Approximation of a linear dynamic process model using the frequency approach and a non-quadratic measure of the model error

K. Janiszowski
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引用次数: 4

Abstract

Abstract The paper presents a novel approach to approximation of a linear transfer function model, based on dynamic properties represented by a frequency response, e.g., determined as a result of discrete-time identification. The approximation is derived for minimization of a non-quadratic performance index. This index can be determined as an exponent or absolute norm of an error. Two algorithms for determination of the approximation coefficients are considered, a batch processing one and a recursive scheme, based on the well-known on-line identification algorithm. The proposed approach is not sensitive to local outliers present in the original frequency response. Application of the approach and its features are presented on examples of two simple dynamic systems.
用频率方法逼近线性动态过程模型和模型误差的非二次测度
摘要:本文提出了一种新的方法来逼近线性传递函数模型,基于频率响应表示的动态特性,例如,由离散时间识别的结果确定。导出了最小化非二次性能指标的近似。这个指标可以确定为一个误差的指数或绝对范数。考虑了两种近似系数的确定算法,一种是批处理算法,另一种是基于著名的在线辨识算法的递归算法。该方法对原始频率响应中的局部异常值不敏感。通过两个简单的动态系统实例,介绍了该方法的应用及其特点。
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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