Dynamics of Symmetrical Discontinuous Hopfield Neural Networks with Poisson Stable Rates, Synaptic Connections and Unpredictable Inputs

Author:

Akhmet Marat1ORCID,Nugayeva Zakhira23ORCID,Seilova Roza23ORCID

Affiliation:

1. Department of Mathematics, Middle East Technical University, Ankara 06800, Turkey

2. Department of Mathematics, K. Zhubanov Aktobe Regional University, Aktobe 030000, Kazakhstan

3. Institute of Information and Computational Technologies, Almaty 050010, Kazakhstan

Abstract

The purpose of this paper is to study the dynamics of Hopfield neural networks with impulsive effects, focusing on Poisson stable rates, synaptic connections, and unpredictable external inputs. Through the symmetry of impulsive and differential compartments of the model, we follow and extend the principal dynamical ideas of the founder. Specifically, the research delves into the phenomena of unpredictability and Poisson stability, which have been examined in previous studies relating to models of continuous and discontinuous neural networks with constant components. We extend the analysis to discontinuous models characterized by variable impulsive actions and structural ingredients. The method of included intervals based on the B-topology is employed to investigate the networks. It is a novel approach that addresses the unique challenges posed by the sophisticated recurrence.

Funder

Science Committee of the Ministry of Education and Science of the Republic of Kazakhstan

TUBITAK

Publisher

MDPI AG

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