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 some scripts where I want to update a div when a radio button is changed. Further more I store the value of the selected radio in a sessionStorage, so that the according radio button stays selected when the page is visited again.

My problem is, that if I use my sessionStorage script and my update script, the update script doesn't work anymore and just keeps the value stored in the session.

I mean this line particularly:

inhalt_time = $("input[type='radio'][name='chooseTime']:checked").val();

If I remove that line:

$("input[type='radio'][name='chooseTime']").val(chosen_time).prop('checked', true);

the update script works again.

Does anyone know how to avoid this conflict?

Here is my html:

<div class="chooseTime">
   Bitte w&auml;hlen Sie ihr gew&uuml;nschte Lieferzeit.
   <label class="radio">
      <input type="radio" name="chooseTime" value="06:00 Uhr - 10:00 Uhr" />
      06:00 Uhr - 10:00 Uhr
   </label>
   <label class="radio">
      <input type="radio" name="chooseTime" value="10:00 Uhr - 14:00 Uhr" />
      10:00 Uhr - 14:00 Uhr
   </label>
   <label class="radio">
      <input type="radio" name="chooseTime" value="15:00 Uhr - 17:00 Uhr" />
      15:00 Uhr - 17:00 Uhr
   </label>
</div>

My jquery for the update:

$('.chooseTime').on('change', 'input[type=radio]', function() {
     updateAnzeige();
});

function updateAnzeige() {
    inhalt_time = $("input[type='radio'][name='chooseTime']:checked").val();
    if(inhalt_time === undefined) {
        inhalt_time = "<span class='red'>Bitte wählen Sie eine gewünschte Lieferuhrzeit aus.</span>";
    }
    $('.anzeige').html(inhalt_time);            
}

My jquery for the sessionStorage:

if(sessionStorage.getItem("lieferzeitpunktart") == "Custom") {
    chosen_time = sessionStorage.getItem("lieferzeitpunkt_time");
    $("input[type='radio'][name='chooseTime']").val(chosen_time).prop('checked', true);
}
share|improve this question
    
Give them different names. –  Serge Seredenko Oct 10 '13 at 19:41
    
Nope, that's not the problem. –  Sebsemillia Oct 10 '13 at 19:57

1 Answer 1

up vote 0 down vote accepted

Doh!! The answer is so simple.

By using .val(chosen_time) in $("input[type='radio'][name='chooseTime']").val(chosen_time).prop('checked', true); I gave each radio button the same value instead of checking for the radio with the value I was looking for..

The correct line of code is of course:

$("input[type='radio'][name=chooseTime][value='"+chosen_time+"']").attr('checked', true);
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.