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Research Article | Open Access

Impact of supervise neural network on a stochastic epidemic model with Levy noise

Rukhsar Ikram1( )Amir Khan1Aeshah A. Raezah2
Department of Mathematics & Statistics, University of Swat, KPK, Pakistan
Department of Mathematics, Faculty of Science, King Khalid University, Abha 62529, Saudi Arabia
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Abstract

This paper primarily focused on analyzing a stochastic SVIR epidemic model that incorporates Levy noises. The population may be divided into four distinct compartments: vulnerable class ( S), vaccinated individuals ( V), infected individuals ( I), and recovered individuals ( R). To achieve this, we chose existing and unique techniques as the most feasible solution. In the nexus, the stochastic model was theoretically analyzed using a suitable Lyapunov function. This analysis broadly covered the existence and uniqueness of the non-negative solution, as well as the dynamic properties related to both the disease-free equilibrium and the endemic equilibrium. In order to eradicate diseases, a stochastic threshold value denoted as " R0" was used to determine if they may be eradicated. If R0<1, it means that the illnesses have the potential to become extinct. Moreover, we provided numerical performance results of the proposed model using the artificial neural networks technique combined with the Bayesian regularization method. We firmly believe that this study will establish a solid theoretical foundation for comprehending the spread of an epidemic, the implementation of effective control strategies, and addressing real-world issues across various academic disciplines.

CLC number: 92B20, 93E03

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AIMS Mathematics
Pages 21273-21293

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Cite this article:
Ikram R, Khan A, Raezah AA. Impact of supervise neural network on a stochastic epidemic model with Levy noise. AIMS Mathematics, 2024, 9(8): 21273-21293. https://doi.org/10.3934/math.20241033

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Received: 20 March 2024
Revised: 03 June 2024
Accepted: 12 June 2024
Published: 15 August 2024
©2024 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)