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用于帕金森病早期检测的集成生物识别语音和面部特征。

An integrated biometric voice and facial features for early detection of Parkinson's disease.

作者信息

Lim Wee Shin, Chiu Shu-I, Wu Meng-Ciao, Tsai Shu-Fen, Wang Pu-He, Lin Kun-Pei, Chen Yung-Ming, Peng Pei-Ling, Chen Yung-Yaw, Jang Jyh-Shing Roger, Lin Chin-Hsien

机构信息

Department of Computer Science and Information Engineering, National Taiwan University, Taipei, Taiwan.

Department of Computer Science, National Chengchi University, Taipei, Taiwan.

出版信息

NPJ Parkinsons Dis. 2022 Oct 29;8(1):145. doi: 10.1038/s41531-022-00414-8.

Abstract

Hypomimia and voice changes are soft signs preceding classical motor disability in patients with Parkinson's disease (PD). We aim to investigate whether an analysis of acoustic and facial expressions with machine-learning algorithms assist early identification of patients with PD. We recruited 371 participants, including a training cohort (112 PD patients during "on" phase, 111 controls) and a validation cohort (74 PD patients during "off" phase, 74 controls). All participants underwent a smartphone-based, simultaneous recording of voice and facial expressions, while reading an article. Nine different machine learning classifiers were applied. We observed that integrated facial and voice features could discriminate early-stage PD patients from controls with an area under the receiver operating characteristic (AUROC) diagnostic value of 0.85. In the validation cohort, the optimal diagnostic value (0.90) maintained. We concluded that integrated biometric features of voice and facial expressions could assist the identification of early-stage PD patients from aged controls.

摘要

面无表情和声音变化是帕金森病(PD)患者出现典型运动功能障碍之前的软性体征。我们旨在研究使用机器学习算法分析声学和面部表情是否有助于早期识别PD患者。我们招募了371名参与者,包括一个训练队列(112名处于“开”期的PD患者,111名对照)和一个验证队列(74名处于“关”期的PD患者,74名对照)。所有参与者在阅读一篇文章时,使用智能手机同时记录声音和面部表情。应用了九种不同的机器学习分类器。我们观察到,整合面部和声音特征能够将早期PD患者与对照区分开来,受试者工作特征曲线下面积(AUROC)诊断值为0.85。在验证队列中,最佳诊断值(0.90)得以维持。我们得出结论,声音和面部表情的整合生物特征能够帮助从老年对照中识别早期PD患者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce85/9617914/f0c50f2403ee/41531_2022_414_Fig1_HTML.jpg

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