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this is my slideshow's images:

<section id="mainFooter">
            <div class="mainFooter">
                <p class="margRight">Jaafari Housseine &copy; 2013 <span>|</span> <a href="#!/page_privacy">Privacy Policy</a></p>
                <nav class="bgNav">
                    <ul>
                        <li class="active"><a href="images/picture1.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture2.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture3.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture4.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture5.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture6.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture7.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture8.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                        <li><a href="images/picture9.jpg"><img src="images/pagination_act.png" alt="" class="img_act"></a></li>
                    </ul>
                </nav>
                <p class="fright text"><img src="images/envelope.png" alt="" class="envelope">Résidence Harmonie N°19, Boulevard Abdelkarim Khattabi</p>
            </div>  
</section>

The jQuery script i used for that:

<script>
    $('ul li.active')(function(){$(this).removeClass("active")
        .delay(4500)
        .queue(function() {
            $(this).next('li').addClass("active");
            $(this).dequeue();
        });
    })
</script>

please could someone help me please, i tried lot of scripts but nothing goes alright.

share|improve this question
1  
Hello Jeffery! Welcome to stack overflow. If you could go to jsfiddle.net or codepen.io and create a small fiddle illustrating your problem instead of dumping a big piece of code, that would be great! –  Benjamin Gruenbaum Mar 13 '13 at 0:24
    
You should start by fixing the syntax errors displayed in your console. –  Fabrício Matté Mar 13 '13 at 0:26

2 Answers 2

up vote 0 down vote accepted

If you're just trying to cycle which <li> tag has the "active" class on it and your CSS takes care of the rest, then you can do that like this:

<script>
    $(document).ready(function() {
        var items = $("nav.bgNav ul li");
        var index = -1;

        function next() {
            // if not the very first iteration, 
            // remove the active class from prev item
            if (index !== -1) {
                items.eq(index).removeClass("active");
            }
            // go to next item
            ++index;
            // if past end, wrap to beginning
            if (index >= items.length) {
                index = 0;
            }
            // add active class to next item
            items.eq(index).addClass("active");

            // schedule next iteration
            setTimeout(next, 4500);
        }

        next();
    });
</script>

Since your code only works on the active class, this solution assumes you have CSS that makes an image appear when the active class is on it and not appear when there is no active class and handles any transitions you want between images. If you don't have that, then you will need it and you will have to disclose the rest of the relevant page HTML/CSS. The "active" class is not magic. It only does something when combined with CSS.

Working example: http://jsfiddle.net/jfriend00/UnuCL/


Based on new understanding of what you're trying to do, here's a new piece of code that changes the actual img.src to the href of the containing tag. It cycles through each item by default. When the mouse hovers over any given item, the cycling stops and that item displays it's new image. When the mouse leaves that item, it restores that image and then the cycling starts again. You can hover to stop and display that item, stop hovering to start the automatic cycling.

$(document).ready(function() {
    // save original image URL for each
    var items = $("nav.bgNav ul li img");
    items.each(function() {
        $(this).data("orig-src", this.src);
    });

    var index = -1;
    var timer;

    function stop() {
        clearTimeout(timer);
    }

    function restore(i) {
        var oldItem;
        // if not the very first iteration, 
        // remove the active class from prev item
        if (i !== -1) {
            oldItem = items.eq(i);
            oldItem.closest("a").removeClass("active");
            oldItem.attr("src", oldItem.data("orig-src"));
        }
    }

    function display(i) {
        var newItem = items.eq(i);
        // change image .src based on parent <a> href
        newItem.attr("src", newItem.closest("a").attr("href"));

    }

    function next() {
        // restore currently active item
        restore(index);

        // go to next item
        ++index;
        // if past end, wrap to beginning
        if (index >= items.length) {
            index = 0;
        }

        display(index);

        // schedule next iteration
        timer = setTimeout(next, 1000);
    }

    next();

    // now make hover do the same thing
    $("nav.bgNav ul li img").hover(function() {
        var hoverIndex = $(this).closest("li").index();
        stop();
        restore(index);
        display(hoverIndex);        
    }, function() {
        var hoverIndex = $(this).closest("li").index();
        index = hoverIndex;
        next();
    })

    $("nav.bgNav ul li a").click(function() {
        // ignore clicks
        return false;
    });

});

Full working demo: http://jsfiddle.net/jfriend00/ux2Cg/

share|improve this answer
    
Thanks a lot, but the images still not changing. –  Jeffery ThaGintoki Mar 13 '13 at 0:35
    
@JefferyKilluminati - see the notes I added to the end of my answer. The "active" class is not magic - it's just a class name. You have to have CSS that makes only the active <li> tag be visible. Do you have such CSS? Post a jsFiddle of your HTML, CSS and scripts and we can see the whole problem, not just what you have disclosed so far. –  jfriend00 Mar 13 '13 at 0:36
    
the css i made for that: .bgNav a:hover, .bgNav .active a { background-position: left center; background: url("../images/pagination_act.png") no-repeat; } –  Jeffery ThaGintoki Mar 13 '13 at 0:38
    
@JefferyKilluminati - please put the CSS in your question (use the Edit link to modify your question). All forms of code are difficult to read in comments. –  jfriend00 Mar 13 '13 at 0:39
    
@JefferyKilluminati - then, once you apply this code, the remaining problem is probably in your HTML/CSS. Please make a jsFiddle that we can work on to see your entire issue. –  jfriend00 Mar 13 '13 at 0:39

There are many things out there that already do this, it may be easier for you to use one of those. Bootstrap has one, here is a link to it.

It's usage is pretty straightforward.

share|improve this answer
    
Thanks for your answer, however, "Using external library X" for doing something that is doable easily and natively is never considered a good solution to an SO question. –  Benjamin Gruenbaum Mar 13 '13 at 0:31
    
While it is something that can be done natively, external libraries tend to provide stability for edge cases that arise, such as multiple slideshows (which the above solution wouldn't provide). As well, as the OP seems relatively new to web design, introducing him to a library which can be extremely useful seemed like a nice thing to do. –  Nick Mitchinson Mar 13 '13 at 1:13
    
I'm sure it is, however, it has been discussed in meta several times, and it was decided that users should not put answers that say 'use this library' unless the OP asked for it himself. For example, see meta.stackexchange.com/questions/45176/… . It would also fit as a nice comment –  Benjamin Gruenbaum Mar 13 '13 at 1:23
    
Thanks for the link. I dont however (along with a majority of the user base of stackoverflow im sure) keep up with meta. I'm also not quite sure what you mean by 'It would also fit as a nice comment'. –  Nick Mitchinson Mar 13 '13 at 1:34
    
While as an answer your answer is problematic, it could serve as a nice comment. It is commenting on the question, telling users what else could be done. It does not directly answer the question itself –  Benjamin Gruenbaum Mar 13 '13 at 1:38

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