jquery .is(“:visible”) not working in Chrome

Question

if ($("#makespan").is(":visible") == true) { var make = $("#make").val(); }
else { var make = $("#othermake").val(); }

Make:<span id=makespan><select id=make></select><span id=othermakebutton class=txtbutton>Other?</span></span><span id=othermakespan style="display: none;"><input type=text name=othermake id=othermake>&nbsp;-&nbsp;<span id=othermakecancel class=txtbutton>Cancel</span></span>

The above code runs smooth in Firefox but doesn't seem to work in Chrome. In Chrome it shows .is(":visible") = false even when it is true.

I am using following Jquery Version: jquery-1.4.3.min.js

jsFiddle Link: http://jsfiddle.net/WJU2r/4/

Answer 1

Just tried this in newest Chrome with jQuery 1.4.4, and seems to works just fine for me.

if ( $("#makespan").is(":visible") ) {
    var make = $("#make").val();
} else { 
    var make = $("#othermake").val(); 
}

If you are not able to make it work, try repeating the error in jsFiddle and posting it here so we can see the actual problem.

EDIT:

That's some strange looking HTML ? Did'nt have time to rewrite it, but cleaned it up a little and added a display style (i.e. setting the elements display to "block" etc), and this works for me: http://jsfiddle.net/WJU2r/4/

Official API reference

It seems jQuery's .is(':visible') does not work for some inline elements in Chrome, and the solution is to add a display style, like "block" to make it work.

Answer 2

I don't know why your code doesn't work on chrome, but I suggest you use some workarounds :

$el.is(':visible') === $el.is(':not(:hidden)');  

If you are certain that jquery gives you some bad results in chrome, you can just rely on the css rule checking :

if($el.css('display') !== 'none')
   {
       // i'm visible
   }

Plus, you might want to use the latest jquery version because it might have some bugs fixed.

Answer 3

If you read the jquery docs, there are numerous reasons for something to not be considered visible/hidden:

They have a CSS display value of none.

They are form elements with type="hidden".

Their width and height are explicitly set to 0.

An ancestor element is hidden, so the element is not shown on the page.

http://api.jquery.com/visible-selector/

Here's a small jsfiddle example with one visible and one hidden element:

http://jsfiddle.net/tNjLb/

Answer 4

I had this very annoying problem as well. I assume it has something to do with a quirk in our HTML because other places on the same page work just fine.

The only way I was able to solve this problem was to do:

if($(#'element_id').css('display') == 'none'){
   // Take element is hidden action
}else{
   // Take element is visible action
}

Answer 5

There is a wired case where if the element is set to display: inline the jQuery check for visibility fails.

Example:

CSS

#myspan {display: inline;}

jQuery

$('#myspan').show(); // Our element is `inline` instead of `block`
$('#myspan').is(":visible"); // This is false

To fix it you can hide the element in jQuery and than show/hide or toggle() should work fine.

$('#myspan').hide()
$('#otherElement').on('click', function() {
    $('#myspan').toggle();
});

Answer 6

Generally i live this situation when parent of my object is hidden. for example when the html is like this:

    <div class="div-parent" style="display:none">
        <div class="div-child" style="display:block">
        </div>
    </div>

if you ask if child is visible like:

    $(".div-child").is(":visible");

it will return false because its parent is not visible so that div wont be visible, also.