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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Telephony-based voice pathology assessment using automated speech analysis
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Telephony-based voice pathology assessment using automated speech analysis

机译:使用自动语音分析的基于电话的语音病理评估

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摘要

A system for remotely detecting vocal fold pathologies using telephone-quality speech is presented. The system uses a linear classifier, processing measurements of pitch perturbation, amplitude perturbation and harmonic-to-noise ratio derived from digitized speech recordings. Voice recordings from the Disordered Voice Database Model 4337 system were used to develop and validate the system. Results show that while a sustained phonation, recorded in a controlled environment, can be classified as normal or pathologic with accuracy of 89.1%, telephone-quality speech can be classified as normal or pathologic with an accuracy of 74.2%, using the same scheme. Amplitude perturbation features prove most robust for telephone-quality speech. The pathologic recordings were then subcategorized into four groups, comprising normal, neuromuscular pathologic, physical pathologic and mixed (neuromuscular with physical) pathologic. A separate classifier was developed for classifying the normal group from each pathologic subcategory. Results show that neuromuscular disorders could be detected remotely with an accuracy of 87%, physical abnormalities with an accuracy of 78% and mixed pathology voice with an accuracy of 61%. This study highlights the real possibility for remote detection and diagnosis of voice pathology.
机译:提出了一种用于使用电话质量语音来远程检测人声折叠病理的系统。该系统使用线性分类器,处理从数字化语音记录中得出的音调摄动,幅度摄动和谐波噪声比的测量值。来自无序语音数据库4337模型系统的语音记录用于开发和验证系统。结果表明,在相同的方案下,在受控环境中记录的持续发声可以分类为正常或病理,准确度为89.1%,电话质量的语音可以分类为正常或病理,准确度为74.2%。事实证明,幅度扰动功能对于电话质量的语音最为稳定。然后将病理记录分为四类,包括正常,神经肌肉病理,物理病理和混合(神经肌肉与物理)病理。开发了一个单独的分类器,用于将每个病理亚类的正常组分类。结果表明,可以远程检测出神经肌肉疾病的准确度为87%,发现身体异常的准确度为78%,混合病理性语音的准确度为61%。这项研究强调了语音病理学的远程检测和诊断的真正可能性。

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