Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm drawing a 3D pie chart that is calculated with in 3D vectors, projected to 2D vectors and then drawn on a Graphics object. I want to calculate the most left and right point of the circle after projected in 2d. (So not 0 and 1 Pi!) The method to create a vector, draw and project to a 2d vector are below. Anyone knows the answer?

public class Vector3d
{

    public var x:Number;
    public var y:Number;
    public var z:Number;
    //the angle that the 3D is viewed in tele or wide angle.
    public static var viewDist:Number = 700;


    function Vector3d(x:Number, y:Number, z:Number){
        this.x = x;
        this.y = y;
        this.z = z;
    }

    public function project2DNew():Vector
    {
        var p:Number = getPerspective();
        return new Vector(p * x, p * y);
    }

    public function getPerspective():Number{
        return viewDist / (this.z + viewDist);
    }
}
share|improve this question

1 Answer 1

It looks like you posted your 3d perspective transform. The simplest is if the circle isn't rotated:

class Circle
{
    public var radius:Number;
    public var position:Vector3d;

    public function Circle(_radius:Number, _position:Vector3d)
    {
        radius = _radius;
        position = _position;
    }
}

var circ:Circle = new Circle(100, new Vector3d(1, 2, 3));
var leftMost:Vector3d = new Vector3d(circ.x - circ.radius, circ.y);
var rightMost:Vector3d = new Vector3d(circ.y + circ.radius, circ.y);

If you rotate the circle along the y-axis then the points would need to be rotated around the same axis by the same amount. That is, if you have a transform matrix that applies to the circle, just apply the same transform matrix to the leftMost and rightMost vectors as well. Have a look at Matrix3D and it's various rotation methods.

class Circle
{
    public var radius:Number;
    public var position:Vector3d;
    public var transform:Matrix3d;

    public function Circle(_radius:Number, _position:Vector3d)
    {
        radius = _radius;
        position = _position;
    }

    public function getLeftMostProjected():Vector
    {
        var vec:Vector3d = new Vector3d(position.x - radius, position.y, position.z);
        vec = transform.transformVector(vec);
        return vec.project2DNew();
    }

    public function getRightMostProjected():Vector
    {
        var vec:Vector3d = new Vector3d(position.x + radius, position.y, position.z);
        vec = transform.transformVector(vec);
        return vec.project2DNew();
    }
}
share|improve this answer
    
Thanks for the comprehensive answer, but I think I have not clearly explained what I meant. With most right and left point I meant the point that after the 2D projection is most right and left visually. (So the x of the 2d vector) That is not the same as 0 and 1 Pi in a 3d circle with 3d vectors. I first thought that too and it is a pity that I can't add any image. But if you're in a CAD program, and look from the top to a horizontal circle, you will see that the leftmost and rightmost point is not 0 and 1 is Pi in 3d Vectors. –  Olivier de Jonge May 21 '10 at 7:47

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.