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Two-dimensional DOA estimation for acoustic vector-sensor array using a successive MUSIC

机译:使用连续MUSIC的声矢量传感器阵列的二维DOA估计

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This paper discusses the problem of two-dimensional (2D) direction of arrival (DOA) estimation for acoustic vector-sensor array, and derives a successive multiple signal classification (MUSIC) algorithm therein. The proposed algorithm obtains initial estimations of the azimuth and elevation angles obtained from the signal subspace, and uses successively one-dimensional local searches to achieve the joint estimation of 2D-DOA. The proposed algorithm, which requires the one-dimension local searches, can avoid the high computational cost within 2D-MUSIC algorithm. The proposed algorithm can obtain automatically-paired 2D-DOA estimation for acoustic vector-sensor array, and it has better DOA estimation performance than propagator method, estimation of signal parameters via rotational invariance technique algorithm and trilinear decomposition algorithm. Meanwhile, it has very close angle estimation to 2D-MUSIC algorithm. Furthermore, it is suitable for non-uniform linear arrays, works well for the sources with the same azimuth angle, and imposes less constraint on the sensor spacing, which does not have to be restricted within half-wavelength. We have also derived the mean-square error of DOA estimation of the proposed algorithm and the Cramer-Rao bound of DOA estimation. Simulation results verify the usefulness of the proposed algorithm.
机译:本文讨论了声矢量传感器阵列的二维到达方向(DOA)估计问题,并推导了其中的连续多信号分类(MUSIC)算法。所提出的算法获得了从信号子空间获得的方位角和仰角的初始估计,并连续使用一维局部搜索来实现二维DOA的联合估计。所提出的算法需要一维局部搜索,可以避免2D-MUSIC算法的高计算量。该算法可以为声矢量传感器阵列获得自动配对的二维DOA估计值,其DOA估计性能优于传播算法,通过旋转不变技术算法和三线性分解算法进行信号参数估计。同时,它与2D-MUSIC算法的角度估计非常接近。此外,它适用于非均匀线性阵列,适用于具有相同方位角的光源,并且对传感器间距的约束较小,不必限制在半波长范围内。我们还推导了所提出算法的DOA估计的均方误差和DOA估计的Cramer-Rao界。仿真结果验证了该算法的有效性。

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