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Handwriting Analysis to Support Alzheimer's Disease Diagnosis: A Preliminary Study

机译:支持阿尔茨海默氏病诊断的笔迹分析:初步研究

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Alzheimer's disease (AD) is the most common neurodegenerative dementia of old age and the leading chronic disease contributor to disability and dependence among older people worldwide. Handwriting is among the motor activities compromised by AD, which is the result of a complex network of cognitive, kinaesthetic and perceptive-motor skills. Indeed, researchers have shown that the patients affected by these diseases exhibit alterations in the spatial organization and poor control of movement. In this paper, we present the preliminary results of a study in which an experimental protocol (including the copy of words, letters and sentence task) has been used to assess the kinematic properties of the movements involved in the handwriting. The obtained results are very encouraging and seem to confirm the hypothesis that machine learning-based analysis of handwriting can be profitably used to support AD diagnosis.
机译:阿尔茨海默氏病(AD)是最常见的老年性神经退行性痴呆,并且是导致全球老年人中残疾和依赖的主要慢性疾病。手写是AD损害的运动活动之一,这是由认知,动觉和感知运动技能组成的复杂网络的结果。实际上,研究人员已经表明,受这些疾病影响的患者表现出空间组织的改变和运动控制不良。在本文中,我们介绍了一项研究的初步结果,在该研究中,实验协议(包括单词,字母和句子任务的副本)已用于评估手写所涉及动作的运动学特性。获得的结果令人鼓舞,并且似乎证实了以下假设:基于机器学习的笔迹分析可以有利地用于支持AD诊断。

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