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Temporal and spatial evaluation of long-term satellite-based precipitation products across the complex topographical and climatic gradients of Chile

机译:智利复杂地形和气候梯度上基于卫星的长期降水产品的时空评估

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Satellite-based rainfall estimates (SRE) have become a promising data source to overcome some limitations of ground-based rainfall measurements, in particular for hydrological and other environmental applications. This study evaluates the spatial and temporal performance of four long-term SRE products (TMPA 3B42v7, CHIRPSv2, MSWEPvl.l and MSWEPv2.2) over the complex topography and climatic gradients of Chile. Time series of precipitation measured at 371 stations are compared against the corresponding grid cell of each SRE (in their original spatial resolution) at different temporal scales (daily, monthly, seasonal, annual). The modified Kling-Gupta efficiency along with its three individual components were used to assess the performance of each SRE, while two categorical indices (POD, and fBIAS) were used to evaluate the skill of each SRE to correctly capture different precipitation intensities. Results revealed that all SREs performed best in Central-Southern Chile (32.18-36.4°S), in particular at low-and mid-elevation zones (0-1000 m a.s.l.). Seasonally, all products performed best in terms of KGE' during the wet autumn and winter seasons (MAM-JJA) compared to summer (DJF). In addition, all SREs were able to correctly identify no rain events, but during rainy days all SREs that did not use a local dataset of precipitation to recalibrate their estimates presented a low skill in providing an accurate classification of different precipitation intensities. Overall, MSWPEPv22 showed the best performance at all time scales and country-wide, due to the use of a Chilean dataset of daily data for calibrating its precipitation estimates, making it a good candidate for hydrological applications in Chile. Finally, we conclude that when the in situ precipitation dataset used in the evaluation of different SREs does not cover the headwaters of the catchments, the obtained performances should only be considered as first guess about how well a given SRE represent the real amount of water in an area.
机译:基于卫星的降雨估计(SRE)已成为有希望的数据来源,可以克服基于地面的降雨测量的某些局限性,尤其是在水文和其他环境应用中。这项研究评估了智利长期复杂地形和气候梯度下四种长期SRE产品(TMPA 3B42v7,CHIRPSv2,MSWEPv1.1和MSWEPv2.2)的时空性能。在不同的时间尺度(每日,每月,季节性,年度),将在371个站点测得的降水时间序列与每个SRE的相应网格单元(以其原始空间分辨率)进行比较。修改后的Kling-Gupta效率及其三个独立组件用于评估每个SRE的性能,而两个分类指数(POD和fBIAS)用于评估每个SRE正确捕获不同降水强度的技能。结果显示,所有SRE在智利中南部(32.18-36.4°S)表现最佳,尤其是在中低海拔地区(0-1000 m a.s.l.)。季节性上,与夏季(DJF)相比,所有产品在秋季和冬季的潮湿季节(MAM-JJA)的KGE'表现最佳。此外,所有SRE都能够正确识别出没有降雨事件,但是在雨天,所有未使用本地降水量数据集重新校准其估计值的SRE都无法提供准确分类不同降水强度的技能。总体而言,由于使用了智利的每日数据集来校准其降水量估计值,MSWPEPv22在所有时间范围和全国范围内均表现出最好的性能,使其成为智利水文应用的理想之选。最后,我们得出结论,当用于评估不同SRE的原位降水数据集不覆盖流域的源头时,所获得的性能仅应被视为对给定SRE表示水体中真实水量的初步猜测。一个地区。

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