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arXiv · 2310.11809

Characterizations of $p$-groups whose power graphs satisfy certain connectivity conditions

Abstract

Let $\Gamma$ be an undirected and simple graph. A set $ S $ of vertices in $\Gamma$ is called a {cyclic vertex cutset} of $\Gamma$ if $\Gamma - S$ is disconnected and has at least two components containing cycles. If $\Gamma$ has a cyclic vertex cutset, then it is said to be {cyclically separable}. The {cyclic vertex connectivity} of $\Gamma$ is the minimum of cardinalities of the cyclic vertex cutsets of $\Gamma$. The {power graph} $\mathcal{P}(G)$ of a group $G$ is the undirected and simple graph whose vertices are the elements $G$ and two vertices are adjacent if one of them is the power of other in $G$. In this paper, we first characterize the finite $ p $-groups ($p$ is a prime number) whose power graphs are cyclically separable in terms of their maximal cyclic subgroups. Then we characterize the finite $ p $-groups whose power graphs have equal vertex connectivity and cyclic vertex connectivity.

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BibTeXRIS

Ramesh Prasad Panda. 2023-10-18. Characterizations of $p$-groups whose power graphs satisfy certain connectivity conditions. https://arxiv.org/abs/2310.11809

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