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In the below function I want to show and hide an element based on other options selected on the page (radio buttons). The problem is, the var complianceMember always returns the first value for the set of radio buttons it's part of and not the selected value, why is this? The other two variables return the correct values.

$(document).ready(function() {
    $('input[name="waste-management-plan"]').change(function () {

        var producerType = $('input[name="producertype"]').val();
        var complianceMember = $('input[name="compliance-member"]').val();

        if ($(this).val() == 'Y' && complianceMember == 'Y' && producerType == 'both' ) {
            $('.producerOp3').show();
        } else {
            $('.producerOp3').hide();
            console.log( $(this).val(),complianceMember,producerType );
        }
    });
});
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2 Answers 2

up vote 3 down vote accepted

You need to use a filter to find the checked radio button and then get its value. You can use the :checked selector

var complianceMember = $('input[name="compliance-member"]:checked').val();
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This works perfectly, thank you. Out of interest, why one group returning the correct value while the other is not? The one returning the correct value has two options while the var returning the wrong value has 3 options. Does that make any difference? –  Paul Redmond Dec 3 '13 at 10:11
1  
@PaulColinRedmond whether producertype also is an radio group? –  Arun P Johny Dec 3 '13 at 10:12
1  
@PaulColinRedmond if so then you will have to use the checked filter there also... otherwise it should fail –  Arun P Johny Dec 3 '13 at 10:14
    
Yes, you're correct! Thanks! –  Paul Redmond Dec 3 '13 at 20:03

Since you mentioned radio group, you have to get the value of radio button which is checked

var complianceMember = $('input[name="compliance-member"]:checked').val();
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1  
Thank you! This worked. Someone got there a little before you. –  Paul Redmond Dec 3 '13 at 10:12
    
@PaulColinRedmond Sometime happens :) for your comment, I guess for producertype you might have clicked the first radio button and therefore you got it right. $('input[name="producertype"]').val(); try selecting both options it will always gives the value of first radio button. –  Praveen Dec 3 '13 at 10:19
    
Yes you're right, this is what happened! Thanks again. –  Paul Redmond Dec 3 '13 at 10:27

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