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Variable-structure-systems based approach for online learning of spiking neural networks and its experimental evaluation

机译:基于变结构系统的尖峰神经网络在线学习方法及其实验评价

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摘要

Raising the level of biological realism by utilizing the timing of individual spikes, spiking neural networks (SNNs) are considered to be the third generation of artificial neural networks. In this work, a novel variable-structure-systems based approach for online learning of SNN is developed and tested on the identification and speed control of a real-time servo system. In this approach, neurocontroller parameters are used to define a time-varying sliding surface to lead the control error signal to zero. To prove the convergence property of the developed algorithm, the Lyapunov stability method is utilized. The results of the real-time experiments on the laboratory servo system for a number of different load conditions including nonlinear and time-varying ones indicate that the control structure exhibits a highly robust behavior against disturbances and sudden changes in the command signal.
机译:通过利用单个尖峰的定时来提高生物现实水平,尖峰神经网络(SNN)被认为是第三代人工神经网络。在这项工作中,开发了一种基于可变结构系统的SNN在线学习新方法,并在实时伺服系统的识别和速度控制上对其进行了测试。在这种方法中,神经控制器参数用于定义随时间变化的滑动表面,以将控制误差信号引导为零。为了证明该算法的收敛性,采用了Lyapunov稳定性方法。在实验室伺服系统上针对多种不同负载条件(包括非线性和时变条件)的实时实验结果表明,该控制结构对命令信号的干扰和突然变化表现出高度鲁棒的性能。

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  • 来源
    《Journal of the Franklin Institute》 |2014年第6期|3269-3285|共17页
  • 作者

    Y. Oniz; O. Kaynak;

  • 作者单位

    Electrical and Electronics Engineering Department, Bogazici University, Istanbul, Turkey;

    Electrical and Electronics Engineering Department, Bogazici University, Istanbul, Turkey,Harbin Institute of Technology, Harbin, China;

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  • 正文语种 eng
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