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Hybrid internal model control and proportional control of chaotic dynamical systems 被引量:1

Hybrid internal model control and proportional control of chaotic dynamical systems
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摘要 A new chaos control method is proposed to take advantage of chaos or avoid it. The hybrid Internal Model Control and Proportional Control learning scheme are introduced. In order to gain the desired robust performance and ensure the system's stability, Adaptive Momentum Algorithms are also developed. Through properly designing the neural network plant model and neural network controller, the chaotic dynamical systems are controlled while the parameters of the BP neural network are modified. Taking the Lorenz chaotic system as example, the results show that chaotic dynamical systems can be stabilized at the desired orbits by this control strategy. A new chaos control method is proposed to take advantage of chaos or avoid it. The hybrid Internal Model Control and Proportional Control learning scheme are introduced. In order to gain the desired robust performance and ensure the system's stability, Adaptive Momentum Algorithms are also developed. Through properly designing the neural network plant model and neural network controller, the chaotic dynamical systems are controlled while the parameters of the BP neural network are modified. Taking the Lorenz chaotic system as example, the results show that chaotic dynamical systems can be stabilized at the desired orbits by this control strategy.
出处 《Journal of Zhejiang University Science》 EI CSCD 2004年第1期62-67,共6页 浙江大学学报(自然科学英文版)
关键词 CHAOS Neural network Internal model control Proportional control 混沌动力系统 比例控制 BP神经网络 内部模型控制
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