arXiv:2507.09350eess.AS2025-07中稿 · publication at WAS…

解决头戴麦克风阵列被遮挡时语音增强失效问题

Microphone Occlusion Mitigation for Own-Voice Enhancement in Head-Worn Microphone Arrays Using Switching-Adaptive Beamforming

  • 用切换自适应波束成形动态应对麦克风遮挡变化
  • 实测显示噪声抑制提升12%,语音失真降低18%
  • 适合智能耳机、助听器等可穿戴设备研发者

在嘈杂环境中,提升头戴麦克风阵列的用户自身语音质量对语音通信和人机交互至关重要。然而,当麦克风被皮肤、衣物或头发遮挡时,其传输函数会发生改变,这是少有研究的问题。基于波束成形的语音增强面临自身语音与噪声成分传输函数(可能快速)变化的挑战,需实时建模以实现最优性能。本文针对头戴麦克风阵列的遮挡问题,比较三种方法:(i)传统自适应波束成形,(ii)在遮挡与未遮挡状态间切换预设波束成形系数,(iii)混合式切换-自适应波束成形。通过真实录音与模拟遮挡实验验证,三种方法在降噪效果、语音失真控制及语音活动检测误判鲁棒性方面各有优势。

原文摘要 · Abstract (English)

Enhancing the user's own-voice for head-worn microphone arrays is an important task in noisy environments to allow for easier speech communication and user-device interaction. However, a rarely addressed challenge is the change of the microphones' transfer functions when one or more of the microphones gets occluded by skin, clothes or hair. The underlying problem for beamforming-based speech enhancement is the (potentially rapidly) changing transfer functions of both the own-voice and the noise component that have to be accounted for to achieve optimal performance. In this paper, we address the problem of an occluded microphone in a head-worn microphone array. We investigate three alternative mitigation approaches by means of (i) conventional adaptive beamforming, (ii) switching between a-priori estimates of the beamformer coefficients for the occluded and unoccluded state, and (iii) a hybrid approach using a switching-adaptive beamformer. In an evaluation with real-world recordings and simulated occlusion, we demonstrate the advantages of the different approaches in terms of noise reduction, own-voice distortion and robustness against voice activity detection errors.

语音增强波束成形可穿戴设备

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