25

Let's say I have two arrays,

var PlayerOne = ['B', 'C', 'A', 'D'];
var PlayerTwo = ['D', 'C'];

What is the best way to check if arrayTwo is subset of arrayOne using javascript?

The reason: I was trying to sort out the basic logic for a game Tic tac toe, and got stuck in the middle. Here's my code anyway... Thanks heaps!

var TicTacToe = {


  PlayerOne: ['D','A', 'B', 'C'],
  PlayerTwo: [],

  WinOptions: {
      WinOne: ['A', 'B', 'C'],
      WinTwo: ['A', 'D', 'G'],
      WinThree: ['G', 'H', 'I'],
      WinFour: ['C', 'F', 'I'],
      WinFive: ['B', 'E', 'H'],
      WinSix: ['D', 'E', 'F'],
      WinSeven: ['A', 'E', 'I'],
      WinEight: ['C', 'E', 'G']
  },

  WinTicTacToe: function(){

    var WinOptions = this.WinOptions;
    var PlayerOne = this.PlayerOne;
    var PlayerTwo = this.PlayerTwo;
    var Win = [];

    for (var key in WinOptions) {
      var EachWinOptions = WinOptions[key];

        for (var i = 0; i < EachWinOptions.length; i++) {
          if (PlayerOne.includes(EachWinOptions[i])) {
            (got stuck here...)
          }

        }
        // if (PlayerOne.length < WinOptions[key]) {
        //   return false;
        // }
        // if (PlayerTwo.length < WinOptions[key]) {
        //   return false;
        // }
        // 
        // if (PlayerOne === WinOptions[key].sort().join()) {
        //   console.log("PlayerOne has Won!");
        // }
        // if (PlayerTwo === WinOptions[key].sort().join()) {
        //   console.log("PlayerTwo has Won!");
        // } (tried this method but it turned out to be the wrong logic.)
    }
  },


};
TicTacToe.WinTicTacToe();
41

The correct solution is this:

In ES6 syntax:

PlayerTwo.every(val => PlayerOne.includes(val));

or in ES5 syntax:

PlayerTwo.every(function(val){

  return PlayerOne.indexOf(val) >= 0;

});
16

If you are using ES6:

!PlayerTwo.some(val => PlayerOne.indexOf(val) === -1);

If you have to use ES5, use a polyfill for the some function the Mozilla documentation, then use regular function syntax:

!PlayerTwo.some(function(val) { return PlayerOne.indexOf(val) === -1 });
  • 2
    Even better: !PlayerTwo.some(val => !PlayerOne.includes(val)); – Terry Mar 4 at 15:08
  • Using every is better than the inverted some,every will short circuit if an element is false, so it would take the same time, and it's a lot more readable. – Argento Aug 20 at 10:01
8

You can use this simple piece of code.

PlayerOne.every(function(val) { return PlayerTwo.indexOf(val) >= 0; })
4

If PlayerTwo is subset of PlayerOne, then length of set(PlayerOne + PlayerTwo) must be equal to length of set(PlayerOne).

var PlayerOne = ['B', 'C', 'A', 'D'];
var PlayerTwo = ['D', 'C'];

// Length of set(PlayerOne + PlayerTwo) == Length of set(PlayerTwo)

Array.from(new Set(PlayerOne) ).length == Array.from(new Set(PlayerOne.concat(PlayerTwo)) ).length
1
function isSubsetOf(set, subset) {
    return Array.from(new Set([...set, ...subset])).length === set.length;
}
0

This seems most clear to me:

function isSubsetOf(set, subset) {
    for (let i = 0; i < set.length; i++) {
        if (subset.indexOf(set[i]) == -1) {
            return false;
        }
    }
    return true;
}

It also has the advantage of breaking out as soon as a non-member is found.

  • .every and .some both will early exit when the final result becomes known. – Shenme Jul 7 '18 at 6:40
  • This won't work if (set.length < subset.length) !!! – Mahesh Thumar Sep 20 '18 at 12:22
0

Here is a solution that exploits the set data type and its has function.

let PlayerOne = ['B', 'C', 'A', 'D', ],
    PlayerTwo = ['D', 'C', ],
    [one, two] = [PlayerOne, PlayerTwo, ]
        .map( e => new Set(e) ),
    matches = Array.from(two)
        .filter( e => one.has(e) ),
    isOrisNot = matches.length ? '' : ' not',
    message = `${PlayerTwo} is${isOrisNot} a subset of ${PlayerOne}`;
console.log(message)

Out: D,C is a subset of B,C,A,D

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.