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.

I want to make it so when I click somewhere in my website, the background changes. I have three backgrounds, and I want to make a loop of them.

$(document).ready(function() {
 $('body').click((function(){
  return function()
  {
   if (counter == null) {
    var counter = 1;
   }
   if(counter == 3) {
     $(this).css("background-image","url(3.jpg)");
     $(this).css("background-position","10% 35%");
     var counter = null;
   }
   if(counter == 2) {
     $(this).css("background-image","url(2.jpg)");
     $(this).css("background-position","10% 35%");
     var counter = 3;
   }
   if(counter == 1) {
     $(this).css("background-image","url(1.jpg)");
     $(this).css("background-position","40% 35%");
     var counter = 2;
   }


  }
 })());

});

Why doesn't this work?

share|improve this question
1  
What did your debugging tell you? –  bzlm Oct 15 '10 at 18:06
    
see what happens when you take out the '()' at the end of the 'click' function above. –  Mike Webb Oct 15 '10 at 18:10
    
Did you ever get this resolved successfully? Do you still need help with this? –  jcolebrand Dec 14 '10 at 4:18

6 Answers 6

Your counter variable isn't scoped right, you need one counter variable. Overall though, why not let .toggle() manage this for you? Here's what it would look like:

$(function() {
  $('body').toggle(function(){
     $(this).css({"background-image":"url(1.jpg)", "background-position":"40% 35%"});
  }, function() {
     $(this).css({"background-image":"url(2.jpg)", "background-position":"10% 35%"});
  }, function() {
     $(this).css({"background-image":"url(3.jpg)", "background-position":"10% 35%"});
  });
});

Although the name and common usages suggest that .toggle() only takes 2 functions, it actually takes 2 or more and will cycle through them.

share|improve this answer
    
To much redundancy ... but I won't down-vote, that would be to harsh –  Šime Vidas Oct 15 '10 at 18:13
1  
@Sime - What's reundant? You don't know for sure if he's using a background color, etc...so you can't just use "background", and the position isn't the same on all of them. –  Nick Craver Oct 15 '10 at 18:15
1  
@Sime: The redundancy makes it much easier to understand for someone like the OP who's trying to learn JS. It would be a good exercise for the OP to try and remove some of the redundancy and would help him understand whats happening in the code... –  Aardvark Oct 15 '10 at 18:17
    
You don't see the redundancy? Let's say that you want to also change the background-attachment or some other CSS property defined on the body element (and you have more than a dozen of images that you toggle). How hard would it be to set this new property on every click. Look at my answer, and you will see that I only set $(this).css() once. –  Šime Vidas Oct 15 '10 at 18:30
    
@Sime - If it gets more complicated then sure, use an array of objects and pass one of those to .css(), but as it stands your code is longer and more complicated than this. Don't over-complicate the simple things for some hypothetical scenario, address the question at hand :) –  Nick Craver Oct 15 '10 at 18:37

this no longer refers to the body element, it refers to the anonymous function.

share|improve this answer

Does this code work?

var counter = 1;
$(document).ready(function() {
    $('body').click(function() {
        if (counter == null) {
            counter = 1;
        }
        if (counter == 3) {
            $(this).css("background-image", "url(3.jpg)");
            $(this).css("background-position", "10% 35%");
            counter = 1;
        }
        if (counter == 2) {
            $(this).css("background-image", "url(2.jpg)");
            $(this).css("background-position", "10% 35%");
            counter = 3;
        }
        if (counter == 1) {
            $(this).css("background-image", "url(1.jpg)");
            $(this).css("background-position", "40% 35%");
            counter = 2;
        }
    });
});
share|improve this answer

Your function uses this which is refering to itself, not the element. This would fix it:

$('body').click((function(){
    var $this = $(this);
    return ... {
        $this // use $this instead of $(this)

Also, have a look on jQuery .toggle

share|improve this answer

Your counter declarations are strewn all over the place which makes it difficult to follow what's happening. Further, counter is declared local to the callback function, which means it loses its value every time the function executes.

Here's a simpler solution:

$(function() {  // this is equivalent to $(document).ready(...)
  var counter = 0;
  var images = [
    [ '1.jpg', '40% 35%' ],
    [ '2.jpg', '10% 35%' ],
    [ '3.jpg', '10% 35%' ]
  ];
  $('body').click(function() {
    $(this).css('background-image', 'url(' + images[counter][0] + ')');
    $(this).css('background-position', images[counter][1]);

    // increment counter, wrapping over to 0 when it reaches end of array
    counter = (counter + 1) % images.length;
  });
});

You can easily extend to this to any number of images by simply adding more entries to the images array.

share|improve this answer
    
The background position isn't the same for all the if statements ;) –  Nick Craver Oct 15 '10 at 18:12
    
Oops, didn't notice that. Fixed using an array instead. –  casablanca Oct 15 '10 at 18:15
    
Wow, I also came up with that same approach where I place the data in an array. I did not copy it from you. –  Šime Vidas Oct 15 '10 at 18:26
$(document).ready(function () {

    function changeBgImage() {
        var imgs = [
            ["1.jpg", "10% 35%"],
            ["2.jpg", "10% 35%"],
            ["3.jpg", "40% 35%"]
        ];
        var counter = 0;

        return function() {
            $(this).css({
                "backgroundImage": "url(" + imgs[counter][0] + ")",
                "backgroundPosition": imgs[counter][1]
            });
            counter += 1;
            if (counter === imgs.length) { counter = 0; }
        };      
    }

    $('body').click(changeBgImage());

});

Update:

OK, so here we have another solution. It is basically Nick's answer but without redundancy.

$(function () {    
    var imgs = [["1.jpg", "10% 35%"], ["2.jpg", "10% 35%"], ["3.jpg", "40% 35%"]];
    var i = 0;    
    $("body").click(function () {
        $(this).css({"background-image": "url(" + imgs[i][0] + ")", "background-position": imgs[i][1]});
        if (++i === imgs.length) { i = 0; }
    });    
});
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.