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I want the next 'a' element of current 'a'. When current is 2,3,4 I catch 3,4,5 with a $('a.current').nextAll('a') but when current is 5 i can't catch the next 'a'. If someones has the solution...

<div id="slides">
    <ul>
     <li>
        <a href="" class='current'>2</a>
        <a href="" >3</a>
        <a href="" >4</a>
        <a href="" >5</a>
     </li>
      <li>
        <a href="" >6</a>
        <a href="" >7</a>
        <a href="" >8</a>
        <a href="" >9</a>
     </li>
    </ul>
</div>
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You're using .nextAll, so you want all the a elements that come after the .current one, right? –  cliffs of insanity May 10 '12 at 14:16
    
yes, i just want the first one –  zedouard May 10 '12 at 14:24
    
Thanks for all this reply, i don't know exactly which is computationaly the best ones –  zedouard May 10 '12 at 14:25

5 Answers 5

up vote 1 down vote accepted
var curr = $('a.current'),            // get the current
    a = curr.closest('ul').find('a'), // get all the "a" elements
    idx = a.index(curr),              // get the index of the current among all
    nextall = a.slice(idx + 1);       // slice those greater than the current

live demo: http://jsfiddle.net/eaXdc/


If you only wanted the next one, change this:

a.slice(idx + 1);

to this:

a.eq(idx + 1);
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Thanks a lot ... –  zedouard May 10 '12 at 14:24
    
@zedouard: You're welcome. –  cliffs of insanity May 10 '12 at 14:26

Try this:

var $curr = $('a.current'),
    $next = $curr.next('a');

$next.length || ($next = $curr.parent().next().find('a:first'));

Also, you're currently using nextAll, which will return ALL of the following a elements, when it sounds like you want just the first following a.

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Because .nextAll() returns only the siblings of matched elements

6,7,8,9 are not sibling of 5 as they are under different parent(li)

You you need those you have to traverse the DOM using jQuery to fetch those a elements.

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var next = $(this).index() < $(this).parent().children('a').length-1 ? 
           $(this).next() : 
           $(this).parent().next('li').children('a:first');

FIDDLE

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Very clever; I like it –  veeTrain May 10 '12 at 14:30

If you are able to know that you are at the end (no results), then you should be able to jump out into the next li and grab all the subsequent anchor elements.

Here's how I approached it. I gave the fifth anchor element an id to indicate it was my current. When your current target has no .nextAll() children (a .size() of 0), you could execute the following to find the subsequent anchor elements.

$("#5").parent().next("li").find("a").css("color","grey");​

The color change is to assist in indicating which elements were found. Looks like you have lots of options to choose between!

Update: If you just want the first one, you could capture it with the :first designation like this update.

$("#5").parent().next("li").find("a:first")
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