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Automatic stimuli classification from ERP data for augmented communication via Brain-Computer Interfaces

机译:来自ERP数据的自动刺激分类,以通过脑机接口进行增强的交流

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Brain-computer interfaces (BCIs) are systems initially designed to compensate for motor disabilities affecting people whose control of the muscular system is compromised. However, recent developments open the BCIs market to a wide range of medical and non-medical applications. This raises the need for systems capable of interpreting more and more stimuli, even from different sensory domains. In this work, we design a machine-learning system able to fit both application domains accurately recognizing visual and auditory stimuli starting from the event-related potentials (ERPs) they generate. The obtained results are promising and some practical and realization aspects are discussed.
机译:脑机接口(BCI)是最初用于补偿运动障碍的系统,这些运动障碍影响了对肌肉系统的控制受到影响的人。但是,最近的发展为医疗和非医疗应用打开了BCI市场。这就提出了对即使来自不同感觉领域也能够解释越来越多刺激的系统的需求。在这项工作中,我们设计了一种机器学习系统,该系统能够适合两个应用程序领域,并从它们产生的事件相关电位(ERP)开始准确识别视觉和听觉刺激。获得的结果是有希望的,并讨论了一些实际和实现方面。

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