基于自适应神经观测器的RISE混沌控制

M. Malekzadeh, A. Khosravi, Hossein Rasouli, A. R. Noei
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引用次数: 1

摘要

混沌系统状态的测量与观测是控制工程中的一大挑战。由于状态缺乏可用性,控制目的无法实现所要求的性能。本文提出了一种新的基于观测器的混沌控制结构。最近开发的RISE反馈控制器与自适应神经观测器相结合来控制Genesio-Tesi混沌系统。与其他传统的神经网络结构不同,应用观测器是在线训练的。通过仿真研究了所提控制器的性能。
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A Genesio-Tesi chaotic control using an adaptive-neural observer based RISE controller
Measurement and observation of chaotic system states are major challenge in the control engineering. Due to lack of availability of the states, the control purpose fails to realize required performance. In this paper a new observer based structure is proposed to control the chaos. The recently developed RISE feedback controller is combined with an adaptive-Neural observer to control the Genesio-Tesi chaotic system. Unlike to other conventional structures of neural network the applied observer is trained on-line. Performance of the proposed controller is investigated through simulation.
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