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I'm looking the way to find and select the 5 closest "li" (two, three, four, five and six) with class "active" Any idea?

<li class="one">Hello</li>
<li class="two">Hello</li>
<li class="three">Hello</li>
<li class="four active">Hello</li>
<li class="five">Hello</li>
<li class="six">Hello</li>
<li class="seven">Hello</li>
<li class="eight">Hello</li>

Thanks :)

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Do you really want the 5 closest items if one is active? Or do you just want one,two and three? –  Ties Oct 11 '12 at 0:52

5 Answers 5

You can use index and slice methods:

var $li = $('li');
var ind = $li.filter('.active').index(); 
if ( ind-2 < 0 ) ind = 0;

$li.slice(ind-2, ind+3);

http://jsfiddle.net/dc8Xu/

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2  
you should probably check for negative indexes for that slice method... slice(-1, 3) isn't gonna work. oh... and it would be ind+2, right? –  mayhewr Oct 11 '12 at 0:09
    
@mayhewr Yes, I was updating the code, with ind+2 it will select four elements. –  undefined Oct 11 '12 at 0:16
    
if ind is 4, 4-2 to 4+2 is 2 to 6... 2, 3, 4, 5, 6 (5 elements). Also, if ind is 1 you should probably go up to ind+4 so that you get all 5. –  mayhewr Oct 11 '12 at 0:20
    
@mayhewr jsfiddle.net/NWJ6h, OP wants to select 2 elements after and 2 elements before the active element, not necessary 5 elements. –  undefined Oct 11 '12 at 0:22
    
did he... tell you that? he told me "5 closest" –  mayhewr Oct 11 '12 at 0:23

Try this:

var $a = ​$( ".active" ),
    $all = $a.​​​​​​siblings().andSelf(),
    i = $all.index( $a ),
    i0 = i < 2 ? 0 
    : i + 5 > $all.length ? $all.length - 5 : i - 2;
    $five = $all.slice( i0, i0 + 5 );

$five is your collection.

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1  
Yep... this works... Not your standard syntax and the readability is questionable... but...works never-the-less –  Lix Oct 11 '12 at 0:16

Not the prettiest code sample I've ever given... but does the trick :)

var activeItem = $('li.active');

activeItem.prev('li').addClass('active').prev('li').addClass('active');
activeItem.next('li').addClass('active').next('li').addClass('active');

I'm utilizing a feature of jQuery here called chaining. This means that the functions I've used actually return the object itself that the action was performed on. So the addClass() function actually returns the item we added the class to. This allows us to "chain" functions together.

See it in action here

Reference -

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Works great, thank you! –  MSTRKRFT Oct 11 '12 at 2:35
    
@mst - You are very welcome! Happy to help! I see you are relatively new to Stack Overflow so I'll give you a link to read over - meta.stackexchange.com/questions/16721/…. Accepting or voting on an answer is the best way to say thanks on Stack Overflow. It also helps the site to order answers by helpfulness... –  Lix Oct 11 '12 at 7:06

If you have to have 5 results:

var length = $('li').length;
var start = $('.active').index() - 2;
start = start + 5 > length ? length - 6 : start;
start = start < 0 ? 0 : start;
var result = $('li').slice(start, start + 5);

should do it.

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A single line answer

$('li.active').prevAll().andSelf().slice(-3).add('li.active + *').add('li.active + * + *').css('color','red');

Explanation: First get all the elements before the active item with prevAll then add the active item itself, and only return the last 3 items with the slice function. Add the items after the li.active with the add function containing the special + selector

demo

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