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Design and Validation of a Minimal Complexity Algorithm for Stair Step Counting

机译:楼梯阶梯数最小复杂性算法的设计与验证

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摘要

Wearable sensors play a significant role for monitoring the functional ability of the elderly and in general, promoting active ageing. One of the relevant variables to be tracked is the number of stair steps (single stair steps) performed daily, which is more challenging than counting flight of stairs and detecting stair climbing. In this study, we proposed a minimal complexity algorithm composed of a hierarchical classifier and a linear model to estimate the number of stair steps performed during everyday activities. The algorithm was calibrated on accelerometer and barometer recordings measured using a sensor platform worn at the wrist from 20 healthy subjects. It was then tested on 10 older people, specifically enrolled for the study. The algorithm was then compared with other three state-of-the-art methods, which used the accelerometer, the barometer or both. The experiments showed the good performance of our algorithm (stair step counting error: 13.8%), comparable with the best state-of-the-art (p > 0.05), but using a lower computational load and model complexity. Finally, the algorithm was successfully implemented in a low-power smartwatch prototype with a memory footprint of about 4 kB.
机译:可穿戴传感器对监测老年人的功能能力以及一般来说,促进活跃老化,发挥着重要作用。要跟踪的相关变量之一是每天执行的楼梯步骤(单个台阶步骤)的数量,这比计数楼梯的飞行和检测楼梯爬升更具挑战性。在这项研究中,我们提出了一种由分层分类器和线性模型组成的最小复杂性算法,以估计日常活动期间执行的阶梯步骤的数量。使用从20个健康受试者的手腕上佩戴的传感器平台测量的加速度计和晴雨表录制,算法校准了算法。然后在10名老年人上进行测试,专门为研究报名参加。然后将算法与其他三种最先进的方法进行比较,该方法使用加速度计,晴雨表或两者。实验表明我们算法的良好性能(台阶计数误差:13.8%),与最先进的最先进(P> 0.05)相当,但使用较低的计算负荷和模型复杂性。最后,该算法在低功耗SmartWatch原型中成功实现,内存占地面积约为4 kB。

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