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Quantitative and Qualitative Assessment of Assisted Strength Exercising

机译:辅助力量锻炼的定量与定性评估

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Human motion detection and tracking systems, which are not video camera based, are becoming more and more popular in rehabilitation, sportsmen tracking or elderly monitoring. The most commonly used motion sensors in these systems are accelerometers and gyroscopes, which are used along with other sensors as a part of wearable wireless body area network (WBAN). In this work we present an algorithm for closed-loop assisted exercising based on Finite State Machine (FSM). The algorithm can be used either for rehabilitation purposes or physical exercise training. As inputs, the algorithm uses real time signals acquired from an accelerome-ter and a gyroscope of a sensor node in a WBAN. For testing purposes, signals were recorded from 13 healthy subjects during three different strength training exercises (lateral raise, inner-bicep curl, and seated shoulder press) while the sensor node was attached on the wrist of a subject's dominant arm. Qualitative and quantitative assessment of the accelerometer and gyroscope signals was made. Results of tests confirm that assisted exercising using on-line feedback enable more precise movement control closer to prescribed pattern in time and intensity. The proposed FSM based algorithm is suitable for implementation on embedded systems. One of the potential applications of the proposed algorithm is in e-health systems such as HeartWays system providing advanced solutions for supporting cardiac patients in rehabilitation.
机译:人类运动检测和跟踪系统不是基于摄像机的,在康复,运动员跟踪或老年监测中变得越来越受欢迎。这些系统中最常用的运动传感器是加速度计和陀螺仪,其与其他传感器一起使用,作为可穿戴无线体积网络(WBAN)的一部分。在这项工作中,我们提出了一种基于有限状态机(FSM)的闭环辅助运动算法。该算法可用于康复目的或体育锻炼培训。作为输入,该算法使用从加速器获取的实时信号和WBAN中的传感器节点的陀螺仪。出于测试目的,在三种不同的强度训练(横向升高,内二滴卷曲和坐肩压力机)期间从13个健康受试者记录信号,而传感器节点安装在受试者的主导臂的手腕上。制造了对加速度计和陀螺仪信号的定性和定量评估。测试结果确认,使用在线反馈辅助锻炼能够在时间和强度上更接近规定的模式。所提出的FSM基于FSM的算法适用于嵌入式系统的实现。所提出的算法的潜在应用之一是E-Health系统,如Heartways系统,为支持心脏康复提供了先进的解决方案。

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