首页> 外文会议>2012 IEEE International Geoscience amp; Remote Sensing Symposium. >A downscaling approach to combine SMOS multi-angular and full-polarimetric observations with MODIS VIS/IR data into high resolution soil moisture maps
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A downscaling approach to combine SMOS multi-angular and full-polarimetric observations with MODIS VIS/IR data into high resolution soil moisture maps

机译:一种将SMOS多角度和全极化观测数据与MODIS VIS / IR数据结合到高分辨率土壤湿度图中的缩减方法

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A downscaling algorithm for SMOS which combines MODIS Visible/Infrared data and SMOS horizontal brightness temperatures at 42.5° incidence angle into high-resolution soil moisture maps has been shown to nicely reproduce soil moisture dynamics at a 1 km spatial scale. The core of this algorithm is a linking model that depicts the synergy between SMOS and MODIS observations and their sensitivity to soil moisture. In this work, the impact of adding SMOS observations at horizontal and vertical polarizations and at multiple incidence angles to this linking model has been evaluated using 6 months of observations over the Murrumbidgee catchment, South-East Australia, and a robust alternative formulation is proposed. Results show that adding SMOS observations at multiple incidence angles and both polarizations the algorithm is more stable over time and its minimization error is reduced. By comparing with in situ data, a remarkable improvement of the linear regression between downscaled and in situ data is also observed (slope of 0.95).
机译:一种用于SMOS的降尺度算法,该算法将MODIS可见/红外数据和入射角为42.5°的SMOS水平亮度温度结合到高分辨率土壤湿度图中,可以很好地再现1 km空间尺度上的土壤湿度动态。该算法的核心是一个链接模型,该链接模型描述了SMOS和MODIS观测值之间的协同作用以及它们对土壤水分的敏感性。在这项工作中,使用在澳大利亚东南部Murrumbidgee流域进行的6个月观测,评估了在水平和垂直极化以及在多个入射角处添加SMOS观测的影响,并提出了一个可靠的替代方案。结果表明,在多个入射角和两个极化方向上添加SMOS观测值,该算法随时间推移更加稳定,并且最小化了误差。通过与原位数据进行比较,还可以观察到缩小比例和原位数据之间线性回归的显着改善(斜率为0.95)。

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