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Classification Strategies for a Single-Trial Binary Brain Computer Interface based on Remembering Unpleasant Odors

机译:基于记忆令人不快的气味的单次试用二进制脑电脑界面的分类策略

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A Brain Computer Interface (BCI) is a useful instrument to support human communication. In recent years, BCI systems have been frequently implemented by using EEG. Regarding the communication paradigm used, there exists a very large number of strategies and, recently, the remembering of unpleasant odors has been also defined. However, the quality of the signals collected by this last paradigm is very poor, due to the absence of a real stimulus (the stimulus consists in remembering a disgusting situation). For this reason, a crucial node is the choice of a very efficient classification algorithm to improve the accuracy of the BCI. The present paper describes a and compares classification strategies for such type of BCI systems. The proposed methods and the experimental setup are described and experimental measurements are presented and discussed.
机译:脑电脑界面(BCI)是支持人类通信的有用仪器。近年来,BCI系统经常使用脑电站实施。关于所使用的通信范式,存在大量策略,最近,还定义了令人不快的气味的记忆。然而,由于没有真正的刺激,这最后一个范式收集的信号的质量非常差(刺激因记住恶心的情况)。因此,关键节点是选择非常有效的分类算法,以提高BCI的准确性。本文介绍了一种并比较了这种类型的BCI系统的分类策略。描述并讨论了所提出的方法和实验设置,并讨论了实验测量。

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