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i am currently trying to write a small program with jquery. It should animate 5 pictures to move over the browser interface and after they reached their "destination", the function should be called again, reset the pictures to their starting position and animate them again. The goal of this is to achieve a fluent, infinite parallax effect. The only problem is : When i execute this, the only thing you see on the browser (Chrome) are the overlapping pics - but no animation. I have no idea how else to solve this, even if it might be obvious to others :/

<!DOCTYPE html>
<html>
    <head>
        <title>JQuery/HTML/CSS</title>
        <link rel="stylesheet" href="_css/style.css">
        <script type="text/javascript" src="_js/jquery-1.10.2.js"></script>
        <script type="text/javascript">
            $(document).ready( function() {

                function inout() {
                    //set starting point
                    $("#superman").offset({ top: "500px", left: "-20px"});
                    $("#hintergrund").offset({ top: "50px", left: "5px"});
                    $("#berg-vorn").offset({ top: "85px", left: "5px"});
                    $("#berg-hinten").offset({ top: "60px", left: "5px"});
                    $("#vordergrund").offset({ top: "50px", left: "5px"});                                

                    //animate everything
                    $("#superman").animate({left: "800px"}, 2000, "slow");
                    $("#superman").animate({top: "400px"}, 2000, "slow");
                    $("#superman").animate({"left": "750px"}, 2000,"slow");
                    $("#superman").animate({"top": "450px"}, 2000,"slow");
                    $("#superman").animate({"left": "1000px"}, 2000,"slow");
                    $("#hintergrund").animate({"left": "-1000px"},2000,"slow");
                    $("#berg-vorn").animate({"left": "-1000px"},2000,"slow");
                    $("#berg-hinten").animate({"left": "-1000px"},2000,"slow");
                    //start again in the complete:

                    $("#vordergrund").animate({"left": "-1000px"},2000,"slow", complete: function(){
                        inout();
                    });


                };
            )};

        </script>
    </head>
    <body>
        <div id="content">
            <div id="hintergrund">
                <img src="images/himmel.png" alt="Himmel">
            </div>
            <div id="berg-hinten">
                <img src="images/berge2.png" alt="berge-hinten">
            </div>
            <div id="berg-vorn">
                <img src="images/berge.png" alt="berge-vorne">
            </div>
            <div id="vordergrund">
                <img src="images/vorne.png" alt="Vordergrund">
            </div>
            <div id="superman">
                <img src="images/superman.png" alt="Superman">
            </div>
        </div>
    </body>
</html>

Obama
share|improve this question
    
Your animate() calls all start at the same time. The animate() function returns immediately, not after the animation is done. You need to chain your animations, e.g.: $("#superman").animate({left: "800px"}, 2000, "slow").animate({top: "400px"}, 2000, "slow").animate({"left": "750px"}, 2000,"slow"); Otherwise javascript will try to do everything at once and fail. –  Hamza Kubba Oct 14 '13 at 20:09
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