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Methods and examples for remote sensing data assimilation in land surface process modeling

机译:地表过程建模中遥感数据同化的方法和实例

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Land surface process models describe the energy, water, carbon, and nutrient fluxes on a local to regional scale using a set of environmental land surface parameters and variables. They need time series of spatially distributed inputs to account for the large spatial and temporal variability of land surface processes. In principle many of these inputs can be derived through remote sensing using both optical and microwave sensors. New approaches in four-dimensional data-assimilation (4DDA) form the basis to combine remote sensing data and spatially explicit land surface process models more effectively. This paper describes basic techniques for 4DDA in land surface process modeling. Two case studies were carried out to demonstrate different successful approaches of remote sensing data assimilation into land surface process models. The assimilation of surface soil moisture estimates from European Remote Sensing (ERS) synthetic aperture radar data in a flood forecasting scheme is presented, as well as the combination of a land surface process model and a radiative transfer model to improve the accuracy of land surface parameter retrieval from optical data [Landsat Thematic Mapper (TM)].
机译:地表过程模型使用一组环境地表参数和变量描述了局部到区域尺度的能量,水,碳和养分通量。他们需要空间分布输入的时间序列,以解决陆地表面过程的巨大时空变化。原则上,这些输入中的许多输入都可以使用光学和微波传感器通过遥感来获取。二维数据同化(4DDA)的新方法构成了更有效地组合遥感数据和空间上明确的陆地表面过程模型的基础。本文介绍了陆面过程建模中4DDA的基本技术。进行了两个案例研究,以证明将遥感数据同化到地表过程模型中的不同成功方法。提出了在洪水预报方案中对欧洲遥感(ERS)合成孔径雷达数据中地表水分估算值的同化方法,并结合了地表过程模型和辐射传输模型来提高地表参数的准确性从光学数据中检索[Landsat Thematic Mapper(TM)]。

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