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Fast and accurate classifier-based brain-computer interface system using single channel EEG data

机译:基于单通道脑电数据的快速,准确的基于分类器的脑机接口系统

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In brain-computer interface system (BCIs), direct communication between humans and computers is performed by analyzing neural signals and transforming them into digital signals. In the continuation of our previous works, in this paper, we advanced the proposed BCI system that was based on the gaze on rotating vanes. The speed of communication and convenience of the user are very important factors in BCI systems. Therefore, in this paper, for the convenience of the user, a single EEG channel was used. Also, for to increase the speed of the system, we tried to the classification of 0.5 sec epochs with a partial least squares regression (PLSR) as a fast classifier. In addition, we computed the information transfer rate (ITR) that has proved our proposed BCI system is fast and accurate. This system could be used in real-time implementations due to having high classification rate, speed and convenience of the user.
机译:在脑电脑接口系统(BCIS)中,通过分析神经信号并将其转换为数字信号来执行人类和计算机之间的直接通信。在我们以前的作品的延续中,在本文中,我们通过了基于旋转叶片的凝视的拟议BCI系统。用户的通信速度和便利性是BCI系统中非常重要的因素。因此,在本文中,为了便于用户,使用单个EEG通道。此外,为了提高系统的速度,我们尝试将部分最小二乘回归(PLSR)作为快速分类器分类为0.5秒钟的epoch。此外,我们计算了证明我们提出的BCI系统的信息传输速率(ITR)快速准确。由于具有高分类率,速度和用户的便利性,该系统可用于实时实现。

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