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An improved method for nonlinear parameter estimation: a case study of the Rossler model

机译:一种改进的非线性参数估计方法:以Rossler模型为例

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摘要

Parameter estimation is an important research topic in nonlinear dynamics. Based on the evolutionary algorithm (EA), Wang et al. (2014) present a new scheme for nonlinear parameter estimation and numerical tests indicate that the estimation precision is satisfactory. However, the convergence rate of the EA is relatively slow when multiple unknown parameters in a multidimensional dynamical system are estimated simultaneously. To solve this problem, an improved method for parameter estimation of nonlinear dynamical equations is provided in the present paper. The main idea of the improved scheme is to use all of the known time series for all of the components in some dynamical equations to estimate the parameters in single component one by one, instead of estimating all of the parameters in all of the components simultaneously. Thus, we can estimate all of the parameters stage by stage. The performance of the improved method was tested using a classic chaotic system-Rossler model. The numerical tests show that the amended parameter estimation scheme can greatly improve the searching efficiency and that there is a significant increase in the convergence rate of the EA, particularly for multiparameter estimation in multidimensional dynamical equations. Moreover, the results indicate that the accuracy of parameter estimation and the CPU time consumed by the presented method have no obvious dependence on the sample size.
机译:参数估计是非线性动力学的重要研究课题。 Wang等基于进化算法(EA)。 (2014)提出了一种新的非线性参数估计方案,数值试验表明估计精度令人满意。但是,当同时估计多维动力学系统中的多个未知参数时,EA的收敛速度相对较慢。为解决这一问题,本文提出了一种改进的非线性动力学方程参数估计方法。改进方案的主要思想是将某些动力学方程中所有组件的所有已知时间序列用于逐个估计单个组件中的参数,而不是同时估计所有组件中的所有参数。因此,我们可以逐步估计所有参数。使用经典混沌系统-Rossler模型测试了改进方法的性能。数值试验表明,修正后的参数估计方案可以大大提高搜索效率,并且EA的收敛速度大大提高,尤其是对于多维动力学方程中的多参数估计而言。此外,结果表明,所提方法的参数估计精度和所消耗的CPU时间与样本量没有明显的相关性。

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  • 来源
    《Theoretical and applied climatology》 |2016年第4期|521-528|共8页
  • 作者单位

    China Meteorol Adm, Natl Climate Ctr, Beijing 100081, Peoples R China;

    Beijing Inst Technol, Sch Comp Sci & Technol, Beijing 100081, Peoples R China;

    China Meteorol Adm, Natl Climate Ctr, Beijing 100081, Peoples R China;

    Yangzhou Meteorol Off, Yangzhou 225009, Jiangsu, Peoples R China;

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