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Unobtrusive Monitoring of Speech Impairments of Parkinson'S Disease Patients Through Mobile Devices

机译:通过移动设备对帕金森病患者的言语损伤的不引人注目的监测

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Parkinson's disease (PD) produces several speech impairments in the patients. Automatic classification of PD patients is performed considering speech recordings collected in noncontrolled acoustic conditions during normal phone calls in a unobtrusive way. A speech enhancement algorithm is applied to improve the quality of the signals. Two different classification approaches are considered: the classification of PD patients and healthy speakers and a multi-class experiment to classify patients in several stages of the disease. According to the results it is possible to classify PD patients and healthy controls with a AUe of up to 0.87. This work is a step forward to the development of telemonitoring systems to assess the speech of the patients.
机译:帕金森病(PD)在患者中产生了几种语音障碍。考虑在正常电话中以不引人注目的方式,考虑在正常电话中收集的语音记录进行讲话记录进行全自动分类。应用语音增强算法来提高信号的质量。考虑了两种不同的分类方法:Pd患者和健康演讲者的分类和多级实验,以分类患者在疾病的几个阶段。根据结果​​,可以将PD患者和健康对照分类为高达0.87的患者。这项工作是向遥测系统发展的一步,以评估患者的演讲。

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