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Model for non-rayleigh clutter amplitudes using compound inverse gaussian distribution: an experimental analysis

机译:复合逆高斯分布的非瑞利杂波幅度模型:实验分析

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摘要

A statistical model for high-resolution sea clutter, which we have called the compound inverse Gaussian (CIG) distribution, is proposed. The model is a mixture of the Rayleigh distribution and the inverse Gaussian (IG) distribution to model the speckle and the texture components, respectively. The CIG probability density function (pdf) is generalized to account for the additive thermal noise to achieve a good match to real data. The overall pdf is given in an integral form as a function of three parameters which are estimated from the recorded data based on the parametric curve-fitting estimation (PCFE) method of the complementary cumulative distributed function (CCDF). The Nelder-Mead (N-M) simplex algorithm is used to provide the best estimates of the pdf parameters. Using the IPIX backscatter database, the fitting of the CIG pdfs and the cumulative distributed functions (cdfs) are assessed and compared with the fitted Weibull, log-normal, Rician inverse Gaussian (RiIG), K plus noise, compound log-normal (CLN), and Pareto plus noise distributions. Experimental fitting results show that the sea-clutter amplitudes obey the proposed CIG model in most cases.
机译:提出了一种高分辨率海杂波的统计模型,我们将其称为复合逆高斯(CIG)分布。该模型是瑞利分布和高斯逆(IG)分布的混合,分别对斑点和纹理分量进行建模。通用CIG概率密度函数(pdf)可以解释加性热噪声,以实现与真实数据的良好匹配。总体pdf是三个参数的函数的整数形式,这三个参数是根据互补累积分布函数(CCDF)的参数曲线拟合估计(PCFE)方法从记录的数据中估计出来的。 Nelder-Mead(N-M)单纯形算法用于提供pdf参数的最佳估计。使用IPIX背向散射数据库,评估CIG pdf的拟合和累积分布函数(cdfs),并将其与拟合的Weibull,对数正态,Rician逆高斯(RiIG),K加噪声,复合对数正态(CLN)进行比较),以及帕累托加噪声分布。实验拟合结果表明,在大多数情况下,海杂波振幅均符合建议的CIG模型。

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