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A statistical forecast model using the time-scale decomposition technique to predict rainfall during flood period over the middle and lower reaches of the Yangtze River Valley

机译:利用时标分解技术的统计预报模型对长江流域中下游汛期降雨的预测

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摘要

In this paper, a statistical forecast model using the time-scale decomposition method is established to do the seasonal prediction of the rainfall during flood period (FPR) over the middle and lower reaches of the Yangtze River Valley (MLYRV). This method decomposites the rainfall over the MLYRV into three time-scale components, namely, the interannual component with the period less than 8 years, the interdecadal component with the period from 8 to 30 years, and the interdecadal component with the period larger than 30 years. Then, the predictors are selected for the three time-scale components of FPR through the correlation analysis. At last, a statistical forecast model is established using the multiple linear regression technique to predict the three time-scale components of the FPR, respectively. The results show that this forecast model can capture the interannual and interdecadal variation of FPR. The hindcast of FPR during 14 years from 2001 to 2014 shows that the FPR can be predicted successfully in 11 out of the 14 years. This forecast model performs better than the model using traditional scheme without time-scale decomposition. Therefore, the statistical forecast model using the time-scale decomposition technique has good skills and application value in the operational prediction of FPR over the MLYRV.
机译:本文建立了一种采用时间尺度分解法的统计预报模型,对长江中下游地区(MLYRV)汛期(FPR)的降雨进行季节预测。该方法将MLYRV上的降雨分解为三个时间尺度分量,即周期小于8年的年际分量,周期​​8至30年的年代际分量和周期大于30的年代际分量。年份。然后,通过相关分析为FPR的三个时标分量选择预测变量。最后,使用多元线性回归技术建立统计预测模型,分别预测FPR的三个时标分量。结果表明,该预测模型可以捕获FPR的年际和年代际变化。从2001年到2014年的14年间,FPR的后验表明,可以成功预测14年中有11年的FPR。该预测模型的性能优于不使用时间尺度分解的使用传统方案的模型。因此,使用时标分解技术的统计预测模型在MLYRV上FPR的运行预测中具有良好的技巧和应用价值。

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  • 来源
    《Theoretical and applied climatology》 |2018年第2期|479-489|共11页
  • 作者单位

    PLA Univ Sci & Technol, Coll Meteorol & Oceanog, 60 Shuanglong Rd, Nanjing 211101, Jiangsu, Peoples R China;

    PLA Univ Sci & Technol, Coll Meteorol & Oceanog, 60 Shuanglong Rd, Nanjing 211101, Jiangsu, Peoples R China;

    PLA Univ Sci & Technol, Coll Meteorol & Oceanog, 60 Shuanglong Rd, Nanjing 211101, Jiangsu, Peoples R China;

    PLA Univ Sci & Technol, Coll Meteorol & Oceanog, 60 Shuanglong Rd, Nanjing 211101, Jiangsu, Peoples R China;

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