Question 6.4.22: (A paradox for instructors) If AA^T = A^T A then A and A^T s...

Introduction to linear Algebra [EXP-672]

(A paradox for instructors) If $A{A}^{T} = {A}^{T} A$ then A and ${A}^{T}$ share the same eigenvectors (true). A and ${A}^{T}$ always share the same eigenvalues. Find the flaw in this conclusion: They must have the same S and $\wedge$ . Therefore A equals ${A}^{T}$ .

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A and ${A}^{T}$ have the same $\lambda$ ’s but the order of the x’s can change.

$A =\begin{bmatrix} 0 & 1 \\ -1 & 0 \end{bmatrix}$ has ${\lambda}_{1} = i$ and ${\lambda}_{2} = -i$ with ${x}_{1}$ = (1, i) first for A but ${x}_{1}$ = (1, -i) first for ${A}^{T}$ .

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