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A comprehensive motor symptom monitoring and management system: The bradykinesia case

机译:全面的运动症状监测和管理系统:运动迟缓病例

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The current work describes a methodology to automatically detect the severity of bradykinesia in motor disease patients using wireless, wearable accelerometers. This methodology was tested with cross validation through a sample of 20 Parkinson's disease patients. The assessment of methodology was carried out through some daily living activities which were detected using an activity recognition algorithm. The Unified Parkinson's Disease Rating Scale (UPDRS) severity classification of the algorithm coincides between 70 and 86% from that of a trained neurologist depending on the classifier used. These severities were calculated for 5 second segments of the signal with 50% of overlap. A bradykinesia profiler is also presented in this work. This profiler removes the overlap of the segments and calculates the confidence of the resulting events. It also calculates average severity, duration and symmetry values for those events. The profiler has been tested with a bogus dataset. Future work includes better training for the severity classifier with a larger sample and testing the profiler with real, longterm patient data in a projected pilot phase in three European hospitals.
机译:当前的工作描述了一种使用无线可穿戴式加速度计自动检测运动疾病患者运动迟缓严重程度的方法。通过对20名帕金森氏病患者的样本进行交叉验证,对该方法进行了测试。方法论的评估是通过一些日常活动进行的,这些活动是使用活动识别算法检测到的。该算法的统一帕金森氏疾病评分量表(UPDRS)严重程度分类与受过训练的神经科医生的重合程度在70%至86%之间,具体取决于所使用的分类器。这些严重度是针对信号的5秒段(重叠率为50%)计算的。这项工作还介绍了运动迟缓分析器。该事件探查器删除了片段的重叠,并计算了结果事件的置信度。它还计算这些事件的平均严重性,持续时间和对称性值。已使用伪造的数据集测试了探查器。未来的工作包括在三个欧洲医院的预计试点阶段,使用更大的样本对严重性分类器进行更好的培训,并使用真实的长期患者数据对探查器进行测试。

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