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Research Article | Open Access

Robust dissipativity and passivity of stochastic Markovian switching CVNNs with partly unknown transition rates and probabilistic time-varying delay

Qiang Li1Weiqiang Gong2( )Linzhong Zhang1Kai Wang1
School of Science, Anhui Agricultural University, Hefei 230036, China
School of Applied Mathematics, Nanjing University of Finance and Economics, Nanjing 210023, China
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Abstract

This article addresses the robust dissipativity and passivity problems for a class of Markovian switching complex-valued neural networks with probabilistic time-varying delay and parameter uncertainties. The main objective of this article is to study the proposed problem from a new perspective, in which the relevant transition rate information is partially unknown and the considered delay is characterized by a series of random variables obeying bernoulli distribution. Moreover, the involved parameter uncertainties are considered to be mode-dependent and norm-bounded. Utilizing the generalized It o ^ 's formula under the complex version, the stochastic analysis techniques and the robust analysis approach, the ( M , N , W )-dissipativity and passivity are ensured by means of complex matrix inequalities, which are mode-delay-dependent. Finally, two simulation examples are provided to verify the effectiveness of the proposed results.

CLC number: 00A69

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AIMS Mathematics
Pages 19458-19480

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Cite this article:
Li Q, Gong W, Zhang L, et al. Robust dissipativity and passivity of stochastic Markovian switching CVNNs with partly unknown transition rates and probabilistic time-varying delay. AIMS Mathematics, 2022, 7(10): 19458-19480. https://doi.org/10.3934/math.20221068

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Received: 19 July 2022
Revised: 22 August 2022
Accepted: 24 August 2022
Published: 15 October 2022
©2022 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)