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Off-Grid DOA Estimation Based on Alternating Iterative Weighted Least Squares for Acoustic Vector Hydrophone Array

机译:基于交替迭代加权最小二乘对声学向量水晶声音阵列的离网DOA估计

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摘要

In this paper, an alternating iterative weighted least squares method is proposed to handle the off-grid issue in sparsity-based direction of arrival (DOA) estimation for acoustic vector hydrophone (AVH) array. Firstly, the off-grid model via AVH array is formulated by introducing a bias parameter into the signal model. Secondly, the reconstructed interference plus noise covariance matrix is calculated as the weighting term. Then, a novel objective function with respect to the sparse signal and the unknown bias parameter is developed based on weighted least squares. Finally, the closed-form solutions of the sparse signal and the unknown bias parameter are deduced. Simulation results reveal that compared with the state-of-the-art algorithms, the proposed method improves the DOA estimation accuracy in the presence of a coarse sample grid and has a faster convergence speed. Furthermore, the effectiveness and robustness of the proposed method are verified by the underwater experimental results.
机译:在本文中,提出了一种交替的迭代加权最小二乘法,用于处理声学向量水母(AVH)阵列的基于稀疏基于到达(DOA)估计的离网问题。首先,通过将偏置参数引入信号模型来制定通过AVH阵列的离网模型。其次,计算重建的干扰加噪声协方差矩阵作为加权项。然后,基于加权最小二乘来开发关于稀疏信号和未知偏置参数的新颖目标函数。最后,推导出稀疏信号的闭合液和未知偏置参数。仿真结果表明,与最先进的算法相比,所提出的方法在存在粗糙样本网格的情况下提高DOA估计精度并具有更快的收敛速度。此外,通过水下实验结果验证了所提出的方法的有效性和稳健性。

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