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'm trying to wrap multiple same class divs into a div and to skip divs not with the same class. .wrap doesn't combine them, and .wrapAll throws the non-classed divs underneath. I've been tinkering around with attempts to create an alternate solution but with no avail.

Original

<div class="entry">Content</div>
<div class="entry">Content</div>
<div class="entry">Content</div>
<div>Skip in wrap</div>
<div class="entry">Content</div>
<div class="entry">Content</div>
<div class="entry">Content</div>

continued...

Wanted Result

<div>
<div class="entry">Content</div>
<div class="entry">Content</div>
<div class="entry">Content</div>
</div>
<div>Skip in wrap</div>
<div>
<div class="entry">Content</div>
<div class="entry">Content</div>
<div class="entry">Content</div>
</div>
share|improve this question
    
same as meder. The function you are trying to use cannot "guess" what you want to do, or else there would be too much overhead and would render the function impracticable –  Yanick Rochon Jul 25 '10 at 8:13
1  
I agree, javascript shouldn't be used to make such drastic changes. However, the software I'm using doesn't allow you to edit any changes to the setup, so I'm stuck with jQuery. –  Nathan Alette Jul 25 '10 at 16:10

3 Answers 3

up vote 5 down vote accepted

You can loop pretty quickly through your <div> elements using a for loop. In the below code, just change the initial selector here to grab all those siblings divs, e.g. #content > div.entry or wherever they are:

var divs = $("div.entry");
for(var i=0; i<divs.length;) {
  i += divs.eq(i).nextUntil(':not(.entry)').andSelf().wrapAll('<div />').length;
}​

You can give it a try here. We're just looping through, the .entry <div> elements using .nextUntil() to get all the .entry elements until there is a non-.entry one using the :not() selector. Then we're taking those next elements, plus the one we started with (.andSelf()) and doing a .wrapAll() on that group. After they're wrapped, we're skipping ahead either that many elements in the loop.

share|improve this answer
    
Thank you very much, worked just perfectly. –  Nathan Alette Jul 25 '10 at 16:16
    
Very elegant. Nicely done. –  Adam Jul 25 '10 at 21:36

I just whipped up a simple custom solution.

var i, wrap, wrap_number = 0;
$('div').each(function(){ //group entries into blocks "entry_wrap_#"
    var div = $(this);
    if (div.is('.entry')) {
        wrap = 'entry_wrap_' + wrap_number;
        div.addClass(wrap);
    } else {
        wrap_number++;
    }
});
for (i = 0; i <= wrap_number; i++) { //wrap all blocks and remove class
    wrap = 'entry_wrap_' + i;
    $('.' + wrap).wrapAll('<div class="wrap"/>').removeClass(wrap);
}
share|improve this answer

You could alternatively append new divs to your markup, and then append the content you want wrapped into those.

If your markup is this:

<div class="wrap">
  <div class="col-1"></div>
  <div class="col-1"></div>
  <div class="col-1"></div>
  <div class="col-1"></div>
  <div class="col-1"></div>
  <div class="col-2"></div>
  <div class="col-2"></div>
  <div class="col-2"></div>
  <div class="col-2"></div>
  <div class="col-2"></div>
</div>

Use the following to append two new divs (column-one and column-two) and then append the appropriate content into those divs:

// Set vars for column content
var colOne = $('.col-1').nextUntil('.col-2').addBack();
var colTwo = $('.col-2').nextAll().addBack();

// Append new divs that will take the column content
$('.wrap').append('<div class="column-first group" /><div class="column-second ground" />');

// Append column content to new divs
$(colOne).appendTo('.column-first');
$(colTwo).appendTo('.column-second'); 

Demo here: http://codepen.io/zgreen/pen/FKvLH

share|improve this answer

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.