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Event-based sampling for reducing communication load in realtime human motion analysis by wireless inertial sensor networks

机译:基于事件的采样可减少无线惯性传感器网络在实时人体运动分析中的通信负载

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We examine the usefulness of event-based sampling approaches for reducing communication in inertial-sensor-based analysis of human motion. To this end we consider realtime measurement of the knee joint angle during walking, employing a recently developed sensor fusion algorithm. We simulate the effects of different event-based sampling methods on a large set of experimental data with ground truth obtained from an external motion capture system. This results in a reduced wireless communication load at the cost of a slightly increased error in the calculated angles. The proposed methods are compared in terms of best balance of these two aspects. We show that the transmitted data can be reduced by 66% while maintaining the same level of accuracy.
机译:我们研究了基于事件的采样方法对于减少基于惯性传感器的人体运动分析中的通信的有用性。为此,我们考虑采用最近开发的传感器融合算法实时测量步行过程中的膝关节角度。我们使用从外部运动捕获系统获得的地面真实情况,模拟了基于事件的不同采样方法对大量实验数据的影响。这导致无线通信负载的减少,但代价是所计算角度的误差略有增加。根据这两个方面的最佳平衡比较了所提出的方法。我们表明,在保持相同精度水平的同时,传输的数据可以减少66%。

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