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P300 brainwave extraction from EEG signals: An unsupervised approach

机译:从脑电信号中提取P300脑波:一种无监督方法

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The P300 is an endogenous event-related potential (ERP) that is naturally elicited by rare and significant stimuli, arisen from the frontal, temporal and occipital lobe of the brain, although is usually measured in the parietal lobe. P300 signals are increasingly used in brain-computer interfaces (BCI) because the users of ERP-based BCIs need no special training. In order to detect the P300 signal, most studies in the field have been focused on a supervised approach, dealing with over-fitting filters and the need for later validation. In this paper we start bridging this gap by modeling an unsupervised classifier of the P300 presence based on a weighted score. This is carried out through the use of matched filters that weight events that are likely to represent the P300 wave. The optimal weights are determined through a study of the data's features. The combination of different artifact cancelation methods and the P300 extraction techniques provides a marked, statistically significant, improvement in accuracy at the level of the top-performing algorithms for a supervised approach presented in the literature to date. This innovation brings a notable impact in ERP-based communicators, appointing to the development of a faster and more reliable BCI technology. (C) 2017 Elsevier Ltd. All rights reserved.
机译:P300是一种内源性事件相关电位(ERP),由大脑的额叶,颞叶和枕叶产生,是由稀有和显着的刺激自然引起的,尽管通常在顶叶中进行测量。 P300信号越来越多地用于脑机接口(BCI),因为基于ERP的BCI的用户无需特殊培训。为了检测P300信号,该领域中的大多数研究都集中在一种有监督的方法上,该方法处理过拟合的滤波器以及对以后进行验证的需求。在本文中,我们开始通过基于加权得分对P300存在的无监督分类器建模来弥合这一差距。这是通过使用匹配的滤波器来执行的,该滤波器对可能代表P300波的事件进行加权。通过研究数据的特征来确定最佳权重。迄今为止,文献中提出的一种有监督的方法将不同的伪影消除方法和P300提取技术相结合,可以在统计学上达到最高的算法水平,在统计学上具有显着的意义上的提高。这项创新为基于ERP的通信器带来了显着影响,促使其开发了更快,更可靠的BCI技术。 (C)2017 Elsevier Ltd.保留所有权利。

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