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Intensive Analysis of Gait in the Elderly with Parkinson's Disease Using Center of Pressure During Walking

机译:步行期间使用压力中心帕金森病的老年人步态的密集分析

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Gait is usually a crucial indicator for recognizing and evaluating the progression of Parkinson's disease (PD). To assess gait variability in the elderly with PD in a continuous and natural way, we pay more attention to their feet pressure variability while walking, and try to obtain the varying patterns of center of pressure (CoP). In this paper, we propose a framework based on the bimodal distribution probability density functions (BDPDFs) to recognize gait patterns of PD patients. The result evaluated with the 10-fold cross-validation method demonstrates that the Bagging classifier is able to provide classification precision of 82.4% with AUC of 88.3%. The features and the classifiers used in the present study can also be used to study the effect of dopamine and rehabilitation in PD patients.
机译:步态通常是一个重要指标,用于认识和评估帕金森病(PD)的进展。以一种连续和自然的方式评估老年人的步态变异性,我们在行走时更加关注其脚的压力变异性,并尝试获得压力中心(COP)的不同模式。在本文中,我们提出了一种基于双峰分布概率密度函数(BDPDF)来识别PD患者的步态模式的框架。用10倍交叉验证方法评估的结果表明,袋装分类器能够提供82.4%的分类精度,88.3%。本研究中使用的特征和分类剂也可用于研究多巴胺和康复在PD患者中的作用。

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