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On Complete Model-Based Decomposition of Polarimetric SAR Coherency Matrix Data

机译:基于完全模型的极化SAR相干矩阵数据分解

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In this paper, a general scheme for complete model-based decomposition of the polarimetric synthetic aperture radar (POLSAR) coherency matrix data is presented. We show that the POLSAR coherency matrix can be completely decomposed into three components contributed by volume scattering and two single scatterers (characterized by rank-1 matrices). Under this scheme, solving for the volume scattering power amounts to a generalized eigendecomposition problem, and the nonnegative power constraint uniquely determines the minimum eigenvalue as the volume scattering power. Furthermore, in order to discriminate the remaining components, we propose two approaches. One is based on eigendecomposition, and the other is based on model fitting, both of which are shown to properly resolve the surface and double-bounce scattering ambiguity. As a result, this paper in particular contributes to two pending needs for model-based POLSAR decomposition. First, it overcomes negative power problems, i.e., all the decomposed powers are strictly guaranteed to be nonnegative; and second, the three-component decomposition exactly accounts for every element of the observed coherency matrix, leading to a complete utilization of the fully polarimetric information.
机译:本文提出了一种基于模型的极化合成孔径雷达(POLSAR)相干矩阵数据的完整分解的通用方案。我们表明,POLSAR相干矩阵可以完全分解为由体积散射和两个单个散射体(由rank-1矩阵表征)贡献的三个分量。在这种方案下,求解体积散射功率等于一个广义的特征分解问题,并且非负功率约束唯一地确定了最小特征值作为体积散射功率。此外,为了区分其余组件,我们提出了两种方法。一种是基于特征分解的,另一种是基于模型拟合的,这两种模型都可以正确解析表面和双反弹散射的歧义。结果,本文特别有助于基于模型的POLSAR分解的两个未决需求。首先,它克服了负面的权力问题,即严格保证所有分解的权力都是非负的;第二,三成分分解正好说明了所观察到的相干矩阵的每个元素,从而完全利用了全极化信息。

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