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I've got multiple sets of radio buttons and am trying to use the .find() function to dynamically find the value of radio buttons in the same grouping.

However, it keeps returning undefined.

<fieldset>
  <div id="border1">
    <input id="radio1a" type="radio" id="set1" class="animals radio" value="Zebra">
    <input id="radio1b" type="radio" id="set1" class="animals radio" value="Lion">
  </div>
  <div id="border2">
    <input id="radio2a" type="radio" id="set2" class="fruit" value="Oranges">
    <input id="radio2b" type="radio" id="set2" class="fruit" value="Grapes">
  </div>
</fieldset>

<fieldset>
  <div class="border1">
    <input id="radio3a" type="radio" id="set3" class="animals radio" value="Monkey">
    <input id="radio3b" type="radio" id="set3" class="animals radio" value="Parrot">
  </div>
  <div class="border2">
    <input id="radio4a" type="radio" id="set4" class="fruit radio" value="Bananas">
    <input id="radio4b" type="radio" id="set4" class="fruit radio" value="Cherries">
  </div>
</fieldset>

(Sorry, didn't mean to put the same IDs. Was a copy/paste.)

I'm trying to use jquery to dynamically find the values:

$(".animals .radio").change(function()
{
  alert($(this).closest('fieldset').find('.fruit').val());
  etc.
}

But it keeps returning undefined

Also tried:

$(this).closest('fieldset').find('.fruit:checked').val()

Is there another way I should be approaching this? I don't want to have to write code for every single set of radio buttons.

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4 Answers 4

$(".animals .radio") is not the query you are looking for, it should be $(".animals.radio") (no white space between classes).

$(".animals .radio") looks for an element with class "radio" inside an element with class "animals".

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Thanks for the answer. I'll test it out. (Didn't mean to put duplicate IDs. Was a quick copy/paste.) –  JPTN May 8 '12 at 20:01

It should .animals.radio, not .animals .radio.

  1. .animals.radio means these two classes belongs to same element. (in your case this is right)

  2. .animals .radio means .animals is ancestor of .radio.

     $(".animals.radio").change(function() {
    
       alert($(this).closest('fieldset').find('.fruit').val());
    
     });
    

AND ONE THINK, YOUR CODE HAVE DUPLICATE IDS, AVOID IT.

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Thanks for the answer. I'll test it out. (Didn't mean to put duplicate IDs. Was a quick copy/paste.) –  JPTN May 8 '12 at 20:00

$(".animals .radio") is getting you all the elements with class radio that have parents with class animals.

You want elements with both classes animals and radio, which is like $(".animals.radio")

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How about not using id="" twice, and setting a type="radio" on those inputs for starters ? You are also using the same ID for multiple elements, stop that ?

It should probably be :

<fieldset>


<div id="border1">
      <input type="radio" id="radio1a" name="set1" class="animals radio" value="Zebra" />
      <input type="radio" id="radio1b" name="set1" class="animals radio" value="Lion" />
  </div>
  <div id="border2">
      <input type="radio" id="radio1c" name="set2" class="fruit" value="Oranges" />
      <input type="radio" id="radio1d" name="set2" class="fruit" value="Grapes" />
  </div>
</fieldset>

<fieldset>
  <div class="border1">
      <input type="radio" id="radio2a" name="set3" class="animals radio" value="Monkey" />
      <input type="radio" id="radio2b" name="set3" class="animals radio" value="Parrot" />
  </div>
  <div class="border2">
      <input type="radio" id="radio2c" name="set4" class="fruit radio" value="Bananas" />
      <input type="radio" id="radio2d" name="set4" class="fruit radio" value="Cherries" />
  </div>
</fieldset>​​​​​​​​​​

To get both values :

$('input[type="radio"]').on('change', function() {
    $(this).closest('fieldset').find('.fruit').each(function() {
         alert(this.value);
    });
}​);​

To get only the one that is checked :

$('input[type="radio"]').on('change', function() {
    var elm = $(this).closest('fieldset').find('.fruit').filter(':checked');
    alert(elm.value);
}​);​
share|improve this answer
    
Thanks for the answer. I'll test it out. (Didn't mean to put duplicate IDs. Was a quick copy/paste.) –  JPTN May 8 '12 at 20:04

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