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I'm using jQuery to create a typical collection of list items like so:

HTML

<ul id="slides">
  <li>Slide 1</li>
  <li>Slide 2</li>
  <li>Slide 3</li>
  <li>Slide 4</li>
</ul>

jQuery

var $slides = $('#slides li');

What I'd like to do is then identify e.g. the currently-visible slide within the collection, then transition from that slide into the next.

I thought the following would Just Work™ but instead of an object reference, the $current variable holds a string literal of the target slide's markup:

jQuery

var $current = $slides[0];
    console.log($current); // returns "<li>Slide 1</li>" and not [object]

I don't understand what I'm doing wrong here.

I expected the above to give me a unique reference to the object I selected in the collection, but I don't understand why jQuery isn't working like that here and decides to give me a string instead.

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3 Answers

up vote 1 down vote accepted

Try

$(function()
{
    var $slides = $('#slides li');
    var $current = $($slides[0]);
    console.log($current); 
});

Difference between $('#slides li') and $('#slides') is first select the all the li object while second one just select entire ul#slides as object so you can not access first li as $slides[0] because it will always return ul object.

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Thanks, Dipesh. I did mean $('#slides li') but made a mistake whilst trying to make the code succinct here. –  markedup Feb 28 '13 at 11:51
    
@markedup so i think you have your answer now. –  Dipesh Parmar Feb 28 '13 at 11:56
    
Yes, thanks very much--this is exactly what I was after! –  markedup Feb 28 '13 at 11:58
    
@markedup always welcome love to help you.. –  Dipesh Parmar Feb 28 '13 at 12:00
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Try doing it like this:

 var $slides = $('#slides li');
 var $current = $slides[0];

you can than manipulate the current slide like this for example:

 $($current).fadeOut();

edit: just saw Dipesh Parmar answer, you can do that aswell ;)

just dont forget that what you where working with was string's, if you need jquery to use that string as it was an object put it inside $()

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It's not a string, though, it's an element. –  Anthony Grist Feb 28 '13 at 11:52
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It is a reference to the element. However, what you're seeing in the console is a browser-dependent string representation of that element - in this case its outerHTML.

Take a look at the console output of this jsFiddle demo.

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I made a mistake in trying to extract the specific problem from my existing code, in that the selector should indeed have been $('#slides li'). I've updated the OP now. –  markedup Feb 28 '13 at 11:49
    
@markedup That doesn't really change much, though; what you're seeing in the console is still the browser's representation of the element - your variable does reference the element directly, it's not a string. –  Anthony Grist Feb 28 '13 at 11:51
    
But if I try to do something like $current.fadeOut() I get an 'unsupported method' error. Dipesh's approach works as I expected. –  markedup Feb 28 '13 at 11:58
1  
@markedup Because .fadeOut() is a jQuery method (called on a jQuery object), and doing $slides[0] returns the actual DOM element, not a jQuery object. If you want that particular <li> element wrapped in a jQuery object, use .eq(). Dipesh's answer works because he's re-wrapping it as a jQuery object, but that's unnecessary if you use the correct jQuery functions to do what you want to do. –  Anthony Grist Feb 28 '13 at 12:00
    
Ah, gotcha. Haven't used .eq() before, but I can see how that works now as well. Thanks very much. –  markedup Feb 28 '13 at 15:07
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