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Human activity recognition using smart phone embedded sensors: A Linear Dynamical Systems method

机译:使用智能手机嵌入式传感器的人类活动识别:线性动力系统方法

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This paper presents a novel framework of human activity recognition with time series collected from inertial sensors. We model each action sequence with a collection of Linear Dynamic Systems (LDSs), each LDS describing a small patch of the sequence. A codebook is formed by using the K-medoids clustering algorithm and a Bag-of-Systems (BoS) is developed to represent the time series. A great advantage of this method is that the complicated feature design procedure is avoided and the LDSs can well capture the dynamics of the time series. Our experiment validation on public dataset shows the promising results.
机译:本文介绍了从惯性传感器收集的时间序列的人为活动识别框架。我们使用一系列线性动态系统(LDS)模拟每个动作序列,每个LDS描述序列的小补丁。通过使用K-METOIDS聚类算法和系统袋式(BOS)形成码本以表示时间序列。这种方法的一个很大的优点是避免了复杂的特征设计程序,并且LDS可以捕获时间序列的动态。我们对公共数据集的实验验证显示了有希望的结果。

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