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Comparative experimental study of a fuzzy feedback linearization control based on a fuzzy estimator international conference on control, automation and systems (ICCAS 2013)

机译:基于模糊估计器国际控制,自动化和系统会议的模糊反馈线性化控制的对比实验研究(ICCAS 2013)

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In this paper, we consider an experimental study of an adaptive fuzzy control for a class of single input single output nonlinear systems. A Takagi Sugeno (TS) fuzzy inference system (FIS) is used to approximate the feedback linearization law. The adaptation mechanism is based on an estimate of the error between the ideal unknown control signal and the actual control signal. This estimate is provided by a Mamdani fuzzy system whose rule base is constructed using simple expert reasoning. The parameters of the (TS) controller are updated using the gradient descent law based on the estimated control error. The experiment is carried out on a three tanks system with the objective of controlling the level of one tank. The results compare favorably with those obtained using a PI controller.
机译:在本文中,我们考虑了针对一类单输入单输出非线性系统的自适应模糊控制的实验研究。 Takagi Sugeno(TS)模糊推理系统(FIS)用于近似反馈线性化定律。自适应机制基于理想未知控制信号和实际控制信号之间的误差的估计。该估计值由Mamdani模糊系统提供,该系统的规则库是使用简单的专家推理构建的。 (TS)控制器的参数根据估计的控制误差使用梯度下降定律进行更新。实验是在三槽系统上进行的,目的是控制一个槽的液位。结果与使用PI控制器获得的结果相比具有优势。

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