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首页> 外文期刊>Biomedical signal processing and control >Acoustic to kinematic projection in Parkinson's disease dysarthria
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Acoustic to kinematic projection in Parkinson's disease dysarthria

机译:在帕金森病失调中的运动投影声学投影

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摘要

Speech signal analysis is a powerful tool that facilitates the monitoring and tracking of symptom deterioration caused by neurodegenerative disorders, typically achieved using either sustained vowels, diadochokinetic exercises or running speech. This study expands our previous work on the study of the movement produced by the jaw-tongue biomechanical system. The aim is to further investigate the effects of neuromotor activity during muscular exertion that translates formant acoustics into speech articulatory movements affected by hypokinetic dysarthria in Parkinson's Disease (PD). The objective of this study is to estimate the parameters of an inverse acoustic-to-kinematic projection model that takes as an input the variations of the first and second formants and estimates as output the spatial variation of the jaw-tongue biomechanical system. The spatial variations have been extracted from 3D accelerometry (3DAcc). These serve as ground truth for comparison with the estimated activity projected from speech kinematics, as a measure of fitness of the inverse model. The estimation method is a two step process: first initial weight values are produced using multiple regression between each of the formant dynamic signals (acoustical analysis) and the estimated spatial variations (accelerometry). The second step uses a weight refinement method based on gradient-descent. Additionally, a time-realignment study has been carried out on the acoustic-to-kinematic projection model, based on the estimation of relative time displacements as to maximize the cross-correlation between signals. The study is complemented with an estimation of the model weights on a dataset from PD participants and Healthy Controls (HC). This methodology opens up new ways to investigate the underlying physiological voice production mechanism which may offer new insights into PD symptoms.
机译:语音信号分析是一种强大的工具,便于通过持续元音,解除音量锻炼或跑步演讲来促进症状劣化的监测和跟踪症状劣化。本研究扩大了我们以前的工作研究了颌舌生物力学系统产生的运动的研究。目的是进一步探讨神经大致运动活性在肌肉施用期间的影响,将阿尔香植物声学转化为帕金森病(PD)中受损失脱患病的语音剖视运动。该研究的目的是估计作为输入第一和第二格式的变型的反向声学对运动投影模型的参数,并估计作为输出钳口舌生物力学系统的空间变化。已经从3D加速度(3dacc)中提取了空间变型。这些是与从语音运动学投影的估计活动进行比较的基础真理,作为逆模型的适应性的衡量标准。估计方法是两步处理:使用在每个格式体动态信号(声学分析)和估计的空间变化(加速度测定)之间的多元回归产生第一初始权重值。第二步使用基于梯度下降的重量细化方法。另外,基于相对时间位移的估计,在声学对动态投影模型上进行了一个时重新研究研究,以最大化信号之间的互相关。该研究互补地估计PD参与者和健康控制(HC)的数据集上的模型权重。该方法开辟了研究潜在的生理语音生产机制,可以为PD症状提供新的洞察力。

著录项

  • 来源
    《Biomedical signal processing and control 》 |2021年第4期| 1075-1087| 共13页
  • 作者单位

    Univ Edinburgh Med Sch Old Med Sch Usher Inst Teviot Pl Edinburgh EH8 9AG Midlothian Scotland|Univ Politecn Madrid Ctr Biomed Technol NeuSpeLab Campus Montegancedo S-N Madrid 28223 Spain;

    Univ Edinburgh Med Sch Old Med Sch Usher Inst Teviot Pl Edinburgh EH8 9AG Midlothian Scotland;

    Univ Politecn Madrid Ctr Biomed Technol NeuSpeLab Campus Montegancedo S-N Madrid 28223 Spain;

    Univ Politecn Madrid Ctr Biomed Technol NeuSpeLab Campus Montegancedo S-N Madrid 28223 Spain|Univ Rey Juan Carlos Escuela Tecn Super Ingn Informat Campus Mostoles Tulipan S-N Madrid 28933 Spain;

    Univ Politecn Madrid Ctr Biomed Technol NeuSpeLab Campus Montegancedo S-N Madrid 28223 Spain;

    Univ Politecn Madrid Ctr Biomed Technol NeuSpeLab Campus Montegancedo S-N Madrid 28223 Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Neuromotor diseases; Speech articulation biomechanics; Speech kinematics; Speech neuromotor degeneration; Remote monitoring; Hypokinetic dysarthria;

    机译:神经大通疾病;语音阐述生物力学;语音动力学;语音神经调节性退化;远程监测;低动力学讨厌;

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