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A model for non Rayleigh sea clutter amplitudes using compound Inverse Gaussian distribution

机译:使用化合物逆高斯分布的非瑞利海杂波幅度模型

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Statistical model for high resolution sea clutter, which we called the compound Inverse Gaussian distribution (CIG), is proposed. The model is a mixture of the Rayleigh distribution and the Inverse Gaussian distribution to model the speckle and the texture components respectively. The proposed distribution is extended to cover the additive thermal noise to achieve a good match to real data. The overall amplitude distribution is given in an integral form as a function of three parameters which are estimated from the recorded data based on the curve fitting method of the cumulative distributed function (CDF). The Nelder-Mead (N-M) optimizer is used to provide the best estimates of these parameters. Based on the mean square error (MSE) of model estimates criterion, we compare the goodness of fit of the proposed compound IG distribution with that of the conventional models such as Weibull, Log-normal, compound K and Rician Inverse Gaussian (RiIG) distributions. It is shown that the proposed model turns out the best statistical model in all cases.
机译:提出了高分辨率海杂波的统计模型,我们称之为复合逆高斯分布(CIG)。该模型是瑞利分布和逆高斯分布的混合,以分别模拟斑点和纹理组件。建议的分布延长以覆盖添加剂热噪声,以实现与实际数据的良好匹配。整体幅度分布以整体形式给出,作为三个参数的函数,其基于累积分布式函数(CDF)的曲线拟合方法从记录的数据估计。 Nelder-Mead(N-M)优化器用于提供这些参数的最佳估计值。基于模型估计标准的均方误差(MSE),我们将所提出的复合IG分布的良好与vibull,逻辑正常,化合物k和riician逆高斯(Riig)分布的常规模型的拟合的良好进行比较。结果表明,所提出的模型在所有情况下都能成为最佳统计模型。

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