EEG data for motor imagery brain-computer interface using low-cost equipment

Gabriel Henrique De Souza, Gabriel Faria, L. Motta, H. Bernardino, A. Vieira
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Abstract

EEG-based brain-computer interfaces (BCI) for motor imagery recognition can be used in many applications, including prosthesis control, post-stroke motor rehabilitation, communication, and videogames. Such BCIs usually need to be calibrated with EEG data before being used. The calibration can use data from either a single person, the same person who will use the equipment, or a group of different people. However, although BCIs are increasingly used in research and real-world problems, high equipment costs prevent their popularization in personal use applications. For this reason, there are many ongoing efforts to create more affordable BCI devices. Nevertheless, most public datasets for motor imagery EEG-BCIs still use expensive equipment. Therefore, our work presents a dataset for EEG-based motor imagery BCIs focused on personal use applications. Using a low-cost 16-electrode EEG OpenBCI Cyton+Daisy Biosensing Board, we recorded the brain signals of 6 subjects while they imagined the movements of their hands, resulting in a dataset containing 960 trials of left and right-hand motor imagery. This dataset can be used to calibrate BCIs using similar low-cost equipment as well as study the signals generated by such equipment.
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低成本设备的运动图像脑机接口EEG数据
基于脑电图的脑机接口(BCI)用于运动图像识别可用于许多应用,包括假肢控制,中风后运动康复,通信和视频游戏。此类脑机接口在使用前通常需要用脑电图数据进行校准。校准可以使用来自单个人、使用设备的同一个人或一组不同人的数据。然而,尽管脑机接口越来越多地用于研究和现实问题,但高昂的设备成本阻碍了其在个人使用应用中的普及。出于这个原因,有许多正在进行的努力,以创造更实惠的BCI设备。然而,大多数公开的运动图像eeg - bci数据集仍然使用昂贵的设备。因此,我们的工作提出了一个基于脑电图的运动图像脑机接口的数据集,专注于个人使用应用。使用低成本的16电极EEG OpenBCI Cyton+Daisy生物传感板,我们记录了6名受试者在想象手部运动时的大脑信号,得到了包含960次左右运动图像试验的数据集。该数据集可用于使用类似的低成本设备校准脑机接口,并研究此类设备产生的信号。
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