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Multi–Level Identification of Hammerstein-Wiener Systems

机译:Hammerstein-Wiener系统的多级识别

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The paper addresses the problem of Hammerstein–Wiener (N–L–N) system identification. The system is identified in so-called two-experiment approach. In passive experiment the system is excited with random noise, whereas in active experiment binary sequences are used. We present an algorithm with four consecutive stages, in which static nonlinear characteristics are recovered separately from the linear dynamic block. The proposed method uses both parametric and nonparametric identification tools. The estimates are based on kernel preselection of data and application of local least squares. Identification of output nonlinearity is processed under active experiment. We analyze the consistency of the proposed estimates under some a priori restrictions imposed on the excitation signal and system characteristics. Finally, we present a simple simulation example to demonstrate the behaviour of the algorithm.
机译:本文解决了Hammerstein–Wiener(N–L–N)系统识别的问题。该系统以所谓的两次实验方法进行识别。在被动实验中,系统被随机噪声激励,而在主动实验中,使用二进制序列。我们提出了一个具有四个连续阶段的算法,其中静态非线性特征与线性动态块分开恢复。所提出的方法使用参数和非参数识别工具。估计基于数据的内核预选和局部最小二乘法的应用。输出非线性的识别在主动实验中进行。我们在对激励信号和系统特性施加一些先验限制的情况下分析了提出的估计的一致性。最后,我们提供一个简单的仿真示例来演示算法的行为。

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