Mean-square exponential input-to-state stability of stochastic inertial neural networks

Wentao Wang, Wei Chen · Advances in Difference Equations · 2021

Abstract By introducing some parameters perturbed by white noises, we propose a class of stochastic inertial neural networks in random environments. Constructing two Lyapunov–Krasovskii functionals, we establish the mean-square exponential input-to-state stability on the addressed model, which generalizes and refines the recent results. In addition, an example with numerical simulation is carried out to support the theoretical findings.

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