I want to convert a list of product details from dt/dd html format into li?

for example:

 <dt class="float-left"> Composition</dt>
 <dd>Suede 100%</dd>
 <dt class="float-left">Lining Composition</dt>
 <dd>Suede 100%</dd>

into:

<li> Composition: Suede 100%</li>
<li> Lining Composition: Suede 100%</li>

I tried doing this numerous, but don't know where to start?

Example fiddle: https://jsfiddle.net/nj0h4ddh/

  • 3
    What is your approach so far? – divy3993 Nov 22 '15 at 17:30
  • This kind of amendment would be better achieved by simply re-writing the source HTML. Assuming that's not possible, select each dt element, grab it's text along with the next('dd') and append a new li element. – Rory McCrossan Nov 22 '15 at 17:30
up vote 11 down vote accepted

You could use the .wrapInner()/.unwrap() methods:

Updated Example

$('.product-detail-dl').wrapInner('<ul></ul>')
    .find('ul').unwrap()
    .find('dt, dd').wrapInner('<li></li>')
    .find('li').unwrap();

Input:

<dl class="product-detail-dl">
  <dt class="float-left"> Composition</dt>
  <dd>Suede 100%</dd>
  <dt class="float-left">Lining Composition</dt>
  <dd>Suede 100%</dd>
</dl>

Output:

<ul>
  <li>Composition</li>
  <li>Suede 100%</li>
  <li>Lining Composition</li>
  <li>Suede 100%</li>
</ul>

In order to combine the dt/dd elements, you could use the following before wrapping/upwrapping the elements:

Updated Example

$('.product-detail-dl dd').each(function () {
    $(this).prev().append(': ' + this.innerText);
}).remove();

Input:

<dl class="product-detail-dl">
  <dt class="float-left"> Composition</dt>
  <dd>Suede 100%</dd>
  <dt class="float-left">Lining Composition</dt>
  <dd>Suede 100%</dd>
  <dt class="float-left">Sole Composition</dt>
  <dd>Rubber 100%</dd>
  <dt class="float-left">Brand Style ID</dt>
  <dd>333824045</dd>
</dl>

Output:

<ul>
  <li>Composition: Suede 100%</li>
  <li>Lining Composition: Suede 100%</li>
  <li>Sole Composition: Rubber 100%</li>
  <li>Brand Style ID: 333824045</li>
</ul>

As a side note, you could also use the .replaceWith() method for the same results:

$('.product-detail-dl dd').each(function () {
    $(this).prev().append(': ' + this.innerText);
}).remove();

$('.product-detail-dl').find('dt, dd').replaceWith(function () {
    return $('<li>' + this.innerHTML + '</li>');
});
$('.product-detail-dl').replaceWith(function () {
    return $('<ul>' + this.innerHTML + '</ul>');
});
  • doesn't match expected output – charlietfl Nov 22 '15 at 17:43
  • 1
    Just brilliant ... – Zohaib Ijaz Nov 22 '15 at 17:46

Assuming that there may be more than a one to one relationship of <dt> to <dd> you can use nextUntil() and replaceWith() to create new structure:

var $dl = $('.product-detail-dl'),
    $ul = $('<ul>');
// loop over all the `<dt>`
$dl.find('dt').each(function () {
    var $dt = $(this),
        title = $dt.text();
        // loop over following siblings until another `<dt>` is reached
        $dt.nextUntil('dt').each(function () {
            $ul.append('<li>' + title + ': ' + $(this).text() + '</li>')
        });
});
// replace original list
$dl.replaceWith($ul)

DEMO

References

Try this

https://codepen.io/anon/pen/GpLPvx

 <dt class="float-left"> Composition</dt>
 <dd>Suede 100%</dd>
 <dt class="float-left">Lining Composition</dt>
 <dd>Suede 100%</dd>

Jquery

$('dt').each(function(){
    var child = $(this).next('dd');
    $(this).replaceWith( "<li>" + $( this ).html()+' '+ child.html() + "</li>" );
    child.remove();
})
  • Would perform better if you cache $(this). – TheCarver Nov 22 '15 at 18:08

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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