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I want to have checkboxes work as radio buttons and at the same add and remove data on check and uncheck respectively.

What I got is working fine when only one checkbox is checked, but not working when I check both. Problem is that after checking 1st checkbox when I check the 2nd box the 1st one is unchecked but the value of 1st is not removed from the list.

Here is fiddle: http://jsfiddle.net/uZvMA/

JavaScript:

var $unique = $('input.unique');
$unique.click(function() {
    $unique.filter(':checked').not(this).removeAttr('checked');

});    

$("#BlackOlives-Half").change(function() {
    // If checked
    var value = $(this).val(),
        $list = $("#itemList");
    if (this.checked) {
        //add to the right
        $list.append("<li data-value='" + value + "'>" + value + "</li>");
    }
    else {
        //hide to the right
        $list.find('li[data-value="' + value + '"]').slideUp("fast", function() {
            $(this).remove();
        });
    }
});
$("#BlackOlives-Full").change(function() {
    // If checked
    var value = $(this).val(),
        $list = $("#itemList");
    if (this.checked) {
        //add to the right
        $list.append("<li data-value='" + value + "'>" + value + "</li>");
    }
    else {
        //hide to the right
        $list.find('li[data-value="' + value + '"]').slideUp("fast", function() {
            $(this).remove();
        });
    }
});     

HTML:

<ul>
    <li><div id="BlackOlives-Half10">Black Olives</div>
        <div class="radioButtons">
        <input type="checkbox" id="BlackOlives-Half" onchange="" class='unique' name="BlackOlives" value="5" /> <label for="BlackOlives-Half">Half</label>
        <input type="checkbox" id="BlackOlives-Full" onclick="" class='unique' name="BlackOlives" value="10" /> <label for="BlackOlives-Full">Full</label>
        </div>

    </li>

</ul>
<ul id="itemList"></ul>
share|improve this question

4 Answers 4

up vote 0 down vote accepted

The problem is you are programmatically setting the checked state but it is not firing the change event you need to trigger the change event after. by calling .trigger('change');

have a look at your updated fiddle

share|improve this answer
    
Thanks... you done it quickly.... –  Fahad Sep 20 '13 at 5:41
    
Your welcome ! yup, it is also worth noting this keeps your animations unlike the other solution. –  Yussuf S Sep 20 '13 at 5:43
1  
because you did it First... :) –  Fahad Sep 20 '13 at 5:50

You may not be as interested in this solution now that you have a working one, but I challenged myself to improve upon the initial code a bit. Rather than just calling change on everything and be satisfied, I also wanted to make your code not require nearly 10 additional lines of code per checkbox you would like to support.

This fiddle includes an extension to jQuery that will enforce uniqueness, retain your animations, and allow reusability (to some extent -- it isn't perfect given that it demands you use an ul.)

http://jsfiddle.net/uZvMA/5/

At the very least, please take a look and teach yourself another new thing today :)

EDIT: Updated JSFiddle with proof it works in multiple instances. http://jsfiddle.net/uZvMA/6/

share|improve this answer
    
NIce thing ..Multiple instances was good proof.. cheers mate ..+1 –  Vaibs_Cool Sep 21 '13 at 7:10

Just add

 $("#itemList").empty();

in both your click function

JSFIDDLE DEMO

share|improve this answer
    
:) thats what I wanted.. Thanks... –  Fahad Sep 20 '13 at 5:39
    
Cheers Fahad .. You needed to empty your ul before appending new li. –  Vaibs_Cool Sep 20 '13 at 5:41
    
As far as functionality my answer is correct you cant say it wrong .. ..Fahad had not mentioned abt animation ..@yusuf be mature enough ..And let fahad decide the correct answer.. –  Vaibs_Cool Sep 20 '13 at 5:48
    
Animation was not looking good... was just sliding up... –  Fahad Sep 20 '13 at 5:49
1  
@YussufS: what makes you comment this is incorrect ?? As per OP its solved the problem, and OP didnt askd for animation, be show some sportmenship rather then greedy of repuation. –  Satinder singh Sep 20 '13 at 5:58

Instead of append, give as html in the BlackOlives-Half and BlackOlives-Full in if condition

DEMO HERE

$("#BlackOlives-Half").change(function() {
    // If checked
    var value = $(this).val(),
    $list = $("#itemList");
    if (this.checked) {
         //add to the right
         $list.html("<li data-value='" + value + "'>" + value + "</li>");
    }
    else {
    //hide to the right
    $list.find('li[data-value="' + value + '"]').slideUp("fast", function() {
        $(this).remove();
    });
}
});
$("#BlackOlives-Full").change(function() {
    // If checked
    var value = $(this).val(),
    $list = $("#itemList");
    if (this.checked) {
        //add to the right
        $list.html("<li data-value='" + value + "'>" + value + "</li>");
    }
    else {
    //hide to the right
    $list.find('li[data-value="' + value + '"]').slideUp("fast", function() {
        $(this).remove();
    });
}
});   
share|improve this answer
    
I can't, because there will be more than items at the same time in '$("#itemList");' Thanks for your response.. –  Fahad Sep 20 '13 at 5:47

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