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High Order Moment Features for NIRS-Based Classification Problems

机译:基于NIRS的分类问题的高阶时刻特征

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This paper aims to experiment high order moment features in two well-known problems which are motor imagery and person authentication in Brain Computer Interface (BCI) systems using Near Infrared Spectroscopy (NIRS) technique. To improve performance of the systems, we propose a new feature by combining 2nd order and 4th order moments of signal together. Our results show that such the feature not only achieves very high recall and precision ratios but also is practical for online NIRS-based BCI systems. Our systems can achieve recall and precision ratio at 99.2% for the left-hand and right-hand imagery problem, and up to 100% for the person authentication problem.
机译:本文旨在在两个众所周知的问题中进行高阶时刻特征,这些问题是使用近红外光谱(NIRS)技术的脑电脑界面(BCI)系统中的运动图像和人员认证。为了提高系统的性能,我们通过将信号的第2顺序和第4级时刻组合在一起来提出一个新功能。我们的结果表明,这种功能不仅可以实现非常高的召回和精确度,而且对于基于在线NIRS的BCI系统也是实用的。我们的系统可以在左手和右手图像问题上实现召回和精度比率为99.2%,对于人身份验证问题最高可达100%。

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