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I have a number of div elements with different z-index. And I want to find the highest z-index among these divs - how can I achieve it?

the css,

#layer-1 { z-index: 1 }
#layer-2 { z-index: 2 }
#layer-3 { z-index: 3 }
#layer-4 { z-index: 4 }

the html,

<div id="layer-1">layer-1</div>
<div id="layer-2">layer-2</div>
<div id="layer-3">layer-3</div>
<div id="layer-4">layer-4</div>

I don't think this line can find the highest z-index though...

var index_highest = parseInt($("div").css("zIndex"));
// returns 10000

Any ideas?

Thanks.

share|improve this question
    
On Firefox, testing with jsFiddle, I get 1. Maybe you have some other div elsewhere in your HTML that has a z-index of 10000. –  BoltClock Apr 15 '11 at 18:22
    
thanks BoltClock. can't find where I have the div with 10000 - strange! –  tealou Apr 15 '11 at 18:30

11 Answers 11

up vote 23 down vote accepted

Note that z-index only affects positioned elements. Therefore, any element with position: static will not have a z-index, even if you assign it a value. This is especially true in browsers like Google Chrome.

var index_highest = 0;   
// more effective to have a class for the div you want to search and 
// pass that to your selector
$("#layer-1,#layer-2,#layer-3,#layer-4").each(function() {
    // always use a radix when using parseInt
    var index_current = parseInt($(this).css("zIndex"), 10);
    if(index_current > index_highest) {
        index_highest = index_current;
    }
});

(see it here (updated) )

A general jQuery selector like that when used with an option that returns one value will merely return the first. So your result is simply the z-index of the first div that jQuery grabs. To grab only the divs you want, use a class on them. If you want all divs, stick with div.

share|improve this answer
3  
there's one more thing you need to update if(index_current>=index_highest) (note the operator >=) because a html file is rendered top to bottom and having the same z-index will cause the later element to be rendered on top of the previous one. I'm not sure about how jQuery discovers the elements, but it stands to reason that it would parse the dom tree in the same manner (top to bottom) –  GRIGORE-TURBODISEL Apr 14 '12 at 16:44
4  
I think in the code it should be .css("z-index") instead of .css("zIndex"). –  Matt Jul 4 '13 at 9:07

Besides @justkt native solution there is a nice plugin to do what you want. Take a look at TopZIndex.

$.topZIndex("div");
share|improve this answer
1  
Thanks heaps! The jQuery plugin archive is offline because they're rebuilding it. Here's the GoogleCode link: code.google.com/p/topzindex/downloads/… –  Max Leske Jun 28 '12 at 8:41
    
Link replaced, thanks Max. –  Anthony Accioly Sep 25 '13 at 3:57

Here is a very concise method:

var getMaxZ = function(selector){
    return Math.max.apply(null, $(selector).map(function(){
        var z;
        return isNaN(z = parseInt($(this).css("z-index"), 10)) ? 0 : z;
    }));
};

Usage:

getMaxZ($("#layer-1,#layer-2,#layer-3,#layer-4"));

Or, as a jQuery extension:

jQuery.fn.extend({
    getMaxZ : function(){
        return Math.max.apply(null, jQuery(this).map(function(){
            var z;
            return isNaN(z = parseInt(jQuery(this).css("z-index"), 10)) ? 0 : z;
        }));
    }
});

Usage:

$("#layer-1,#layer-2,#layer-3,#layer-4").getMaxZ();
share|improve this answer
    
are one liners really necessary on answers here? –  Andrei Cristian Prodan Sep 4 '13 at 7:36
    
Huh? What are you talking about? –  Aaron J Spetner Sep 4 '13 at 11:41
    
I'm saying the code would be easier to read and understand if you would not write it in one line. –  Andrei Cristian Prodan Sep 10 '13 at 8:47
    
Oh lol sorry I'll fix it –  Aaron J Spetner Sep 10 '13 at 12:41
    
heh, definitely better for someone who's looking up this problem –  Andrei Cristian Prodan Sep 11 '13 at 9:51

Try this :

var index_highest = 0;
$('div').each(function(){
    var index_current = parseInt($(this).css("z-index"), 10);
    if(index_current > index_highest) {
        index_highest = index_current;
    }
}); 
share|improve this answer

I don't know how efficient this is, but you can use $.map to get all the z-indices:

var $divs = $('div'),
    mapper = function (elem) {
        return parseFloat($(elem).css('zIndex'));
    },
    indices = $.map($divs, mapper);

The indices variable is now an array of all the z-indices for all the divs. All you'd have to do now is apply them to Math.max:

var highest = Math.max.apply(whatevs, indices);
share|improve this answer

This would do it:

$(document).ready(function() {
    var array = [];
    $("div").each(function() {
        array.push($(this).css("z-index"));
    });
    var index_highest = Math.max.apply(Math, array);
    alert(index_highest);
});

Try this

share|improve this answer

Here how I got both lowest/highest z-indexes. If you only want to get the highest z-index and nothing more, then this function may not efficient, but if you want to get all z-indexes and the ids associated with it (i.e. for use with bring 'layer' to front/send to back, bring forward, send backward, etc), this is one way to do it. The function returns an array of objects containing ids and their z-indexes.

function getZindex (id) {

     var _l = [];
     $(id).each(function (e) {
         // skip if z-index isn't set 
         if ( $(this).css('z-index') == 'auto' ) {
              return true
         }
         _l.push({ id: $(this), zindex: $(this).css('z-index') });
     });
     _l.sort(function(a, b) { return a.zindex - b.zindex });
     return _l;
}

// You'll need to add a class 'layer' to each of your layer
var _zindexes = getZindex('.layer');
var _length = _zindexes.length;

// Highest z-index is simply the last element in the array
var _highest = _zindexes[_length - 1].zindex

// Lowest z-index is simply the first element in the array
var _lowest = _zindex[0].zindex;

alert(_highest);
alert(_lowest);
share|improve this answer

Vanilla JS, not 100% cross-browser. Including as reference for future readers/alternative method.

function getHighIndex (selector) {
    // No granularity by default; look at everything
    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 = window.getComputedStyle(elements[i], null).zIndex || elements[i].currentStyle.zIndex;
        s = window.getComputedStyle(elements[i], null).position || elements[i].currentStyle.position;

        // Statically positioned elements are not affected by zIndex
        if (e && s !== "static") {
          found.push(parseInt(e, 10));
        }
    }

    return found.length ? Math.max.apply(null, found) : 0;
}
share|improve this answer

Try my fiddle:

http://planitize.tumblr.com/post/23541747264/get-highest-z-index-with-descendants-included

This combines three advantages I haven't seen combined elsewhere:

  • Gets either the highest explicitly defined z-index (default) or the highest computed one.
  • Will look at all descendants of your selector, or all descendants of the document if none is supplied.
  • Will return either the value of the highest z, or the element that has the highest z.

One disadvantage: no cross-browser guarantees.

share|improve this answer

If you are doing what I think you're doing, there is no need. Just do this:

$('div[id^=layer-]').css('z-index', 0);
$(this).css('z-index', 1000);
share|improve this answer
    
Please read the question carefully. He's has x amount of elements and want to get the one with the highest z-index. You're setting all the elements z-index to 0 and $(this) on your answer has reference to the window object not the elements –  Ahmad Alfy Oct 3 '12 at 9:01

This is taken directly from jquery-ui, it works really well:

(function ($) {
  $.fn.zIndex = function (zIndex) {
      if (zIndex !== undefined) {
        return this.css("zIndex", zIndex);
      }

      if (this.length) {
        var elem = $(this[ 0 ]), position, value;
        while (elem.length && elem[ 0 ] !== document) {
          // Ignore z-index if position is set to a value where z-index is ignored by the browser
          // This makes behavior of this function consistent across browsers
          // WebKit always returns auto if the element is positioned
          position = elem.css("position");
          if (position === "absolute" || position === "relative" || position === "fixed") {
            // IE returns 0 when zIndex is not specified
            // other browsers return a string
            // we ignore the case of nested elements with an explicit value of 0
            // <div style="z-index: -10;"><div style="z-index: 0;"></div></div>
            value = parseInt(elem.css("zIndex"), 10);
            if (!isNaN(value) && value !== 0) {
              return value;
            }
          }
          elem = elem.parent();
        }
      }

      return 0;
    }
})(jQuery);
share|improve this answer

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