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Gait Velocity Estimation Using Time-Interleaved Between Consecutive Passive IR Sensor Activations

机译:使用连续无源红外传感器激活之间的时间间隔进行步态速度估计

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Gait velocity has been consistently shown to be an important indicator and predictor of health status, especially in older adults. It is often assessed clinically, but the assessments occur infrequently and do not allow optimal detection of key health changes when they occur. In this paper, we show that the time gap between activations of a pair of passive infrared motion sensors in the consecutively visited room-pair carry rich latent information about a person’s gait velocity. We name this time gap transition time and modeling the relationship between transition time and gait velocity, and using a support vector regression approach, we show that gait velocity can be estimated with an average error of <2.5 cm/s. Our method is simple and cost effective and has advantages over competing approaches such as: obtaining 20–100 times more gait velocity measurements per day. It also provides a pervasive in-home method for context-aware gait velocity sensing that allows for monitoring of gait trajectories in space and time.
机译:步态速度一直被证明是健康状况的重要指标和预测指标,尤其是在老年人中。它通常在临床上进行评估,但是评估很少进行,因此无法在关键健康变化发生时对其进行最佳检测。在本文中,我们证明了在连续访问的房间对中,一对被动红外运动传感器激活之间的时间间隔会携带有关一个人步态速度的丰富潜在信息。我们将这个时间间隔转换时间命名为过渡时间,并模拟了转换时间与步态速度之间的关系,并使用支持向量回归方法,表明步态速度可以估计为平均误差<2.5 cm / s。我们的方法简单且具有成本效益,并且比其他竞争方法更具优势,例如:每天获得20-100倍的步态速度测量值。它还为感知上下文的步态速度感测提供了一种普遍的在家方法,该方法可以监视时空中的步态轨迹。

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