Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a varying number of elements with the same class name:

<p class="test"></p>
<p class="test"></p>

I want to replace each of these with a new set of elements with the same class name, but there could be more or fewer elements:

<p class="test"></p>

or

<p class="test"></p>
<p class="test"></p>
<p class="test"></p>

If I use $('p.test').replaceWith('new content'), it will replace each element with the content so I can't do that.

What is the best way to accomplish this?

EDIT (another explanation):

So I have these elements on the page:

<p class="test"></p>
<p class="test"></p>
<p class="test"></p>

Then, I dynamically retrieve a new set of elements (a varying number of them) that have the same class name (and maybe some other class names). For example:

<p class="test classa"></p>
<p class="test classb"></p>

In the above example, I want the first three <p> elements to be gone. And in their place should be the 2 dynamically retreived <p> elements.

Keep in mind the number of elements of either set can vary.

share|improve this question
1  
Why do they have the same class? If you want each to have different elements you should use different id's. Or append new elements on the fly with jquery. I dont quite understand your question, could you please explain a little better? Thanks :) –  Nicolás Torres Jun 6 '12 at 18:54
    
They have the same class because that's how they are styled (not something I have control over). I cannot add ids because I don't have the ability to change the markup. I could .remove() and .append() if that's my only option, but I was curious about a more elegant solution. –  fehays Jun 6 '12 at 20:43
    
Added a new answer, maybe that will help you –  Nicolás Torres Jun 6 '12 at 20:46

3 Answers 3

up vote 0 down vote accepted

Updated:

assuming you have your <p>'s into a container

<div id="container">
    <p class="test"></p>
    <p class="test"></p>
    <p class="test"></p>
    <p class="test"></p>
</div>

You could delete them, and append (or prepend) the new elements

$('p.test').remove(); //Will remove all <p>'s with class test

I assume your new set of elements are into the data array

var data= { 
  '1': '<p class="newclass">Hello</p>', 
  '2': '<p class="newclass2">Hello2</p>' 
  '3': '<p class="newclass3">Hello3</p>' 
  }; //Could have 100 rows, it wouldn't matter

$.each(data, function(i,val){   
        //Do some stuff
        $('#container').append(val);
  });  
share|improve this answer
    
Thanks, however, this won't work because if there are 3 elements returned in the 'p.test' selector, it will replace each one with 'new content'. and 'new content' could be any number of 'p.test' elements. Hope this makes sense. –  fehays Jun 6 '12 at 20:56
    
Let me see if I get it, you want to replace an element with another element? Can you explain yourself a bit more? Use examples if you can :) –  Nicolás Torres Jun 6 '12 at 21:00
    
No, I want to replace many elements with a new set of elements which are retrieved dynamically. I thought my example in the question was good enough, but I'll try to update it. –  fehays Jun 6 '12 at 21:04
    
Ok I updated my question –  fehays Jun 6 '12 at 21:09
    
Updated my answer –  Nicolás Torres Jun 6 '12 at 21:18

$('p.test') is an array, you can loop in it

share|improve this answer
1  
Technically, it's a jQuery object, not an array. –  Kyle Macey Jun 6 '12 at 22:29

I would have a surrounding <div> and just replace that div with your new set of elements each time. So:

<div id="surround">
  <p class="test"></p>
  <p class="test"></p>
  <p class="test"></p>
</div>

Then jQuery:

$("#surround").replaceWith('new content');
share|improve this answer
    
I don't have access to change the markup so I can't add a surrounding div :/ –  fehays Jun 6 '12 at 21:23

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.