Numerical validation of a procedure for direct identification of passive linear multiport with convex programming

A. Chiariello, M. de Magistris, L. De Tommasi, D. Deschrijver, T. Dhaene
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引用次数: 4

Abstract

The paper deals with the numerical validation, performance evaluation and robustness assessment of a procedure for the direct identification of passive transfer matrices based on convex programming. Validation is pursued by producing data sets from lumped multiport systems with random parameters (passive, non passive, and possibly affected by random noise), then evaluating the identification ability of the considered method. Results demonstrate how the considered approach satisfactorily covers the passive identification of a large class of data sets, even in presence of significant passivity violations or noise flawed data, at average accuracies comparable with non passive identifications obtained with standard Vector Fitting.
用凸规划直接识别无源线性多端口程序的数值验证
本文研究了一种基于凸规划的被动传递矩阵直接辨识方法的数值验证、性能评价和鲁棒性评价。验证是通过从具有随机参数(被动、非被动和可能受随机噪声影响)的集总多端口系统中生成数据集来实现的,然后评估所考虑方法的识别能力。结果表明,所考虑的方法如何令人满意地涵盖了大量数据集的被动识别,即使存在显著的被动违规或噪声缺陷数据,其平均精度与使用标准向量拟合获得的非被动识别相当。
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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