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Measuring Gait Quality in Parkinson’s Disease through Real-Time Gait Phase Recognition

机译:通过实时步态相位识别来测量帕金森氏病的步态质量

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Monitoring gait quality in daily activities through wearable sensors has the potential to improve medical assessment in Parkinson’s Disease (PD). In this study, four gait partitioning methods, two based on thresholds and two based on a machine learning approach, considering the four-phase model, were compared. The methods were tested on 26 PD patients, both in OFF and ON levodopa conditions, and 11 healthy subjects, during walking tasks. All subjects were equipped with inertial sensors placed on feet. Force resistive sensors were used to assess reference time sequence of gait phases. Goodness Index (G) was evaluated to assess accuracy in gait phases estimation. A novel synthetic index called Gait Phase Quality Index (GPQI) was proposed for gait quality assessment. Results revealed optimum performance (G 0.25) for three tested methods and good performance (0.25 G 0.70) for one threshold method. The GPQI resulted significantly higher in PD patients than in healthy subjects, showing a moderate correlation with clinical scales score. Furthermore, in patients with severe gait impairment, GPQI was found higher in OFF than in ON state. Our results unveil the possibility of monitoring gait quality in PD through real-time gait partitioning based on wearable sensors.
机译:通过可穿戴式传感器监测日常活动中的步态质量有可能改善帕金森氏病(PD)的医学评估。在这项研究中,比较了四种步态划分方法,两种基于阈值,两种基于机器学习方法,考虑了四阶段模型。在步行任务期间,对26名PD患者(左,右左左旋多巴条件下)和11名健康受试者进行了测试。所有受试者都装备有惯性传感器,放在脚上。抗力传感器用于评估步态阶段的参考时间序列。评价良好指数(G),以评估步态阶段估计的准确性。提出了一种新的综合指数,称为步态相质量指数(GPQI),用于步态质量评估。结果显示三种测试方法的最佳性能(G <0.25)和一种阈值方法的良好性能(0.25

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