160

How do you compare two javascript sets? I tried using == and === but both return false.

a = new Set([1,2,3]);
b = new Set([1,3,2]);
a == b; //=> false
a === b; //=> false

These two sets are equivalent, because by definition, sets do not have order (at least not usually). I've looked at the documentation for Set on MDN and found nothing useful. Anyone know how to do this?

8
  • Two sets are two different objects. === is for value equality, not object equality.
    – elclanrs
    Jun 30, 2015 at 3:07
  • 3
    iterate and compare each member's value, if all same, set is "same"
    – dandavis
    Jun 30, 2015 at 3:24
  • 1
    @dandavis With sets, the members are the values.
    – user663031
    Jun 30, 2015 at 4:26
  • 2
    Sets and Maps do have an order, which is the insertion order - for whatever reason: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/…
    – CodeManX
    Sep 11, 2015 at 3:13
  • 15
    Worst of all, even new Set([1,2,3]) != new Set([1,2,3]). This makes Javascript Set useless for sets of sets because the superset will contain duplicate subsets. The only workaround that springs to mind is converting all subsets to arrays, sorting each array and then encoding each array as string (for example JSON).
    – 7vujy0f0hy
    May 8, 2017 at 21:50

15 Answers 15

112

Try this:

var a = new Set([1,2,3]);
var b = new Set([1,3,2]);

alert(eqSet(a, b)); // true

function eqSet(as, bs) {
    if (as.size !== bs.size) return false;
    for (var a of as) if (!bs.has(a)) return false;
    return true;
}

A more functional approach would be:

var a = new Set([1,2,3]);
var b = new Set([1,3,2]);

alert(eqSet(a, b)); // true

function eqSet(as, bs) {
    return as.size === bs.size && all(isIn(bs), as);
}

function all(pred, as) {
    for (var a of as) if (!pred(a)) return false;
    return true;
}

function isIn(as) {
    return function (a) {
        return as.has(a);
    };
}

The all function works for all iterable objects (e.g. Set and Map).

If Array.from was more widely supported then we could have implemented the all function as:

function all(pred, as) {
    return Array.from(as).every(pred);
}

Hope that helps.

10
  • 2
    I think you should change the name of has to isPartOf or isIn or elem
    – Bergi
    Jul 1, 2015 at 17:29
  • @Bergi I changed the name of the function has to isIn. Jul 1, 2015 at 18:08
  • 1
    @DavidGiven Yes, sets in JavaScript are iterated in insertion order: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… Mar 8, 2016 at 0:57
  • 96
    Everyday I am more assured of JavaScript being the most lousy language ever created. Everyone has to invent their own basic functions to cope with its limitation, and this is in ES6, and we are in 2017! Why couldn't they add such frequent functions to the specification of the Set object! Jan 7, 2017 at 23:18
  • 2
    @GhasanAl-Sakkaf, I agree, it is maybe that TC39 consists of scientists, but no pragmatists...
    – Marecky
    Oct 3, 2018 at 8:02
107

You can also try:

var a = new Set([1,2,3]);
var b = new Set([1,3,2]);

let areSetsEqual = (a, b) => a.size === b.size && [...a].every(value => b.has(value));

console.log(areSetsEqual(a,b)) 

6
  • Definitly a better solution as it fits inside an if condition
    – Hugodby
    Aug 17, 2017 at 13:19
  • I love how idiomatic this solution is, and how much readable! Thanks @Max
    – daydreamer
    Apr 17, 2019 at 10:52
  • 1
    Thanks for making me discover Array.every. However as it does not modify a, why do you need to use [...a], making a copy?
    – ouk
    Jan 6, 2021 at 3:36
  • 3
    every() is part of the array API, it doesn't exist on Set or Iterator Jan 7, 2021 at 7:47
  • Great solution, @MaxLeizerovich ! I'm new to JavaScript, but it seems that the Array methods are much more powerful than the Set's. It would be also nice to have set equality written using the functional programming part of JavaScript. Mar 22 at 15:26
50

lodash provides _.isEqual(), which does deep comparisons. This is very handy if you don't want to write your own. As of lodash 4, _.isEqual() properly compares Sets.

const _ = require("lodash");

let s1 = new Set([1,2,3]);
let s2 = new Set([1,2,3]);
let s3 = new Set([2,3,4]);

console.log(_.isEqual(s1, s2)); // true
console.log(_.isEqual(s1, s3)); // false
0
11

Maybe a little late, but I usually do the following:

const a = new Set([1,2,3]);
const b = new Set([1,3,2]);

// option 1
console.log(a.size === b.size && new Set([...a, ...b]).size === a.size)

// option 2
console.log([...a].sort().join() === [...b].sort().join())

10

None of these solutions bring “back” the expected functionality to a data structure such as set of sets. In its current state, the Javascript Set is useless for this purpose because the superset will contain duplicate subsets, which Javascript wrongly sees as distinct. The only solution I can think of is converting each subset to Array, sorting it and then encoding as String (for example JSON).

Solution

var toJsonSet = aset /* array or set */ => JSON.stringify([...new Set(aset)].sort()); 
var fromJsonSet = jset => new Set(JSON.parse(jset));

Basic usage

var toJsonSet = aset /* array or set */ => JSON.stringify([...new Set(aset)].sort()); 
var fromJsonSet = jset => new Set(JSON.parse(jset));

var [s1,s2] = [new Set([1,2,3]), new Set([3,2,1])];
var [js1,js2] = [toJsonSet([1,2,3]), toJsonSet([3,2,1])]; // even better

var r = document.querySelectorAll("td:nth-child(2)");
r[0].innerHTML = (toJsonSet(s1) === toJsonSet(s2)); // true
r[1].innerHTML = (toJsonSet(s1) == toJsonSet(s2)); // true, too
r[2].innerHTML = (js1 === js2); // true
r[3].innerHTML = (js1 == js2); // true, too

// Make it normal Set:
console.log(fromJsonSet(js1), fromJsonSet(js2)); // type is Set
<style>td:nth-child(2) {color: red;}</style>

<table>
<tr><td>toJsonSet(s1) === toJsonSet(s2)</td><td>...</td></tr>
<tr><td>toJsonSet(s1) == toJsonSet(s2)</td><td>...</td></tr>
<tr><td>js1 === js2</td><td>...</td></tr>
<tr><td>js1 == js2</td><td>...</td></tr>
</table>

Ultimate test: set of sets

var toSet = arr => new Set(arr);
var toJsonSet = aset /* array or set */ => JSON.stringify([...new Set(aset)].sort()); 
var toJsonSet_WRONG = set => JSON.stringify([...set]); // no sorting!

var output = document.getElementsByTagName("code"); 
var superarray = [[1,2,3],[1,2,3],[3,2,1],[3,6,2],[4,5,6]];
var superset;

Experiment1:
    superset = toSet(superarray.map(toSet));
    output[0].innerHTML = superset.size; // incorrect: 5 unique subsets
Experiment2:
    superset = toSet([...superset].map(toJsonSet_WRONG));
    output[1].innerHTML = superset.size; // incorrect: 4 unique subsets
Experiment3:
    superset = toSet([...superset].map(toJsonSet));
    output[2].innerHTML = superset.size; // 3 unique subsets
Experiment4:
    superset = toSet(superarray.map(toJsonSet));
    output[3].innerHTML = superset.size; // 3 unique subsets
code {border: 1px solid #88f; background-color: #ddf; padding: 0 0.5em;}
<h3>Experiment 1</h3><p>Superset contains 3 unique subsets but Javascript sees <code>...</code>.<br>Let’s fix this... I’ll encode each subset as a string.</p>
<h3>Experiment 2</h3><p>Now Javascript sees <code>...</code> unique subsets.<br>Better! But still not perfect.<br>That’s because we didn’t sort each subset.<br>Let’s sort it out...</p>
<h3>Experiment 3</h3><p>Now Javascript sees <code>...</code> unique subsets. At long last!<br>Let’s try everything again from the beginning.</p>
<h3>Experiment 4</h3><p>Superset contains 3 unique subsets and Javascript sees <code>...</code>.<br><b>Bravo!</b></p>

2
  • 1
    Great solution! And if you know that you've just got a set of strings or numbers, it just becomes [...set1].sort().toString() === [...set2].sort().toString()
    – user993683
    May 23, 2017 at 11:42
  • unfortunately I do not have time to review this right now, but most solutions which sort keys of js collections using the built-in default i.e. .sort() are wrong because there is no total order on js objects, e.g. NaN!=NaN, '2'<3 (coercion), etc.
    – ninjagecko
    Feb 18, 2021 at 22:41
8

The other answer will work fine; here is another alternative.

// Create function to check if an element is in a specified set.
function isIn(s)          { return elt => s.has(elt); }

// Check if one set contains another (all members of s2 are in s1).
function contains(s1, s2) { return [...s2] . every(isIn(s1)); }

// Set equality: a contains b, and b contains a
function eqSet(a, b)      { return contains(a, b) && contains(b, a); }

// Alternative, check size first
function eqSet(a, b)      { return a.size === b.size && contains(a, b); }

However, be aware that this does not do deep equality comparison. So

eqSet(Set([{ a: 1 }], Set([{ a: 1 }])

will return false. If the above two sets are to be considered equal, we need to iterate through both sets doing deep quality comparisons on each element. We stipulate the existence of a deepEqual routine. Then the logic would be

// Find a member in "s" deeply equal to some value
function findDeepEqual(s, v) { return [...s] . find(m => deepEqual(v, m)); }

// See if sets s1 and s1 are deeply equal. DESTROYS s2.
function eqSetDeep(s1, s2) {
  return [...s1] . every(a1 => {
    var m1 = findDeepEqual(s2, a1);
    if (m1) { s2.delete(m1); return true; }
  }) && !s2.size;
}

What this does: for each member of s1, look for a deeply equal member of s2. If found, delete it so it can't be used again. The two sets are deeply equal if all the elements in s1 are found in s2, and s2 is exhausted. Untested.

You may find this useful: http://www.2ality.com/2015/01/es6-set-operations.html.

4

If sets contains only primitive data types or object inside sets have reference equality, then there is simpler way

const isEqualSets = (set1, set2) => (set1.size === set2.size) && (set1.size === new Set([...set1, ...set2]).size);

3

Very slight modification based on @Aadit M Shah's answer:

/**
 * check if two sets are equal in the sense that
 * they have a matching set of values.
 *
 * @param {Set} a 
 * @param {Set} b
 * @returns {Boolean} 
 */
const areSetsEqual = (a, b) => (
        (a.size === b.size) ? 
        [...a].every( value => b.has(value) ) : false
);

If anyone else is having an issue as I did due to some quirk of the latest babel, had to add an explicit conditional here.

(Also for plural I think are is just a bit more intuitive to read aloud 🙃)

3

The reason why your approach returns false is because you are comparing two different objects (even if they got the same content), thus comparing two different objects (not references, but objects) always returns you falsy.

The following approach merges two sets into one and just stupidly compares the size. If it's the same, it's the same:

const a1 = [1,2,3];
const a2 = [1,3,2];
const set1 = new Set(a1);
const set2 = new Set(a2);

const compareSet = new Set([...a1, ...a2]);
const isSetEqual = compareSet.size === set2.size && compareSet.size === set1.size;
console.log(isSetEqual);

Upside: It's very simple and short. No external library only vanilla JS

Downside: It's probably going to be a slower than just iterating over the values and you need more space.

2

Comparing two objects with ==, ===

When using == or === operator to compare two objects, you will always get false unless those object reference the same object. For example:

var a = b = new Set([1,2,3]); // NOTE: b will become a global variable
a == b; // <-- true: a and b share the same object reference

Otherwise, == equates to false even though the object contains the same values:

var a = new Set([1,2,3]);
var b = new Set([1,2,3]);
a == b; // <-- false: a and b are not referencing the same object

You may need to consider manual comparison

In ECMAScript 6, you may convert sets to arrays beforehand so you can spot the difference between them:

function setsEqual(a,b){
    if (a.size !== b.size)
        return false;
    let aa = Array.from(a); 
    let bb = Array.from(b);
    return aa.filter(function(i){return bb.indexOf(i)<0}).length==0;
}

NOTE: Array.from is one of the standard ECMAScript 6 features but it is not widely supported in modern browsers. Check the compatibility table here : https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/from#Browser_compatibility

13
  • 1
    Won't this fail to identify member of b which are not in a?
    – user663031
    Jun 30, 2015 at 4:19
  • 1
    @torazaburo Indeed. The best way to skip checking whether members of b are not in a is to check whether a.size === b.size. Jun 30, 2015 at 4:20
  • 1
    Put a.size === b.size first to short-circuit the comparison of individual elements if not necessary?
    – user663031
    Jun 30, 2015 at 4:24
  • 2
    If size is different, by definition the sets are not equal, so it's better to check that condition first.
    – user663031
    Jun 30, 2015 at 4:30
  • 1
    Well, the other issue here is that by the nature of sets, the has operation on sets is designed to be very efficient, unlike the indexOf operation on arrays. Therefore, it would make sense to change your filter function to be return !b.has(i). That would also eliminate the need to convert b into an array.
    – user663031
    Jun 30, 2015 at 4:33
1

I follow this approach in tests :

let setA = new Set(arrayA);
let setB = new Set(arrayB);
let diff = new Set([...setA].filter(x => !setB.has(x)));
expect([...diff].length).toBe(0);
1
  • 5
    Wait a sec... this only checks whether A has elements that B doesn't? It doesn't check whether B has elements that A doesn't. If you try a=[1,2,3] and b=[1,2,3,4], then it says they're the same. So I guess you need an extra check like setA.size === setB.size
    – user993683
    May 23, 2017 at 11:51
1

I created a quick polyfill for Set.prototype.isEqual()

Set.prototype.isEqual = function(otherSet) {
    if(this.size !== otherSet.size) return false;
    for(let item of this) if(!otherSet.has(item)) return false;
    return true;
}

Github Gist - Set.prototype.isEqual

1

Based on the accepted answer, assuming support of Array.from, here is a one-liner:

function eqSet(a, b) {
    return a.size === b.size && Array.from(a).every(b.has.bind(b));
}
1
  • Or a true one-liner assuming arrow functions and the spread operator: eqSet = (a,b) => a.size === b.size && [...a].every(b.has.bind(b)) May 25, 2018 at 4:45
1

With Ramda : equals(set1, set2)

const s1 = new Set([1, 2, 3]);
const s2 = new Set([3, 1, 2]);

console.log( R.equals(s1, s2) );
<script src="//cdnjs.cloudflare.com/ajax/libs/ramda/0.27.1/ramda.min.js"></script>

-1

1) Check if sizes are equal . If not, then they are not equal.

2) iterate over each elem of A and check in that exists in B. If one fails return unequal

3) If the above 2 conditions fails that means they are equal.

let isEql = (setA, setB) => {
  if (setA.size !== setB.size)
    return false;
  
  setA.forEach((val) => {
    if (!setB.has(val))
      return false;
  });
  return true;
}

let setA = new Set([1, 2, {
  3: 4
}]);
let setB = new Set([2, {
    3: 4
  },
  1
]);

console.log(isEql(setA, setB));

2) Method 2

let isEql = (A, B) => {
  return JSON.stringify([...A].sort()) == JSON.stringify([...B].sort());
}

let res = isEql(new Set([1, 2, {3:4}]), new Set([{3:4},1, 2]));
console.log(res);

1
  • This answer is completely incorrect. The return statement in the forEach method will NOT make the parent function return.
    – xaviert
    Apr 15, 2019 at 11:40

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