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I have the following code and I have problem with jQuery UI Slider. What is my problem:

While the slider is rendered correctly, it acting very strange. What do I mean? Instead of rendering to handlers it is rendering only one, and the slider can slide only until the value 70 witch is the second value into my array. Any idea please on how to solve that problem ?

Here is my code:

HTML:

<td valign="top">
    <input 
        class="slider_hidden" 
        type="hidden"
        name="field_name" 
        value="10,70" 
        id="slider_hidden" 
        data-disabled="0"
        data-min="0"
        data-max="100"
        data-orientation="horizontal"
        data-step="1"
        data-range="1"
    />
    <div class="slider"></div>
    <br />
    <span class="description"><?php echo $description; ?></span>
</td>

JavaScript

$(document).ready(
    function()
    {
        $(".slider").each(
            function()
            {
                var val = $(this).prev('input.slider_hidden').val();
                var min = $(this).prev('input.slider_hidden').data('min');
                var max = $(this).prev('input.slider_hidden').data('max');
                var step = $(this).prev('input.slider_hidden').data('step');
                var slide_disabled = ($(this).prev('input.slider_hidden').data('disabled') == "1" ? true : false);
                var orientation = $(this).prev('input.slider_hidden').data('orientation');
                var range = ($(this).prev('input.slider_hidden').data('range') == "1" ? true : false);

                $(this).slider(
                    {
                        min: min,
                    max: max,
                        step: step,
                        disabled: slide_disabled,
                        orientation: orientation,
                        slide: function(e, ui)
                        {
                            console.log(ui);
                            $(this).prev('input.slider_hidden').val(ui.value);
                        }
                    }
                );

                $(this).slider('option', 'range', range);

                if(range == true)
                {
                    var s = val.split(',');
                    $(this).slider("option", "values", s);
                }
                else
                {
                    $(this).slider("option", "value", val);
                }
            }
        );
    }
);

Note that all values are retrived correctly from hidden field.

share|improve this question
    
You should at least save $(this) (and .prev() as well while you're doing it) inside a variable to speed up your code. –  Robert Koritnik Nov 4 '11 at 16:53
    
It seems like using the range: "min". Any idea, or what may I have wrong with that ? :? –  Merianos Nikos Nov 4 '11 at 17:37

1 Answer 1

up vote 2 down vote accepted

After a long investigation, it seems you can set values or value once it has been initialized !

So I've found no others solutions than doing this : http://jsfiddle.net/7YVVY/1/

It works, but it is not elegant :)

share|improve this answer
    
One uprate only for your try :) I will read the code and I will mark as answer if correct :) Thanks a lot Guillaume Cisco ! :) –  Merianos Nikos Nov 4 '11 at 17:44
    
You are just the best !!!!!! Thanks a lot :) –  Merianos Nikos Nov 4 '11 at 17:50
    
@MerianosNikos: I updated the code a bit, to make it simpler (and faster): jsfiddle.net/7YVVY/3 I'm sure Guillaume won't mind. ;) –  Robert Koritnik Nov 4 '11 at 18:09
    
I already have applyed and work fine ;) Thanks again :) –  Merianos Nikos Nov 4 '11 at 18:10
    
@MerianosNikos: It's also interesting that a further simplification (without an if statement) can be made. Providing both properties (values and value) doesn't hurt. Slider will use the one based on range property value. Interesting and utterly simplified. jsfiddle.net/7YVVY/4 –  Robert Koritnik Nov 4 '11 at 18:18

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