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I have a javascript function that tries to determine whether a div is visible and does various processes with that variable. I am successfully able to swap an elements visibility by changing it's display between none and block; but I cannot store this value...

I have tried getting the elements display attribute value and finding if the the element ID is visible but neither has worked. When I try .getAttribute it always returns null; I am not sure why because I know that id is defined and it has a display attribute.

Here is the code of the two different methods I have tried:

var myvar = $("#mydivID").is(":visible");
var myvar = document.getElementById("mydivID").getAttribute("display");

Any guidance or assistance would be greatly appreciated.

share|improve this question
4  
display is a member of the style property, not an attribute. – MaxArt Apr 27 '13 at 18:20
    
@MaxArt: I have tried using visible as well but that didn't work too. So if I cannot call display because its a CSS property and not a JavaScript Attribute how would I track that? – Devon Bernard Apr 27 '13 at 18:21
    
How do you define "visible"? Does elements outside the viewport counts too? Do visibility: hidden counts too? – Derek 朕會功夫 Apr 27 '13 at 18:23
5  
@DevonBernard How is $("#mydivID").is(":visible"); not working? – Ian Apr 27 '13 at 18:24
1  
is(':visible') works just fine, so the problem lies elsewhere, and moving on to something else that basically does the exact same thing probably won't help much. – adeneo Apr 27 '13 at 18:33
up vote 5 down vote accepted

Display is not an attribute, it's a CSS property inside the style attribute.

You may be lookig for

var myvar = document.getElementById("mydivID").style.display;

or

var myvar = $("#mydivID").css('display');
share|improve this answer
    
I tried the .style.display method you suggested and it worked great. Thank you very much! – Devon Bernard Apr 27 '13 at 18:28
    
@DevonBernard No problem. Please don't forget to mark the question answered. – SeinopSys Apr 27 '13 at 18:30
    
@DJDavid98: It should be $("#mydivID").css('display') missing # for the id. – palaѕн Apr 27 '13 at 18:31
    
@PalashMondal You're right, fixed, thanks. – SeinopSys Apr 27 '13 at 18:32
    
@DJDavid98: I wouldn't forget, you just answered so quickly it made me wait 5 minutes. Thanks again! – Devon Bernard Apr 27 '13 at 18:35

Try like this:

$(function () {
    // Handler for .ready() called.
    if ($("#mydivID").is(":visible")) {
        alert('Element is visible');
    }
});

FIDDLE

Please make sure to include the jQuery file inside the head tag, as follows

<head>
  <script src="http://code.jquery.com/jquery-1.9.1.js"></script>
</head>
share|improve this answer
3  
Why do people downvote this answer? – Derek 朕會功夫 Apr 27 '13 at 18:25
1  
@Derek朕會功夫 No idea. Looks perfect to me. – SeinopSys Apr 27 '13 at 18:26
1  
@Derek朕會功夫: Because OP clearly stated in the question that this approach was attempted, and didn't work. – squint Apr 27 '13 at 18:28
1  
@amnotiam - Although he said it didn't work, Palash's code looks totally valid too me. – Derek 朕會功夫 Apr 27 '13 at 18:29
1  
@Derek朕會功夫: No, we can perhaps assume that OP intended to define jQuery, but that doesn't mean it's actually defined. My trouble with this answer is that the question states "Here's what I've tried" $("#mydivID").is(":visible"), and the answer is "Ok, then try this" $("#mydivID").is(":visible"), which doesn't add any helpful information. – squint Apr 27 '13 at 18:35

Let's take a second to see what .is(":visible") is doing in jQuery, shall we?

Here's a link: https://github.com/jquery/jquery/blob/master/src/css.js#L529

return !jQuery.expr.filters.hidden( elem );

where

jQuery.expr.filters.hidden = function( elem ) {
    // Support: Opera <= 12.12
    // Opera reports offsetWidths and offsetHeights less than zero on some elements
    return elem.offsetWidth <= 0 && elem.offsetHeight <= 0;
};

So, it's just checking the offset width and height of the element.

That said, and also worth noting, when jQuery checks to see if an element is hidden (i.e. like when triggering a 'toggle' event), it performs a check on the display property and its existence in the dom. https://github.com/jquery/jquery/blob/master/src/css.js#L43

share|improve this answer
1  
To be honest, this is not really an answer to the question. – SeinopSys Apr 27 '13 at 18:38
    
I'm not sure what version of jQuery that is, and I don't care to look, but the latest version does more than just that - return elem.offsetWidth <= 0 && elem.offsetHeight <= 0 || (!jQuery.support.reliableHiddenOffsets && ((elem.style && elem.style.display) || jQuery.css( elem, "display" )) === "none"); – Ian Apr 27 '13 at 18:38
    
well, it provides some insight into why what he was trying wasn't working and/or the right approach, and then provides insight into what should be done which is getting the 'display' property, which you already answered... so.... – Nirvana Tikku Apr 27 '13 at 18:39
1  
@Ian that's bizarre, i'm referencing the master branch on github...? – Nirvana Tikku Apr 27 '13 at 18:40
    
@NirvanaTikku I was looking at code.jquery.com/jquery-latest.js - Which for me, is showing 1.9.1. I wouldn't be surprised if my browser cached that version (instead of 2.0) because I've had it open for awhile, which still supports old IE (and has these extra things in). Interesting – Ian Apr 27 '13 at 18:44

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