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I have a variable called "object". How can I check with JavaScript if it is visible?

I tried !object.getAttribute("dislay", "none")... but that doesn't work.

Could somebody help me please?

Thank you!

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6 Answers 6

If you use jQuery, the following will return true if the object is visible:

$(object).is(':visible');

If not, you can try these:

if (object.style['display'] != 'none')

But this will work only if display:none has been set explicitly on this object.

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+1: As much as I'm normally against throwing jQuery at every JavaScript problem under the sun, especially for rendering issues it's IMO simply not worth reinventing the wheel without making it at least significantly better. –  Horst Gutmann Jan 25 '11 at 15:52
if (object.style.visibility <> 'visible' || object.style.display == 'none') 

If it doesn't work, try to use

 if (object.currentStyle.visibility <> 'visible' || object.currentStyle.display == 'none')
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To get value of a display style using javascript you can use:

IE:

document.getElementById('mydiv').currentStyle.display
or
object.currentStyle.display

Others:

document.getElementById('mydiv').getComputedStyle('display')
or
object.getComputedStyle('display')
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function isvisible(obj) {
  return obj.offsetWidth > 0 && obj.offsetHeight > 0;
}

as it's implemented in JQuery.

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Doesn't look like you're using the getAttribute method correctly. Try taking a look at this.

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Here is the working version: http://jsfiddle.net/PEA4j/

<html>
<head>
    <script src="http://ajax.aspnetcdn.com/ajax/jquery/jquery-1.4.4.min.js" type="text/javascript"></script>
    <script type="text/javascript">
        $(function () {
            alert("Is #foo1 visible: " + $("#foo1").is(":visible") + "\nIs #foo2 visible: " + $("#foo2").is(":visible"));

        });
    </script>
</head>
<body>
<div id="foo1" style="display:none">foo1 display none</div>
<div id="foo2">foo2 no display property;</div>
</body>
</html>
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