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 dynamically rendered HTML that lists an undetermined number of radio buttons whose names represent some ids in a database.

I need to collect all of the unique names of the radios.

Here is an example:

<input name="721" type="radio" value="A" />        
<input name="721" type="radio" value="I" />     

<input name="722" type="radio" value="A" />        
<input name="722" type="radio" value="I" />     

<input name="723" type="radio" value="A" />        
<input name="723" type="radio" value="I" />     

Checking the radios is NOT required, so using a selected or checked attribute won't work.

Is there an elegant way to get all the unique names of the radios using jQuery? I know I can just loop through each of the radios, but I'm hoping that jQuery has a more elegant way to do this?

share|improve this question

8 Answers 8

up vote 4 down vote accepted

jsBin demo

var arr = [];

$.each( $('input:radio'), function(){

  var myname= this.name;
  if( $.inArray( myname, arr ) < 0 ){
     arr.push(myname); 
  }

});

alert(arr); // 721,722,723
share|improve this answer
    
This is really close, so I'll mark this as the answer. I had to use $.inArray() because IE8 doesn't support arr.indexOf(). Thanks! –  richb01 Jan 1 '13 at 18:21
    
@richb01 oh, sure, I'll edit my answer to improve it. thx –  Roko C. Buljan Jan 1 '13 at 18:33
var names = $('input[type=radio]').map(function() {
    return this.name
}).get(); // create an array of names

var unique = $.grep(names, function(v, i) {
    return $.inArray(v, names) === i
}); // filter unique values

http://jsfiddle.net/WnHvz/

share|improve this answer
    
This works, too. Thanks. –  richb01 Jan 1 '13 at 18:23

I think you people so fast and love jQuery, huh. this may help you, in case of 2 radio buttons, http://jsfiddle.net/BTcrR/ check this out

$(function() {
    // list of 
    var rediobuttonsName = new Array();
    // you can use :odd | :even
    $('input[type="radio"]').not(':odd').map(function(n, elem) {

       rediobuttonsName.push(elem.name);
       // or  you can use the context of object this
       // this.name

   });

   alert(rediobuttonsName);
});​

or you can get ride of the .not(":odd") and check the array if it has the value of the name. ;)

share|improve this answer
$('input:radio').each(function(){
    // do something
 });
share|improve this answer
    
Thanks - sure this will allow me to do the looping way, but I'm really looking for a selector that'll give me all the names of the radios. Using the loop above is ineligent because I have to get each name, see if it exists already, and (if not) then add it. –  richb01 Jan 1 '13 at 18:06

FYI - the html you posted doesnt have unique names. There's two of each... but this is how you can get them:

$('input[type="radio"]').each(function() {
    alert($(this).attr('name'));
});​
share|improve this answer
    
I suppose he could just take the value attribute and append it to the name attribute if he needs unique names. –  erversteeg Jan 1 '13 at 18:06

if you want to print those names before each radio then use it:

$('input[type="radio"]').each(function() {
    $(this).before($(this).attr('name'));
});​

try out the fiddle: http://jsfiddle.net/teLjg/

share|improve this answer

To get unique names, you can use map() to build an array of all the names, then combine $.grep() with $.inArray() to remove duplicates.

Something like:

var allNames = $("input[type=radio]").map(function() {
    return $(this).attr("name");
}).get();

var uniqueNames = $.grep(allNames, function(name, index) {
    return $.inArray(name, allNames) == index;
});
share|improve this answer

Just try to loop thru and get all the names and store it in an array... then by using filter method you can filter the unique values....

let say,

var array=[your array values];

var unique_val = array.filter(function(value,iter,array){
    return iter == array.indexOf(value);
});

This might work...

share|improve this answer

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.