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I have some code like this:

<div id="gallery">
    <a href="#">link</a>
    <a href="#">link</a>
    <a href="#">link</a>
</div>

and I want to rewrite it using jQuery to produce:

<div id="gallery">
    <ul id="carousel">
        <li><a href="#">link</a></li>
        <li><a href="#">link</a></li>
        <li><a href="#">link</a></li>
    </ul>
</div>

What's the best way?

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4 Answers 4

up vote 4 down vote accepted

Example: http://jsfiddle.net/pB98T/

$('#gallery > a').wrapAll('<ul id="carousel">').wrap('<li>');

This wraps all the <a> elements with the <ul id="carousel"> using .wrapAll(), then wraps them individually with <li> using .wrap().

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I wonder if there is a performance difference between this method and Nicks? –  Aaron Ferguson Oct 7 '10 at 17:46
    
@Kamikaze - I'd say this is a little more efficient because it doesn't require the .parent() traversal. The amount of wrapping taking place in both is identical. –  user113716 Oct 7 '10 at 17:59
    
It depends, it'll be very, very close, but as always, test! jsperf.com/gallery-wrap-test –  Nick Craver Oct 7 '10 at 18:43
    
@Nick - Surprising that the extra traversal is faster in some browsers. I tried to run tests in IE, but it gives me the slow running script warning. Any idea how to disable that? –  user113716 Oct 7 '10 at 19:10

This should do it:

$("#gallery a").wrap("<li />").parent().wrapAll("<ul id='carousel' />")​

You can test it here (added some CSS to see the result clearer). Remember to call .parent() after .wrap(), since .wrap() returns the original element (the <a>, not the new <li> parent).

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$('#gallery a').each(function() {
    $(this).wrap('<li  class="liclass"/>');
});

$('.liclass').wrapAll('<ul class="ulclass"/>');

Refer : .wrap , .wrapAll

you can test its functionality http://jsbin.com/iluxe4

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one line:

$('#gallery').wrapInner('<ul id="carousel"/>').find('a').wrap('<li/>');

or two lines:

$('#gallery a').wrap('<li/>');
$('#gallery').wrapInner('<ul id="carousel"/>');
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