I have these two arrays: one is filled with information from an ajax request and another stores the buttons the user clicks on. I use this code (I filled with sample numbers):

var array1 = [2, 4];
var array2 = [4, 2]; //It cames from the user button clicks, so it might be disordered.
array1.sort(); //Sorts both Ajax and user info.
array2.sort();
if (array1==array2) {
    doSomething();
}else{
    doAnotherThing();
}

But it always gives false, even if the two arrays are the same, but with different name. (I checked this in Chrome's JS Console). So, is there any way I could know if these two arrays contain the same? Why is it giving false? How can I know which values in the first array are not in the second?

11 Answers 11

up vote 7 down vote accepted
function arraysEqual(_arr1, _arr2) {

    if (!Array.isArray(_arr1) || ! Array.isArray(_arr2) || _arr1.length !== _arr2.length)
      return false;

    var arr1 = _arr1.concat().sort();
    var arr2 = _arr2.concat().sort();

    for (var i = 0; i < arr1.length; i++) {

        if (arr1[i] !== arr2[i])
            return false;

    }

    return true;

}

Note that this doesn't modify original arrays unlike the accepted answer.

If your array items are not objects- if they are numbers or strings, for example, you can compare their joined strings to see if they have the same members in any order-

var array1= [10, 6, 19, 16, 14, 15, 2, 9, 5, 3, 4, 13, 8, 7, 1, 12, 18, 11, 20, 17];
var array2= [12, 18, 20, 11, 19, 14, 6, 7, 8, 16, 9, 3, 1, 13, 5, 4, 15, 10, 2, 17];

if(array1.sort().join(',')=== array2.sort().join(',')){
    alert('same members');
}
else alert('not a match');
  • This will work well for primitives or objects that have uniquely identifying toString values, but not for just any objects. – devios1 Jan 26 '12 at 15:59
  • Thanks! neat solution – Gaston Sanchez Jul 13 '13 at 20:57
  • 2
    Beware of null items and sorting. I ended up in my case with strings to compare like ",2,2,3" and "2,2,3," which of course aren't strictly equal. – barbara.post Jul 30 '15 at 12:25
  • 1
    Could fail for strings, i.e. ['a', 'b'] and ['a,b']. I would only recommend this technique for small throwaway scripts. – alex Mar 7 '16 at 16:23
  • Hi kennebec, can you tell how to save matched into another array – Vinoth Aug 8 '17 at 7:15
Array.prototype.compare = function(testArr) {
    if (this.length != testArr.length) return false;
    for (var i = 0; i < testArr.length; i++) {
        if (this[i].compare) { //To test values in nested arrays
            if (!this[i].compare(testArr[i])) return false;
        }
        else if (this[i] !== testArr[i]) return false;
    }
    return true;
}

var array1 = [2, 4];
var array2 = [4, 2];
if(array1.sort().compare(array2.sort())) {
    doSomething();
} else {
    doAnotherThing();
}

Maybe?

  • Thank you! It works just as desired. I modified a little the function so I could also know how many mismatches are. – Carlos Precioso Jun 3 '11 at 15:43
  • false for [2,4] [4,2]. – Suraz Khanal Dec 17 '16 at 7:43
  • @SurazKhanal Still need to sort – Aaron McMillin Mar 15 '17 at 15:13

If you want to check only if two arrays have same values (regardless the number of occurrences and order of each value) you could do this by using lodash:

_.isEmpty(_.xor(array1, array2))

Short, simple and pretty!

  • 1
    I cannot seem to find xor in the underscore docs? Are you thinking of IODash? – Patrick Mencias-lewis Nov 9 '15 at 18:12
  • You are right. Edited my response. Thanks Patrick. – Technotronic Nov 22 '15 at 9:20

Why your code didn't work

JavaScript has primitive data types and non-primitive data types.

For primitive data types, == and === check whether the things on either side of the bars have the same value. That's why 1 === 1 is true.

For non-primitive data types like arrays, == and === check for reference equality. That is, they check whether arr1 and arr2 are the same object. In your example, the two arrays have the same objects in the same order, but are not equivalent.

Solutions

Two arrays, arr1 and arr2, have the same members if and only if:

  • Everything in arr2 is in arr1

AND

  • Everything in arr1 is in arr2

So this will do the trick (ES2016):

const containsAll = (arr1, arr2) => 
                arr2.every(arr2Item => arr1.includes(arr2Item))

const sameMembers = (arr1, arr2) => 
                        containsAll(arr1, arr2) && containsAll(arr2, arr1);

sameMembers(arr1, arr2); // `true`

This second solution using Underscore is closer to what you were trying to do:

arr1.sort();
arr2.sort();

_.isEqual(arr1, arr2); // `true`

It works because isEqual checks for "deep equality," meaning it looks at more than just reference equality and compares values.

A solution to your third question

You also asked how to find out which things in arr1 are not contained in arr2.

This will do it (ES2015):

const arr1 = [1, 2, 3, 4];
const arr2 = [3, 2, 1];

arr1.filter(arr1Item => !arr2.includes(arr1Item)); // `[4]`

You could also use Underscore's difference: method:

_.difference(arr1, arr2); // `[4]`

UPDATE

See @Redu's comment—my solution is for sameMembers, but what you may have in mind is sameMembersInOrder also-known-as deepEquals.

UPDATE 2

If you don't care about the order of the members of the arrays, ES2015+'s Set may be a better data structure than Array. See the MDN notes on how to implement isSuperset and difference using dangerous monkey-patching.

  • Your solutions are wrong. "Two arrays, arr1 and arr2, have the same members if and only if: Everything in arr2 is in arr1 AND Everything in arr1 is in arr2" this is also wrong. This is an array not a set. So sameMembers([1,1,2],[2,1,2]);should return false. – Redu Aug 26 '16 at 8:27
  • @Redu guess it depends on what "same members" means—I take it to mean "has the same members." sameMembers([1,1,2],[2,1,2]) should return true, in my opinion. sameMembersInOrder([1,1,2],[2,1,2]) AKA deepEquals([1,1,2],[2,1,2]) should return false. – Max Heiber Aug 26 '16 at 15:40

Object equality check:JSON.stringify(array1.sort()) === JSON.stringify(array2.sort())

The above test also works with arrays of objects in which case use a sort function as documented in http://www.w3schools.com/jsref/jsref_sort.asp

Might suffice for small arrays with flat JSON schemas.

When you compare those two arrays, you're comparing the objects that represent the arrays, not the contents.

You'll have to use a function to compare the two. You could write your own that simply loops though one and compares it to the other after you check that the lengths are the same.

If you are using the Prototype Framework, you can use the intersect method of an array to find out of they are the same (regardless of the order):

var array1 = [1,2];
var array2 = [2,1];

if(array1.intersect(array2).length === array1.length) {
    alert("arrays are the same!");
}
  • This doesn't work - [1,2].intersect([1,2,3]).length === [1,2].length returns true. You should compare the length of the original arrays too, I've edited the post to demonstrate. – GMA Feb 24 '14 at 3:12
  • Actually I've just realised my suggested edit doesn't work in the case of duplicates... e.g. it will return false for array1 = [1,1,2]; array2 = [1,1,2];... the original answer doesn't fail for that input. – GMA Feb 24 '14 at 4:13
  • ah yes, you're right.. – Erfan Feb 24 '14 at 9:31
  • You can do the opposite with _.difference(array1, array2).length; – Vic Sep 4 '15 at 20:05

I had simple integer values in a Game project
Had less number of values in each array, also, needed that original array untouched
So, I did the below, it worked fine. (Code edited to paste here)

var sourceArray = [1, 2, 3];
var targetArray = [3, 2, 1];

if (sourceArray.length !== targetArray.length) {
    // not equal
    // did something
    return false;
}

var newSortedSourceArray = sourceArray.slice().sort();
var newSortedTargetArray = targetArray.slice().sort();

if (newSortedSourceArray.toString() !== newSortedTargetArray.toString()) { // MAIN CHECK
    // not equal
    // did something
    return false;
}
else {
    // equal
    // did something
    // continued further below
}

// did some more work

return true;

Hope that helps.

kindly check this answer

var arr1= [12,18];
var arr2= [12, 18, 20, 11, 19, 14, 6, 7, 8, 16, 9, 3, 1, 13, 5, 4, 15, 10, 2, 17];
for(i=0;i<arr1.length;i++)
{
var array1=arr1[i];
for(j=0;j<arr2.length;j++)
{
    var array2=arr2[j];
    if(array1==array2)
    {
return true;
    }
}
}
  • 1
    This is functionally equivalent to this answer, save for a couple of errors. First, this should all be wrapped within a function, or the return will have no effect. Second, you should check the sorted arrays, as [1,2] and [2,1] will be detected as not the same. Third and most important, this will actually only check if some element is the same. The conditional should be if (array1!==array2) {return false;}. Maybe this can help you in the future! – Carlos Precioso May 3 at 17:10
  • And as an extra comment, do try to use indentation for better understanding of the code flow, as well as clearer variable names. E.g.: array1 and array2 could be renamed elem1 and elem2. Both these tips will save you plenty of headaches in the future! – Carlos Precioso May 3 at 17:17
  • 1
    On further inspection, why the double loop? Both arrays should be the same length, and if not, they are directly not equal. This way you can use only one loop. Right now, this code checks if any of the elements of the first array are anywhere in the second one. Check this answer to see how you should implement it. Good luck in your JavaScript journey! – Carlos Precioso May 3 at 17:23

Using ES6

We'll use Ramda's equals function, but instead we can use Lodash's or Underscore's isEqual:

const R = require('ramda');

const arraysHaveSameValues = (arr1, arr2) => R.equals( [...arr1].sort(), [...arr2].sort() )

Using the spread opporator, we avoid mutating the original arrays, and we keep our function pure.

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