I'm trying to loop over ALL elements on a page, so I want to check every element that exists on this page for a special class.

So, how do I say that I want to check EVERY element?

  • are you sure you want to loop through every element yourself? why not use jquery and selectors to grab elements that are of that particular class? – NG. Nov 23 '10 at 13:18
  • Isn't there a document.getElementsByTagName method? – SuperJedi224 May 5 '15 at 19:59
up vote 181 down vote accepted

You can pass a * to getElementsByTagName() so that it will return all elements in a page:

var all = document.getElementsByTagName("*");

for (var i=0, max=all.length; i < max; i++) {
     // Do something with the element here
}

Note that you could use querySelectorAll(), if it's available (IE9+, CSS in IE8), to just find elements with a particular class.

if (document.querySelectorAll)
    var clsElements = document.querySelectorAll(".mySpeshalClass");
else
    // loop through all elements instead

This would certainly speed up matters for modern browsers.


Browsers now support foreach on NodeList. This means you can directly loop the elements instead of writing your own for loop.

document.querySelectorAll('*').forEach(function(node) {
    // Do whatever you want with the node object.
});

Performance note - Do your best to scope what you're looking for. A universal selector can return a lot of nodes depending on the complexity of the page. Even if you do need to look through everything someone may see, that means you can use 'body *' as the selector to cut all the head content out.

  • 2
    This method seems very nice, but how can I select an element in the upper method? I only got the index 'i'? – Florian Müller Nov 23 '10 at 13:35
  • 2
    @Florian: just like you would access an array element -- all[i] would give you the current element. – Andy E Nov 23 '10 at 13:36
  • 2
    How to select the element in side the loop? – Debiprasad Apr 19 '13 at 13:39
  • 2
    @JesseAldridge: just a force of habit/good practice. Avoiding the property lookup on every iteration is usually a micro-optimisation, but it's not particularly more difficult to write and so I just do it naturally. – Andy E Mar 23 '15 at 9:04
  • 1
    Wouldn't have guessed querySelectorAll has better support but you are correct. OP should definitely use that. – Jonathan Oct 6 '15 at 16:17

Was looking for same. Well, not exactly. I only wanted to list all DOM Nodes.

var currentNode,
    ni = document.createNodeIterator(document.documentElement, NodeFilter.SHOW_ELEMENT);

while(currentNode = ni.nextNode()) {
    console.log(currentNode.nodeName);
}

To get elements with a specific class, we can use filter function.

var currentNode,
    ni = document.createNodeIterator(
                     document.documentElement, 
                     NodeFilter.SHOW_ELEMENT,
                     function(node){
                         return node.classList.contains('toggleable') ? NodeFilter.FILTER_ACCEPT : NodeFilter.FILTER_REJECT;
                     }
         );

while(currentNode = ni.nextNode()) {
    console.log(currentNode.nodeName);
}

Found solution on MDN

  • never saw document.ceeateNodeIterator. Seems interesting what new features JS brings ;) – Florian Müller Oct 3 '14 at 10:03
  • very nice and neat! – Arjang Jul 11 '15 at 7:01
  • 1
    A cool feature of this is that the nodeiterator also walks the nodes in the order they appear in the html. I wonder if some of the document.body.getElementsByTagName('*') could return the nodes in scrambled order. – Civilian Aug 9 '16 at 21:55

Here is another example on how you can loop through a document or an element:

function getNodeList(elem){
var l=new Array(elem),c=1,ret=new Array();
//This first loop will loop until the count var is stable//
for(var r=0;r<c;r++){
    //This loop will loop thru the child element list//
    for(var z=0;z<l[r].childNodes.length;z++){

         //Push the element to the return array.
        ret.push(l[r].childNodes[z]);

        if(l[r].childNodes[z].childNodes[0]){
            l.push(l[r].childNodes[z]);c++;
        }//IF           
    }//FOR
}//FOR
return ret;
}

As always the best solution is to use recursion:

loop(document);
function loop(node){
    // do some thing with the node here
    var nodes = node.childNodes;
    for (var i = 0; i <nodes.length; i++){
        if(!nodes[i]){
            continue;
        }

        if(nodes[i].childNodes.length > 0){
            loop(nodes[i]);
        }
    }

Unlike other suggestions, this solution does not require you to create an array for all the nodes, so its more light on the memory. More importantly, it finds more results. I am not sure what those results are, but when testing on chrome it finds about 50% more nodes compared to document.getElementsByTagName("*");

  • 8
    The best time to use recursion is the best time to use recursion. – Adamlive Oct 5 '17 at 14:05
  • 3
    “it founds about 50% more nodes in compare to document.getElementsByTagName("*");” — yup, it’ll find text nodes and comment nodes as well as element nodes. As the OP was just asking about elements, that’s unnecessary. – Paul D. Waite Mar 2 at 16:03
  • It might be lighter on memory. Depending on how much you do in each level of recursion, you can build a mightily big call stack by the time you get to the bottom. A NodeList is simply referencing the Nodes that are already built in your DOM, so it's not as heavy as you might imagine. Someone who knows more can weigh in, but I think it's just a memory reference size, so 8 bytes per node. – Josh from Qaribou Jun 28 at 21:23

For those who are using Jquery

$("*").each(function(i,e){console.log(i+' '+e)});

from this link
javascript reference

<html>
<head>
<title>A Simple Page</title>
<script language="JavaScript">
<!--
function findhead1()
{
    var tag, tags;
    // or you can use var allElem=document.all; and loop on it
    tags = "The tags in the page are:"
    for(i = 0; i < document.all.length; i++)
    {
        tag = document.all(i).tagName;
        tags = tags + "\r" + tag;
    }
    document.write(tags);
}

//  -->
</script>
</head>
<body onload="findhead1()">
<h1>Heading One</h1>
</body>
</html>

UPDATE:EDIT

since my last answer i found better simpler solution

function search(tableEvent)
    {
        clearResults()

        document.getElementById('loading').style.display = 'block';

        var params = 'formAction=SearchStocks';

        var elemArray = document.mainForm.elements;
        for (var i = 0; i < elemArray.length;i++)
        {
            var element = elemArray[i];

            var elementName= element.name;
            if(elementName=='formAction')
                continue;
            params += '&' + elementName+'='+ encodeURIComponent(element.value);

        }

        params += '&tableEvent=' + tableEvent;


        createXmlHttpObject();

        sendRequestPost(http_request,'Controller',false,params);

        prepareUpdateTableContents();//function js to handle the response out of scope for this question

    }
  • according to this SO discussion, document.all is discouraged in favor of document.getElementBy*. – thejoshwolfe Apr 6 '13 at 18:29
  • @thejoshwolfe thanks what do you think of my socond solution i updated – shareef Apr 7 '13 at 6:04

Andy E. gave a good answer.

I would add, if you feel to select all the childs in some special selector (this need happened to me recently), you can apply the method "getElementsByTagName()" on any DOM object you want.

For an example, I needed to just parse "visual" part of the web page, so I just made this

var visualDomElts = document.body.getElementsByTagName('*');

This will never take in consideration the head part.

You can try with document.getElementsByClassName('special_class');

  • 4
    The correct method is getElementsByClassName() and it's not supported by Internet Explorer up to version 9. – Andy E Nov 23 '10 at 13:31
  • corrected my answer! – Jimish Gamit Feb 12 '16 at 4:01

Use *

var allElem = document.getElementsByTagName("*");
for (var i = 0; i < allElem.lenght; i++) {
    // Do something with all element here
}

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