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I'm using jQuery to show/hide div on radio select. This works fine, but i wan't to extend it, so specific radio is selected by default on page load.

Here's HTML

<input type="radio" id="Payment1">Payment1
<input type="radio" id="Payment2">Payment2

<div id="PaymentContainer1" style="display:none;">Payment 1 container</div>
<div id="PaymentContainer2" style="display:none;">Payment 2 container</div>

jQuery

$(document).change(function () {
    if ($('#Payment1').prop('checked')) {
        $('#PaymentContainer1').show();
    } else {
        $('#PaymentContainer1').hide();
    }

    if ($('#Payment2').prop('checked')) {
        $('#PaymentContainer2').show();
    } else {
        $('#PaymentContainer2').hide();
    }
});

Here's fiddle http://jsfiddle.net/teva/yauCs/1/

I tried adding

$("#Payment1").prop("checked", true);

but it doesn't work.

thanks

Edit Any way to make fields in specific div to not just hide, but disabled? I'm using one form for all divs and when i hide them with jQuery, form doesn't post, because fields are empty. So, hide div and disable inputs. Is this possible with jQuery? Tnx

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5 Answers 5

up vote 0 down vote accepted

Dude, Why are you using .change event on document, it may give errors when you do some other change in the page.

better use like this

$(document).ready(function () {

    $('input[type=radio]').change(function(){


    if ($('#Payment1').is(':checked')) {
        $('#PaymentContainer1').show();
    } else {
        $('#PaymentContainer1').hide();
    }

    if ($('#Payment2').is(':checked')) {
        $('#PaymentContainer2').show();
    } else {
        $('#PaymentContainer2').hide();
    }
        });
});
$("#Payment1").prop("checked", true).change();

FIDDLE DEMO

You have some other issue, in your case both radio getting selected, ideally this is not the way.

$(document).ready(function () {
    $('input[type=radio]').change(function(){

    if ($('#Payment1').is(':checked')) {

        $('.containner').hide();
        $('#PaymentContainer1').show();
    } else {
        $('#PaymentContainer1').hide();
    }

    if ($('#Payment2').is(':checked')) {

        $('.containner').hide();
        $('#PaymentContainer2').show();
    } else {
        $('#PaymentContainer2').hide();
    }
        });
});
$("#Payment1").prop("checked", true).change();

Perfect Radio Demo

share|improve this answer
    
Thanks...it worked great. I forgot to add name to radios. –  teva Aug 7 '13 at 11:31

try following:

  $("input[type=radio]").change(function () {

   if ($('#Payment1').prop('checked')) {
      $('#PaymentContainer1').show();
  } else {
      $('#PaymentContainer1').hide();
   }

   if ($('#Payment2').prop('checked')) {
      $('#PaymentContainer2').show();
   } else {
      $('#PaymentContainer2').hide();
  }
});

$("#Payment2").prop("checked", true).trigger("change");

here is the link: http://jsfiddle.net/yauCs/5/

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Avoid using $(document).change() as you will be listening to events for every element in the DOM, on() allows the elements to be dynamically added and still work.

$(document).on('change','input',function () {

    if ($('#Payment1').prop('checked')) {
        $('#PaymentContainer1').show();
    } else {
        $('#PaymentContainer1').hide();
    }

    if ($('#Payment2').prop('checked')) {
        $('#PaymentContainer2').show();
    } else {
        $('#PaymentContainer2').hide();
    }
});

$("#Payment1").prop("checked", true);

Also set your radio's name to the same thing to ensure only one is selected

fiddle

share|improve this answer

Add name="payment" in both radio so they will act as group and call click after change handler

HTML

<input type="radio" name="payment" id="Payment1">Payment1
<input type="radio" name="payment" id="Payment2">Payment2
<div id="PaymentContainer1" style="display:none;">Payment 1 container</div>
<div id="PaymentContainer2" style="display:none;">Payment 2 container</div>

JS

$(document).change(function () {
    if ($('#Payment1').prop('checked')) {
        $('#PaymentContainer1').show();
    } else {
        $('#PaymentContainer1').hide();
    }

    if ($('#Payment2').prop('checked')) {
        $('#PaymentContainer2').show();
    } else {
        $('#PaymentContainer2').hide();
    }
});
$("#Payment1").click();

jsFiddle

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very little mistake in this code, try this i hope this will work prefectly $(document).ready(function(){ $("#Payment1").attr("checked", true);

if ($('#Payment1').prop('checked')) {
    $('#PaymentContainer1').show();
} else {
    $('#PaymentContainer1').hide();
}

if ($('#Payment2').prop('checked')) {
    $('#PaymentContainer2').show();
} else {
    $('#PaymentContainer2').hide();
}

});

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