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Prediction of low-flow indices in ungauged basins through physiographical space-based interpolation

机译:通过基于空间的地理插值法来预测未充填盆地的低流量指数

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摘要

Low-flow estimation is of great importance to assess the availability of water resources. This study investigates the applicability of physiographical space-based interpolation techniques for the prediction of low-flow indices in ungauged basins (basins for which discharge observations are sparse or unavailable). The study considers 51 catchments located in a wide region of central Italy, for which several geomorphological and climatic descriptors are available. The analysis applies both deterministic and geostatistical techniques for interpolating low-flow indices in the physiographical space. A jack-knife cross-validation procedure is applied in order to quantify the accuracy of each technique when it is applied to ungauged basins. The results of the study show that physiographical space-based interpolation is a viable approach for estimating low-flow indices in ungauged basins and geostatistical techniques outperform deterministic techniques.
机译:低流量估算对于评估水资源的可用性非常重要。这项研究调查了基于物理的空间插值技术在预测未流域盆地(流量观测稀疏或不可用的盆地)中的低流量指数的适用性。该研究考虑了位于意大利中部广阔地区的51个流域,这些流域提供了几种地貌和气候特征。该分析应用确定性和地统计学两种技术来插补地理空间中的低流量指数。应用千斤顶刀交叉验证程序是为了量化每种技术应用于非固定盆地时的准确性。研究结果表明,基于地理空间的插值法是一种估算未灌流盆地低流量指数的可行方法,而地统计学技术优于确定性技术。

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