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.

trying to create a simple slider for an input.

Using a survey gem that adds extra fields. I added a class called "jSlider" to the question and does display the slider, but does not update the input.

html form generated:

<fieldset class="q_default jSlider" id="q_353" name="17) On a scale of 0 to 10, ...">
  <legend><span>17) On a scale of 0 to 10, ...</span></legend>
  <ol><span class='help'></span>
    <input id="r_18_question_id" name="r[18][question_id]" type="hidden" value="353" />
    <input class="" id="r_18_answer_id" name="r[18][answer_id]" type="hidden" value="3840" />
    <li class="string optional" id="r_18_string_value_input"><input id="r_18_string_value" maxlength="255" name="r[18][string_value]" type="text" /></li>
  </ol>
</fieldset>

My js is:

$(".jSlider").each(function(){
    var newSlider = '<div style="margin-top:20px;margin-bottom:20px;" id="slider">0</div><br />';
    $(this).append(newSlider);
    $("#slider", this).slider({
        value:0,
        min: 0,
        max: 10,
        step: 1,
        slide: function( event, ui ) {
            alert(ui.value);
            // when append, it adds to the fieldset
            // first parent is the fieldset, next should be the ol, then the li 
            //       finally arriving at the input field
            $(this).parent().next("ol").next("li").next("input:text").val(ui.value);

                    }

    });

   });

EDIT

Proposed edit to fix duplicate id breaks again.

$(".jSlider").each(function(){
    var id = $(this).attr("id");
    var sliderID = id + "_slider";  
    alert(sliderID);
    var newSlider = '<div id="' + sliderID + '"></div><br />';
    $(this).append(newSlider);
    // or even
    // $(sliderID).slider({
    $(sliderID, this).slider({
        value:0,
        min: 0,
        max: 10,
        step: 1,
        change: function( event, ui ) {
               // alert(ui.value);
                // when append, it adds to the fieldset
                // first parent is the fieldset, next should be the ol, then the li 
                //       finally arriving at the input field
                $(this).closest('fieldset').find('input:text').val(ui.value);

                        }

    });

   });
share|improve this question
    
Duplicate IDs are bad. –  ThiefMaster Jul 24 '11 at 20:12
    
Comes from form generator, not me. –  pcasa Jul 24 '11 at 20:30
    
Doesn't matter. They are not allowed and will most likely break things. You need to fix your form generator if it uses the same ID twice. However, I was talking about the <div id="slider"> which doesn't look generated... –  ThiefMaster Jul 24 '11 at 21:11
    
You are right, that does come from me. I edited the question showing how I TRIED to correct this, but it wouldn't work. Maybe I'm missing something? jQuery is not my strong suit. –  pcasa Jul 24 '11 at 22:03

2 Answers 2

up vote 0 down vote accepted

You could do (you should use the stop event or the change event):

    stop: function( event, ui ) {
        alert(ui.value);
        // when append, it adds to the fieldset
        // first parent is the fieldset, next should be the ol, then the li 
        //       finally arriving at the input field
        $(this).closest('fieldset').find('input:text').val(ui.value);

                }
share|improve this answer
    
Thanks, Can I ask why the background color won't fill in? If I add slider to div already existing on page it works correctly but when I add it this way, it doesn't update the background color. –  pcasa Jul 24 '11 at 20:59

To update a field:

$('input#myfield').val($('#slider').slider("option", "value"));

The script generates duplicate IDs (new ID #slider in every loop). Using $(this) will prevent from misbehaving scripts:

$('.jSlider').each(function(){
    $(this).slider({..});
};

EDIT 28.7.: using var $newSlider which extends var newSlider so function $.slider() may be used:

$(".jSlider").each(function(){
   var $newSlider = $('<div id="' + $(this).attr("id") + '">');
   $(this).append($newSlider);
   $newSlider.slider(options);});

$.append() accepts a definition for an HTML element, no closing tags are required.

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.