Proof First, note that if k is a multiple of p, then $C^k = I$ , so $\sigma (DC^k) = \sigma (DI) = \sigma (D)$ . Now suppose $1\le k\le p-1$ . Then, an easy direct computation shows that the characteristic polynomial $p(\lambda )$ of $D C^k$ is $\lambda ^p-1$ .

Alternatively, it is in fact possible to see directly, that the matrices $D C^k$ and $C^k$ are similar: the matrix form of the linear map corresponding to $DC^k$ in basis $f_j=\left (\prod _{i=1}^j d_i\right ) e_{j}$ , $j=1,\ldots , p$ is $C^k$ (here $d_i$ denotes the ith diagonal entry of D). It is also well-known that the matrices $C^k$ and C are similar by the change of basis $g_j=e_{1+(j-1)k}$ , $j=1,\ldots , p$ (here $(e_j)_{j=1}^p$ denotes the standard orthonormal basis of $\mathbb {C}^p$ , we use the convention that for $j>p,$ we have $e_{j}=e_{j-p}$ ).

Proof Let $A,B\in \mathcal {T}$ . Due to symmetry, we have four possible cases to consider.

Case 1. Suppose that both A and B are diagonal. In this case, we obviously have $\sigma (AB)\subseteq \sigma (A)\sigma (B)$ .

Case 2. Suppose that A is diagonal, but B is not. Then, $k=0$ and hence $\sigma (D_AC^k) = \sigma (D_A)$ . Note that

$$\begin{align*}\sigma(A) = \sigma(D_A) \cup \{1, \xi^{k+a_1p}, \xi^{2k+a_2p}, \dots, \xi^{(p-1)k+a_{p-1}p}\}\end{align*}$$

and

$$\begin{align*}\sigma(B) = \sigma(D_BC^{\ell})\cup\{1, \xi^{\ell+b_1p}, \xi^{2\ell+b_2p}, \dots, \xi^{(p-1)\ell+b_{p-1}p}\}.\end{align*}$$

The tail of $AB$ is the product of the tails of A and B. Since these are diagonal matrices, we have that $\sigma (A_TB_T) \subseteq \sigma (A_T)\sigma (B_T)$ . We are left to prove the same for the heads of A and B. Since $D_A$ and $D_B$ are unitary diagonal matrices of determinant $1$ , $D_AD_B$ is also a unitary diagonal matrix of determinant $1$ . By Lemma 3, we have that

$$ \begin{align*}\sigma(D_A D_B C^\ell) = \{1,\theta,\ldots, \theta^{p-1}\} = \sigma(D_B C^\ell), \end{align*} $$

and therefore $\sigma (D_AD_BC^\ell ) \subseteq \sigma (B)$ . Since $1\in \sigma (A)$ , we have that $\sigma (D_AD_BC^\ell )\subseteq \sigma (A)\sigma (B)$ . Hence, $\sigma (AB)\subseteq \sigma (A)\sigma (B).$

Case 3. Suppose none of A, B, and $AB$ are diagonal. We will again show that $\sigma (AB)\subseteq \sigma (A)\sigma (B)$ . The tails must still be diagonal, so by arguments in Case 2, we have that $\sigma (A_TB_T)\subseteq \sigma (A_T)\sigma (B_T)$ . It is therefore sufficient to show $\sigma (D_AC^kD_BC^{\ell })\subseteq \sigma (D_AC^k)\sigma (D_BC^{\ell })$ . We find, just like in Case 2, that each of the sets $\sigma (D_A C^k), \sigma (D_B C^\ell ), \sigma (D_{AB} C^r)$ is equal to $\{1,\theta ,\ldots ,\theta ^{p-1}\}$ from when the result immediately follows.

Case 4. Suppose that neither A nor B is diagonal, but $AB$ is. So $k\ne 0$ , $\ell =p-k,$ and $r = 0$ . We will first show that $\sigma (A)\sigma (B) = \{1,\xi ,\xi ^2,\dots ,\xi ^{p^2-1}\}$ . Since neither A nor B is diagonal, the spectra of their heads consist of all pth roots of unity. The spectra of tails are contained in the set of all $p^2$ th roots of unity and hence $\sigma (A)\sigma (B)$ must be a subset of the set of all powers of $\xi $ . We are left to show that $\sigma (A)\sigma (B)$ contains $\{1,\xi ,\xi ^2,\dots ,\xi ^{p^2-1}\}$ . We know from the above observations that:

$$ \begin{align*} \sigma(A) & \supseteq \sigma(A_T)= \{1, \xi^{k+a_1p}, \xi^{2k+a_2p}, \dots, \xi^{(p-1)k+a_{p-1}p}\},\\ \sigma(B) & \supseteq \sigma(B_H)=\{1,\theta,\ldots, \theta^{p-1}\}=\{\xi^{tp}: t=0,1,\ldots, p-1\}\\ & \supseteq \{1, \xi^{(-a_j+t)p}: j=1,2,\dots,p-1,t = 0,1,\dots, p-1\}. \end{align*} $$

Then, multiplying two corresponding elements of these sets will give elements in $\sigma (A)\sigma (B)$ of the form $\xi ^{kj+a_jp+(-a_j+t)p} = \xi ^{kj+tp}$ . Since t ranges over all integers in the set $[0,p-1]$ and the residue of $kj$ modulo p can be any integer in $[0,p-1]$ , we can obtain all powers of $\xi $ ; so $\sigma (A)\sigma (B) = \{1,\xi ,\xi ^2,\dots ,\xi ^{p^2-1}\}$ . Since the scaled-argument-distance between consecutive powers of $\xi $ is always $\frac {1}{p^2}$ , we must have that for any $\gamma \in \sigma (AB),$ there is some $\alpha \in \sigma (A)$ and $\beta \in \sigma (B)$ such that

$$\begin{align*}\frac{1}{2\pi}\left|\arg\left(\frac{\alpha\beta}{\gamma}\right)\right|\le \frac{1}{2p^2}.\end{align*}$$

(Take $\alpha , \beta $ to be such that the product $\alpha \beta $ is the $p^2$ th root of $1$ that is closest to $\gamma $ .)

Proof First, assume with no loss of generality that $\mathcal {G}=\overline {\mathcal {G}}$ , i.e., that $\mathcal {G}$ is compact. Indeed, if $\mathcal {G}$ is $\varepsilon '$ -ASM, then, since the spectrum is continuous, so is $\overline {\mathcal {G}}$ . Also, if $\overline {\mathcal {G}}/Z(\overline {\mathcal {G}})$ is finite, then so is $\mathcal {G}/Z(\mathcal {G})$ . This is because $Z(\mathcal {G})\subseteq Z(\overline {\mathcal {G}})\cap \mathcal {G}$ and hence $\mathcal {G}/Z(\mathcal {G})$ can be identified as a quotient of $\mathcal {G}/(Z(\overline {\mathcal {G}})\cap \mathcal {G})\simeq (\mathcal {G} Z(\overline {\mathcal {G}}))/Z(\overline {\mathcal {G}}), $ which in turn is a subgroup of $\overline {\mathcal {G}}/Z(\overline {\mathcal {G}})$ .

Suppose now, toward a contradiction, that $\mathcal {G}$ is not finite modulo its center. Then, for all primes $q,$ we know that $\mathcal {G}$ contains some finite minimal nonabelian group, say $\mathcal {H}$ , whose commutator subgroup $ [\mathcal {H} ,\mathcal {H}]$ is a q-group (see [Reference Bernik, Drnovšek, Košir, Livshits, Mastnak, Omladič and Radjavi1, Lemma 2.5]; invoking this result is the reason we needed to assume that $\mathcal {G}$ is compact). Let $q>n$ be a prime such that $\frac {1}{q}<\frac {1}{2(n^2-1)}-\frac {1}{2n^2}$ (the reason for the latter requirement will become apparent later in the proof). The structure of all finite minimal nonabelian groups has been described in detail by Miller and Morreno [Reference Miller and Moreno10]. They are either p-groups or their order is divisible by exactly two distinct primes p and q, where q is the order of its commutator subgroup (see [Reference Mastnak and Radjavi9, Theorem 2.3.1.]). In both cases, all their non-scalar irreducible representations are of size p [Reference Mastnak and Radjavi9, Theorem 2.3.1.]. Since $q>n$ and clearly $p\le n$ , we must therefore have that $\mathcal {H}$ is one of the latter (i.e., its order is divisible by two distinct primes p and q). From [Reference Mastnak and Radjavi9, Theorem 2.2.3] we deduce that $\mathcal {H} = \langle X,Y \rangle $ , for matrices X, Y of the form

$$\begin{align*}X = \begin{pmatrix} X_1\\ &\ddots\\ &&X_m\\ &&&1\\ &&&&\ddots\\ &&&&&1 \end{pmatrix} \text{ and } Y = \begin{pmatrix} Y_1\\ &\ddots\\ &&Y_m\\ &&&\beta_{m+1}\\ &&&&\ddots\\ &&&&&\beta_{\ell} \end{pmatrix}\end{align*}$$

with $m\ge 1$ and

$$\begin{align*}X_i = \begin{pmatrix} \theta_{i,1}\\ &\theta_{i,2}\\ &&\ddots\\ &&&\theta_{i,p-1}\\ &&&&\theta_{i,p} \end{pmatrix}, Y_i = \beta_i\begin{pmatrix} 0 & 1 & 0&\dots & 0\\ 0 & 0 & 1 & \dots & 0 \\ \vdots&\vdots&\ddots&\ddots&\vdots\\ 0 & 0 &\dots & 0 & 1\\ 1 & 0 & \dots & 0 & 0 \end{pmatrix}\in\mathcal{M}_p(\mathbb{C}),\end{align*}$$

for $i=1,\ldots , m$ , where each $\theta _{i,j}$ is of order q, the order of each $\beta _i$ is a power of p, and additionally, each $X_i$ is non-scalar and of determinant $1$ .

We now consider the spectra of $A=X^kY, B=Y^{-1}$ , and $C=AB=X^k$ . Since X and Y are block diagonal and X is of determinant $1$ , we have by Lemma 3 that,

$$ \begin{align*}\sigma(X^kY) = \bigcup_{i=1}^m \beta_i\{1,\theta, \dots, \theta^{p-1}\} = \sigma(Y)\end{align*} $$

(where $\theta $ a fixed primitive pth root of unity). Observe also that

$$ \begin{align*}\sigma(Y^{-1}) = \bigcup_{i=1}^m\beta_i^{-1}\{1,\theta, \dots, \theta^{p-1}\}.\end{align*} $$

From this, since both $\sigma (X^kY)$ and $\sigma (Y^{-1})$ have cardinality at most n we can see that the number of distinct elements in their product $\sigma (X^kY)\sigma (Y^{-1})$ is at most $n^2 - n - mp^2+p +mp\le n^2 - 1$ (due to repetitions). So the average scaled-argument-distance between two consecutive points in $\sigma (X^kY)\sigma (Y^{-1})$ is at least $\frac {1}{n^2-1}$ . Hence, there must be two consecutive points, say $\omega $ and $\eta $ , whose scaled-argument-distance is at least $\frac {1}{n^2-1}$ . Thus, their midpoint $\gamma $ on the unit circle has scaled-argument-distance at least $\frac {1}{2(n^2-1)}$ from each $\omega $ and $\eta $ (and hence at least that much from any element of $\sigma (A)\sigma (B)$ ). As we vary k, note that $\sigma (X^kYY^{-1}) = \sigma (X^k)$ will contain the qth root of unity closest to $\gamma $ . But then, since $\frac {1}{q}<\frac {1}{2(n^2-1)}-\frac {1}{2n^2}$ , the scaled-argument-distance between an element in $\sigma (X^k)$ and any element in $\sigma (X^kY)\sigma (Y^{-1})$ will be at least $\frac {1}{2(n^2-1)}-\frac {1}{q}>\frac {1}{2n^2}$ . But this then contradicts the fact that the spectrum of $\mathcal {G}$ is $\frac {1}{2n^2}$ -argument-submultiplicative. Thus, $\mathcal {G}$ must be finite modulo its center.