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I have the following jQuery code which is suppose to switch between classes on click. The code works on the first click but once I click on the same element for the second time it never switches to the opposite class. What am I doing wrong?

// enable on click
$('.disabled').click(function(event)
{
     $(this).removeClass("disabled").addClass("enabled");
     $(this).html("enabled");
});


// disable on click 
$('.enabled').click(function(event)
{
     $(this).removeClass("enabled").addClass("disabled");
     $(this).html("disabled");
});
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Your problem is the .disabled event has been attached to .disabled, If you are removing the class .disabled how could the even work ? –  Val Dec 9 '11 at 10:09
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3 Answers

up vote 4 down vote accepted

You have to use the live method if you want to define events for future elements. The bind method only attaches events to the current elements which match the selector

An alternative method:

// Select all elements which should be affected, attach a click function:
$(".enabled, .disabled").click(function(){
    var $this = $(this);
    $this.toggleClass("enabled disabled");     // Toggle class

    var isEnabled = $this.hasClass("enabled"); // Get toggle state
    if (isEnabled) {                           // Example
        $this.text("enabled");
    } else {
        $this.text("disabled");
    }
});
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Try this:

$('.link').click(function(event)
{
    $(this).toggleClass('enabled').toggleClass('disabled')
});

make sure .link starts with either .enabled or .disabled

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heres a fiddle... jsfiddle.net/leeprice/TMr2j –  Lee Price Dec 9 '11 at 10:09
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Additionally to Lee Price's answer:

The actual problem of your code is that at creation time of the two click handlers, both ".enabled" and ".disabled" only exist for a limited number of elements. Once you change the class for one element, it belongs to a new class, but the click handler still only handles the old elements of this new class.

Take a look at .live() (or .on() for jQuery 1.7+) for the purpose of binding events to "future elements"

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1  
should you not just extends lees answer? as opposed to creating a new answer :) as they are related –  Val Dec 9 '11 at 10:10
    
you're right ... I was in the middle of writing the first repsonse to the question when stackoverflow introduced Lee's answer. I just forgot to cancel and move it to a comment :-) –  devnull69 Dec 9 '11 at 10:14
    
well, people would down vote you, I wouldn't but others would lol so it's all up to you. –  Val Dec 9 '11 at 10:16
    
This answer explains why the current code is not working, which is more useful than a block of code without further explanation. Since Lee already posted the code, it's also OK to refer to that answer, instead of posting a similar code. –  Rob W Dec 9 '11 at 10:44
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