.

The limitation is that a list of keys is predefined, they cannot be listed as strings, as described in the question. Destructuring becomes more complicated if a key is non-alphanumeric, e.g. foo-bar.

The upside is that it's performant solution that is natural to ES6.

The downside is that a list of keys is duplicated, this results in verbose code in case a list is long. Since destructuring duplicates object literal syntax in this case, a list can be copied and pasted as is.

IIFE

let subset = (({ foo, bar, baz }) => ({ foo, bar, baz }))(obj);

Temporary variables

let { foo, bar, baz } = obj;
let subset = { foo, bar, baz };

A list of strings

Arbitrary list of picked keys consists of strings, as the question requires. This allows to not predefine them and use variables that contain key names, ['foo', someKey, ...moreKeys].

ECMAScript 2017 has Object.entries and Array.prototype.includes, ECMAScript 2019 has Object.fromEntries, they can be polyfilled when needed.

One-liners

Considering that an object to pick contains extra keys, it's generally more efficient to iterate over keys from a list rather than object keys, and vice versa if keys need to be omitted.

Pick (ES5)

var subset = ['foo', 'bar', 'baz']
.reduce(function (obj2, key) {
  if (key in obj) // line can be removed to make it inclusive
    obj2[key] = obj[key];
  return obj2;
}, {});

Omit (ES5)

var subset = Object.keys(obj)
.filter(function (key) { 
  return ['baz', 'qux'].indexOf(key) < 0;
})
.reduce(function (obj2, key) {
  obj2[key] = obj[key];
  return obj2;
}, {});

Pick (ES6)

let subset = ['foo', 'bar', 'baz']
.filter(key => key in obj) // line can be removed to make it inclusive
.reduce((obj2, key) => (obj2[key] = obj[key], obj2));

Omit (ES6)

let subset = Object.keys(obj)
.filter(key => ['baz', 'qux'].indexOf(key) < 0)
.reduce((obj2, key) => (obj2[key] = obj[key], obj2));

Pick (ES2019)

let subset = Object.fromEntries(
  ['foo', 'bar', 'baz']
  .filter(key => key in obj) // line can be removed to make it inclusive
  .map(key => [key, obj[key]])
);

Omit (ES2019)

let subset = Object.fromEntries(
  Object.entries(obj)
  .filter(([key]) => !['baz', 'qux'].includes(key))
);

Reusable functions

One-liners can be represented as reusable helper functions similar to Lodash pick or omit, where a list of keys is passed through arguments, pick(obj, 'foo', 'bar', 'baz').

let pick = (obj, ...keys) => Object.fromEntries(
  keys
  .filter(key => key in obj)
  .map(key => [key, obj[key]])
);

let inclusivePick = (obj, ...keys) => Object.fromEntries(
  keys.map(key => [key, obj[key]])
);

let omit = (obj, ...keys) => Object.fromEntries(
  Object.entries(obj)
  .filter(([key]) => !keys.includes(key))
);
5
  • 13
    What a shame that this answer is so recent and thus isn't getting the exposure it deserves. IMO it should be the accepted answer for completeness, simplicity, versatility and, just-workiness. I'll keep the ES6 version in my most-useful snippet library. – VanAlbert Jul 7 '19 at 13:27
  • I'm not a fan of the .indexOf/.includes solutions -- that's doing an O(keys) lookup on every iteration = O(entries*keys). Better to flip the logic around and just iterate the keys, then you get O(keys) total. – mpen Sep 29 '20 at 22:52
  • @mpen This concern can be considered premature optimization because in most real-word situations it doesn't affect the performance at all, so just pick one that's easy to digest. And for well-timed optimization one may find that Lodash isn't that fast (it really isn't), and using array methods to iterate over objects shouldn't be the first choice either. Any way, I usually find myself using iteration over a list myself for pick and iteration over object keys for omit, and updated the post to reflect this. – Estus Flask Jun 11 at 18:05
  • @EstusFlask It may be premature, but when there's a faster big-O sol'n that takes the same # of lines to implement, I prefer that. Might be fine if you're inlining this code, but as soon as you turn it into a utility function it should be optimized IMO, because you don't know where it will be used. – mpen Jun 11 at 19:52
  • @mpen Btw, it also can be the opposite, with a lot of listed keys missing in an object, in this case iterating over a list will be more redundant, so it always depends. – Estus Flask Jun 11 at 20:11
44

There is nothing like that built-in to the core library, but you can use object destructuring to do it...

const {color, height} = sourceObject;
const newObject = {color, height};

You could also write a utility function do it...

const cloneAndPluck = function(sourceObject, keys) {
    const newObject = {};
    keys.forEach((obj, key) => { newObject[key] = sourceObject[key]; });
    return newObject;
};

const subset = cloneAndPluck(elmo, ["color", "height"]);

Libraries such as Lodash also have _.pick().

1
  • 2
    great, i just had to change the forEach to: keys.forEach(key => { newObject[key] = sourceObject[key]; });. Please, update the comment if this makes sense. – kandan Feb 25 '19 at 12:54
44

I am adding this answer because none of the answer used Comma operator.

It's very easy with destructuring assignment and , operator

const object = { a: 5, b: 6, c: 7  };
const picked = ({a,c} = object, {a,c})

console.log(picked);

9
  • 2
    my bad, I don't know what I did before that it didn't work but it does seem to work – ekkis Feb 22 '19 at 6:25
  • 2
    That's the best expression, when it come to destructuring – Mohamed Allal Apr 28 '19 at 17:36
  • 1
    this solution is clever, but it doesn't work in strict mode (i.e., 'use strict'). I get a ReferenceError: a is not defined. – kimbaudi Jul 18 '19 at 6:55
  • 13
    Note that this approach pollutes the current scope with two variables a and c - be careful not to randomly overwrite local or global vars depending on the context. (The accepted answer avoids this issue by using two local variables in an inline function, which falls out of scope after immediate execution.) – mindplay.dk Aug 15 '19 at 12:12
  • 2
    The namespace pollution makes this completely impractical. It's extremely common to already have variables in scope that match object properties, that's why the prop shorthand + destructuring exists.Very likely you'll have height or color already defined like in the original example. – Josh from Qaribou Feb 13 '20 at 11:16
35

One more solution:

var subset = {
   color: elmo.color,
   height: elmo.height 
}

This looks far more readable to me than pretty much any answer so far, but maybe that's just me!

5
  • 14
    I prefer being productive over being fancy but confusing code, and in real life software engineering this is far the most readable and maintainable solution. – Janos Nov 8 '18 at 15:27
  • 2
    Yes, however, to me, one upside of using destructuring and shorthand notation is that it's less error prone. If I'd had a penny for every time I've mistakingly copy & pasted code to end up with subset = {color: elmo.color, height: elmo.color}, I'd have had at least a ... well, a dime perhaps. – JHH Jan 10 '20 at 7:57
  • I wouldn't call the destructuring shorthand less error prone as it's not D.R.Y. – gman Apr 7 '20 at 4:46
  • I'd have to agree. Without polluting the context with unwanted variables, this is by far the most readable solution. The rest look way too confusing. I prefer to understand my code the second I look at it. – Andrew Apr 18 '20 at 2:11
  • I tend to agree with this... The destructuring + anonymous function is just as verbose. If you are doing this often, then one of the more declarative "utility" functions would be worth using – NSjonas Apr 7 at 5:05
19

I want to mention that very good curation here:

pick-es2019.js

Object.fromEntries(
  Object.entries(obj)
  .filter(([key]) => ['whitelisted', 'keys'].includes(key))
);

pick-es2017.js

Object.entries(obj)
.filter(([key]) => ['whitelisted', 'keys'].includes(key))
.reduce((obj, [key, val]) => Object.assign(obj, { [key]: val }), {});

pick-es2015.js

Object.keys(obj)
.filter((key) => ['whitelisted', 'keys'].indexOf(key) >= 0)
.reduce((newObj, key) => Object.assign(newObj, { [key]: obj[key] }), {})

omit-es2019.js

Object.fromEntries(
  Object.entries(obj)
  .filter(([key]) => !['blacklisted', 'keys'].includes(key))
);

omit-es2017.js

Object.entries(obj)
.filter(([key]) => !['blacklisted', 'keys'].includes(key))
.reduce((obj, [key, val]) => Object.assign(obj, { [key]: val }), {});

omit-es2015.js

Object.keys(obj)
.filter((key) => ['blacklisted', 'keys'].indexOf(key) < 0)
.reduce((newObj, key) => Object.assign(newObj, { [key]: obj[key] }), {})
19

TypeScript solution:

function pick<T extends object, U extends keyof T>(
  obj: T,
  paths: Array<U>
): Pick<T, U> {
  const ret = Object.create(null);
  for (const k of paths) {
    ret[k] = obj[k];
  }
  return ret;
}

The typing information even allows for auto-completion:

Credit to DefinitelyTyped for U extends keyof T trick!

TypeScript Playground

6
  • @Nuthinking Are you using VS Code? – mpen May 27 '20 at 17:46
  • @Nuthinking And you put that in a .ts file? That should work. I just tried it again – mpen May 28 '20 at 17:09
  • 1
    came here looking for this, nice one! – Arkadiy Kukarkin Sep 29 '20 at 22:00
  • 1
    actually, I would suggest one change: function pick<T extends object, U extends keyof T>(obj: T, paths: Array<U>): Pick<T, U> that Pick<T,U> will correctly type the returned object, which is inferred as any – Arkadiy Kukarkin Oct 2 '20 at 19:48
  • 1
    Beautiful solution! I have several attributes to pick and the object destructuring trick looks awfully bad when used with 4 or 5 attributes. – seniorpreacher Feb 22 at 8:27
12

You can use Lodash also.

var subset = _.pick(elmo ,'color', 'height');

Complementing, let's say you have an array of "elmo"s :

elmos = [{ 
      color: 'red',
      annoying: true,
      height: 'unknown',
      meta: { one: '1', two: '2'}
    },{ 
      color: 'blue',
      annoying: true,
      height: 'known',
      meta: { one: '1', two: '2'}
    },{ 
      color: 'yellow',
      annoying: false,
      height: 'unknown',
      meta: { one: '1', two: '2'}
    }
];

If you want the same behavior, using lodash, you would just:

var subsets = _.map(elmos, function(elm) { return _.pick(elm, 'color', 'height'); });
10

Destructuring into dynamically named variables is impossible in JavaScript as discussed in this question.

To set keys dynamically, you can use reduce function without mutating object as follows:

const getSubset = (obj, ...keys) => keys.reduce((a, c) => ({ ...a, [c]: obj[c] }), {});

const elmo = { 
  color: 'red',
  annoying: true,
  height: 'unknown',
  meta: { one: '1', two: '2'}
}

const subset = getSubset(elmo, 'color', 'annoying')
console.log(subset)

Should note that you're creating a new object on every iteration though instead of updating a single clone. – mpen

below is a version using reduce with single clone (updating initial value passed in to reduce).

const getSubset = (obj, ...keys) => keys.reduce((acc, curr) => {
  acc[curr] = obj[curr]
  return acc
}, {})

const elmo = { 
  color: 'red',
  annoying: true,
  height: 'unknown',
  meta: { one: '1', two: '2'}
}

const subset = getSubset(elmo, 'annoying', 'height', 'meta')
console.log(subset)

4
  • 1
    Awesome! It threw me for a moment not realizing how essential the brackets are on [c]: . I'm assuming that is somehow causing c to be looked at as a value instead of the name of the property. Anyway, very cool. +1 – John Fairbanks Mar 14 '18 at 15:18
  • Thanks mate! That usage is one thing I love about JavaScript which enables generic functions without using eval. Simply, what it makes is letting you set a key of dict to a variable at runtime. if you define var key = 'someKey', then you can use it as { [key]: 'value' }, which gives you { someKey: 'value' }. Really cool. – Muhammet Enginar Mar 15 '18 at 20:49
  • 1
    Should note that you're creating a new object on every iteration though instead of updating a single clone. – mpen May 16 '19 at 6:28
  • 1
    @mpen good find. I've added a version mutating single clone as you've suggested also spreading args instead passing an array of keys. – Muhammet Enginar May 16 '19 at 22:34
8

Dynamic solution

['color', 'height'].reduce((a,b) => (a[b]=elmo[b],a), {})

let subset= (obj,keys)=> keys.reduce((a,b)=> (a[b]=obj[b],a),{});


// TEST

let elmo = { 
  color: 'red',
  annoying: true,
  height: 'unknown',
  meta: { one: '1', two: '2'}
};

console.log( subset(elmo, ['color', 'height']) );

6

Use pick method of lodash library if you are already using.

var obj = { 'a': 1, 'b': '2', 'c': 3 };

_.pick(object, ['a', 'c']);

// => { 'a': 1, 'c': 3 }

https://lodash.com/docs/4.17.10#pick

1
  • I actually didn't want to install all of the lodash overhead for that use case but I tried all of the reduce methods above and after half an hour I ended up on good old lodash with one clean readable line of code. And as it is the backend it doesn't really matter. – Matthis Kohli Jun 21 '20 at 17:01
5

An Array of Objects

const aListOfObjects = [{
    prop1: 50,
    prop2: "Nothing",
    prop3: "hello",
    prop4: "What's up",
  },
  {
    prop1: 88,
    prop2: "Whatever",
    prop3: "world",
    prop4: "You get it",
  },
]

Making a subset of an object or objects can be achieved by destructuring the object this way.

const sections = aListOfObjects.map(({prop1, prop2}) => ({prop1, prop2}));
4

Just another way...

var elmo = { 
  color: 'red',
  annoying: true,
  height: 'unknown',
  meta: { one: '1', two: '2'}
}

var subset = [elmo].map(x => ({
  color: x.color,
  height: x.height
}))[0]

You can use this function with an array of Objects =)

3

To add another esoteric way, this works aswell:

var obj = {a: 1, b:2, c:3}
var newobj = {a,c}=obj && {a,c}
// {a: 1, c:3}

but you have to write the prop names twice.

2

How about:

function sliceObj(obj) {
  var o = {}
    , keys = [].slice.call(arguments, 1);
  for (var i=0; i<keys.length; i++) {
    if (keys[i] in obj) o[keys[i]] = obj[keys[i]];
  }
  return o;
}

var subset = sliceObj(elmo, 'color', 'height');
2
  • This would fail if the value of the property was false (or falsy). jsfiddle.net/nfAs8 – Alxandr Jul 22 '13 at 6:57
  • That's why I changed it to keys[i] in obj. – elclanrs Jul 22 '13 at 6:58
2

This works for me in Chrome console. Any problem with this?

var { color, height } = elmo
var subelmo = { color, height }
console.log(subelmo) // {color: "red", height: "unknown"}
3
  • 4
    This reads nice, but creates two unnecessary variables, color and height. – user424174 Nov 28 '18 at 18:03
  • Dont understand your comment. The requirement of OP was to create an object having those two elements – MSi Nov 29 '18 at 20:07
  • 1
    @MSi This doesn't only create one object, it also creates two variables. – Design by Adrian Oct 11 '19 at 8:44
2
  1. convert arguments to array

  2. use Array.forEach() to pick the property

    Object.prototype.pick = function(...args) {
       var obj = {};
       args.forEach(k => obj[k] = this[k])
       return obj
    }
    var a = {0:"a",1:"b",2:"c"}
    var b = a.pick('1','2')  //output will be {1: "b", 2: "c"}
    
1
  • 4
    Extending the prototype of native types is considered bad practice, though it would work. Don't do this if you're writing a library. – Emile Bergeron May 9 '17 at 18:35
2

Using the "with" statement with shorthand object literal syntax

Nobody has demonstrated this method yet, probably because it's terrible and you shouldn't do it, but I feel like it has to be listed.

var o = {a:1,b:2,c:3,d:4,e:4,f:5}
with(o){
  var output =  {a,b,f}
}
console.log(output)

Pro: You don't have to type the property names twice.

Cons: The "with" statement is not recommended for many reasons.

Conclusion: It works great, but don't use it.

1

Destructuring assignment with dynamic properties

This solution not only applies to your specific example but is more generally applicable:

const subset2 = (x, y) => ({[x]:a, [y]:b}) => ({[x]:a, [y]:b});

const subset3 = (x, y, z) => ({[x]:a, [y]:b, [z]:c}) => ({[x]:a, [y]:b, [z]:c});

// const subset4...etc.


const o = {a:1, b:2, c:3, d:4, e:5};


const pickBD = subset2("b", "d");
const pickACE = subset3("a", "c", "e");


console.log(
  pickBD(o), // {b:2, d:4}
  pickACE(o) // {a:1, c:3, e:5}
);

You can easily define subset4 etc. to take more properties into account.

1

Good-old Array.prototype.reduce:

const selectable = {a: null, b: null};
const v = {a: true, b: 'yes', c: 4};

const r = Object.keys(selectable).reduce((a, b) => {
  return (a[b] = v[b]), a;
}, {});

console.log(r);

this answer uses the magical comma-operator, also: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Operators/Comma_Operator

if you want to get really fancy, this is more compact:

const r = Object.keys(selectable).reduce((a, b) => (a[b] = v[b], a), {});

Putting it all together into a reusable function:

const getSelectable = function (selectable, original) {
  return Object.keys(selectable).reduce((a, b) => (a[b] = original[b], a), {})
};

const r = getSelectable(selectable, v);
console.log(r);
1

I've got the same problem and solved it easily by using the following libs:

object.pick

https://www.npmjs.com/package/object.pick

pick({a: 'a', b: 'b', c: 'c'}, ['a', 'b'])
//=> {a: 'a', b: 'b'}

object.omit

https://www.npmjs.com/package/object.omit

omit({a: 'a', b: 'b', c: 'c'}, ['a', 'c'])
//=> { b: 'b' }
1

The easiest way I found, which doesn't create unnecessary variables, is a function you can call and works identically to lodash is the following:

pick(obj, keys){
    return  Object.assign({}, ...keys.map(key => ({ [key]: obj[key] })))
}

For example:

pick(obj, keys){
    return  Object.assign({}, ...keys.map(key => ({ [key]: obj[key] })))
}
const obj = {a:1, b:2, c:3, d:4}
const keys = ['a', 'c', 'f']
const picked = pick(obj,keys)
console.log(picked)

pick = (obj, keys) => {
  return Object.assign({}, ...keys.map(key => ({
    [key]: obj[key]
  })))
}

const obj = {
  a: 1,
  b: 2,
  c: 3,
  d: 4
}
const keys = ['a', 'c', 'f']

const picked = pick(obj, keys)
console.log(picked)

0
function splice()
{
    var ret = new Object();

    for(i = 1; i < arguments.length; i++)
        ret[arguments[i]] = arguments[0][arguments[i]];

    return ret;
}

var answer = splice(elmo, "color", "height");
0

Try

const elmo={color:"red",annoying:!0,height:"unknown",meta:{one:"1",two:"2"}};

const {color, height} = elmo; newObject = ({color, height});

console.log(newObject); //{ color: 'red', height: 'unknown' }
0

Adding my 2 cents to Ivan Nosov answer:

In my case I needed many keys to be 'sliced' out of the object so it's becoming ugly very fast and not a very dynamic solution:

const object = { a: 5, b: 6, c: 7, d: 8, aa: 5, bb: 6, cc: 7, dd: 8, aaa: 5, bbb: 6, ccc: 7, ddd: 8, ab: 5, bc: 6, cd: 7, de: 8  };
const picked = (({ a, aa, aaa, ab, c, cc, ccc, cd }) => ({ a, aa, aaa, ab, c, cc, ccc, cd }))(object);

console.log(picked);

So here is a dynamic solution using eval:

const slice = (k, o) => eval(`(${k} => ${k})(o)`);


const object    = { a: 5, b: 6, c: 7, d: 8, aa: 5, bb: 6, cc: 7, dd: 8, aaa: 5, bbb: 6, ccc: 7, ddd: 8, ab: 5, bc: 6, cd: 7, de: 8  };
const sliceKeys = '({ a, aa, aaa, ab, c, cc, ccc, cd })';

console.log( slice(sliceKeys, object) );
-2

Note: though the original question asked was for javascript, it can be done jQuery by below solution

you can extend jquery if you want here is the sample code for one slice:

jQuery.extend({
  sliceMe: function(obj, str) {
      var returnJsonObj = null;
    $.each( obj, function(name, value){
        alert("name: "+name+", value: "+value);
        if(name==str){
            returnJsonObj = JSON.stringify("{"+name+":"+value+"}");
        }

    });
      return returnJsonObj;
  }
});

var elmo = { 
  color: 'red',
  annoying: true,
  height: 'unknown',
  meta: { one: '1', two: '2'}
};


var temp = $.sliceMe(elmo,"color");
alert(JSON.stringify(temp));

here is the fiddle for same: http://jsfiddle.net/w633z/

1
  • 1
    @ChristianSchlensker it's javascript – Kevin B Mar 31 '17 at 17:40

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