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首页> 外文期刊>Audio, Speech, and Language Processing, IEEE/ACM Transactions on >A Robust Target Linearly Constrained Minimum Variance Beamformer With Spatial Cues Preservation for Binaural Hearing Aids
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A Robust Target Linearly Constrained Minimum Variance Beamformer With Spatial Cues Preservation for Binaural Hearing Aids

机译:具有空间线索保存的双耳助听器的鲁棒目标线性约束最小方差波束形成器

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摘要

In this paper, a binaural beamforming algorithm for hearing aid applications is introduced. The heamforming algorithm is designed to be robust to some error in the estimate of the target speaker direction. The algorithm has two main components: a robust target linearly constrained minimum variance (TLCMV) algorithm based on imposing two constraints around the estimated direction of the target signal, and a post-processor to help with the preservation of binaural cues. The robust TLCMV provides a good level of noise reduction and low level of target distortion under realistic conditions. The post-processor enhances the beamformer abilities to preserve the binaural cues for both diffuse-like background noise and directional interferers (competing speakers), while keeping a good level of noise reduction. The introduced algorithm does not require knowledge or estimation of the directional interferers' directions nor the second-order statistics of noise-only components. The introduced algorithm requires an estimate of the target speaker direction, but it is designed to be robust to some deviation from the estimated direction. Compared with recently proposed state-of-the-art methods, comprehensive evaluations are performed under complex realistic acoustic scenarios generated in both anechoic and mildly reverberant environments, considering a mismatch between estimated and true sources direction of arrival. Mismatch between the anechoic propagation models used for the design of the beamformers and the mildly reverberant propagation models used to generate the simulated directional signals is also considered. The results illustrate the robustness of the proposed algorithm to such mismatches.
机译:本文介绍了一种用于助听器的双耳波束成形算法。成形算法被设计为对目标说话者方向的估计中的某些错误具有鲁棒性。该算法有两个主要组成部分:基于在目标信号的估计方向周围施加两个约束的鲁棒目标线性约束最小方差(TLCMV)算法,以及有助于保留双耳线索的后处理器。强大的TLCMV在实际条件下可提供良好的降噪水平和低水平的目标失真。后处理器增强了波束形成器的能力,以保持双耳提示,以消除类似扩散的背景噪声和定向干扰源(与扬声器竞争),同时保持良好的降噪水平。引入的算法不需要知道或估计定向干扰源的方向,也不需要仅噪声分量的二阶统计量。引入的算法需要估计目标说话者的方向,但是将其设计为对估计的方向有些偏离具有鲁棒性。与最近提出的最新方法相比,考虑到估计声源与实际声源到达方向之间的不匹配,在无回声和轻度混响环境下生成的复杂逼真的声学场景下进行了综合评估。还考虑了用于波束形成器设计的消声传播模型与用于生成模拟方向信号的轻度混响传播模型之间的不匹配。结果说明了所提出算法对这种失配的鲁棒性。

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