Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

what's the best way to determine whether a Javascript variable is an array, but has no other user-defined properties? 'instanceof Array' doesn't do this.

e.g.

var var1 = [10,11];
var1['key1'] = 'extraProperty';

var1 instanceof Array;    //returns true
share|improve this question
    
This will be hard. Why do you want to do it? –  jtbandes Jul 17 '11 at 19:55
    
Please, tags in titles and thanks in posts are redundant. Don't write them. –  Lightness Races in Orbit Jul 17 '11 at 19:58
    
I want to print out a javascript variable, using object notation where its a general object and array notation where its a pure array –  spiderplant0 Jul 17 '11 at 19:58
    
@spiderplant0: JSON.stringify(var1) gives you array notation, despite and without the extra property, really. –  KooiInc Jul 17 '11 at 20:54
    
@Kooilnc. Thanks, but I looked at stringify but it wasnt up to the job as I need more control (limiting recursion depth, dealing with cyclic data structures etc). –  spiderplant0 Jul 18 '11 at 15:02

3 Answers 3

up vote 5 down vote accepted
var isOnlyArray = function(o) {
    if (! (Object.prototype.toString.call(o) === "[object Array]")) {
        return false;
    }
    for (property in o) { 
        if (o.hasOwnProperty(property)) {
            var asInt = parseInt(property, 10);
            if (!(0 <= asInt && asInt < o.length)
                || String(asInt) !== property) {
                return false;
            }
        }
    }

    return true;
}

This function confirms that it's an Array and that every defined property on an object is an integer index that's in the range specified by .length.

var a = [1, 2];
console.log(isOnlyArray(a)); // true
a[2] = 4;
console.log(isOnlyArray(a)); // true
a["foo"] = 5;
console.log(isOnlyArray(a)); // false
share|improve this answer
    
This is what I was going to write, but I think o instanceof Array would be better for your first conditional. –  Reid Jul 17 '11 at 20:04
1  
@Reid If you use iframes, that can produce false result if you can an Array from another window. This is less elegant, but more reliable. –  Jeremy Banks Jul 17 '11 at 20:05
    
Oh, right. I forgot about that case. –  Reid Jul 17 '11 at 20:09
    
@Jeremy, a small note: resolving just toString is assuming that the global object inherits from Object.prototype, and this is implementation dependent, for example, it won't work on any IE version (JScript) and some versions of Firefox 3.x. I would recommend you to refer to the method directly (Object.prototype.toString) or getting it in another way (e.g. ({}).toString, IIRC some implementations are optimizing this case, by not creating the new object). Cheers and +1. –  CMS Jul 17 '11 at 20:26
    
Thanks @Jeremy but it doesnt seem to work. your first example returns false. –  spiderplant0 Jul 17 '11 at 20:31

I don't think that you can verify the integrity of something that was created as an Array object. Javascript won't prohibit you from adding properties to such an object.

You could iterate through the object's properties and return false if you see one that you don't think should be in Array, but that's still no guarantee that even the normal properties haven't had their values mangled.

Just don't add properties to Arrays, then you won't have this problem. That you're asking about this kind of implies that you've done something quite wrong somewhere else in your code.

share|improve this answer
    
Thanks Tomalak, but I'm having to parse code written elsewhere. And, as is usual in real word scenarios, it would be naive to assume it will adhere to specific good coding guidelines. –  spiderplant0 Jul 17 '11 at 20:02

In general, you can't distinguish array and object. Object can be used as an array and vice versa. Example:

var fancyObj = {
    favoriteFood: "pizza",
    add: function(a, b){
        return a + b;
    }
};
fancyObj.add(2,3); // returns 5
fancyObj['add'](2,3); // ditto.
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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