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Dual-microphone and binaural noise reduction techniques for improved speech intelligibility by hearing aid users.

机译:双麦克风和双耳降噪技术可提高助听器用户的语音清晰度。

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摘要

Spatial filtering and directional discrimination has been shown to be an effective pre-processing approach for noise reduction in microphone array systems. In dual-microphone hearing aids, fixed and adaptive beamforming techniques are the most common solutions for enhancing the desired speech and rejecting unwanted signals captured by the microphones. In fact, beamformers are widely utilized in systems where spatial properties of target source (usually in front of the listener) is assumed to be known. In this dissertation, some dual-microphone coherence-based speech enhancement techniques applicable to hearing aids are proposed. All proposed algorithms operate in the frequency domain and (like traditional beamforming techniques) are purely based on the spatial properties of the desired speech source and does not require any knowledge of noise statistics for calculating the noise reduction filter. This benefit gives our algorithms the ability to address adverse noise conditions, such as situations where interfering talker(s) speaks simultaneously with the target speaker. In such cases, the (adaptive) beamformers lose their effectiveness in suppressing interference, since the noise channel (reference) cannot be built and updated accordingly. This difference is the main advantage of the proposed techniques in the dissertation over traditional adaptive beamformers. Furthermore, since the suggested algorithms are independent of noise estimation, they offer significant improvement in scenarios that the power level of interfering sources are much more than that of target speech. The dissertation also shows the premise behind the proposed algorithms can be extended and employed to binaural hearing aids. The main purpose of the investigated techniques is to enhance the intelligibility level of speech, measured through subjective listening tests with normal hearing and cochlear implant listeners. However, the improvement in quality of the output speech achieved by the algorithms are also presented to show that the proposed methods can be potential candidates for future use in commercial hearing aids and cochlear implant devices.
机译:事实证明,空间滤波和方向辨别是降低麦克风阵列系统噪声的有效预处理方法。在双麦克风助听器中,固定和自适应波束形成技术是用于增强所需语音并拒绝麦克风捕获的有害信号的最常见解决方案。实际上,波束形成器已广泛用于假定目标源(通常位于收听者前方)的空间特性已知的系统中。本文提出了一些适用于助听器的基于双麦克风相干性的语音增强技术。所有提出的算法都在频域中操作,并且(像传统的波束成形技术一样)完全基于所需语音源的空间特性,并且不需要任何噪声统计知识即可计算降噪滤波器。这一优势使我们的算法能够处理不利的噪声情况,例如,干扰讲话者与目标说话者同时讲话的情况。在这种情况下,(自适应)波束形成器失去了抑制干扰的有效性,因为无法相应地建立和更新噪声通道(参考)。与传统的自适应波束形成器相比,这种差异是本文提出的技术的主要优势。此外,由于建议的算法与噪声估计无关,因此它们在干扰源的功率水平远大于目标语音的功率水平的情况下提供了显着的改进。论文还表明了所提算法可以扩展并应用于双耳助听器的前提。所研究技术的主要目的是提高语音的清晰度,这是通过对正常听力和人工耳蜗的听众进行的主观听觉测试测得的。然而,还提出了通过算法实现的输出语音质量的改善,以表明所提出的方法可以成为将来在商业助听器和人工耳蜗装置中使用的潜在候选者。

著录项

  • 作者

    Yousefian Jazi, Nima.;

  • 作者单位

    The University of Texas at Dallas.;

  • 授予单位 The University of Texas at Dallas.;
  • 学科 Health Sciences Speech Pathology.;Physics Acoustics.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 康复医学;
  • 关键词

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