1061

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?

| |
  • 5
    You could first compare their length, and if they are equal each values. – TJHeuvel Oct 20 '11 at 14:29
  • 60
    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"? – Felix Kling Oct 20 '11 at 14:31
  • 57
    @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 '14 at 17:52
  • 5
    @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 '14 at 8:24
  • 4
    @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? – Tomáš Zato - Reinstate Monica Aug 30 '14 at 1:33

65 Answers 65

2

Recursive & works on NESTED arrays:

function ArrEQ(a1,a2){
   return( 
        //:Are both elements arrays?
        Array.isArray(a1)&&Array.isArray(a2) 
        ?
        //:Yes: Test each entry for equality:
        a1.every((v,i)=>(ArrEQ(v,a2[i])))
        :
        //:No: Simple Comparison:
        (a1===a2)
   );;
};;

console.log( "Works With Nested Arrays:" );
console.log( ArrEQ( 
    [1,2,3,[4,5,[6,"SAME/IDENTICAL"]]],
    [1,2,3,[4,5,[6,"SAME/IDENTICAL"]]]
));;     
console.log( ArrEQ( 
    [1,2,3,[4,5,[6,"DIFFERENT:APPLES" ]]],
    [1,2,3,[4,5,[6,"DIFFERENT:ORANGES"]]]
));;  
| |
2

Works with MULTIPLE arguments with NESTED arrays:

//:Return true if all of the arrays equal.
//:Works with nested arrays.
function AllArrEQ(...arrays){
    for(var i = 0; i < (arrays.length-1); i++ ){
        var a1 = arrays[i+0];
        var a2 = arrays[i+1];
        var res =( 
            //:Are both elements arrays?
            Array.isArray(a1)&&Array.isArray(a2) 
            ?
            //:Yes: Compare Each Sub-Array:
            //:v==a1[i]
            a1.every((v,i)=>(AllArrEQ(v,a2[i])))
            :
            //:No: Simple Comparison:
            (a1===a2)
        );;
        if(!res){return false;}
    };;
    return( true );
};;

console.log( AllArrEQ( 
        [1,2,3,[4,5,[6,"ALL_EQUAL"   ]]],
        [1,2,3,[4,5,[6,"ALL_EQUAL"   ]]],
        [1,2,3,[4,5,[6,"ALL_EQUAL"   ]]],
        [1,2,3,[4,5,[6,"ALL_EQUAL"   ]]],
));; 
| |
2

Actually, in the Lodash documentation, they give two pretty good examples for comparing and return fresh arrays for both differences and similarities (respectively in the examples below):

import { differenceWith, intersectionWith, isEqual } from 'lodash'

differenceWith(
  [{ a: 1 }, { b: 1 }],
  [{ a: 1 }, { b: 1 }, { c: 1 }],
  isEqual
) // []... 💀the bigger array needs to go first!

differenceWith(
  [{ a: 1 }, { b: 1 }, { c: 1 }],
  [{ a: 1 }, { b: 1 }],
  isEqual,
) // [{ c: 1 }] 🎉

intersectionWith(
  [{ a: 1 }, { b: 1 }],
  [{ a: 1 }, { b: 1 }, { c: 1 }],
  isEqual,
) // [{ a: 1 }, { b: 1 }] 🎉this one doesn't care about which is bigger

If you won't always know which array will be bigger, you can write a helper function for it like so:

const biggerFirst = (arr1, arr2) => {
  return arr1.length > arr2.length ? [arr1, arr2] : [arr2, arr1]
}

const [big, small] = biggerFirst(
  [{ a: 1 }, { b: 1 }],
  [{ a: 1 }, { b: 1 }, { c: 1 }],
)

differenceWith(big, small, isEqual) // 🎉even though we have no idea which is bigger when they are fed to biggerFirst()

From what I can tell, these match deeply as well so that's pretty nice.

I know relying on libraries for everything shouldn't be applauded, but this is the most concise/clean solution I've found to a really common problem. Hope it helps someone!

| |
2

I believe in plain JS and with ECMAScript 2015, which is sweet and simple to understand.

var is_arrays_compare_similar = function (array1, array2) {

    let flag = true;

    if (array1.length == array2.length) {

        // check first array1 object is available in array2 index
        array1.every( array_obj => {
            if (flag) {
                if (!array2.includes(array_obj)) {
                    flag = false;
                }
            }
        });

        // then vice versa check array2 object is available in array1 index
        array2.every( array_obj => {
            if (flag) {
                if (!array1.includes(array_obj)) {
                    flag = false;
                }
            }
        });

        return flag;
    } else {
        return false;
    }

}

hope it will help someone.

| |
  • 3
    Why is the vice versa check needed? We know the arrays are the same size, so if every item in array1 is also found in array2; why would we then have to check that every item in array2 is also in array1? – JeffryHouser Nov 2 '19 at 18:47
2

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
| |
1

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

import {isEqual} from "lodash";

const isTwoArraysEqual = isEqual(array1, array2);
| |
0

this script compares Object, Arrays and multidimensional array

function compare(a,b){
     var primitive=['string','number','boolean'];
     if(primitive.indexOf(typeof a)!==-1 && primitive.indexOf(typeof a)===primitive.indexOf(typeof b))return a===b;
     if(typeof a!==typeof b || a.length!==b.length)return false;
     for(i in a){
          if(!compare(a[i],b[i]))return false;
     }
     return true;
}

first line checks whether it's a primitive type. if so it compares the two parameters.

if they are Objects. it iterates over the Object and check every element recursivly.

Usage:

var a=[1,2,[1,2]];
var b=[1,2,[1,2]];
var isEqual=compare(a,b);  //true
| |
0

This function compares two arrays of arbitrary shape and dimesionality:

function equals(a1, a2) {

    if (!Array.isArray(a1) || !Array.isArray(a2)) {
        throw new Error("Arguments to function equals(a1, a2) must be arrays.");
    }

    if (a1.length !== a2.length) {
        return false;
    }

    for (var i=0; i<a1.length; i++) {
        if (Array.isArray(a1[i]) && Array.isArray(a2[i])) {
            if (equals(a1[i], a2[i])) {
                continue;
            } else {
                return false;
            }
        } else {
            if (a1[i] !== a2[i]) {
                return false;
            }
        }
    }

    return true;
}
| |
0

tried deep-equal and it worked

var eq = require('deep-equal');
eq({a: 1, b: 2, c: [3, 4]}, {c: [3, 4], a: 1, b: 2});
| |
0

With an option to compare the order or not:

function arraysEqual(a1, a2, compareOrder) {
    if (a1.length !== a2.length) {
        return false;
    }

    return a1.every(function(value, index) {
        if (compareOrder) {
            return value === a2[index];
        } else {
            return a2.indexOf(value) > -1;
        }
    });
}
| |
0

Only works for one level Arrays, String or Numbers type

 function isArrayEqual(ar1, ar2) {
     return !ar1.some(item => ar2.indexOf(item) === -1) && ar1.length === ar2.length;
 }
| |
0

Here is a very short way to do it

function arrEquals(arr1, arr2){
     return arr1.length == arr2.length && 
     arr1.filter(elt=>arr1.filter(e=>e===elt).length == arr2.filter(e=>e===elt).length).length == arr1.length
}
| |
  • Wouldn't this fail with [2, 2, 3] and [3, 3, 2]? – CodeIntern Apr 25 '19 at 22:51
  • I've edited my answer, CodeIntern. Thanks for the feedback – Cels May 18 '19 at 21:24
0

Récursive cmp function working with number/string/array/object

<script>
var cmp = function(element, target){

   if(typeof element !== typeof target)
   {
      return false;
   }
   else if(typeof element === "object" && (!target || !element))
   {
      return target === element;
   }
   else if(typeof element === "object")
   {
       var keys_element = Object.keys(element);
       var keys_target  = Object.keys(target);
       
       if(keys_element.length !== keys_target.length)
       {
           return false;
       }
       else
       {
           for(var i = 0; i < keys_element.length; i++)
           {
                if(keys_element[i] !== keys_target[i])
                    return false;
                if(!cmp(element[keys_element[i]], target[keys_target[i]]))
                    return false;
           }
		   return true;
       }
   }
   else
   {
   	   return element === target;

   }
};

console.log(cmp({
    key1: 3,
    key2: "string",
    key3: [4, "45", {key4: [5, "6", false, null, {v:1}]}]
}, {
    key1: 3,
    key2: "string",
    key3: [4, "45", {key4: [5, "6", false, null, {v:1}]}]
})); // true

console.log(cmp({
    key1: 3,
    key2: "string",
    key3: [4, "45", {key4: [5, "6", false, null, {v:1}]}]
}, {
    key1: 3,
    key2: "string",
    key3: [4, "45", {key4: [5, "6", undefined, null, {v:1}]}]
})); // false
</script>

| |
0

We can use every() and includes() method to compare two arrays.

function check(a1,a2){

  let result = a1.every((x)=>{
  return a2.includes(x);
 });

return result; 
} 
| |
  • The result for the given parameters will be true const a1 = [1, 2, 3]; const a2 = [1, 2, 3, 4]; You should check if the arrays length match. – Bagata Jun 26 at 23:12
0

This simple solution works for me

function areEqual(a, b){
    let x = 0;
    for (n in a){
        if (a[n] == b[n]){x = 1;}
        else {x = 0};
    }
    return x;
}

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

> console.log(areEqual(a,b))

true

I used it in this simple real code application

<script>
let corrette = [1];
let risposte = [];

function areEqual(a, b){
	let x = 0;
	for (n in a){
		if (a[n] == b[n]){x = 1;}
		else {x = 0};
	}
	if (x){console.log("The 2 arrays are equal")}
	return x;
}

</script>

Apporto di attrezzatura per cucina da parte del proprietario
<button onclick="risposte[0]=1">Capitale proprio</button>
<button onclick="risposte[0]=0">Capitale di debito</button>
<button onclick="risposte[0]=0">Debito commerciale</button>

<br><hr>
<button onclick="if(areEqual(corrette,risposte)){controlla.innerHTML='Esatto'}else{controlla.innerHTML='No'}">Controlla le risposte</button>
<div id="controlla"></div>

| |
  • 1
    This is a terrible solution. It does not handle the basic of what it's supposed to : areEqual( [1,2,3], [1,2,3,4] ) and areEqual([1,4,3], [1,2,3]) will yield '1' which it shouldn't. Also it is really not optimized, at all. No need to keep putting '1' every time it's "ok" and worst: no need to keep going if it's not "ok". Just return at that point. You should also use real bool 'true' or 'false'. Using numbers just make this more confusing. The minimum would be to add a check at the beginning of the function to validate if both arrays are equal length, no need to continue if they aren't – pascx64 Apr 13 at 16:39
  • Please fix or consider removing this answer as it is plain wrong. – huysentruitw May 29 at 20:28
0

This method is one that only works on scalar arrays, like the second voted answer on this question.

var arrs = [
  [[1, 2, 3], [1, 2, 3]], // true
  [[1, 2, 3, 4], [1, 2, 3]], // false
  [[1, 2, 3], [1, 2, 3, 4]], // false
]

const arraysEqual = (one, two) => (one.filter((i, n) => two[n] === i).length === one.length) && (two.filter((i, n) => one[n] === i).length === two.length)

arrs.forEach(arr => {
  console.log(arraysEqual(arr[0], arr[1]))
})

Without ES6 syntax:

var arrs = [
  [[1, 2, 3], [1, 2, 3]], // true
  [[1, 2, 3, 4], [1, 2, 3]], // false
  [[1, 2, 3], [1, 2, 3, 4]], // false
]

function arraysEqual(one, two) {
  return (one.filter((i, n) => two[n] === i).length === one.length) && (two.filter((i, n) => one[n] === i).length === two.length)
}

arrs.forEach(arr => {
  console.log(arraysEqual(arr[0], arr[1]))
})

| |
0

I think the simplest way is to turn each array into a string like you tried, and compare the strings.

To convert the arrays into string, just put this string of methods onto the arrays. These are the arrays:

var arr1 = [1, 2, "foo", 3, "bar", 3.14]
var arr2 = [1, 2, "foo", 3, "bar", 3.14]

Now, you have to convert them into the strings. The list of methods are:

arr1.toString().replace(/,/gi, "")
arr2.toString().replace(/,/gi, "")

The methods do:

**.toString()** -

Turns array into a string, concatenating the elements of the array.

Ex. ["tree", "black hole"] -> "tree,black hole"

Sadly, it includes the commas. That is why we have to do:

***.replace(a, b)***

It finds and replaces the first argument (a) with the second argument (b) in the string you are doing it on.

Ex.

"0000010000010000000".replace("1", "2")

will return: "0000020000010000000"

It only replaces the first instance of parameter 1, so we can do regex instead.

Ex.

"0000010000010000000".replace(/1/gi, "2")

will return: "0000020000020000000"

You wrap what you want to replace with /. Say what you want to replace is 1. You make it: /1/. But then you have to add the gi at the end so that it selects every instance. So, you have to put /1/gi with a comma at the end, and then you can put what you want to replace it with.

Now, your two arrays are:

arr1: "12foo3bar3.14" arr2: "12foo3bar3.14"

Now you say this:

if(arr1 === arr2) {
  // Now the code you put inside of this if statement will only run if arr1 and arr2 have the same contents.
} else {
  // This code will run if arr1 and arr2 have any differences.
}

If you want to check if arr1 CONTAINS arr2 instead of having the same exact contents, you do this.

if(arr1.indexOf(arr2) !== -1) {
    //This code will happen if arr2 is inside of arr1. If there is one extra array 
    //item in arr1, it doesn't matter. But, if arr2 has an extra array item, nothing in 
    //this if will run. If you want arr2 to contain arr1, just make arr1 in the 
    //condition of this if arr2, and make arr2 arr1.
}

Basically, if you want the arrays to be the EXACT SAME, do this:

if(arr1.toString().replace(/,/gi, "") === arr2.toString().replace(/,/gi, "")) {
    //arrays are the same
} else {
    //arrays are different
}

And if you want to know if an array contains another, just do this:

arrayThatWillHoldAnotherArray = arrayThatWillHoldAnotherArray.toString().replace(/,/gi)
arrayThatWillBeInsideAnotherArray = arrayThatWillBeInsideAnotherArray.toString().replace(/,/gi)


if(arrayThatWillHoldAnotherArray.indexOf(arrayThatWillBeInsideAnotherArray) !== -1) {
    //arrayThatWillHoldAnotherArray has arrayThatWillBeInsideAnotherArray inside of it
} else {
    //it doesn't
}

console.log("Read the code to understand this.")
var arr1 = [1,2,"foo",3,"bar",3.14]
var arr2 = [1,2,"foo",3,"bar",3.14]
function checkIfArraysAreTheSame(a,b) {
  if(a.toString().replace(/,/gi,"") === b.toString().replace(/,/gi,"")) {
    console.log("A and B are the same!")
    return true;
  }
  console.log("A and B are NOT the same!")
  return false
}
checkIfArraysAreTheSame(arr1,arr2)
//expected output: A and B are the same!
//Now, let's add another item to arr2.
arr2.push("Lorem")
checkIfArraysAreTheSame(arr1,arr2)
//expected output: A and B are NOT the same!

function checkIfArrayIsNestedInsideAnother(a,b) {
  //If this returns true, b is nested inside a.
  if (a.toString().replace(/,/gi,"").indexOf(b.toString().replace(/,/gi,"")) > -1) {
    console.log("B is nested inside of A!")
  } else if(b.toString().replace(/,/gi,"").indexOf(a.toString().replace(/,/gi,"")) > -1) {
    console.log("A is nested inside of B!")
  }
}

checkIfArrayIsNestedInsideAnother(arr1, arr2)
//expected output: A is nested inside of B! because:
//arr1 (a): [1,2,"foo",3,"bar",3.14]
//arr2 (b): [1,2,"foo",3,"bar",3.14, "Lorem"]
//We added Lorem at line 15.

//Now, let's check if arr2 is nested inside arr1, which it is not.
checkIfArrayIsNestedInsideAnother(arr2, arr1)
//expected output: B is nested inside of A!

| |
-1

My solution compares Objects, not Arrays. This would work in the same way as Tomáš's as Arrays are Objects, but without the Warning:

Object.prototype.compare_to = function(comparable){

    // Is the value being compared an object
    if(comparable instanceof Object){

        // Count the amount of properties in @comparable
        var count_of_comparable = 0;
        for(p in comparable) count_of_comparable++;

        // Loop through all the properties in @this
        for(property in this){

            // Decrements once for every property in @this
            count_of_comparable--;

            // Prevents an infinite loop
            if(property != "compare_to"){

                // Is the property in @comparable
                if(property in comparable){

                    // Is the property also an Object
                    if(this[property] instanceof Object){

                        // Compare the properties if yes
                        if(!(this[property].compare_to(comparable[property]))){

                            // Return false if the Object properties don't match
                            return false;
                        }
                    // Are the values unequal
                    } else if(this[property] !== comparable[property]){

                        // Return false if they are unequal
                        return false;
                    }
                } else {

                    // Return false if the property is not in the object being compared
                    return false;
                }
            }
        }
    } else {

        // Return false if the value is anything other than an object
        return false;
    }

    // Return true if their are as many properties in the comparable object as @this
    return count_of_comparable == 0;
}

Hope this helps you or anyone else searching for an answer.

| |
-1

If the array is plain and the order is matter so this two lines may help

//Assume
var a = ['a','b', 'c']; var b = ['a','e', 'c'];  

if(a.length !== b.length) return false;
return !a.reduce(
  function(prev,next,idx, arr){ return prev || next != b[idx] },false
); 

Reduce walks through one of array and returns 'false' if at least one element of 'a' is nor equial to element of 'b' Just wrap this into function

| |
  • map, reduce, filter everything! :P – Thoran Jul 16 '16 at 12:56
  • This is a bad solution because Array.prototype.reduce will walk through every element in a even if the first compared elements do not match. Also using !a and != in the loop is a double negative which makes this answer more complicated (and hard to read) than it needs to be – Thank you Aug 7 '16 at 15:39
  • Agree. There is some some() function :) Two years ago i didn't know it. But double negation still will be there. – Serge Aug 8 '16 at 15:58
-1

Here's a CoffeeScript version, for those who prefer that:

Array.prototype.equals = (array) ->
  return false if not array # if the other array is a falsy value, return
  return false if @length isnt array.length # compare lengths - can save a lot of time

  for item, index in @
    if item instanceof Array and array[index] instanceof Array # Check if we have nested arrays
      if not item.equals(array[index]) # recurse into the nested arrays
        return false
    else if this[index] != array[index]
      return false # Warning - two different object instances will never be equal: {x:20} != {x:20}
  true

All credits goes to @tomas-zato.

| |
-1

I would do like this:

[2,3,4,5] == [2,3,4,5].toString()

When you use the "==" operator, javascript check if the values(left and right) is the same type, if it's different javascript try to convert both side in the same type.

Array == String

Array has toString method so javascript use it to convert them to the same type, work the same way writing like this:

[2,3,4,5].toString() == [2,3,4,5].toString()
| |
  • Because you didn't bother explaining your answer – Green Dec 20 '16 at 11:38
  • Sorry for the delay, I explained it. – Victor Castro Feb 12 '17 at 16:07
  • 4
    Oversight: [1,2,3,4].toString() === ["1,2,3",4].toString() // => true – Thank you Feb 18 '17 at 16:38
  • It's better to use it when you have only one level of deepness – Victor Castro Feb 20 '17 at 15:04
-1

I have used : to join array and create a string to compare. for scenarios complex than this example you can use some other separator.

var a1 = [1,2,3];
var a2 = [1,2,3];
if (a1.length !== a2.length) {
   console.log('a1 and a2 are not equal')
}else if(a1.join(':') === a2.join(':')){
   console.log('a1 and a2 are equal')
}else{
   console.log('a1 and a2 are not equal')
}
| |
  • Converting arrays to strings in order to compare them doesn't seem like a good way to approach it. Firstly you have to serialise everything before you compare, even if the first elements of both arrays are already different. Finally you rely on items to be properly serialised which isn't guaranteed. Example with your method this will be true: [{a:1}].join('') === [{b:2}].join('') – customcommander Sep 8 at 6:50
  • @customcommander this answer is not intended for array of objects. its on array of numbers. comparing objects for. equality is a complex problem and best thing is to use underscore or lodash library methods – Manoj Yadav Sep 17 at 0:35
-1
let equals = (LHS, RHS) => {
    if (!(LHS instanceof Array)) return "false > L.H.S is't an array";
    if (!(RHS instanceof Array)) return "false > R.H.S is't an array";
    if (LHS.length != RHS.length) return false;
    let to_string = x => JSON.stringify(x.sort((a, b) => a - b));
    return to_string(LHS) == to_string(RHS);
  };

let l = console.log
l(equals([5,3,2],[3,2,5]))    // true
l(equals([3,2,5,3],[3,2,5]))  // false
| |
-1

I needed something similar, comparing two arrays containing identifiers but in random order. In my case: "does this array contain at least one identifier from the other list?" The code is quite simple, using the reduce-function.

function hasFullOverlap(listA, listB){ 
   return listA.reduce((allIdsAreFound, _id) => {
         // We return true until an ID has not been found in the other list
          return listB.includes(_id) && allIdsAreFound;
        }, true);
}

if(hasFullOverlap(listA, listB) && hasFullOverlap(listB, listA)){
   // Both lists contain all the values
}
| |
-2
function compareArrays(arrayA, arrayB) {
    if (arrayA.length != arrayB.length) return true;
    for (i = 0; i < arrayA.length; i++)
        if (arrayB.indexOf(arrayA[i]) == -1) {
            return true;
        }
    }
    for (i = 0; i < arrayB.length; i++) {
        if (arrayA.indexOf(arrayB[i]) == -1) {
            return true;
        }
    }
    return false;
}
| |
-2

Additionally, I have converted Thomas' solution to order free comparison as I needed.

Array.prototype.equalsFreeOrder = function (array) {
    var isThisElemExist;
    if (!array)
        return false;

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

    for (var i = 0; i < this.length; i++) {
        isThisElemExist = false;
        for (var k = 0; k < this.length; k++) {
            if (this[i] instanceof Array && array[k] instanceof Array) {
                if (this[i].equalsFreeOrder(array[k]))
                    isThisElemExist = true;
            }
            else if (this[i] == array[k]) {
                isThisElemExist = true;
            }
        }
        if (!isThisElemExist)
            return false;
    }
    return true;
}
| |
-2

You can disqualify "sameness" if the number of elements do not match or if one of the elements is not in the other's array. Here is simple function that worked for me.

    function isSame(arr1,arr2) {
        var same=true;
        for(var i=0;i < arr1.length;i++) {
            if(!~jQuery.inArray(arr1[i],arr2) || arr1.length!=arr2.length){
                same=false;
                }
            }
        return same;
        }
| |
-2

While the top answer to this question is correct and good, the code provided could use some improvement.

Below is my own code for comparing arrays and objects. The code is short and simple:

Array.prototype.equals = function(otherArray) {
  if (!otherArray || this.length != otherArray.length) return false;
  return this.reduce(function(equal, item, index) {
    var otherItem = otherArray[index];
    var itemType = typeof item, otherItemType = typeof otherItem;
    if (itemType !== otherItemType) return false;
    return equal && (itemType === "object" ? item.equals(otherItem) : item === otherItem);
  }, true);
};

if(!Object.prototype.keys) {
  Object.prototype.keys = function() {
    var a = [];
    for (var key in this) {
      if (this.hasOwnProperty(key)) a.push(key);
    }
    return a;
  }
  Object.defineProperty(Object.prototype, "keys", {enumerable: false});
}

Object.prototype.equals = function(otherObject) {
  if (!otherObject) return false;
  var object = this, objectKeys = object.keys();
  if (!objectKeys.equals(otherObject.keys())) return false;
  return objectKeys.reduce(function(equal, key) {
    var value = object[key], otherValue = otherObject[key];
    var valueType = typeof value, otherValueType = typeof otherValue;
    if (valueType !== otherValueType) return false;
    // this will call Array.prototype.equals for arrays and Object.prototype.equals for objects
    return equal && (valueType === "object" ? value.equals(otherValue) : value === otherValue);
  }, true);
}
Object.defineProperty(Object.prototype, "equals", {enumerable: false});

This code supports arrays nested in objects and objects nested in arrays.

You can see a full suite of tests and test the code yourself at this repl: https://repl.it/Esfz/3

| |
-2

I quite like this approach in that it is substantially more succinct than others. It essentially contrasts all items to an accumulator which maintains a same value which is replaced with NaN if it reaches one that is distinct. As NaN cannot be equal to any value, including NaN itself, the value would be converted into a boolean (!!) and be false. Otherwise, the value should be true. To prevent an array of zeros to return false, the expression is converted to its absolute value and added to 1, thus !!(Math.abs(0) + 1) would be true. The absolute value was added for the case -1, which, when added to 1 would be equal to 0 and so, false.

function areArrayItemsEqual(arr) {
    return !!(Math.abs(arr.reduce((a, b) => a === b ? b : NaN)) + 1);
}
| |
-2

If you want to compare two arrays and check if any object is same in both arrays it will works. Example :

Array1 = [a,b,c,d] Array2 = [d,e,f,g]

Here, 'd' is common in both array so this function will return true value.

 cehckArray(array1, array2) {
    for (let i = 0; i < array1.length; i++) {
      for (let j = 0; j < array2.length; j++) {
        if (array1[i] === array2[j]) {
          return true;
        }
      }
    }
    // Return if no common element exist 
    return false;
  }
| |
  • This doesn't answer the question. This function test if the two arrays have a common intersection (when interpreted as sets). – Jaromír Adamec May 22 at 17:52

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