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Experiments on Synchronous Nonlinear Features for 2-Class NIRS-Based Motor Imagery Problem

机译:基于NIRS的2级电机图像问题同步非线性特征的实验

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This paper aims to experiment several synchronous nonlinear features in the well-known 2-class motor imagery problem in Brain Computer Interface (BCI) systems using Near Infrared Spectroscopy (NIRS) technique. Those features including phase synchronizations and nonlinear interdependences are well known and widely applied on several neural-related problems such as epilepsy prediction. However, only a few publications are related to NIRS-based BCI systems. We conducted several experiments using NIRS technique to analyze how useful those synchronous nonlinear features can be applied on NIRS-based BCI systems. Results show that while the nonlinear interdependences can produce quite good recall and precision ratios, the phase synchronizations are not good for classification because the accuracy is as low as that in random guessing.
机译:本文旨在使用近红外光谱(NIRS)技术在脑电脑界面(BCI)系统中的众所周知的2级电机图像问题中进行多个同步非线性功能。这些特征在内的相位同步和非线性相互依存性是众所周知的,并且广泛应用于诸如癫痫预测的几个神经相关问题。但是,只有少数出版物与基于NIRS的BCI系统有关。我们使用NIRS技术进行了多个实验,以分析这些同步非线性功能如何应用于基于NIRS的BCI系统的有用。结果表明,虽然非线性相互依存可以产生相当良好的召回和精度比率,但相位同步对分类不利,因为精度与随机猜测中的准确度低。

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