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Nonlinear System Identification Using Discrete Laguerre Functions

机译:使用离散Laguerre函数的非线性系统识别

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摘要

Voltena functional series approximations are well known techniques for nonlinear system identification. These structures, while quite general, suffer from difficulties in parameterising the kernels, and may require a large number of parameters for models higher than second order. Discrete Laguerre filters and other orthogonal filters have been re-considered recently for both linear and nonlinear system identification. A class of multilayer perceptrons incorporating an orthogonal filter preprocessing unit is introduced. Derivations for parameter estimation of these models are given, including a consideration of both off-line and on-line methods for estimating the Laguerre pole. The paper concludes with a brief discussion of some open issues concerning such signal models.
机译:Voltena函数级数逼近是用于非线性系统识别的众所周知的技术。这些结构虽然相当通用,但在参数化内核方面存在困难,并且对于高于二阶的模型可能需要大量参数。离散Laguerre滤波器和其他正交滤波器最近已被重新考虑用于线性和非线性系统识别。介绍了一种包含正交滤波器预处理单元的多层感知器。给出了用于这些模型的参数估计的推导,包括考虑用于估计拉盖尔极点的离线和在线方法。本文最后简要讨论了有关此类信号模型的一些未解决问题。

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