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A model-free technique based on computer vision and sEMG for classification in Parkinson's disease by using computer-assisted handwriting analysis

机译:基于计算机视觉和sEMG的无模型技术,通过计算机辅助手写分析对帕金森氏病进行分类

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Patients suffering from Parkinson's disease are characterized by an abnormal handwriting activity since they have difficulties in motor coordination and a decline in cognition. In this paper, we propose a modelfree technique for differentiating Parkinson's disease patients from healthy subjects by using a handwriting analysis tool based on computer vision and surface ElectroMyoGraphy (sEMG) signal-processing techniques and an Artificial Intelligence-based classifier. Experimental tests have been conducted with both healthy and Parkinson's Disease patients using the proposed technique to address some specific research scientific questions regarding most representative features, best writing patterns, best AI-based classification approach between ANN optimal topology and SVM approaches in terms of both accuracy and repeatability of the results. Finally, the obtained results are reported and discussed to infer some important properties on writing patterns, classification approaches and the role of muscular activities on the handwriting analysis applied to neurodegenerative disease research. (c) 2018 Elsevier B. V. All rights reserved.
机译:患有帕金森氏病的患者的特征是笔迹活动异常,因为他们的运动协调困难并且认知能力下降。在本文中,我们提出了一种无模型技术,该技术通过使用基于计算机视觉和表面电子肌电图(sEMG)信号处理技术以及基于人工智能的分类器的手写分析工具,将帕金森氏病患者与健康受试者区分开。使用所提出的技术对健康和帕金森氏病患者进行了实验测试,以解决在准确性方面有关最具有代表性的特征,最佳书写方式,ANN最佳拓扑和SVM方法之间基于AI的最佳分类方法等一些特定的研究科学问题。结果的可重复性。最后,报告并讨论了获得的结果,以推断出一些重要的性质,如书写方式,分类方法以及肌肉活动在应用于神经退行性疾病研究的笔迹分析中的作用。 (c)2018 Elsevier B.V.保留所有权利。

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