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What is the quickest way to determine if at least one child div in a div container is visible?

I've been using this:

if ($this.children('div:visible').length) {...

but it's slow because it examines all the children (of which there are a lot).

I'm guessing the fastest method will stop searching as soon as it's found the first visible element, but whatever is fastest wins :)

BTW:

My actual situation is a major container which contains about 100 minor containers, each of which contain up to 100 elements. I want to determine which minor containers have at least one visible element. The elements at the bottom are being hidden and shown by various classes.

Thanks.

share|improve this question
up vote 5 down vote accepted

JSPerf of all methods on this page

Edited: The reason that my original method is faster is that it used .find('>' + selector), where .children() has to be used (which loops through all children, and checks whether the element matches a selector).

Since div is a natively supported selector, and the test case does not contain deeply nested elements, my solution turned out to be fast. But after normalizing it, it looks almost equal to qwertymks solution. The JSPerf of these two solutions will show that his solution is slightly faster, because it has one less function call.

The solutions on this page are generic: The code below can be optimized for specific cases (such as the fact that the selector is just a tag): http://jsfiddle.net/kFZJs/


To speed up the progress, split up the selector, because :visible is not a native CSS selector.

The preferred solution should use as few jQuery as possible, because the desired solution has to be performant. To do so, examine the logic of :visible.

The original function contains jQuery.support.reliableHiddenOffsets. This can safely be stripped in favour of performance when your childs are not table cells (which is only used in IE8-).

Now, write a jQuery plugin (it's not expensive):

 (function($) {
     $.fn.hasAtLeastOneVisibleChild = function(selector) {
         var $col = this.children(selector), i, elem;
         for (i=0; i<$col.length; i++) {
             var elem = $col[i];
             if (elem.offsetWidth !== 0 || elem.offsetHeight !== 0) {
                 return true;
             }
         }
         return false;
     };
 })(jQuery);
 // Usage:
 $this.hasAtLeastOneVisibleChild('div'); // True or false
share|improve this answer
    
$elem is misleading, it should be elem but still gets a +1 – qwertymk Jul 10 '12 at 12:21
    
Thanks for this. I'm trying to implement your solution, but I've hit a snag. Here's the code to test the actual problem. $('#clf').children('ul').each(function (i) {var $that = $(this);$that.children().each(function (){if ($(this).hasAtLeastOneVisibleChild('li')) {console.log("Found one for " + $that.attr('id'));} else {console.log("Found none for " + $that.attr('id'));}});}); I'm getting multiple console.logs for each ul, though (13, 17...). Can you see why? – Nick Jul 10 '12 at 12:25
    
@Nick Once you find a match, you have to break out of the loop using return false;. See also docs: api.jquery.com/each. – Rob W Jul 10 '12 at 12:32
    
@qwertymk Thanks for the spot, I've edited that part, as well as included the JSPerf test. – Rob W Jul 10 '12 at 12:32
1  
@Nick That's worth a new question. The difference is caused by Prototype chain vs scope chain lookups. The latter is faster than the former: jsperf.com/scope-chain-vs-prototype-chain-lookup. Do not put function declarations in a loop though: Creating functions is not free. – Rob W Jul 11 '12 at 11:09

One way would be to iterate through children by using each(). But this will be as slow as your code if the visible element is the last one :)

Another option would be to check the height of the container.

if($('#container').height() > 0) { ... }

If the children takes space (height), then the container will have height > 0 as well.

share|improve this answer
    
What if the children are absolutely positioned? Then the check would not be reliable. – Rob W Jul 10 '12 at 12:10
    
That's right. It will not work in every case, but might work in his case :) And if works in his case it will be VERY fast – algiecas Jul 10 '12 at 12:13
1  
I +1ed because it's indeed fast (reliable if the exact conditions are known beforehand and satisfied). I did not include your code in my test case though, because it's not comparable. – Rob W Jul 10 '12 at 12:30
    
It almost works in my case, and it is very fast! Thanks :) – Nick Jul 11 '12 at 1:18

Do it youself:

var $container = $('#container'), $children = $container.children(), found = false;

for (var i = 0; i < $container.length; i++) {
    var elem = $children[i];
    if (!( width === 0 && height === 0 ) || (!jQuery.support.reliableHiddenOffsets && ((elem.style && elem.style.display) || jQuery.css( elem, "display" )) === "none")){
        found = true;
        break;
    }
}

source

share|improve this answer
    
return inside a loop? Did you mean break? – Rob W Jul 10 '12 at 12:00
    
@RobW yes I did, thanks – qwertymk Jul 10 '12 at 12:06
    
Your code is not limited to divs. I'm creating a JSPerf to test all methods. I'm replacing .children() with .children('div'), to make the comparison equal. EDIT: width and height are not defined, throws an error in the test case. – Rob W Jul 10 '12 at 12:13
    
Thanks for this. I'm working with Rob's effort but this was valiant too :) – Nick Jul 10 '12 at 13:04

Try this, Use each for iterating and returning false on match could decrease the iteration could.

isAtleastVisible = false;
$this.children('div').each(function (){
    if($(this).is(':visible') == true)
    {
       isAtleastVisible = true;
       return false;  //This will break each loop at the first visible div
    }
});

if(isAtleastVisible)
   alert("atleast one is visible");
else
   alert("None is visible");

This will increase the performance and it depends on the the first occurrence of visible div. If it is first one out of hundred only one iteration will be required and if it is hundredth out of hundred then hundred iteration will be required and there will not be any performance increase.

As @Rob W explained in answer about the working of is('visible') which shows the function checks the visibility by these parameters.

  1. Width and height is zero
  2. style.display is none

You can use one of these to increase performance suppose the elements are hidden by setting display = none. This condition could replace jQuery method .is(':visible') == true with javascript statement .style.display == 'block'

    isAtleastVisible = false;
    $this.children('div').each(function (){
        if(this.style.display == 'block')
        {
           isAtleastVisible = true;
           return false;  //This will break each loop at the first visible div
        }
    });
share|improve this answer
    
This is the only incorrect solution on this page. .is('visible') checks whether the selected item is a <visible> element. The correct implementation of .is() is posted under this answer (although it contains an obsolete double jQuery-wrapping: $($(...))). – Rob W Jul 10 '12 at 12:28
    
Thanks @Rob W, I have tried to improve my answer please have a look. – Adil Jul 11 '12 at 4:39
    
The suggestion is not necessary going to work: style.display may be "" (and still visible) or the parent might be hidden. The suggestion is very specific: It does not account for display:table-cell;, for instance. – Rob W Jul 11 '12 at 8:19
var isVisible;
$(this.children('div')).each(function() {
    if ($(this).is(":visible")) {
        isVisible = true;
        return false;
    }
});
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