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Modeling probabilistic radar rainfall estimation at ungauged locations based on spatiotemporal errors which correspond to gauged data

机译:基于与测量数据相对应的时空误差,对未测量位置处的概率雷达降雨估计进行建模

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摘要

This study presents a probabilistic radar rainfall estimation (PRRE) model to quantify the reliability and accuracy of the resulting radar rainfall estimates at ungauged locations from a radar-based quantitative precipitation estimation (QPE) model. This model primarily estimates the quantiles of the radar rainfall errors at ungauged locations by incorporating seven spatiotemporal variogram models with a nonparametric sample quantile estimate method based on the radar rainfall errors at rain gauges. Then, by adding the resulting error quantiles to the radar rainfall estimates, the corresponding radar rainfall quantiles can be obtained. The QPE system Quantitative Precipitation Estimation Using Multiple Sensors (QPESUMS) provides hourly observed and radar precipitation for three typhoons in the Shinmen reservoir watershed in Northern Taiwan, which are used in the model development and validation. The results indicate that the proposed PRRE model can quantify the spatial and temporal variations of radar rainfall estimates at ungauged locations provided by the QPESUMS system. Also, its reliability and accuracy could be evaluated based on a 95% confidence interval and occurrence probability resulting from the cumulative probability distribution established by the proposed PRRE model.
机译:这项研究提出了一种概率雷达降雨量估计(PRRE)模型,以基于基于雷达的定量降水估计(QPE)模型来量化未装填位置处所得雷达降雨量估计的可靠性和准确性。该模型主要通过将七个时空变异函数模型与基于雨量计的雷达降雨误差的非参数样本分位数估算方法相结合,来估计未测量位置处的雷达降雨误差的分位数。然后,通过将所得的误差分位数添加到雷达降雨估计中,可以获得相应的雷达降雨分位数。 QPE系统使用多个传感器进行的定量降水估算(QPESUMS)提供了台湾北部新门水库集水区三个台风的每小时观测和雷达降水,这些数据用于模型开发和验证。结果表明,所提出的PRRE模型可以量化由QPESUMS系统提供的未固定位置的雷达降雨估计的时空变化。同样,可以根据95%的置信区间和由所提出的PRRE模型建立的累积概率分布得出的出现概率来评估其可靠性和准确性。

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