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Adaptive clutter suppression based on iterative adaptive approach for airborne radar

机译:基于迭代自适应方法的机载雷达自适应杂波抑制

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摘要

To improve the performance of the recently developed weighted least-squares-based iterative adaptive approach (IAA) in space-time adaptive processing (STAP) for weak or slow targets detection, we propose a novel IAA scheme to adaptively suppress the ground clutter by using the secondary training data (STD). Especially, we use the IAA to estimate the clutter plus noise covariance matrix from a very small number of STD. The resulting clutter plus noise covariance matrix can be utilized to form the STAP filter and then suppress the clutter. To reduce the computational complexity of the IAA, we exploit the sparsity of large clutter components in the angle-Doppler image and develop a modified IAA algorithm employing a soft-thresholding to adaptively determine the entries of each iteration that should be updated. Simulation results show that our proposed scheme outperforms the conventional IAA scheme over weak or slow targets detection and the modified IAA algorithm exhibits a comparable or even a better performance than the IAA algorithm but a lower computational complexity.
机译:为了提高用于弱或慢目标检测的时空自适应处理(STAP)中最近开发的基于加权最小二乘的迭代自适应方法(IAA)的性能,我们提出了一种新颖的IAA方案,通过使用来自适应抑制地面杂波中学训练数据(STD)。特别是,我们使用IAA从很少的STD估计杂波加噪声协方差矩阵。所得杂波加噪声协方差矩阵可用于形成STAP滤波器,然后抑制杂波。为了降低IAA的计算复杂度,我们利用角度多普勒图像中大杂波分量的稀疏性,并开发了一种改进的IAA算法,该算法使用软阈值来自适应地确定应更新的每次迭代的条目。仿真结果表明,在弱弱或慢速目标检测上,我们提出的方案优于传统的IAA方案,改进的IAA算法与IAA算法相比具有可比甚至更好的性能,但计算复杂度较低。

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