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首页> 外文期刊>Hydrological sciences journal >Reliability of reanalysis and remotely sensed precipitation products for hydrological simulation over the Sefidrood River Basin, Iran
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Reliability of reanalysis and remotely sensed precipitation products for hydrological simulation over the Sefidrood River Basin, Iran

机译:伊朗Sefidrood River河流域水文模拟的再分析和远程感测沉淀产品的可靠性

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ABSTRACT Hydrological models require different inputs for the simulation of processes, among which precipitation is essential. For hydrological simulation, four different precipitation products – Asian Precipitation Highly Resolved Observational Data Integration Towards Evaluation of Water Resources (APHRODITE); European Centre for Medium-Range Weather Forecasts (ECMWF) Re-Analysis (ERA-Interim); Tropical Rainfall Measuring Mission (TRMM) Multi-satellite Precipitation Analysis (TMPA) real time (RT); and Precipitation Estimation from Remotely Sensed Information using Artificial Neural Networks (PERSIANN) – are compared against ground-based datasets. The variable infiltration capacity (VIC) model was calibrated for the Sefidrood River Basin (SRB), Iran. APHRODITE and ERA-Interim gave better rainfall estimates at daily time scale than other products, with Nash-Sutcliffe efficiency (NSE) values of 0.79 and 0.63, and correlation coefficient (CC) of 0.91 and 0.82, respectively. At the monthly time scale, the CC between all rainfall datasets and ground observations is greater than 0.9, except for TMPA-RT. Hydrological assessment indicates that PERSIANN is the best rainfall dataset for capturing the streamflow and peak flows for the studied area (CC: 0.91, NSE: 0.80).
机译:摘要水文模型需要不同的输入来模拟过程,其中降水至关重要。用于水文模拟,四种不同的降水产品 - 亚洲降水高度解决的观测数据集成,以评估水资源(Aphrodite);欧洲中等地区天气预报中心(ECMWF)重新分析(ERA-INSIM);热带降雨测量使命(TRMM)多卫星降水分析(TMPA)实时(RT);使用ARTI CIAL神经网络(PERSIANN)与基于地面的数据集进行比较来自远程感测的信息的降水估计。为伊朗SEFIDROOD河流域(SRB)校准了可变渗透能力(VIC)模型。 Aphrodite和Era-Instim在日常时间尺度上产生了比其他产品更好的降雨估计,NASH-Sutcliffe效率(NSE)值为0.79和0.63,以及0.91和0.82的相关系数(CC)。在月度刻度,除TMPA-RT外,所有降雨数据集和地面观测之间的CC大于0.9。水文评估表明,Persiann是用于捕获所研究区域的流流和峰值的最佳降雨数据集(CC:0.91,NSE:0.80)。

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