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Discriminating Between Imagined Speech and Non-Speech Tasks Using EEG

机译:使用脑电图区分想象的语音和非语音任务

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People who are severely disabled (e.g Locked-in patients) need a communication tool translating their thoughts using their brain signals. This technology should be intuitive and easy to use. To this line, this study investigates the possibility of discriminating between imagined speech and two types of non-speech tasks related to either a visual stimulus or relaxation. In comparison to previous studies, this work examines a variety of different words with only single imagination in each trial. Moreover, EEG data are recorded from a small number of electrodes using a low-cost portable EEG device. Thus, our experiment is closer to what we want to achieve in the future as communication tool for locked-in patients. However, this design makes the EEG classification more challenging due to a higher level of noise and variations in EEG signals. Spectral and temporal features, with and without common spatial filtering, were used for classifying every imagined word (and for a group of words) against the non-speech tasks. The results show the potential for discriminating between each imagined word and non-speech tasks. Importantly, the results are different between subjects using different features showing the need for having subject specific features.
机译:严重残障的人(例如锁定的患者)需要使用大脑信号来交流思想的沟通工具。该技术应直观易用。为此,本研究调查了区分想象的语音和与视觉刺激或放松相关的两种非语音任务的可能性。与以前的研究相比,这项工作在每个试验中仅用一种想象力就研究了各种不同的单词。而且,使用低成本便携式EEG设备从少量电极记录EEG数据。因此,我们的实验更接近于我们将来作为锁定患者的交流工具要达到的目标。然而,由于较高的噪声水平和EEG信号的变化,此设计使EEG分类更具挑战性。具有和不具有公共空间滤波的频谱和时间特征被用于根据非语音任务对每个想象的单词(和一组单词)进行分类。结果显示了区分每个想象的单词和非语音任务的潜力。重要的是,使用不同特征的受试者之间的结果是不同的,这表明需要具有特定于受试者的特征。

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