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Knowledge-aided detection for airborne MIMO radar by exploiting structured clutter spectrum

机译:通过利用结构杂波谱来吸引空气雷达的知识辅助检测

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摘要

In this study, the authors propose two knowledge-aided detection schemes based on prior structured clutter information for airborne collocated multiple-input multiple-output (MIMO) radars. Based on a first-order representation of the clutter spectrum, they propose the first-order generalised likelihood ratio test (FO-GLRT) detector. Meanwhile, Based on a second-order representation of the clutter spectrum, they propose the second-order GLRT (SO-GLRT) detector. They also analyse and compare the detection performance of those two detectors in different situations. The FO-GLRT detector can achieve acceptable performance without any secondary data, and thus immune to the clutter heterogeneity. The SO-GLRT detector that exploits the structured clutter covariance matrix is able to achieve a nearly optimal performance in certain cases. Both the proposed detectors are suitable for the collocated MIMO radars, which have a high signal dimension and a large demand for independent identically distributed training samples. Simulations validate those results.
机译:在本研究中,作者提出了基于用于空气传播的现有结构化杂波信息的知识辅助检测方案,用于机载的多输入多输入多输出(MIMO)雷达。基于杂波谱的一阶表示,它们提出了一阶广义似然比试验(FO-GLRT)检测器。同时,基于杂波谱的二阶表示,它们提出了二阶GLRT(SO-GLRT)检测器。它们还在不同情况下分析和比较了这两个探测器的检测性能。 FO-GLRT检测器可以在没有任何次要数据的情况下实现可接受的性能,从而免受杂波异质性的影响。利用结构化杂波协方差矩阵的SO-GLRT检测器能够在某些情况下实现几乎最佳的性能。两个所提出的探测器都适用于配套MIMO雷达,其具有高信号尺寸和对独立相同的分布训练样本的大需求。仿真验证这些结果。

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