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Stochastic stability of fuzzy Markovian jump neural networks by multiple integral approach
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作者 Cheng-De Zheng 《International Journal of Intelligent Computing and Cybernetics》 EI 2018年第1期81-105,共25页
Purpose–The purpose of this paper is to develop a methodology for the stochastically asymptotic stability of fuzzy Markovian jumping neural networks with time-varying delay and continuously distributed delay in mean ... Purpose–The purpose of this paper is to develop a methodology for the stochastically asymptotic stability of fuzzy Markovian jumping neural networks with time-varying delay and continuously distributed delay in mean square.Design/methodology/approach–The authors perform Briat Lemma,multiple integral approach and linear convex combination technique to investigate a class of fuzzy Markovian jumping neural networks with time-varying delay and continuously distributed delay.New sufficient criterion is established by linear matrix inequalities conditions.Findings–It turns out that the obtained methods are easy to be verified and result in less conservative conditions than the existing literature.Two examples show the effectiveness of the proposed results.Originality/value–The novelty of the proposed approach lies in establishing a new Wirtinger-based integral inequality and the use of the Lyapunov functional method,Briat Lemma,multiple integral approach and linear convex combination technique for stochastically asymptotic stability of fuzzy Markovian jumping neural networks with time-varying delay and continuously distributed delay in mean square. 展开更多
关键词 briat lemma Fuzzy neural networks Markovian jump Wirtinger-based integral inequality
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