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Adaptive Neurofuzzy Network Based PI Controllers with Multi-objective Functions

机译:具有多目标功能的基于自适应神经模糊网络的PI控制器

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摘要

As the performance of PI controllers can deteriorate rapidly for highly nonlinear systems, nonlinear PI controllers are developed. An approach to design these controllers is to switch between several linear PI controllers using fuzzy logic based on the Takagi-Sugeno model. Following this approach, nonlinear PI controllers are derived in this paper using B-spline neurofuzzy networks. Design guidelines and on-line training of the proposed controller are devised, and the performance is illustrated by a simulated two-tank water level control rig. Comparison with conventional PI controllers is also made.
机译:由于对于高度非线性的系统,PI控制器的性能可能会迅速下降,因此开发了非线性PI控制器。设计这些控制器的一种方法是使用基于Takagi-Sugeno模型的模糊逻辑在多个线性PI控制器之间切换。按照这种方法,本文使用B样条神经模糊网络推导了非线性PI控制器。设计了拟议控制器的设计指南和在线培训,并通过模拟的两缸水位控制装置说明了性能。还与常规PI控制器进行了比较。

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