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if( ('.container').closest('.item7') = true){

     hide THE container of item7.

     //----
     //need help with this line
     //something like $closest('.item7').('.container').hide();
     //----

}

Summary:

if item7 class exists in container hide THE container.

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4 Answers 4

up vote 0 down vote accepted
$('.item7').each(function() {
    $(this).parents('.container').hide();
});

Here's a Fiddle, showing it working > http://jsfiddle.net/ULZGH/

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very wistful..... –  Royi Namir Nov 8 '11 at 13:39
    
@Henrico its isnt the right answer.... it is very wasteful... all the item7 will be scanned in the document event if theres no container... –  Royi Namir Nov 8 '11 at 13:53

simple :

   $('.container').each (function () {

if ($(this).has('.item7').length>0 ){

      $(this).hide();

    }

})
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The statement if( $('.container').has('.item7') is always true (because it returns a jQuery object which always evalautes to true) so this just hides all .container objects. –  jfriend00 Nov 8 '11 at 13:48
    
@jfriend00 fixed. thanks. –  Royi Namir Nov 8 '11 at 13:50
    
This will hide all with class container if one contain the class item7? –  Marco Johannesen Nov 8 '11 at 13:55
    
@MarcoJohannesen fixed v2 –  Royi Namir Nov 8 '11 at 13:58

It's not entirely clear what you're trying to do, but after reading your question multiple times, my guess is that you want logic like this. If the .container object has an object in it anywhere with the .item7 class, then hide the .container parent object. If that's what you're really trying to do, you can do it like this:

$('.container .item7').closest('.container').hide();

This will find any .item7 objects that are in a .container and then hide the closest .container parent object of each match.

If there's a .container that does not contain a .item7, it will not be touched. If there's a .item7 that is not in a .container, it will not be touched.

If there could be multiple levels of containers and you wanted to hide them all, you could do it like this:

$('.container .item7').parents('.container').hide();

This finds all .item7 object and then hides any .container parents.

My preferred way of doing it is actually this. This would be more efficient if there were only a few .container objects, but lots of .item7 objects:

$('.container').has('item7').hide();

This says to find each .container object. Then in that resulting jQuery object (of all .container objects), remove any .container object that don't have a descendant .item7 and then hide the reminaing .container objects.

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If you have more containers, you should loop them :)

$('.container').each( function() {
  if( $(this).find('.item7').length ){
        $(this).hide();
  }
});
share|improve this answer
    
you dont have to do each in this case –  Royi Namir Nov 8 '11 at 13:40
    
This looks for .item7 objects which are parents of the .container object. I don't think that's what the question is asking for. Also, the statement if( $(this).closest('.item7') ) is always true because it evaluates to a jQuery object. –  jfriend00 Nov 8 '11 at 13:50
    
If you go up and down the DOM its much better to do an each, in my opinion, so you either don't have to make more DOM calls, or overuse parent/children/find :) –  Marco Johannesen Nov 8 '11 at 13:50
    
@jfriend00 sorry didn't consider the code he provided. You are indeed right.. updated.. :) –  Marco Johannesen Nov 8 '11 at 13:54

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