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Development of a two-threshold-based fall detection algorithm for elderly health monitoring

机译:基于两阈值的老年人健康监测跌倒检测算法的开发

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Population aging has become a worldwide problem. Falls are considered as the first source of disabilities among elderly people. Fall detection algorithms are the key to distinguish a fall from daily activities, automatically alert when a fall occurred and significantly decrease the time of rescue when the monitored patient falls down. The algorithm presented in this paper uses tri-axial accelerometer outputs to discriminate between falls and daily activities. It is mainly based on a two-thresholds approach and inactivity posture recognition after falling. The algorithm showed prominent results compared to existing works and will be improved and implemented on a Zynq board for future applications.
机译:人口老龄化已成为世界性问题。跌落被认为是老年人中残疾的首要来源。跌倒检测算法是区分跌倒和日常活动,在跌倒时自动发出警报并在受监控的患者跌倒时大大缩短抢救时间的关键。本文提出的算法使用三轴加速度计输出来区分跌倒和日常活动。它主要基于两个阈值方法和跌倒后的不活动姿势识别。与现有工作相比,该算法显示出突出的结果,并将在Zynq板上进行改进和实现,以供将来应用。

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