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Near-infrared spectroscopy (NIRS)-based eyes-closed brain-computer interface (BCI) using prefrontal cortex activation due to mental arithmetic

机译:基于心算的前额叶皮层激活的基于近红外光谱(NIRS)的闭眼式计算机接口(BCI)

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摘要

We propose a near-infrared spectroscopy (NIRS)-based brain-computer interface (BCI) that can be operated in eyes-closed (EC) state. To evaluate the feasibility of NIRS-based EC BCIs, we compared the performance of an eye-open (EO) BCI paradigm and an EC BCI paradigm with respect to hemodynamic response and classification accuracy. To this end, subjects performed either mental arithmetic or imagined vocalization of the English alphabet as a baseline task with very low cognitive loading. The performances of two linear classifiers were compared; resulting in an advantage of shrinkage linear discriminant analysis (LDA). The classification accuracy of EC paradigm (75.6 ± 7.3%) was observed to be lower than that of EO paradigm (77.0 ± 9.2%), which was statistically insignificant (p = 0.5698). Subjects reported they felt it more comfortable (p = 0.057) and easier (p < 0.05) to perform the EC BCI tasks. The different task difficulty may become a cause of the slightly lower classification accuracy of EC data. From the analysis results, we could confirm the feasibility of NIRS-based EC BCIs, which can be a BCI option that may ultimately be of use for patients who cannot keep their eyes open consistently.
机译:我们提出了一种基于近红外光谱(NIRS)的脑机接口(BCI),可以在闭眼(EC)状态下进行操作。为了评估基于NIRS的EC BCI的可行性,我们在血液动力学响应和分类准确性方面比较了睁眼(EO)BCI范例和EC BCI范例的性能。为此,受试者进行了心理算术或想象中的发声作为基本任务的英语字母,其认知负荷非常低。比较了两个线性分类器的性能。导致收缩线性判别分析(LDA)的优势。观察到EC范式的分类准确度(75.6±7.3%)低于EO范式的分类准确度(77.0±9.2%),在统计学上不显着(p = 0.5698)。受试者报告说,他们觉得执行EC BCI任务更舒适(p = 0.057)和更容易(p <0.05)。不同的任务难度可能成为EC数据分类精度稍低的原因。从分析结果中,我们可以确认基于NIRS的EC BCI的可行性,这可能是一种BCI选项,最终可以用于无法始终睁开眼睛的患者。

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