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Ok, so I have a ray that's coming down from a known angle. I know the angle, the ray's length, the top and bottom end's coordinates. I chose a predefined (x,y) bottom end and with sin() and cos() I managed to determine the (x,y) position of the top end of the ray in order to maintain the angle. But what I've done so far is draw the ray in it's starting position. In order for me to move it while maintaining the angle, I need velocity.

I have this example http://www.processing.org/learning/topics/reflection1.html but I just can't figure out how to calculate that velocity. If you guys could throw me some piece of code or make me understand how to do it, I would be so grateful.

I'm coding this in Processing. If you could explain to me in this language it will be great, if not... plain word explanations will suffice. Thank you!

L.E.

void RayRoad(float angle)
{
//h is the hypothenuse of a right triangle and also my ray
//knowing the angle and h, i calculate the opposite and adjacent

float h=3*linii, o, a, Jx,Jy;
float theta=radians(angle);
o=h*sin(theta);
a=h*cos(theta);

//(X1,Y1) bottom end of ray are known
//I determine de top end of the ray (X2,Y2) using a and o
X2=X1+a;
Y2=Y1-o;
MoveRay();
}

void MoveRay()
{
line(X1,Y1,X2,Y2);
ModifyCoords();
}

Now I have the necessary data in order for me to draw that ray of light at the right angle. But I need to move it (make it come down) and I want to know by how much should I modify (X1,Y1) and (X2,Y2). After every modification of coordinates I draw the line again.

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closed as off topic by Brian Agnew, ronalchn, pad, skolima, Joe Sep 28 '12 at 14:02

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3  
It'd be great if you could show us all the code that you've tried so far, and ask more specific questions if you can. – jrajav Sep 28 '12 at 11:01
1  
How is this question related to Java and Swing ? If not related, please remove the tags – Robin Sep 28 '12 at 11:13
    
Are you tring to use ligt rays here for rendering graphics with raytracing, computing wave-interference, or something else (might even be a combination of the two, but if you were working on that, you'd know more about it than your question demonstrates) – AJMansfield Sep 28 '12 at 11:18
    
Its fixed. It's 1c. – Adam Arold Sep 28 '12 at 11:27

You need to split the computational domain (x, y) into (x, y) components of velocity. For the effect of a ray bouncing/being reflected from a mirror or surface, let us assume for the sake of argument that the beam/interaction has zero restitution (that is the velocity of the ray after the collision with the surface is the same). So, in this case the x-component of velocity (call it u - transverse to the plane) of the rays velocity will not change and be constant, the y-component of velocity (call it v - perpendicular to the plane) will be reversed. So the transformation of velocities will be (u, v) -> (u, -v).

It is as simple as that, I hope this helps.

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The only other thing you might have to do is refraction, but the equations describing refraction are pretty simple as well: you just divide the angle of incedence by the ratio of the refractive indicies of the two substances at the boundary between materials. – AJMansfield Sep 28 '12 at 11:15
    
I just need to make it move in the direction of the ray, guys. – Andrei Tudora Sep 28 '12 at 11:28

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