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I try to check a radio button with jQuery. Here's my code:

<form>
    <div id='type'>
        <input type='radio' id='radio_1' name='type' value='1' />
        <input type='radio' id='radio_2' name='type' value='2' />
        <input type='radio' id='radio_3' name='type' value='3' /> 
    </div>
</form>

And the JavasScript:

jQuery("#radio_1").attr('checked', true);

Doesn't work:

jQuery("input[value='1']").attr('checked', true);

Doesn't work:

jQuery('input:radio[name="type"]').filter('[value="1"]').attr('checked', true);

Doesn't work:

Do you have another idea? What am I missing?

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1  
Thanks for your responses! I found the problem. Actually, the two first ways to do it are working. The point is I used jqueryUI to transform a set of 3 radio buttons into a button set with this code : jQuery("#type").buttonset(); but making this change before checking the radio was breaking the radio set (don't know why). Finally, I put the buttonset call after checking the radio and it works impeccably. –  jafar Apr 14 '11 at 18:43

12 Answers 12

up vote 339 down vote accepted
jQuery("#radio_1").attr('checked', 'checked');

Change it from "true" to "checked."

For jQuery 1.9 or higher use: (possible since 1.6)

$("#radio_1").prop("checked", true)
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3  
+1: I can't begin to describe how many times I've made this error. –  Mala Apr 14 '11 at 15:51
2  
it works with 'true' too –  jafar Apr 14 '11 at 18:41
32  
In jQuery 1.9 or higher this solution won't work. Use $("#radio_1").prop("checked", true); instead. –  Installero Mar 15 '13 at 18:48
1  
Thanks Installero, Mike should update his answer as that is no longer correct for the latest jQuery. –  dmikester1 Mar 19 '13 at 18:36
5  
@Installero actually, prep is correct since 1.6, and required since 1.9. –  Jan Dvorak Apr 29 '13 at 7:25

One more function prop() that is added in jQuery 1.6, that serves the same purpose.

$("#radio_1").prop("checked", true); 
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1  
This one worked for me –  James Long Jan 25 '13 at 12:04
10  
the attr('checked', true) stopped working for me with jQuery 1.9, this is the solution! –  Pascal Feb 26 '13 at 15:40
    
@Pascal, thanks to let me know :) –  Umesh Patil Mar 5 '13 at 5:03
    
seems that prop("checked", true) is working, attr('checked', 'checked') does not –  Tomasz Kuter Oct 4 '13 at 15:18
    
@TomaszKuter I recommend to use prop() because DOM property checked is the one that should affect the behaviour - but its strange - in this fiddle ( jsfiddle.net/KRXeV ) attr('checked', 'checked') actually works x) –  jave.web Oct 11 '13 at 16:23

try this.

in this example, I'm targeting it with its input name and value

$('input[name=background][value=color]').prop("checked",true);
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This is probably the best way, the others have a tendency to stick there making the function useless the second time while this works just as expected –  Roy Toledo Feb 14 '13 at 14:15
    
Most excellent - I like this ID-less method –  dlchambers Oct 31 '13 at 15:27

Short and easy to read option:

$("#radio_1").is(":checked")

It returns true or false, so you can use it in "if" statement.

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Try this.

To check Radio button using Value use this.

$('input[name=type][value=2]').attr('checked', true); 

Or

$('input[name=type][value=2]').attr('checked', 'checked');

Or

$('input[name=type][value=2]').prop('checked', 'checked');

To check Radio button using ID use this.

$('#radio_1').attr('checked','checked');

Or

$('#radio_1').prop('checked','checked');
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The $.prop way is better:

$(document).ready(function () {                            
    $("#radio_1").prop('checked', true);        
});

and you can test it like the following:

$(document).ready(function () {                            
    $("#radio_1, #radio_2", "#radio_3").change(function () {
        if ($("#radio_1").is(":checked")) {
            $('#div1').show();
        }
        else if ($("#radio_2").is(":checked")) {
            $('#div2').show();
        }
        else 
            $('#div3').show();
    });        
});
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You have to do

jQuery("#radio_1").attr('checked', 'checked');

That's the HTML attribute

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If property name does not work don't forget that id still exists. This answer is for people who wants to target the id here how you do.

$('input[id=element_id][value=element_value]').prop("checked",true);

Because property name does not work for me. Make sure you don't surround id and name with double/single quotations.

Cheers!

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$("#radio_1").attr('checked', true);
//or
$("#radio_1").attr('checked', 'checked');
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2  
$("#radio_1").attr('checked', true); this won't work. As mentioned by the OP –  JohnP Apr 14 '11 at 15:53
    
Please explain the code in your answers, and read the question (this has been tried) –  SomeKittens Ux2666 Apr 12 at 20:48

Try this

var isChecked = $("#radio_1")[0].checked;
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try this

 $("input:checked", "#radioButton").val()

if checked returns True if not checked returns False

jQuery v1.10.1
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Try This:

$("#Id").prop("checked", true).checkboxradio('refresh');

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