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首页> 外文期刊>Mathematical Problems in Engineering >Hybrid Recurrent Laguerre-Orthogonal-Polynomial NN Control System Applied in V-Belt Continuously Variable Transmission System Using Particle Swarm Optimization
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Hybrid Recurrent Laguerre-Orthogonal-Polynomial NN Control System Applied in V-Belt Continuously Variable Transmission System Using Particle Swarm Optimization

机译:混合粒子群优化在V型皮带无级变速系统中的混合递归Laguerre-正交多项式NN控制系统

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摘要

Because the V-belt continuously variable transmission (CVT) system driven by permanent magnet synchronous motor (PMSM) has much unknown nonlinear and time-varying characteristics, the better control performance design for the linear control design is a time consuming procedure. In order to overcome difficulties for design of the linear controllers, the hybrid recurrent Laguerre-orthogonal-polynomial neural network (NN) control system which has online learning ability to respond to the system's nonlinear and time-varying behaviors is proposed to control PMSM servo-driven V-belt CVT system under the occurrence of the lumped nonlinear load disturbances. The hybrid recurrent Laguerre-orthogonal-polynomial NN control system consists of an inspector control, a recurrent Laguerre-orthogonal-polynomial NN control with adaptive law, and a recouped control with estimated law. Moreover, the adaptive law of online parameters in the recurrent Laguerre-orthogonal-polynomial NN is derived using the Lyapunov stability theorem. Furthermore, the optimal learning rate of the parameters by means of modified particle swarm optimization (PSO) is proposed to achieve fast convergence. Finally, to show the effectiveness of the proposed control scheme, comparative studies are demonstrated by experimental results.
机译:由于由永磁同步电动机(PMSM)驱动的三角皮带无级变速器(CVT)系统具有许多未知的非线性和时变特性,因此对于线性控制设计而言,更好的控制性能设计是一个耗时的过程。为了克服线性控制器设计的困难,提出了一种具有在线学习能力以响应系统的非线性和时变行为的混合递归Laguerre-正交多项式神经网络(NN)控制系统,以控制PMSM伺服系统。驱动三角皮带无级变速系统在集中载荷作用下发生非线性扰动。混合递归Laguerre正交多项式NN控制系统由检查器控制,具有自适应律的递归Laguerre正交多项式NN控制和具有估计律的回馈控制组成。此外,使用Lyapunov稳定性定理,推导了循环Laguerre-正交多项式NN中在线参数的自适应定律。此外,提出了通过改进的粒子群算法(PSO)实现参数的最优学习率,以实现快速收敛。最后,为了显示所提出的控制方案的有效性,实验结果证明了比较研究。

著录项

  • 来源
    《Mathematical Problems in Engineering》 |2015年第22期|106707.1-106707.17|共17页
  • 作者

    Lin Chih-Hong;

  • 作者单位

    Natl United Univ, Dept Elect Engn, 1 Lienda, Miaoli 36003, Miaoli County, Taiwan;

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  • 正文语种 eng
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