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I have 5 li elements, while I click on each of them, I am adding a class name on and push it into an array. I would like to remove the item from the object when a user is clicking again.

<ul>
  <li class="on" data-index="3">add 3</li>
  <li data-index="4">add 4</li>
  <li data-index="5">add 5</li>
  <li class="on" data-index="6">add 6</li>
</ul>

When a user clicks on a li I add a class called on and push the value into an array and sort the array after I pushed the item.

If a user clicks again on the li I can't remove the value from the array, because of the sort. Is there a way I can achieve this?

I don't have any idea to do the functionality regarding this.. any one can help me? I tried with splice, but no result.

share|improve this question
    
Take a look here: stackoverflow.com/questions/6234269/…. Also here: stackoverflow.com/questions/3596089/… –  mellamokb Apr 9 '12 at 15:47
1  
When you say 'pushing the value to an array' do you mean the data-index value, or the text value? –  Rory McCrossan Apr 9 '12 at 15:48
    
How about posting your jQuery? –  j08691 Apr 9 '12 at 16:41
    
could it be a conflict between your class .on and the JQuery method .on()? –  RASG Apr 9 '12 at 16:46

1 Answer 1

up vote 1 down vote accepted

You can use delete arr[index] syntax to remove any element from array. Try this:

var arr = {};
$('ul > li').click(function () {
   $(this).toggleClass('on');
    if ($(this).hasClass('on')) {
       arr[$(this).attr('data-index')] = $(this).html();
    } else {
        delete arr[$(this).attr('data-index')];
    }
    console.log(sortObj(arr));
});

function sortObj(arr){
    var sortedKeys = new Array();
    var sortedObj = {};

    for (var i in arr){
        sortedKeys.push(i);
    }
    sortedKeys.sort();

    for (var i in sortedKeys){
        sortedObj[sortedKeys[i]] = arr[sortedKeys[i]];
    }
    return sortedObj;
}

Demo : http://jsfiddle.net/codef0rmer/AEYtq/1/

share|improve this answer
    
he want to sort his array, you don't sort. –  Wouter J Apr 9 '12 at 17:14
    
ok. I should have sorted it. Thats the only problem I see. –  codef0rmer Apr 9 '12 at 17:30

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