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I have four classes show,hide1,hide2, and hide3. I want to change each of these classes and replace it with the one next to it. In other words, my jQuery code looks like this...

$(".show").removeClass("show").addClass("hide1");
$(".hide1").removeClass("hide1").addClass("hide2");
$(".hide2").removeClass("hide2").addClass("hide3");
$(".hide3").removeClass("hide3").addClass("show");

The problem is that the four classes end up all having the show class which is not what I want. I just want the classes of show to convert to hide1, hide1 convert into hide2, etc. How could I write the code so that those four lines all happen at once, instead of one at a time?

share|improve this question
    
I understand the question, but why dont you just remove the first and add the last class hideX? Whats your motivation? – toxicate20 Nov 21 '12 at 23:52
    
just out of curiosity, you want that to happen on click... by clicking some button or? – Roko C. Buljan Nov 21 '12 at 23:58
1  
@roXon yes I have a button. – jason328 Nov 22 '12 at 0:00
up vote 2 down vote accepted

Just select each group first, then alter:

// read
var $show = $('.show');
var $hide1 = $('.hide1');
var $hide2 = $('.hide2');
var $hide3 = $('.hide3');

// write
$show.removeClass('show').addClass('hide1');
$hide1.removeClass('hide1').addClass('hide2');
$hide2.removeClass('hide2').addClass('hide3');
$hide3.removeClass('hide3').addClass('show');
share|improve this answer
    
Thanks. It works. – jason328 Nov 22 '12 at 0:07
3  
It works but... yuk. This code is far from DRY (no offense to the answerer, it’s correct after all) – David Nov 22 '12 at 0:10
    
I like non-DRY code when trying to learn something. DRYing it up is for something when you are refactoring your code. – jason328 Nov 22 '12 at 0:16
    
@jason328 sure, I get that. Everyone has their own ways... – David Nov 22 '12 at 0:17
    
@David agreed. I wanted to convey the separation more than anything else; I was willing to gamble that someone else would show something fancy; – Matt Ball Nov 22 '12 at 0:44

If you save the classes in an array like this:

var classes = ['show','hide1','hide2','hide3'];

You can do fancy stuff like this:

$('.'+classes.join(',.')).attr('class', function(i) {
   return classes[i+1] || classes[0];
});​

Demo: http://jsfiddle.net/7DuEV/

share|improve this answer
    
wait, I'm lost. I learned that array is === [], and string === ' ' ;) ... – Roko C. Buljan Nov 22 '12 at 0:05
2  
I’m just used to splitting strings for smaller footprints, I probably shouldn’t do that when writing clear answers though... correcting. – David Nov 22 '12 at 0:07
    
I was just kidding, but nice edit any way. For beginners this one will be more appropriate, that's for sure. – Roko C. Buljan Nov 22 '12 at 0:09
    
+1 way to stay DRY! – Joseph Silber Nov 22 '12 at 0:40
1  
How about return classes[(i+1) % classes.length] instead? – Matt Ball Nov 22 '12 at 0:45

Do it this way,

function circulateClass(c){
    var i, cl=[];
    for(i=0;i<c.length;i++)
        cl[c[i]]=$("."+c[i]);

    for(i=0;i<c.length;i++)
        cl[c[i]].removeClass(c[i]).addClass(c[(i+1)%c.length]));
}

circulateClass(["show","hide1", "hide2", "hide3"]);
share|improve this answer

Just change the order...

$(".show").removeClass("show").addClass("hide1");
$(".hide3").removeClass("hide3").addClass("show");
$(".hide2").removeClass("hide2").addClass("hide3");

And for the last one, filter by the class name:

$(".hide1").filter(function(){
    return !$(this).hasClass('show');
}).removeClass("hide1").addClass("hide2");
share|improve this answer

jsBin demo

c = 0; // zero based index n (set initial one)

var $el = $( '#parent' ).find( 'div' );
$el.hide().eq( c ).show();

$( '#button' ).click( function() {
   $el.hide().eq( ++c % $el.length ).show(); 
});  
share|improve this answer

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