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SINR Rank Ordering Metric for signal dependent sub-optimum STAP

机译:SINR等级排序指标信号依赖性次选STAP

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In a previous work the authors have developed an algorithm, based on the method of Principal Components, that exhibits the advantage of further reducing the training samples necessary to obtain acceptable SINR losses for the estimation of the space-time covariance matrix. The new algorithm subject of the previous paper is named Reduced Dimension Principal Components (RDPC) STAP. The sub optimum ADPCA STAP uses the inverse of a space-time sub matrix associated to set of P pulses to build the STAP filter. The idea under RDPC is that the ADPCA inverse sub matrix may be approximated using the method of Principal Components (PC) that is retaining the clutter (dominant) eigenvectors/eigenvalues pairs to build an effective covariance inverse. In the RDPC paper the authors have shown that clutter exhibits a rank K that is smaller than the dimension N by P of the sub matrix thus allowing a number of approximately 2K independent training cells to estimate the space-time sub matrix thus achieving about 3 dB losses on the SINR after the STAP filter. In this paper the authors propose a method for selecting the clutter eigenvectors/eigenvalues pairs of the space-time sub matrix used to build the STAP filter. The proposed method is based on a SINR Rank Ordering Metric (ROM) defined over the sub matrix, thus including signal dependence in the algorithm. Simulations show good results in terms of SINR losses with respect to optimum STAP also considering the case of range cell migration (RCM).
机译:在先前的工作中,作者基于主成分的方法开发了一种算法,其表现出进一步减少获得所需的训练样本来获得可接受的SINR损失来估计时空协方差矩阵的优势。前一篇论文的新算法主题被称为减少尺寸主组件(RDPC)STAP。 Sub Optimum ADPCA STAP使用与一组P脉冲相关的空时子矩阵的逆,以构建STAP滤波器。在RDPC下的想法是可以使用要保留杂波(PC)的主组件(PC)的方法来近似ADPCA逆子矩阵,该方法是保持杂波(显性)特征向量/特征值对构建有效的协方差逆。在RDPC纸上,作者已经表明,杂波表现出小于子矩阵P的尺寸N的等级k,因此允许大约2k的独立训练单元来估计空时子矩阵,从而实现约3 dB STAP过滤后SINR损失。在本文中,作者提出了一种选择用于构建STAP滤波器的空间子矩阵的杂波特征向量/特征值对的方法。所提出的方法基于在子矩阵上定义的SINR等级排序度量(ROM),因此包括算法中的信号依赖性。考虑到范围细胞迁移(RCM)的情况,模拟在SINR损失方面表现出良好的结果。

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