17

I need to check if an array contains another array. The order of the subarray is important but the actual offset it not important. It looks something like this:

var master = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3]; 

var sub = [777, 22, 22]; 

So I want to know if master contains sub something like:

if(master.arrayContains(sub) > -1){
    //Do awesome stuff
}

So how can this be done in an elegant/efficient way?

5
  • 1
    Before doing it in an elegant way - implement it somehow first. Any thoughts?
    – zerkms
    Dec 8, 2015 at 9:11
  • There is no elegant way in JS for your problem. You would better to look at JS libraries such as Underscore
    – hindmost
    Dec 8, 2015 at 9:14
  • "You have to look at libraries" --- that's too pessimistic, really.
    – zerkms
    Dec 8, 2015 at 9:15
  • is it rigth, that you want to have in the right order found 777 ... 22... 222 in the master array? Dec 8, 2015 at 9:23
  • @NinaScholz Yes, the order is important Dec 8, 2015 at 9:24

11 Answers 11

8

With a little help from fromIndex parameter

This solution features a closure over the index for starting the position for searching the element if the array. If the element of the sub array is found, the search for the next element starts with an incremented index.

function hasSubArray(master, sub) {
    return sub.every((i => v => i = master.indexOf(v, i) + 1)(0));
}

var array = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3];

console.log(hasSubArray(array, [777, 22, 22]));
console.log(hasSubArray(array, [777, 22, 3]));
console.log(hasSubArray(array, [777, 777, 777]));
console.log(hasSubArray(array, [42]));

4
  • 1
    sub=[777, 22, 3] returns true. Is that intentional? OP did say "actual offset it not important" but I'm not quite sure what that means.
    – mpen
    Sep 11, 2018 at 21:58
  • I'm asking you if your code intentionally matches that, because just looking at your example I would have expected [777,22,22] has to be contiguous in the master array, but that's not the case.
    – mpen
    Sep 11, 2018 at 22:19
  • You've got another issue in there actually. It should index = i + 1 to prevent double-matching on the same character. Otherwise [777, 777, 777] also matches!
    – mpen
    Sep 11, 2018 at 23:26
  • @mpen, ad1 ([777, 22, 3]): yes, it is intentional, because 22 has a greater index than 777 and 3 ahs a greater index of 22. ad2 ([777, 22, 22]): that is true. ad3 ([777, 777, 777]): you are right, the found index has to be incremented. Sep 12, 2018 at 8:11
4

Just came up with quick thought , but efficiency depends on size of the array

var master = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3];
var sub = [777, 22, 22];

if ((master.toString()).indexOf(sub.toString()) > -1 ){
    //body here
}
3
  • This is actually the solution I went with in my implementation and I like it since it simple to understand. But I don't feel like it actually solves the problem because of two reasons: it could use prototype on array and I should get the actual index in the array (and not the string). Thanks! Dec 9, 2015 at 7:32
  • 7
    What if var master = [12, 44, 22, 66, 222, 777, 22, 224, 22, 6, 77, 3]; var sub = [777, 22, 22];? This would be very dangerous.
    – deblocker
    Sep 9, 2016 at 11:59
  • @deblocker it could be something like someArray.map(value => value.toString()).join(";") so that the string would be delimited, avoiding false matches. Jan 31, 2020 at 16:43
4
var master = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3]; 

var sub = [777, 22, 22]; 

console.log(master.join(',').includes(sub.join(',')))

//true

You can do this by simple console.log(master.join(',').includes(sub.join(','))) this line of code using include method

0
4

The simplest way to match subset/sub-array

const master = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3]; 

const sub1 = [777, 44, 222]; 
const sub2 = [777, 18, 66]; 

sub1.every(el => master.includes(el));  // reture true
sub2.every(el => master.includes(el));  // return false
1

If the order is important, it has to be an actually sub-array (and not the subset of array) and if the values are strictly integers then try this

console.log ( master.join(",").indexOf( subarray.join( "," ) ) == -1 )

for checking only values check this fiddle (uses no third party libraries)

var master = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3]; 

var sub = [777, 22, 22]; 

function isSubset( arr1, arr2 )
{
    for (var i=0; i<arr2.length; i++)
    {
        if ( arr1.indexOf( arr2[i] ) == -1 )
        {
          return false;
        }
    }
    return true;
}
console.log( isSubset( master, sub ) );

There are faster options explained here as well.

3
  • @zerkms Why you say so? it is working. It outputs 'true' Dec 8, 2015 at 9:21
  • Well, for my example it should have returned false
    – zerkms
    Dec 8, 2015 at 9:22
  • @zerkms got it. take your point. Trying to come up with one now which can handle multiple instances of same value. Dec 8, 2015 at 9:23
1

EDIT

Misunderstood question initially.

function arrayContainsSub(arr, sub) {
        var first = sub[0],
            i = 0,
            starts = [];

        while (arr.indexOf(first, i) >= 0) {
            starts.push(arr.indexOf(first, i));
            i = arr.indexOf(first, i) + 1;
        }

        return !!starts
                    .map(function(start) {
                        for (var i = start, j = 0; j < sub.length; i++, j++) {
                            if (arr[i] !== sub[j]) {
                                return false;
                            }
                            if (j === sub.length - 1 && arr[i] === sub[j]) {
                                return true;
                            }
                        };

                    }).filter(function(res) {
                        return res;
                    }).length;
    }

This solution will recursively check all available start points, so points where the first index of the sub has a match in the array


Old Answer Kept in case useful for someone searching.

if(master.indexOf(sub) > -1){ //Do awesome stuff }

Important to remember that this will only match of master literally references sub. If it just contains an array with the same contents, but references a different specific object, it will not match.

0

You can try with filter and indexOf like this:

Note: This code works in case we do not cover the order in sub array.

Array.prototype.arrayContains = function (sub) {
  var self = this;
  var result = sub.filter(function(item) {
    return self.indexOf(item) > -1;
  });
  return sub.length === result.length;
}

Example here.

UPDATED: Return index of sub array inside master (cover order in sub array)

Array.prototype.arrayContains = function(sub) {
  var first;
  var prev;
  for (var i = 0; i < sub.length; i++) {
    var current = this.indexOf(sub[i]);
    if (current > -1) {
      if (i === 0) {
        first = prev = current;
        continue;
      } else {
        if (++prev === current) {
          continue;
        } else {
          return -1;
        }
      }
    } else {
      return -1;
    }
  }
  return first;
}

Demo: here

1
  • I like that you used prototype and that it's simple. If you can get it to return the array indexOf I'll be willing to accept as answer. Dec 9, 2015 at 7:35
0

I had a similar problem and resolved it using sets.

function _hasSubArray( mainArray, subArray )
{
    mainArray = new Set( mainArray );
    subArray = new Set( subArray );

    for ( var element of subArray )
    {
        if ( !mainArray.has( element ) )
        {
            return false;
        }
    }
    return true;
}
1
  • _hasSubArray([23,34,45,56], [23,34,23]) // returns true, though should return false
    – Tzahi Leh
    Apr 26, 2021 at 11:51
0

For this answer, I am preserving the order of sub-array. Means, the elements of sub-array should be in Consecutive order. If there is any extra element while comparing with the master, it will be false.

I am doing it in 3 steps:

  1. Find the index of the first element of sub in the master and store it an array matched_index[].
  2. for each entry in matched_index[] check if each element of sub is same as master starting from the s_index. If it doesn't match then return false and break the for loop of sub and start next for-loop for next element in matched_index[]
  3. At any point, if the same sub array is found in master, the loop will break and return true.

function hasSubArray(master,sub){

    //collect all master indexes matching first element of sub-array
    let matched_index = [] 
    let start_index = master.indexOf(master.find(e=>e==sub[0]))
    
    while(master.indexOf(sub[0], start_index)>0){
        matched_index.push(start_index)
        let index = master.indexOf(sub[0], start_index)
        start_index = index+1
    } 

    let has_array //flag
    
    for(let [i,s_index] of matched_index.entries()){
        for(let [j,element] of sub.entries()){
            if(element != master[j+s_index]) {
                has_array = false
                break
            }else has_array = true
        }
        if (has_array) break
    }
    return has_array
}

var master = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3];

console.log(hasSubArray(master, [777, 22, 22]));
console.log(hasSubArray(master, [777, 22, 3]));
console.log(hasSubArray(master, [777, 777, 777]));
console.log(hasSubArray(master, [44]));
console.log(hasSubArray(master, [22, 66]));

0

If run this snippet below it should work

x = [34, 2, 4];
y = [2, 4];
y.reduce((included, num) => included && x.includes(num), true);

EDIT: @AlexanderGromnitsky You are right this code is incorrect and thank you for the catch! The above code doesn't actually do what the op asked for. I didn't read the question close enough and this code ignores order. One year later here is what I came up with and hopefully this may help someone.

var master = [12, 44, 22, 66, 222, 777, 22, 22, 22, 6, 77, 3]; 
var sub = [777, 22, 22]; 
var is_ordered_subset = master.join('|').includes(sub.join('|'))

This code is somewhat elegant and does what op asks for. The separator doesn't matter as long as its not an int.

1
  • 2
    doesn't work: it should return false for y==[4,2] Mar 25, 2018 at 11:22
-2

Try using every and indexOf

var mainArr = [1, 2, 3, 4, 5]
var subArr = [1, 2, 3]

function isSubArray(main, sub) {
    return sub.every((eachEle) => {
        return (main.indexOf(eachEle) + 1);
    });
}
isSubArray(mainArr, subArr);
1
  • That's a good option if you don't search for the exact order of a subarray. OP mentioned that The order of the subarray is important, but in your case also [1,2,4] returns true
    – Tzahi Leh
    Apr 26, 2021 at 11:56

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