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Complexity analysis of rainfall and runoff time series based on sample entropy in different temporal scales

机译:基于不同时间尺度样本熵的降雨和径流时间序列的复杂性分析

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This study applied sample entropy (SampEn) to rainfall and runoff time series to investigate the complexity of different temporal scales. Rainfall and runoff time series with intervals of 1, 10, 30, 90, and 365 days for the Wu-Tu upstream watershed were used. Thereafter, SampEn was computed for the five rainfall and runoff time series. The results show that for the various temporal scales, comparisons of the complexity between the rainfall and runoff time series based on the SampEn are inconsistent. Calculating the dynamic SampEn further elucidated variations of the complexity in the rainfall and runoff time series. In addition, the results show that SampEn measures of the rainfall and runoff time series are typically higher than the approximate entropy measures of the rainfall and runoff time series for a specific temporal scale. The complexity increases when the sample size increases for a specific temporal scale. Furthermore, temporal scales with low complexity and high predictability are obtained from the variations of SampEn for the rainfall and runoff time series with different temporal scales, thereby providing a reference for determining the appropriate temporal scale for rainfall and runoff time series forecasting.
机译:这项研究将样本熵(SampEn)应用于降雨和径流时间序列,以研究不同时间尺度的复杂性。乌图上游分水岭的降雨和径流时间序列的间隔为1、10、30、90和365天。此后,针对五个降雨和径流时间序列计算了SampEn。结果表明,对于不同的时间尺度,基于SampEn的降雨和径流时间序列的复杂性比较是不一致的。通过计算动态的SampEn,可以进一步阐明降雨和径流时间序列的复杂性变化。此外,结果表明,对于特定的时间尺度,降雨和径流时间序列的SampEn度量通常高于降雨和径流时间序列的近似熵度量。当样本大小在特定时间范围内增加时,复杂度也会增加。此外,从SampEn随时间尺度不同的降雨和径流时间序列的变化中获得了具有低复杂度和高可预测性的时间尺度,从而为确定降雨和径流时间序列预测的适当时间尺度提供了参考。

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