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首页> 外文期刊>IEEE Geoscience and Remote Sensing Letters >Subspace-Augmented Clutter Suppression Technique for STAP Radar
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Subspace-Augmented Clutter Suppression Technique for STAP Radar

机译:STAP雷达的子空间增强杂波抑制技术

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摘要

Subspace space–time adaptive processing (STAP) algorithms are able to eliminate clutter completely. However, when the number of training samples is smaller than the clutter rank, the performances of subspace STAP algorithms degrade severely due to the inaccurate estimate of clutter subspace. To remedy this problem, a novel subspace STAP algorithm is proposed. In the proposed algorithm, the entire clutter subspace is constructed by two portions. The direct portion is estimated by a conventional method from limited training samples, while the supplemented portion is constructed by some space–time steering vectors selected from an overcomplete space–time steering dictionary. Clutter suppression is achieved by projecting the data into the subspace orthogonal to the clutter subspace. Numerical results with both simulated and mountain-top data demonstrate that the proposed algorithm has superior performance in a finite-training-sample situation.
机译:子空间时空自适应处理(STAP)算法能够完全消除混乱。但是,当训练样本的数量小于杂波秩时,由于杂波子空间的估计不准确,子空间STAP算法的性能将大大降低。为了解决这个问题,提出了一种新颖的子空间STAP算法。在提出的算法中,整个混乱子空间由两部分构成。直接部分是通过常规方法从有限的训练样本中估计的,而补充部分则是由一些时空导向向量构成的,这些向量是从不完整的时空导向字典中选择的。通过将数据投影到与杂波子空间正交的子空间中,可以实现杂波抑制。仿真和山顶数据的数值结果表明,该算法在有限训练样本情况下具有优越的性能。

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