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I would like to count count maximum 'depth' of the DOM tree structure (the length of the longest branch of a tree given its root). For example:

<div class="group level0" id="group1">
    <div class="group level1" id="group2">
        <div class="group level2" id="group3">
            <div class="group level3">
            </div>
        </div>
    </div>
    <div class="group level1">
        <div class="group level2">
        </div>
    </div>
</div>

For example result for div#group1 would be 3. Result for div#group2 would be 2 and result for div#group3 would be 1.

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Can you be more specific? Do you only want to trace the DOM tree down through elements with the same class as the provided "root" element? –  jackwanders Sep 11 '12 at 13:00
    
How do you expect that result be 3 when your #group1 have 5 descendant divs? –  undefined Sep 11 '12 at 13:02
    
@undefined The depth is 3. OP wants the length of the longest branch of a tree given its root. –  Šime Vidas Sep 11 '12 at 13:04
    
The question is'nt really clear? Is it the longest tree, based on class, just the ones with ID, the first child, and a number of other possibilities. –  adeneo Sep 11 '12 at 13:05
    
I don't want to count all children of the same class of the selected node. I want to return the maximum depth of the selected node in the tree structure. –  Primoz Rome Sep 11 '12 at 13:06

4 Answers 4

up vote 5 down vote accepted

Here:

var calcDepth = function ( root ) {
    var $children = $( root ).children();
    var depth = 0;

    while ( $children.length > 0 ) {
        $children = $children.children();
        depth += 1;
    }

    return depth;
};

Live demo: http://jsfiddle.net/WqXy9/

calcDepth( $('#group1')[0] ) // => 3
calcDepth( $('#group2')[0] ) // => 2
share|improve this answer
    
I'll upvote this one, even though it seems strange to get the jQuery object, turn it into a plain JS object, pass it to the funtion and then make it into a jQuery object, again ? –  adeneo Sep 11 '12 at 13:08
    
The question title states that he only wants to follow elements with the same class; this function does not take that into account. It also assumes only one child node at each level of the DOM. Sibling nodes with longer depth won't be accounted for. –  jackwanders Sep 11 '12 at 13:11
    
@adeneo I like to keep direct references to DOM elements, and then wrap them in jQuery objects when neccesary. The idea is to do var elem = $('#elem')[0]; on page-init, and then use elem, and $(elem) throughout the application. That's just what I'm used to doing. One can pass a jQuery object direcctly, of course, if he likes. –  Šime Vidas Sep 11 '12 at 13:13
    
@jackwanders "elements with the same class" - I'll update my answer. *** "It also assumes only one child node at each level of the DOM" - No, I don't think it does. .children() will pass the entire sub-tree. –  Šime Vidas Sep 11 '12 at 13:16
    
You're right about .children(), my mistake. As for using $(elem) throughout your code, this is very inefficient, as you'd constantly be processing elem into a jQuery object. Better to have it stored as a variable like $elem for re-use. –  jackwanders Sep 11 '12 at 13:19

This function will find the maximum depth through the DOM tree from a given root, tracing the tree only through nodes with a specific class:

function getDepth(root, className) {
    var children = root.children('.' + className),
        maxDepth = 0;

    if (children.length === 0) {
        return maxDepth;
    } else {
        children.each(function() {
            var depth = 1 + getDepth($(this), className);
            if (depth > maxDepth) {
                maxDepth = depth;
            }
        });
    }

    return maxDepth;
}

var root = $('#group1');
var className = 'group';

var depth = getDepth(root,className);​

Here's a demo with a slightly more complex DOM:

--- jsFiddle DEMO ---

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this one will not work down to the leaves if there is another dom element in between searched elements. for example if a .group is wrapped in <section> tag then it will only count to here... example jsfiddle.net/PquP2 –  Primoz Rome Sep 11 '12 at 13:22

Here is non recursive solution:

function len(sel) {
    var depth = 0;
    $(sel + " :not(:has(*))").each(function() {
        var tmp = $(this).parentsUntil(sel).length + 1;
        if (tmp > depth) depth = tmp;
    });
    return depth;
}

DEMO: http://jsfiddle.net/f2REj/

share|improve this answer
jQuery.fn.depth = function() {
    var children = jQuery(this).children();
    if (children.length === 0)
        return 0;
    else
    {
        var maxLength = 0;
        children.each(function()
        {
            maxLength = Math.max(jQuery(this).depth(), maxLength);
        });
        return 1 + maxLength;
    }
};

Demo: http://jsfiddle.net/7Q3a9/

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