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I'm currently creating some kind of slideshow.. It's just a floorplan, so it shouldnt be neat looking. I'm using link numbers to specify floors. When clicked on one of the links, the corresponding floor image will be shown.

Below the code I currently have.. but the src of the image doesn't change on click. What am I doing wrong?

Thanks!

        <div id="bovengedeelte">
        <img src="image1.png" id="plattegrond" width="300" height="300" alt="plattegrond" />
        </div>

        <div id="ondergedeelte">
        <script type="text/javascript">
        $("a.floor0").click(function(event){
          $("img.plattegrond").attr("src","floor0.png");
        });
            $("a.floor1").click(function(event){
          $("img.plattegrond").attr("src","floor1.png");
        });     
            $("a.floor2").click(function(event){
          $("img.plattegrond").attr("src","floor2.png");
        });     
        $("a.floor3").click(function(event){
          $("img.plattegrond").attr("src","floor3.png");
        });         
        $("a.floor4").click(function(event){
          $("img.plattegrond").attr("src","floor4.png");
        });         
        $("a.floor5").click(function(event){
          $("img.plattegrond").attr("src","floor5.png");
        });         </script>
        <p>Kies een verdieping</p>
        <a id="floor0" href="#">0</a><a id="floor1" href="#">1</a><a id="floor2" href="#">2</a><a id="floor3" href="#">3</a><a id="floor4" href="#">4</a><a id="floor5" href="#">5</a>
        </div>

**to everyone: It's still not working after all your solutions. Thanks already! Can someone check the whole code and see what i'm doing wrong? :s

http://prototyping.iscs.nl/

**

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1  
Because you are using a.floor1 and it should be a#floor1, etc.... –  Jay Blanchard Nov 23 '12 at 13:52

3 Answers 3

up vote 2 down vote accepted

All you need is this:

Fiddle demo

    <div id="bovengedeelte">
          <img src="image1.png" id="plattegrond" width="300" height="300" alt="plattegrond" />
    </div>

    <div id="ondergedeelte">

        <p>Kies een verdieping</p>
        <a href="#">1</a>
        <a href="#">2</a>
        <a href="#">3</a>
        <a href="#">4</a>
        <a href="#">5</a>

    </div>

jQ:

$(function(){ // document ready shorthand

    $('#ondergedeelte a').click(function( e ){
         e.preventDefault();
         var newImgUrl = 'floor'+ $(this).text() +'.png' ;
         $('#plattegrond').attr('src', newImgUrl );
    });

});
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1  
that's the most robust solution out of the three. Really nice! –  Morgan Wilde Nov 23 '12 at 14:00
    
Just copied it over to my code.. Somehow it is still not working. Can you check out what i'm doing wrong? Check the URL link in the OP and check the source code please. P.s. The code looks really neat and clean. And the fiddle is working too, so I don't see why mine isn't. :s –  Sander Schaeffer Nov 23 '12 at 14:23
    
@SanderSchaeffer edited my code: you need to wrap it into a document ready as I did –  Roko C. Buljan Nov 23 '12 at 14:25

So you're not correctly searching for a with class instead of what you have an id. This will work:

$("a#floor5").click(function(event) {
    $("img#plattegrond").attr("src","floor5.png");
});

@Jay Blanchard in the comments is totally right.

Also, a good way to debug and see if you found the right element is to do a console.log with your jQuery object like so: console.log($("a#floor5")); if it does print out the element you're looking for, then you're fine to proceed.

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Because you are using a class in your jQuery selector instead of an id. Additionally you can shorten your jQuery code like this -

$('a').click(function(e) {
    e.preventDefault();
    var thisNumber = id.substr(id.length - 1);
    $('img#plattergrond').attr('src', 'floor' + thisNumber + '.png');
});

Now no matter how many links or images added they will be handled properly.

share|improve this answer
1  
you missed that his img also is defined with the id property. Also, what happens if he has more than one a on his page I.e not just the ones intended to change images? Something more robust would be needed :) –  Morgan Wilde Nov 23 '12 at 13:59
    
Absolutely Morgan - his links for the photos should have a class applied to them. –  Jay Blanchard Nov 23 '12 at 14:00
    
I feel roxon did just solve all these problems for us. –  Morgan Wilde Nov 23 '12 at 14:02
    
I can't get your code working.. :s already changed $('img.plattergrond')attr to $('img #plattergrond')attr –  Sander Schaeffer Nov 23 '12 at 14:05
    
Need to change from class to id, an edit has been made –  Jay Blanchard Nov 23 '12 at 14:05

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