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Moving platform based distributed MIMO radar detection in compound-Gaussian clutter without training data

机译:无需训练数据的复合高斯杂波中基于移动平台的分布式MIMO雷达检测

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This paper deals with the problem of detection of distributed multi-input multi-output (MIMO) radar on moving platforms. We consider the detection of targets in compound-Gaussian clutter, describing the clutter consisting speckle and texture components. Furthermore, under effects of platform motion and varied scenarios, one major challenge of detector is clutter non-homogeneity. Due to these clutter models, a novel generalized likelihood ratio test (GLRT) based detector is proposed. With the priori knowledge about matrix taper of the clutter covariance matrix, the detector adopts the Bayesian approach without resorting to training data that is non-homogeneity with the samples under test. To handle with the non-homogeneity of the Doppler frequencies of clutters, the detector employs a nonlinear processing by iteration and reconstruction of sparse signals to estimate unknown parameters. Some simulations are presented to illustrate the superior performance of the proposed detector in thus complicated scenarios.
机译:本文讨论了在移动平台上检测分布式多输入多输出(MIMO)雷达的问题。我们考虑在复合高斯杂波中检测目标,描述由斑点和纹理成分组成的杂波。此外,在平台运动和各种场景的影响下,探测器的主要挑战是混乱的非均匀性。由于这些杂波模型,提出了一种新颖的基于广义似然比测试(GLRT)的检测器。有了关于杂波协方差矩阵的矩阵锥度的先验知识,检测器采用贝叶斯方法,而无需求助于被测样本的非均匀性训练数据。为了处理杂波的多普勒频率的非均匀性,检测器采用了通过对稀疏信号进行迭代和重构来进行非线性处理以估计未知参数的方法。提出了一些仿真来说明所提出的检测器在如此复杂的情况下的优越性能。

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