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Wearable Healthcare Systems: A Single Channel Accelerometer Based Anomaly Detector for Studies of Gait Freezing in Parkinson's Disease

机译:可穿戴医疗保健系统:一种基于单声道加速度计的异常探测器,用于在帕金森病的步态冻结的研究

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The causality of gait freezing in patients with advanced Parkinson's disease is still not fully understood. Clinicians are interested in investigating the freezing of gait (FoG) histogram of patients in their daily life. To that end, one needs a real-time signal processing platform that can help record freezing information (e.g., timing and the duration of every gait freezing occurrences). Wearable wireless sensors have been proposed to monitor FoG epochs. Existing automated methods using accelerometers have been introduced with high accuracy performance only for subject-dependent settings (e.g., an individual offline training process). This is a troublesome for large scale out-of-lab deployment and time-consuming. In this work, we used spectral coherence analysis for accelerometer data to apply an anomaly detection approach. Conventional features such as energy and freezing index are introduced to help refine normal epochs while the anomaly scores from spectral coherence measures define FoG epochs. Using this new set of features, our new FoG detector for subject-independent settings achieves the mean ±SD sensitivity (specificity) of 89.2 ± 0.3% (95.6 ± 0.3%). To our best knowledge, this is the best performance for automated subject-independent approaches in literature of freezing of gait detection.
机译:晚期帕金森病患者的步态冻结的因果关系仍然没有完全理解。临床医生有兴趣调查在日常生活中患者的步态(雾)直方图的冻结。为此,人们需要一个实时信号处理平台,可以帮助记录冻结信息(例如,时间和每个步态冻结事件的持续时间)。已经提出了可穿戴无线传感器来监控雾时尚。已经引入了使用加速度计的现有自动化方法,仅针对受试者依赖的设置(例如,单独的离线培训过程)引入高精度性能。这是一个麻烦的大规模实验室部署和耗时。在这项工作中,我们使用了加速度计数据的光谱相干性分析来应用异常检测方法。引入诸如能量和冻结指数的常规特征,以帮助优化正常的时期,而来自光谱相干措施的异常分数定义雾时巨头。使用这套新功能,我们的新型雾探测器用于主题设置,实现了89.2±0.3%(95.6±0.3%)的平均±SD敏感性(特异性)。为了我们的最佳知识,这是对步态检测冻结文献中自动主题近似的最佳表现。

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