187

With Jasmine is there a way to test if 2 arrays contain the same elements, but are not necessarily in the same order? ie

array1 = [1,2,3];
array2 = [3,2,1];

expect(array1).toEqualIgnoreOrder(array2);//should be true
6
  • 40
    expect(array1.sort()).toEqual(array2.sort()); ?
    – raina77ow
    Commented Aug 19, 2015 at 18:43
  • 1
    Should I make this an answer?
    – raina77ow
    Commented Aug 19, 2015 at 18:46
  • 2
    @raina77ow It gets a little bit more complicated when its an array of objects. It would be nice if Jasmine had something out of the box for this. Commented Aug 19, 2015 at 18:48
  • 2
    I didn't find anything great in jasmine itself so actually introduced lodash (or you could use underscore/other js collection library) into my test project for things just like this.
    – ktharsis
    Commented Aug 19, 2015 at 20:45
  • 1
    I like @raina77ow's answer the best. The only caveat is that the sort will mutate the input arrays, though that's probably not a big deal. If it causes a problem, you can do [...array1].sort()
    – jimmyfever
    Commented Feb 11, 2021 at 16:56

15 Answers 15

112

Edit

Jasmine 2.8 adds arrayWithExactContents that will succeed if the actual value is an Array that contains all of the elements in the sample in any order.

See keksmasta's answer


Original (outdated) answer

If it's just integers or other primitive values, you can sort() them before comparing.

expect(array1.sort()).toEqual(array2.sort());

If its objects, combine it with the map() function to extract an identifier that will be compared

array1 = [{id:1}, {id:2}, {id:3}];
array2 = [{id:3}, {id:2}, {id:1}];

expect(array1.map(a => a.id).sort()).toEqual(array2.map(a => a.id).sort());
9
  • the default array sort method uses string comparison for numbers. "10" < "2" === true
    – Shmiddty
    Commented May 22, 2018 at 20:46
  • 16
    @Shmiddty I dont see how it matters in this case. As long as the order is the same for both arrays, it should be fine. Commented May 23, 2018 at 13:43
  • 5
    Fair point. It is worth noting that sort happens in-place, though. (it mutates the instance on which it is called)
    – Shmiddty
    Commented May 23, 2018 at 19:32
  • 4
    The object portion of this answer will not actually verify that the objects match, since it is only comparing the mapped arrays. You don't need map, sort takes an optional function that it can use to do the comparison.
    – slifty
    Commented Aug 9, 2020 at 15:33
  • 3
    This should not be the first answer as it's outdated. Please see answer below regarding arrayWithExactContents Commented May 25, 2022 at 21:14
58

You could use expect.arrayContaining(array) from standard jest:

  const expected = ['Alice', 'Bob'];
  it('matches even if received contains additional elements', () => {
    expect(['Alice', 'Bob', 'Eve']).toEqual(expect.arrayContaining(expected));
  });
5
  • 39
    It is not an appropriate answer for this use case as the two arrays in the question are expected to be equal, with only order differing.
    – mjarraya
    Commented Jan 28, 2021 at 12:57
  • 2
    This is the correct answer. Please mark this as the correct answer. @mjarraya just test for the length of both arrays to be the same and you are fine.
    – enanone
    Commented May 5, 2021 at 6:49
  • 8
    It should not be marked as the correct answer since it is not complete! @enanone
    – mjarraya
    Commented May 5, 2021 at 9:51
  • 3
    There are two issues: 1. length needs to be checked. expect(actual.length).toEqual(expected.length); 2. It should be jasmine.arrayContaining. jasmine.github.io/2.6/…
    – zeroliu
    Commented May 20, 2021 at 17:52
  • 20
    expect([1, 2, 3]).toEqual(expect.arrayContaining([3, 3, 3])) will still pass, so this should not be used. Commented Mar 13, 2022 at 13:50
51

jasmine version 2.8 and later has

jasmine.arrayWithExactContents()

Which expects that an array contains exactly the elements listed, in any order.

array1 = [1,2,3];
array2 = [3,2,1];
expect(array1).toEqual(jasmine.arrayWithExactContents(array2))

See https://jasmine.github.io/api/3.4/jasmine.html

0
25

The jest-extended package provides us few assertions to simplify our tests, it's less verbose and for failing tests the error is more explicit.

For this case we could use toIncludeSameMembers

expect([{foo: "bar"}, {baz: "qux"}]).toIncludeSameMembers([{baz: "qux"}, {foo: "bar"}]);
13

simple...

array1 = [1,2,3];
array2 = [3,2,1];

expect(array1).toEqual(jasmine.arrayContaining(array2));
1
  • 13
    Nice answer! You also need to check that the lengths are equal, otherwise you'll have a false positive on [1,2,3,4] and [3,2,1]. Commented Mar 27, 2019 at 17:05
10
// check if every element of array2 is element of array1
// to ensure [1, 1] !== [1, 2]
array2.forEach(x => expect(array1).toContain(x))

// check if every element of array1 is element of array2
// to ensure [1, 2] !== [1, 1]
array1.forEach(x => expect(array2).toContain(x))

// check if they have equal length to ensure [1] !== [1, 1]
expect(array1.length).toBe(array2.length)
5
  • 2
    Use .forEach instead of .map to save some time and a bunch of memory.
    – Darkhogg
    Commented Mar 19, 2018 at 11:59
  • 1
    Unfortunately this will pass with the following arrays even though they are different: array1 = [1, 2], array2 = [1, 1]
    – redbmk
    Commented Jan 3, 2019 at 17:22
  • 2
    Nice catch @redbmk I added a check for this, thanks! Commented Jan 8, 2019 at 9:04
  • I think there's still an issue - what if the arrays are [1,1,2] and [1,2,2]? Maybe using a Map for each one or something? e.g. array1.reduce((map, item) => { map.set(item, (map.get(item) || 0) + 1)), new Map()) for both arrays, then loop through them and check that the amounts are the same? Seems like a lot of iterations but would be more thorough.
    – redbmk
    Commented Jan 11, 2019 at 21:16
  • Exclusions from the control array may be used (remove element when found, then check length is 0 in the end), but it doesn't worth the effort in regular cases.
    – lifecoder
    Commented Jan 21, 2019 at 9:37
8

Sets ignore order so they can be used here.

expect(new Set(a)).toEqual(new Set(b))
2
  • It works nicely for objects (vectorial instances), thank you ! Commented Jan 23 at 14:34
  • It works only if a and b have no repeating elements
    – Finesse
    Commented Jun 12 at 12:13
1
//Compare arrays without order
//Example
//a1 = [1, 2, 3, 4, 5]
//a2 = [3, 2, 1, 5, 4]
//isEqual(a1, a2) -> true
//a1 = [1, 2, 3, 4, 5];
//a2 = [3, 2, 1, 5, 4, 6];
//isEqual(a1, a2) -> false


function isInArray(a, e) {
  for ( var i = a.length; i--; ) {
    if ( a[i] === e ) return true;
  }
  return false;
}

function isEqArrays(a1, a2) {
  if ( a1.length !== a2.length ) {
    return false;
  }
  for ( var i = a1.length; i--; ) {
    if ( !isInArray( a2, a1[i] ) ) {
      return false;
    }
  }
  return true;
}
0
1

This uses forEach to compare every element in each array on a unique object property (used status here).

const expected = [ 
     { count: 1, status: "A" },
     { count: 3, status: "B" },
];
result.forEach((item) => {
     expect(expected.find(a => a.status === item.status)).toEqual(item);
})
1
  • this answer only deals with all results being found in expected. It only asserts that result is a subset of expected. You need to reverse it and assert that all expected's items are in result Commented Oct 28, 2023 at 6:05
0
function equal(arr1, arr2){
    return arr1.length === arr2.length
    &&
    arr1.every((item)=>{
        return arr2.indexOf(item) >-1
    }) 
    &&
    arr2.every((item)=>{
        return arr1.indexOf(item) >-1
    })
}

The idea here is to first determine if the length of the two arrays are same, then check if all elements are in the other's array.

1
  • This does not take into account the frequency of items: equal([1, 1, 2], [1, 2, 2]) returns true.
    – MarkMYoung
    Commented Dec 13, 2019 at 23:16
0

Here's a solution that will work for any number or arrays

https://gist.github.com/tvler/cc5b2a3f01543e1658b25ca567c078e4

const areUnsortedArraysEqual = (...arrs) =>
  arrs.every((arr, i, [first]) => !i || arr.length === first.length) &&
  arrs
    .map(arr =>
      arr.reduce(
        (map, item) => map.set(item, (map.get(item) || 0) + 1),
        new Map(),
      ),
    )
    .every(
      (map, i, [first]) =>
        !i ||
        [...first, ...map].every(([item]) => first.get(item) === map.get(item)),
    );

Some tests (a few answers to this question don't account for arrays with multiple items of the same value, so [1, 2, 2] and [1, 2] would incorrectly return true)

[1, 2] true
[1, 2], [1, 2] true
[1, 2], [1, 2], [1, 2] true
[1, 2], [2, 1] true
[1, 1, 2], [1, 2, 1] true
[1, 2], [1, 2, 3] false
[1, 2, 3, 4], [1, 2, 3], [1, 2] false
[1, 2, 2], [1, 2] false
[1, 1, 2], [1, 2, 2] false
[1, 2, 3], [1, 2], [1, 2, 3] false
0

This algorithm is great for arrays where each item is unique. If not, you can add in something to check for duplicates...

tests = [
  [ [1,0,1] , [0,1,1] ],
  [ [1,0,1] , [0,0,1] ], //breaks on this one...
  [ [2,3,3] , [2,2,3] ], //breaks on this one also...
  [ [1,2,3] , [2,1,3] ],
  [ [2,3,1] , [1,2,2] ],
  [ [2,2,1] , [1,3,2] ]
]

tests.forEach(function(test) {
  console.log('eqArraySets( '+test[0]+' , '+test[1]+' ) = '+eqArraySets( test[0] , test[1] ));
});


function eqArraySets(a, b) {
	if ( a.length !== b.length ) { return false; }
	for ( var i = a.length; i--; ) {
		if ( !(b.indexOf(a[i])>-1) ) { return false; }
		if ( !(a.indexOf(b[i])>-1) ) { return false; }
	}
	return true;
}

0

This approach has worse theoretical worst-case run-time performance, but, because it does not perform any writes on the array, it might be faster in many circumstances (haven't tested performance yet):

WARNING: As Torben pointed out in the comments, this approach only works if both arrays have unique (non-repeating) elements (just like several of the other answers here).

/**
 * Determine whether two arrays contain exactly the same elements, independent of order.
 * @see https://stackoverflow.com/questions/32103252/expect-arrays-to-be-equal-ignoring-order/48973444#48973444
 */
function cmpIgnoreOrder(a, b) {
  const { every, includes } = _;
  return a.length === b.length && every(a, v => includes(b, v));
}

// the following should be all true!
const results = [
  !!cmpIgnoreOrder([1,2,3], [3,1,2]),
  !!cmpIgnoreOrder([4,1,2,3], [3,4,1,2]),
  !!cmpIgnoreOrder([], []),
  !cmpIgnoreOrder([1,2,3], [3,4,1,2]),
  !cmpIgnoreOrder([1], []),
  !cmpIgnoreOrder([1, 3, 4], [3,4,5])
];

console.log('Results: ', results)
console.assert(_.reduce(results, (a, b) => a && b, true), 'Test did not pass!');
<script src="https://cdnjs.cloudflare.com/ajax/libs/lodash.js/4.17.5/lodash.js"></script>

3
  • 1
    What do you mean when you say it creates lots of copies? Array#sort sorts arrays in-place.
    – philraj
    Commented Aug 6, 2018 at 20:31
  • 1
    Fails for these arrays: [1,1,2,3], [3,3,1,2]. Commented Nov 28, 2018 at 9:09
  • 1
    @TorbenKohlmeier Thanks, I updated my answer (admitting defeat in regard to non-unique arrays)
    – Domi
    Commented Nov 29, 2018 at 3:21
0

There is currenly a matcher for this USE CASE:

https://github.com/jest-community/jest-extended/pull/122/files

test('passes when arrays match in a different order', () => {
  expect([1, 2, 3]).toMatchArray([3, 1, 2]);
  expect([{ foo: 'bar' }, { baz: 'qux' }]).toMatchArray([{ baz: 'qux' }, { foo: 'bar' }]);
});
2
  • But that is part of jest-extended, i.e., not available as a core Jest functionality, right?
    – bluenote10
    Commented Dec 22, 2020 at 20:41
  • there is toIncludeSameMembers in jest-extended. I don't know whether this is equivalent Commented Mar 20, 2021 at 1:59
0

I am currently using this helper function (for TypeScript). It makes sure that arrays that have non unique elements are supported as well.

function expectArraysToBeEqualIgnoringOrder<T>(arr1: T[], arr2: T[]) {

    while(arr1.length > 0) {

        expect(arr1.length).toEqual(arr2.length)

        const elementToDelete = arr1[0]

        arr1 = arr1.filter(element => element !== elementToDelete)
        arr2 = arr2.filter(element => element !== elementToDelete)

    }

    expect(arr2.length).toEqual(0)

}

Many of the other asnwers do not correctly handle cases like this:

array1: [a, b, b, c]
array2: [a, b, c, c]

Here the number of elements in both arrays is the same and both arrays contain all elements from the other array, yet they are different arrays and the test should fail. It runs in O(n^2) (precisely (n^2 + n) / 2), so it's not suitable for very large arrays, but it's suitable for arrays that are not easilly sorted and therefore can not be compared in O(n * log(n))

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