power method with rayleigh coeff
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Sonali
am 12 Apr. 2024
Kommentiert: Sonali
am 14 Apr. 2024
Hello, I'm working on Rayleigh iteration and my program is as follows. I am getting wrong values. I was wondering if someone could suggest something.
function [eigval, eigvec,itern] = rayl(A, x0, tol, nmax)
x = x0;
iter = 0;
e0 = 0;
while iter < nmax
y = A * x;
en = (x' * y) / (x' * x);
if abs(en - e0) <= tol
break;
end
x = y / norm(y);
e0 = en;
iter = iter + 1;
end
eigval = en;
eigvec = x;
itern =iter;
end
.........................................................................
Calling in function:
A=[4 1 -1 0;1 3 -1 0;-1 -1 5 2;0 0 2 4]
tol=1.d-8; nmax=100; x0=[1 1 1 1]';
[eig_val_ray, xr,iter] = rayl(A, x0, nmax, tol)
................................................................
output:
eig_val_ray = 4.5000
xr = 4×1
1
1
1
1
iter = 0
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Akzeptierte Antwort
Alan Stevens
am 13 Apr. 2024
Make sure you call the function with the arguments in the same order as those defined in the function!
A=[4 1 -1 0;1 3 -1 0;-1 -1 5 2;0 0 2 4];
tol=1.d-8; nmax=100; x0=[1 1 1 1]';
[eig_val_ray, xr,iter] = rayl(A, x0, tol, nmax); %%%%%%%%%%%%%%%%%%%
eig_val_ray
xr
iter
function [eigval, eigvec,itern] = rayl(A, x0, tol, nmax)%%%%%%%%%%%%%%
x = x0;
iter = 0;
e0 = 0;
while iter < nmax
y = A * x;
en = (x' * y) / (x' * x);
if abs(en - e0) <= tol
break;
end
x = y / norm(y);
e0 = en;
iter = iter + 1;
end
eigval = en;
eigvec = x;
itern =iter;
end
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