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首页> 外文期刊>Hydrological Processes >Performance evaluation of interpolation methods for incorporating rain gauge measurements into NEXRAD precipitation data: a case study in the Upper Guadalupe River Basin
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Performance evaluation of interpolation methods for incorporating rain gauge measurements into NEXRAD precipitation data: a case study in the Upper Guadalupe River Basin

机译:将雨量计测量值纳入NEXRAD降水数据的插值方法的性能评估:以瓜达卢佩河上游流域为例

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摘要

High spatial and temporal resolution of precipitation data is critical input for hydrological budget estimation and flash flood modelling. This study evaluated four methods [Bias Adjustment (BA), Simple Kriging with varying Local Means (SKlm), Kriging with External Drift (KED), and Regression Kriging (RK)] for their performances in incorporating gauge rainfall measurements into Next Generation Weather Radar (NEXRAD) multi-sensor precipitation estimator (MPE; hourly and 4 × 4 km2). Measurements from a network of 50 gauges at the Upper Guadalupe River Basin, central Texas and MPE data for the year 2004 were used in the study. We used three evaluation coefficients percentage bias (PB), coefficient of determination (R2), and Nash–Sutcliffe efficiency (NSE) to examine the performance of the four methods for preserving regional- and local-scale characteristics of observed precipitation data. The results show that the two Kriging-based methods (SKlm and RK) are in general better than BA and KED and that the PB and NSE criteria are better than the R2 criterion in assessing the performance of the four methods. It is also worth noting that the performance of one method at regional scale may be different from its performance at local scale. Critical evaluation of the performance of different methods at local or regional scale should be conducted according to the different purposes. The results obtained in this study are expected to contribute to the development of more accurate spatial rainfall products for hydrologic budget and flash flood modelling. Copyright © 2011 John Wiley & Sons, Ltd.
机译:降水数据的高时空分辨率是水文预算估算和山洪建模的关键输入。这项研究评估了四种方法[偏差调整(BA),具有不同局部平均值的简单Kriging(SKlm),具有外部漂移的Kriging(KED)和回归Kriging(RK)]在将雨量计测量值集成到下一代天气雷达中的性能。 (NEXRAD)多传感器降水量估算器(MPE;每小时和4×4 km2)。在这项研究中,使用了瓜达卢佩河上游流域,德克萨斯州中部的50个仪表的测量数据和MPE 2004年的数据。我们使用三个评估系数百分比偏差(PB),确定系数(R2)和纳什–苏特克利夫效率(NSE)来检验这四种方法的性能,以保持观测降水数据的区域和局部尺度特征。结果表明,在评估这四种方法的性能时,两种基于Kriging的方法(SKlm和RK)总体上优于BA和KED,而PB和NSE准则优于R2准则。还值得注意的是,一种方法在区域范围内的性能可能与其在局部范围内的性能不同。应根据不同的目的对本地或区域范围内不同方法的性能进行关键评估。预计本研究中获得的结果将有助于开发更准确的空间降雨产品,用于水文预算和山洪建模。版权所有©2011 John Wiley&Sons,Ltd.

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  • 来源
    《Hydrological Processes》 |2011年第24期|p.3711-3720|共10页
  • 作者单位

    1 Laboratory for Remote Sensing and Geoinformatics, Department of Geological Sciences, University of Texas at San Antonio, San Antonio, TX78249, USA2 Joint Global Change Research Institute, Pacific Northwest National Laboratory, College Park, MD 20740, USA3 Department of Civil and Environmental Engineering, University of Texas at San Antonio, San Antonio, TX 78249, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    NEXRAD; MPE; rain gauge; precipitation; geostatistics;

    机译:NEXRAD;MPE;雨量计;降水;地统计学;

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