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Bounds for estimating the parameters of low-rank compound-Gaussian clutter and white Gaussian noise

机译:估计低阶复合高斯杂波和高斯白噪声参数的界限

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摘要

We consider the problem of estimating the parameters of a mixture of low-rank compound-Gaussian clutter and white Gaussian noise. Using a minimal and unconstrained parametrization of the clutter covariance matrix, we derive lower bounds for estimation of its parameters. First, assuming the textures are deterministic, the Cramér-Rao bound is derived, which enables one to assess the impact of the time-varying textures on the estimation performance. Then, considering the textures as random, hybrid bounds are considered. Furthermore, a lower bound for estimating the projector on the clutter subspace is presented. Numerical simulations enable one to evaluate the impact of random, time-varying textures compared to constant textures (Gaussian case).
机译:我们考虑估计低阶复合高斯杂波和高斯白噪声混合参数的问题。使用杂波协方差矩阵的最小且不受约束的参数化,我们得出用于估计其参数的下界。首先,假设纹理是确定性的,则推导Cramér-Rao界,这使人们能够评估随时间变化的纹理对估计性能的影响。然后,将纹理视为随机,考虑混合边界。此外,给出了用于估计杂波子空间上的投影仪的下限。数值模拟使人们能够评估随机,时变纹理与恒定纹理相比的影响(高斯情况)。

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