循环DOA估计的一种实值EVD方法

Zhigang Liu, Jinkuan Wang, Yanbo Xue
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引用次数: 0

摘要

利用中心厄米矩阵的实值特征分解(EVD),通过引入一种新的前向后平滑协方差矩阵,提出了一种具有信号选择性的循环MUSIC算法。与循环MUSIC算法相比,该方法在存在多径传播的情况下具有更好的性能。此外,该方法不仅降低了计算复杂度,而且还允许选择所需信号,并通过利用感兴趣信号(SOIs)的循环平稳性忽略干扰。仿真结果说明了该方法结合循环MUSIC算法的性能
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On A Real-valued EVD Approach to Cyclic DOA Estimation
By exploiting the real-valued eigen decomposition (EVD) of the centro-Hermitian matrix, a novel cyclic MUSIC algorithm with signal selective property is presented by introducing a new forward backward smoothed covariance matrix. Compared with cyclic MUSIC algorithm, the proposed approach has a better performance in the presence of multipath propagation. In addition, this approach not only reduces the computational complexity, but also allows to select desired signals and to ignore interferences by exploiting the cyclostationarity property of signals of interest (SOIs). Simulation results that illustrate the performance of this approach in conjunction with cyclic MUSIC algorithm are described
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