首页> 外文期刊>International journal of software science and computational intelligence >Clustering Finger Motion Data from Virtual Reality-Based Training to Analyze Patients with Mild Cognitive Impairment
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Clustering Finger Motion Data from Virtual Reality-Based Training to Analyze Patients with Mild Cognitive Impairment

机译:将基于虚拟现实的训练中的手指运动数据进行聚类以分析轻度认知障碍患者

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摘要

Research in virtual reality (VR) has resulted in the development of many applications in clinical settings in the areas of learning and therapy in psychology and neuropsychology because this technology can be flexible to the needs of the clinical application. VR technology has many implementations for cognitive training and as a screening tool for patients with mild cognitive impairment (MCI). The technology has been used in the screening, diagnosis, treatment and support of patients with MCI. This study found that the information recorded in VR-based learning software can be useful in analyzing individuals with MCI in order to characterize groups of participants. The authors implemented a time series clustering algorithm acting on finger motion data from nine healthy participants as a pilot study, then comprehensively reviewed the clustering result by comparing it with performance-based measures. The results indicate that the clusters formed by using the acceleration data is reasonably analogous to the performance measures (i.e., with respect to the type and number of errors that occurred).
机译:虚拟现实(VR)的研究已导致在心理学和神经心理学的学习和治疗领域中在临床环境中开发了许多应用程序,因为该技术可以灵活地适应临床应用程序的需求。 VR技术具有许多用于认知训练的实施方式,并且可以作为轻度认知障碍(MCI)患者的筛查工具。该技术已用于MCI患者的筛查,诊断,治疗和支持。这项研究发现,记录在基于VR的学习软件中的信息可用于分析MCI患者,以表征参与者群体。作者实施了对来自九名健康参与者的手指运动数据进行操作的时间序列聚类算法,作为一项先导研究,然后将其与基于性能的度量进行比较,从而对聚类结果进行了全面审查。结果表明,通过使用加速度数据形成的聚类在合理程度上类似于性能指标(即,关于发生的错误的类型和数量)。

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