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 have a problem in javascript [NOT JQUERY]; i want to create slideshow, for each slide i create that want when user click on it, jump to that slide...

var images = $('#images img'), image;

for(var i = 0; image = images[i]; i++)
{

    var a = document.createElement('span');
    a.onclick = function(){
        var img = image;
        removeClass();
        console.log(img);
        img.className = 'active';
    }

    $('#nav')[0].appendChild(a);

}

in above code i am trying remove active class name from slides and then add active to related slide, but i don't know how can get that slide in span.onclick function

My Code:

<!doctype html>

<head>

    <title>Welcome</title>
    <style>
        #images {position:relative;}
        #images img {position:absolute;top:0;right:0;opacity:0;transition:all 0.8s;-webkit-transition:all 0.8s;}
        .active {opacity:1!important;}
        #nav span {display:inline-block;width:12px;height:12px;background:red;border:1px solid #CCC;cursor:pointer;}
    </style>
</head>
<body>
    <div id="images">
        <img src="1.jpg" class="active" />
        <img src="2.jpg" />
        <img src="3.jpg" />
        <img src="4.jpg" />
        <img src="5.jpg" />
        <img src="6.jpg" />
    </div>
    <div id="nav"></div>
</body>


<script>

    function $(id)
    {
        return document.querySelectorAll(id);
    }

    function removeClass(){
        var images = $('#images img'), image;
        for(var i = 0; image = images[i]; i++)
        {
            image.className = '';
        }
    }


    var images = $('#images img'), image;

    for(var i = 0; image = images[i]; i++)
    {

        var a = document.createElement('span');
        a.onclick = function(){
            var img = image;
            removeClass();
            console.log(img);
            img.className = 'active';
        }

        $('#nav')[0].appendChild(a);

    }

    function start(){
        return setInterval(function()
        {
            var current = $('.active')[0];
            var next = current.nextElementSibling;
            if(!next){
            console.log('noefds f as');
                next = $('#images img:first-child')[0];
            }
            current.className = '';
            next.className = 'active';

        },1000);
    };

    slide = start();

    var holder = $('#images')[0];

    holder.onmouseenter = function(){

        clearInterval(slide);

    }

    holder.onmouseleave = function(){
        slide = start();
    }

</script>

share|improve this question
2  
Why are you mixing DOM and jQuery to select elements? –  epascarello Dec 26 '12 at 20:40
    
there in no jquery, it is my custom dom selector function –  MR.OK Dec 26 '12 at 20:43
    
@MR.OK $('#nav') looks alot like jQuery to me. Or Zepto. –  null Dec 26 '12 at 20:44
    
function $(id) { return document.querySelectorAll(id); } –  MR.OK Dec 26 '12 at 20:45
    
I missed that, a lot of "personal" libraries copied the dollar sign and got screwed when they tried to adopt a library that uses it. So if there might be plans one day to use another larger library, you may want to change it. Just from personal experiences working with other companies. –  epascarello Dec 27 '12 at 13:15

2 Answers 2

up vote 1 down vote accepted

JavaScript doesn't have block scope, so all of the click handlers you create are referring to the same image variable. You can create a scope by introducing a new function and calling it immediately:

var a = document.createElement('span');
a.onclick = (function(img){
    return function() {
        removeClass();
        img.className = 'active';
    };
})(image);

Or slightly cleaner, but you may need to shim forEach in oldIE:

var images = $('#images img'), nav = $("#nav")[0];
[].forEach.call(images, function(image){
    var a = document.createElement('span');
    a.onclick = function(){
        removeClass();
        image.className = 'active';
    }
    nav.appendChild(a);
});
share|improve this answer
    
... but that’s not how you do it. Did you mean to return a function? –  minitech Dec 26 '12 at 20:52
    
yes, so thanks :D –  MR.OK Dec 26 '12 at 20:58

You can restructure your code:

var $images = $('#images img').each(function() {
    var $this = $(this);
    $("<span>Text here</span>").on("click", function() {
        $images.removeClass("active");
        $this.addClass("active");
    }).appendTo("#nav");
});
share|improve this answer
1  
javascript solution plz :| –  MR.OK Dec 26 '12 at 20:48

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.