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've have an image slider but I need more than one slider on the same page. Is it possible to copy my function so it does not interfere with the original?

HTML

<div id="slideshow">
   <div>
     <img src="http://farm6.static.flickr.com/5224/5658667829_2bb7d42a9c_m.jpg">
   </div>
   <div>
     <img src="http://farm6.static.flickr.com/5230/5638093881_a791e4f819_m.jpg">
   </div>
</div>

CSS

#slideshow { 
    margin: 50px auto; 
    position: relative; 
    width: 240px; 
    height: 240px; 
    padding: 10px; 
}
#slideshow > div { 
    position: absolute; 
    top: 10px; 
    left: 10px; 
    right: 10px; 
    bottom: 10px; 
}

JQuery

$(function() {

            $("#slideshow > div:gt(0)").hide();

            setInterval(function() { 
              $('#slideshow > div:first')
                .fadeOut(1000)
                .next()
                .fadeIn(1000)
                .end()
                .appendTo('#slideshow');
            },  3000);

});
share|improve this question

3 Answers 3

up vote 2 down vote accepted

I'm not sure if creating your own function is really necessary for this. Horen gave a good answer, but when implementing it, you realize that the code needs to be tweaked slightly to handle the code distinguishing between appending a child to its own slideshow or another one. For this, I used the .each() function to 'sandbox' each slideshow.

There was also an error when you use more than two pictures. The way I handled this is to hide all but the second image on load instead of just hiding the first.

Here's the final markup I used:

Demo: http://jsfiddle.net/F4nTJ/2/

css

.slideshow { 
    margin: 50px auto; 
    position: relative; 
    width: 240px; 
    height: 240px; 
    padding: 10px; 
}
.slideshow > div { 
    position: absolute; 
    top: 10px; 
    left: 10px; 
    right: 10px; 
    bottom: 10px; 
}

html

<div class="slideshow">
   <div>
       <img src="http://farm6.static.flickr.com/5224/5658667829_2bb7d42a9c_m.jpg"/>
   </div>
   <div>
       <img src="http://farm6.static.flickr.com/5230/5638093881_a791e4f819_m.jpg"/>
   </div>
</div>
<div class="slideshow">
   <div>
       <img src="http://farm6.static.flickr.com/5230/5638093881_a791e4f819_m.jpg"/>
   </div>
   <div>
       <img src="http://farm6.static.flickr.com/5224/5658667829_2bb7d42a9c_m.jpg"/>
   </div>
</div>

javascript

$(function() {
    $(".slideshow").each(function(){$(this).children().not(":nth-child(2)").hide();});

    setInterval(function() {
        $('.slideshow').each(function(){
            $(this).children(':first')
            .fadeOut(1000)
            .next()
            .fadeIn(1000)
            .end()
            .appendTo($(this));
        });
    },  3000);
});
share|improve this answer
    
Yes this method seems best. Is it easy to change the timings or do I need to create separate functions? –  Chaddly Apr 1 '13 at 19:23
    
I think an adequate way of achieving this would be to add a data-interval attribute to the tag. Here: jsfiddle.net/F4nTJ/3 –  Evan Kennedy Apr 1 '13 at 19:34
    
data-interval definitely helped. Although my containers need to be different sizes. I tried creating separate functions and separate css classes but it doesnt seem to work correctly. The first container quits functioning and the other 3 keep displaying incorrectly. –  Chaddly Apr 1 '13 at 20:00
    
Actually, the top one works for one transition if I give it a small data-interval. Ill make a JSFiddle to explain. –  Chaddly Apr 1 '13 at 20:13
    
jsfiddle.net/trSTk (I just used colors instead of generating 12 different photos). Instead of starting with the first div, they start on the second div, in this case Green. –  Chaddly Apr 1 '13 at 20:27

Yes, give it a class instead of an id

In HTML change id="slideshow" to class="slideshow" and in CSS and jQuery change #slideshow to .slideshow

Then you can add a second (and more) slideshow containers to your HTML. Just change the nested image sources and you have different slideshows - fun!

share|improve this answer
    
Great tip, it makes much more sense now. I did that and the containers are messing up... kind of hard to explain. Here is a jsfiddle showing the problem: jsfiddle.net/xEYVc Do I need to create separate functions? –  Chaddly Apr 1 '13 at 19:13

This is the situation when you should consider writing your own plugin:

$.fn.slider = function() {
    return this.each(function() {
        var $self = $(this); 
        $(this).children("div:gt(0)").hide();
        setInterval(function() {
            $self.children('div:first')
                .fadeOut(1000)
                .next()
                .fadeIn(1000)
                .end()
                .appendTo($self);
        }, 3000);
    });
};

$('.slideshow').slider();

http://jsfiddle.net/pnp8m/2/

share|improve this answer
    
img tags should be closed appropriately /> (HTML markup) –  Roko C. Buljan Apr 1 '13 at 21:55
    
@roXon with this doctype it's not necessary. –  dfsq Apr 2 '13 at 3:54

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.