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Singular spectrum analysis and forecasting of hydrological time series

机译:水文时间序列的奇异谱分析与预测

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The singular spectrum analysis (SSA) technique is applied to some hydrological univariate time series to assess its ability to uncover important information from those series, and also its forecast skill. The SSA is carried out on annual precipitation, monthly runoff, and hourly water temperature time series. Information is obtained by extracting important components or, when possible, the whole signal from the time series. The extracted components are then subject to forecast by the SSA algorithm. It is illustrated the SSA ability to extract a slowly varying component (i.e. the trend) from the precipitation time series, the trend and oscillatory components from the runoff time series, and the whole signal from the water temperature time series. The SSA was also able to accurately forecast the extracted components of these time series.
机译:将奇异频谱分析(SSA)技术应用于一些水文单变量时间序列,以评估其从那些序列中发现重要信息的能力以及其预测技能。 SSA按年降水量,月径流量和每小时水温时间序列进行。信息是通过从时间序列中提取重要的分量或(如果可能)整个信号来获取的。然后,通过SSA算法对提取的成分进行预测。它说明了SSA从降水时间序列中提取缓慢变化的分量(即趋势),从径流时间序列中提取趋势和振荡分量以及从水温时间序列中提取整个信号的能力。 SSA还能够准确预测这些时间序列的提取成分。

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