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I'd like to dynamically pass an array value (in this case, String "../name1.jpg" or "../name2.jpg") to the img src <img src="here">. Each time you hover over "Class of 2013", a random image will fade in, then fade out.

Is that possible to pass in a value by calling it as such? <img src="getImages(); ?

How would you do it?

var ImgArray = new Array();
ImgArray[0] = "../name1.jpg";
ImgArray[1] = "../name2.jpg";

$(document).ready(function() {
    show();
});

function show(){
    $(".box").hover(
        function(){ $(this).find(".overlay").fadeIn(); } ,
        function(){ $(this).find(".overlay").fadeOut(); }
    );        
}

function getImages() {
    int i = Math.random() * (max - min) + min;          
    return ImgArray[i];
}

HTML:

<div class="box">
    Class of 2013:
    <div class="overlay"> <!-- Put images to display here...--> 
        <img src="getImages();" alt="image to be displayed" />
    </div>
</div>​

Thank you


EDIT: Current Code:

<html>
<head>
    <script src="jquery.js"></script>

    <script type="text/javascript">     
        var ITLP = new Array();
        ITLP[0] = "/corp/itlp/ITLP%20Bios/DanTurcotte.jpg";
        ITLP[1] = "/corp/itlp/ITLP%20Bios/gomezwilmann.jpg";


        $(document).ready(function() {
            showimg();
        });


        function showimg()
            {
                $(".box > .overlay > img").attr("src",getImages());
                $(".box").hover(
                    function(){ $(this).find(".overlay").fadeIn(); } ,
                    function(){ $(this).find(".overlay").fadeOut(); }
                );        
            }

        function getImages() {
            int i = Math.abs(Math.random());            
            return ITLP[0];             
        }

    </script>


</head> 
<body>

    <div class="box">
        Class of 2013:
        <div class="overlay"> <!-- Put images to display here...-->                 
            <img src="" border="none"/>     
        </div>  
    </div>​

</body>
</html>
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3 Answers 3

up vote 1 down vote accepted

I prefer the classic way:

    $(".box > .overlay > img").attr("src",getImages());

Extension:

function show()
{
    $(".box > .overlay > img").attr("src",getImages());
    $(".box").hover(
        function(){ $(this).find(".overlay").fadeIn(); } ,
        function(){ $(this).find(".overlay").fadeOut(); }
    );        
}

I think your requested way doesn't work, because the browser expect a string for the source attribute.

P.S.: Take an eye on your random function. My Firefox did complain something "(missing ';' before statement")

share|improve this answer
    
Thanks, reporter. Not sure how to use this though –  Growler Jul 23 '13 at 15:04
    
See my first edit –  reporter Jul 23 '13 at 15:07
    
Okay, please see the code edit above. It's my current code –  Growler Jul 23 '13 at 15:13
    
Here my jsfiddle: jsfiddle.net/reporter/sYcUQ –  reporter Jul 23 '13 at 15:35
1  
The definition within the $() uses the normal css selector. So: find elements with class 'box'. Within that elements find elements with css class 'overlay' and within these, find elements with the html tag 'img' –  reporter Jul 23 '13 at 15:51
show 6 more comments

You may try this

var ImgArray = new Array();
// add images

$(document).ready(show);

// Show function
function show(){
    $('img').attr('src', ImgArray[0]).parent().hide();
    var max = ImgArray.length;
    $(".box").hover(
        function(){ $(this).find(".overlay").fadeIn(); },
        function(){ 
            var img = $(this).find(".overlay").find('img');
            var i = Math.floor(Math.random()*max);
            $(this).find(".overlay").fadeOut(function(){
                img.attr('src', ImgArray[i]);
            }); 
        }
    );        
}

DEMO.

share|improve this answer
    
is there a way to display all images in the array at once upon hover over? –  Growler Jul 23 '13 at 16:00
    
At once, how ? One img can show on one image at a time, can you describe it ? –  WereWolf - The Alpha Jul 23 '13 at 19:34
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You want to change the source of the image in your first hover function (the one with fadeIn).

Since you're already using jQuery, just do this:

    function(){ $(this img).attr("src", getImages()); $(this).find(".overlay").fadeIn(); } ,

and set your img's src initially to "". Of course, you could simplify your jQuery if you added an id to the img tag.

EDIT I set up a fiddle with a working example here.

This is the script code:

   var ITLP = [];
   ITLP[0] = "http://lorempixel.com/400/200/nature";
   ITLP[1] = "http://lorempixel.com/400/200/city";

   function getImages() {
       var i = Math.floor(Math.random() * (ITLP.length + 1)); // from https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Math/random?redirectlocale=en-US&redirectslug=JavaScript%2FReference%2FGlobal_Objects%2FMath%2Frandom
       console.log(ITLP[0]);
       return ITLP[0];
   }

   function showimg() {
       $(".box").hover(

       function () {
           console.log("Hover start");
           $(".box > .overlay > img").attr("src", getImages());
           $(this).find(".overlay").fadeIn();
       },

       function () {
           console.log("Hover end");
           $(this).find(".overlay").fadeOut();
       });
   }


   showimg();

Major things I did:

  • Ordered the functions to be declared before they're used.
  • Got rid of the int i declaration that was killing getImages()

To get it this far, I used the console log a lot, and also jsfiddle's JSHint is a big help.

share|improve this answer
    
Thanks Scott. Would I put the function() { ... directly inside the $(document).ready(...? I've set the img src initially to "", but it doesn't even seem to be showing the image, or working at all –  Growler Jul 23 '13 at 15:06
    
Hi, Growler. The line I gave you would replace the second line you have in your hover function. Setting this binding during document(ready) as you have should be a good thing. As reporter mentioned, you do have some bugs in the getImages() function. That may be part of the issue you're having. Check the console and see if it tells you anything. –  Scott Mermelstein Jul 23 '13 at 15:33
    
@Growler Please check my edits, they should help you considerably. –  Scott Mermelstein Jul 23 '13 at 15:47
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