Iterative learning state estimation for nonlinear repetitive process

Yu Hui, R. Chi
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Abstract

This paper explores the question about iterative learning observer design about a kind of nonlinear plants have repetitive operating characteristics. Different from traditional methods, the proposed iterative learning state observer is conducted and updated along the iteration direction. Furthermore, the proposed method has data-driven nature and derives from nonlinear systems directly, where no any model information is required except for the input and output measurements. A simulation case was employed to prove the performance of the given observer.
非线性重复过程的迭代学习状态估计
本文研究了一类具有重复工作特性的非线性对象的迭代学习观测器设计问题。与传统方法不同,所提出的迭代学习状态观测器是沿着迭代方向进行并更新的。此外,该方法具有数据驱动的性质,直接来源于非线性系统,除了输入和输出测量外,不需要任何模型信息。通过仿真实例验证了该观测器的性能。
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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