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I have a sample code:

<div style="background: url('test.jpg') no-repeat left center; width: 500px; height: 334px;">
   <div id="button-wrapper" style="position: absolute; opacity: 1; z-index: 100;">
   <input type="button" value="submit">    
   </div>
</div>​

And Jquery

jQuery(document).ready(function(){
    jQuery("div[id^=\'button-wrapper\']").parent().mousemove(function(e){
        jQuery("div[id^=\'button-wrapper\']").css({
            top:e.pageY-5,
            left:e.pageX-5
         });
    });
});​

Error when I mouse move out of the frame (div id="button-wrapper") it's run when out of frame, How to fix it, to only run in the frame ? (demo here)

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You could just use $ instead of jQuery and if you want to refer to an element by id use $("#button-wrapper") –  Bruno Nov 22 '12 at 10:17

3 Answers 3

Define the containment for mousemove in your code.

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Check this link.. code updated...

CHECK THIS LINK

I had Added constraint on that mouse movemnet

 var a = $(this).height()-15;
         var b = $(this).width()-35;
        if(e.pageY < a&& e. pageX < b)
        {
        $('div[id^="button-wrapper"]').css({
                        top:e.pageY-5,
            left:e.pageX-5
         });
    }
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You need to check if the mouse is being moved outside the parent div. See example at - http://jsfiddle.net/qCbwr/40/.

var _c = $(this);
var _p = _c.position();;

if (_top > (_p.top + _c.height())) _top = _p.top + _c.height();
if (_left > (_p.left + _c.width())) _left = _p.left +_c.width();

You will need to allow for the size of the button if you do not want the control to go outside the div entirely.

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