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Comparing Near Coincident Space Borne C and X Band Fully\ud Polarimetric SAR Data for Arctic Sea Ice Classification

机译:比较近乎重合的天生C和X波段完全\ ud 北极海冰分类的极化SAR数据

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摘要

This work compares the polarimetric backscatter behavior of sea ice in spaceborne X-band and C-band Synthetic Aperture Radar (SAR) imagery. Two spatially and temporally coincident pairs of fully polarimetric acquisitions from the TerraSAR-X/TanDEM-X and RADARSAT-2 satellites are investigated. Proposed supervised classification algorithm consists of two steps: The first step comprises a feature extraction, the results of which are ingested into a neural network classifier in the second step. Based on the common coherency and covariance matrix, we extract a number of features and analyze the relevance and redundancy by means of mutual information for the purpose of sea ice classification. Coherency matrix based features which require an eigendecomposition are found to be either of low relevance or redundant to other covariance matrix based features, which makes coherency matrix based features dispensable for the purpose of sea ice classification. Among the most useful features for classification are matrix invariant based features (Geometric Intensity, Scattering Diversity, Surface Scattering Fraction). This analysis reveals analogous results for all four acquisitions, in both X-band and C-band frequencies. The subsequent classification produces similarly promising results for all four acquisitions. In particular, the overlapping image portions exhibit a reasonable congruence of detected ice types
机译:这项工作在星载X波段和C波段合成孔径雷达(SAR)图像中比较了海冰的偏振反向散射行为。研究了从TerraSAR-X / TanDEM-X和RADARSAT-2卫星获得的两个空间和时间上完全重对的极化对。提议的监督分类算法包括两个步骤:第一步包括特征提取,第二步将其结果提取到神经网络分类器中。基于共同的一致性和协方差矩阵,我们提取了许多特征,并通过互信息分析了相关性和冗余度,以进行海冰分类。发现需要特征分解的基于相干矩阵的特征与其他基于协方差矩阵的特征相关性低或具有冗余性,这使得基于相干矩阵的特征对于海冰分类的目的而言是可有可无的。分类中最有用的功能是基于矩阵不变性的功能(几何强度,散射多样性,表面散射分数)。该分析揭示了X波段和C波段频率上所有四个采集的相似结果。随后的分类对于所有四个收购产生类似的有希望的结果。特别地,重叠的图像部分表现出检测到的冰类型的合理一致性。

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