Comparative study of parametric and structural methodologies in identification of an experimental nonlinear process

P.A. Marchi, L. dos Santos Coelho, A. Coelho
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引用次数: 6

Abstract

Presents a comparative study of parametric and structural identification methodologies when applied to the identification of an experimental nonlinear process. Several approaches for parametric identification are presented, such as: (i) linear mathematical model obtained through recursive least-squares (RLS), (ii) linear model with estimation algorithm using multi-step-ahead, (iii) Hammerstein model, (iv) Volterra model and, (v) bilinear model. Two structural approaches for neural network configuration are used: (i) multilayer perceptron, and (vii) radial basis function. An experimental evaluation is performed on a fan-and-plate process which exhibits complex features. The main characteristics of each identification methodologies and experimental results are assessed and compared using performance indices and validation response curves.
参数方法与结构方法在实验非线性过程辨识中的比较研究
提出了参数和结构识别方法的比较研究,当应用于识别实验非线性过程。提出了几种参数辨识方法,如:(i)通过递推最小二乘(RLS)获得的线性数学模型,(ii)采用多步超前估计算法的线性模型,(iii) Hammerstein模型,(iv) Volterra模型和(v)双线性模型。神经网络配置使用了两种结构方法:(i)多层感知器和(vii)径向基函数。对具有复杂特征的扇板工艺进行了实验评价。利用性能指标和验证响应曲线对各鉴定方法的主要特点和实验结果进行了评价和比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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