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I have some radios in my page,and I want to do something when the checked radio changes,however the code does not work in IE:

$('input:radio').change(...);

And after googling,people suggest use the click instead. But it does not work.

This is the example code:

<html>
    <head>
        <script src="http://ajax.googleapis.com/ajax/libs/jquery/1.5.1/jquery.min.js"></script>
        <script type="text/javascript">
            $('document').ready(
                function(){
                    $('input:radio').click(
                        function(){
                            alert('changed');   
                        }
                    );  
                }
            );

        </script>
    </head>
    <body>
        <input type="radio" name="testGroup" id="test1" />test1<br/>
        <input type="radio" name="testGroup" id="test2" />test2<br/>
        <input type="radio" name="testGroup" id="test3" />test3</br>
    </body>
</html>

It also does not work in IE.

So I want to know what is going on?

Also I am afraid if it will retrigger the change event if I click a checked radio?

UPDATE:

I can not add comment,so I reply here.

I use IE8 and the link Furqan give me also does not work in IE8. I do not know why...

share|improve this question
1  
Which version of IE are you using for the test? Your code works for me in IE8. You are right that the event will trigger if you click a checked radio. You need to perform a check in your code in order to avoid this. –  kgiannakakis Mar 2 '11 at 10:05
    
it works for me , check the following jsfiddle.net/NerXh –  Furqan Mar 2 '11 at 10:06

4 Answers 4

up vote 50 down vote accepted

works for me:

$(function(){

$('input:radio').change(
    function(){
        alert('changed');   
    }
);          

});

http://jsfiddle.net/3q29L/

share|improve this answer
1  
This doesn't work for me when a single radio is targeted and selecting another radio causes the other to deselect. –  Doug Amos Jul 12 '13 at 8:03
1  
Except when performance is an issue on a page with many elements. In which case use $('input[type=radio]') instead (see "additional notes": api.jquery.com/radio-selector) –  jemmons Dec 24 '13 at 14:31

You can specify the name attribute as below:

$( 'input[name="testGroup"]:radio' ).change(
share|improve this answer
1  
Less ambiguity. Much better practice. +1 –  Jacks_Gulch Jul 8 at 18:29

Try

$(document).ready(

instead of

$('document').ready(

or you can use a shorthand form

$(function(){
});
share|improve this answer

Works for me too, here is a better solution::

fiddle demo

<form id="myForm">
  <input type="radio" name="radioName" value="1" />one<br />
  <input type="radio" name="radioName" value="2" />two 
</form>

<script>
$('#myForm input[type=radio]').change(function() {       
    alert(this.value);
});
</script>

You must make sure that you initialized jquery above all other imports and javascript functions. Because $ is a jquery function. Even

$(function(){
 <code>
}); 

will not check jquery initialised or not. It will ensure that <code> will run only after all the javascripts are initialized.

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