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WiFi CSI Based Passive Human Activity Recognition Using Attention Based BLSTM

机译:使用基于注意力的BLSTM的基于WiFi CSI的被动人类活动识别

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Human activity recognition can benefit various applications including healthcare services and context awareness. Since human actions will influence WiFi signals, which can be captured by the channel state information (CSI) of WiFi, WiFi CSI based human activity recognition has gained more and more attention. Due to the complex relationship between human activities and WiFi CSI measurements, the accuracies of current recognition systems are far from satisfactory. In this paper, we propose a new deep learning based approach, i.e., attention based bi-directional long short-term memory (ABLSTM), for passive human activity recognition using WiFi CSI signals. The BLSTM is employed to learn representative features in two directions from raw sequential CSI measurements. Since the learned features may have different contributions for final activity recognition, we leverage on an attention mechanism to assign different weights for all the learned features. Real experiments have been carried out to evaluate the performance of the proposed ABLSTM for human activity recognition. The experimental results show that our proposed ABLSTM is able to achieve the best recognition performance for all activities when compared with some benchmark approaches.
机译:人类活动识别可以使各种应用受益,包括医疗保健服务和情境感知。由于人类行为会影响WiFi信号,WiFi信号可以被WiFi的信道状态信息(CSI)捕获,因此基于WiFi CSI的人类活动识别越来越受到关注。由于人类活动和WiFi CSI测量之间的复杂关系,当前的识别系统的准确性远远不能令人满意。在本文中,我们提出了一种新的基于深度学习的方法,即基于注意力的双向长期短期记忆(ABLSTM),用于使用WiFi CSI信号进行被动人类活动识别。 BLSTM用于从原始顺序CSI测量中学习两个方向上的代表性特征。由于学习的功能可能对最终活动的识别有不同的贡献,因此我们利用注意力机制为所有学习的功能分配不同的权重。已经进行了真实的实验,以评估提出的ABLSTM对人类活动识别的性能。实验结果表明,与某些基准方法相比,我们提出的ABLSTM能够在所有活动中实现最佳识别性能。

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