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Hybridization of best acoustic cues for detecting persons with Parkinson's disease

机译:最佳声学提示的杂交以检测帕金森氏病患者

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Parkinson's disease (PD) is a degenerative disorder of unknown etiology. It causes vocal impairment in approximately 90% of patients. In order to improve the assessment of speech disorders in patients with PD, and because objective acoustic analysis methods do not always yield correct diagnosis, we present in this paper a method of hybridization of acoustic parameters that gives improved diagnosis results. The features were selected according to the pathological thresholds defined by the Multi-Dimensional voice program (MDPV). Extracted acoustic features were fed into k-nearest neighbor (k-NN) and support vector machines (SVM), which were trained to classify the voice as pathological or normal. In this work, we collected a variety of voice samples from 14 patients with PD (7 female, 7 male) and 6 healthy subjects (2 female, 4 male). The best classification accuracy achieved was 95%.
机译:帕金森氏病(PD)是一种病因不明的变性疾病。它在大约90%的患者中引起声音障碍。为了改善对PD患者言语障碍的评估,并且由于客观的声学分析方法并不总是能够产生正确的诊断,因此我们在本文中提出了一种声学参数混合方法,可以改善诊断结果。根据多维语音程序(MDPV)定义的病理阈值选择特征。提取的声学特征被输入到k近邻(k-NN)和支持向量机(SVM),它们经过训练以将语音分类为病理性还是正常。在这项工作中,我们收集了14位PD患者(7位女性,7位男性)和6位健康受试者(2位女性,4位男性)的各种语音样本。达到的最佳分类精度为95%。

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