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.

Ive that small Fiddle

http://jsfiddle.net/5XXdJ/

    <img src="http://placehold.it/333/fe3/img/picture2.jpg" id="bg" /><br />

    <a href="" title="Switch" class="menulink">DE</a>
<a href="" title="Switch" class="menulink2">EN</a>
<a href="" title="Switch" class="menulink3">FR</a>

$(function() {
 $('.menulink').click(function(e){
     e.preventDefault();
   $("#bg").attr('src',"http://placehold.it/333/3ef/img/picture1.jpg");
 });

$('.menulink2').click(function(e){
     e.preventDefault();
   $("#bg").attr('src',"http://placehold.it/333/fe3/img/picture2.jpg");
 });

     $('.menulink3').click(function(e){
     e.preventDefault();
   $("#bg").attr('src',"http://placehold.it/333");
 });
});

It works fine but my problem is:

I need to add an background image to every linkclass for selected/active state and inactive/default state, if i click another link on page.

For example the link "de" has default a white bg-image and if i click the link the bg-image changes to a black image for selected state.

If i click now "en" it will change the "de" link back into inactive state with the white background image and set the "en" bg-image-link into selected state-imagelink and will remove it if another link will be clicked.

I hope someone has an idea :)

share|improve this question
    
I'm confused. Are you talking about changing the big img, or the color behind the link itself? Are you trying for something like radio-buttons? –  James Curran Oct 20 '12 at 11:46
    
No, i want to change the bg image if i click a link, for example: de has a white bg image if i click it it will be yellow, en has an red bg image if i click on that bg-image from de-link will change back to white, and the default bg image from en will change from red to any other color for example blue. –  Susan Oct 20 '12 at 13:19
    
@Susan I have added another solution, i think it will the right solution what you are looking for. –  Ram Ch Oct 20 '12 at 21:19

5 Answers 5

up vote 0 down vote accepted
    $('.menulink').click(function(e){
        e.preventDefault();
        $("#bg").toggleClass('cls2')
    });

    $('.menulink2').click(function(e){
        e.preventDefault();
        $("#bg").toggleClass('cls3')
    });

    $('.menulink3').click(function(e){
        e.preventDefault();
        $("#bg").toggleClass('cls4')
    });

http://jsfiddle.net/sameerast/5XXdJ/39/ I did changes on your fiddle, this fiddle could help you.

share|improve this answer

I'd probably add references to the different images from CSS-classes, and then add/remove them as necessary in the JavaScript. For example:

http://jsfiddle.net/HTL2p/

HTML:

<img src="http://placehold.it/333/fe3/img/picture2.jpg" id="bg" /><br />
<!-- same class on all 3 -->
<a href="" title="Switch" class="menulink">DE</a>
<a href="" title="Switch" class="menulink">EN</a>
<a href="" title="Switch" class="menulink">FR</a>

CSS:

/* The default (or "not selected") style */
.menulink {
    background-image: url("http://placehold.it/333");
}

.menulink.selected {
    background-image: url("http://placehold.it/333/fe3/img/picture2.jpg");
}

​ JavaScript:

$(function() {
    $('.menulink').click(function (e) {
        e.preventDefault();

        $('.menulink.selected').removeClass('selected');
        $(this).addClass('selected');
    });
});
share|improve this answer
    
I dont want to change the js code wich is inside :) thats a function i would like to use for another script. –  Susan Oct 20 '12 at 13:11
    
Im sorry i mean: i would like to use for each link his own 2 images for inactive and active, so i have to add that function three times for each link? thank you –  Susan Oct 20 '12 at 13:17
 <img src="http://placehold.it/333/fe3/img/picture2.jpg" id="bg" /><br />
 <div id="links">
  <a href="" title="Switch" class="menulink">DE</a>
  <a href="" title="Switch" class="menulink2">EN</a>
  <a href="" title="Switch" class="menulink3">FR</a>
 </div>

<style>
   .active{
     background-image: url("http://placehold.it/333");
   }
</style>


    $(function() {    
     $('#links a').click(function(e){
     e.preventDefault();
     var className = $(this).attr('class');
     if (className == 'menulink') {
        $("#bg").attr('src',"http://placehold.it/333/3ef/img/picture1.jpg");
    } else if (className == 'menulink2')  {
         $("#bg").attr('src',"http://placehold.it/333/fe3/img/picture2.jpg");
    } else {
         $("#bg").attr('src',"http://placehold.it/333");
    }
    $('#links a').each(function() {
        $(this).removeClass('active');
    });

     $(this).addClass('active');

 });
});

http://jsfiddle.net/5XXdJ/38/

share|improve this answer
    
Thank you thats nice, but what if i have for each link his own images? not one for all? That was my problem wich i cant figure out :) For example: de has one black and one white image for active and inactive. en has yellow and green and fr has brown and red? –  Susan Oct 20 '12 at 13:12

you can try this, i think you are looking for this kind of jquery

$(this).css("background-image", "url(/active.jpg)");

share|improve this answer

HTML:

<div id="container" class="menulink" style="height:300px;width:300px"></div></br>
<div id="links">
  <a href="" title="Switch" id="menulink" class="menulink">DE</a>
  <a href="" title="Switch" id="menulink2">EN</a>
  <a href="" title="Switch" id="menulink3">FR</a>
</div>

CSS:

.menulink {
    background-image: url("http://placehold.it/333/3ef/img/picture1.jpg");
}
.menulink2 {
    background-image: url("http://placehold.it/333/fe3/img/picture2.jpg");
}
.menulink3 {
    background-image: url("http://placehold.it/333");
}

JAVASCRIPT:

$(function() {    
    $('#links a').click(function(e){
      e.preventDefault();
      var id= $(this).attr('id');
      $('#container').attr('class', '');
      $('#links a').each(function() {
        $(this).attr('class', '');
      });
     $('#' +id).addClass(id);
     $('#container').addClass(id);       
 });
});

http://jsfiddle.net/5XXdJ/49/

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.