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Knowledge-Aided Non-Homogeneity Detector for Airborne MIMO Radar STAP

机译:机载MIMO雷达STAP的知识辅助非均质检测器

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The target detection performance decreases in airborne multiple-input multiple-output (MIMO) radar space-time adaptive processing (STAP) when the training samples contaminated by interference-targets (outliers) signals are used to estimate the covariance matrix. To address this problem, a knowledge-aided (KA) generalized inner product non-homogeneity detector (GIP NHD) is proposed for MIMO-STAP. Firstly, the clutter subspace knowledge is constructed by the system parameters of MIMO radar STAP. Secondly, the clutter basis vectors are utilized to compose the clutter covariance matrix offline. Then, the GIP NHD is integrated to realize the effective training samples selection, which eliminates the effect of the outliers in training samples on target detection. Simulation results demonstrate that in non-homogeneous clutter environment, the proposed KA-GIP NHD can eliminate the outliers more effectively and improve the target detection performance of MIMO radar STAP compared with the conventional GIP NHD, which is more valuable for practical engineering application.
机译:当训练样本被干扰目标污染时,机载多输入多输出(MIMO)雷达时空自适应处理(STAP)中的目标检测性能下降(离群值)信号用于估计协方差矩阵。为了解决这个问题,提出了一种用于MIMO-STAP的知识辅助(KA)广义内积非均匀性检测器(GIP NHD)。首先,利用MIMO雷达STAP的系统参数构造杂波子空间知识。其次,利用杂波基向量离线组成杂波协方差矩阵。然后,集成了GIP NHD以实现有效的训练样本选择,从而消除了训练样本中异常值对目标检测的影响。仿真结果表明,在非均匀杂波环境下,与常规的GIP NHD相比,提出的KA-GIP NHD可以更有效地消除异常值,提高MIMO雷达STAP的目标检测性能,对实际工程应用具有更大的参考价值。 / oai_doaj:抽象>

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