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Toward Brain-Actuated Humanoid Robots: Asynchronous Direct Control Using an EEG-Based BCI

机译:走向脑动人形机器人:使用基于EEG的BCI的异步直接控制

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The brain–computer interface (BCI) technique is a novel control interface to translate human intentions into appropriate motion commands for robotic systems. The aim of this study is to apply an asynchronous direct-control system for humanoid robot navigation using an electroencephalograph (EEG), based active BCI. The experimental procedures consist of offline training, online feedback testing, and real-time control sessions. The amplitude features from EEGs are extracted using power spectral analysis, while informative feature components are selected based on the Fisher ratio. The two classifiers are hierarchically structured to identify human intentions and trained to build an asynchronous BCI system. For the performance test, five healthy subjects controlled a humanoid robot navigation to reach a target goal in an indoor maze by using their EEGs based on real-time images obtained from a camera on the head of the robot. The experimental results showed that the subjects successfully controlled the humanoid robot in the indoor maze and reached the goal by using the proposed asynchronous EEG-based active BCI system.
机译:脑机接口(BCI)技术是一种新颖的控制接口,可将人的意图转换为适用于机器人系统的运动命令。这项研究的目的是将基于人类脑电图(EEG)的主动BCI应用于人形机器人导航的异步直接控制系统。实验过程包括离线培训,在线反馈测试和实时控制会话。使用功率谱分析从脑电信号中提取振幅特征,同时根据费舍尔比率选择信息量丰富的特征分量。这两个分类器采用分层结构来识别人的意图,并经过训练以构建异步BCI系统。在性能测试中,五名健康受试者根据从机器人头上的摄像头获得的实时图像,通过使用他们的EEG,控制类人机器人在室内迷宫中的导航目标。实验结果表明,通过使用基于异步EEG的主动BCI系统,受试者成功控制了室内迷宫中的仿人机器人并达到了目标。

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