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Characterization of Snow Facies on the Greenland Ice Sheet Observed by TanDEM-X Interferometric SAR Data

机译:TanDEM-X干涉SAR数据观测到的格陵兰冰原雪相特征

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This paper presents for the first time a detailed study on information content of X-band single-pass interferometric spaceborne SAR data with respect to snow facies characterization. An approach for classifying different snow facies of the Greenland Ice Sheet by exploiting X-band TanDEM-X interferometric synthetic aperture radar acquisitions is firstly detailed. Large-scale mosaics of radar backscatter and volume correlation factor, derived from quicklook images of the interferometric coherence, represent the starting point for applying an unsupervised classification method based on the c -means fuzzy clustering algorithm. The data was acquired during winter 2010/2011. A partition of four different snow facies was chosen and interpreted using reference melt data, snow density, and in situ measurements. The variations in the stratification and micro-structure of firn, such as the variations of density with depth and the presence of percolation features, are identified as relevant parameters for explaining the significant differences in the observed interferometric signatures among different snow facies. Moreover, a statistical analysis of backscatter and volume correlation factor provided useful parameters for characterizing the snow facies behavior and analyzing their dependency on the acquisition geometry. Finally, knowing the location and characterization of the different snow facies, the two-way X-band penetration depth over the whole Ice Sheet was estimated. The obtained mean values vary from 2.3 m for the outer snow facies up to 4.18 m for the inner one. The presented approach represents a starting point for a long-term monitoring of ice sheet dynamics, by acquiring time-series, and is of high relevance for the design of future SAR missions as well.
机译:本文首次就雪相特征对X波段单通干涉式星载SAR数据的信息内容进行了详细研究。首先详细介绍了一种利用X波段TanDEM-X干涉合成孔径雷达采集数据对格陵兰冰原不同雪相进行分类的方法。从干涉相干的快速外观图像中得出的雷达反向散射和体积相关因子的大规模镶嵌图,是应用基于c均值模糊聚类算法的无监督分类方法的起点。该数据是在2010/2011年冬季获得的。选择了四个不同积雪相的分区,并使用参考融化数据,积雪密度和原位测量来解释。杉木分层和微观结构的变化,例如密度随深度的变化以及渗流特征的存在,被确定为相关参数,用于解释不同雪相之间观测到的干涉特征的显着差异。此外,对背向散射和体积相关因子的统计分析提供了有用的参数,可用于表征雪相行为并分析其对采集几何形状的依赖性。最后,在了解了不同雪相的位置和特征后,估算了整个冰原的双向X波段穿透深度。所获得的平均值从外雪相的2.3 m到内雪相的4.18 m不等。提出的方法通过获取时间序列,代表了长期监测冰盖动力学的起点,并且对未来的SAR任务的设计也具有重要意义。

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