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Sorry for the pretty dumb question. I'm slowly learning maths from scratch.

I would like to calculate the angle of triangle through javascript.

I calculate the lengths of the sides,

Ab = Math.abs(b.x - c.x);
Ac = Math.abs(b.y - c.y);

A = Math.sqrt((Ab*Ab) + (Ac*Ac));

Bb = Math.abs(a.x - c.x);
Bc = Math.abs(a.y - c.y);

B = Math.sqrt((Bb*Bb) + (Bc*Bc));

Cb = Math.abs(a.x - b.x);
Cc = Math.abs(a.y - b.y);

C = Math.sqrt((Cb*Cb) + (Cc*Cc));

And then I get to this point:

angleB = Math.cos(((C*C) + (A*A) - (B*B))/(2*C*A));

However, I get a completely wrong number. Why is this so?

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Maybe you don't realize that most languages deal with radians, but you're expecting degrees. It'll be easy to tell if you post the number you get and the one you expect. –  duffymo Jun 21 '13 at 14:33
    
Triangles have three angles. Which are you trying to calculate? –  Ignacio Vazquez-Abrams Jun 21 '13 at 14:34
    
Where's the rest of your code? Which 'angle' are you looking for? –  shennan Jun 21 '13 at 14:35
1  
He's looking for angle B, which is the angle opposite side B. –  Kevin Jun 21 '13 at 14:36

1 Answer 1

up vote 2 down vote accepted

Your code uses Math.cos when it should use Math.acos.

Starting with the law of cosines, we derive the correct formula:

b*b = a*a + c*c - 2*a*c*cos(angleB)
b*b - a*a - c*c = - 2*a*c*cos(angleB)
2*a*c*cos(angleB) = a*a + c*c - b*b
cos(angleB) = (a*a + c*c - b*b) / (2*a*c)
angleB = acos((a*a + c*c - b*b) / (2*a*c))
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