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RHONN identifier for unknown nonlinear discrete-time delay systems

机译:未知非线性离散时滞系统的RHONN标识符

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This work proposes a discrete-time nonlinear neural identifier based on a Recurrent High Order Neural Network (RHONN) trained with an Extended Kalman Filter (EKF) based algorithm for discrete-time deterministic multiple input multiple output (MIMO) systems with unknown dynamics and time-delay. Applicability of the proposed identifier is shown via experimental results performed under the presence of unknown external and internal disturbances as well as unknown time-delays.
机译:这项工作提出了一种基于递归高阶神经网络(RHONN)的离散时间非线性神经识别器,该随机神经网络训练有基于扩展卡尔曼滤波器(EKF)的算法,用于不确定时间和动态性的离散时间确定性多输入多输出(MIMO)系统-延迟。通过在未知的外部和内部干扰以及未知的时延存在下进行的实验结果,表明了所提出标识符的适用性。

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