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Mainlobe interference suppression via eigen-projection processing and covariance matrix sparse reconstruction

机译:MainLobe干扰抑制通过特征投影处理和协方差矩阵稀疏重建

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摘要

In this paper, a novel mainlobe interference suppression method via eigen-projection processing and covariance matrix sparse reconstruction is proposed, which is able to work when the desired signal is present in the training data. Firstly, the proposed method uses the spatial spectrum algorithm to estimate the direction of arrival (DOA) of sources and the power of sources can be estimated by compressive sensing (CS). Then, the eigen-projection matrix is calculated via the result of DOA to suppress the mainlobe interference in echo data. Finally, adaptive weight vector is obtained by SINCM reconstruction. Compared with other methods, the proposed method can achieve better performance and stronger robustness.
机译:在本文中,提出了一种新的MAIGLOBE干扰抑制方法,通过特征投影处理和协方差矩阵重建,其能够在训练数据中存在所需信号时工作。首先,该方法使用空间谱算法来估计源的到达方向(DOA),并且可以通过压缩感测(CS)估计源的功率。然后,通过DOA的结果来计算EIGEN投影矩阵以抑制回波数据中的MAINLOBE干扰。最后,通过SINCM重建获得自适应体重载体。与其他方法相比,所提出的方法可以实现更好的性能和更强的鲁棒性。

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