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Adaptive quasi-synchronization analysis for Caputo delayed Cohen-Grossberg neural networks. (English) Zbl 1540.93039

Summary: The quasi-synchronization (QS) issues for Caputo delayed Cohen-Grossberg neural networks (CGNNs) are discussed in this article. To begin with, a novel lemma is established by constructing suitable fractional differential inequality. Due to the advantages of adaptive control schemes with reducing control cost and having high tracking accuracy, two different adaptive controllers are designed, respectively. Applying the proposed lemma, inequality techniques and Lagrange’s mean value theorem, the conditions of QS are obtained by selecting appropriate Lyapunov functions. Finally, two numerical examples in different dimensions are shown to test the correctness of the gained theorems.

MSC:

93B70 Networked control
92B20 Neural networks for/in biological studies, artificial life and related topics
93D40 Finite-time stability
93C40 Adaptive control/observation systems
93C43 Delay control/observation systems
93A14 Decentralized systems
Full Text: DOI

References:

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