Data-driven IMC for non-minimum phase systems - Laguerre expansion approach -

Hien Thi Nguyen, O. Kaneko, S. Yamamoto
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引用次数: 6

Abstract

This paper proposes a data-driven parameter tuning of the internal model controller (IMC) for non-minimum phase plants. In order to perform the parameter tuning of the IMC, we utilize the fictitious reference iterative tuning (FRIT), which enables us to obtain the desired parameter of the controller with only one-shot experiment data. Particularly, we propose an embedding of the internal mathematical model which is described by Laguerre expansion for describing non-minimum phase plants. Moreover, we show that the proposed approach enables us to obtain not only a desired controller but also a well-approximated mathematical model of the actual non-minimum phase plant simultaneously.
非最小相位系统的数据驱动IMC。拉盖尔展开法
针对非最小相位对象,提出了一种数据驱动的内模控制器参数整定方法。为了实现IMC的参数整定,我们使用了虚拟参考迭代整定(FRIT),使我们能够仅用一次实验数据获得所需的控制器参数。特别地,我们提出了一种由拉盖尔展开描述的内部数学模型的嵌入来描述非最小相位植物。此外,我们还表明,所提出的方法使我们不仅可以同时获得所需的控制器,而且可以同时获得实际非最小相位装置的很好的近似数学模型。
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