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I am using multiple jquery cycle sliders on a single page that i am working on and using the same code for each of the sliders only the id is incrementing. i know there is a way to do this with a much simpler code. I have tried .each() but it doesn't work so any idea out there?

$('#rest-1 .rest-slider').cycle({
    fx: 'fade',
    timeout: 0,
    speed: 750,
    slideExpr: 'img',
    next: '#rest-1 .slider-next',
    prev: '#rest-1 .slider-prev'
});

$('#rest-2 .rest-slider').cycle({
    fx: 'fade',
    timeout: 0,
    speed: 750,
    slideExpr: 'img',
    next: '#rest-2 .slider-next',
    prev: '#rest-2.slider-prev'
});

$('#rest-3 .rest-slider').cycle({
    fx: 'fade',
    timeout: 0,
    speed: 750,
    slideExpr: 'img',
    next: '#rest-3 .slider-next',
    prev: '#rest-3 .slider-prev'
});
share|improve this question

5 Answers 5

up vote -1 down vote accepted

Untested, but this should work (assuming the ID's are the parent of the slider)

$('.rest-slider').each(function(){
    var id = '#' + $(this).parent().attr('id');
    $(id + ' .rest-slider').cycle({
        fx: 'fade',
        timeout: 0,
        speed: 750,
        slideExpr: 'img',
        next: id + ' .slider-next',
        prev: id + ' .slider-prev'
    });
});
share|improve this answer
    
That won't work. You don't know what the ID of the .rest-sliders are, and even if so, you're not in a calling context where this is the current element. –  RightSaidFred Nov 29 '11 at 0:58
    
I realised that just after I'd posted it :) Edited it to have the parent –  Jay Gilford Nov 29 '11 at 1:00
3  
But the value of this is still unknown. Assuming the code is running in a .ready() callback, this will always be document. –  RightSaidFred Nov 29 '11 at 1:01
    
Thanks for that RightSaidFred. I didn't realise that it didn't pass $(this) to the cycle. How about what I've amended it to? –  Jay Gilford Nov 29 '11 at 1:19
    
The updated code works now but I've chosen nnnnnn's option 2 answer. thanks for the help. i'll keep this code handy. –  sushidev Nov 29 '11 at 1:29

As with most problems of duplicate code, you can encapsulate the parts that don't change into a function. In this case, the simplest solution would be a function that returns an object and takes the next and prev values as parameters.

function createCycleArg(nextVal, prevVal) {
    return {
        fx: 'fade',
        timeout: 0,
        speed: 750,
        slideExpr: 'img',
        next: nextVal,
        prev: prevVal
    };
}

And then...

$('#rest-1 .rest-slider').cycle(createCycleArg(
    '#rest-1 .slider-next', 
    '#rest-1 .slider-prev'));

$('#rest-2 .rest-slider').cycle(createCycleArg(
    '#rest-2 .slider-next', 
    '#rest-2 .slider-prev'));

$('#rest-3 .rest-slider').cycle(createCycleArg(
    '#rest-3 .slider-next', 
    '#rest-3 .slider-prev'));

You could break that down even further and just pass in a number since that's really the only thing that changes.

function createCycleArg(idNum) {
    return {
        fx: 'fade',
        timeout: 0,
        speed: 750,
        slideExpr: 'img',
        next: '#rest-' + idNum + ' .slider-next',
        prev: '#rest-' + idNum + ' .slider-prev'
    };
}

If there is some jquery specific way to do this better I wouldn't know it, but in general, throw the duplicated parts into a function.

share|improve this answer

Three ways come to mind: 1. Create a function that takes the ID as a parameter, 2. Define the IDs in an array and loop through the array, or 3. Use a loop to concatenate the loop counter into the ID string.

So, as I was typing I see another answer popped up with option 1 - see Ed S.'s answer.

Option 2, defining the list of IDs in advance (which will work nicely for IDs in any format, not just numbered ones):

var sliderIDs = ['#rest-1', '#rest-2', '#rest-3'];

$.each(sliderIDs, function(i,val) {
   $(val + ' .rest-slider').cycle({
      fx: 'fade',
      timeout: 0,
      speed: 750,
      slideExpr: 'img',
      next: val + ' .slider-next',
      prev: val + ' .slider-prev'
   }); 
});

Option 3, old-school loop counter concatenation:

for (var i=1; i <= 3; i++) {
   var id = '#rest-' + i;
   $(id + ' .rest-slider').cycle({
      fx: 'fade',
      timeout: 0,
      speed: 750,
      slideExpr: 'img',
      next: id + ' .slider-next',
      prev: id + ' .slider-prev'
   }); 
});
share|improve this answer
    
all your solutions worked but i chose Option 2. thanks! –  sushidev Nov 29 '11 at 1:15

Just use a general selector, along with .each().

$('[id|="rest"] .rest-slider').each(function( i ) {
    $(this).cycle({
        fx: 'fade',
        timeout: 0,
        speed: 750,
        slideExpr: 'img',
        next: '#rest-' + (i+1) + ' .slider-next',
        prev: '#rest-' + (i+1) + ' .slider-prev'
    });
});

You should put the proper tag name before [id|="rest"].

share|improve this answer
$.each([1,2,3,4,5],function(i,v){
    $('#rest-'+v+' .rest-slider').cycle({
        fx: 'fade',
        timeout: 0,
        speed: 750,
        slideExpr: 'img',
        next: '#rest-'+v+' .slider-next',
        prev: '#rest-'+v+' .slider-prev'
    });
})
share|improve this answer
1  
You can't use the selector version of each() on an array, you need to use $.each(... instead –  Clive Nov 29 '11 at 1:01
    
False, it can be used like that, just try it. –  Ivan Castellanos Nov 29 '11 at 1:05
1  
From the docs page: "The $.each() function is not the same as $(selector).each(), which is used to iterate, exclusively, over a jQuery object.". It might work but you shouldn't use it –  Clive Nov 29 '11 at 1:07
    
Ivan: It may work right now but it is an unsupported use. For a general iterator, you should use $.each() like @Clive mentioned. –  RightSaidFred Nov 29 '11 at 1:07
    
Don't forget also to replace '#rest-3... with '#rest-' + v +... –  RightSaidFred Nov 29 '11 at 1:14

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