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The human movement identification using the radio signal strength in WBAN

机译:使用WBAN中的无线电信号强度的人体运动识别

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This paper investigated the feasibility of using the radio signal strength of sensors placed around the human body in the human movement identification. This proposed method can identify the human movement in WBAN using only the radio signal strength, thus any additional tools are not necessary. OpenNICTA provides the BAN measurement channel in three kinds of human motions, which are running, walking and standing. This paper used three sets of the measurement data, which Tx-Rx located at Back-Chest, RightAnkle-Chest, and RightWrist-Chest. Each data set was separately used to identify the movements. This paper used two types of machine learning, which are neural network and decision tree. In the neural network, it has been found that using eight types of features, which are SCP, Range, SSI, RMS, LCR, SC, WAMP, Histogram, calculated from 200 continuous received signal levels can identify the human movements with accuracy rate of 90.41-98.83 percent. Using the same features, the decision tree can identify the human movements with the accuracy rate of 99.04-99.66 percent. Both tools perform well on the human movement identification. However, the decision tree outperforms the neural network in this task.
机译:本文研究使用在人体运动识别周围放置人体传感器的无线电信号强度的可行性。该提出的方法可识别仅使用无线电信号强度在WBAN的人体运动,从而任何额外的工具是没有必要的。 OpenNICTA提供3种人的运动,这是跑步,步行和站立的BAN测量通道。本文所用的三组的测量数据,该发送 - 接收位于背胸部,RightAnkle-胸部,和RightWrist-胸部的。每个数据集分别用于标识运动。本文使用了两种类型的机器学习,这是神经网络和决策树。在神经网络中,已经发现,使用八种类型的特征,这是SCP,范围,SSI,RMS,LCR,SC,WAMP,直方图,从200个连续接收到的信号电平来计算可以识别与准确率人体运动90.41-98.83个百分点。使用相同的功能,决策树可以用的99.04-99.66%的准确率识别人的动作。这两种工具对人体移动识别表现良好。然而,决策树优于此任务中的神经网络。

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