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Adaptive Brain-Computer Interface with Attention Alterations in Patients with Amyotrophic Lateral Sclerosis

机译:肌萎缩性侧索硬化症患者注意变化的自适应脑机接口

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The users’ mental state such as attention variations can have an effect on the brain-computer interface (BCI) performance. In this project, we implemented an adaptive online BCI system with alterations in the users’ attention. Twelve electroencephalography (EEG) signals were obtained from six patients with Amyotrophic Lateral Sclerosis (ALS). Participants were asked to execute 40 trials of ankle dorsiflexion concurrently with an auditory oddball task. EEG channels, classifiers and features with superior offline performance in the training phase of the classification of attention level were selected to use in the online mode for prediction the attention status. A feedback was provided to the users to reduce the amount of attention diversion created by the oddball task. The findings revealed that the users’ attention can control an online BCI system and real-time neurofeedback can be applied to focus the attention of the user back onto the main task.
机译:用户的心理状态(例如注意力变化)可能会影响脑机接口(BCI)的性能。在这个项目中,我们实施了一个自适应的在线BCI系统,用户的注意力发生了变化。从6例肌萎缩性侧索硬化症(ALS)患者中获得了十二个脑电图(EEG)信号。要求参与者在进行听觉怪异任务的同时进行40次踝背屈试验。选择在关注水平分类训练阶段具有优异离线性能的EEG通道,分类器和功能,以在线模式用于预测关注状态。向用户提供了反馈,以减少由奇数任务产生的注意力转移量。调查结果表明,用户的注意力可以控制在线BCI系统,并且可以应用实时神经反馈来将用户的注意力集中到主要任务上。

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