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FINITE GROUPS WHOSE CHARACTER CODEGREES ARE CONSECUTIVE INTEGERS

Published online by Cambridge University Press:  14 October 2024

MARK L. LEWIS
Affiliation:
Department of Mathematical Sciences, Kent State University, Kent, OH 44242, USA e-mail: lewis@math.kent.edu
QUANFU YAN*
Affiliation:
Department of Mathematical Sciences, Kent State University, Kent, OH 44242, USA
*
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Abstract

Let G be a finite group. We investigate the structure of finite groups whose irreducible character codegrees are consecutive integers.

Type
Research Article
Copyright
© The Author(s), 2024. Published by Cambridge University Press on behalf of Australian Mathematical Publishing Association Inc.

1. Introduction

Throughout this paper, G always denotes a finite group. As usual, $\mathrm {Irr}(G)$ denotes the set of complex irreducible characters of G and $\mathrm {cd}(G)=\{\chi (1)\mid \chi \in \mathrm {Irr}(G)\}$ the set of character degrees. A number of papers, such as [Reference Isaacs and Passman5Reference Lewis7], have studied the influence of the set $\mathrm {cd}(G)$ on the structure of $G.$ In particular, Huppert in [Reference Huppert3, Theorem 32.1] considered finite groups whose irreducible character degrees are consecutive integers and showed that if $\mathrm {cd}(G)=\{1,2,\ldots , k-1, k\},$ then G is solvable if and only if $k\leqslant 4,$ and that if $k>4,$ then $k=6$ and $G=HZ(G),$ where $H\cong \mathrm {SL}(2,5).$

Inspired by these results, we consider the analogous problem related to the character codegrees. The concept of character codegrees was first introduced by Qian et al. in [Reference Qian, Wang and Wei9] as follows. For $\chi \in \mathrm {Irr}(G),$ the codegree of $\chi $ is defined to be

$$ \begin{align*} \mathrm{cod}\,\chi=\frac{|G:\ker\chi|}{\chi(1)}. \end{align*} $$

Recently many papers have studied character codegrees (see, for instance, [Reference Isaacs4, Reference Lewis and Yan8, Reference Yang and Qian10]). Let $\mathrm {Cod}(G)=\{\mathrm {cod}\,\chi \mid \chi \in \mathrm {Irr}(G)\}$ be the set of irreducible character codegrees of $G.$ The aim of this paper is to investigate finite groups whose irreducible character codegrees are consecutive integers. We have the following result.

Theorem 1.1. Let G be a group with $\mathrm {Cod}(G)=\{1,2,\ldots , n-1, n\},$ where n is a positive integer. Then $n\leqslant 3$ and one of the following holds:

  1. (1) if $n=1,$ then $G=1$ ;

  2. (2) if $n=2,$ then G is an elementary abelian $2$ -group;

  3. (3) if $n=3,$ then $G=N\rtimes H$ is a Frobenius group with an elementary abelian $3$ -group as its kernel, $N=G'$ and H is cyclic of order $2.$

2. Preliminaries

We begin with the following basic lemma concerning character codegrees, which will be used frequently in our proofs.

Lemma 2.1 [Reference Qian, Wang and Wei9, Lemma 2.1].

Let G be a group and $\chi \in \mathrm {Irr}(G).$

  1. (1) If N is a normal subgroup of $G,$ then $\mathrm {Cod}(G/N) \subseteq \mathrm {Cod}(G).$

  2. (2) If N is subnormal in G and $\phi \in \mathrm {Irr}(N)$ is a constituent of $\chi _N,$ then $\mathrm {cod}\,\phi \mid \mathrm {cod}\,\chi .$

Next we recall the concept of the codegree graph, which was first introduced in [Reference Qian, Wang and Wei9]. The codegree graph $\Gamma (G)$ is a graph whose vertex set $V(G)$ is the set of all primes dividing $\mathrm {cod}\,\chi $ for some $\chi \in \mathrm {Irr}(G)$ and there is an edge between two distinct primes p and q if $pq$ divides $\mathrm {cod}\,\chi $ for some $\chi \in \mathrm {Irr}(G).$ We present the following facts on the codegree graph $\Gamma (G).$

Lemma 2.2 [Reference Qian, Wang and Wei9, Theorems A and E].

Let G be a group and $\pi (G)$ be the set of prime divisors of $|G|.$

  1. (1) $\pi (G)$ coincides with $V(G),$ the vertex set of $\Gamma (G).$

  2. (2) For any subset $\Delta \subseteq \pi (G)$ with $|\Delta |\geqslant 3,$ there are two distinct primes $p,q\in \Delta $ so that there is an edge between p and $q.$

  3. (3) $\Gamma (G)$ is not connected if and only if G is a Frobenius group or a $2$ -Frobenius group.

3. Proof of Theorem 1.1

We start by proving the following result concerning number theory, which plays a very important role in determining the integer n when $\mathrm { Cod}(G)=\{1,2,\ldots , n-1, n\}.$

Proposition 3.1. Let n be an integer and $r,q,p$ be three consecutive primes so that $2<r<q<p\leqslant n$ and p is the largest prime less than or equal to $n.$ Then $n<2p$ and $n<rq.$

Proof. Assume that $n\geqslant 2p.$ Then $p<2p\leqslant n.$ By Bertrand’s postulate, there exists a prime, say $s,$ so that $p<s<2p.$ This contradicts the hypothesis that p is the largest prime less than or equal to $n.$ Hence, $n<2p.$

Now assume that $n\geqslant rq.$ Applying Bertrand’s postulate again, we see that ${q<p<2q}$ and so $q<p<2q<3q\leqslant rq\leqslant n.$ By [Reference El Bachraoui1, Theorem 1.3], there is a prime between $2q$ and $3q.$ This is a contradiction. Thus, $n<rq.$

Proposition 3.1 enables us show that the integer n will not be too large.

Proposition 3.2. Let G be a group with $\mathrm {Cod}(G)=\{1,2,\ldots , n-1, n\},$ where n is a positive integer. Then $n\leqslant 6$ and $n\not =5.$

Proof. Assume that $n\geqslant 7.$ Then there are three consecutive primes $r,q,p$ as defined in Proposition 3.1. Thus, $n<2p$ and $n<rq.$ Consider the subset $\Delta =\{r,p,q\}\subseteq V(G)=\pi (G).$ By Lemma 2.2(2), there exists $\chi \in \mathrm {Irr}(G)$ so that $pq\mid \mathrm {cod}\,\chi $ , $rq\mid \mathrm {cod}\,\chi $ or $rp\mid \mathrm {cod}\,\chi .$ It follows from Proposition 3.1 that $n\geqslant \mathrm { cod}\,\chi \geqslant \min \{pq,rq,rp\}>n.$ This is a contradiction. Thus, $n\leqslant 6.$ Similarly, by Lemma 2.2(2), $n\not = 5.$

With the above proposition, to prove Theorem 1.1, we only need to classify the groups when $1\leqslant n\leqslant 3$ and show that $n\not =4,6.$ Notice that if $n\leqslant 6$ , the codegree graph $\Gamma (G)$ is not connected. Then by Lemma 2.2(3), G is a Frobenius group or a 2-Frobenius group. So we need to understand the structure of Frobenius groups. In particular, we give the following proposition.

Proposition 3.3. Let $G=N\rtimes H$ be a Frobenius group with kernel $N.$ Suppose that $\pi (N)=\{p_1, p_2,\ldots ,p_s\}.$ Then the following statements hold.

  1. (1) If $\phi \in \mathrm {Irr}(N),$ then $\mathrm {cod}\,\phi \mid \mathrm {cod}\,\chi $ for some $\chi \in \mathrm {Irr}(G).$ In particular, $\prod _{i=1}^{s}p_i\mid \mathrm {cod}\,\chi $ for some $\chi \in \mathrm {Irr}(G).$

  2. (2) $\mathrm {Cod}(G){\kern-0.5pt}={\kern-0.5pt}\mathrm {Cod}(G/N)\bigcup \{\mathrm {cod}(\phi ^G)\mid 1_N{\kern-0.5pt}\not ={\kern-0.5pt}\phi {\kern-0.5pt}\in{\kern-0.5pt} \mathrm {Irr}(N)\}.$ Furthermore, $\mathrm {cod}(\phi ^G)$ divides $|N|$ if $1_N\not =\phi \in \mathrm {Irr}(N).$

Proof. (1) The first part follows from Lemma 2.1(2) immediately. Notice that N is nilpotent. Then $N=P_1\times P_2\times \cdots \times P_s,$ where $P_i$ is a Sylow $p_i$ -subgroup of $N.$ Let $1_{P_i}\not =\lambda _i\in \mathrm {Irr}(P_i)$ and set $\phi =\lambda _1\times \lambda _2\times \cdots \times \lambda _s.$ Then $\phi \in \mathrm {Irr}(N)$ and $ \mathrm {cod}\,\phi =\prod _{i=1}^{s}\mathrm {cod}\,\lambda _i$ with $p_i\mid \mathrm { cod}\,\lambda _i.$ Hence, by Lemma 2.1(2), $ \prod _{i=1}^{s}p_i\mid \mathrm {cod}\,\chi $ for some $\chi \in \mathrm {Irr}(G),$ as required.

(2) It is well known that $\mathrm {Irr}(G)=\mathrm {Irr}(G/N)\bigcup \{\phi ^G\mid 1_N\not =\phi \in \mathrm {Irr}(N)\}.$ Thus, the first part is true. Notice that $\phi ^G(1)=|G:N|\phi (1).$ Then

$$ \begin{align*} \displaystyle \mathrm{cod}(\phi^G)=\frac{|G:N||N|}{|G:N|\phi(1)|\mathrm{ker}\,\phi^G|}=\frac{|N|}{\phi(1)|\mathrm{ker}\,\phi^G|} \end{align*} $$

divides $|N|,$ as required.

Proposition 3.4. Let G be a group with $|\pi (G)|=3.$ Suppose that $\mathrm {Cod}(G)\subseteq \{1,2,3,4,5,6\}.$ Then G is not a Frobenius group.

Proof. We work by contradiction. Assume that $G=N\rtimes H$ is a Frobenius group with kernel $N.$ By Lemma 2.2(1) and (2), $\pi (G)=\{2,3,5\}$ and $6\in \mathrm {Cod}(G).$ First we consider the case when $|\pi (N)|=2.$ Since N is nilpotent, it follows from Proposition 3.3(1) that $\pi (N)=\{2,3\}$ and N is a direct product of an elementary abelian 2-group and an elementary abelian 3-group. Notice that the complement H is a cyclic 5-group and $\mathrm {Cod}(H)\subseteq \mathrm {Cod}(G).$ Then H must be cyclic of order 5. Since there is $\phi \in \mathrm {Irr}(N)$ so that $\mathrm {cod}(\phi ^G)=|N|/|\mathrm {ker}\,\phi ^G|=6,$ we have $\mathrm {ker}\,\phi ^G<N$ and so $G/\mathrm {ker}\,\phi ^G=N/\mathrm { ker}\phi ^G\rtimes H\mathrm {ker}\phi ^G/\mathrm {ker}\phi ^G\cong C_6\rtimes C_5\cong C_{30}.$ Hence, $30\in \mathrm {Cod}(G),$ a contradiction.

Assume now that $|\pi (N)|=1.$ By Proposition 3.3(2), $\pi (N)=\{5\}$ and so N is elementary abelian. Since there is $\phi \in \mathrm {Irr}(N)$ so that $\mathrm {cod}(\phi ^G)=|N|/|\mathrm {ker}\,\phi ^G|=5,$ we have $\mathrm {ker}\,\phi ^G<N.$ Let $\overline {G}=G/\mathrm {ker}\,\phi ^G.$ Then $\overline {G}=\overline {N}\rtimes \overline {H}$ is a Frobenius group with kernel $\overline {N}\cong C_5$ and $\overline {H}\cong H$ . Let $\overline {Q}$ be a Sylow 3-subgroup of $\overline {H}.$ Then $\overline {Q}$ is cyclic of order 3. It follows that $\overline {N}\overline {Q}$ is a Frobenius group of order 15. This is a contradiction since such a group does not exist.

Both cases are impossible. The proof is completed.

For convenience, here we introduce the notation of 2-Frobenius groups. If G is a 2-Frobenius group, then there are normal subgroups $N, M$ of G so that $G/N$ is a Frobenius group with kernel $M/N$ , and M is a Frobenius group with kernel $N.$ We write $G=\mathrm {Frob}_2(G,M,N)$ to denote such a 2-Frobenius group.

Proof of Theorem 1.1.

We first introduce two basic facts.

  1. (A) $\mathrm {cod}\,\chi> \chi (1)$ if $1_{G}\not = \chi \in \mathrm {Irr}(G)$ .

  2. (B) If G is abelian, then $\mathrm {cod}\,\chi $ is equal to the order of $\chi $ in the group $\mathrm {Irr}(G)\cong G.$

There is nothing to prove when $n=1.$ Assume that $n\geqslant 2.$ Applying fact (A), together with $2\in \mathrm {Cod}(G),$ we see that there exists a linear character $\chi \in \mathrm {Irr}(G)$ such that $\mathrm {cod}\,\chi =2$ and hence $\chi \in \mathrm {Irr}(G/G').$ Then it follows from fact (B) that $2\mid |G:G'|.$

If $n=2,$ then by facts (A) and (B), G is an elementary abelian $2$ -group and (2) follows.

Assume that $n=3.$ Then by Lemma 2.2(1) and (3), $\pi (G)=\{2,3\}$ and G is a Frobenius group or a 2-Frobenius group. First suppose that $G=N\rtimes H$ is a Frobenius group with kernel $N.$ Since $2\mid |G:G'|,$ it follows that H is a 2-group and N is a 3-group. By Proposition 3.3, $\mathrm {Cod}(N)=\{1,3\}$ and $\mathrm {Cod}(G/N)=\mathrm {Cod}(H)=\{1,2\}.$ Therefore, N is an elementary abelian 3-group and H is an elementary abelian 2-group. Notice that the complement H must be cyclic or a generalised quaternion group (see [Reference Grove2, Theorem 9.2.10]). Hence, H is cyclic of order 2. Since $6\not \in \mathrm { Cod}(G),$ we have $G'=N.$ To complete the proof of (3), we only need to show that G is not a 2-Frobenius group. Assume that $G=\mathrm {Frob}_2(G,M,N)$ is a 2-Frobenius group. It follows from Proposition 3.3 that $\mathrm {Cod}(G/N)=\mathrm {Cod}(M)=\{1,2,3\}.$ Similarly, $G/N\cong C_3^s\rtimes C_2$ and $M\cong C_3^t\rtimes C_2$ for some positive integers s and $t.$ This is a contradiction. Hence, (3) follows.

Now we show that $n\not =4.$ If $n=4,$ then $\pi (G)=\{2,3\}$ and G is a Frobenius group or a 2-Frobenius group. First assume that $G=N\rtimes H$ is a Frobenius group with kernel $N.$ Then by a proof similar to that above, N is an elementary abelian 3-group and H is a 2-group with $\mathrm {Cod}(H)=\{1,2,4\}.$ Together with the fact that the complement H must be cyclic or a generalised quaternion group, we have $H\cong C_4$ or $Q_8.$ Notice that there exists $\phi \in \mathrm {Irr}(N)$ so that $\mathrm {cod}(\phi ^G)=|N|/|\mathrm {ker}\,\phi ^G|=3.$ It is obvious that $\mathrm {ker}\,\phi ^G<N.$ Then $G/\mathrm {ker}\,\phi ^G=N/\mathrm {ker}\,\phi ^G\rtimes H\mathrm {ker}\,\phi ^G/\mathrm {ker}\,\phi ^G\cong C_3\rtimes C_4$ or $C_3\rtimes Q_8$ is a Frobenius group, which is a contradiction. Thus, G cannot be a Frobenius group. Assume that $G=\mathrm {Frob}_2(G,M,N)$ is a 2-Frobenius group. Since $G/N$ is Frobenius and $\mathrm {Cod}(G/N) \subseteq \mathrm {Cod}(G),$ we have $\mathrm {Cod}(G/N)=\{1,2,3\}.$ Similarly, $\mathrm {Cod}(M)=\{1,2,3\}.$ This cannot happen by statement (2) of this theorem. Hence, $n\not =4.$

By Proposition 3.2, it remains to show that $n\not =6.$ If $n=6,$ then $\pi (G)=\{2,3,5\}$ and G is a Frobenius group or a 2-Frobenius group. It follows by Proposition 3.4 that G is not a Frobenius group. We may assume that $G=\mathrm {Frob}_2(G,M,N)$ is a 2-Frobenius group. By Proposition 3.3(1) and (2), $\mathrm {Cod}(G/N) \subseteq \mathrm {Cod}(G)$ and $\mathrm {Cod}(M/N) \subseteq \mathrm {Cod}(M) \subseteq \mathrm { Cod}(G).$ Since both $G/N$ and M are Frobenius groups, it follows by Proposition 3.4 that $|\pi (G/N)|=|\pi (M)|=2.$ Write $\overline {G}=G/N$ and then $\overline {G}=\overline {M}\rtimes \overline {K},$ where $\overline {K}$ is the Frobenius complement. First consider the case when $\pi (\overline {K})\not =\{2\}.$ As $\overline {K}$ is cyclic and $\mathrm {Cod}(\overline {K}) \subseteq \mathrm {Cod}(G),$ we have $G'\leqslant M$ and $\overline {K}$ is cyclic of order 3 or 5. Notice that $2\mid |G:G'|.$ Then $\overline {K}\cong C_3$ and $\overline {M}$ is a 2-group. Since M is Frobenius and $\overline {M}$ is isomorphic to its complement, it follows that $\overline {M}$ is cyclic or a generalised quaternion group and hence $\overline {M}\cong C_2, C_4$ or $Q_8.$ But $\overline {G}\cong \overline {M}\rtimes C_3$ is Frobenius, which is impossible. Assume now that $\pi (\overline {K})=\{2\}.$ It is obvious that $\pi (M)=\{3,5\}.$ Let $M=N\rtimes H$ be a Frobenius group with kernel $N.$ By a similar proof, there exists $\phi \in \mathrm {Irr}(N)$ so that $G/\mathrm { ker}\phi ^G\cong N/\mathrm {ker}\phi ^G\rtimes H\cong C_{15}.$ It follows that $15\in \mathrm {Cod}(G),$ a contradiction. Hence, $n\not =6.$ The proof is completed.

References

El Bachraoui, M., ‘Primes in the interval $\left[2n,3n\right]$ ’, Int. J. Contemp. Math. Sci. 1(13) (2006), 617621.CrossRefGoogle Scholar
Grove, L. C., Groups and Characters (John Wiley and Sons, New York, 1997).CrossRefGoogle Scholar
Huppert, B., Character Theory of Finite Groups (de Gruyter, Berlin, 1998).CrossRefGoogle Scholar
Isaacs, I. M., ‘Element orders and character codegrees’, Arch. Math. 97 (2011), 499501.CrossRefGoogle Scholar
Isaacs, I. M. and Passman, D. S., ‘A characterization of groups in terms of the degrees of their characters’, Pacific J. Math. 15 (1965), 877903.CrossRefGoogle Scholar
Lewis, M. L., ‘Determining group structure from sets of character degrees’, J. Algebra 206(1) (1998), 235260.CrossRefGoogle Scholar
Lewis, M. L., ‘Irreducible character degree sets of solvable groups’, J. Algebra 206(1) (1998), 208234.CrossRefGoogle Scholar
Lewis, M. L. and Yan, Q., ‘On the sum of character codegrees of finite groups’, Preprint, 2024, arXiv:2402.12628.Google Scholar
Qian, G., Wang, Y. and Wei, H., ‘Co-degrees of irreducible characters in finite groups’, J. Algebra 312 (2007), 946955.CrossRefGoogle Scholar
Yang, Y. and Qian, G., ‘The analog of Huppert’s conjecture on character codegrees’, J. Algebra 478 (2017), 215219.CrossRefGoogle Scholar