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Preliminary Results on a New Algorithm for Blink Correction Adaptive to Inter- and Intra-Subject Variability

机译:适应受试者间和受试者内变异性的眨眼校正新算法的初步结果

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This paper presents a new preprocessing method to correct blinking artifacts in Electroencephalography (EEG) based Brain-Computer Interfaces (BCIs). This Algorithm for Blink Correction (ABC) directly corrects the signal in the time domain without the need for additional Electrooculogram (EOG) electrodes. The main idea is to automatically adapt to the blink's inter- and intra-subject variability by considering the blink's amplitude as a parameter. A simple Minimum Distance to Riemannian Mean (MDRM) is applied as the classification algorithm. Preliminary results on three subjects show a mean classification accuracy increase of 13.7% using ABC.
机译:本文提出了一种新的预处理方法,以纠正基于脑电图(EEG)的脑机接口(BCI)中的眨眼伪像。此眨眼校正算法(ABC)可在时域中直接校正信号,而无需额外的眼电图(EOG)电极。主要思想是通过将眨眼的振幅作为参数来自动适应眨眼的受试者间和受试者内变异性。简单的最小距离黎曼平均距离(MDRM)被用作分类算法。对三名受试者的初步结果显示,使用ABC可使平均分类准确度提高13.7%。

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