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I am trying to convert this to python. I just really need help with 1 line. I nevered learn matlab

function   [xc,yc,R,a] = circfit(x,y)
%
%   [xc yx R] = circfit(x,y)
%
%   fits a circle  in x,y plane in a more accurate
%   (less prone to ill condition )
%  procedure than circfit2 but using more memory
%  x,y are column vector where (x(i),y(i)) is a measured point
%
%  result is center point (yc,xc) and radius R
%  an optional output is the vector of coeficient a
% describing the circle's equation
%
%   x^2+y^2+a(1)*x+a(2)*y+a(3)=0
%
%  By:  Izhak bucher 25/oct /1991, 
    x=x(:); y=y(:);
   a=[x y ones(size(x))]\[-(x.^2+y.^2)]; # i just need help with this line
   xc = -.5*a(1);
   yc = -.5*a(2);
   R  =  sqrt((a(1)^2+a(2)^2)/4-a(3));
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6  
Then I strongly suggest you learn enough Matlab to figure out what that line means! See e.g. mathworks.co.uk/help/techdoc/learn_matlab/f2-520.html. –  Oliver Charlesworth Jun 24 '12 at 12:44
1  
The only difficulties I can see are: 1) [x y] is matrix concatenation 2) dotted operators (.^) are element-wise instead of matrix operations 3) \ is left matrix division. –  phg Jun 24 '12 at 12:53
    
phg thnks. That is what I was having trouble with and i dont even know a thing about matlab. I never used it once in my life nor I will have a class to learn in a few years. @Oli Charlesworth-Normally, I would but I dont really like matlab documentation. It s a little hard to for me to understand and search through since it so huge –  user1462442 Jun 24 '12 at 13:04
1  
The documentation for MATLAB is one of MATLAB's greatests strengths. If you sit down and carefully study what you need right now, it does not take that long time. –  Ole Thomsen Buus Jun 24 '12 at 14:31
    
i actually realize it, however, it is daunting for a newcomer is it is so large. There is a learning for for every language. I am not remotely near that curve for MATLAB. I am the type of person who crashes every program he ever used, so trying to get things right is much harder for me than someone else –  user1462442 Jun 24 '12 at 17:02

1 Answer 1

up vote 3 down vote accepted

You may find this reference useful.

  • Matlab arrays are indexed starting at 1; Python arrays start at 0

  • Python does not have a left-matrix-div operator, but numpy.linalg.solve performs the same operation

.

from numpy import matrix
from numpy.linalg import solve

def circfit(xs, ys):
    a = matrix([[x,y,1.] for x,y in zip(xs, ys)])
    b = matrix([[-(x*x + y*y)] for x,y in zip(xs, ys)])
    res = solve(a,b)
    xc = -0.5 * res.item(0)
    yc = -0.5 * res.item(1)
    r = (xc*xc + yc*yc - res.item(2))**0.5
    return xc,yc,r

then

circfit([0,1,2],[2,1,2])   # ->  (1.0, 2.0, 1.0) as expected
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I learned something new about python too –  user1462442 Jun 24 '12 at 17:00

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