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使用持续音素来检测帕金森病患者的左旋多巴疗效。

Detecting Effect of Levodopa in Parkinson's Disease Patients Using Sustained Phonemes.

机构信息

Electrical Engineering DepartmentUniversitas SurabayaSurabaya60293Indonesia.

School of EngineeringRMIT UniversityMelbourneVIC3000Australia.

出版信息

IEEE J Transl Eng Health Med. 2021 Mar 17;9:4900409. doi: 10.1109/JTEHM.2021.3066800. eCollection 2021.

Abstract

BACKGROUND

Parkinson's disease (PD) is a multi-symptom neurodegenerative disease generally managed with medications, of which levodopa is the most effective. Determining the dosage of levodopa requires regular meetings where motor function can be observed. Speech impairment is an early symptom in PD and has been proposed for early detection and monitoring of the disease. However, findings from previous research on the effect of levodopa on speech have not shown a consistent picture.

METHOD

This study has investigated the effect of medication on PD patients for three sustained phonemes; /a/, /o/, and /m/, which were recorded from 24 PD patients during medication and stages, and from 22 healthy participants. The differences were statistically investigated, and the features were classified using Support Vector Machine (SVM).

RESULTS

The results show that medication has a significant effect on the change of time and amplitude perturbation (jitter and shimmer) and harmonics of /m/, which was the most sensitive individual phoneme to the levodopa response. /m/ and /o/ performed at a comparable level in discriminating PD- from control recordings. However, SVM classifications based on the combined use of the three phonemes /a/, /o/, and /m/ showed the best classifications, both for medication effect and for separating PD from control voice. The SVM classification for PD- versus PD- achieved an AUC of 0.81.

CONCLUSION

Studies of phonation by computerized voice analysis in PD should employ recordings of multiple phonemes. Our findings are potentially relevant in research to identify early parkinsonian dysarthria, and to tele-monitoring of the levodopa response in patients with established PD.

摘要

背景

帕金森病(PD)是一种多症状神经退行性疾病,通常采用药物治疗,其中左旋多巴最有效。确定左旋多巴的剂量需要定期进行可以观察运动功能的会议。言语障碍是 PD 的早期症状,并已被提议用于早期发现和监测疾病。然而,以前关于左旋多巴对言语影响的研究结果并没有显示出一致的情况。

方法

本研究调查了药物对 24 名 PD 患者在药物治疗期和阶段的三个持续音/a/、/o/和/m/的影响,并对 22 名健康参与者进行了记录。对差异进行了统计学研究,并使用支持向量机(SVM)对特征进行分类。

结果

结果表明,药物对/m/的时间和幅度扰动(抖动和闪烁)和谐波的变化有显著影响,/m/是对左旋多巴反应最敏感的个体音。/m/和/o/在区分 PD-与对照录音方面表现相当。然而,基于/a/、/o/和/m/三个音的组合使用的 SVM 分类在区分药物效应和 PD 与对照声音方面表现最佳。SVM 对 PD-与 PD-的分类 AUC 为 0.81。

结论

在 PD 中的计算机语音分析研究中,应使用多个音的录音。我们的研究结果在研究中可能具有相关性,旨在识别早期帕金森氏构音障碍,并对已确诊的 PD 患者的左旋多巴反应进行远程监测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26e2/8007086/b8467e655673/kumar1abcd-3066800.jpg

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