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DESIGN OF A ROBUST ADAPTIVE CMAC SYSTEM FOR BLDC MOTORS WITH PI TYPE PARAMETER ADAPTATION

机译:具有PI型参数适应的BLDC电机鲁棒自适应CMAC系统设计

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The main advantage of cerebellar model articulation controller (CMAC) is its fast learning rate compared to other neural networks since it can provide more potential to enrich the mapping relationship between inputs and outputs. This paper proposes a robust adaptive CMAC system for brushless DC motors with PI type parameter adaptation. CMAC is used to mimic an ideal controller based on the Lyapunov stability theory, and the robust controller is designed to achieve L{sub}2 tracking performance with desired attenuation level. The robust adaptive CMAC system is implemented on a field programmable gate array chip and is applied to brushless DC (BLDC) motor control. Some experimental results verify that the proposed robust adaptive CMAC method can achieve good parameter adaptation and favorable tracking performance.
机译:小脑模型铰接控制器(CMAC)的主要优点是与其他神经网络相比的快速学习速率,因为它可以提供更高的输入和输出之间的映射关系的潜力。本文提出了一种具有PI型参数适应的无刷直流电机的鲁棒自适应CMAC系统。 CMAC用于基于Lyapunov稳定性理论模拟理想控制器,并且稳健的控制器旨在实现L {Sub} 2跟踪性能,具有所需的衰减水平。鲁棒自适应CMAC系统在现场可编程门阵列芯片上实现,并应用于无刷DC(BLDC)电机控制。一些实验结果验证了所提出的鲁棒自适应CMAC方法可以实现良好的参数适应和有利的跟踪性能。

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