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The question couldn't be easier. The z-index values are assigned by style=... or className, with Javascript or not. I don't think it matters. How do I find (with Javascript) the highest z-index? (The element it's used in would be nice, but not necessary.)

You can't use the (new) querySelector, because it doesn't query CSS values. Is there someway to query CSS? (Not the stylesheets, but the actual used values.)

Grazi

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Duplicate: stackoverflow.com/questions/1118198/… – Evan Mulawski Dec 21 '10 at 21:20
up vote -2 down vote accepted

meder makes a great point! I tried to code it anyway, because I'm bored at work and can't help myself:

NOTE: Will only work on style set using the style attribute (won't capture style set by stylesheets)

function getHighIndex (selector) {
    if (!selector) { selector = "*" };

    var elements = document.querySelectorAll(selector) ||
                   oXmlDom.documentElement.selectNodes(selector),
        i = 0,
        e, s,
        max = elements.length,
        found = [];

    for (; i < max; i += 1) {
        e = elements[i].style.zIndex;
        s = elements[i].style.position;
        if (e && s !== "static") {
          found.push(parseInt(e, 10));
        }
    }

    return found.length ? Math.max.apply(null, found) : 0;
}
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2  
This won't get any z-index set in a stylesheet (as opposed to a style attribute). – Quentin Dec 21 '10 at 21:53
    
Correct, and I'll add that as a disclaimer! – Kai Dec 21 '10 at 21:56
    
Wouldn't document.getElementsByTagName('*') be easier on the DOM? And maybe start at the end because that's usually where the high z-indexes are. I'm not looking for in-stylesheet defined z-indexes; only for applied z-indexes (so in elements). – Rudie Dec 23 '10 at 8:21
    
This will work: NodeList.prototype.map = function(fn) { var a=[]; for ( var i=0; i<this.length; i++ ){ a.push(fn(this[i], i, this)); } return a; }; and then Math.max.apply(null, document.getElementsByTagName('*').map(function(el){ return el.style.zIndex || 0; })); – Rudie Dec 23 '10 at 17:38
    
@Rudie - not sure why you accepted this answer, since it clearly doesn't answer your question - you wanted to get the z-index across all styles, including styles set via class name, which this won't do. – Charles Boyung Dec 27 '10 at 18:37

It's not as simple as finding the element with the highest z-index. Stacking order also depends on tree relationship, so if a static positioned element with the most z-index explicitly set, and if your code retrieved that, it would be useless since z-index is useless on static positioned elements.

In addition, IE's stacking order rules are completely broken so you would have to account for that as well. And you may have to account for iframe/select elements in IE pre 8/9 since they have more stacking order priority than any other nodes.

This would probably be useful: http://www.w3.org/TR/CSS21/zindex.html

You'd have to follow all of those and account for IE bugs in order to have a consistent method of getting the element with the most stacking order priority.

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+1. Covered all the issues in a great answer. – Matt Asbury Dec 21 '10 at 21:21
    
Agree with Matt - I had completely forgotten some of those other issues. – Charles Boyung Dec 21 '10 at 21:26
    
+1. Good answer. – Flack Dec 21 '10 at 22:21
    
Actually it is as simple as finding the (element with) the highest z-index, because that was my question. But thanks for the elaborate response. – Rudie Dec 23 '10 at 8:19

This is a modified version of kennebec's/Pravens code which finds the highest z-index within a stacking context. This version also takes opacity into account.

If all you're looking for is to position an element on top of everything else in the page, simply call highZ(document.body) or just highZ(). It finds the highest z-index of the root stacking context which will do exactly that.

  • Only non-statically positioned elements matter within a stacking context.
  • Elements that are not positioned do not start a new stacking context. So their descendents may exist in the current stacking context. Hence the recursion.
  • Also, if the z-index is 'auto', the element does not start a new stacking context, so you must recurse through its elements.
  • elements with an opacity value less than 1 start a new stacking context. If an element with opacity less than 1 is not positioned, implementations must paint the layer it creates, within its parent stacking context, at the same stacking order that would be used if it were a positioned element with ‘z-index: 0’ and ‘opacity: 1’. If an element with opacity less than 1 is positioned, the ‘z-index’ property applies as described in [CSS21], except that ‘auto’ is treated as ‘0’ since a new stacking context is always created.

    function highZ(parent, limit){
        limit = limit || Infinity;
        parent = parent || document.body;
        var who, temp, max= 1, opacity, i= 0;
        var children = parent.childNodes, length = children.length;
        while(i<length){
            who = children[i++];
            if (who.nodeType != 1) continue; // element nodes only
            opacity = deepCss(who,"opacity");
            if (deepCss(who,"position") !== "static") {
                temp = deepCss(who,"z-index");
                if (temp == "auto") { // positioned and z-index is auto, a new stacking context for opacity < 0. Further When zindex is auto ,it shall be treated as zindex = 0 within stacking context.
                    (opacity < 1)? temp=0:temp = highZ(who);
                } else {
                    temp = parseInt(temp, 10) || 0;
                }
            } else { // non-positioned element, a new stacking context for opacity < 1 and zindex shall be treated as if 0
                (opacity < 1)? temp=0:temp = highZ(who);
            }
            if (temp > max && temp <= limit) max = temp;                
        }
        return max;
    }
    
    function deepCss(who, css) {
        var sty, val, dv= document.defaultView || window;
        if (who.nodeType == 1) {
            sty = css.replace(/\-([a-z])/g, function(a, b){
                return b.toUpperCase();
            });
            val = who.style[sty];
            if (!val) {
                if(who.currentStyle) val= who.currentStyle[sty];
                else if (dv.getComputedStyle) {
                    val= dv.getComputedStyle(who,"").getPropertyValue(css);
                }
            }
        }
        return val || "";
    }
    
share|improve this answer
    
Nice. I noticed your answer after commenting on the one you "fixed". Sad that your's is way down here. The only thing I would note is that, while positioning can create a new stack, other factors affect the stack as well (static[block before float before inline] before positioned ordered by z-index) and that a negative z-index makes things even more fun... – Kevin Peno Aug 19 '11 at 19:16
    
It works perfectly, thank you very much! – lucaferrario Jan 29 '12 at 3:50

You would need to loop through every single element in the DOM and keep track of the max z-index found as you loop, along with the element that has that z-index. Then, when you are done, you will have the element you are looking for.

This is an incredibly intensive piece of script and could kill your users' browsers. Why in the world would you want to do this?

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You only need sibling elements to find the highest z-index, so start with a parent element or the body.

And often you have some element with a really high z-index that you want to be always on top- if so, ignore z indexes over a million or whatever is safely above the number of siblings.

You can do it in one function, but the syntax for finding stylesheet values is handy to have around.

function highZ(pa, limit){
    limit= limit || Infinity;
    pa= pa || document.body;
    var who, tem, mx= 1, A= [], i= 0, L;
    pa= pa.childNodes, L= pa.length;
    while(i<L){
        who= pa[i++]
        if(who.nodeType== 1){
            tem= parseInt(deepCss(who,"z-index")) || 0;
            if(tem> mx && tem<=limit) mx= tem;
        }
    }
    return mx;
}
function deepCss(who, css){
    var sty, val, dv= document.defaultView || window;
    if(who.nodeType== 1){
        sty= css.replace(/\-([a-z])/g, function(a, b){
            return b.toUpperCase();
        });
        val= who.style[sty];
        if(!val){
            if(who.currentStyle) val= who.currentStyle[sty];
            else if(dv.getComputedStyle){
                val= dv.getComputedStyle(who,"").getPropertyValue(css);
            }
        }
    }
    return val || "";
}

alert(highZ())

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Unfortunately this just isn't true. Siblings may have different stacking orders based on the context of their parents, yes. However, 3 siblings can have a number of different stacking order schemes depending on a lot of factors related to the layout rules. – Kevin Peno Aug 19 '11 at 18:56
    
Example: the parent is position: absolute, so stacking order of children always starts within it. Sib1 is positioned, sib2 is inline, sib3 is floated. No sib declares z-index. The stack is Sib3, Sib2, Sib1. In your code you will get the stack of Sib1, Sib2, Sib3. – Kevin Peno Aug 19 '11 at 18:56
    
Example 2: Same as above with z-index applied (even in error). Sib1 is z-index -1, Sib2 is z-index: auto, Sib3 is z-index: 1. The result of the stack should be: Sib1, Sib3, Sib2. This is because float doesn't effect position which is required for z-index to apply. Your function will give the same as previous: Sib1, Sib2, Sib3. – Kevin Peno Aug 19 '11 at 19:02

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