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I would like to pick your brain. My question is this: how do you test an element for existence without the use of the getElementById method. I have setup a live demo for reference. I will also print the code on here as well:

<!DOCTYPE html>
<html>
<head>
    <script>
    var getRandomID = function (size) {
            var str = "",
                i = 0,
                chars = "0123456789abcdefghijklmnopqurstuvwxyzABCDEFGHIJKLMNOPQURSTUVWXYZ";
            while (i < size) {
                str += chars.substr(Math.floor(Math.random() * 62), 1);
                i++;
            }
            return str;
        },
        isNull = function (element) {
            var randomID = getRandomID(12),
                savedID = (element.id)? element.id : null;
            element.id = randomID;
            var foundElm = document.getElementById(randomID);
            element.removeAttribute('id');
            if (savedID !== null) {
                element.id = savedID;
            }
            return (foundElm) ? false : true;
        };
    window.onload = function () {
        var image = document.getElementById("demo");
        console.log('undefined', (typeof image === 'undefined') ? true : false); // false
        console.log('null', (image === null) ? true : false); // false
        console.log('find-by-id', isNull(image)); // false
        image.parentNode.removeChild(image);
        console.log('undefined', (typeof image === 'undefined') ? true : false); // false ~ should be true?
        console.log('null', (image === null) ? true : false); // false ~ should be true?
        console.log('find-by-id', isNull(image)); // true ~ correct but there must be a better way than this?
    };
    </script>
</head>
<body>
    <div id="demo"></div>
</body>
</html>

Basically what the above code demonstrates is an element being stored into a variable and then removed from dom. Even though the element has been removed from the dom, the variable retains the element as it was when first declared. In other words, it is not a live reference to the element itself, but rather a replica. As a result, checking the variable's value (the element) for existence will provide an unexpected result.

The isNull function is my attempt to check for an elements existence from a variable, and it works, but I would like to know if there is an easier way to accomplish the same result.

Thanks very much in advance for any insight.

PS: I'm also interested in why JavaScript variables behave like this if anyone knows of some good articles related to the subject.

share|improve this question
11  
Actually it is a live reference to the element itself, it's just not in a document any more. That functionality is required because you can actually pull an element out of the DOM and then put it back in later with all event handlers/etc still attached to it. As for why JS variables act like that? Because it would be incredibly annoying if they didn't. JS only deletes variables when you no longer have ANY references to them. The language has no way of knowing which references you deem important and which you think are worthless. –  zyklus Apr 12 '11 at 2:45
    
@cwolves Interesting. I've encountered this many times before and never really thought much of it. In fact, in my current project, I'm saving elements in an array before I make any changes to them, just in case I want to revert the changes. –  JustinBull Apr 12 '11 at 3:19
1  
Garbage collection runs from time to time and deletes everything it thinks it can. It seems pretty lousy in most browsers, but is getting better as developers realise that some browsers run for days or weeks between restarts, so good garbage collection is vital for browser performance. Web developers can help by deleting properties (and hence references to things in memory) that are no longer required. –  RobG Apr 12 '11 at 4:13
    
@JustinBull be careful with storing copies of the elements to revert. When storing a DOM element in an array, a reference to the DOM element is stored, not a copy, so changes made to the DOM element will be reflected when referencing the array's element. This is the case with all objects in javascript (variables of type 'object'). –  Anthony DiSanti Sep 7 '11 at 6:50

11 Answers 11

up vote 74 down vote accepted

It seems some people are landing here, and simply want to know if an element exists (a little bit different to the original question).

That's as simple as using any of the browser's selecting method, and checking it for a truthy value (generally).

For example, if my element had an id of "find-me", I could simply use...

var elementExists = document.getElementById("find-me");

This is spec'd to either return a reference to the element or null. If you must have a Boolean value, simply toss a !! before the method call.

In addition, you can use some of the many other methods that exist for finding elements, such as (all living off document):

  • querySelector()/querySelectorAll()
  • getElementsByClassName()
  • getElementsByName()

Some of these methods return a NodeList, so be sure to check its length property, because a NodeList is an object, and therefore truthy.


For actually determining if an element exists as part of the visible DOM (like the question originally asked), Csuwldcat provides a better solution than rolling your own (as this answer used to contain). That is, to use the contains() method on DOM elements.

You could use it like so...

document.contains(someReferenceToADomElement);

This part of the answer is left for historical reasons.

You can test if the element is part of the document object. I read about this a while ago, and here is my implementation (that works) from memory.

var elementInDocument = function(element) {
    while (element = element.parentNode) {
        if (element == document) {
            return true;
        }
    }
    return false;
}

jsFiddle.

Basically, you are just checking every parent node to see if one is eventually document. If it is, return true, otherwise false.

It also seems to work on...

var div = document.createElement('div');
elementInDocument(div); // false
share|improve this answer
    
Exactly what i was looking for! So obviously lol, why didn't I think of that. Also, do you know of any good articles that explain why variables act like this? –  JustinBull Apr 12 '11 at 2:33
    
@Jabes88 I don't know of any of the top of my head sorry. As for why, I can only speculate. –  alex Apr 12 '11 at 2:35
    
I noticed just checking parentNode is good enough (will be null if element is removed). Would you say this is just as good? jsBin –  JustinBull Apr 12 '11 at 2:46
2  
Even shorter: var elementInDom = function( el ) { while ( el = el.parentNode ) if ( el === document ) return true; return false; } –  bennedich Feb 26 '12 at 22:48
2  
@ButtleButkus Read the actual question. That solution you used doesn't make sense as getElementById() will return a reference to a DOM element or null, therefore, using typeof (especially on the RHS) is wrong (if it weren't defined, the LHS condition would throw a ReferenceError). –  alex Feb 10 '13 at 22:38

Why would you not use getElementById() if it's available?

Also, here's an easy way to do it with jQuery:

if ($('#elementId').length > 0) {
  // exists.
}

And if you can't use 3rd-party libraries, just stick to base JavaScript:

var element =  document.getElementById('elementId');
if (typeof(element) != 'undefined' && element != null)
{
  // exists.
}
share|improve this answer
1  
For the project I'm working on, I'm not able to use a library. Good-ol' fashion raw code only. I'm aware of that jQuery method, but it does not work on elements not wrapped in the jQuery container. For example, $('#elementId')[0].length would not produce the same result. –  JustinBull Apr 12 '11 at 2:38
1  
I don't think you understand jQuery. Why would you access the first element in the array and then check its length? If $('#elementId')[0] is defined then your $('#elementId').length is at least 1, which means your element exists. But regardless, let's pretend you can't use any 3rd-party libraries. getElementById() should work just as well. You just have to check to see if typeof(getElementById('elementId')) is not 'undefined' and getElementById('elementId') is not null. If not, you have an element. –  Kon Apr 12 '11 at 12:30
1  
Are you kidding me? Did you forget to read my question? You answer is exactly what my demo said DOESN'T work. –  JustinBull Apr 13 '11 at 21:18
1  
To say this is wrong, I also had to prove to myself this was incorrect. So to explain, type this in your browser's console: $('body').parent(); vs $('<div id="#elementId"></div>').parent();. Both return 1 for .length - but you'll see that the body has a parent, and if you do enough .parent().parent() you'll reach the document which is the top of the DOM Tree. While on the other hand, <div> exists in memory and has no parent, but returns length of 1 which just counts the elements in the jQuery object. I suggest editing your question to keep SO clean :) –  Mike Mar 23 '12 at 19:22
3  
I think that's just common sense. –  Kon Mar 23 '13 at 21:42

Using the Node.contains DOM API, you can check for the presence of any element in the page (currently in the DOM) quite easily:

document.body.contains(YOUR_ELEMENT_HERE);

CROSS-BROWSER NOTE: the document object in IE does not have a contains() method - to ensure cross-browser compatibility, use document.body.contains() instead

share|improve this answer
2  
This seems like the ultimate answer to this problem...and its support, if MDN is to be believed is quite good. –  crush Jun 18 '13 at 15:24
1  
This is the best answer. Note that just checking document.contains() should be enough. –  alex Jun 18 '13 at 21:39
    
@csuwldcat It worked for me, at least in Chrome with document.contains(document.documentElement). document does have Node on its prototype chain, as far as I can tell (document->HTMLDocument->Document->Node) –  alex Jun 26 '13 at 5:40
1  
Best answer! Thanks. –  HartleySan Jul 25 at 1:28
    
Best answer: doesn't require the element to have an id. –  bozdoz Jul 31 at 18:27

I simply do:

if(document.getElementById("myElementId")){
    alert("Element exists");
} else {
    alert("Element does not exist");
}

Works for me and had no issues with it yet....

share|improve this answer
    
This has nothing to do with the original question though. The OP wants to know if a reference to a DOM element is part of the visible DOM or not. –  alex Mar 13 '13 at 11:27
6  
Helped me though. I was looking for the simple test of element existence; this worked. Thanks. –  khaverim Mar 13 '13 at 22:33

From Mozilla Developer Network

This function checks to see if an element is in the page's body. As contains is inclusive and determining if the body contains itself isn't the intention of isInPage this case explicitly returns false.

function isInPage(node) {
  return (node === document.body) ? false : document.body.contains(node);
}

node is the node we want to check for in the .

share|improve this answer

Could you just check to see if the parentNode property is null?

i.e.

if(!myElement.parentNode)
{
    //node is NOT on the dom
}
else
{
    //element is on the dom
}
share|improve this answer
    
I know this is an old question but this answer is exactly the kind of elegant simple solution to the question which I was looking for. –  poby Apr 23 '13 at 18:18
2  
@poby: It might seem elegant but it isn't really doing what was requested. It only checks if the element has a parent element. This doesn't imply that the element is in the visible DOM because maybe the parent element is not connected to it. –  kayahr Jun 12 '13 at 6:58
    
One would have to go through all parent of parents to find out if last one is document. The other problem is it still could be outside of visible range or be covered or be not visible because of many other reasons. –  Arek Bal Apr 6 at 6:55

simple solution with jQuery

$('body').find(yourElement)[0] != null
share|improve this answer
    
...or $(document).find(yourElement).length !== 0 –  Grinn Jun 4 '13 at 17:42
    
This exploits that null == undefined. The real returned value would be undefined. Comparing it against null is a bit weird. –  alex Oct 24 '13 at 23:05
if ($('#elementId').length > 0) {
    // exists.
}

This did work for me using JQuery. and it did not require $('#elementId')[0] to be used. Thanks a lot for your help @agam360 :)

share|improve this answer

I liked this approach

var elem = document.getElementById('elementID');

if( elem ) do this else do that

Also

var elem = ((document.getElementById('elemID')) ? true:false);

if( elem ) do this else do that

share|improve this answer

You could write some code to walk the DOM by using the firstChild, lastChild, nextNode, nextSibling, parentNode, previousNode, previousSibling properties off the document object. I can't imagine it being efficient, but it could work.

share|improve this answer

That works with :

 var element = document.getElementById('myElem');
 if (typeof (element) != undefined && typeof (element) != null && typeof (element) != 'undefined') {
     console.log('element exists');
 }
 else{
     console.log('element NOT exists');
 }
share|improve this answer
    
So many needless conditions, parenthesis, type coercion... –  alex Oct 24 '13 at 23:04

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