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I am trying to found out if two paths are intersected in Raphael. I have tried getBBox() but that returns the coordinates of a box around the path itself. Is there an easier way to achieve this?

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Hi, there. Did my answer (top voted one below) solve your problem? – Eric Nguyen May 4 '13 at 2:17

The previous answers may have been for an earlier version of Raphael. The API now includes a pathIntersection method which returns an array of intersecting points. You can simply check the length of the return value.

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The API may have the function, but I have never seen it work when using it with two lines ( unclosed paths ). This has been broken for quite a while, I have seen posts in the google group going back to 2012. I am guessing the function works as intended, but should be called areaIntersection. – John W. Clark Aug 3 '15 at 21:15

Bruteforce method. Get all the points for the two path and see if two points are the same.

I made you this but maybe you should come up with a better comparing solution. Depending on how long your paths are, this can be heavy.

var paper = Raphael(0, 0, '100%', '100%');

var path1 = paper.path("M0 0L100 100");
var path2 = paper.path("M100 0L0 100");

var array1 = new Array();
var array2 = new Array();

for(var i = 0; i < path1.getTotalLength(); i++) {
    array1.push(path1.getPointAtLength(i));
}

for(var i = 0; i < path2.getTotalLength(); i++) {
    array2.push(path2.getPointAtLength(i));
}

for(var i = 0; i < array1.length; i++) {
    for(var k = 0; k < array2.length; k++) {
        // the threshold +-1 is important!
        if(array1[i].x < ( array2[k].x + 1 ) &&
           array1[i].x > ( array2[k].x - 1 )) {
               if(array1[i].y < ( array2[k].y + 1 ) &&
                  array1[i].y > ( array2[k].y - 1 )) {
                   alert('yeah'); // uncomment this. It will alert 4 times.
               } 
        }  
    }
}
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Really handy jsfiddle. I modified it so that you can see how and where the intersects are detected and choose the threshold and see tradeoffs between accuracy and intensity. I set it to 10 pixels default as that's a clear one to see how it works. jsfiddle.net/BJQLR/20 If you wanted something to test distance from each point by circle rather than square make some 'square over hypotenuse' maths based on difference between co-ordinates. – user568458 Feb 29 '12 at 18:19

I guess you need to implement something yourself as it seems Raphael doesn't provide this sort of functionality. Here's a circle intersection example that might help. Here's something more specific.

Before running your actual algo you probably want to check if the bounding boxes intersect. If they do, check actual paths.

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Use this lovely intersection library. With that you can do stuff like this:

var shape1 = new Path(pathElement1),
    shape2 = new Path(pathElement2);

var inter = Intersection.intersectShapes(shape1, shape2);

    if(inter.points.length > 0) {
        // yes they intersect!
    }

The inter object in my example contains other good stuff to.

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