031 Review Part 3, Problem 3

Let  ${\displaystyle A={\begin{bmatrix}5&1\\0&5\end{bmatrix}}.}$

(a) Find a basis for the eigenspace(s) of  ${\displaystyle A.}$

(b) Is the matrix  ${\displaystyle A}$  diagonalizable? Explain.

Foundations:
Recall:
1. The eigenvalues of a triangular matrix are the entries on the diagonal.
2. By the Diagonalization Theorem, an  ${\displaystyle n\times n}$  matrix  ${\displaystyle A}$  is diagonalizable
if and only if  ${\displaystyle A}$  has  ${\displaystyle n}$  linearly independent eigenvectors.

Solution:

(a)

Step 1:
Since  ${\displaystyle A}$  is a triangular matrix, the eigenvalues are the entries on the diagonal.
Hence, the only eigenvalue of  ${\displaystyle A}$  is  ${\displaystyle 5.}$

Step 2:
Now, to find a basis for the eigenspace corresponding to  ${\displaystyle 5,}$  we need to solve  ${\displaystyle (A-5I){\vec {x}}={\vec {0}}.}$
We have
${\displaystyle {\begin{array}{rcl}\displaystyle {A-5I}&=&\displaystyle {{\begin{bmatrix}5&1\\0&5\end{bmatrix}}-{\begin{bmatrix}5&0\\0&5\end{bmatrix}}}\\&&\\&=&\displaystyle {{\begin{bmatrix}0&1\\0&0\end{bmatrix}}.}\end{array}}}$
Solving this system, we see  ${\displaystyle x_{1}}$  is a free variable and  ${\displaystyle x_{2}=0.}$
Therefore, a basis for this eigenspace is
${\displaystyle {\bigg \{}{\begin{bmatrix}1\\0\end{bmatrix}}{\bigg \}}.}$

(b)

Step 1:
From part (a), we know that  ${\displaystyle A}$  only has one linearly independent eigenvector.

Step 2:
By the Diagonalization Theorem,  ${\displaystyle A}$  must have  ${\displaystyle 2}$  linearly independent eigenvectors to be diagonalizable.
Hence,  ${\displaystyle A}$  is not diagonalizable.

Final Answer:
(a)     The only eigenvalue of  ${\displaystyle A}$  is  ${\displaystyle 5}$  and the corresponding eigenspace has basis  ${\displaystyle {\bigg \{}{\begin{bmatrix}1\\0\end{bmatrix}}{\bigg \}}.}$
(b)     ${\displaystyle A}$  is not diagonalizable.

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