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Human daily activity recognition in robot-assisted living using multi-sensor fusion

机译:使用多传感器融合的机器人辅助生活中的人类日常活动识别

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In this paper, we propose a human daily activity recognition method by fusing the data from two wearable inertial sensors attached on one foot and the waist of the subject, respectively. We developed a multi-sensor fusion scheme for activity recognition. First, data from these two sensors are fused for coarse-grained classification in order to determine the type of the activity: zero displacement activity, transitional activity, and strong displacement activity. Second, a fine-grained classification module based on heuristic discrimination or hidden Markov models (HMMs) is applied to further distinguish the activities. We conducted experiments using a prototype wearable sensor system and the obtained results prove the effectiveness and accuracy of our algorithm.
机译:在本文中,我们提出了一种人类日常活动识别方法,方法是将分别安装在对象一只脚和腰部的两个可穿戴惯性传感器的数据融合在一起。我们开发了一种用于活动识别的多传感器融合方案。首先,将这两个传感器的数据融合起来进行粗粒度分类,以确定活动的类型:零位移活动,过渡活动和强位移活动。其次,基于启发式歧视或隐马尔可夫模型(HMM)的细粒度分类模块用于进一步区分活动。我们使用原型可穿戴传感器系统进行了实验,获得的结果证明了我们算法的有效性和准确性。

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