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Classify Mental States from EEG Signal Using Xgboost Algorithm
专利权人:
Ke Chen;Yihao Wang;Huimin Zhang;Jiachen Jiang;Yuan Ma
发明人:
Zhang, Huimin,Chen, Ke,Jiang, Jiachen,Ma, Yuan,Wang, Yihao
申请号:
AU2019101151
公开号:
AU2019101151A4
申请日:
2019.09.30
申请国别(地区):
AU
年份:
2020
代理人:
摘要:
#$%^&*AU2019101151A420200123.pdf#####ABSTRACT Brain-computer interface (BCI) is a leading edge technique which allows the brain communicates with external devices. It has been applied in several fields, such as medical rehabilitation, virtual reality and so on. This invention introduces a technique that can be applied in education field to monitor and analyze users' electroencephalogram (EEG) so that the mental states could be identified. The algorithm of classifier used XGBoost which combined Bayes, KNN and SVM in it and its accuracy could reach to 80%. By using this technique, teacher could obtain the concentration status of students in real time and adjust his or her teaching method or remind the student who is wandering. 1Data collection Import data Feature Absolute Mean Variance coPeaatn PeaSkew extraction E Data pre-processing Visualization Classifier ayes ANN XGBoost Fine-tuning Result analysisI Figure 1 1
来源网站:
中国工程科技知识中心
来源网址:
http://www.ckcest.cn/home/

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