A polarimetric adaptive detector in non-Gaussian noise

A. De Maio, G. Alfano
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引用次数: 3

Abstract

We address polarimetric adaptive detection of targets embedded in compound-Gaussian clutter with unknown covariance matrix. To this end we assume that a set of secondary data, free of signal components and with the same covariance structure of the cell under test, is available. We resort to a design procedure based upon the generalized likelihood ratio test (GLRT): first we derive the GLRT assuming that the textures are known, then we plug into the derived test suitable estimates of these parameters. Remarkably, the newly proposed detector has the constant false alarm rate (CFAR) property with respect to the texture statistical characterization. Moreover, even though it does not ensure the CFAR property with respect to the clutter covariance matrix, a sensitivity analysis shows that the probability of false alarm is only slightly affected by variations in the clutter correlation properties. Finally, the performance assessment, conducted via Monte Carlo simulations, confirms the capability of the receiver to operate in real radar scenarios.
非高斯噪声中偏振自适应检测器
研究了嵌入在协方差矩阵未知的复合高斯杂波中的目标偏振自适应检测问题。为此,我们假设有一组辅助数据,不含信号成分,且与待测单元具有相同的协方差结构。我们采用基于广义似然比检验(GLRT)的设计程序:首先,我们在假设纹理已知的情况下推导出GLRT,然后我们将这些参数的适当估计插入导出的测试中。值得注意的是,新提出的检测器在纹理统计表征方面具有恒定的虚警率(CFAR)特性。此外,尽管它不能保证相对于杂波协方差矩阵的CFAR特性,但灵敏度分析表明,杂波相关特性的变化对虚警概率的影响很小。最后,通过蒙特卡罗模拟进行了性能评估,确认了接收机在真实雷达场景中工作的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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