Advanced Parkinson's Disease Dysgraphia Analysis Based on Fractional Derivatives of Online Handwriting

Jan Mucha, J. Mekyska, M. Faúndez-Zanuy, K. L. D. Ipiña, Vojtech Zvoncak, Z. Galaz, Tomas Kiska, Z. Smékal, L. Brabenec, I. Rektorová
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引用次数: 17

Abstract

Parkinson's disease (PD) is one of the most frequent neurodegenerative disorder with progressive decline in several motor and non-motor skills. Due to time-consuming and partially subjective conventional PD diagnosis, several more effective approaches based on signal processing and machine learning, e. g. online handwriting analysis, have been proposed. This paper introduces a new methodology of PD dysgraphia analysis based on fractional derivatives applied in PD handwriting quantification. The proposed methodology was evaluated on a database that consists 33 PD patients and 36 healthy controls who performed several handwriting tasks. Employing random forests classifier in combination with 5 kinematic features based on fractional-order derivatives we reached 90% classification accuracy, 89% sensitivity, and 91 % specificity. In comparison with the results of other related works dealing with the same database, the proposed approach brings improvements in PD dysgraphia diagnosis and confirms the impact of fractional derivatives in kinematic analysis.
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基于在线笔迹分数导数的晚期帕金森病书写障碍分析
帕金森氏病(PD)是一种最常见的神经退行性疾病,其表现为几种运动和非运动技能的进行性下降。由于传统PD诊断耗时且部分主观,因此提出了基于信号处理和机器学习的几种更有效的方法,例如在线手写分析。本文介绍了一种基于分数阶导数的PD书写障碍分析新方法,并将其应用于PD笔迹量化。所提出的方法在一个数据库中进行了评估,该数据库由33名PD患者和36名健康对照者组成,他们执行了几个手写任务。采用随机森林分类器结合5个基于分数阶导数的运动学特征,我们达到了90%的分类准确率,89%的灵敏度和91%的特异性。与处理同一数据库的其他相关工作的结果相比,所提出的方法提高了PD书写障碍的诊断,并证实了分数阶导数在运动学分析中的影响。
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