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 two radio buttons and want to post the value of the selected one, how can I get the value with jQuery?

I can get all of them like this:

$("form :radio")

But how do I know which one is selected?

share|improve this question

21 Answers 21

up vote 1639 down vote accepted

To get the value of the selected radioName item of a form called 'myForm':

$('input[name=radioName]:checked', '#myForm').val()

Here's an example: Fiddle

share|improve this answer
171  
I ended up using this: $('form input[type=radio]:checked') –  jmfsg Feb 27 '09 at 20:02
15  
@PeterJ: Why'd you use two arguments instead of simply '#myform input[name=radioName]:checked'? –  Ben Alpert Jul 12 '11 at 17:30
67  
jQuery performs best when scoped correctly, and selecting by ID is always the highest performing selector. The two-argument method is simply another way of doing it. –  Peter J Jul 12 '11 at 18:03
4  
Thanks for including the optional argument to specify that it's in myForm! –  JohnZ May 31 '12 at 15:08
17  
For best performance, the documentation recommends not using the :radio selector. api.jquery.com/radio-selector –  Peter J Aug 9 '12 at 19:50

Use this..

$("#myform input[type='radio']:checked").val();
share|improve this answer
32  
If your form has multiple sets of radio buttons this will only get the value of the first set, I think. –  Brad May 21 '12 at 19:50
5  
imo reads easier than the two argument version –  Kevin Aug 24 '12 at 20:41
    
This will only return value of the first radio button that is checked in the form. It should be done like the way Peter J suggested. –  MickJ Mar 25 '13 at 18:53
    
@MickJ This piece of code is the same as the one from Peter J ... Considering the use case of the original question. However, if you have various groups of radio buttons, it won't work. That's why it's prolly better to use [name=selector] –  Lyth Apr 12 '13 at 9:48
    
As @Brad mentioned, this will only get the value of the first set. What you want is to replace ".val()" with ".map(function(){return this.value;}).get();" –  am_ Oct 6 '13 at 15:29

If you already have a reference to a radio button group, for example:

var myRadio = $('input[name=myRadio]');

Use the filter() function, not find(). (find() is for locating child/descendant elements, whereas filter() searches top-level elements in your selection.)

var checkedValue = myRadio.filter(':checked').val();

Note: This answer was originally correcting another answer that recommended using find(), which seems to have since been changed. find() could still be useful in the situation where you already had a reference to a container element, but not to the radio buttons, e.g.:

var form = $('#mainForm');
...
var checkedValue = form.find('input[name=myRadio]:checked').val();
share|improve this answer
5  
+1 find() did not work for me. filter() did the job. –  David Weinraub Nov 23 '11 at 9:02
3  
I just wanted to add, for the sake of clarity, that find() actually searches all descendent elements (which match the given selector). If you only want direct children, use children(). –  Matt Browne Apr 3 '12 at 0:06
    
Ah thanks! That was just the change I needed. –  Bretticus Apr 13 '12 at 22:21
2  
+1 for that answer that makes it easy to use a reference of the radio group that you might already have. –  Sebastien F. Aug 31 '12 at 21:33
1  
+1 for allowing to filter() through an already referenced object –  RoLYroLLs Feb 26 '13 at 21:22

This should work:

$("input[name='radioName']:checked").val()

Note the "" usaged around the input:checked and not '' like the Peter J's solution

share|improve this answer

You can use the :checked selector along with the radio selector.

 $("form:radio:checked").val();
share|improve this answer
3  
This looks nice, however, the jQuery documentation recommends using [type=radio] rather than :radio for better performance. It is a tradeoff between readability and performance. I normally take readability over performance on such trivial matters, but in this case I think [type=radio] is actually clearer. So in this case it would look like $("form input[type=radio]:checked").val(). Still a valid answer though. –  J.Money Dec 5 '12 at 1:54

Another option is:

$('input[name=radioName]:radio:checked').val()
share|improve this answer

Get all radios:

var radios = jQuery("input[type='radio']");

Filter to get the one thats checked

radios.filter(":checked")

share|improve this answer
$("input:radio:checked").val();
share|improve this answer

In a JSF generated radio button (using <h:selectOneRadio> tag), you can do this:

radiobuttonvalue = jQuery("input[name='form_id\:radiobutton_id']:checked").val();

where selectOneRadio ID is radiobutton_id and form ID is form_id.

Be sure to use name instead id, as indicated, because jQuery uses this attribute (name is generated automatically by JSF resembling control ID).

share|improve this answer

If you have Multiple radio buttons in single form then

var myRadio1 = $('input[name=radioButtonName1]');
var value1 = myRadio1.filter(':checked').val();

var myRadio2 = $('input[name=radioButtonName2]');
var value2 = myRadio2.filter(':checked').val();

This is working for me.

share|improve this answer

In my case I have two radio buttons in one form and I wanted to know the status of each button. This below worked for me:

HTML side:

<form id="toggle-form">
      <div id="radio">
        <input type="radio" id="radio1" name="radio" checked="checked" /><label for="radio1">Plot single</label>
        <input type="radio" id="radio2" name="radio"/><label for="radio2">Plot all</label>
      </div>
    </form>

Javascript side:

// get radio buttons value
console.log( "radio1: " +  $('input[id=radio1]:checked', '#toggle-form').val() );
console.log( "radio2: " +  $('input[id=radio2]:checked', '#toggle-form').val() );
share|improve this answer

Also, check if the user does not select anything.

var radioanswer = 'none';
if ($('input[name=myRadio]:checked').val() != null) {           
   radioanswer = $('input[name=myRadio]:checked').val();
}
share|improve this answer

Here's how I would write the form and handle the getting of the checked radio.

Using a form called myForm:

<form id='myForm'>
    <input type='radio' name='radio1' class='radio1' value='val1' />
    <input type='radio' name='radio1' class='radio1' value='val2' />
    ...
</form>

Get the value from the form:

$('#myForm .radio1:checked').val();

If you're not posting the form, I would simplify it further by using:

<input type='radio' class='radio1' value='val1' />
<input type='radio' class='radio1' value='val2' />

Then getting the checked value becomes:

    $('.radio1:checked').val();

Having a class name on the input allows me to easily style the inputs...

share|improve this answer
    
that's more simpler , thanks! –  fatiDev Oct 2 '12 at 16:54
 $(".Stat").click(function () {
     var rdbVal1 = $("input[name$=S]:checked").val();
 }
share|improve this answer

To get the value of the selected radio that uses a class:

$('.class:checked').val()
share|improve this answer

I wrote a jQuery plugin for setting and getting radio-button values. It also respects the "change" event on them.

(function ($) {

    function changeRadioButton(element, value) {
        var name = $(element).attr("name");
        $("[type=radio][name=" + name + "]:checked").removeAttr("checked");
        $("[type=radio][name=" + name + "][value=" + value + "]").attr("checked", "checked");
        $("[type=radio][name=" + name + "]:checked").change();
    }

    function getRadioButton(element) {
        var name = $(element).attr("name");
        return $("[type=radio][name=" + name + "]:checked").attr("value");
    }

    var originalVal = $.fn.val;
    $.fn.val = function(value) {

        //is it a radio button? treat it differently.
        if($(this).is("[type=radio]")) {

            if (typeof value != 'undefined') {

                //setter
                changeRadioButton(this, value);
                return $(this);

            } else {

                //getter
                return getRadioButton(this);

            }

        } else {

            //it wasn't a radio button - let's call the default val function.
            if (typeof value != 'undefined') {
                return originalVal.call(this, value);
            } else {
                return originalVal.call(this);
            }

        }
    };
})(jQuery);

Put the code anywhere to enable the addin. Then enjoy! It just overrides the default val function without breaking anything.

You can visit this jsFiddle to try it in action, and see how it works.

Fiddle

share|improve this answer

If you want just the boolean value, i.e. if it's checked or not try this:

$("#Myradio").is(":checked")
share|improve this answer

use this, value = $('input[name=button-name]:checked').val();

share|improve this answer

If you only have 1 set of radio buttons on 1 form, the jQuery code is as simple as this:

$( "input:checked" ).val()
share|improve this answer

To retrieve all radio buttons values in JavaScript array use following jQuery code :

var values = jQuery('input:checkbox:checked.group1').map(function () {
    return this.value;
    }).get();
share|improve this answer

I've released a library to help with this. Pulls all possible input values, actually, but also includes which radio button was checked. You can check it out at https://github.com/mazondo/formalizedata

It'll give you a js object of the answers, so a form like:

<form>
<input type="radio" name"favorite-color" value="blue" checked> Blue
<input type="radio" name="favorite-color" value="red"> Red
</form>

will give you:

$("form").formalizeData()

{
  "favorite-color" : "blue"
}
share|improve this answer

protected by Josh Crozier Mar 25 at 19:25

Thank you for your interest in this question. Because it has attracted low-quality answers, posting an answer now requires 10 reputation on this site.

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.