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Survey of a controller design method based on experimental data and a proposal of data conversion method

机译:基于实验数据的控制器设计方法综述及数据转换方法的建议

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Several methods have been proposed for designing a controller using experimental data directly without identifying a controlled plant. Among them, optimal controller design methods from one-time experimental data, such as Virtual Reference Feedback Tuning (VRFT), Fictitious Reference Iterative Tuning (FRIT), and Noniterative Correlation-based Tuning (NCbT), are especially expected to reduce the time and cost of designing a controller. VRFT and FRIT make a reference signal from experimental data. In contrast, NCbT is a method that removes noise influence by determining parameters for the controller so as not to have the interrelation of the correlation function between a reference signal and noise. However, VRFT and FRIT cannot deal with data that include noises. Although NCbT can be used to design an optimal controller from experimental data with noise, it is limited to cases where there is no interrelation between a reference signal and noise. In this paper, we show a summary of the conventional method and argue about a problem where there is noise. We also propose a data conversion method using linearity after applying spline fitting instead of using experimental data directly. In addition, we discuss the advantages of the conventional method and the proposed method.
机译:已经提出了几种直接使用实验数据设计控制器而不识别受控工厂的方法。其中,特别希望从一次性实验数据中获得最佳控制器设计方法,例如虚拟参考反馈调整(VRFT),虚拟参考迭代调整(FRIT)和基于非相关性的基于调整(NCbT),以减少时间和设计控制器的成本。 VRFT和FRIT从实验数据中获得参考信号。相反,NCbT是一种通过为控制器确定参数来消除噪声影响的方法,以使参考信号和噪声之间的相关函数不具有相互关系。但是,VRFT和FRIT无法处理包含噪声的数据。尽管可以使用NCbT根据带有噪声的实验数据来设计最佳控制器,但是它仅限于参考信号与噪声之间没有相互关系的情况。在本文中,我们将对传统方法进行总结,并讨论存在噪声的问题。我们还提出了在应用样条拟合后使用线性而不是直接使用实验数据的数据转换方法。此外,我们讨论了常规方法和建议方法的优点。

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