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基于认知任务的脑机接口方法研究

Study on Brain Computer Interface Based on Cognitive Task

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【作者】 毕路拯张然高原吴平东

【Author】 BI Luzheng1,ZHANG Ran2,GAO Yuan3,WU Pingdong1(1.School of Mechanical and Vehicular Engineering,Beijing Institute of Technology,Bejing 100081;2.School of Life Science and Technology,Beijing Institute of Technology,Beijing 100081;3.School of Information Science and Technology,Beijing Institute of Technology,Beijing 100081)

【机构】 北京理工大学机械与车辆工程学院北京理工大学生命与技术学院北京理工大学信息科学技术学院北京理工大学机械与车辆工程学院 北京100081北京100081

【摘要】 提出一种通过脑电波来识别放松状态以及乘法作业状态从而实现脑机接口的新方法。利用脑电仪记录受测者放松状态以及乘法作业时的大脑左右半球枕叶部的脑电信号,采用Welch法分别估计出这2个部位8Hz~10Hz、1Hz~13Hz、14Hz~30Hz 3个频段的功率谱,以各个功率谱平均值和2Hz~30Hz频段功率谱平均值的比值作为分类特征,采用支持向量机的方法建立了分类器,从而实现了脑机接口。4个受测者的实验结果表明识别准确率都大于94.44%,最高为98.89%。由于只采用了2个采集点,因此如果采用某种编码方式,该脑机接口技术就可更加方便地用于写字、控制轮椅等方面。

【Abstract】 A brain computer interface presented using electroencephalogram(EEG) signals are the subjects that have to think of the multiplication task.EEG signals from 4 subjects are recorded at occipital scalp,while they are in the state of the multiplication task and the resting state.The spectral power in the 3 bands: 8~10Hz,11~13Hz and 14~30Hz,is estimated using the Welch method respectively.A ratio of the average of the spectral power in each of the three bands to the average in 2~30Hz is designed as classification features.The multiplication task is detected by a support vector machine classifier.The experimental results show that the method is feasible,practical,and all accuracies are more than 94.44%,while maxim accuracy is 98.89%.Because the two channels are only used,the method is more convenient in practice for constructing letters,controlling a wheelchair and so on.

【基金】 教育部博士学科点专项科研基金资助项目(20010007016)
  • 【文献出处】 计算机工程 ,Computer Engineering , 编辑部邮箱 ,2007年01期
  • 【分类号】TP334.7
  • 【被引频次】9
  • 【下载频次】462
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