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Voice restoration after laryngectomy based on magnetic sensing of articulator movement and statistical articulation-to-speech conversion

机译:基于咬合器运动的磁感应和统计清晰度 - 语音转换的喉切除术后的语音恢复

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摘要

© Springer International Publishing AG 2017.In this work, we present a silent speech system that is able to generate audible speech from captured movement of speech articulators. Our goal is to help laryngectomy patients, i.e. patients who have lost the ability to speak following surgical removal of the larynx most frequently due to cancer, to recover their voice. In our system, we use a magnetic sensing technique known as Permanent Magnet Articulography (PMA) to capture the movement of the lips and tongue by attaching small magnets to the articulators and monitoring the magnetic field changes with sensors close to the mouth. The captured sensor data is then transformed into a sequence of speech parameter vectors from which a time-domain speech signal is finally synthesised. The key component of our system is a parametric transformation which represents the PMA-tospeech mapping. Here, this transformation takes the form of a statistical model (a mixture of factor analysers, more specifically) whose parameters are learned from simultaneous recordings of PMA and speech signals acquired before laryngectomy. To evaluate the performance of our system on voice reconstruction, we recorded two PMA-and-speech databases with different phonetic complexity for several non-impaired subjects. Results show that our system is able to synthesise speech that sounds as the original voice of the subject and also is intelligible. However, more work still need to be done to achieve a consistent synthesis for phonetically-rich vocabularies.
机译:©Springer International Publishing AG 2017.在这项工作中,我们提出了一种无声语音系统,该系统能够从语音发音器的捕获运动中产生可听语音。我们的目标是帮助喉切除术患者(即由于癌症而最常手术切除喉后失去说话能力的患者)恢复声音。在我们的系统中,我们使用一种称为永久磁铁关节运动(PMA)的磁传感技术,通过将小磁铁附着到发音器上并通过靠近嘴部的传感器监视磁场变化来捕获嘴唇和舌头的运动。然后将捕获的传感器数据转换为语音参数向量序列,最终从该语音参数向量合成时域语音信号。我们系统的关键组件是代表PMA-语音映射的参数转换。在此,这种转换采用统计模型的形式(更具体地讲,是因子分析器的混合),其参数是通过同时记录PMA和喉切除前获得的语音信号来学习的。为了评估我们的系统在语音重建方面的性能,我们为几个未受损的受试者记录了两个具有不同语音复杂度的PMA和语音数据库。结果表明,我们的系统能够合成听起来像主体原始声音的语音,并且可理解。但是,仍然需要做更多的工作才能实现语音丰富的词汇的一致综合。

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