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I'm trying to rotate a canvas on every mouseover, but it's only working the first time.
You can play with it here: http://jsfiddle.net/h3Z7j/2/

The reason I'm rotating it 0 degrees is to convert it to canvases on load, since I'm loading img's the first time.

rotation script: http://code.google.com/p/jquery-rotate/downloads/detail?name=jquery.rotate.1-1.js

<div class="gameboard">
    <img width="40" height="40" id="1-1" src="http://www.netbsd.org/images/download-icon-orange.png" alt="">
    <img width="40" height="40" id="2-1" src="http://www.netbsd.org/images/download-icon-orange.png" alt="">
    <img width="40" height="40" id="1-2" src="http://www.netbsd.org/images/download-icon-orange.png" alt="">
    <img width="40" height="40" id="2-2" src="http://www.netbsd.org/images/download-icon-orange.png" alt="">
</div>

$(document).ready(function () {
    $(".gameboard img").each(function () {
        $(this).rotateLeft(0);
    });
    $(".gameboard canvas").mouseover(function () {
        $(this).rotateLeft();
    });
});  

edit
If there are other rotation scripts that work better I'll happily change to that.

share|improve this question
    
I'm not aware of what the rotateLeft() method is doing to your img, but maybe there is another naming after this method is executed. –  EvilP Feb 10 '12 at 10:58
    
Shouldn't I be able to apply something to the rotated canvas after it has been rotated? I'm not sure how though. mouseover->rotateLeft->add new mouse over –  Niklas Feb 10 '12 at 11:00
    
Did you look up the documentation of this libary so far ? –  EvilP Feb 10 '12 at 11:02

2 Answers 2

up vote 1 down vote accepted

Building on Rory's answer you can achieve one spin per mouseover by setting a flag to true/false on mouseover/mouseout:

$(document).ready(function () {
    var stopSpin = false;
    $(".gameboard img").each(function () {
        $(this).rotateLeft(0);
    });
    $(".gameboard").delegate('canvas', 'mouseover', function () {
        if (!stopSpin){
            $(this).rotateLeft();
        }
        stopSpin = true;
    });
    $(".gameboard").delegate('canvas', 'mouseout', function () {
        stopSpin = false;
    });
});

See: http://jsfiddle.net/CK5hh/

share|improve this answer
    
Works like a charm! –  Niklas Feb 14 '12 at 10:27

The problem is because the canvas element is being removed, and then readded to the DOM. This is then losing the mouseover handler placed on it. If you attach your event with delegate instead, it works:

$(document).ready(function () {
    $(".gameboard img").each(function () {
        $(this).rotateLeft(0);
    });
    $(".gameboard").delegate('canvas', 'mouseover', function () {
        $(this).rotateLeft();
    });
});

Although I'm not sure the effect is exactly what you're after :)

Example fiddle

share|improve this answer
    
Looks like this will spin the canvas as long as the mouse is over. I'd like it to just turn once on mouseover and then stop. –  Niklas Feb 10 '12 at 11:04
1  
The problem is because the plugin is removing/adding the element to the DOM. Even though the mouse isn't moving, because a new element is created underneath it, the event is fired. This means the element will constantly spin. I don't believe there is a fix for this without amending the source of the plugin which creates the canvas elements. –  Rory McCrossan Feb 10 '12 at 11:06

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