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Comparison of interpolation methods for typical meteorological factors based on GIS — A case study in JiTai basin, China

机译:基于GIS的典型气象因素的插值方法比较 - 以中国金泰盆地为例

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This study aims to estimate the spatial distribution patterns of three typical meteorological factors: maximum temperature, minimum temperature and precipitation in JiTai basin. Forty-seven-year monthly mean meteorological data were interpolated using Inverse distance weight (IDW), Ordinary kriging (OK) and Tension spline function (TPF). Cross-validation was applied to evaluate the accuracy of the above methods, and three indices including mean absolute error (MAE), mean relative error (MRE) and root mean squared error (RMSE) were used to compare the accuracy. The results reveal that the OK realization is the optimal method for interpolating mean values of both minimum temperature and precipitation monthly data over the past 47 years. Besides, the TPF is the proper method for maximum temperature with least MAE(1.37°C) and RMSE(1.73°C). Clearly indicating the tendency, the grid map based on the OK method appears to be much smoother, whereas the other two kinds which contain jaggies and “buphthalmos” look rough.
机译:本研究旨在估算三种典型气象因素的空间分布格局:JITAI盆地的最高温度,最低温度和降水。使用逆距离重量(IDW),普通Kriging(OK)和张力样条函数(TPF)插值四十七月平均气象数据。应用交叉验证来评估上述方法的准确性,以及三个指数,包括平均绝对误差(MAE),平均相对误差(MRE)和均方根平方误差(RMSE)来比较精度。结果表明,OK实现是过去47年来插值最小温度和降水月度数据的平均值的最佳方法。此外,TPF是最大温度的适当方法(1.37° c)和RMSE(1.73° c)。显然表明趋势,基于OK方法的网格图似乎是更顺畅的,而另外两种包含锯齿和“ buphthalmos”看起来很粗糙。

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