0
$\begingroup$

Let $a$ and $b$ be real numbers. Considere the $2\times 2$ matrix \begin{equation*}A=\left[\begin{array}{cc}a&b\\-b&a\end{array}\right]. \end{equation*} What is the centralizer of the matrix $A$ in $M_2(\mathbb R)$?

  • 4
    Have you tried working it out from the definition?2012-09-26

3 Answers 3

4

If $b=0$, then $A=aI_2$ and we have $AX=XA$ for every $X \in M_2(\mathbb{R})$, i.e. the centralizer of $A=aI_2$ is the whole $M_2(\mathbb{R})$.

Let us now assume that $b\ne 0$, and let $ X=\left[\begin{array}{cc}x_{11}&x_{12}\\x_{21}&x_{21}\end{array}\right] \in M_2(\mathbb{R}). $ Then \begin{eqnarray} AX&=&\left[\begin{array}{cc}a&b\\-b&a\end{array}\right]\left[\begin{array}{cc}x_{11}&x_{12}\\x_{21}&x_{22}\end{array}\right]= \left[\begin{array}{cc}ax_{11}+bx_{21}&ax_{12}+bx_{22}\\-bx_{11}+ax_{21}&-bx_{12}+ax_{22}\end{array}\right]\cr XA&=&\left[\begin{array}{cc}x_{11}&x_{12}\\x_{21}&x_{22}\end{array}\right]\left[\begin{array}{cc}a&b\\-b&a\end{array}\right]= \left[\begin{array}{cc}ax_{11}-bx_{12}&bx_{11}+ax_{12}\\ax_{21}-bx_{22}&bx_{21}+ax_{22}\end{array}\right]\cr \end{eqnarray} It follows that $ AX=XA \iff \left\{ \begin{array}{l} ax_{11}+bx_{21}=ax_{11}-bx_{12}\\ ax_{12}+bx_{22}=bx_{11}+ax_{12}\\ -bx_{11}+ax_{21}=ax_{21}-bx_{22}\\ -bx_{12}+ax_{22}=bx_{21}+ax_{22} \end{array} \right.\iff \left\{ \begin{array}{l} b(x_{11}-x_{22})=0\\ b(x_{12}+x_{21})=0 \end{array} \right.. $ Since $b\ne 0$, we have $x_{22}=x_{11},\ x_{21}=-x_{12}$, i.e. the centralizer of $A$ is formed by matrices of the form $ \left[ \begin{array}{cc} x&y\\ -y&x \end{array} \right], \quad x, y \in \mathbb{R}. $

  • 2
    It deserves mention that the set of matrices of this shape is _isomorphic to $\mathbb C$_, with matrix addition and multiplication corresponding to addition and multiplication of complex numbers. (In fact I've seen this used as a _definition_ of the complex numbers).2012-09-26
1

Just solve the matrix equation:

$\begin{pmatrix}x&y\\z&w\end{pmatrix}\begin{pmatrix}a&b\\\!\!\!-b&a\end{pmatrix}=\begin{pmatrix}a&b\\\!\!\!-b&a\end{pmatrix}\begin{pmatrix}x&y\\z&w\end{pmatrix}$

For example, entries $\,1-1\,,\,2-2\,$ give us

$ax-by=ax+bz\,\,,\,\,bz+aw=-by+aw$

and from here, for example, we obtain

$-by=bz\Longrightarrow b=0\,\,\,or\,\,\,-y=z\,\,,\,etc.$

  • 0
    Yup. That, with that weird $\,=a\,$ , was part of a prior line that shouldn't be there.2012-09-26
-1

Alternatively, if two matrices commute they must have the same eigenvectors if they are simultaneously diagonlizable. Let $Av = \lambda v$ and $AB = BA$. Then

$ A(Bv)= (BA)(v) = \lambda (Bv) $

Simultaneously diagonzliable matrices are discussed a few times in math.stackexchange:

In any case, since $\det A = a^2 + b^2 \neq 0$ your matrix is a rotation in the plane. Therefore $B$ must also be a rotation, so

$ B = c \left( \begin{array}{cc} \cos \theta & -\sin \theta \\ \sin \theta & \cos \theta \end{array} \right) = \left( \begin{array}{cc} c & -d \\ d & c \end{array} \right)$ for some $c, d \in \mathbb{R}$.

  • 0
    A rotation should not have $c=1$?2012-09-26