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GLRT detector based on knowledge aided covariance estimation in compound Gaussian environment

机译:复合高斯环境中基于知识辅助协方差估计的GLRT检测器

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摘要

In order to alleviate the effect of the limited secondary data in the non-Gaussian clutter, a knowledge aided adaptive detector is proposed. The covariance matrix estimation is modeled as a general linear combination of prior covariance matrix and sample covariance matrix. Within this consideration, we obtain an adaptive detector based on the generalized likelihood ratio test. Experimental results on simulation and real data demonstrate that the proposed detector achieves better performance than the existing one-step GLRT (1S-GLRT) detectors when the secondary data are insufficient. (C) 2018 Elsevier B.V. All rights reserved.
机译:为了减轻非高斯杂波中有限的二次数据的影响,提出了一种知识辅助的自适应检测器。将协方差矩阵估计建模为先验协方差矩阵和样本协方差矩阵的一般线性组合。在这种考虑下,我们基于广义似然比检验获得了一种自适应检测器。仿真和实际数据的实验结果表明,当次要数据不足时,所提出的检测器比现有的一步式GLRT(1S-GLRT)检测器具有更好的性能。 (C)2018 Elsevier B.V.保留所有权利。

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