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Approximate distribution of the low-rank adaptive normalized matched filter test statistic under the null hypothesis

机译:零假设下低秩自适应归一化匹配滤波器测试统计量的近似分布

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摘要

In this paper, we propose to derive an approximate theoretical distribution under the null hypothesis of the low-rank adaptive normalized matched filter (LR-ANMF). This detector is used to detect a target when the disturbance is composed of a low-rank Gaussian contribution (called clutter) and an additive white Gaussian noise. In the LR-ANMF, the estimated covariance matrix is replaced by the estimated orthogonal projector onto the subspace clutter. The method to derive this distribution is based on perturbation analysis and assumes a steering vector far from the clutter and a large clutter-to-noise ratio. Simulations on a space-time adaptive processing example validate our theoretical result. The impact of both hypotheses is also studied.
机译:在本文中,我们建议在低秩自适应归一化匹配滤波器(LR-ANMF)的零假设下得出近似的理论分布。当干扰由低阶高斯贡献(称为杂波)和加性高斯白噪声组成时,此检测器用于检测目标。在LR-ANMF中,估计的协方差矩阵被估计的正交投影仪替换到子空间杂波上。推导此分布的方法基于扰动分析,并假设转向矢量远离杂波且杂波噪声比大。在时空自适应处理示例上的仿真验证了我们的理论结果。还研究了两个假设的影响。

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