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Using C#:

How do I get the (x, y) coordinates on the edge of a circle for any given degree, if I have the center coordinates and the radius?

There is probably SIN, TAN, COSIN and other grade ten math involved... :)

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That's the kind of question to ask on – Lucero Jan 19 '10 at 12:42
@Lucero: No, I doubt this one would count as a "research level math question" – nikie Jan 19 '10 at 12:44
@nikie, true, but on the other hand it's even less a programming question. It's simple geometry. – Lucero Jan 19 '10 at 14:34
-1, not programming related. Voted to close. – user7116 Jan 19 '10 at 18:48
Either way, he would be absolutely flamed to death on Math Overflow if he posted that. They're much more strict about keeping it "by mathematicians, for mathematicians" than we are over here. – Adrian Petrescu Jan 19 '10 at 18:49

4 Answers 4

up vote 55 down vote accepted

This has nothing to do with C#. There is just some elementary mathematics involved.

x = x0 + r * cos(theta)
y = y0 + r * sin(theta)

theta is in radians, x0 and y0 are the coordinates of the centre, r is the radius, and the angle is measured anticlockwise from the x-axis. But if you want it in C#, and your angle is in degrees:

double x = x0 + r * Math.Cos(theta * Math.PI / 180);
double y = y0 + r * Math.Sin(theta * Math.PI / 180);
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+1, for speedy-easy votes :P – AnthonyWJones Jan 19 '10 at 12:33
It funny on these types of questions how almost identical the answers are. Even down to the structure of the answer :P – Alastair Pitts Jan 19 '10 at 12:36
@tm1rbrt - The degrees to radians conversion is in my code already. – David M Jan 19 '10 at 12:40
1 radian ~= 57.3 degrees (57.298 if I'm being "precise"). Somehow this number comes to mind quicker for me than 180/pi. – phkahler Jan 19 '10 at 16:36
@phkahler. Hmmm - you're on your own there! – David M Jan 19 '10 at 16:49

using Pythagoras Theorem (where x1,y1 is the edge point):

x1 = x + r*cos(theta)
y1 = y + r*sin(theta)

in C#, this would look like:

x1 = x + radius * Math.Cos(angle * (Math.PI / 180));
y1 = y + radius * Math.Sin(angle * (Math.PI / 180));

where all variables are doubles and angle is in degrees

share|improve this answer is your friend, the calculations are quite simple.

Check the Math Namespace for Sin() & Cos()

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For a circle with origin (j, k), radius r, and angle t in radians:

   x(t) = r * cos(t) + j       
   y(t) = r * sin(t) + k
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