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Comparing interpolation techniques for monthly rainfall mapping using multiple evaluation criteria and auxiliary data sources: A case study of Sri Lanka

机译:使用多个评估标准和辅助数据源比较月降雨量测绘的插值技术:以斯里兰卡为例

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摘要

Interpolating climatic variables such as rainfall is challenging due to the highly variable nature of meteorological processes, the effects of terrain and geography, and the difficulty in establishing a representative network of stations. While interpolation models are being adapted to include these effects, often the rainfall data contain significant gaps in coverage. In this paper, we evaluated rainfall data from an agro-ecological monitoring network for producing maps of total monthly rainfall in Sri Lanka. We compared four spatial interpolation techniques: inverse distance weighting, thin-plate splines, ordinary kriging, and Bayesian kriging. Error metrics were used to validate interpolations against independent data. Satellite data were used to assess the spatial pattern of rainfall. Results indicated that Bayesian kriging and splines performed best in low and high rainfall, respectively. Rainfall maps generated from the agro-ecological network were found to have accuracies consistent with previous studies in Sri Lanka. (C) 2015 Elsevier Ltd. All rights reserved.
机译:由于气象过程的高度可变性,地形和地理的影响以及建立有代表性的气象站网络的困难,因此插值气候变量(例如降雨)具有挑战性。尽管插值模型已被调整为包括这些影响,但降雨数据通常在覆盖范围上存在明显差距。在本文中,我们评估了来自农业生态监测网络的降雨数据,以制作斯里兰卡每月总降雨量的地图。我们比较了四种空间插值技术:反距离权重,薄板样条,普通克里金法和贝叶斯克里金法。错误度量用于验证针对独立数据的插值。卫星数据用于评估降雨的空间格局。结果表明,贝叶斯克里金法和样条曲线分别在低降雨量和高降雨量下表现最佳。从农业生态网络产生的降雨图被发现具有与斯里兰卡先前研究一致的精确度。 (C)2015 Elsevier Ltd.保留所有权利。

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