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High-resolution spatiotemporal distribution of precipitation in Iran: a comparative study with three global-precipitation datasets

机译:伊朗高分辨率降水的时空分布:与三个全球降水数据集的比较研究

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摘要

High-resolution precipitation datasets are used for numerous applications. However, depending on the procedures for obtaining these products, such as number of observations, quality checking, error-correction procedures, and interpolation techniques, they include many uncertainties. Therefore, the accuracy of these products needs to be evaluated over different regions, in this study, the Iranian National Dataset (INDS), a new 1 × 1 km precipitation dataset based on precipitation data of 1,441 quality-controlled stations for the climatic period from 1961 to 2005, was constructed using the digital elevation model, correlation method, and Kriging interpolation procedure. Iran's annual precipitation values at grids and stations were extracted from Climatic Research Unit (CRU) CL 2.0, CRU TS 3.10.01, and WorldClim datasets, and differences between corresponding values in each of the three datasets and INDS were calculated and analyzed The coefficient of determination (R~2) between the national network stations' data and the CRU CL 2.0, CRU TS 3.10.01, and WorldClim datasets were 0.50, 0.13, and 0.62, respectively. Moreover, R2 values between the grids of each dataset and INDS were 0.51, 0.40, and 0.60, respectively. To determine the global datasets' efficiency for displaying temporal patterns of precipitation, the monthly values gathered from them at 11 stations (as representative of Iran's various precipitation regimes) were compared with the real values at these stations. The results showed that in term of temporal patterns, the concurrences among the three global datasets and the INDS was more acceptable, especially in the case of CRU CL 2.0. In general, it is concluded that the global datasets could be deployed for the primary assessment of the annual precipitation distribution; however, for more precise studies, use of local data is highly recommended.
机译:高分辨率降水数据集可用于多种应用。但是,取决于获得这些产品的过程,例如观察次数,质量检查,纠错过程和插值技术,它们包含许多不确定性。因此,这些产品的准确性需要在不同地区进行评估,在本研究中,伊朗国家数据集(INDS)是一个新的1×1 km降水数据集,该数据集基于1,441个质量控制站的自2006年以来的气候时期1961年至2005年,使用数字高程模型,相关方法和Kriging插值程序构建。从气候研究单位(CRU)CL 2.0,CRU TS 3.10.01和WorldClim数据集提取伊朗在网格和站点的年降水值,并计算和分析这三个数据集与INDS中每个值的差异。国家站点数据与CRU CL 2.0,CRU TS 3.10.01和WorldClim数据集之间的确定(R〜2)分别为0.50、0.13和0.62。此外,每个数据集的网格与INDS之间的R2值分别为0.51、0.40和0.60。为了确定全球数据集显示降水时间分布模式的效率,将11个站点(代表伊朗各种降水制度)从中收集的月值与这些站点的实际值进行了比较。结果表明,就时间模式而言,三个全局数据集和INDS之间的并发更可接受,特别是在CRU CL 2.0的情况下。总的来说,得出的结论是,可以将全球数据集用于对年降水量分布的初步评估。但是,为进行更精确的研究,强烈建议使用本地数据。

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  • 来源
    《Theoretical and applied climatology》 |2014年第2期|211-221|共11页
  • 作者

    Ali Khalili; Jaber Rahimi;

  • 作者单位

    Meteorological Division, Department of Irrigation and Reclamation Engineering, College of Agriculture and Natural Resources, University of Tehran, Karaj, Iran;

    Meteorological Division, Department of Irrigation and Reclamation Engineering, College of Agriculture and Natural Resources, University of Tehran, Karaj, Iran;

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