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We have:

<ul>
<li>...</li>
<li>...</li>
<li>...</li>
<li>...</li>
<li>...</li>
<li>...</li>
<li>...</li>
<li>...</li>
<li>...</li>
</ul>

How do I get second half of this list and move it before first <li>?

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5 Answers 5

up vote 8 down vote accepted
var ul = $('ul');
var lis = ul.children('li');

ul.prepend(lis.slice(Math.round(lis.length / 2)))

Example: http://jsfiddle.net/8SNGn/

This first caches the <ul> element and its <li> children using the children()[docs] method.

Then it uses the prepend()[docs] method to add the last li elements to the beginning of the ul.

You get the last ones by using the slice()[docs] method and passing it the total number of li elements divided by 2 (rounded up using Math.round() for when you have odd number).


EDIT:

I just noticed that your question title has the word "clone" in it.

The rest of the question doesn't seem to suggest it, but if you really wanted to clone the last half, you'd use the clone()[docs] method.

var ul = $('ul');
var lis = ul.find('li');

ul.prepend(lis.slice(Math.round(lis.length / 2)).clone())

Example: http://jsfiddle.net/8SNGn/1/

And if you want the rounding to go the other direction, you'd use Math.floor() instead of Math.round.

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very very nice answer, thanks patrick! –  James Jun 28 '11 at 1:09
    
@Messi: You're welcome. :o) –  user113716 Jun 28 '11 at 1:10
var items = $("ul li");
items.filter(function(index) {
    return index > items.length / 2;
}).prependTo($("ul")[0]);

Should work.

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var len = $('li').length - 1;

for(var i = 0; i < len/2; i++){
    var $li = $('li').eq(len);
    $('ul').prepend($li);

}

DEMO: http://jsfiddle.net/NiceGuy4263/Ws5ZK/

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jquery prepend http://api.jquery.com/prepend/

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Look at jQuery's .slice() filter:

http://api.jquery.com/slice

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