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Evaluation of Reanalysis Precipitation Data and Potential Bias Correction Methods for Use in Data-Scarce Areas

机译:评估再分析降水数据和数据稀缺区域使用的潜在偏置校正方法

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摘要

Data availability and accessibility often present challenges to resolving regional water management issues. One primary input essential to models and other tools used to inform policy decisions is daily precipitation. Since observed datasets are not always present or accessible, data from the Climate Forecast System Reanalysis (CFSR) have become a potential alternative. A comparison of CFSR precipitation data to available observed data from stations in the East African countries Kenya, Uganda, and Tanzania showed notable differences between the two datasets, particularly with respect to precipitation totals and number of days receiving rainfall. A sliding window bias correction approach evaluated using 3 methods with 8 different window length and timestep variations showed that empirical quantile mapping with a 30-day sliding window length and 1-day timestep achieved the best performance. A comparison of bias corrected CFSR precipitation data against observed data showed marked improvement in the similarity of the number of wet days and maximum daily rainfall between the two datasets. For precipitation totals, bias correction reduced underprediction errors by 32% and overprediction errors by 81%. Results indicate that bias-corrected CFSR precipitation data provides an improved basis for water resources applications in the study region. Methodologies and approaches are extendable to other data-scarce regions or areas where complete and consistent data are not easily accessible.
机译:数据可用性和可访问性通常对解决区域水管理问题的挑战往往存在挑战。用于通知政策决策的模型和其他工具至关重要的一个主要输入是每日降水。由于观察到的数据集并不总是存在或可访问,因此来自气候预测系统再分析(CFSR)的数据已成为潜在的替代方案。 CFSR降水数据与东非国家肯尼亚,乌干达和坦桑尼亚的站点中的可用观察数据的比较显示了两个数据集之间的显着差异,特别是关于降水总额和接收降雨的天数。使用3种不同窗口长度和时间变化进行评估的滑动窗口校正方法,显示了具有30天滑动窗口长度和1天的验证映射,实现了最佳性能。偏差校正的CFSR降水数据对观察数据的比较显示,潮湿天数和两个数据集之间的最大日降雨量的相似性显着提高。对于降水总量,偏置校正减少了32%,过度预测误差减少了81%。结果表明,校正校正的CFSR降水数据为研究区的水资源应用提供了改进的基础。方法和方法可扩展到其他数据稀缺区域或完整和一致数据不容易访问的区域。

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