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Activity detection using frequency analysis and off-the-shelf devices: Fall detection from accelerometer data

机译:使用频率分析和现成设备的活动检测:从加速度计数据中坠落检测

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摘要

Increasingly, applications of technology are being developed to provide care to elderly and vulnerable people living alone. This paper looks at using sensors to monitor a person’s wellbeing. The paper attempts to recognise and distinguish falling, sitting and walking activities from accelerometer data. Fast Fourier Transformation (FFT) is used to extract information from collected data. The low-cost accelerometer is part of a Texas Instruments watch. Our experiments focus on lower sampling rates than those used elsewhere in the literature. We show that a sampling rate of 10Hz from a wrist-worn device does not reliably distinguish between a fall and merely sitting down.
机译:越来越多地开发技术应用以向独居的老年人和弱势群体提供护理。本文着眼于使用传感器来监控一个人的健康状况。本文试图从加速度计数据中识别并区分跌倒,坐下和行走的活动。快速傅立叶变换(FFT)用于从收集的数据中提取信息。低成本加速度计是德州仪器(TI)手表的一部分。我们的实验着重于比文献中其他地方使用的更低的采样率。我们表明,腕戴式设备的10Hz采样率不能可靠地区分跌落和坐下。

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