基于矢量水听器阵的迭代稀疏协方差矩阵拟合波达方向估计方法

Weidong Wang, Qunfei Zhang, Wentao Shi, Juan Shi, Weijie Tan, Xuhu Wang

科研成果: 期刊稿件文章同行评审

3 引用 (Scopus)

摘要

Aiming at the direction of arrival (DOA) estimation of coherent signals in vector hydrophone array, an iterative sparse covariance matrix fitting algorithm is proposed. Based on the fitting criterion of weighted covariance matrix, the objective function of sparse signal power is constructed, and the recursive formula of sparse signal power iteration updating is deduced by using the properties of Frobenius norm. The present algorithm uses the idea of iterative reconstruction to calculate the power of signals on discrete grids, so that the estimated power is more accurate, and thus more accurate DOA estimation can be obtained. The theoretical analysis shows that the power of the signal at the grid point solved by the present algorithm is preprocessed by a filter, which allows signals in specified directions to pass through and attenuate signals in other directions, and has low sensitivity to the correlation of signals. The simulation results show that the average error estimated by the present method is 39.4% of the multi-signal classification high resolution method and 73.7% of the iterative adaptive sparse signal representation method when the signal-to-noise ratio is 15 dB and the non-coherent signal. Moreover, the average error estimated by the present method is 12.9% of the iterative adaptive sparse signal representation method in the case of coherent signal. Therefore, the present algorithm effectively improves the accuracy of target DOA estimation when applying to DOA estimation with highly correlated targets.

投稿的翻译标题Iterative Sparse Covariance Matrix Fitting Direction of Arrival Estimation Method Based on Vector Hydrophone Array
源语言繁体中文
页(从-至)14-23
页数10
期刊Xibei Gongye Daxue Xuebao/Journal of Northwestern Polytechnical University
38
1
DOI
出版状态已出版 - 1 2月 2020

关键词

  • Coherent source
  • Direction of arrival(DOA)
  • Sparse covariance matrix fitting
  • Vector hydrophone

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