Equation of a constrained circle

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Sven
Sven on 18 May 2013
I have a circle with known parameters (x,y,r):
x = 37
y = -7
r = 38
I would like to find the parameters of a new circle (x2,y2,r2) that:
  1. Passes through the origin [0,0]
  2. Passes through the point [x,y+r]
  3. Keeps the same x value (ie, x2==x)
Can anyone wrap their head around this one? Basically it's like pinning the max-y point on the first circle, and then growing-shrinking that circle until it crosses the origin.
  2 Comments
Roger Stafford
Roger Stafford on 18 May 2013
Edited: Roger Stafford on 18 May 2013
It's better if you solve it yourself (with a little help.) Let (uppercase) X and Y be arbitrary coordinates on your new circle with unknown parameters x2, y2, and r2. Now write the above three conditions as the three equations these quantities must satisfy and solve for x2, y2, and r2. I'll get you started on the first equation:
(0-x2)^2+(0-y2)^2 = r2^2 <-- substituting (0,0) for (X,Y)
Sven
Sven on 18 May 2013
Thanks Roger. Don't worry, not homework... I was just about to get on a long flight and this was bugging me. With your prompting I got there. I'd gone down that route but used wolfram alpha without taking the time to think about it... it doesn't like variables called x2 (interprets them as 2*x). I got flustered and was in a hurry, hence the question here :)
As a W.A. string: (0-x)^2+(0-b)^2 = c^2, (y+r-b)^2 = c^2, solve for b, c

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Answers (1)

Youssef Khmou
Youssef Khmou on 18 May 2013
hi try to verify this initiation :
the first circle is defined by :
a=37;b=-7;r=38;
We are looking for new circle based on The three conditions :
1.a2^+b2^=r2^2
2.(a-a2)²+((b+r)-b2)^2=r2^2
3.a2=a;
the solution is ( to be verified ):
a2=a;
b2==((b+r)^2+a^2)/(2*(b+r));
r2=r2=b+r-b2;
....

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