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I have a bunch of DOM like

<div>
    <div class="stuff"/>
    <div class="stuff"/>
    <div class="stuff"/>
</div>

and I want to replace it with a new set of stuff

<div>
    <div class="stuff"/>
    <p class="stuff"/>
    <ul class="stuff"/>
    <a class="stuff"/>
</div>

Which will be fetched via Ajax. My question is: what is the best way to do this?

$.replaceWith doesn't quite do what I want, because I then end up with multiple copies of the new stuff.

I can guarantee that all the stuff will be in one contiguous block, and so presumably I could put in some placeholder after the last element (or before the first element) of the old stuff, remove the old stuff, and replace the placeholder with the new stuff.

However, this seems rather roundabout and inelegant. Is there any clever way of, removing all the old stuff and putting in a single copy of the new stuff, all at one go?

EDIT: I would also like to do this without using any container divs. Using container divs would work in the above case, but would fail in some cases, like when the stuff is inside a <table>:

<table>
    <head/>
    <body>
        <tr/>
        <tr class="stuff"/>
        <tr class="stuff"/>
        <tr class="stuff"/>
        <tr/>
    </body>
</table>

If i want to replace the rows labelled stuff with another set of rows, possibly more, possibly fewer, there is no way I can nicely put them in a container thingy without breaking the HTML, since the <body> can only contain <tr>s (IIRC).

share|improve this question
    
You HTML markup seems wrong! – thecodeparadox May 23 '12 at 15:44
    
What have you tried that isn't elegant? There are many ways to do this, which one did you try? – Joseph the Dreamer May 23 '12 at 15:45
    
@thecodeparadox fixed the markup. Joseph: the whole insert-placeholder, remove old stuff, replace-placeholder thing – Li Haoyi May 23 '12 at 15:47
    
If the "stuff" is in a TABLE, then the TD or the TABLE is the container. – Diodeus May 23 '12 at 15:54
    
@Diodeus: sorry, the first example was bad, I changed it to expose the problem. Replacing some subset of the rows of a table with another set of rows, possibly a different number of them, is something I'm actually doing, so it's not just me being stubborn or picky. – Li Haoyi May 23 '12 at 15:57
up vote 8 down vote accepted
$('#outerdiv').empty().append(newContent);

Unlike .html(), this will work regardless of whether newContent is an HTML string, or an existing DOM structure.

If there are multiple elements to be replaced but where you need to retain their siblings, you can do this:

$('.stuff').first().before(newContent).end().remove();

i.e. take the first .stuff element, add the new content before it, and then remove all the .stuff elements.

share|improve this answer
    
This seems to work, an I think it passes the "elegance" test. Thanks =) – Li Haoyi May 23 '12 at 16:48

Yes: $('#tagetDiv').html(newContent)

share|improve this answer
    
I should have put it down that I do not want to require any container div to do this. Having a container div/span works in most cases, but occasionally (annoyingly!) fails at the edges (container divs messing up CSS formatting, replacing the body/head/rows/cells of a table, etc). – Li Haoyi May 23 '12 at 15:50
1  
@LiHaoyi if you don't have a container how are you supposed to know which divs to replace? – Alnitak May 23 '12 at 15:51
    
@Alnitak: by their class stuff, which is shared by all the divs I want to yank out and replace – Li Haoyi May 23 '12 at 15:52
    
Then that would be: $('.stuff').parent() – Diodeus May 23 '12 at 15:58
1  
@Diodeus except that .stuff may have siblings which should be left untouched... – Alnitak May 23 '12 at 15:59

One way to do it would be with wrapAll:

$('.stuff').wrapAll('<div/>').parent().replaceWith('<div class="stuff"/>');

I'm not sure if that passes the "elegant" test, but it does work regardless of whether there is any other content in the containing element.

With that said, though, this seems to be a very complicated solution to a simple problem. The simple solution would be to wrap your elements in a containing element; this shouldn't be a problem if, as you say, you can guarantee that they will always be together.

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