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Using missing ordinal patterns to detect nonlinearity in time series data

机译:使用缺失的序数模式来检测时间序列数据中的非线性

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摘要

The number of missing ordinal patterns (NMP) is the number of ordinal patterns that do not appear in a series after it has been symbolized using the Bandt and Pompe methodology. In this paper, the NMP is demonstrated as a test for nonlinearity using a surrogate framework in order to see if the NMP for a series is statistically different from the NMP of iterative amplitude adjusted Fourier transform (IAAFT) surrogates. It is found that the NMP works well as a test statistic for nonlinearity, even in the cases of very short time series. Both model and experimental time series are used to demonstrate the efficacy of the NMP as a test for nonlinearity.
机译:缺少序数模式(NMP)的数量是在使用Bandt和Pompe方法象征之后未出现在序列中的序数图案的数量。在本文中,NMP使用代理框架作为非线性的测试,以便看出序列的NMP与迭代幅度调整后傅里叶变换(IAAFT)代理的NMP有统计不同。结果发现,即使在非常短的时间序列的情况下,NMP也适用于非线性的测试统计数据。模型和实验时间序列都用于证明NMP作为非线性测试的功效。

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  • 来源
    《PHYSICAL REVIEW E》 |2017年第2期|022218.1-022218.10|共10页
  • 作者单位

    The Department of Astronomy and Physics Lycoming College Williamsport Pennsylvania 17701 USA;

    Centro de Investigaciones Opticas (CONICET La Plata–CIC) C.C. 3 1897 Gonnet Argentina and Departamento de Ciencias Basicas Facultad de Ingenieria Universidad Nacional de La Plata (UNLP) 1900 La Plata Argentina;

    The Department of Astronomy and Physics Lycoming College Williamsport Pennsylvania 17701 USA;

    The Department of Astronomy and Physics Lycoming College Williamsport Pennsylvania 17701 USA;

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