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Riemannian geometry for EEG-based brain-computer interfaces; a primer and a review

机译:基于EEG的脑机接口的黎曼几何;入门和评论

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Despite its short history, the use of Riemannian geometry in brain-computer interface (BCI) decoding is currently attracting increasing attention, due to accumulating documentation of its simplicity, accuracy, robustness and transfer learning capabilities, including the winning score obtained in five recent international predictive modeling BCI data competitions. The Riemannian framework is sharp from a mathematical perspective, yet in practice it is simple, both algorithmically and computationally. This allows the conception of online decoding machines suiting real-world operation in adverse conditions. We provide here a review on the use of Riemannian geometry for BCI and a primer on the classification frameworks based on it. While the theoretical research on Riemannian geometry is technical, our aim here is to show the appeal of the framework on an intuitive geometrical ground. In particular, we provide a rationale for its robustness and transfer learning capabilities and we elucidate the link between a simple Riemannian classifier and a state-of-the-art spatial filtering approach. We conclude by reporting details on the construction of data points to be manipulated in the Riemannian framework in the context of BCI and by providing links to available open-source Matlab and Python code libraries for designing BCI decoders.
机译:尽管其历史很短,但由于积累了有关其简单性,准确性,鲁棒性和传递学习能力的文献资料,包括最近在五个国际期刊中获得的获胜成绩,在脑机接口(BCI)解码中使用黎曼几何图形引起了越来越多的关注。预测建模BCI数据竞赛。从数学的角度来看,黎曼框架是敏锐的,但实际上,它在算法和计算上都很简单。这允许在线解码器的概念适合在不利条件下的实际操作。我们在这里提供了对BCI使用黎曼几何的评论,并在此基础上对分类框架进行了介绍。尽管有关黎曼几何的理论研究是技术性的,但我们的目的是在直观的几何基础上展示框架的吸引力。特别是,我们为其鲁棒性和转移学习能力提供了理论依据,并阐明了简单的黎曼分类器与最新的空间过滤方法之间的联系。最后,我们通过报告有关在BCI上下文中在黎曼框架中要处理的数据点的构造的详细信息,并提供与可用的开源Matlab和Python代码库的链接,以设计BCI解码器。

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