Detecting an error in Muller method.

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llucia
llucia il 7 Apr 2023
Commentato: Torsten il 7 Apr 2023
Hi! I am programming Muller method as I wan to find the complex roots of an ecuation.
However, it does not work properly and I cannot detect why.
If someone could help me, I would really appreciate it.
Thanks in advance.
Here is the code:
%Muller, mejora del método de la secante, nos permite sacar tanto reales
%como complejas.
f = @(x) x.^3 + 2*x.^2 + 10*x -20;
x0 = -1;
x1 = 0;
x2 = 1;
eps_x = 10e-10;
eps_f = 10e-10;
maxits = 100;
[x0,x1,x2,n,error] = muller(f,x0,x1,x2,eps_x, eps_f,maxits)
function [x0,x1,x2, n, error] = muller(f, x0, x1, x2, eps_x, eps_f, maxits)
x0 = -1;
x1 = 0;
x2 = 1;
n = 0;
error(1) = eps_x + 1;
while n < maxits && (error(n+1) > eps_x || abs(f(x0)) > eps_f)
c = f(x2);
b = ((x0 - x2)^2*(f(x1)-f(x2))-(x1-x2)^2*(f(x0)-f(x2)))/((x0-x2)*(x1-x2)*(x0-x1));
a = ((x1-x2)*(f(x0)-f(x2))-(x0-x2)*(f(x1)-f(x2)))/((x0-x2)*(x1-x2)*(x0-x1));
x3 = x2 - (2*c)/(b+sign(b)*sqrt(b*b-4*a*c));
x0 = x1;
x1 = x2;
x2 = x3;
n = n+1;
error(n+1) = abs(x2-x1);
end
fprintf ('Las raíces son %.6f %.6f %.6f', x0, x1,x2)
end
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llucia
llucia il 7 Apr 2023
I have written an fprintf and I just get the real root but not the complex ones.
VBBV
VBBV il 7 Apr 2023
That is due to usage of abs in this line
error(n+1) = abs(x2-x1);
%abs

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Torsten
Torsten il 7 Apr 2023
The argument of the root in the calculation of x2 must become negative.
Or simply start with complex values for x1,x2 and/or x3, e.g.
x0 = -1;
x1 = 0;
x2 = 3*1i;
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llucia
llucia il 7 Apr 2023
perfect. Thanks a lot. It works perfectly now.
Torsten
Torsten il 7 Apr 2023
In numerical computations, you will never automatically get complex numbers if you don't start with complex numbers and if there are no expressions that can generate complex numbers (like the sqrt here).

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