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I was given these set of practice instructions:

Write a selector which finds the UL within the tasks div and store this into a variable named task_list.

    var task_list = $('div#tasks ul');

then the next one got me confused:

Write a second selector line which finds all children within task_list that have the class name completed. Store this into a variable named all_completed. Use the detach() method. Call detach() on your all_completed variable.

     var all_completed = $(task_list).children('li.completed').detach();

or

   $(all_completed).detach(task_list);

Can someone please help me? Is this asking me to create a variable and use it as a selector in jQuery? If so, how do I do this??

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I think your first version should work. –  Barmar Jan 24 '13 at 2:43
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1 Answer

up vote 4 down vote accepted

task_list is already a jquery object, you don't need to re-jquery (is that a term?) it.

var all_completed = task_list.children('li.completed').detach();
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Well it is now! –  Austin Brunkhorst Jan 24 '13 at 2:39
    
I think jQuery determines pretty quickly that its argument is already a jQuery object, and just returns it. So there's little harm in re-jquerying. –  Barmar Jan 24 '13 at 2:40
    
I'm not understanding how task_list is already jQuery-ied.... Is it because I assigned it a jQuery statement? I thought making a jQuery variable was done $variable = ('variablenowjQuery');?? –  KGKG Jan 24 '13 at 2:43
    
When you $(".anything") you are creating a jquery object using the selector, in this case .anything –  John Koerner Jan 24 '13 at 2:44
    
Thanks a lot John. :) –  KGKG Jan 24 '13 at 3:05
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