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i've to find the div within the "para" class which is visible at the moment. I tried:

 $('.para div[style="display: block;"]').attr("id")

but it doesn't work.

I also wrote an example on js fiddle --> http://jsfiddle.net/JZFgp/3/

I'm thankful for any hints and solutions.

Mario

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3 Answers 3

up vote 5 down vote accepted

That will work fine, but your markup is invalid in the fiddle. Here's a fixed version:

<table> <!-- You didn't have a `table` or `tr` element -->
    <tr>
        <td class="para">
            <div id="TripSet" class="rounded-corner-region" style="display: none;">
            <div id="DriverSet" class="rounded-corner-region" style="display: none;">
            <div id="TimeSet" class="rounded-corner-region" style="display: block;">
            <div id="Loading" class="borderless-region" style="display: none;">
        </td>
    </tr>
</table>​

Without the table and tr elements, the browser does its best to interpret your markup and ends up just removing the td (in Chrome at least), which means the .para part of your selector can no longer match.


Edit

It looks like Chrome (most likely others too but I haven't tested) is quite happy for you to omit the tr element, as long as there is a table element. It automatically adds a tbody and tr around your td elements.

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ok. just forgot to add table and tr after i pasted my code. –  Mario Oct 23 '12 at 9:55
    
My problem is this solution doesn't work within my page, although there are no missing tags. I always get a "undefined". –  Mario Oct 23 '12 at 10:14
    
@Mario - You can see in the updated fiddle that it should work. Something else in your code must be causing the issue. Do you run it in a DOM ready event handler? –  James Allardice Oct 23 '12 at 10:21
    
Yeah, i saw it and yes the the selector is in a $(document).ready(function(){ [code]} block. –  Mario Oct 23 '12 at 10:31
    
@Mario - Try and make a fiddle with more of your actual code and markup. You may well discover the issue while doing that. –  James Allardice Oct 23 '12 at 10:32

$('.para div:visible').attr("id") should work.

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Corrected. The previous version was incorrect. –  techfoobar Oct 23 '12 at 9:34
    
While that works (and in my opinion is a better solution) it doesn't really answer the question as why selecting on the style attribute did not work. But as I said, way better solution IMHO. :) –  Simon Oct 23 '12 at 9:46
    
This solution only works if the divs are empty. In my page those divs aren't empty, or didn't understand the description here api.jquery.com/visible-selector wrong. –  Mario Oct 23 '12 at 10:01

You can't use the style attribute reliably in a selector. Some browsers will leave the attribute value unchanged, while others will normalise the value.

In IE8 for example, reading the attribute value gives you "display: block" rather than "display: block;", but you can't use a selector with [style="display: block"] (or [style="display: block;"]) to find the element.

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