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I have two images stacked. With setInterval(), the top one fades away, exposing the second. Then the top image switches to the bottom's src while invisible, and becomes opaque again. The second image changes to the next image and waits for the setInterval() to fade the top image and do it all over again.

It all works great, except the first time around; There's no fade. What am I not seeing?

This happens on all firefox and chrome and I assume all others.

HTML

    <script type="text/javascript">
    setInterval('swapImage()', 5000);
    var galleryCount = 3;   
    </script>

    ...

    <img id="image" src="images/gallery/01.jpg" />
    <img id="imagenext" src="images/gallery/02.jpg" />

Javascript

function swapImage(imageToFadeID)
{
    $("#image").animate
    (
        { "opacity": "0" },
        "slow",
        "linear",
        changeImage()
    );
};

var i = 1;

function changeImage()
//counter +1
{
i = i + 1;
//add "0" to image number "j" if less than 10.
if (i < 10)
    {
    var j = "0" + i;
    }
else
    {
    j = i;
    }
//change top image to match bottom
var topImage = document.getElementById("imagenext").src;
document.getElementById("image").src = topImage;
//make top image reappear
document.getElementById("image").style.opacity = '1';
//change out bottom image to next
var btmImage = "images/gallery/" + j + ".jpg";
document.getElementById("imagenext").src = btmImage;
//reset counter if at end
if (i > galleryCount - 1)
    {
    i = 0;
    }

}
share|improve this question

1 Answer 1

up vote 1 down vote accepted

I looks like you're invoking changeImage instead of passing it as a callback to animate:

Wrong:

function swapImage(imageToFadeID)
{
    $("#image").animate
    (
        { "opacity": "0" },
        "slow",
        "linear",
        changeImage()   // <--- !!! Remove the parentheses from this line!
    );
};

Right:

function swapImage(imageToFadeID)
{
    $("#image").animate
    (
        { "opacity": "0" },
        "slow",
        "linear",
        changeImage
    );
};
share|improve this answer
    
That was it. Thanks! Why can't you use the paranthesis in the complete function? Does that mess up the syntax? What if I needed to use a variable there? –  RyanJMcGowan Mar 13 '12 at 1:18
    
With parentheses it's a function call - changeImage gets invoked and only its return value gets handed to the animate function. Without parentheses it's just the function itself - you hand that to animate(), the animation gets performed and when it's complete animate() invokes that function you passed. –  Niko Mar 13 '12 at 1:27
    
If you need to pass arguments to changeImage, wrap another function around that: animate(..., "linar", function() { changeImage(param1, param2); }); –  Niko Mar 13 '12 at 1:27
    
OK, thank you. I'll keep this in my reference. –  RyanJMcGowan Mar 13 '12 at 1:40

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