具有多个非线性源的块结构模型的识别

A. V. Mulders, L. Vanbeylen, K. Usevich
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引用次数: 19

摘要

本文重点研究了一种基于状态空间的方法,用于识别相当一般的非线性块结构模型。该模型由多个单输入单输出(SISO)静态多项式非线性连接到一个多输入多输出(MIMO)动态部分。所提出的方法是对以前的工作的扩展和改进,其中最多可以识别两个非线性。不需要事先知道非线性的位置或它们与模型其他部分的关系:该方法是一种黑盒方法,不需要测量或知道状态、内部信号或结构特性。第一步是从输入-输出测量中估计部分结构化的多项式(非线性)状态空间模型。其次,通过分解多元多项式系数,采用代数方法分离动力学和非线性。
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Identification of a block-structured model with several sources of nonlinearity
This paper focuses on a state-space based approach for the identification of a rather general nonlinear block-structured model. The model has several Single-Input Single-Output (SISO) static polynomial nonlinearities connected to a Multiple-Input Multiple-Output (MIMO) dynamic part. The presented method is an extension and improvement of prior work, where at most two nonlinearities could be identified. The location of the nonlinearities or their relation to other parts of the model does not have to be known beforehand: the method is a black-box approach, in which no states, internal signals or structural properties need to be measured or known. The first step is to estimate a partly structured polynomial (nonlinear) state-space model from input-output measurements. Secondly, an algebraic approach is used to split the dynamics and the nonlinearities by decomposing the multivariate polynomial coefficients.
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