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Working jQuery, what I'd like to perform is something similar to the following:

$('sometag').children().wrap('<div></div>');

With the resulting DOM manipulation wrapping all children in one div, not each child individually.

Starting example HTML:

<div>
   <h3>Heading</h3>
   <p>Paragraph</p>
</div>

What this line of code does:

<div>
    <div>
        <h3>Heading</h3>
    </div>
    <div>
        <p>Paragraph</p>
    </div>
</div>

What I want:

<div>
    <div>
        <h3>Heading</h3>
        <p>Paragraph</p>
    </div>
</div>

What is the proper syntax to achieve the end result I'm looking for?

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Hey @T.Stone what does your HTML look like before you run the code? –  Doug Neiner Nov 19 '09 at 2:59

3 Answers 3

up vote 19 down vote accepted
$('sometag').children().wrapAll("<div></div>");
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This would not produce the output he wants. It would simply wrap the p tags and leave the h3 element outside the div –  Doug Neiner Nov 19 '09 at 3:04
    
Looks like you fixed it :) –  Doug Neiner Nov 19 '09 at 3:05
    
'sometag' wouldn't work either with his sample code. I was giving a hypothetical use of wrap all. I figured the application was quite obvious. –  Blake Taylor Nov 19 '09 at 3:09
    
This only works when 'sometag' matches a single element. If not, It will move all children elements (i.e. all elements inside all <sometag> s) into the new <div>. wrapInner was written specifically to handle the OPs use-case, and works when matching multiple [parent] elements. –  Crescent Fresh Nov 20 '09 at 14:41
    
In THIS instance, what is the difference from $('sometag').wrap('<div></div>'); and $('sometag').children().wrapAll('<div></div>'); ?? –  Mark Schultheiss Mar 1 '10 at 12:41
$('tag').wrapInner('<div>');
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$('sometag').html('<div>' + $('sometag').html() + '</div>');
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