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 have this: http://jsfiddle.net/ptWhn/

<pre>
/*HTML*/
`<label class="for_radio"><input type="radio"><span>radio-button-1</span></label>`
`<label class="for_radio"><input type="radio"><span>radio-button-2</span></label>`

/*jQuery*/
$(document).ready(function(){
$('input[type="radio"]').click(function() {
if($('input[type="radio"]').is(':checked')) { 
$(this).closest('label').addClass('active');}
else {
$(this).closest('label').removeClass('active');
}

});
      });

/*CSS*/
.active {
    background: #ffc;
}
</pre>

... which works in the sense that the label's background color changes when the radio button is selected, except that I can't figure out how to remove the .active class which changes the background color when one of the radio buttons is UNchecked. And also in jsfiddle, for some reason, the alternate radio button doesn't de-select when the other one is clicked.

The second thing I'm having trouble figuring out why is why I seem to need the .click(function() before the if statement. That is,

if($('input[type="radio"]').is(':checked')) { 
$(this).closest('label').addClass('active');}

... doesn't work by itself as a JS snippet. Why?

Would appreciate any insight. Thanks.

share|improve this question
    
You know <pre> != <script>, right? You're not going to run anything in <pre> tags, you're just going to print it out with code-like formatting. EDIT: this looks like actually just some weird kind of formatting jsfiddle applied to your code. Will check your js. –  Colleen Mar 6 '13 at 22:43

4 Answers 4

up vote 1 down vote accepted

You don't need the if statement, try this:

$(document).ready(function(){
   $('input[type="radio"]').click(function() {
      $('input:not(:checked)').parent().removeClass("active");
      $('input:checked').parent().addClass("active");
   });
});

Also, you said "the alternate radio button doesn't de-select when the other one is clicked."

Add name attribute to your inputs, ie: Name="Group1"

share|improve this answer
    
Thanks. Makes sense, though I tried out your solution jsfiddle.net/ptWhn/6 and couldn't get it working. :/ –  LNA Mar 6 '13 at 23:16
1  
@LNA I have updated my answer, I didn't mean for you to remove the document ready and click function, just the If statement. Also in your jsfiddle, you have different name attributes for your inputs, they need to be the same. –  Jack Pettinger Mar 6 '13 at 23:26
    
W00t! Works now. Thanks... I had a couple of bugs going on. –  LNA Mar 6 '13 at 23:27

Firstly, change your pre tags to script tags.

Instead of using an if statement to add and remove the class, why don't you just use toggleClass()?

$('input[type="radio"]').click(function() {
   if($('input[type="radio"]').is(':checked')) { 
      $(this).closest('label').toggleClass('active');
   }
});
share|improve this answer
1  
@Colleen It's more concise code to do it this way.. –  dsg Mar 6 '13 at 22:49
1  
nope, you're right, I didn't read the question completely. –  Colleen Mar 6 '13 at 22:50
1  
Heh, yes, I used <pre> tags because i thought you needed them to post code in stackoverflow. Anyway, am going to spend some time looking at these answers... thanks for the quick responses, all! –  LNA Mar 6 '13 at 22:52
    
@zenith in le last line change this )}; for });, and you can use $(':radio') and not 'input[type="radio"]' –  MG_Bautista Mar 6 '13 at 22:56
    
Update: These answers are only getting me halfway, since I want to have the non-checked radio buttons lose the 'active' class as soon as another radio button is checked -- not when the radio button is clicked a second time. –  LNA Mar 6 '13 at 23:10

Okay, so a few things here.

First, radio buttons in a group need to have the same name. For example:

<label class="for_radio"><input type="radio" name="buttons"><span>radio-button-1</span></label>
<label class="for_radio"><input type="radio" name="buttons"><span>radio-button-2</span></label>

This will take care of the issue of the alternate button not deselecting.

To fix the issue of adding and removing your class use jQuery toggleClass:

$('input[type="radio"]').click(function() {
    $(this).closest('label').toggleClass('active');
});

There is no need for the if statement. Hope that helps.

share|improve this answer
    
Thanks -- though this only gets me halfway, since I want to have all the other radio buttons un-highlighted as soon as another radio button is deselected, not when the radio button is clicked for the second time. I tried out your fix here: jsfiddle.net/ptWhn/2 (Btw, }); is switched up in your example). –  LNA Mar 6 '13 at 22:58
1  
you can use $(':radio') and not 'input[type="radio"]' –  MG_Bautista Mar 6 '13 at 22:59

I'll try and answer the question, since everyone is focused on the fact you're using <pre> instead of <script>.

$('input[type="radio"]').on('change',function() {
    $('label.active').removeClass('active'); //removes class on old active label
    $(this).parent().addClass('active'); // adds class to new active label
}

The reason I did it this way instead of using .toggleClass() is because this will actually work if you have more than two radio buttons.

share|improve this answer
    
Your answer makes sense! Unfortunately I tried it on jsfiddle here (jsfiddle.net/ptWhn/4) and it doesn't work. :/ Anyone see where the error might be? –  LNA Mar 6 '13 at 23:02
    
encapsulate it in .on() event rather than having it as an if statement. I updated my answer, and ur jsFiddle, to reflect this. i also simplified it to use .parent() instead of .closest('label'), as this is all thats needed. –  PlantTheIdea Mar 6 '13 at 23:31

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.