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Research Article | Open Access

Clustering quantum Markov chains on trees associated with open quantum random walks

Luigi Accardi1Amenallah Andolsi2Farrukh Mukhamedov3Mohamed Rhaima4Abdessatar Souissi5( )
Centro Vito Volterra, Università di Roma "Tor Vergata", Roma I-00133, Italy
Nuclear Physics and High Energy Physics Research Unit, Faculty of Sciences of Tunis, University of Tunis El Manar, Tunis 2092, Tunisia
Department of Mathematical Sciences, College of Science, United Arab Emirates University, Al-Ain 15551, United Arab Emirates
Department of Statistics and Operations Research, College of Sciences, King Saud University, P.O. Box 2455, Riyadh 11451, Saudi Arabia
Mathematical Physics, Quantum Modeling and Mechanical Design, University of Carthage, Carthage 1054, Tunisia
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Abstract

In networks, the Markov clustering (MCL) algorithm is one of the most efficient approaches in detecting clustered structures. The MCL algorithm takes as input a stochastic matrix, which depends on the adjacency matrix of the graph network under consideration. Quantum clustering algorithms are proven to be superefficient over the classical ones. Motivated by the idea of a potential clustering algorithm based on quantum Markov chains, we prove a clustering property for quantum Markov chains (QMCs) on Cayley trees associated with open quantum random walks (OQRW).

CLC number: 35Qxx, 60Jxx, 81-XX

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AIMS Mathematics
Pages 23003-23015

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Cite this article:
Accardi L, Andolsi A, Mukhamedov F, et al. Clustering quantum Markov chains on trees associated with open quantum random walks. AIMS Mathematics, 2023, 8(10): 23003-23015. https://doi.org/10.3934/math.20231170

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Received: 14 May 2023
Revised: 15 June 2023
Accepted: 19 June 2023
Published: 15 October 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)