Motor Imagery Classification Based on CNN-GRU Network with Spatio-Temporal Feature Representation

被引:0
|
作者
Bang, Ji-Seon [1 ]
Lee, Seong-Whan [2 ]
机构
[1] Korea Univ, Dept Brain & Cognit Engn, Seoul, South Korea
[2] Korea Univ, Dept Artificial Intelligence, Seoul, South Korea
来源
关键词
Brain-computer interface (BCI); Electroencephalography (EEG); Motor imagery (MI); Convolutional neural network (CNN); Gated recurrent unit (GRU); SINGLE-TRIAL EEG; COMMON SPATIAL-PATTERNS; TIME-SERIES PREDICTION; IMAGINED SPEECH; NEURAL-NETWORKS; SELECTION; FILTERS; STATE;
D O I
10.1007/978-3-031-02375-0_8
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Recently, various deep neural networks have been applied to classify electroencephalogram (EEG) signal. EEG is a brain signal that can be acquired in a non-invasive way and has a high temporal resolution. It can be used to decode the intention of users. As the EEG signal has a high dimension of feature space, appropriate feature extraction methods are needed to improve classification performance. In this study, we obtained spatio-temporal feature representation and classified them with the combined convolutional neural networks (CNN)-gated recurrent unit (GRU) model. To this end, we obtained covariance matrices in each different temporal band and then concatenated them on the temporal axis to obtain a final spatio-temporal feature representation. In the classification model, CNN is responsible for spatial feature extraction and GRU is responsible for temporal feature extraction. Classification performance was improved by distinguishing spatial data processing and temporal data processing. The average accuracy of the proposed model was 77.70% (+/- 15.39) for the BCI competition IV_2a data set. The proposed method outperformed all other methods compared as a baseline method.
引用
收藏
页码:104 / 115
页数:12
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