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I'm creating a simple 2D game in javascript/canvas. I need to figure out the angle of a certain object relative to my position.

So: say I'm at (10,10) and the object is at (10,5) - that would result in 90 degrees (as positive Y is down, negative Y is up) (10,10) vs (10,15) would be 270 degrees.

How would I go about this?

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Angle viewed from where? –  Christopher Creutzig Jul 22 '10 at 14:01
    
I'm confused as to how you're determining the angle...are you facing in a certain direction the entire time? –  rownage Jul 22 '10 at 14:02
    
@rownage: Unless I've misunderstood, the point is to determine the orientation of the vector that points from one position to the other. –  Tim Goodman Jul 22 '10 at 14:33
    
@Tim: Yeah I was lost there, I understood what was going on after seeing KennyTM's answer (nothing like a good answer to help make sense of a question) –  rownage Jul 22 '10 at 14:40

2 Answers 2

up vote 22 down vote accepted

Suppose you're at (a, b) and the object is at (c, d). Then the relative position of the object to you is (x, y) = (c - a, d - b).

Then you could use the Math.atan2() function to get the angle in radians.

var theta = Math.atan2(-y, x);

note that the result is in the range [-π, π]. If you need nonnegative numbers, you have to add

if (theta < 0)
   theta += 2 * Math.PI;

and convert radians to degrees, multiply by 180 / Math.PI.

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If your coordinates are (xMe, yMe) and their coordinates are (xThem, yThem), then you can use the formula:

arctan((yMe-yThem)/(xThem-xMe))

Normally it'd be arctan((yThem-yMe)/(xThem-xMe)), but in this case the sign of the y-axis is reversed.

To convert the result from radians to degrees multiply by 180/pi.

So in JavaScript, this would look like: Math.atan((yThem-yMe)/(xThem-xMe))*180/Math.PI

atan gives a value between -pi/2 and pi/2 (that is, between -90 and 90 degrees). But you can look at what quadrant your (xThem - xMe, yMe - yThem) vector is in and adjust accordingly.

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2  
I actually like KennyTM's answer better. Math.atan2 will know which quadrant you're in already, so you're spared the last step. –  Tim Goodman Jul 22 '10 at 14:19
    
I still found this answer useful, it's a nice alternative because I want to control the quadrants my self. –  Partack Jun 25 at 19:39

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