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Research Article | Open Access

Robustness analysis of random hyper-networks based on the internal structure of hyper-edges

Bin Zhou1,2Xiujuan Ma1( )Fuxiang Ma1Shujie Gao1,2
School of Computer, Qinghai Normal University, Xining 810008, China
The State Key Laboratory of Tibetan Intelligent Information Processing and Application, Xining 810008, China
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Abstract

Random hyper-network is an important hyper-network structure. Studying the structure and properties of random hyper-networks, which helps researchers to understand the influence of the hyper-network structure on its properties. Currently, studies related to the influence of the internal structure of the hyper-edge on robustness have not been carried out for research on the robustness of hyper-networks. In this paper, we construct three k-uniform random hyper-networks with different structures inside hyper-edges. The nodes inside hyper-edges are connected in the ways randomly connected, preferentially connected and completely connected. Meanwhile, we propose a capacity-load model that can describe the relationship between the internal structure and the robustness of the hyper-edge, based on the idea of capacity-load model. The robustness of the three hyper-networks was obtained by simulation experiments. The results show the variation of the internal structure of hyper-edge has a large influence on the robustness of the k-uniform random hyper-network. In addition, the larger number of ordinary edges m k inside the hyper-edges and the size of the hyper-network k, the more robust the k-uniform random hyper-network is.

CLC number: 05C65, 28A80, 93B05

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AIMS Mathematics
Pages 4814-4829

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Cite this article:
Zhou B, Ma X, Ma F, et al. Robustness analysis of random hyper-networks based on the internal structure of hyper-edges. AIMS Mathematics, 2023, 8(2): 4814-4829. https://doi.org/10.3934/math.2023239

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Received: 29 July 2022
Revised: 25 November 2022
Accepted: 29 November 2022
Published: 15 February 2023
©2023 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)