Gesture Recognition Using Wearable Sensors With Bi-Long Short-Term Memory Convolutional Neural Networks

被引:17
|
作者
Nguyen-Trong, Khanh [1 ,2 ]
Vu, Hoai Nam [1 ]
Trung, Ngon Nguyen [1 ]
Pham, Cuong [1 ]
机构
[1] Posts & Telecommun Inst Technol, Hanoi 10000, Vietnam
[2] Sorbonne Univ, IRD, UMMISCO, JEAI WARM, F-93143 Bondy, France
关键词
Sensors; Feature extraction; Deep learning; Home appliances; Intelligent sensors; Data mining; Gesture recognition; 1D convolutional neural network; bidirectional LSTM; hand gesture recognition; human--machine interface; home appliance control; GesHome dataset; OPTICAL SENSOR; RADAR;
D O I
10.1109/JSEN.2021.3074642
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this study, we propose a gesture recognition system that is applicable for controlling home appliances. We utilized sensors embedded inside common smart watches, such as accelerometers and gyroscopes, for alleviating the obtrusiveness to users. One-dimensional convolutional neural networks and bi-long short-term memory (1D-CNN-biLSTM) are proposed for analyzing, learning, and representing features from the sensor signals. In addition, a dataset of 18,000 gestures with 18 labels was collected from 20 subjects to verify our proposed methods. Notably, the proposed hand gesture vocabulary was found to be easy to learn for users. Moreover, it provides them with improved control over their home appliances. The results of an empirical experiment conducted on three public datasets in addition to our self-collected dataset (GesHome) indicate that the proposed 1D-CNN-biLSTM model can achieve an F1-score of 90% and outperforms previous state-of-the art methods. Moreover, a demonstrative system was employed to illustrate the efficiency of the proposed model for home appliance control in a real-world scenario.
引用
收藏
页码:15065 / 15079
页数:15
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