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Numerical performances of low rank stap based on different heterogeneous clutter subspace estimators

机译:基于不同异构杂波子空间估计量的低阶订书钉的数值性能

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Space time Adaptive Processing (STAP) for airborne RADAR fits the context of a disturbance composed of a Low Rank (LR) clutter, here modeled by a Compound Gaussian (CG) process, plus a white Gaussian noise (WGN). In such context, the corresponding LR adaptive filters used to detect a target require less training vectors than classical methods to reach equivalent performance. Unlike the classical filter which is based on the Covariance Matrix (CM) of the noise, the LR filter is based on the clutter subspace projector, which is usually derived from a Singular Value Decomposition (SVD) of a noise CM estimate. Regarding to the considered model of LR-CG plus WGN, recent results are providing both direct estimators of the clutter subspace [1][2] and an exact MLE of the noise CM [3]. To promote the use of these new estimation methods, this paper proposes to apply them to realistic STAP simulations.
机译:机载雷达的时空自适应处理(STAP)适合由低秩(LR)杂波组成的干扰环境,此处由复合高斯(CG)过程建模,再加上白高斯噪声(WGN)。在这种情况下,与传统方法相比,用于检测目标的相应LR自适应滤波器需要较少的训练矢量才能达到等效性能。与基于噪声的协方差矩阵(CM)的经典滤波器不同,LR滤波器基于杂波子空间投影仪,该投影仪通常从噪声CM估计值的奇异值分解(SVD)得出。关于考虑的LR-CG加WGN模型,最近的结果提供了杂波子空间的直接估计器[1] [2]和噪声CM的精确MLE [3]。为了促进这些新估计方法的使用,本文建议将它们应用于实际的STAP模拟。

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