Methods of Command Recognition Using Single-Channel EEGs

Wei-Ho Tsai, Cin-Hao Ma, Varinya Phanichraksaphong
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引用次数: 0

Abstract

This work proposes to recognize a user's commands by analysing his/her brainwaves captured with single channel electroencephalogram (EEG). Whenever a user intends to issue one of the pre-defined commands, the proposed system prompts him/her all the candidate commands in turn. Then, the user is asked to be concentrated as possible as he/she can, when the desired command is shown. It is assumed that the concentration will present a certain pattern of “Yes” in the captured EEG, as opposed to a certain pattern of “No” when the user is relaxed. Accordingly, the task is to determine that the captured EEG is “Yes” or not. This work compares three recognition methods, respectively, based on Gaussian mixture models, hidden Markov models and recurrent neural network, and conducts experiments using 2400 test EEG samples recorded from 10 subjects.
基于单通道脑电图的命令识别方法
这项工作提出通过分析单通道脑电图(EEG)捕获的用户脑电波来识别用户的命令。每当用户打算发出一个预定义的命令时,建议的系统依次提示他/她所有候选命令。然后,当显示所需的命令时,要求用户尽可能集中注意力。我们假设,在捕捉到的脑电图中,注意力集中会呈现出一定的“是”模式,而在用户放松时则呈现出一定的“否”模式。因此,任务是确定捕获的EEG是否为“Yes”。本文比较了基于高斯混合模型、隐马尔可夫模型和递归神经网络的三种识别方法,并利用10名受试者的2400个测试脑电样本进行了实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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