I have a 2D side-view shooter-thingy that I need some fresh eyes on. I'm currently working on the aiming, and it partially works: muzzle velocity is known, gravity is known, and x,y distance to target is also known. Using various sources both here on SE and wikipedia, I've come up with the following method for calculating starting vector for projectile speed:

public Vector2 calculateAim(Vector2 pos, Unit target) {
    // Check if previous calculation can be recycled
    if (target.equals(lastTarget))
        return lastAim.cpy();
    lastTarget = target;

    double v = RifleBullet.projectileSpeed; // Muzzle velocity
    double g = Settings.gravity.y;          // Gravity, positive value
    double x = offset.x;                    // x distance to target. Negative if towards left
    double y = offset.y;                    // y distance to target. Negative if lower

    double theta = Math.atan(((v * v) - Math.sqrt((v*v*v*v) - (g*(g*(x*x) + 2*y*(v*v))))) / (g * x));

    Vector2 aim = new Vector2(-(float)Math.cos(theta), (float)Math.sin(theta));
    aim.nor();
    aim.scl((float)RifleBullet.projectileSpeed);
    lastAim = aim.cpy();
    return aim;
}

The above partially works: The rightmost guy will aim correctly. However, the guy standing to the left is consistently firing in the wrong direction. It looks like the Y component is correct, but the X component is quite simply reversed. If I add this after calculating theta:

if (side.contains("left"))
    angleInRadians += Math.PI;

...they both fire correctly, but it's not viable in the long run as there will be more units on the battleground, and it's bound to cause problems when I get to that point.

I believe the source of the problem could be the Math.atan() function, as I don't have any checks for seeing how the hypothetical triangle in the trigonometry calculation is oriented.

How should I refine my method so that it works properly regardless of who's left/right/up/down?

  • 4
    Read up on atan2. – Tenfour04 Jul 23 '16 at 0:38
up vote 3 down vote accepted

What Tenfour04 said is quite helpful. You're probably going to want to use Math.atan2(y,x) instead of Math.atan(y/x)

Notice that instead of doing the division yourself, you give the y and x as separate arguments. This is so atan2 knows the difference between things like 5/2 and -5/-2. To normal atan, they both look like 2.5

  • Worked like a charm, and thanks for explaining why! – Jarmund Jul 23 '16 at 0:55
  • Glad to have helped! – Davis Jul 23 '16 at 0:56

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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