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Minute feature analysis in speckled imagery

机译:斑点图像中的分钟特征分析

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This paper tackles the problem of estimating the parameters of relevant distributions that describe speckled imagery. Speckle noise appears in data obtained with coherent illumination, as is the case of sonar, laser, ultrasound-B and synthetic aperture radar images. This noise is non-Gaussian and non-additive and, therefore, classical techniques of processing and analysis may fail. A universal parametric statistical model has been proposed for such data, and numerical issues arise when estimating its parameters. In particular, the usual techniques for optimization and for solving systems of non-linear equations often fail to converge and/or to produce acceptable results, specially when dealing with small samples. An alternated method is proposed and assessed, and it is shown to produce sensible results. As an application, real and simulated data are analyzed. We show that the discrimination of minute features in synthetic aperture radar images can be performed using the proposed procedure.
机译:本文解决了估计描述斑点图像的相关分布参数的问题。与声纳,激光,B超和合成孔径雷达图像一样,在通过相干照明获得的数据中会出现斑点噪声。这种噪声是非高斯和非加性的,因此,经典的处理和分析技术可能会失败。已经针对此类数据提出了通用参数统计模型,并且在估计其参数时出现了数字问题。特别是,用于优化和求解非线性方程组的常用技术通常无法收敛和/或产生可接受的结果,尤其是在处理小样本时。提出并评估了一种替代方法,结果表明该方法可以产生合理的结果。作为应用程序,可以分析真实和模拟的数据。我们表明,可以使用提出的程序对合成孔径雷达图像中的微小特征进行判别。

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