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A Novel Hybrid Recurrent Wavelet Neural Network Control for a PMSM Driven Electric Scooter

机译:一种用于PMSM驱动电动滑板车的新型混合复发小波神经网络控制

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The electric scooter with nonlinear friction force of the transmission belt made the hybrid recurrent neural network (HRNN) control system with degenerated tracking responses. In order to overcome this problem, a hybrid recurrent wavelet neural network (HRWNN) control system is proposed to control for a permanent magnet synchronous motor (PMSM) driven electric scooter. The HRWNN control system consists of a supervisor control, a RWNN and a compensated control with adaptive law. The on-line parameter training methodology of the RWNN can be derived using adaptation laws and the Lyapunov stability theorem. The RWNN has the on-line learning ability to respond to the system's nonlinear and time-varying behaviors. To show the effectiveness of the proposed controller, comparative studies with HRNN control system is demonstrated by experimental results.
机译:具有传动带的非线性摩擦力的电动滑板机使混合复发性神经网络(HRNN)控制系统具有退化的跟踪响应。为了克服这个问题,提出了一种混合复发小波神经网络(HRWNN)控制系统,用于控制永磁同步电动机(PMSM)驱动的电动滑板板。 HRWNN控制系统由主管控制,RWNN和具有自适应法的补偿控制组成。 RWNN的在线参数培训方法可以使用适应法和Lyapunov稳定性定理来源。 RWNN具有在线学习能力,可以响应系统的非线性和时变行为。为了表明所提出的控制器的有效性,通过实验结果证明了具有HRNN控制系统的比较研究。

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