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Moving Target Detection in Distributed MIMO Radar on Moving Platforms

机译:移动平台上分布式MIMO雷达中的移动目标检测

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摘要

This paper examines moving target detection in distributed multi-input multi-output radar with sensors placed on moving platforms. Unlike previous works which were focused on stationary platforms, we consider explicitly the effects of platform motion, which exacerbate the location-induced clutter non-homogeneity inherent in such systems and thus make the problem significantly more challenging. Two new detectors are proposed. The first is a sparsity based detector which, by exploiting a sparse representation of the clutter in the Doppler domain, adaptively estimates from the test signal the clutter subspace, which is in general distinct for different transmit/receive pairs and, moreover, may spread over the entire Doppler bandwidth. The second is a fully adaptive parametric detector which employs a parametric autoregressive clutter model and offers joint model order selection, clutter estimation/mitigation, and target detection in an integrated and fully adaptive process. Both detectors are developed within the generalized likelihood ratio test (GLRT) framework, obviating the need for training signals that are indispensable for conventional detectors but are difficult to obtain in practice due to clutter non-homogeneity. Numerical results indicate that the proposed training-free detectors offer improved detection performance over covariance matrix based detectors when the latter have a moderate amount of training signals.
机译:本文研究了将传感器放置在移动平台上的分布式多输入多输出雷达中的移动目标检测。与以前专注于固定平台的工作不同,我们明确考虑了平台运动的影响,这加剧了此类系统固有的位置感应杂波非均质性,从而使问题更具挑战性。提出了两个新的探测器。第一个是基于稀疏性的检测器,它通过利用多普勒域中杂波的稀疏表示,从测试信号中自适应地估计杂波子空间,该子空间对于不同的发射/接收对通常是不同的,而且可能会扩展整个多普勒带宽。第二个是完全自适应的参数检测器,它采用参数自回归杂波模型,并在集成且完全自适应的过程中提供联合模型阶数选择,杂波估计/缓解和目标检测。两种检测器都是在广义似然比测试(GLRT)框架内开发的,从而消除了对常规检测器必不可少的训练信号的需求,但由于杂波不均匀,很难在实践中获得。数值结果表明,当基于协方差矩阵的检测器具有中等数量的训练信号时,提出的免训练检测器比基于协方差矩阵的检测器具有更高的检测性能。

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