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Regularized finite-order finite-rank covariance matrix approximation for adaptive beamforming in oversampled 2D HF antenna arrays

机译:用于过采样2D HF天线阵列中自适应波束成形的正则化有限阶有限秩协方差矩阵逼近

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This paper proposes a multi-channel adaptive array spatial covariance matrix estimation technique in which the covariance is modeled as consisting of two complementary components. The first component has finite rank and is meant to capture the low-rank components of the external interference environment. The second component has full rank and corresponds to external noise, but is modeled by a low-order parametric model. In isolation both of these covariance models require relatively low training sample support, comparable to the rank or order. The main goal of this paper is to demonstrate that these covariance modeling methods can be applied together as a finite-order finite-rank (FOFR) covariance estimate. This estimate can be used to perform efficient low-loss adaptive beamforming for two-dimensional spatially oversampled high-frequency over-the-horizon radar receive arrays consisting of a large number of sensor elements and limited training sample support.
机译:本文提出了一种多通道自适应阵列空间协方差矩阵估计技术,其中协方差被建模为由两个互补分量组成。第一部分具有有限等级,用于捕获外部干扰环境的低等级成分。第二部分具有最高等级,并与外部噪声相对应,但由低阶参数模型建模。孤立地,这两个协方差模型都需要相对较低的训练样本支持,与等级或顺序相当。本文的主要目的是证明可以将这些协方差建模方法一起用作有限阶有限秩(FOFR)协方差估计。此估计可用于对由大量传感器元素和有限的训练样本支持组成的二维空间过采样的高频超视距雷达接收阵列执行有效的低损耗自适应波束形成。

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