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Multi-sensor analysis of Titan surface: SAR and radiometricdata synergy for estimating wind speed and liquid opticalthickness of hydrocarbon lakes

机译:泰坦表面的多传感器分析:SAR和RADIOTricData Synergy估算碳氢化合物湖的风速和液体光学探测

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In this work, scattering models and a Bayesian inversion algorithm are applied to Cassini SAR and radiometric data in order to characterize lake and land surfaces. Radar backscattering from lakes is described in terms of a double layer model, Bragg or facets scattering for the upper liquid layer and I.E.M model for the lower solid surface. This electromagnetic analysis is the starting point for the statistical inversion algorithm, to determine limits on the parameters values. Radiometer data are described with a forward radiative transfer model thus accounting for the presence of multiple layer emission and volume effects. A combined sensitivity study is performed on backscattering and brightness temperature models to define the best approach for the synergic use of active and passive data in the Bayesian algorithm. The use of e.m. scattering models allows evaluating the compatibility of the observed RCS with the expected scenarios in terms of dielectric constant of the surface constituents. A good correlation is found between the radar and the radiometric data. Brightness temperature modeling combined with SAR. Bayesian inversion can improve parameter retrieval.
机译:在这项工作中,散射模型和贝叶斯反演算法应用于Cassini SAR和辐射数据,以表征湖泊和陆地表面。从湖泊的雷达反向散射,以用于上液层的双层模型,布拉格或小平面散射,即用于下部固体表面的模型。该电磁分析是统计反演算法的起点,用于确定参数值的限制。通过正向辐射转移模型描述了辐射计数据,从而占多层发射和体积效应的存在。对反向散射和亮度温度模型进行了组合的灵敏度研究,以定义贝叶斯算法中的激励和被动数据的协同使用的最佳方法。使用e.m.散射模型允许在表面成分的介电常数方面评估观察到的RC与预期场景的兼容性。在雷达和辐射数据之间发现了良好的相关性。亮度温度建模与SAR相结合。贝叶斯反演可以改善参数检索。

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