Tensor Product-Based Model Transformation Technique Applied to Servo Systems Modeling

Elena-Lorena Hedrea, R. Precup, Raul-Cristian Roman, E. Petriu, C. Dragos, Ciprian Hedrea
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引用次数: 3

Abstract

This paper presents the design and validation of a Tensor Product (TP)-based model of a family of nonlinear servo systems using an appropriate technique. Two parameters of the first principles state-space model of the servo system are optimally tuned using a metaheuristic Grey Wolf Optimizer algorithm in terms of several runs that lead to the parameter intervals. The derivation of the TP model starts with the linear parameter varying model of the servo system, which is next transformed to the strictly speaking TP model, inserted in a series connection with the servo system nonlinearity. The behaviors of the servo system, the TP model and the first principles model are tested in a different scenario to the parameter identification one, and the outputs are measured. The experimental results on a servo system laboratory equipment show that the TP model derived for this system ensures good performance in terms of small relative modeling errors.
基于张量积的模型变换技术在伺服系统建模中的应用
本文采用适当的技术,设计并验证了一类非线性伺服系统的张量积模型。采用元启发式灰狼优化算法对伺服系统第一原理状态空间模型的两个参数进行了优化调整,并根据多次运行导致的参数区间进行了优化调整。TP模型的推导首先从伺服系统的线性参数变化模型入手,然后将其转化为严格意义上的TP模型,并与伺服系统的非线性进行串联。在不同的场景下测试了伺服系统、TP模型和第一性原理模型与参数辨识模型的行为,并测量了输出。在伺服系统实验设备上的实验结果表明,该系统所建立的TP模型具有良好的性能,且相对建模误差较小。
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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