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Estimating Effective Soil Hydraulic Properties Using Spatially Distributed Soil Moisture and Evapotranspiration

机译:利用空间分布的土壤水分和蒸散量估算有效土壤水力特性

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摘要

With the development of many earth-observing remote sensing (RS) platforms, spatially distributed remote sensing products are becoming critical inputs to many hydrologic and meteorological models. Remotely sensed soil moisture (SM) and evapotranspiration (ET) including ground-based data have the potential to be used for estimating pixel-scale soil hydraulic parameters. However, only a few studies have been conducted to better understand the impact of assimilating both SM and ET in estimating soil hydraulic properties of the root zone. In this study, we used inverse modeling based on the Noisy Monte Carlo Genetic Algorithm by linking RS SM and ET derived from the Surface Energy Balance Algorithm for Land for estimating pixel-scale effective soil hydraulic properties. Walnut Creek (Iowa), Brown (Illinois), and Lubbock (Texas) test sites were selected to assess the performance of this approach from point to satellite scales using synthetic and validation experiments. For comparison purposes, inverse modeling results were analyzed under three scenarios (ET only, SM only, and SM + ET in the optimization criteria). These results showed that considering both SM and ET components improved the estimations of effective soil hydraulic properties and reduced their uncertainties better than SM or ET only. Overall, although uncertainty exists, our proposed SM + ET based scheme performed well in estimating effective soil hydraulic properties at multiple spatial scales (point, airborne, and satellite footprints) under various hydroclimatic conditions.
机译:随着许多地球观测遥感(RS)平台的发展,空间分布的遥感产品正成为许多水文和气象模型的关键输入。包括地面数据在内的遥感土壤水分(SM)和蒸散(ET)有潜力用于估算像素级土壤水力参数。但是,仅进行了一些研究,以更好地理解将SM和ET同化对估算根区土壤水力特性的影响。在这项研究中,我们将基于地面能量平衡算法的RS SM和ET结合起来,使用基于噪声蒙特卡洛遗传算法的逆建模,以估算像素尺度的有效土壤水力特性。选择了核桃溪(爱荷华州),布朗(伊利诺伊州)和拉伯克(德克萨斯州)测试地点,以使用合成和验证实验从点到卫星尺度评估该方法的性能。为了进行比较,在三种情况下(仅适用于ET,仅适用于SM和优化标准中的SM + ET)分析了逆建模结果。这些结果表明,与仅SM或ET相比,同时考虑SM和ET成分可以改善对土壤有效水力特性的估计,并降低其不确定性。总体而言,尽管存在不确定性,但我们提出的基于SM + ET的方案在估算各种水文气候条件下的多个空间尺度(点,机载和卫星足迹)上的有效土壤水力特性方面表现良好。

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