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首页> 外文期刊>Gait & posture >Evaluation of a threshold-based tri-axial accelerometer fall detection algorithm.
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Evaluation of a threshold-based tri-axial accelerometer fall detection algorithm.

机译:基于阈值的三轴加速度计跌落检测算法的评估。

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摘要

Using simulated falls performed under supervised conditions and activities of daily living (ADL) performed by elderly subjects, the ability to discriminate between falls and ADL was investigated using tri-axial accelerometer sensors, mounted on the trunk and thigh. Data analysis was performed using MATLAB to determine the peak accelerations recorded during eight different types of falls. These included; forward falls, backward falls and lateral falls left and right, performed with legs straight and flexed. Falls detection algorithms were devised using thresholding techniques. Falls could be distinguished from ADL for a total data set from 480 movements. This was accomplished using a single threshold determined by the fall-event data-set, applied to the resultant-magnitude acceleration signal from a tri-axial accelerometer located at the trunk.
机译:使用在有监督的条件下进行的模拟跌倒以及老年受试者的日常生活活动(ADL),使用安装在躯干和大腿上的三轴加速度传感器,研究了区分跌倒和ADL的能力。使用MATLAB进行数据分析,以确定在八种不同类型的跌倒过程中记录的峰值加速度。这些包括;向前和向后跌倒,向左和向右跌倒,双腿伸直弯曲。使用阈值技术设计了跌倒检测算法。对于480次运动的总数据集,可以将跌落与ADL区别开。这是通过使用由跌落事件数据集确定的单个阈值来完成的,该阈值被应用于来自位于躯干处的三轴加速度计的合成幅度加速度信号。

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