首页|Sampled-data synchronization criteria for Markovian jumping neural networks with additive time-varying delays using new techniques

Sampled-data synchronization criteria for Markovian jumping neural networks with additive time-varying delays using new techniques

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This paper investigates the sampled-data synchronization issue of Markovian jumping neural networks with additive time-varying delays. Firstly, a ternary quadratic function negative-determination condition and the bilateral sampled-interval-related Lyapunov functional (BSIRLF) approach are proposed. Based on the developed two novel approaches, some new criteria based on the linear matrix inequalities (LMIs) are established to guarantee the drive-response stochastic sampled-data synchronization of Markovian jumping neural networks with additive time-varying delays. Meanwhile, the corresponding sampled-data controller gains are designed under the larger sampling interval. In the end, the availability and merits of the developed approaches are displayed via two simulative examples. (C) 2021 Elsevier Inc. All rights reserved.

Markovian jumping neural networksAdditive time-varying delaysSampled-data controlSynchronizationEXPONENTIAL SYNCHRONIZATIONLINEAR-SYSTEMSNEUTRAL-TYPECOMPLEX NETWORKSSTABILITYSTABILIZATIONCOMMUNICATIONPARAMETERS

Shu, Jinlong、Wu, Tao、Cao, Jinde、Xiong, Lianglin、Zhang, Haiyang

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Shaanxi Normal Univ

Southeast Univ

Yunnan Minzu Univ

2022

Applied mathematics and computation

Applied mathematics and computation

EISCI
ISSN:0096-3003
年,卷(期):2022.413
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