Difference between revisions of "031 Review Part 3, Problem 9"

Assume  ${\displaystyle A^{2}=I.}$  Find  ${\displaystyle {\text{Nul }}A.}$

Foundations:
Recall that the subspace  ${\displaystyle {\text{Nul }}A}$  is the set of all solutions to  ${\displaystyle A{\vec {x}}={\vec {0}}.}$

Solution:

Step 1:
Since  ${\displaystyle A\cdot A=I,}$  we know that  ${\displaystyle A}$  is invertible.
Additionally, since  ${\displaystyle A}$  is invertible, we know that  ${\displaystyle A}$  is row equivalent to the identity matrix.

Step 2:
Since  ${\displaystyle A}$  is row equivalent to the identity matrix, the only solution to  ${\displaystyle A{\vec {x}}={\vec {0}}}$  is the trivial solution.
Hence,
${\displaystyle {\text{Nul }}A={\Bigg \{}{\begin{bmatrix}0\\0\end{bmatrix}}{\Bigg \}}.}$

Final Answer:
${\displaystyle {\text{Nul }}A={\Bigg \{}{\begin{bmatrix}0\\0\end{bmatrix}}{\Bigg \}}}$

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