1377

I'd like to compare two arrays... ideally, efficiently. Nothing fancy, just true if they are identical, and false if not. Not surprisingly, the comparison operator doesn't seem to work.

var a1 = [1,2,3];
var a2 = [1,2,3];
console.log(a1==a2);    // Returns false
console.log(JSON.stringify(a1)==JSON.stringify(a2));    // Returns true

JSON encoding each array does, but is there a faster or "better" way to simply compare arrays without having to iterate through each value?

14
  • 9
    You could first compare their length, and if they are equal each values.
    – TJHeuvel
    Oct 20, 2011 at 14:29
  • 70
    What makes two arrays equal for you? Same elements? Same order of elements? Encoding as JSON only works as long as the element of the array can be serialized to JSON. If the array can contain objects, how deep would you go? When are two objects "equal"? Oct 20, 2011 at 14:31
  • 78
    @FelixKling, defining "equality" is definitely a subtle topic, but for people coming to JavaScript from higher-level languages, there is no excuse for silliness like ([] == []) == false.
    – Alex D
    Mar 16, 2014 at 17:52
  • 7
    @AlexD it looks like arrays use reference equality which is what you'd expect. It'd be pretty awful if you couldn't do that
    – JonnyRaa
    Aug 29, 2014 at 8:24
  • 6
    @AlexD I somewhat can't think of a language where this doesn't happen. In C++, you'd be comparing two pointers - false. In Java, you're doing the same as in javascript. In PHP, something behind the scenes will loop through the arrays - do you call PHP a Higher level language? Aug 30, 2014 at 1:33

60 Answers 60

1026

To compare arrays, loop through them and compare every value:

Comparing arrays:

// Warn if overriding existing method
if(Array.prototype.equals)
    console.warn("Overriding existing Array.prototype.equals. Possible causes: New API defines the method, there's a framework conflict or you've got double inclusions in your code.");
// attach the .equals method to Array's prototype to call it on any array
Array.prototype.equals = function (array) {
    // if the other array is a falsy value, return
    if (!array)
        return false;

    // compare lengths - can save a lot of time 
    if (this.length != array.length)
        return false;

    for (var i = 0, l=this.length; i < l; i++) {
        // Check if we have nested arrays
        if (this[i] instanceof Array && array[i] instanceof Array) {
            // recurse into the nested arrays
            if (!this[i].equals(array[i]))
                return false;       
        }           
        else if (this[i] != array[i]) { 
            // Warning - two different object instances will never be equal: {x:20} != {x:20}
            return false;   
        }           
    }       
    return true;
}
// Hide method from for-in loops
Object.defineProperty(Array.prototype, "equals", {enumerable: false});

Usage:

[1, 2, [3, 4]].equals([1, 2, [3, 2]]) === false;
[1, "2,3"].equals([1, 2, 3]) === false;
[1, 2, [3, 4]].equals([1, 2, [3, 4]]) === true;
[1, 2, 1, 2].equals([1, 2, 1, 2]) === true;

You may say "But it is much faster to compare strings - no loops..." well, then you should note there ARE loops. First recursive loop that converts Array to string and second, that compares two strings. So this method is faster than use of string.

I believe that larger amounts of data should be always stored in arrays, not in objects. However if you use objects, they can be partially compared too.
Here's how:

Comparing objects:

I've stated above, that two object instances will never be equal, even if they contain same data at the moment:

({a:1, foo:"bar", numberOfTheBeast: 666}) == ({a:1, foo:"bar", numberOfTheBeast: 666})  //false

This has a reason, since there may be, for example private variables within objects.

However, if you just use object structure to contain data, comparing is still possible:

Object.prototype.equals = function(object2) {
    //For the first loop, we only check for types
    for (propName in this) {
        //Check for inherited methods and properties - like .equals itself
        //https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Object/hasOwnProperty
        //Return false if the return value is different
        if (this.hasOwnProperty(propName) != object2.hasOwnProperty(propName)) {
            return false;
        }
        //Check instance type
        else if (typeof this[propName] != typeof object2[propName]) {
            //Different types => not equal
            return false;
        }
    }
    //Now a deeper check using other objects property names
    for(propName in object2) {
        //We must check instances anyway, there may be a property that only exists in object2
            //I wonder, if remembering the checked values from the first loop would be faster or not 
        if (this.hasOwnProperty(propName) != object2.hasOwnProperty(propName)) {
            return false;
        }
        else if (typeof this[propName] != typeof object2[propName]) {
            return false;
        }
        //If the property is inherited, do not check any more (it must be equa if both objects inherit it)
        if(!this.hasOwnProperty(propName))
          continue;
        
        //Now the detail check and recursion
        
        //This returns the script back to the array comparing
        /**REQUIRES Array.equals**/
        if (this[propName] instanceof Array && object2[propName] instanceof Array) {
                   // recurse into the nested arrays
           if (!this[propName].equals(object2[propName]))
                        return false;
        }
        else if (this[propName] instanceof Object && object2[propName] instanceof Object) {
                   // recurse into another objects
                   //console.log("Recursing to compare ", this[propName],"with",object2[propName], " both named \""+propName+"\"");
           if (!this[propName].equals(object2[propName]))
                        return false;
        }
        //Normal value comparison for strings and numbers
        else if(this[propName] != object2[propName]) {
           return false;
        }
    }
    //If everything passed, let's say YES
    return true;
}  

However, remember that this one is to serve in comparing JSON like data, not class instances and other stuff. If you want to compare more complicated objects, look at this answer and it's super long function.
To make this work with Array.equals you must edit the original function a little bit:

...
    // Check if we have nested arrays
    if (this[i] instanceof Array && array[i] instanceof Array) {
        // recurse into the nested arrays
        if (!this[i].equals(array[i]))
            return false;
    }
    /**REQUIRES OBJECT COMPARE**/
    else if (this[i] instanceof Object && array[i] instanceof Object) {
        // recurse into another objects
        //console.log("Recursing to compare ", this[propName],"with",object2[propName], " both named \""+propName+"\"");
        if (!this[i].equals(array[i]))
            return false;
        }
    else if (this[i] != array[i]) {
...

I made a little test tool for both of the functions.

Bonus: Nested arrays with indexOf and contains

Samy Bencherif has prepared useful functions for the case you're searching for a specific object in nested arrays, which are available here: https://jsfiddle.net/SamyBencherif/8352y6yw/

52
  • 36
    If you want to do strict comparisons use this[i] !== array[i] instead of !=.
    – Tim S.
    May 15, 2013 at 13:19
  • 41
    Your method should be called equals instead of compare. At least in .NET, compare usually returns a signed int indicating which object is greater than the other. See: Comparer.Compare.
    – Oliver
    May 31, 2013 at 12:24
  • 17
    Nt only is this the right way of doing it, it's also considerable more efficent. Here's a quick jsperf script I prepared for all the methods suggested in this question. jsperf.com/comparing-arrays2
    – Tolga E
    Oct 16, 2013 at 19:30
  • 130
    Changing a built-in type's prototype is definitely not the right way
    – Jasper
    Aug 14, 2014 at 9:29
  • 40
    Besides, it's not about whether it's easy to rewrite, it's about the fact that an answer shouldn't recommend something that's considered bad practice (developer.mozilla.org/en-US/docs/Web/JavaScript/Guide/…) and should definitely not do this below the header "The right way"
    – Jasper
    Sep 1, 2014 at 9:07
566

While this only works for scalar arrays (see note below), it is short code:

array1.length === array2.length && array1.every(function(value, index) { return value === array2[index]})

Same as above but in ECMAScript 6 / CoffeeScript / TypeScript with Arrow Functions:

array1.length === array2.length && array1.every((value, index) => value === array2[index])

(Note: 'scalar' here means values that can be compared directly using === . So: numbers, strings, objects by reference, functions by reference. See the MDN reference for more info about the comparison operators).

UPDATE

From what I read in the comments, sorting the array and comparing may give accurate result:

const array2Sorted = array2.slice().sort();
array1.length === array2.length && array1.slice().sort().every(function(value, index) {
    return value === array2Sorted[index];
});

Eg:

array1 = [2,3,1,4];
array2 = [1,2,3,4];

Then the above code would return true

15
  • 23
    I like this, although readers should be aware this only works on sorted arrays. Dec 15, 2013 at 15:05
  • 21
    It works on any kind of arrays, sorted or not @espertus Mar 24, 2016 at 14:03
  • 48
    Yes, exactly. This function is supposed to compare two arrays, it doesn't matter if they're sorted or not, their consecutive elements have to be equal. Mar 26, 2016 at 0:39
  • 30
    @espertus Indeed, it won't return true if the elements do not have the exact same order in both arrays. However, the goal of an equality check is not to check if they contains the same elements but to check if they have the same element in the same orders. Jun 6, 2016 at 3:25
  • 11
    If you want to check if both arrays are equals, containing the same unsorted items (but not used multiple times), you can use a1.length==a2.length && a1.every((v,i)=>a2.includes(v)): var a1 =[1,2,3], a2 = [3,2,1]; (var a1 =[1,3,3], a2 = [1,1,3]; will not work as expected)
    – mems
    Nov 21, 2016 at 15:25
273

I like to use the Underscore library for array/object heavy coding projects ... in Underscore and Lodash whether you're comparing arrays or objects it just looks like this:

_.isEqual(array1, array2)   // returns a boolean
_.isEqual(object1, object2) // returns a boolean
6
  • 34
    Note that order matters _.isEqual([1,2,3], [2,1,3]) => false Aug 18, 2015 at 13:23
  • 3
    or if you want just the isEqual functionality, you can always use the lodash.isequal module
    – hellatan
    Feb 18, 2016 at 15:36
  • 9
    You can maybe use _.difference(); if order does not matter to you Mar 31, 2017 at 15:00
  • 14
    We can sort the array before this check if the order doesnt matter _.isEqual([1,2,3].sort(), [2,1,3].sort()) => true
    – filype
    Jun 2, 2017 at 11:30
  • in React.js throw an exception: '_' is not defined May 14, 2020 at 10:13
202

This I think is the simplest way to do it using JSON stringify, and it may be the best solution in some situations:

JSON.stringify(a1) === JSON.stringify(a2);

This converts the objects a1 and a2 into strings so they can be compared. The order is important in most cases, for that can sort the object using a sort algorithm shown in one of the above answers.

Please do note that you are no longer comparing the object but the string representation of the object. It may not be exactly what you want.

10
  • 5
    @PardeepJain, this is because by default, the equality operator in ECMAScript for Objects returns true when they reference the same memory location. Try var x = y = []; // now equality returns true.
    – radtek
    Jan 17, 2016 at 19:52
  • 13
    just to note that JSON stringify function is not quick. Used with larger arrays will definitely introduce lag. Apr 29, 2017 at 11:03
  • 19
    The question specifically asks whether there is a better/faster way than using JSON.stringify.
    – Don Hatch
    May 10, 2017 at 1:02
  • 2
    It gets into more detail on why this may be a good solution for some situations.
    – radtek
    May 11, 2017 at 21:30
  • 2
    Honestly, I did not notice at first that original question mentions JSON.stringify() - for simple use cases it feels the easiest one... Mar 2, 2019 at 13:52
139

In the spirit of the original question:

I'd like to compare two arrays... ideally, efficiently. Nothing fancy, just true if they are identical, and false if not.

I have been running performance tests on some of the more simple suggestions proposed here with the following results (fast to slow):

while (67%) by Tim Down

var i = a1.length;
while (i--) {
    if (a1[i] !== a2[i]) return false;
}
return true

every (69%) by user2782196

a1.every((v,i)=> v === a2[i]);

reduce (74%) by DEIs

a1.reduce((a, b) => a && a2.includes(b), true);

join & toString (78%) by Gaizka Allende & vivek

a1.join('') === a2.join('');

a1.toString() === a2.toString();

half toString (90%) by Victor Palomo

a1 == a2.toString();

stringify (100%) by radtek

JSON.stringify(a1) === JSON.stringify(a2);

Note the examples below assumes the arrays are sorted, single-dimensional arrays. .length comparison has been removed for a common benchmark (add a1.length === a2.length to any of the suggestions and you will get a ~10% performance boost). Choose whatever solutions that works best for you knowing the speed and limitation of each.

Unrelated note: it is interesting to see people getting all trigger-happy John Waynes on the down vote button on perfectly legitimate answers to this question.

6
  • The link opens an empty test. Jun 14, 2018 at 16:43
  • If you bump the array size, these numbers don't apply (especially the reduce approach). Try with Array.from({length: 1000}).map((a,v)=> ${v}.padStart(10,2));
    – Narayon
    Aug 27, 2019 at 10:49
  • Should use sort() before a1 & a2 join. e.g. a1.sort().join("")===a2.sort().join("")
    – KR Tirtho
    Nov 19, 2020 at 17:23
  • Thank you for the performance testing :)
    – Omar Magdy
    Nov 25, 2021 at 7:44
  • join('') is dangerous as ['foo', 'bar'].join('') == ['foobar'].join(''). I prefer a1 ==''+ a2. Nov 27, 2021 at 20:57
83

The Practical Way

I think it's wrong to say a particular implementation is "The Right Way™" if it's only "right" ("correct") in contrast to a "wrong" solution. Tomáš's solution is a clear improvement over string-based array comparison, but that doesn't mean it's objectively "right". What is right anyway? Is it the fastest? Is it the most flexible? Is it the easiest to comprehend? Is it the quickest to debug? Does it use the least operations? Does it have any side effects? No one solution can have the best of all the things.

Tomáš's could say his solution is fast but I would also say it is needlessly complicated. It tries to be an all-in-one solution that works for all arrays, nested or not. In fact, it even accepts more than just arrays as an input and still attempts to give a "valid" answer.


Generics offer reusability

My answer will approach the problem differently. I'll start with a generic arrayCompare procedure that is only concerned with stepping through the arrays. From there, we'll build our other basic comparison functions like arrayEqual and arrayDeepEqual, etc

// arrayCompare :: (a -> a -> Bool) -> [a] -> [a] -> Bool
const arrayCompare = f => ([x,...xs]) => ([y,...ys]) =>
  x === undefined && y === undefined
    ? true
    : Boolean (f (x) (y)) && arrayCompare (f) (xs) (ys)

In my opinion, the best kind of code doesn't even need comments, and this is no exception. There's so little happening here that you can understand the behaviour of this procedure with almost no effort at all. Sure, some of the ES6 syntax might seem foreign to you now, but that's only because ES6 is relatively new.

As the type suggests, arrayCompare takes comparison function, f, and two input arrays, xs and ys. For the most part, all we do is call f (x) (y) for each element in the input arrays. We return an early false if the user-defined f returns false – thanks to &&'s short-circuit evaluation. So yes, this means the comparator can stop iteration early and prevent looping through the rest of the input array when unnecessary.


Strict comparison

Next, using our arrayCompare function, we can easily create other functions we might need. We'll start with the elementary arrayEqual

// equal :: a -> a -> Bool
const equal = x => y =>
  x === y // notice: triple equal

// arrayEqual :: [a] -> [a] -> Bool
const arrayEqual =
  arrayCompare (equal)

const xs = [1,2,3]
const ys = [1,2,3]
console.log (arrayEqual (xs) (ys))      //=> true
// (1 === 1) && (2 === 2) && (3 === 3)  //=> true

const zs = ['1','2','3']
console.log (arrayEqual (xs) (zs))      //=> false
// (1 === '1')                          //=> false

Simple as that. arrayEqual can be defined with arrayCompare and a comparator function that compares a to b using === (for strict equality).

Notice that we also define equal as it's own function. This highlights the role of arrayCompare as a higher-order function to utilize our first order comparator in the context of another data type (Array).


Loose comparison

We could just as easily defined arrayLooseEqual using a == instead. Now when comparing 1 (Number) to '1' (String), the result will be true

// looseEqual :: a -> a -> Bool
const looseEqual = x => y =>
  x == y // notice: double equal

// arrayLooseEqual :: [a] -> [a] -> Bool
const arrayLooseEqual =
  arrayCompare (looseEqual)

const xs = [1,2,3]
const ys = ['1','2','3']
console.log (arrayLooseEqual (xs) (ys))    //=> true
// (1 == '1') && (2 == '2') && (3 == '3')  //=> true

Deep comparison (recursive)

You've probably noticed that this is only shallow comparison tho. Surely Tomáš's solution is "The Right Way™" because it does implicit deep comparison, right ?

Well our arrayCompare procedure is versatile enough to use in a way that makes a deep equality test a breeze …

// isArray :: a -> Bool
const isArray =
  Array.isArray

// arrayDeepCompare :: (a -> a -> Bool) -> [a] -> [a] -> Bool
const arrayDeepCompare = f =>
  arrayCompare (a => b =>
    isArray (a) && isArray (b)
      ? arrayDeepCompare (f) (a) (b)
      : f (a) (b))

const xs = [1,[2,[3]]]
const ys = [1,[2,['3']]]
console.log (arrayDeepCompare (equal) (xs) (ys)) //=> false
// (1 === 1) && (2 === 2) && (3 === '3')         //=> false

console.log (arrayDeepCompare (looseEqual) (xs) (ys)) //=> true
// (1 == 1) && (2 == 2) && (3 == '3')                 //=> true

Simple as that. We build a deep comparator using another higher-order function. This time we're wrapping arrayCompare using a custom comparator that will check if a and b are arrays. If so, reapply arrayDeepCompare otherwise compare a and b to the user-specified comparator (f). This allows us to keep the deep comparison behavior separate from how we actually compare the individual elements. Ie, like the example above shows, we can deep compare using equal, looseEqual, or any other comparator we make.

Because arrayDeepCompare is curried, we can partially apply it like we did in the previous examples too

// arrayDeepEqual :: [a] -> [a] -> Bool
const arrayDeepEqual =
  arrayDeepCompare (equal)

// arrayDeepLooseEqual :: [a] -> [a] -> Bool
const arrayDeepLooseEqual =
  arrayDeepCompare (looseEqual)

To me, this already a clear improvement over Tomáš's solution because I can explicitly choose a shallow or deep comparison for my arrays, as needed.


Object comparison (example)

Now what if you have an array of objects or something ? Maybe you want to consider those arrays as "equal" if each object has the same id value …

// idEqual :: {id: Number} -> {id: Number} -> Bool
const idEqual = x => y =>
  x.id !== undefined && x.id === y.id

// arrayIdEqual :: [a] -> [a] -> Bool
const arrayIdEqual =
  arrayCompare (idEqual)

const xs = [{id:1}, {id:2}]
const ys = [{id:1}, {id:2}]
console.log (arrayIdEqual (xs) (ys)) //=> true
// (1 === 1) && (2 === 2)            //=> true

const zs = [{id:1}, {id:6}]
console.log (arrayIdEqual (xs) (zs)) //=> false
// (1 === 1) && (2 === 6)            //=> false

Simple as that. Here I've used vanilla JS objects, but this type of comparator could work for any object type; even your custom objects. Tomáš's solution would need to be completely reworked to support this kind of equality test

Deep array with objects? Not a problem. We built highly versatile, generic functions, so they'll work in a wide variety of use cases.

const xs = [{id:1}, [{id:2}]]
const ys = [{id:1}, [{id:2}]]
console.log (arrayCompare (idEqual) (xs) (ys))     //=> false
console.log (arrayDeepCompare (idEqual) (xs) (ys)) //=> true

Arbitrary comparison (example)

Or what if you wanted to do some other kind of kind of completely arbitrary comparison ? Maybe I want to know if each x is greater than each y

// gt :: Number -> Number -> Bool
const gt = x => y =>
  x > y

// arrayGt :: [a] -> [a] -> Bool
const arrayGt = arrayCompare (gt)

const xs = [5,10,20]
const ys = [2,4,8]
console.log (arrayGt (xs) (ys))     //=> true
// (5 > 2) && (10 > 4) && (20 > 8)  //=> true

const zs = [6,12,24]
console.log (arrayGt (xs) (zs))     //=> false
// (5 > 6)                          //=> false

Less is More

You can see we're actually doing more with less code. There's nothing complicated about arrayCompare itself and each of the custom comparators we've made have a very simple implementation.

With ease, we can define exactly how we wish for two arrays to be compared — shallow, deep, strict, loose, some object property, or some arbitrary computation, or any combination of these — all using one procedure, arrayCompare. Maybe even dream up a RegExp comparator ! I know how kids love those regexps …

Is it the fastest? Nope. But it probably doesn't need to be either. If speed is the only metric used to measure the quality of our code, a lot of really great code would get thrown away — That's why I'm calling this approach The Practical Way. Or maybe to be more fair, A Practical Way. This description is suitable for this answer because I'm not saying this answer is only practical in comparison to some other answer; it is objectively true. We've attained a high degree of practicality with very little code that's very easy to reason about. No other code can say we haven't earned this description.

Does that make it the "right" solution for you ? That's up for you to decide. And no one else can do that for you; only you know what your needs are. In almost all cases, I value straightforward, practical, and versatile code over clever and fast kind. What you value might differ, so pick what works for you.


Edit

My old answer was more focused on decomposing arrayEqual into tiny procedures. It's an interesting exercise, but not really the best (most practical) way to approach this problem. If you're interested, you can see this revision history.

26
  • 13
    "the best kind of code doesn't even need comments" ... hate to say it, but this code could use more of a comment, and/or a different name-- "compare" is pretty vague. If I'm reading correctly, your "compare" is essentially a curried recursive "every". I think. Or is it a curried recursive "some"? Hmm. This is requiring more thinking than necessary. Perhaps a better name would be "arraysEquivalent", leveraging the standard terminology of "equivalence relation". Or, even clearer (to me anyway), "recursivelyEquivalent".
    – Don Hatch
    May 10, 2017 at 1:09
  • 1
    @DonHatch thanks for the opportunity to reply. By "compare" do you mean arrayCompare? Yes the function is curried, but it differs from some and every. arrayCompare takes a comparator and two arrays to compare. I chose a specifically generic name because we can compare arrays using any arbitrary function. The function is curried so it can be specialised to create new array comparison functions (eg, arrayEqual). Can you suggest a better name? What areas do you feel need additional comments or explanation? I'm happy to discuss ^_^
    – Mulan
    May 10, 2017 at 1:14
  • 1
    Not sure if my point is clear yet-- but my point is, your function isn't really intended to take an arbitrary function, I don't think-- it's intended to take an equivalence relation, and it returns an equivalence relation. That's important-- it wouldn't do anything sensible (I don't think) if given some other kind of arbitrary binary function like the ones I mentioned, even ones that people often call "compare". So I think it would be helpful to put "equivalent" in the name in place of "compare".
    – Don Hatch
    May 10, 2017 at 1:29
  • 1
    @ftor, author: super helpful answer, nice work, +1. Feedback: You advocate simplicity, yet no way is an expression with three arrows on one line simple or easy to understand for many developers. For ex: f=> ([x,...xs]) => ([y,...ys]) =>. I constantly use this and still had to mentally decompose it, rather than "just look at it". Second point ftor is right, use every. Even weighing your reasons, on balance it seems better not only to me, but also from your perspective when attempt to infer your design philosophy. Nov 22, 2017 at 20:18
  • 2
    I understand this is a place for learning, but I make an assumption here that the average programmer studying functional style can transform any curried function to an uncurried one. My answer does not make the suggestion that this style is meant to be used in your own program – write it uncurried, write it using your own indentation rules, write it however you want – I write my answers in a style that I believe expresses the program best. I also like to invite others to challenge the way we express our programs syntactically
    – Mulan
    Nov 22, 2017 at 23:36
65

It's unclear what you mean by "identical". For example, are the arrays a and b below identical (note the nested arrays)?

var a = ["foo", ["bar"]], b = ["foo", ["bar"]];

Here's an optimized array comparison function that compares corresponding elements of each array in turn using strict equality and does not do recursive comparison of array elements that are themselves arrays, meaning that for the above example, arraysIdentical(a, b) would return false. It works in the general case, which JSON- and join()-based solutions will not:

function arraysIdentical(a, b) {
    var i = a.length;
    if (i != b.length) return false;
    while (i--) {
        if (a[i] !== b[i]) return false;
    }
    return true;
};
3
  • @ASDF: It's unclear from the question what "identical" means. Obviously this answer just does a shallow check. I'll add a note.
    – Tim Down
    Sep 4, 2014 at 13:33
  • this fails for arraysIdentical([1, 2, [3, 2]],[1, 2, [3, 2]]); Jul 31, 2015 at 13:08
  • 4
    @GopinathShiva: Well, it only fails if you're expecting it to return true. The answer explains that it won't. If you need to compare nested arrays, you could easily add a recursive check.
    – Tim Down
    Jul 31, 2015 at 23:16
29

Building off Tomáš Zato's answer, I agree that just iterating through the arrays is the fastest. Additionally (like others have already stated), the function should be called equals/equal, not compare. In light of this, I modified the function to handle comparing arrays for similarity - i.e. they have the same elements, but out of order - for personal use, and thought I'd throw it on here for everyone to see.

Array.prototype.equals = function (array, strict) {
    if (!array)
        return false;

    if (arguments.length == 1)
        strict = true;

    if (this.length != array.length)
        return false;

    for (var i = 0; i < this.length; i++) {
        if (this[i] instanceof Array && array[i] instanceof Array) {
            if (!this[i].equals(array[i], strict))
                return false;
        }
        else if (strict && this[i] != array[i]) {
            return false;
        }
        else if (!strict) {
            return this.sort().equals(array.sort(), true);
        }
    }
    return true;
}

This function takes an additional parameter of strict that defaults to true. This strict parameter defines if the arrays need to be wholly equal in both contents and the order of those contents, or simply just contain the same contents.

Example:

var arr1 = [1, 2, 3, 4];
var arr2 = [2, 1, 4, 3];  // Loosely equal to 1
var arr3 = [2, 2, 3, 4];  // Not equal to 1
var arr4 = [1, 2, 3, 4];  // Strictly equal to 1

arr1.equals(arr2);         // false
arr1.equals(arr2, false);  // true
arr1.equals(arr3);         // false
arr1.equals(arr3, false);  // false
arr1.equals(arr4);         // true
arr1.equals(arr4, false);  // true

I've also written up a quick jsfiddle with the function and this example:
http://jsfiddle.net/Roundaround/DLkxX/

0
14

On the same lines as JSON.encode is to use join().

function checkArrays( arrA, arrB ){

    //check if lengths are different
    if(arrA.length !== arrB.length) return false;


    //slice so we do not effect the original
    //sort makes sure they are in order
    //join makes it a string so we can do a string compare
    var cA = arrA.slice().sort().join(","); 
    var cB = arrB.slice().sort().join(",");

    return cA===cB;

}

var a = [1,2,3,4,5];
var b = [5,4,3,2,1];
var c = [1,2,3,4];
var d = [1,2,3,4,6];
var e = ["1","2","3","4","5"];  //will return true

console.log( checkArrays(a,b) );  //true
console.log( checkArrays(a,c) );  //false
console.log( checkArrays(a,d) );  //false
console.log( checkArrays(a,e) );  //true

Only problem is if you care about types which the last comparison tests. If you care about types, you will have to loop.

function checkArrays( arrA, arrB ){

    //check if lengths are different
    if(arrA.length !== arrB.length) return false;

    //slice so we do not effect the orginal
    //sort makes sure they are in order
    var cA = arrA.slice().sort(); 
    var cB = arrB.slice().sort();

    for(var i=0;i<cA.length;i++){
         if(cA[i]!==cB[i]) return false;
    }

    return true;

}

var a = [1,2,3,4,5];
var b = [5,4,3,2,1];
var c = [1,2,3,4];
var d = [1,2,3,4,6];
var e = ["1","2","3","4","5"];

console.log( checkArrays(a,b) );  //true
console.log( checkArrays(a,c) );  //false
console.log( checkArrays(a,d) );  //false
console.log( checkArrays(a,e) );  //false

If the order should remain the same, than it is just a loop, no sort is needed.

function checkArrays( arrA, arrB ){

    //check if lengths are different
    if(arrA.length !== arrB.length) return false;


    for(var i=0;i<arrA.length;i++){
         if(arrA[i]!==arrB[i]) return false;
    }

    return true;

}

var a = [1,2,3,4,5];
var b = [5,4,3,2,1];
var c = [1,2,3,4];
var d = [1,2,3,4,6];
var e = ["1","2","3","4","5"];

console.log( checkArrays(a,a) );  //true
console.log( checkArrays(a,b) );  //false
console.log( checkArrays(a,c) );  //false
console.log( checkArrays(a,d) );  //false
console.log( checkArrays(a,e) );  //false
13
  • 3
    This only does work for certain arrays, and will be very slow with big arrays. Mar 21, 2013 at 21:01
  • 2
    Generating JSON is looping too, you just (or it seems so) don't know about it. Besides looping, generating JSON also requires more memory - it creates 2 string representations of said arrays before comparing. The downwote function is implemented to order answers from the best to the worst. I think your answer is not a good answer, so I downvoted it. Mar 21, 2013 at 22:08
  • 2
    Sorry, I just said JSON instead of .join(). Maybe if you stated your second solution as primary (as it is the better one, though toothless against multidimensional arrays), I would not judge you that way. So far, I downoted all answers that do convert arrays to strings. As well, I upvoted all that use the right way, in case you needed that to know. This means @Tim Down's answer and Bireys one. Mar 21, 2013 at 23:01
  • 6
    First version FAILS: checkArrays([1,2,3] , ["1,2",3]) == true, and it's very unlikely that that's what you want to happen!
    – Doin
    Oct 16, 2014 at 3:46
  • 2
    @epascarello: Yes, you can but (aside from the inefficiency of the very long separator you suggest) it means there will be edge cases (where the array happens to contain a string with your separator in it) where the checkArrays() function misbehaves. This might not be a problem if you know something about the contents of the arrays (so you can choose a separator you're sure won't be in the array items), but if you're trying to write a general array-comparison function, then using join() like this makes it subtly buggy!
    – Doin
    Oct 17, 2014 at 13:49
13

In my case compared arrays contain only numbers and strings. This function will show you if arrays contain same elements.

function are_arrs_match(arr1, arr2){
    return arr1.sort().toString() === arr2.sort().toString()
}

Let's test it!

arr1 = [1, 2, 3, 'nik']
arr2 = ['nik', 3, 1, 2]
arr3 = [1, 2, 5]

console.log (are_arrs_match(arr1, arr2)) //true
console.log (are_arrs_match(arr1, arr3)) //false
6
  • The question doesn't ask you to sort, so your solution is wrong for examples like are_arrs_equal([1,2], [2,1]). Also, see other discussions on this page for why stringifying is unnecessary, fragile, and wrong. Aug 3, 2016 at 3:31
  • are_arrs_equal([1,2], [2,1]) returns true as expected. Perhaps this solution is not ideal, but it worked for me.
    – yesnik
    Aug 8, 2016 at 12:37
  • That's precisely the problem, those two are not equal in any sane sense of the word "equal" for an ordered data structure. They're arrays, not sets, and if you want set equality you should call it that -- and be answering a different question. :-) Aug 9, 2016 at 19:59
  • 2
    I agree with the comments above, but this solution also works for me in my simple arrays of integers, where order is not important, so I will use it.
    – tomazahlin
    Oct 14, 2016 at 16:51
  • 1
    Fails for are_arrs_match([1,2], ["1,2"]) (returns true). And note that the sort() call will modify the input arrays - this might not be desirable. Jul 15, 2017 at 8:38
12

Even though this has a lot of answers, one that I believe to be of help:

const newArray = [ ...new Set( [...arr1, ...arr2] ) ]

It is not stated in the question how the structure of the array is going to look like, so If you know for sure that you won't have nested arrays nor objects in you array (it happened to me, that's why I came to this answer) the above code will work.

What happens is that we use spread operator ( ... ) to concat both arrays, then we use Set to eliminate any duplicates. Once you have that you can compare their sizes, if all three arrays have the same size you are good to go.

This answer also ignores the order of elements, as I said, the exact situation happened to me, so maybe someone in the same situation might end up here (as I did).


Edit1.

Answering Dmitry Grinko's question: "Why did you use spread operator ( ... ) here - ...new Set ? It doesn't work"

Consider this code:

const arr1 = [ 'a', 'b' ]
const arr2 = [ 'a', 'b', 'c' ]
const newArray = [ new Set( [...arr1, ...arr2] ) ]
console.log(newArray)

You'll get

[ Set { 'a', 'b', 'c' } ]

In order to work with that value you'd need to use some Set properties (see https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Set). On the other hand, when you use this code:

const arr1 = [ 'a', 'b' ]
const arr2 = [ 'a', 'b', 'c' ]
const newArray = [ ...new Set( [...arr1, ...arr2] ) ]
console.log(newArray)

You'll get

[ 'a', 'b', 'c' ]

That's the difference, the former would give me a Set, it would work too as I could get the size of that Set, but the latter gives me the array I need, what's more direct to the resolution.

4
  • Why did you use spread operator ( ... ) here - ...new Set ? It doesn't work. Nov 9, 2017 at 19:34
  • Dmitry Grinko I believe I answered your question on my Edit1. But I'm not sure what you meant by saying 'it doesn't work', as both answers can get you in the way Nov 10, 2017 at 11:37
  • [1, 2, 2, 3], [1, 2, 2, 3] < doesn't this simply fail with the case? The resulting set will have a length not the same as the inputs.
    – Leo Lei
    Sep 17, 2020 at 8:48
  • @LeoLei you are correct, as explained in the post this is very specific to certain situations. I used it when I was comparing DB responses, I knew I wouldn't have a situation similar to what you mentioned. Dec 16, 2020 at 17:00
12

Shortest

For an array of numbers try:

a1==''+a2

var a1 = [1,2,3];
var a2 = [1,2,3];

console.log( a1==''+a2 )

Note: this method will not work when the array also contains strings, e.g. a2 = [1, "2,3"].

0
9

Your code will not handle the case appropriately when both arrays have same elements but not in same order.

Have a look at my code with your example which compares two arrays whose elements are numbers, you might modify or extend it for other element types (by utilising .join() instead of .toString()).

var a1 = [1,2,3];
var a2 = [1,2,3];
const arraysAreEqual = a1.sort().toString()==a2.sort().toString();
// true if both arrays have same elements else false
console.log(arraysAreEqual);

0
8

You can simply use isEqual from lodash library. It is very efficient and clean.

import {isEqual} from "lodash";

const isTwoArraysEqual = isEqual(array1, array2);
3
  • 1
    Using lodash to compare arrays is nice and simple.
    – Ali Celebi
    Jun 10, 2021 at 16:14
  • @HadidAli Yes, In programming you should not build things have been already built by another developer or team or exists in a light Lib like Lodash
    – Hamza Hmem
    Jun 12, 2021 at 8:45
  • With Lodash isEqual and sortBy: isEqual(sortBy(array1), sortBy(array2));
    – marcofriso
    Mar 7 at 18:37
8

Code Golfing

There are plenty of answers showing how to compare arrays efficiently.

Below is the shortest way to compare two int or (string) arrays, measured in bytes of code.

const a = [1, 2, 3]
const b = [1, 2, 3]

console.log("1. ", a.join() == b.join())
console.log("2. ", a.join() == [].join())

console.log("3. ", 1 + a == 1 + b)
console.log("4. ", 1 + [] == 1 + b)

// even shorter
console.log("4. b) ", a == "" + b)

// false positives (see flaws)
console.log("5. ", 1 + ["3"] == 1 + [3]) // type differences
console.log("6. ", 1 + ["1,2"] == 1 + ["1", "2"])

Explanation

This works because when using the + operator, the types are automatically converted to allow concatenation. In this case, the 1 and the [1, 2, 3] are both converted to a string.

Internally, JavaScript uses [1, 2, 3].join() to convert the array to a string and then adds them resulting in 11,2,3. When doing this on both arrays, one can simply use === or == to compare the two strings.

Flaws

Using this technique, the comparison does not care if the elements in the arrays to be compared are of different types. [1, 2] will be equal to ["1", "2"] because of the string conversion.

EDIT: As pointed out in the comments, comparing string arrays can produce false positives, such as ["1,2"] being 'equal' to ["1", "2"]. This is of no concern if you are sure these never occur (e.g. in many code golfing challenges).

Disclaimer

While this is useful for code golfing, it should probably not be used in production code. The two flaws pointed out aren't helping that either.

3
  • Aaaaah. Simplicity. Jul 13, 2021 at 12:27
  • 1
    It works for numbers but not for string arrays e.g. 1+["1","2,3"]===1+["1,2","3"] and ["1","2,3"].join()===["1,2","3"].join() (so you can indicate that your answer works for numbers only) Aug 5, 2021 at 18:10
  • I didn't even think about that... If this edge case is of concern, my solution wouldn't work. I updated my answer to clearly state this flaw.
    – swift-lynx
    Aug 6, 2021 at 13:44
8

There are many complicated long answers in here, so I just want to contribute one very simple answer: use toString() to turn an array into a simple comma-separated string which you can easily compare with ===

let a = [1, 2, 3]
let b = [1, 2, 3]
let c = [4, 2, 3]

console.log(a.toString())  // this outputs "1,2,3"
console.log(a.toString() === b.toString())  // this outputs true because "1,2,3" === "1,2,3"
console.log(a.toString() === c.toString())  // this outputs false because "1,2,3" != "4,2,3"
3
  • This is not a good approach in the case in which the second array has the same value but different indexes. 1,2,3 !== 3,2,1. So maybe you need to sort the arrays first.
    – Spleen
    Apr 16 at 8:38
  • I am wondering how could someone vote this answer, it will not work, when order of elements is different Jun 15 at 1:17
  • Because usually order of elements is important, and 2 different arrays with different orders of elements are not the same. You can't use them the same or access them with the same indices etc. Jun 16 at 4:47
7

Here is a Typescript version:

//https://stackoverflow.com/a/16436975/2589276
export function arraysEqual<T>(a: Array<T>, b: Array<T>): boolean {
    if (a === b) return true
    if (a == null || b == null) return false
    if (a.length != b.length) return false

    for (var i = 0; i < a.length; ++i) {
        if (a[i] !== b[i]) return false
    }
    return true
}

//https://stackoverflow.com/a/16436975/2589276
export function arraysDeepEqual<T>(a: Array<T>, b: Array<T>): boolean {
    return JSON.stringify(a) === JSON.stringify(b)
}

Some test cases for mocha:

it('arraysEqual', function () {
    let a = [1,2]
    let b = [1,2]
    let c = [2,3]
    let d = [2, 3]
    let e = ['car','apple','banana']
    let f = ['car','apple','banana']
    let g = ['car','apple','banan8']

    expect(arraysEqual(a, b)).to.equal(true)
    expect(arraysEqual(c, d)).to.equal(true)
    expect(arraysEqual(a, d)).to.equal(false)
    expect(arraysEqual(e, f)).to.equal(true)
    expect(arraysEqual(f, g)).to.equal(false)
})

it('arraysDeepEqual', function () {
    let a = [1,2]
    let b = [1,2]
    let c = [2,3]
    let d = [2, 3]
    let e = ['car','apple','banana']
    let f = ['car','apple','banana']
    let g = ['car','apple','banan8']
    let h = [[1,2],'apple','banan8']
    let i = [[1,2],'apple','banan8']
    let j = [[1,3],'apple','banan8']

    expect(arraysDeepEqual(a, b)).to.equal(true)
    expect(arraysDeepEqual(c, d)).to.equal(true)
    expect(arraysDeepEqual(a, d)).to.equal(false)
    expect(arraysDeepEqual(e, f)).to.equal(true)
    expect(arraysDeepEqual(f, g)).to.equal(false)
    expect(arraysDeepEqual(h, i)).to.equal(true)
    expect(arraysDeepEqual(h, j)).to.equal(false)
})
0
7

There is a Stage 1 proposal, introduced in 2020, to allow for the easy comparison of arrays by adding Array.prototype.equals to the language. This is how it would work, without any libraries, monkeypatching, or any other code:

[1, 2, 3].equals([1, 2, 3]) // evaluates to true
[1, 2, undefined].equals([1, 2, 3]) // evaluates to false
[1, [2, [3, 4]]].equals([1, [2, [3, 4]]]) // evaluates to true

It's only a tentative proposal so far - TC39 will now "devote time to examining the problem space, solutions and cross-cutting concerns". If it makes it to stage 2, it has a good chance of eventually being integrated into the language proper.

6

If you are using a testing framework like Mocha with the Chai assertion library, you can use deep equality to compare arrays.

expect(a1).to.deep.equal(a2)

This should return true only if the arrays have equal elements at corresponding indices.

6

If they are two arrays of numbers or strings only, this is a quick one-line one

const array1 = [1, 2, 3];
const array2 = [1, 3, 4];
console.log(array1.join(',') === array2.join(',')) //false

const array3 = [1, 2, 3];
const array4 = [1, 2, 3];
console.log(array3.join(',') === array4.join(',')) //true
10
  • const array1 = [1]; const array2 = [1, 1]; console.log(array1.join('') === array2.join('')) //returns true
    – Dan M.
    May 7, 2017 at 17:58
  • it shouldn't: array1.join('') is '1' and array2.join('') is '11' May 9, 2017 at 5:27
  • sorry, typo. The first array should be [11]. Pretty obvious as to why this happens and how to fix.
    – Dan M.
    May 10, 2017 at 2:21
  • Not sure what you're about, it's pretty simple: [1].join() is "1" and [1,1].join() is "1,1", so they'll never be equal May 11, 2017 at 15:01
  • please, read my comment again more carefully. If you still don't see it, please take a loot at ideone.com/KFu427
    – Dan M.
    May 11, 2017 at 15:24
5

Another approach with very few code (using Array reduce and Array includes):

arr1.length == arr2.length && arr1.reduce((a, b) => a && arr2.includes(b), true)

If you want to compare also the equality of order:

arr1.length == arr2.length && arr1.reduce((a, b, i) => a && arr2[i], true)
  • The length check ensures that the set of elements in one array isn't just a subset of the other one.

  • The reducer is used to walk through one array and search for each item in other array. If one item isn't found the reduce function returns false.

    1. In the first example it's being tested that an element is included
    2. The second example check for the order too
1
  • will always fail if one of the element of the array is 0. Jun 28 at 1:20
5

Lot of good answers here. This is how I usually do it -

if ( arr1.length === arr2.length && arr1.every((a1) => arr2.includes(a1)) ) {
   // logic
}

every() will only return true if all elements pass the given camparison logic. If it encounters a false, in any iteration, it terminates and returns false.

Time complexity will be O(n*m).

5

Here you go,

const a = [1, 2, 3]
const b = [1, 2, 3, 4, 5]

const diff = b.filter(e => !a.includes(e))
console.log(diff)

Most of the above answers dosen't work for unordered list. This works for unordered lists too.

const a = [3, 2, 1]
const b = [1, 2, 3, 4, 5]

const diff = b.filter(e => !a.includes(e))
console.log(diff)

If size of a is greater than b,

const a = [1, 2, 3, 4, 5]
const b = [3, 2, 1]

const diff = a.length > b.length ? a.filter(e => !b.includes(e)) : b.filter(e => !a.includes(e))
console.log(diff)

3
  • 4
    It does not work for: let a = [1, 2, 3] let b = [3, 2, 3] Feb 16 at 13:25
  • The above solution tries to find numbers in a [1,2,3] that aren't present in b [3,2,3], for your case, all of the unique numbers in b (2,3) are present in a (1,2,3), and that's why its printing an empty array.
    – Aditya
    May 11 at 12:21
  • 1
    @AkshayVijayJain , you could compare the length of arrays, const diff = a.length > b.length ? a.filter(e => !b.includes(e)) : b.filter(e => !a.includes(e))
    – Aditya
    Jun 18 at 9:47
4

We could do this the functional way, using every (https://developer.mozilla.org/en/docs/Web/JavaScript/Reference/Global_Objects/Array/every)

function compareArrays(array1, array2) {
    if (array1.length === array2.length)
        return array1.every((a, index) => a === array2[index])
    else
        return false
}

// test
var a1 = [1,2,3];
var a2 = [1,2,3];

var a3 = ['a', 'r', 'r', 'a', 'y', '1']
var a4 = ['a', 'r', 'r', 'a', 'y', '2']

console.log(compareArrays(a1,a2)) // true
console.log(compareArrays(a1,a3)) // false
console.log(compareArrays(a3,a4)) // false
1
  • Doesn't work if we want arr1 == arr2 if all the data of arr1 is in arr2 and vice versa, doesn't matter in what order. Jun 28 at 1:17
4

This compares 2 unsorted arrays:

function areEqual(a, b) {
  if ( a.length != b.length) {
    return false;
  }
  return a.filter(function(i) {
    return !b.includes(i);
  }).length === 0;  
}
2
  • Although expensive (in terms of compute resources), this is a robust solution that should be good for various types, and does not rely on sorting! Feb 6, 2020 at 1:25
  • This will fail to compare [1, 1, 2] and [2, 2, 1]
    – arielhad
    Dec 23, 2021 at 7:23
4

A simple approach:

function equals(a, b) {
    if ((a && !b) || (!a && b) || (!a && !b) || (a.length !== b.length)) {
        return false;
    }

    var isDifferent = a.some(function (element, index) { 
        return element !== b[index];
    });

    return !isDifferent;
}
4

Here a possibility for unsorted arrays and custom comparison:

    const array1 = [1,3,2,4,5];
    const array2 = [1,3,2,4,5];
    
    const isInArray1 = array1.every(item => array2.find(item2 => item===item2))
    const isInArray2 = array2.every(item => array1.find(item2 => item===item2))
    
    const isSameArray = array1.length === array2.length && isInArray1 && isInArray2
    
    console.log(isSameArray); //true
3

Herer's my solution:

/**
 * Tests two data structures for equality
 * @param {object} x
 * @param {object} y
 * @returns {boolean}
 */
var equal = function(x, y) {
    if (typeof x !== typeof y) return false;
    if (x instanceof Array && y instanceof Array && x.length !== y.length) return false;
    if (typeof x === 'object') {
        for (var p in x) if (x.hasOwnProperty(p)) {
            if (typeof x[p] === 'function' && typeof y[p] === 'function') continue;
            if (x[p] instanceof Array && y[p] instanceof Array && x[p].length !== y[p].length) return false;
            if (typeof x[p] !== typeof y[p]) return false;
            if (typeof x[p] === 'object' && typeof y[p] === 'object') { if (!equal(x[p], y[p])) return false; } else
            if (x[p] !== y[p]) return false;
        }
    } else return x === y;
    return true;
};

Works with any nested data structure, and obviously ignores objects' methods. Don't even think of extending Object.prototype with this method, when I tried this once, jQuery broke ;)

For most arrays it's still faster than most of serialization solutions. It's probably the fastest compare method for arrays of object records.

1
  • no good! these give true: equal({}, {a:1}) and equal({}, null) and this errors out: equal({a:2}, null)
    – kristianlm
    Feb 3, 2017 at 13:05
3
JSON.stringify(collectionNames).includes(JSON.stringify(sourceNames)) ?  array.push(collection[i]) : null

This is how i did it.

1
  • Good solution - but I wonder in certain situations if it will not always work as intended, such as with certain primitives or deeply nested arrays? I hope it works in all circumstances though Dec 13, 2017 at 21:37
3

Already some great answers.But i would like to share anther idea which has proven to be reliable in comparing arrays. We can compare two array using JSON.stringify ( ) . It will create a string out the the array and thus compare two obtained strings from two array for equality

JSON.stringify([1,{a:1},2]) == JSON.stringify([1,{a:1},2]) //true

JSON.stringify([1,{a:1},2]) == JSON.stringify([1,{a:2},2]) //false

JSON.stringify([1,{a:1},2]) == JSON.stringify([1,{a:2},[3,4],2]) //false

JSON.stringify([1,{a:1},[3,4],2]) == JSON.stringify([1,{a:2},[3,4],2]) //false

JSON.stringify([1,{a:2},[3,4],2]) == JSON.stringify([1,{a:2},[3,4],2]) //true

JSON.stringify([1,{a:2},[3,4],2]) == JSON.stringify([1,{a:2},[3,4,[5]],2]) //false

JSON.stringify([1,{a:2},[3,4,[4]],2]) == JSON.stringify([1,{a:2},[3,4,[5]],2]) //false

JSON.stringify([1,{a:2},[3,4,[5]],2]) == JSON.stringify([1,{a:2},[3,4,[5]],2]) //true
2
  • doesn't work is order of elements doesn't matter. Jun 28 at 1:23
  • can you please elaborate?
    – AL-zami
    Jun 28 at 9:40

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