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An estimator for compound-Gaussian multilook SAR clutter amplitude with inverse gamma texture

机译:具有反伽马纹理的复合高斯多视SAR杂波幅度的估计器

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In the context of synthetic aperture radar (SAR) data analysis, formulation of accurate models for clutter statistics is a crucial task. In this paper, compound-Gaussian distribution with inverse gamma texture (IΓ-CG), is presented for multilook SAR amplitude data. An estimator based on method of log-cumulants (MoLC), which stems from the adoption of second kind statistics and Mellin transform is developed for estimating its parameters. The IΓ-CG model is validated by using multilook synthetic data and single look real clutter data of amplitude SAR images. Experimental results show that the IΓ-CG model outmatches the state-of-the-art pdfs that clearly demonstrates the applicability of the model.
机译:在合成孔径雷达(SAR)数据分析的背景下,制定用于杂波统计的准确模型是一项至关重要的任务。本文提出了具有反伽马纹理(IΓ-CG)的复合高斯分布,用于多视SAR振幅数据。基于对数累积量(MoLC)方法的估计器,它是从采用第二种统计数据和Mellin变换得出的,用于估计其参数。通过使用振幅SAR图像的多视合成数据和单视真实杂波数据验证了IΓ-CG模型。实验结果表明,IΓ-CG模型不符合最新的pdf,这清楚地证明了该模型的适用性。

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