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Ok I have this code

 $("#search-results-all").children(".search-result-item").length;

Now, all I want there is to select only the .search-result-item elements that is only visible by using css attribute visibility:visible. Now how can i make this possible?

P.S. Sorry I don't know what to type in Google so I can start searching.

UPDATE...

well it worked by doing something like this

$("#search-results-all").children(".search-result-item:visible").length;

thank you for the answers

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3 Answers 3

up vote 1 down vote accepted

:visible Selector - Selects all elements that are visible.

$("#search-results-all").children(".search-result-item:visible").length; 

or

$("#search-results-all").children(".search-result-item")).is(':visible'); 
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I almost got this in the internet before i saw your answer.. thank you... this is correct and more clean –  Mahan Jun 5 '12 at 6:19
    
is returns a boolean, so I don't think you can use .length to it api.jquery.com/is –  SiGanteng Jun 5 '12 at 6:23
1  
"Elements with visibility: hidden or opacity: 0 are considered visible, since they still consume space in the layout." - Basically, this completely fails to handle the situation the OP is asking about... –  Niet the Dark Absol Jun 5 '12 at 6:26
    
@Kolink - i hop you are interested in reading first comment... –  Pranay Rana Jun 5 '12 at 6:27

The following?

$("#search-results-all > .search-result-item").filter(function() {
   return $(this).css('visibility') == 'visible';
}).length;

http://api.jquery.com/filter/

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ok im trying this one... –  Mahan Jun 5 '12 at 6:17

Try this one:

$("#search-results-all .search-result-item").filter(function() {
  return $(this).css('visibility') == 'visible';
});
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