0

Lets say I have a list (but I have table cells):

<ul>
    <li>first</li>
    <li class="middle">2</li>
    <li class="middle">3</li>
    <li class="middle">3</li>
    <li>last</li>
</ul>

and I want to replace all the .middle elements with one <li>middle</li>. Using jQuery's replaceWith would replace all individual elements (as in this fiddle):

<ul>
    <li>first</li>
    <li>new content</li>
    <li>new content</li>
    <li>new content</li>
    <li>last</li>
</ul>

but I want this:

<ul>
    <li>first</li>
    <li>new content</li>
    <li>last</li>
</ul>

Is there native jQuery method to do this, or I have to create new list (or new table row) in my case, than to remove old and add new?

Please note: all the elements are sequential, in DOM tree they go one after another (they are a group).

2

Wrap them all within <li>middle</li>, then remove them:

$('li.middle').wrapAll('<li>middle</li>').remove();
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<ul>
  <li>first</li>
  <li class="middle">2</li>
  <li class="middle">3</li>
  <li class="middle">3</li>
  <li>last</li>
</ul>

1
  • This looks like a good solution, using the jQuery's method return value.
    – skobaljic
    Jul 8 '15 at 22:40
0

Use removeClass(), :not(), and :first

$('.middle:not(:first)').remove();
$('.middle').removeClass('middle').text('New content');
<script src="https://ajax.googleapis.com/ajax/libs/jquery/1.10.2/jquery.min.js"></script>
<ul>
  <li>first</li>
  <li class="middle">2</li>
  <li class="middle">3</li>
  <li class="middle">3</li>
  <li>last</li>
</ul>

4
  • Maybe I was not clear enough: I want to replace the group of .middle list elements with some new content, as <li>some new content</li>. The 'middle' class is just a helper that exists. I could go with $('.middle').before( ..new element ) than remove(), just asking if there is some existing jQuery method.
    – skobaljic
    Jul 8 '15 at 22:33
  • @skobaljic, I dont think theres a utility method that exists to do what your after. You will just have to do it manually
    – AmmarCSE
    Jul 8 '15 at 22:38
  • Think Rick's solution uses jQuery methods in correct way, so I do not have to do it manually. Thanks Ammar for your time.
    – skobaljic
    Jul 8 '15 at 22:45
  • 1
    @skobaljic, Ricks solution is good. But think about it, you are still doing it manually, even if its in a minimal manner :)
    – AmmarCSE
    Jul 8 '15 at 22:46
0

Try

$('.middle').each(function() {
    if ($('.middle').length == 1) {
        $(this).replaceWith('<p>New content</p>');
        return;
    }
    $(this).remove();
});
1
  • Yes, one of the solutions, but still one that I try to avoid.
    – skobaljic
    Jul 8 '15 at 22:43
0

replaceWith accepts function parameter - as such you can replace the first occurence of found element, and discard the rest:

$(".middle").replaceWith(function(index){ return index == 0 ? "<li>new content</li>" : " "});

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