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Intelligent Backstepping Control of Synchronous Reluctance Motor Drive System

机译:同步磁阻电动机驱动系统智能反向控制

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An intelligent backstepping control (BSC) using recurrent feature selection fuzzy neural network (RFSFNN) is proposed to construct a high-performance synchronous reluctance motor (SRM) position drive system. First, the dynamics of the SRM position drive system and the BSC are briefly introduced. However, the lumped uncertainty of the SRM is unavailable to obtain in advance. Therefore, an intelligent backstepping control using recurrent feature selection fuzzy neural network (IBSCRFSFNN), which combines the advantages of recurrent neural network, fuzzy logic system and feature selection method, is developed to approximate an idea BSC and to maintain the stability of SRM position drive system. The network structure and online learning algorithm of the IBSCRFSFNN are described in detail. At last, the proposed control system is implemented in a floating-point TMS320F28075 digital signal processor. The experimental results are illustrated to show the validity of the proposed intelligent BSC system.
机译:建议使用反复间特征选择模糊神经网络(RFSFNN)的智能反向控制(BSC)构建高性能同步磁阻电机(SRM)位置驱动系统。首先,简要介绍SRM位置驱动系统和BSC的动态。然而,SRM的集成不确定性无法提前获得。因此,使用复发特征选择模糊神经网络(IBSCRFSFNN)的智能反向仪控制,它结合了经常性神经网络,模糊逻辑系统和特征选择方法的优点,以近似思想BSC并保持SRM位置驱动器的稳定性系统。详细描述了IBSCRFSFNN的网络结构和在线学习算法。最后,所提出的控制系统在浮点TMS320F28075数字信号处理器中实现。示出了实验结果以显示提出智能BSC系统的有效性。

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