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Enhanced Low-Latency Detection of Motor Intention From EEG for Closed-Loop Brain-Computer Interface Applications

机译:增强的针对大脑闭环计算机接口应用程序的EEG低延迟检测,可用于脑电图

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摘要

In recent years, the detection of voluntary motor intentions from electroencephalogram (EEG) has been used for triggering external devices in closed-loop brain–computer interface (BCI) research. Movement-related cortical potentials (MRCP), a type of slow cortical potentials, have been recently used for detection. In order to enhance the efficacy of closed-loop BCI systems based on MRCPs, a manifold method called Locality Preserving Projection, followed by a linear discriminant analysis (LDA) classifier (LPP-LDA) is proposed in this paper to detect MRCPs from scalp EEG in real time. In an online experiment on nine healthy subjects, LPP-LDA statistically outperformed the classic matched filter approach with greater true positive rate (79 ± 11% versus 68 ± 10%; $p = 0.007$) and less false positives (1.4 ± 0.8/min versus 2.3 ± 1.1/min; $p = 0.016$ ). Moreover, the proposed system performed detections with significantly shorter latency (315 ± 165 ms versus 460 ± 123 ms; $p = 0.013$), which is a fundamental characteristics to induce neuroplastic changes in closed-loop BCIs, following the Hebbian principle. In conclusion, the proposed system works as a generic brain switch, with high accuracy, low latency, and easy online implementation. It can thus be used as a fundamental element of BCI systems for neuromodulation and motor function rehabilitation.
机译:近年来,从脑电图(EEG)中检测自愿运动意图已被用于触发闭环脑机接口(BCI)研究中的外部设备。运动相关的皮层电位(MRCP)是一种缓慢的皮层电位,最近已用于检测。为了提高基于MRCP的闭环BCI系统的效率,本文提出了一种称为局部保留投影的流形方法,然后采用线性判别分析(LDA)分类器(LPP-LDA)从头皮脑电图中检测MRCP实时。在针对9位健康受试者的在线实验中,LPP-LDA在统计学上优于传统的匹配过滤器方法,具有更高的真实阳性率(79±11%对68±10%; $ p = 0.007 $)和较少的假阳性率(1.4±0.8 /分钟与2.3±1.1 /分钟; $ p = 0.016 $)。此外,所提出的系统执行的检测具有显着更短的等待时间(315±165 ms与460±123 ms; $ p = 0.013 $),这是遵循Hebbian原理在闭环BCI中引起神经塑性变化的基本特征。总之,该系统可作为通用的大脑开关,具有高精度,低延迟和易于在线实施的特点。因此,它可用作神经调节和运动功能康复的BCI系统的基本要素。

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