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Low-Complexity Method of Weighted Subspace Fitting for Direction Estimation

机译:方向估计加权子空间拟合的低复杂性方法

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In this paper, we consider a low-complexity method of weighted subspace fitting (WSF) for direction-of-arrival (DOA) estimation. With the properties of the multi-stage wiener filter (MSWF), we derive a novel criterion function for the WSF method without the estimate of an array covariance matrix and its eigendecomposition. A new approach for noise variance estimation is also proposed. Numerical results indicate that by selecting a specific weighting matrix, the low-complexity WSF estimator can provide the comparable estimation performance with the conventional WSF method.
机译:在本文中,我们考虑了加权子空间拟合(WSF)的低复杂性方法,用于到达方向(DOA)估计。通过多级维纳滤波器(MSWF)的属性,我们导出了用于WSF方法的新标准功能,而无需估计阵列协方差矩阵及其eigEndeconophition。还提出了一种新的噪声方差估计方法。数值结果表明,通过选择特定的加权矩阵,低复杂度WSF估计器可以通过传统的WSF方法提供可比的估计性能。

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