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Development of an Electroencephalography-Based Brain-Computer Interface Supporting Two-Dimensional Cursor Control

机译:基于脑电图的支持二维光标控制的脑机接口的开发

摘要

This study aims to explore whether human intentions to move or cease to move right and left hands can be decoded from spatiotemporal features in non-invasive electroencephalography (EEG) in order to control a discrete two-dimensional cursor movement for a potential multi-dimensional Brain-Computer interface (BCI). Five naïve subjects performed either sustaining or stopping a motor task with time locking to a predefined time window by using motor execution with physical movement or motor imagery. Spatial filtering, temporal filtering, feature selection and classification methods were explored. The performance of the proposed BCI was evaluated by both offline classification and online two-dimensional cursor control. Event-related desynchronization (ERD) and post-movement event-related synchronization (ERS) were observed on the contralateral hemisphere to the hand moved for both motor execution and motor imagery. Feature analysis showed that EEG beta band activity in the contralateral hemisphere over the motor cortex provided the best detection of either sustained or ceased movement of the right or left hand. The offline classification of four motor tasks (sustain or cease to move right or left hand) provided 10-fold cross-validation accuracy as high as 88% for motor execution and 73% for motor imagery. The subjects participating in experiments with physical movement were able to complete the online game with motor execution at the average accuracy of 85.5±4.65%; Subjects participating in motor imagery study also completed the game successfully. The proposed BCI provides a new practical multi-dimensional method by noninvasive EEG signal associated with human natural behavior, which does not need long-term training.
机译:这项研究旨在探讨是否可以从非侵入性脑电图(EEG)的时空特征中解码出人类意图左右移动或停止移动,以控制潜在的多维大脑的离散二维光标移动-计算机接口(BCI)。通过使用具有身体运动或运动图像的运动执行功能,五个天真的对象执行了维持或停止运动任务的时间锁定到预定义的时间窗口。探索了空间滤波,时间滤波,特征选择和分类方法。提出的BCI的性能通过离线分类和在线二维光标控制进行了评估。在运动执行和运动成像的对侧半球中,观察到与事件相关的失步(ERD)和运动后事件相关的同步(ERS)。特征分析表明,运动皮层对侧半球的EEGβ谱带活动提供了左右手持续运动或停止运动的最佳检测方法。对四个运动任务(保持或停止向右或向左移动)的离线分类提供了十倍的交叉验证精度,对于运动执行而言,其准确性高达88%,对于运动成像则高达73%。参加身体运动实验的受试者能够完成运动执行的在线游戏,平均准确度为85.5±4.65%;参加运动图像研究的对象也成功完成了游戏。提出的BCI通过与人类自然行为相关的无创性EEG信号提供了一种新的实用的多维方法,不需要长期培训。

著录项

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    Huang Dandan;

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  • 年度 2009
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