Proof. Let χ_t be a cuspidal character of $GL(2,q)$. Note that if $\displaystyle r \ \nmid \ (q-1),$ then $A = diag(\epsilon_1, 1)$ is an r-regular element. Since $\chi_t(A) = 0$, χ_t is not quasi r-Steinberg. Therefore, assume that $\displaystyle (q-1) = r^{\beta} \gamma,$ where $\beta \geq 1$ and $(r, \gamma) = 1.$ Now the following cases arise:

Case I: $\displaystyle r \ | \ (q+1).$ As r also divides $(q-1)$, r = 2. If $\displaystyle \gamma \gt 1,$ then $\displaystyle A_1 = diag(\epsilon_1^{\frac{q-1}{\gamma}}, 1)$ is 2-regular and its conjugacy class is not primary. Since $\displaystyle \chi_t(A_1) = 0, \chi_t$ is not quasi 2-Steinberg.

On the other hand, if $\displaystyle (q-1)=2^{\beta},$ then $\displaystyle (q+1) = 2^{\beta}+2.$ If $\displaystyle \beta=1,$ then $\displaystyle q=3.$ Note that the only 2-regular elements of $GL(2,3)$ are the identity matrix, say $I_2,$ and the matrix $$A_2= \begin{pmatrix} 1 & 1 \\ 0 & 1 \end{pmatrix}$$. Since no cuspidal character vanishes on both of these elements, it follows that all the cuspidal characters of $GL(2,3)$ are quasi 2-Steinberg. But if $\displaystyle \beta \gt 1,$ then $F_{q}^{*}$ is a 2-group and in this case the only 2-regular element of $GL(2,q)$ is A ₂. The conjugacy class of A ₂ is of type $C^{(2)}$ and no cuspidal character vanishes on $C^{(2)}.$

Now we examine whether χ_t vanishes on some irreducible 2-regular element of $GL(2,q)$ or not. Since $\displaystyle (q^2-1) = 2(q-1)(2^{\beta-1}+1),$ the 2-regular elements of $\displaystyle F_{q^2}^{*}$ are of the form $\displaystyle \epsilon_{2}^{2(q-1)l}$ for some divisor l of $\displaystyle (2^{\beta-1}+1) = \frac{(q+1)}{2}.$ Thus an irreducible 2-regular element, say $A_3,$ of $GL(2,q)$ is of form $\displaystyle diag \Big(\epsilon_{2}^{2(q-1)l}, \epsilon_{2}^{2q(q-1)l} \Big)$. Note that $\displaystyle \chi_t(A_3) = \Big( \hat{\epsilon}_{2}^{2t(q-1)l} + \hat{\epsilon}_{2}^{2qt(q-1)l} \Big) = 0$ if and only if $\displaystyle 2t(q-1)l = \frac{(q^2-1)}{2} - 2t(q-1)l.$ It further implies that $\displaystyle 4tl = 2^{\beta-1}+1,$ which is not possible. Therefore, every cuspidal character is quasi 2-Steinberg.

Case II: $\displaystyle r \ \nmid \ (q+1).$ First assume that $\displaystyle (q-1)$ has a prime divisor, say $\displaystyle r^{'},$ which is different from $r.$ Then $\displaystyle A_4 = diag(\epsilon_1^{\frac{q-1}{r^{'}}}, 1)$ is an r-regular element whose conjugacy class is not primary. It follows from the previous argument that no cuspidal character is quasi r-Steinberg in this case.

Now assume that $\displaystyle (q-1) = r^{\beta},$ for some $\displaystyle \beta \in \mathbb{N}.$ Since $\displaystyle r \ \nmid \ (q+1), r$ is some odd prime. As $\displaystyle (q-1) = r^{\beta},$ no element in $C^{(1)}$ and $C^{(3)}$ is r-regular. Also, A ₂ is the only r-regular element whose conjugacy class is of type $C^{(2)}.$ One can check that no cuspidal character vanishes on it. Further, since $\displaystyle (q^2-1)=r^{\beta}(r^{\beta}+2),$ the only irreducible r-regular element of $GL(2,q)$ is of form $A_5 = diag \Big(\epsilon_{2}^{r^{\beta}l}, \epsilon_{2}^{qr^{\beta}l} \Big),$ where l is some divisor of $(r^{\beta}+2)$. Note that $\displaystyle \chi_t(A_5) = 0$ if and only if $\displaystyle \frac{(r^{\beta}+2)}{tl} = 4,$ which is not possible since r is odd. Therefore, even in this case every cuspidal character of is quasi r-Steinberg.

Proof of Theorem 1.2

Letϕ be a cuspidal character of $GL(n,q)$. Assume that $\displaystyle q \geq 3.$ If $\displaystyle r \ \nmid \ (q-1),$ then $A = diag(\epsilon_1, 1, \ldots, 1)$ is an r-regular element of $GL(n,q)$. Since ϕ vanishes on A, it is not quasi r-Steinberg. On the other hand, when $\displaystyle r \ \mid \ (q-1),$ the following cases arise:

Case I: $\displaystyle r \ \nmid \ (q+1).$ If $\displaystyle n \geq 3,$ then $\displaystyle B_1 = diag(\epsilon_2^{q-1}, \epsilon_2^{q(q-1)}, 1, \ldots, 1)$ is an r-regular element of $GL(n,q).$ Since the conjugacy class $[B_1]$ is not primary, it follows that ϕ is not quasi r-Steinberg.

Case II: $\displaystyle r \ | \ (q+1).$ Since $\displaystyle r \ \mid \ (q-1),$ r = 2. Assume that $\displaystyle (q-1) = 2^{\beta} \gamma,$ where $\displaystyle \beta \geq 1$ and $(\gamma,2)=1.$ If $\displaystyle \gamma \gt 1,$ then $\displaystyle B_2 = diag \Big(\epsilon_1^{\frac{q-1}{\gamma}}, 1, \ldots, 1 \Big)$ is 2-regular and its conjugacy class is not primary. Therefore, the previous argument implies that ϕ is not quasi 2-Steinberg.

But if $\displaystyle \gamma = 1,$ then $\displaystyle (q-1) = 2^{\beta}.$ If $\displaystyle \beta=1,$ then $\displaystyle q=3.$ Now for any $\displaystyle n \gt 3,$ $\displaystyle (3^n-3^{n-3}) = 3^{n-3}(13)(2)$ is a divisor of $\displaystyle |GL(n,3)|.$ Now as $$\displaystyle B_3 = \begin{pmatrix} 0 & 0 & 2 \\ 0 & 2 & 1 \\ 2 & 2 & 1 \end{pmatrix}$$ is of order $13,$ the element $\displaystyle B_4 = diag(B_3, 1, \ldots, 1) \in GL(n,3)$ is 2-regular. Therefore, for any $n \gt 3,$ no cuspidal character of $GL(n,3)$ is quasi 2-Steinberg. When $n=3,$ the only 2-regular elements of $GL(3,3)$ are the elements of order 13. Now note that the degree of any cuspidal character of $GL(3,3)$ is $(3-1)(3^2-1)=16$ and it follows from the character table of $GL(3,3)$ that no character of degree 16 vanishes on any element of order 13. Therefore, every cuspidal character of $GL(3,3)$ is quasi 2-Steinberg.

Further, if $\displaystyle \beta \gt 1,$ then $\displaystyle (q+1) = 2(2^{\beta-1}+1).$ Observe that for any $\displaystyle n \geq 3,$ the conjugacy class of the 2-regular element $\displaystyle diag(\epsilon_2^{2(q-1)}, \epsilon_2^{2q(q-1)}, 1, \ldots, 1)$ is not primary. Therefore, even in this case no cuspidal character is quasi r-Steinberg.

Now consider the group $GL(n,2),$ where $n \geq 3.$ Note that if $r \neq 3,$ then $(q+1) = 3.$ Therefore, the argument in Case I provides that no cuspidal character of $GL(n,2)$ is quasi r-Steinberg. If $r=3,$ then for any $\displaystyle n \geq 4, B_4 = diag(E_3, 1, \ldots, 1)$ is a 3-regular element of $GL(n,2)$. As $\phi(B_4) = 0, \phi$ is not quasi 3-Steinberg. Further, it follows from the character table that every cuspidal character $GL(3,2)$ is quasi 3-Steinberg. Now the result follows from Proposition 3.1.

Proof. Assume that n is an odd prime. If r is $2,$ then since $\displaystyle \frac{(q^n-1)}{(q-1)} = \sum_{j=0}^{n-1} q^j$ is odd, $\displaystyle r \nmid \frac{(q^n-1)}{(q-1)}.$ Thus $\displaystyle B = diag(\epsilon_n^{q-1}, \epsilon_n^{q(q-1)}, \ldots, \epsilon_n^{q^{n-1}(q-1)})$ is an r-regular element of $GL(n,q).$ Note that the order $\displaystyle \sum_{j=0}^{n-1} q^j$ of $\epsilon_n^{q-1}$ does not divide $\displaystyle (q^i-1),$ for any $\displaystyle 1 \leq i \lt n.$ Therefore, $\epsilon_n^{q-1} \in F_{q^{n}}^{*} \setminus F_{q^{i}}^{*} \ \forall \ 1 \leq i \lt n$ and so B is an irreducible element of $GL(n,q)$. Since the conjugacy class of an irreducible element of $GL(n,q)$ intersects $\displaystyle P_{\lambda}$ trivially, $\displaystyle \psi(B) = 0.$ Therefore, ψ is not quasi r-Steinberg.

Now consider the case when r is an odd prime. Note that if $\displaystyle r \ | \ (q+1),$ then $\displaystyle r \ \nmid \sum_{j=0}^{n-1} q^j$. Thus the previous argument implies that ψ is not quasi r-Steinberg. Now let $\displaystyle r \ \nmid (q+1).$ Suppose $\displaystyle \sum_{j=0}^{n-1} q^j = r^{\delta}k,$ where $(r,k)=1$ and $\delta \geq 0$ is an integer. If $k=1,$ then $\displaystyle \frac{(q^n-1)}{(q-1)}$ is an r-power and our claim is established. On the other hand, if $k \gt 1,$ then the order of $\displaystyle \epsilon = \epsilon_n^{(q-1)r^{\delta}}$ is k and so $\displaystyle B^{'} = diag(\epsilon, \epsilon^q, \ldots, \epsilon^{q^{n-1}})$ is an r-regular element of $GL(n,q)$. Further, note that $B^{'}$ is irreducible if and only if $\displaystyle o(\epsilon) = k \ \nmid \ (q^i-1),$ for any $1 \leq i \leq (n-1).$ Since $\displaystyle \Big(q^i-1, \frac{(q^n-1)}{(q-1)} \Big) = 1,$ it follows that $\displaystyle \frac{(q^i-1)}{k}$ is not an integer. Thus $B^{'}$ is an irreducible r-regular element and ψ vanishes on it. It implies that no parabolically induced character of $GL(n,q)$ is quasi r-Steinberg in this case.

Finally, we consider the case of $\displaystyle n=2.$ If $\displaystyle r \ \nmid \ (q+1),$ then the element $\displaystyle diag(\epsilon_2^{(q-1)}, \epsilon_2^{q(q-1)})$ is an irreducible r-regular element of $GL(2,q)$ and the previous argument again implies that no parabolically induced character is quasi r-Steinberg. Further, assume that $\displaystyle (q+1) = r^{\beta} \gamma,$ where $\displaystyle \beta \geq 1$ and $\displaystyle (r, \gamma) = 1.$ If $\displaystyle \gamma \gt 1,$ then in the following we prove that there always exists an r-regular element on which ψ vanishes:

• • $r \nmid (q-1)$: If $\gamma \ | \ (q-1),$ then $\displaystyle \gamma = 2.$ Let $\displaystyle (q-1) = 2^{\alpha} \kappa,$ where $\displaystyle (2, \kappa) = 1.$ Then $\displaystyle diag(\epsilon_2^{\frac{(q^2-1)}{2^{\alpha+1}}}, \epsilon_2^{\frac{q(q^2-1)}{2^{\alpha+1}}})$ is an irreducible r-regular element. If $\displaystyle \gamma \nmid \ (q-1),$ then $\displaystyle diag(\epsilon_2^{\frac{(q^2-1)}{\gamma}}, \epsilon_2^{\frac{q(q^2-1)}{\gamma}})$ is an irreducible r-regular element.

• • $r \mid (q-1)$: If $\displaystyle \gamma \ | \ (q-1),$ then $\displaystyle \gamma = 2,$ which is not possible as r = 2. Therefore, $\displaystyle \gamma \nmid \ (q-1);$ and hence $\displaystyle s_3$ is an irreducible r-regular element.

Therefore, ψ is not quasi r-Steinberg. Further, for $\gamma = 1,$ $\displaystyle (q+1) = r^{\beta}$. Now the result follows.

Proof. First assume that $\displaystyle r = p.$ Note that any character of degree q vanishes only on the elements of the form $$ t_{\alpha} = \begin{pmatrix} \alpha & 1 \\ 0 & \alpha \end{pmatrix} \in C^{(2)},$$ for some $\displaystyle \alpha \in F_{q}^{*}.$ Since $\displaystyle o(t_{\alpha}) = lcm(o(\alpha), p),$ no element of $C^{(2)}$ is p-regular. Therefore, for any $\displaystyle 0 \leq k \leq (q-2),$ $\displaystyle \chi_k^{(2)}$ is a quasi p-Steinberg character. Also, a parabolically induced character vanishes on the irreducible r-regular element E ₂ and hence is not quasi p-Steinberg.

Further, let $\displaystyle r \neq p.$ In this case, t ₁ is an r-regular element of $GL(2,q).$ Since $\displaystyle \chi_k^{(2)}$ vanishes on t ₁, it is not quasi r-Steinberg. Now we study when a parabolically induced character of $GL(2,q)$ is quasi r-Steinberg. In this direction, a necessary condition provided by Lemma 4.2 is that $\displaystyle (q+1) = r^{\beta},$ for some $\beta \in \mathbb{N}.$

Let $\chi_{k,l}$ be a parabolically induced character, where $0 \leq k \lt l \leq (q-2)$. It follows from the character table that it takes 0 value only on the elements whose conjugacy class is of type $\displaystyle C^{(3)}$ or $\displaystyle C^{(4)}.$ Observe that if r is some odd prime, then $r \ \nmid \ (q-1)$. Indeed, if $r \ | \ (q-1),$ then $r=2,$ which is not the case. Now since $\displaystyle (q^2-1)=(q-1)r^{\beta},$ it follows that no irreducible element of $GL(2,q)$ is r-regular. Therefore, the elements whose conjugacy class is of type $\displaystyle C^{(4)}$ are not r-regular.

Further, let $\displaystyle V = diag(\alpha, \beta)$ has conjugacy class of type $C^{(3)}.$ Then $\chi_{k,l}(V) = \hat{\alpha}^k \hat{\beta}^l + \hat{\alpha}^l \hat{\beta}^k = 0$ if and only if $F_{q}^{*}$ contains the primitive second root of unity. Since r being odd implies q is even, this is also not the case. Therefore, $\displaystyle \chi_{k,l}$ is quasi r-Steinberg.

Now if $\displaystyle (q+1) = 2^{\delta},$ then $\displaystyle (q-1) = 2(2^{\delta-1}-1).$ Note that $\displaystyle \delta = 2$ implies q = 3. Since there is no 2-regular element in $C^{(3)}$ and $C^{(4)}$, the parabolically induced characters of $GL(2,3)$ are quasi 2-Steinberg. Further, if $\displaystyle \delta \geq 3,$ then there is no 2-regular element in $C^{(4)}.$ On the other hand, assume that the conjugacy class of $\displaystyle W = diag(\epsilon_1^{s_1}, \epsilon_1^{s_2}),$ for some $\displaystyle 0 \leq s_1 \lt s_2 \leq (q-2),$ is of type $C^{(3)}.$ Then $\displaystyle \chi_{k,l}(W) = \hat{\epsilon_1}^{s_1k+s_2l} + \hat{\epsilon_1}^{s_1l+s_2k} = 0$ if and only if $\displaystyle (s_2-s_1)(l-k) = \frac{(q-1)}{2}.$ Observe that a pair of such distinct elements s ₁ and s ₂ exists if $\displaystyle (l-k)$ is invertible in $\displaystyle \mathbb{Z}_{q-1}$. Further, note that for any $\displaystyle 1 \leq i \leq 2, \ o(\epsilon_i^{s_i}) = \frac{(q-1)}{s_i}$ and so $\displaystyle o(W) = lcm \Big( \frac{(q-1)}{s_1}, \frac{(q-1)}{s_2} \Big).$ Since s ₁ and s ₂ have different parity, 2 divides $o(W).$ Therefore, W is not a 2-regular element. Thus an element of $C^{(3)}$ on which $\chi_{k,l}$ vanishes, is not 2-regular. It implies that if $\displaystyle (l-k)$ is invertible in $\displaystyle \mathbb{Z}_{q-1},$ then $\chi_{k,l}$ is quasi 2-Steinberg. On the other hand, if $\displaystyle (l-k)$ is not invertible in $\displaystyle \mathbb{Z}_{q-1},$ then there does not exist any element in $\displaystyle C^{(3)}$ on which $\displaystyle \chi_{k,l}$ vanishes. Now the result follows.

Proof. Case I: r = p. Note that $\displaystyle B = diag(E_2, 1)$ is an r-regular element and its conjugacy class is of type $T^{(7)}.$ It follows from the character table of $GL(3,q)$ that any character of type $\displaystyle \theta_k^{(2)}$ vanishes on $B.$ Therefore, it is not quasi p-Steinberg. Now note that a character of type $\theta_k^{(3)}$ takes 0 value only on the conjugacy classes of type $\displaystyle T^{(2)}, T^{(3)}$ and $T^{(5)}.$ Since there are no p-regular elements in these classes, $\theta_k^{(3)}$ is quasi p-Steinberg. Further, any parabolically induced character is not quasi p-Steinberg as it vanishes on the irreducible r-regular element $\displaystyle E_n.$

Case II: r ≠ p. Consider the element $$ C = \begin{pmatrix} 1 & 1 & 0 \\ 0 & 1 & 1 \\ 0 & 0 & 1 \end{pmatrix}$$. Since its order is $p,$ it is r-regular and its conjugacy class is of type $T^{(3)}.$ Since the characters $\displaystyle \theta_k^{(2)}, \theta_k^{(3)}$ and $\displaystyle \theta_k^{(5)}$ vanish on $T^{(3)},$ they are not quasi r-Steinberg. Now we study the parabolically induced characters $\theta^{(4)}_{k,l},$ $\theta^{(6)}_{k,l,m}$ and $\theta^{(7)}_{t,l}.$

Observe that if $\displaystyle r \ | \ (q+1),$ then $\displaystyle r \ \nmid (q^2+q+1).$ Thus it follows from Lemma 4.2 that no parabolically induced character is quasi r-Steinberg.

Proof. Note that $|Syl_p(GL(2,q))| = q.$ If $r=p,$ then the characters of type $\chi_k^{(2)}$ are weak p-Steinberg as their degree is q and they vanish on all p-singular elements of $GL(2,q)$. Now we consider the case when r is some prime other than $p.$ In this direction, first recall that a cuspidal character of $GL(2,q)$ is quasi r-Steinberg if and only if $\displaystyle (q-1) = r^{\beta}.$ Since $\displaystyle |GL(2,q)|= q(q-1)^2(q+1), |Syl_r(GL(2,q))| \geq (q-1)^2.$ Since the degree of a cuspidal character is $(q-1)$, it is not weak r-Steinberg.

Further, note that it follows from Theorem 4.3 that a parabolically induced character $\displaystyle \chi_{k,l}$ is quasi r-Steinberg if and only if its degree, $\displaystyle (q+1),$ is an r-power. If $r=2,$ then $ (q-1)$ is also divisible by 2 and hence $\displaystyle \chi_{k,l}(1) \neq |Syl_r(GL(2,q))|.$ On the other hand, if $\displaystyle r \neq 2,$ then q is even and $\displaystyle \chi_{k,l}(1) = |Syl_r(GL(2,q))|.$ Since there does not exist any r-singular element in $C^{(1)}, C^{(2)}$ and $C^{(3)},$ $\displaystyle \chi_{k,l}$ is r-vanishing too. Hence the result follows.

Proof. Since the degree of a cuspidal character is $\displaystyle (q-1)(q^2-1),$ it follows from Theorem 1.2 that a quasi r-Steinberg cuspidal character of $GL(3,q)$ has a prime power degree if and only if $(q,r) \in \{(3,2), (2,3)\}.$ If $q=3,$ then since $2 \ | \ (3-1),$ it follows from Remark 6.1 that no cuspidal character of $GL(3,3)$ is weak 2-Steinberg. Further, if $q=2,$ then the degree of a cuspidal character of $GL(3,2)$ is 4 which is $|Syl_3(GL(3,2))|.$ Now since any cuspidal character of $GL(3,2)$ is 3-vanishing, it is weak 3-Steinberg. Hence the first part of result is established.

Observe that the degree of a character of type $\theta_k^{(2)}$ is not a prime power and that any character of type $\theta_k^{(3)}$ is weak r-Steinberg if and only if $r=p.$ Recall that if a parabolically induced character of $GL(3,q)$ is quasi r-Steinberg, then $(1+q+q^2)$ is an r-power. It follows that $r \neq p.$

Assume that the integers $k, l$ and t are such that the characters $\displaystyle \theta_{k,l}^{(4)}$ and $\displaystyle \theta_{t,l}^{(7)}$ are quasi r-Steinberg (c.f. Theorem 5.1). Since they satisfy the degree condition, we check whether they are r-vanishing or not. It follows from Lemma 5.3 that $\displaystyle r \ \nmid \ (q-1)$ and hence no element in the classes of type $\displaystyle \{T^{(i)} \ | \ 1 \leq i \leq 6 \}$ is r-singular. Further, if $\displaystyle r \ | \ (q+1),$ then no parabolically induced character of $GL(3,q)$ is quasi r-Steinberg. Therefore, $\displaystyle r \ \nmid \ (q^2-1).$ It implies that no element in any class of type $\displaystyle T^{(7)}$ is r-singular. Moreover, as r is a divisor of $GL(3,q),$ it follows that $r \ | \ (q^3-1).$ Hence $GL(3,q)$ has irreducible r-singular elements. Since $\displaystyle \theta_{k,l}^{(4)}$ and $\displaystyle \theta_{t,l}^{(7)}$ vanish on them, they are r-vanishing. Therefore, the quasi r-Steinberg parabolically induced characters of $GL(3,q)$ are weak r-Steinberg.

Proof of Theorem 1.2:

Let χ be a weak r-Steinberg character of $GL(n,q).$ Since $\displaystyle r \neq p, \ \chi(1) = |(q^n-1)(q^{n-1}-1) \ldots (q-1)|_r.$ The following cases arise:

Case I: $\displaystyle r \nmid (q^n-1).$ By Zsigmondy’s theorem there exists a prime divisor s of $\displaystyle (q^n-1)$ such that $\displaystyle s \ \nmid \ (q^m-1) \ \forall \ m \lt n;$ except for $\displaystyle (n, q) = (2, 2^t - 1)$ and $(6, 2).$ Clearly, s is different from $r.$ Since $\displaystyle \chi(1)$ is an r-power and $\displaystyle s \mid (q^n-1),$ it follows from (6.1) that there exists some $\displaystyle 1 \leq j \leq k$ such that $\displaystyle s \ | \ \psi_{n_j}(q^{d_j}).$ Without loss of generality, assume that j = 1. Since s is a prime, s divides $\displaystyle (q^{id_1}-1)$ for some $\displaystyle 1 \leq i \leq n_1.$ As $\displaystyle s \ \nmid \ (q^m-1) \ \forall \ m \lt n,$ it implies that $id_1 \gt (n-1).$ Thus $n_1d_1=n.$ Also note that $d_1 = 1$ implies that $\chi(1) = 1$. So $d_1 \geq 2.$

If $\displaystyle n=2,$ then $\displaystyle r \ | \ (q^2-1).$ But since $\displaystyle r \nmid (q^n-1),$ it follows that $\displaystyle n \geq 3.$ First assume that n = 3. If $\displaystyle r \nmid (q^3-1),$ then it follows from Lemma 4.2 that χ is not a parabolically induced character. Also, Lemma 6.3 implies that the cuspidal characters of $GL(3,2)$ are weak r-Steinberg if and only if r = 3. Further, note that it follows from Equation (6.2) that the only choice of $\displaystyle (n,q)$ for which $\chi(1)$ is a prime power is $(4,2)$. The only character in the character table of $GL(4,2)$ whose degree is a prime power is the character of degree 7. But this character is not quasi 7-Steinberg.

If $\displaystyle (n, q) = (2, 2^t - 1),$ it follows from Lemma 6.2 that χ is not weak r-Steinberg. Now assume that $\displaystyle (n, q) = (6, 2).$ Since $GL(6,2)$ is a quasi-simple group, it follows from Theorem 1.2 in [Reference Malle and Zalesskii10] that $GL(6,2)$ does not have any character whose degree is a prime power.

Case II: $\displaystyle r \mid (q^n-1).$ Since $\displaystyle r \nmid (q-1)$, we have that $\displaystyle r \nmid (q^{n-1}-1).$ In this case, the previous argument for a = q and $l=(n-1)$ yields that k = 2 and g ₁ is a simplex of degree d ₁ with $\displaystyle n_1d_1=(n-1),$ where q and n are such that $\displaystyle (q, n-1) \notin \{(2^t - 1, 2), (2,6) \}.$ Clearly, the degree of g ₂ is 1 and hence the degree of χ is

(6.2)\begin{equation} \frac{(q^n-1)(q^{n-1}-1)\ldots(q-1)}{(q^{d_1}-1)(q^{2d_1}-1)\ldots(q^{n_1d_1}-1)(q-1)} = (q^n-1)(q^{n-2}-1)\ldots(q^{n-d_1}-1). \end{equation}

If $\displaystyle n=2,$ then the degree of $\chi,$ $\chi(1) = (q+1).$ It follows from Lemma 6.2 that χ is weak r-Steinberg if and only if $(q+1)=r^{\beta},$ for an odd prime $r.$ Further, if $\displaystyle n=3,$ then we have the following:

1. 1. If $d_1 = 1,$ then $\chi(1) = (q^2+q+1)$;

2. 2. If $d_1 = 2,$ then $\displaystyle \chi(1) = (q^3-1).$

Now Lemma 6.3 gives the conditions under which the characters of these degrees are weak r-Steinberg. Finally, assume that $n \geq 4.$ If $d_1 \geq 2,$ then both $(q^n-1)$ and $(q^{n-2}-1)$ occur as divisors of $\chi(1)$ and hence are r-powers. This contradicts the fact that $\displaystyle r \ \nmid \ (q-1).$ Therefore, $\displaystyle d_1 = 1$ and hence $\displaystyle \chi = (g_1^{n-1}g_2)$ has degree $\displaystyle \chi(1) = \frac{q^n-1}{q-1}.$ Since

\begin{align*} \chi(1) = |(q^n-1)(q^{n-1}-1)\cdots(q-1)|_r, \end{align*}

it further implies that $\displaystyle r \ \nmid \ (q^i-1),$ for any $\displaystyle 1 \leq i \leq (n-1).$

Note that if $\displaystyle n \geq 4$ is an even integer, then $\displaystyle diag(E_2, E_2, \ldots, E_2) \notin P_{n-1,1}$. Further, if $\displaystyle n \geq 5$ is an odd integer, then $\displaystyle diag(E_3, E_2, \ldots, E_2)$ intersects $\displaystyle P_{n-1,1}$ trivially. Since in either case χ vanishes on some r-regular element, it is not weak r-Steinberg.

Now if $\displaystyle (n-1, q) = (2, 2^t - 1),$ then n = 3. The weak Steinberg characters of $GL(3,q)$ have been classified in Lemma 6.3. If $\displaystyle (n-1, q) = (6, 2),$ then since r is a divisor of $\displaystyle (2^7-1),$ $\displaystyle r = 127.$ Now note that it follows from the character table that $GL(7,2)$ does not have a character of degree 127. Now the result follows.