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This is not to be confused with "How to tell if a DOM element is visible?"

I want to determine if a given DOM element is visible on the page. E.g. if the element is a child of a parent which has display:none; set, then it won't be visible.

(This has nothing to do with whether the element is in the viewport or not)

I could iterate through each parent of the element, checking the display style, but I'd like to know if there is a more direct way?

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5 Answers 5

up vote 13 down vote accepted

From a quick test in Firefox, it looks like the size and position properties (clientWidth, offsetTop etc.) all return 0 when an element is hidden by a parent being display:none.

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2  
Good idea. It's even specified: w3.org/TR/cssom-view/#offset-attributes –  porneL Dec 3 '08 at 0:15

Using Prototype:

if($('someDiv').visible) {...}
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2  
It would have been more helpful if you had provided the source code for this function of Prototype, to show how it could actually be done. –  Chris MacDonald Dec 4 '08 at 15:47
3  
I only use the library. I didn't write it. –  Diodeus Dec 4 '08 at 17:48

As I'm using MochiKit, what I came up with based on Ant P's answer was:

getElementPosition('mydiv').y != 0

I can also check whether it's in the viewport (vertically) by:

y = getElementPosition('mydiv').y
(y < getViewportPosition().y + getViewportDimensions().h &&
    getViewportPosition().y < y)

Incidentally this also works in IE6.

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+1 for MochiKit - I loves MK. –  Jason Bunting Dec 5 '08 at 17:36

Relying on the position being 0 is brittle. You're better off writing a helper function to iterate through the parents to check their display style directly.

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Care to elaborate? If it's in the standard, supported by the standards-compliant crowd (FF, WebKit, …), and supported by the non-compliant gorilla, what makes it brittle? –  Ben Blank Jan 13 '09 at 19:20
    
@BenBlank: what if a shown element actually has position 0? –  m_gol May 27 '13 at 13:28

Here's the iterative solution -

var elementShown = function(e){
    if (e == document) 
      return true;

    if ($(e).css('display') == 'none') //or whatever your css function is
      return false;

    return elementShown(e.parentNode);
}
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