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Multiple Time-scale Characteristics Analysis of Rainfall in Hunan Province Based on Ensemble Empirical Mode Decomposition

机译:基于集合经验模式分解的湖南省降水多时标特征分析

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In view of the mode mixing and end effects of empirical mode decomposition (EMD), the ensemble empirical mode decomposition (EEMD) method based on extreme learning machine (ELM) signal continuation is presented to analyze the rainfall time series with multiple time-scale, In this paper, the EEMD and the wavelet method were applied to analyze the annual rainfall sequence in Hunan province. The results show that the EEMD method, as a kind of new signal processing method, can obtain accurate characteristics of the annual rainfall series. Based on this, it can be found that the proposed method can be widely used for the multiple timescale characteristics analysis of rainfall time series.
机译:鉴于经验模态分解(EMD)的模式混合和最终效应,提出了基于极限学习机(ELM)信号连续性的整体经验模态分解(EEMD)方法,以分析多个时间尺度的降雨时间序列,本文采用EEMD和小波方法对湖南省年降水序列进行了分析。结果表明,EEMD方法作为一种新的信号处理方法,可以获得准确的年降水量序列特征。基于此,可以发现该方法可广泛用于降雨时间序列的多时标特征分析。

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