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Wideband sparse Bayesian learning for off-grid binaural sound source localization

机译:宽带稀疏贝叶斯学习用于离网双耳声源定位

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摘要

Some traditional binaural sound source localization (BSSL) techniques estimate the azimuth using measured head-related transfer function (HRTF) databases, which is constrained by the discretely measured azimuths of HRTF databases. The azimuth localization performance of these HRTF-based BSSL methods may degrade significantly when the true azimuth is not included in the discretely measured azimuths, which is a typical off-grid problem. This paper proposes an off-grid BSSL method based on an off-grid wideband sparse Bayesian learning algorithm. An off-grid binaural sparse signal model is established first, which takes into account both the shadowing effects by the head and the impacts of off-grid problem. Based on the spatial sparsity of sound sources, the off-grid BSSL problem can be reduced to a convex optimization problem. An off-grid wideband sparse Bayesian learning algorithm is further derived to solve the convex optimization problem and thus improve the localization performance. Experimental results demonstrate that the proposed off-grid BSSL method can achieve higher localization accuracy than the state-of-the-art HRTF-based BSSL methods in various acoustic environments, especially in the off-grid situations. (C) 2019 Elsevier B.V. All rights reserved.
机译:一些传统的双耳声源定位(BSSL)技术使用测得的与头部相关的传递函数(HRTF)数据库来估计方位角,而该数据库受HRTF数据库的离散测得的方位角的约束。当在离散测量的方位角中不包括真实方位角时,这些基于HRTF的BSSL方法的方位角定位性能可能会大大降低,这是一个典型的离网问题。本文提出了一种基于离网宽带稀疏贝叶斯学习算法的离网BSSL方法。首先建立离网双耳稀疏信号模型,该模型同时考虑了头部的遮蔽效应和离网问题的影响。基于声源的空间稀疏性,可以将离网BSSL问题简化为凸优化问题。进一步推导了离网宽带稀疏贝叶斯学习算法,以解决凸优化问题,提高定位性能。实验结果表明,在各种声学环境中,特别是在离网情况下,提出的离网BSSL方法比基于HRTF的最新BSSL方法可以获得更高的定位精度。 (C)2019 Elsevier B.V.保留所有权利。

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