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How do you determine equality for two JavaScript objects?
Object comparison in JavaScript

so if I have two arrays or objects and want to compare them, such as

object1 = [
 { shoes:
   [ 'loafer', 'penny' ]
  { beers:
     [ 'budweiser', 'busch' ]

object2 = [
 { shoes:
   [ 'loafer', 'penny' ]
  { beers:
     [ 'budweiser', 'busch' ]

object1 == object2 // false

this can be annoying if you're getting a response from a server and trying to see if it's changed

share|improve this question

marked as duplicate by 0x499602D2, katspaugh, Peter O., Lucas, DocMax Nov 3 '12 at 7:51

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

Related:… . –  bebraw Oct 30 '12 at 16:09

2 Answers 2

up vote 12 down vote accepted

In response to the comments and worries surrounding the original suggestion (comparing 2 JSON strings), you could use this function:

funciton compareObjects(o, p)
    var i,
        keysO = Object.keys(o).sort(),
        keysP = Object.keys(p).sort();
    if (keysO.length !== keysP.length)
        return false;//not the same nr of keys
    if (keysO.join('') !== keysP.join(''))
        return false;//different keys
    for (i=0;i<keysO.length;++i)
        if (o[keysO[i]] instanceof Array)
            if (!(p[keysO[i]] instanceof Array))
                return false;
            //if (compareObjects(o[keysO[i]], p[keysO[i]] === false) return false
            //would work, too, and perhaps is a better fit, still, this is easy, too
            if (p[keysO[i]].sort().join('') !== o[keysO[i]].sort().join(''))
                return false;
        else if (o[keysO[i]] instanceof Date)
            if (!(p[keysO[i]] instanceof Date)
                return false;
            if ((''+o[keysO[i]]) !== (''+p[keysO[i]]))
                return false;
        else if (o[keysO[i]] instanceof Function)
            if (!(p[keysO[i]] instanceof Function)
                return false;
            //ignore functions, or check them regardless?
        else if (o[keysO[i]] instanceof Object)
            if (!(p[keysO[i]] instanceof Object)
                return false;
            if (o[keysO[i]] === o)
            {//self reference?
                if (p[keysO[i]] !== p)
                    return false;
            else if (compareObjects(o[keysO[i]], p[keysO[i]]) === false)
                return false;//WARNING: does not deal with circular refs other than ^^
        if (o[keysO[i]] !== p[keysO[i]])//change !== to != for loose comparison
            return false;//not the same value
    return true;

But in many cases, it needn't be that difficult IMO:

JSON.stringify(object1) === JSON.stringify(object2);

If the stringified objects are the same, their values are alike.
For completeness' sake: JSON simply ignores functions (well, removes them all together). It's meant to represent Data, not functionality.
Attempting to compare 2 objects that contain only functions will result in true:

JSON.stringify({foo: function(){return 1;}}) === JSON.stringify({foo: function(){ return -1;}});
//evaulutes to:
'{}' === '{}'
//is true, of course

For deep-comparison of objects/functions, you'll have to turn to libs or write your own function, and overcome the fact that JS objects are all references, so when comparing o1 === ob2 it'll only return true if both variables point to the same object...

As @a-j pointed out in the comment:

JSON.stringify({a: 1, b: 2}) === JSON.stringify({b: 2, a: 1});

is false, as both stringify calls yield "{"a":1,"b":2}" and "{"b":2,"a":1}" respectively. As to why this is, you need to understand the internals of chrome's V8 engine. I'm not an expert, and without going into too much detail, here's what it boils down to:

Each object that is created, and each time it is modified, V8 creates a new hidden C++ class (sort of). If object X has a property a, and another object has the same property, both these JS objects will reference a hidden class that inherits from a shared hidden class that defines this property a. If two objects all share the same basic properties, then they will all reference the same hidden classes, and JSON.stringify will work exactly the same on both objects. That's a given (More details on V8's internals here, if you're interested).

However, in the example pointed out by a-j, both objects are stringified differently. How come? Well, put simply, these objects never exist at the same time:

JSON.stringify({a: 1, b: 2})

This is a function call, an expression that needs to be resolved to the resulting value before it can be compared to the right-hand operand. The second object literal isn't on the table yet.
The object is stringified, and the exoression is resolved to a string constant. The object literal isn't being referenced anywhere and is flagged for garbage collection.
After this, the right hand operand (the JSON.stringify({b: 2, a: 1}) expression) gets the same treatment.

All fine and dandy, but what also needs to be taken into consideration is that JS engines now are far more sophisticated than they used to be. Again, I'm no V8 expert, but I think its plausible that a-j's snippet is being heavily optimized, in that the code is optimized to:

"{"b":2,"a":1}" === "{"a":1,"b":2}"

Essentially omitting the JSON.stringify calls all together, and just adding quotes in the right places. That is, after all, a lot more efficient.

share|improve this answer
This isn't necessarily true. This doesn't encompass all cases, ie functions as a value, objects as values -- you may end up with lots of [Object Object] - which may be a false positive. –  ansiart Jul 18 '13 at 14:40
@ansiart: I never claimed this is a universal sollution. The OP wanted to compare two objects, like the ones in his question. To acchieve that, this answer is the easiest way. –  Elias Van Ootegem Jul 18 '13 at 14:52
I don't believe JSON.stringify has any guarantee of the ordering of the output. JSON.stringify({a: 1, b: 1}) could turn into '{"a": 1, "b": 1}' or '{"b": 1, "a": 1}' and the comparison will fail. –  Tony Arkles Sep 21 '13 at 5:00
@TonyArkles: The order in which properties are represented aren't gouverned by any standard (ECMA leaves that up to the implementation). However, it's fair to say that 2 object, with the same properties, will be stringified in the same way: both objects are stringified by the same implementation, and their output will be identical, if both objects have the same properties defined. JSON doesn't order anything, but the V8 engine, for example orders the properties alphabetically. so {b:1,a:1} is an impossibility... –  Elias Van Ootegem Sep 22 '13 at 12:34
@EliasVanOotegem That's not true, at least for Chrome. The order matches the order in which properties are added. For example: var o = {b: 1}; o.a = 1; results in {b: 1, a: 1}, and also stringified that way. It is true, though, that order is predictable on V8 either way. Also seems to be true of latest FireFox. –  bvukelic Nov 10 '13 at 11:00

As an underscore mixin:

in coffee-script:

_.mixin deepEquals: (ar1, ar2) ->

    # typeofs should match
    return false unless (_.isArray(ar1) and _.isArray(ar2)) or (_.isObject(ar1) and _.isObject(ar2))

    #lengths should match
    return false if ar1.length != ar2.length

    still_matches = true

    _fail = -> still_matches = false

    _.each ar1, (prop1, n) =>

      prop2 = ar2[n]

      return if prop1 == prop2

      _fail() unless _.deepEquals prop1, prop2

    return still_matches

And in javascript:

  deepEquals: function(ar1, ar2) {
    var still_matches, _fail,
      _this = this;
    if (!((_.isArray(ar1) && _.isArray(ar2)) || (_.isObject(ar1) && _.isObject(ar2)))) {
      return false;
    if (ar1.length !== ar2.length) {
      return false;
    still_matches = true;
    _fail = function() {
      still_matches = false;
    _.each(ar1, function(prop1, n) {
      var prop2;
      prop2 = ar2[n];
      if (prop1 !== prop2 && !_.deepEquals(prop1, prop2)) {
    return still_matches;
share|improve this answer
Funkodebat, the iterator function that you passed to underscore each has inconsistent return points: if (prop1 === prop2) { return; /* void */ } if (!_.deepEquals(prop1, prop2)) { return _fail(); /* false */ } –  Sorin Postelnicu Jul 29 '13 at 14:58
And what is the purpose of returning from the iterator? As I understood, _.each doesn't break the loop (if this is what you wanted).. –  Sorin Postelnicu Jul 29 '13 at 14:59
Or is it just a semi-automatic conversion from coffeescript, where every statement has a return value, so when calling "_fail() unless _.deepEquals prop1, prop2" it converts this to "return _fail()" ? –  Sorin Postelnicu Jul 29 '13 at 15:01
yea cofeescript just returns every last line of functions –  Funkodebat Jul 30 '13 at 20:51

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