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I have lots of rects automatically created on a Raphael canvas, for simplicity this code only uses two:

for (i = 0; i < 2; ++i) {
    var square = paper.rect(0 + 100*i, 0, 70, 70);
    square.node.setAttribute('id', '_' + i);
    square.node.setAttribute('class', 'foo');
}

which creates this chunk below (as seen with view selection source in Firefox):

<svg height="560" width="560" version="1.1" xmlns="http://www.w3.org/2000/svg"><desc>Created with Raphael</desc><defs></defs><rect class="foo" id="_0" stroke="#000" fill="none" ry="0" rx="0" r="0" height="70" width="70" y="0" x="0"></rect><rect class="foo" id="_1" stroke="#000" fill="none" ry="0" rx="0" r="0" height="70" width="70" y="0" x="100"></rect></path></svg>

The css class indicates the color to fill. I would like to change the class of the each rect, individually, using a click function. I would need something like:

function change_class() {
    //something here
}

From everything I've read, this is done using .node , but here I don't have a separate variable for each rect, given that square was overwritten on each iteration of the for() loop.

One way to do this would be to push all rects to an array, like this:

squares = [];
for (i = 0; i < 2; ++i) {
    var square = paper.rect(0 + 100*i, 0, 70, 70);
    square.node.idx = i;
    square.node.setAttribute('class', 'foo');
    squares.push(square);
}

I could then change the class directly via:

squares[0].node.setAttribute('class', 'other');

BUT... I still don't know how to do it via the general function change_class()... I need something like:

$('rect').click(function() {
    change_class(); // the click function should pass "$(this)" to change_class ?
});

What would be the right jQuery + Raphael method to do this?

Thanks in advance, Adrian

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1 Answer 1

If you want to click the box itself to change its color, you don't need jQuery, you can use Raphael's built-in event method, and refer to the rectangle as this, like so:

     rect.click( function () {
        this.node.setAttribute('class', 'newClass');
     });
share|improve this answer
    
Thanks Mike, will test this on my code. –  dusadrian Jul 8 '11 at 8:13

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