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Using Ambulatory Voice Monitoring to Investigate Common Voice Disorders: Research Update

机译:使用动态语音监控调查常见语音障碍:研究更新

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Many common voice disorders are chronic or recurring conditions that are likely to result from inefficient and/or abusive patterns of vocal behavior, referred to as vocal hyperfunction. The clinical management of hyperfunctional voice disorders would be greatly enhanced by the ability to monitor and quantify detrimental vocal behaviors during an individual’s activities of daily life. This paper provides an update on ongoing work that uses a miniature accelerometer on the neck surface below the larynx to collect a large set of ambulatory data on patients with hyperfunctional voice disorders (before and after treatment) and matched control subjects. Three types of analysis approaches are being employed in an effort to identify the best set of measures for differentiating among hyperfunctional and normal patterns of vocal behavior: 1) ambulatory measures of voice use that include vocal dose and voice quality correlates, 2) aerodynamic measures based on glottal airflow estimates extracted from the accelerometer signal using subject-specific vocal system models, and 3) classification based on machine learning and pattern recognition approaches that have been used successfully in analyzing long-term recordings of other physiological signals. Preliminary results demonstrate the potential for ambulatory voice monitoring to improve the diagnosis and treatment of common hyperfunctional voice disorders.
机译:许多常见的声音障碍是慢性或复发性疾病,很可能是由于声音行为的低效和/或滥用模式(称为声音功能亢进)导致的。通过监视和量化个人日常生活活动中有害的声音行为的能力,可以大大增强对功能亢进的声音障碍的临床管理。本文提供了正在进行的工作的最新进展,该工作在喉部以下颈部表面使用微型加速度计来收集有关功能亢进性语音障碍患者(治疗前后)和相匹配的对照组的大量门诊数据。正在使用三种类型的分析方法来确定用于区分语音功能亢进和正常模式的最佳方法集:1)语音使用的动态测量,包括语音剂量和语音质量相关性; 2)基于空气动力学的测量使用特定对象的声音系统模型从加速度计信号中提取的声门气流估计值,以及3)基于机器学习和模式识别方法的分类,这些方法已成功用于分析其他生理信号的长期记录。初步结果表明,动态语音监测有可能改善常见的功能亢进性语音障碍的诊断和治疗。

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