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I'm trying to do my frist steps with jQuery but I have some trouble to understand how to find a list of child elements from a div parent element. I'm used to work with ActionScript 2 and ActionScript 3 so i could mistake some concept, like what is the better way to randomize a sequence of div elements with jQuery!

I have this simple portion of HTML code:

<div class="band">
    <div class="member">
        <ul>
            <li>John</li>
            <li>Lennon</li>
        </ul>
    </div>
    <div class="member">
        <ul>
            <li>Paul</li>
            <li>McCartney</li>
        </ul>
    </div>
    <div class="member">
        <ul>
            <li>George</li>
            <li>Harrison</li>
        </ul>
    </div>
    <div class="member">
        <ul>
            <li>Ringo</li>
            <li>Starr</li>
        </ul>
    </div>
</div>

I have attempted some way to do that like map .member divs in one array and then changing the sort order but without success.

function setArrayElements (element_parent) {
    var arr = [];
    //alert (element_parent[0].innerHTML);
    for (var i = 0; i < element_parent.children().length; i ++) {
        arr.push (element_parent[i].innerHTML);
    }
}
setArrayElements($(".band"));

when i attempted to alert element_parent[0] i thought to get the first child of my .member list of divs but it isn't.

if i make an alert with element_parent[0].innerHTML i see that:

<div class="member">
    <ul>
        <li>John</li>
        <li>Lennon</li>
    </ul>
</div>
<div class="member">
    <ul>
        <li>Paul</li>
        <li>McCartney</li>
    </ul>
</div>
<div class="member">
    <ul>
        <li>George</li>
        <li>Harrison</li>
    </ul>
</div>
<div class="member">
    <ul>
        <li>Ringo</li>
        <li>Starr</li>
    </ul>
</div>

Why? How can I do to get exactly one of the members like this?

<div class="member">
    <ul>
        <li>Paul</li>
        <li>McCartney</li>
    </ul>
</div>

I'm sure this should be easy but I just don't know how :(

please help
thanks
vittorio


EDIT:

Thanks for the fastness and this various ways to get the selected children, I'll take a note of these ways for the future!
I tried this methods, but it seems I couldn't get the entire div (please tell'me if i mistake something, it' could be too much possible!!).

I shoud get this content:

<div class="member">
    <ul>
        <li>Ringo</li>
        <li>Starr</li>
    </ul>
</div>

but with one of this methods like $("div.band div.member:eq(2)") or the other useful ways, I get this:

alert ($('div.band div.member')[0]);
/* result
<ul>
    <li>Ringo</li>
    <li>Starr</li>
</ul>
*/

so is there a way to get the .member div container too in my node?

share|improve this question
    
you will get the container div too. If you use Firebug and console.log, the output element is the first div with class member –  Russ Cam Oct 7 '09 at 20:51
    
ah! thanks, now I know I wasn't so wrong! bye bye –  Vittorio Vittori Oct 7 '09 at 22:05

3 Answers 3

up vote 58 down vote accepted
$('div.band div.member');

will give you a jQuery object containing <div> that match the selector i.e. div with class member that are descendents of a div with class band.

The jQuery object is an array-like object in that each matched element is assigned a numerical property (think like an index) of the object and a length property is also defined. To get one element is

// first element
$('div.band div.member')[0];

or

// first element
$('div.band div.member').get(0);

Instead of selecting all elements, you can specify to select a specific element according to position in the DOM. For example

// get the first div with class member element
$("div.band div.member:eq(0)")

or

// get the first div with class member element
$("div.band div.member:nth-child(1)")

EDIT:

Here's a plugin I just knocked out

(function($) {

$.fn.randomize = function(childElem) {
  return this.each(function() {
      var $this = $(this);
      var elems = $this.children(childElem);

      elems.sort(function() { return (Math.round(Math.random())-0.5); });  

      $this.detach(childElem);  

      for(var i=0; i < elems.length; i++)
        $this.append(elems[i]);      

  });    
}
})(jQuery);

Here's a Working Demo. add /edit to the URL to see the code. If you need any details about how it works, please leave a comment. It could probably do with being made more robust to handle certain situations (like if there are other child elems of the jQuery object the plugin is chianed to) but it'll suit your needs.

Code from the demo

$(function() {

  $('button').click(function() {
    $("div.band").randomize("div.member");
  });

});

(function($) {

$.fn.randomize = function(childElem) {
  return this.each(function() {
      var $this = $(this);
      var elems = $this.children(childElem);

      elems.sort(function() { return (Math.round(Math.random())-0.5); });  

      $this.remove(childElem);  

      for(var i=0; i < elems.length; i++)
        $this.append(elems[i]);      

  });    
}
})(jQuery);

HTML

<div class="band">
    <div class="member">
        <ul>
            <li>John</li>
            <li>Lennon</li>
        </ul>
    </div>
    <div class="member">
        <ul>
            <li>Paul</li>
            <li>McCartney</li>
        </ul>
    </div>
    <div class="member">
        <ul>
            <li>George</li>
            <li>Harrison</li>
        </ul>
    </div>
    <div class="member">
        <ul>
            <li>Ringo</li>
            <li>Starr</li>
        </ul>
    </div>
</div>
<button>Randomize</button>
share|improve this answer
    
this example it's great! I'haven't saw this jquery syntax mode, but i'll try it! very usefull to see how i can do it! thanks again –  Vittorio Vittori Oct 7 '09 at 20:54
7  
+1 for knocking up a jquery plugin :) –  Brian Wigginton Aug 28 '10 at 2:23
    
I've took the liberty to make a modified version of your demo (I've got no idea what are all those other 19 edits). Hopefully this works better for more situations. It sure did on my case. –  Cawas Mar 1 '11 at 19:02
1  
+1 Great! Plugged and played in one minute ;) –  Mirko Apr 18 '11 at 16:59
    
You rock! +1 and +1 for example –  Kingo Jul 22 '11 at 4:10

I modified Russ Cam's solution so that the selector is optional, and the function can be called on multiple container elements, while preserving each randomized element's parent.

For example, if I wanted to randomize all LIs within each '.member' div, I could call it like this:

$('.member').randomize('li');

I could also do it like this:

$('.member li').randomize();

So the two ways to call this are as follows:

$(parent_selector).randomize(child_selector);

OR

$(child_selector).randomize();

Here's the modified code:

$.fn.randomize = function(selector){
    (selector ? this.find(selector) : this).parent().each(function(){
        $(this).children(selector).sort(function(){
            return Math.random() - 0.5;
        }).detach().appendTo(this);
    });

    return this;
};

Minified:

$.fn.randomize=function(a){(a?this.find(a):this).parent().each(function(){$(this).children(a).sort(function(){return Math.random()-0.5}).detach().appendTo(this)});return this};
share|improve this answer
    
I tried using this but get the error: Uncaught TypeError: Object [object Object] has no method 'randomize' –  jlg Oct 29 '12 at 19:22
    
@jlg, you must call it on a JQuery object, like this: $(selector).randomize(optional_selector). You cannot call it on its own, like this: $.randomize(selector) –  gruppler Mar 9 '13 at 17:06
    
lol ok, I'm no good at jquery! Thank you :) –  jlg Mar 14 '13 at 21:10

Randomization using sort does not always randomize the elements. It is better to use a shuffle method like the one from How can i shuffle an array in JavaScript?

Here's my updated code

(function($) {
    $.fn.randomize = function(childElem) {
        function shuffle(o) {
            for(var j, x, i = o.length; i; j = Math.floor(Math.random() * i), x = o[--i], o[i] = o[j], o[j] = x);
            return o;
        };
        return this.each(function() {
            var $this = $(this);
            var elems = $this.children(childElem);

            shuffle(elems);

            $this.detach(childElem);  

            for(var i=0; i < elems.length; i++) {
                $this.append(elems[i]);      
            }
        });    
    }
})(jQuery);
share|improve this answer

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