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首页> 外文期刊>Hydrological Research Letters >Impacts of different spatial temperature interpolation methods on snowmelt simulations
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Impacts of different spatial temperature interpolation methods on snowmelt simulations

机译:不同空间温度插值方法对融雪模拟的影响

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摘要

Spatial interpolation methods can be used to estimate high density air temperature data to drive the temperature index model used to simulate snowmelt processes. Thus, evaluating the impact of different spatial temperature interpolation methods on snowmelt simulations is necessary. This study creates three air temperature datasets based on different methods for a data sparse basin. These datasets include: 1) an inverse distance weighting (IDW) method; 2) an improved IDW method considering the elevation influence on temperature; and 3) combined use of linear regression and MODIS Land Surface Temperature (LST) data. The datasets are verified at observation stations and applied to a snowmelt hydrologic model using the Soil Water Assessment Tool. The simulation results are compared with observed discharge data and uncertainties discussed. Verification at the observation stations indicates that all datasets can reflect station air temperature. Model simulations and uncertainty analysis show that the dataset created by combined use of linear regression and MODIS LST data achieved the best simulation results and smallest uncertainties. The results also indicate that this dataset can accurately and stably reflect the spatial variation of air temperature compared with other data.
机译:空间插值方法可用于估计高密度空气温度数据,以驱动用于模拟融雪过程的温度指数模型。因此,有必要评估不同空间温度插值方法对融雪模拟的影响。这项研究基于稀疏盆地的不同方法创建了三个气温数据集。这些数据集包括:1)逆距离加权(IDW)方法; 2)一种改进的IDW方法,考虑了海拔对温度的影响;和3)结合使用线性回归和MODIS地表温度(LST)数据。数据集在观测站进行了验证,并使用土壤水评估工具应用于融雪水文模型。仿真结果与观察到的排放数据进行了比较,并讨论了不确定性。在观测站进行的验证表明,所有数据集都可以反映出观测站的气温。模型仿真和不确定性分析表明,结合使用线性回归和MODIS LST数据创建的数据集获得了最佳仿真结果和最小不确定性。结果还表明,与其他数据相比,该数据集可以准确,稳定地反映气温的空间变化。

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