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Noise Robust Direction of Arrival Estimation for Speech Source With Weighted Bispectrum Spatial Correlation Matrix

机译:加权双谱空间相关矩阵的语音源噪声鲁棒到达方向估计

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摘要

One big challenge to the robust direction of arrival (DOA) estimation for the speech source is the environmental noise. In practical conditions, the noise can be undirected or emitted from a pointed source. In order to improve the reliability of DOA estimation in various adverse noisy conditions, we propose a novel DOA estimation method in this paper, and what lies in the core in the method is the “Weighted Bispectrum Spatial Correlation Matrix (WBSCM).” The bispectrum is a kind of higher order statistics (HOS) of a signal, and the WBSCM reflects the spatial correlation of the bispectrum phase differences (BPD) between different microphones. As the HOS of the Gaussian signal is theoretically zero, by formulating in the bispectrum domain, the proposed method has an inherent advantage against the Gaussian noise. Moreover, the BPD, which is embedded in the WBSCM, contains the redundant information related to the DOA of the speech source. This redundancy helps to improve the robustness in non-Gaussian noise conditions, especially for the directional interference scenarios. In addition, the WBSCM enables bispectrum weighting to select the speech units in the bispectrum, in order to highlight the effect of these units in the DOA estimation. Similar to the signal-to-noise estimation, a decision-directed method is proposed to compute the bispectrum weights. Finally, a new DOA estimator is proposed, which is based on the eigenvalue analysis of the WBSCM. We conduct experiments under various kinds of noisy environments, and the experimental results demonstrate the effectiveness of proposed method.
机译:对语音源的鲁棒到达方向(DOA)估计的一大挑战是环境噪声。在实际条件下,噪声可能是无指向的,也可能是从尖锐的源发出的。为了提高在各种不利噪声条件下DOA估计的可靠性,我们在本文中提出了一种新颖的DOA估计方法,该方法的核心是“加权双谱空间相关矩阵(WBSCM)”。双谱是信号的一种高阶统计量(HOS),WBSCM反映了不同麦克风之间双谱相差(BPD)的空间相关性。由于高斯信号的HOS理论上为零,因此通过在双频谱域中进行公式化,所提出的方法具有对抗高斯噪声的固有优势。此外,嵌入在WBSCM中的BPD包含与语音源的DOA相关的冗余信息。这种冗余有助于提高非高斯噪声条件下的鲁棒性,尤其是在定向干扰情况下。另外,WBSCM使双谱加权能够选择双谱中的语音单位,以便在DOA估计中突出这些单位的效果。与信噪估计相似,提出了一种决策导向的方法来计算双谱权重。最后,基于WBSCM的特征值分析,提出了一种新的DOA估计器。我们在各种嘈杂的环境下进行实验,实验结果证明了该方法的有效性。

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