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Adaptive finite-time synchronization of stochastic mixed time-varying delayed memristor-based neural networks

机译:随机混合时变延迟延迟映射神经网络的自适应有限时间同步

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This paper focuses on the finite-time synchronization of stochastic memristor-based neural networks with time-varying discrete and distributed delays and discontinuous nonlinear functions via the adaptive state-feedback controller. Based on the theories of set-valued mappings and stochastic differential inclu-sions, the finite-time synchronization of the drive neural network and response neural network is trans -formed into the finite-time stabilization problem of the corresponding error stochastic neural network. By choosing an appropriate Lyapunov function and employing the theory of stochastic finite-time stabil -ity, we present a method to design the control gain parameters. Finally, an example verifies the validity of the proposed method.(c) 2020 Elsevier B.V. All rights reserved.
机译:本文侧重于通过自适应状态反馈控制器与时变离散和分布延迟和不连续的非线性函数的随机映射器基神经网络的有限时间同步。 基于设定值映射和随机差分阻塞的理论,驱动神经网络和响应神经网络的有限时间同步是跨变形的相应误差随机神经网络的有限时间稳定问题。 通过选择合适的Lyapunov函数并采用随机有限时间稳定的理论,我们提出了一种设计控制增益参数的方法。 最后,一个示例验证了所提出的方法的有效性。(c)2020 Elsevier B.v.保留所有权利。

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