Eigen Vectors and Values using Matlab

5 Ansichten (letzte 30 Tage)
Diana
Diana am 25 Feb. 2021
Beantwortet: Bjorn Gustavsson am 25 Feb. 2021
I'm using the following code to find the eigen vectors, now when I evaluate lambda manually I get dfferent numbers
A=[4 6 2;6 0 3;2 3 -1];
[lambda]=eig(A)
lambda=round(lambda,2);
L=length(lambda)
E1=rref(A - lambda(1)*eye(L),1e-14)
E2=rref(A - lambda(2)*eye(L),1e-14)
E3=rref(A - lambda(3)*eye(L),1e-14)
But I'm getting the trivial solution while I shouldn't

Melden Sie sich an, um diese Frage zu beantworten.

Antworten (2)

Bjorn Gustavsson
Bjorn Gustavsson am 25 Feb. 2021
Why not calculating the eigenvectors at once?
[Ev,lambda]=eig(A)
Also, when rounding the eigenvalues, you're no longer guaranteed to work with the eigenvalues - then the trivial solution is most likely the only solution.
HTH
KSSV
KSSV am 25 Feb. 2021
A=[4 6 2;6 0 3;2 3 -1];
lambda=eig(A)
syms l
eqn = det(A-l*eye(3))==0 ;
solve(eqn,l) ;
l = double(vpasolve(eqn,l))
  2 Kommentare
Diana
Diana am 25 Feb. 2021
What about the eigen vectors why rref() is giving me the trivial solution
KSSV
KSSV am 25 Feb. 2021
[v,d,w]=eig(A)

Melden Sie sich an, um zu kommentieren.

Kategorien

Mehr zu Linear Algebra finden Sie in Help Center und File Exchange

Tags

Produkte


Version

R2020b

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by