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An Improved Global Harmony Search Algorithm for the Identification of Nonlinear Discrete-Time Systems Based on Volterra Filter Modeling

机译:一种改进的全局和声搜索算法,用于识别基于Volterra滤波器建模的非线性离散时间系统

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摘要

This paper describes an improved global harmony search (IGHS) algorithm for identifying the nonlinear discrete-time systems based on second-order Volterra model. The IGHS is an improved version of the novel global harmony search (NGHS) algorithm, and it makes two significant improvements on the NGHS. First, the genetic mutation operation is modified by combining normal distribution and Cauchy distribution, which enables the IGHS to fully explore and exploit the solution space. Second, an opposition-based learning (OBL) is introduced and modified to improve the quality of harmony vectors. The IGHS algorithm is implemented on two numerical examples, and they are nonlinear discrete-time rational system and the real heat exchanger, respectively. The results of the IGHS are compared with those of the other three methods, and it has been verified to be more effective than the other three methods on solving the above two problems with different input signals and system memory sizes.
机译:本文介绍了一种改进的全局和谐搜索(IGHS)算法,用于识别基于二阶Volterra模型的非线性离散时间系统。 IGHS是新型全球和声搜索(NGHS)算法的改进版本,它对NGHS进行了两大重大改进。首先,通过组合正态分布和Cauchy分布来修改遗传突变操作,这使得IGHS能够充分探索和利用解决方案空间。其次,引入并修改了基于反对的学习(OBL)以提高和谐向量的质量。在两个数值示例中实现了IGHS算法,并且它们分别是非线性离散时间合理系统和实际热交换器。与其他三种方法的结果进行比较,并且已经验证比在解决上述两个问题和系统存储器尺寸的其他三种问题上更有效。

著录项

  • 作者

    Zongyan Li; Deliang Li;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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