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Analysis and Visualization of 3D Motion Data for UPDRS Rating of Patients with Parkinson’s Disease

机译:帕金森氏病患者UPDRS评分的3D运动数据的分析和可视化

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Remote monitoring of Parkinson’s Disease (PD) patients with inertia sensors is a relevant method for a better assessment of symptoms. We present a new approach for symptom quantification based on motion data: the automatic Unified Parkinson Disease Rating Scale (UPDRS) classification in combination with an animated 3D avatar giving the neurologist the impression of having the patient live in front of him. In this study we compared the UPDRS ratings of the pronation-supination task derived from: (a) an examination based on video recordings as a clinical reference; (b) an automatically classified UPDRS; and (c) a UPDRS rating from the assessment of the animated 3D avatar. Data were recorded using Magnetic, Angular Rate, Gravity (MARG) sensors with 15 subjects performing a pronation-supination movement of the hand. After preprocessing, the data were classified with a J48 classifier and animated as a 3D avatar. Video recording of the movements, as well as the 3D avatar, were examined by movement disorder specialists and rated by UPDRS. The mean agreement between the ratings based on video and (b) the automatically classified UPDRS is 0.48 and with (c) the 3D avatar it is 0.47. The 3D avatar is similarly suitable for assessing the UPDRS as video recordings for the examined task and will be further developed by the research team.
机译:使用惯性传感器对帕金森氏病(PD)患者进行远程监控是一种更好评估症状的相关方法。我们提出了一种基于运动数据的症状量化的新方法:自动统一帕金森氏疾病评分量表(UPDRS)分类与动画3D化身相结合,为神经科医生带来了让患者活在他面前的印象。在这项研究中,我们比较了从以下方面得出的旋前俯卧位任务的UPDRS评分:(a)基于录像作为临床参考的检查; (b)自动分类的UPDRS; (c)根据动画3D化身的评估得出的UPDRS评分。使用磁性,角速度,重力(MARG)传感器记录数据,其中15名受试者进行了手的旋前俯仰运动。预处理后,使用J48分类器对数据进行分类,然后将其动画化为3D化身。运动障碍的视频记录以及3D化身已由运动障碍专家检查并由UPDRS评分。基于视频的评分与(b)自动分类的UPDRS的评分之间的平均一致性为0.48,而(c)3D头像则为0.47。 3D化身同样适用于将UPDRS评估为检查任务的视频记录,并将由研究团队进一步开发。

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