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.

Hi guys I have made a JqueryUI simple slider,on certain value range I make Image URL and then try to change src attribute.

There are four images I'm trying to change.

Check the jsFiddle here.

I think the code is fine but its not working ,I dont know why ?

share|improve this question
    
...but the slider is not moving :) (FFox) –  Roko C. Buljan Jun 22 '12 at 12:28
    
Take a look at your firebug/chrome console: postRetrmntImage is not defined $("#" + postRetrmntImage).attr('src', ImageName ); –  jantimon Jun 22 '12 at 12:30
    
Thank you guys I was using undefined variable :/ ,that's so stupid of me :-( –  dotNetSoldier Jun 22 '12 at 12:32

6 Answers 6

up vote 2 down vote accepted

Replace this:

$("#" + postRetrmntImage).attr('src', ImageName );

to this:

$("#postRetrmntImage").attr('src', ImageName );

The problem is that youre not assigned any postRetrmntImage variable.

See update jsFiddle demo

share|improve this answer
    
Thank you dear ,I was using undefined variable :/ ,that's so stupid of me :-( –  dotNetSoldier Jun 22 '12 at 12:36

demo http://jsfiddle.net/8Sw5J/

Explanation: Please use this: $("#" + sliderId).prop('src', ImageName ); since in your function you are passing the id as sliderId.

Also If I may suggest use .prop good read here: .prop() vs .attr()

Rest demo you can see how it works,

Hope this helps :)

full code

 $(document).ready(function () {
            makeSingleSliderWithImage('postRetrmntMnthlyPaymt', 0, 10000, 0, 500);
        }
        );
        function makeSingleSliderWithImage(sliderId, minimum, maximum, val, steps) {

            //Display label shud have a X appended
            $('#' + sliderId).slider(
                {
                    //range: 'min',
                    min: minimum,
                    max: maximum,
                    step: steps,
                    //starting values for silders
                    value: val,
                    slide: function (event, ui) {
                        //var ImageURL = "Images/";
                        //var ImageName = "";
                        //var ext = ".jpg";

                        if ((ui.value >= 0) && (ui.value <= 2000))//Basic: 0-2000
                            ImageName = "http://www.iconempire.com/icon-processor/icon40.gif";
                        else if ((ui.value >= 2500) && (ui.value <= 4500))//Moderate: 2500-4500
                            ImageName = "http://aux.iconpedia.net/uploads/14234829766434728.png";
                        else if ((ui.value >= 5000) && (ui.value <= 7000))//Comfortable: 5000-7000
                            ImageName = "http://www.iconempire.com/icon-processor/icon40.gif";
                        else if ((ui.value >= 7500) && (ui.value <= 10000))//Luxury:7500-10,000
                            ImageName = "Luxury";
                        //var fullURL = ImageURL + ImageName + ext;
                        //change Image URL
                        $("#" + sliderId).prop('src', ImageName ); //{ src: fullURL });

                        alert($("#" + sliderId).prop('src'));
                        //change Slider Value
                        $("#" + sliderId + "X").text(ui.value);
                    }
                }
            );
        }​
share|improve this answer

Trying doing this:

 $("#" + postRetrmntImage.toString()).attr('src', ImageName );
share|improve this answer

Change line...

$("#" + postRetrmntImage).attr('src', ImageName );

to...

$("#postRetrmntImage").attr('src', ImageName );
share|improve this answer

assign a value to postRetrmntImage then use prop instead of attr see why prop

var postRetrmntImage="postRetrmntImage";
$("#" + postRetrmntImage).prop('src', ImageName );
share|improve this answer
    
+1 for suggesting prop –  dotNetSoldier Jun 22 '12 at 13:32
    
can't I use $("#postRetrmntImage").prop('src', ImageName ); –  dotNetSoldier Jun 22 '12 at 13:43
    
yes you can, i was trying to say, you can still use your variable –  Rab Nawaz Jun 22 '12 at 14:18

Try this

$("#postRetrmntImage").attr('src', 'newimage.png');
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.