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Adaptive Beamforming via Desired Signal Robust Removal for Interference-Plus-Noise Covariance Matrix Reconstruction

机译:通过期望信号鲁棒去除用于干扰 - 加噪声协方差矩阵重建的自适应波束成形

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摘要

To tackle the problem of the desired signal (DS) steering vector mismatch, especially in the situation of direction-of-arrival error and array perturbations, a robust interference-plus-noise covariance matrix (INCM) reconstruction method based upon DS removal is presented. Unlike previous studies, this paper proposes to remove the DS component from the training data by building a blocking matrix, which is computed as the inverse of the DS-plus-noise covariance matrix (DSNCM). More specifically, to increase the robustness against arbitrary mismatches, the DS steering vector estimated as the prime eigenvector of the DS matrix, which is attained through integrating the Capon spectrum estimator over the annulus uncertainty sets of the mainlobe region in advance, is adopted to give a faithful blocking matrix. After that, utilizing the obtained blocking matrix to process the training data, the quasi INCM is computed indeed. Finally, a precise INCM is reconstructed by projecting the principal components of the quasi INCM onto the aforesaid DSNCM. Numerical simulations have illustrated that the proposed adaptive beamformer can outperform the existing ones and gain almost optimal performance under different scenarios.
机译:为了解决所需信号(DS)转向向量不匹配的问题,特别是在到达方向误差和阵列扰动的情况下,提出了一种基于DS拆卸的鲁棒干扰 - 加噪声协方差矩阵(INCM)重建方法。与之前的研究不同,本文提出通过构建阻塞矩阵从训练数据中删除DS组件,这被计算为DS-Plus噪声协方差矩阵(DSNCM)的倒数。更具体地,为了增加鲁棒性反对任意不匹配的鲁棒性,通过将Capon谱估计器预先通过将Capon Spectrum估计器集成在主片区域的环形不确定性集上,估计为DS矩阵的PRIME特定度估计的DS转向载体。忠实的阻塞矩阵。之后,利用所获得的阻塞矩阵来处理训练数据,确实计算了Quasi IncM。最后,通过将Quasi IncM的主要组成部分投影到上述DSNCM来重建精确的INCM。数值模拟表明,所提出的自适应波束形成器可以胜过现有的,并在不同场景下获得几乎最佳的性能。

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