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Automatic Artifact Removal from Electroencephalogram Data Based on A Priori Artifact Information

机译:基于先验的工件信息,自动从脑电图数据移除

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摘要

Electroencephalogram (EEG) is susceptible to various nonneural physiological artifacts. Automatic artifact removal from EEG data remains a key challenge for extracting relevant information from brain activities. To adapt to variable subjects and EEG acquisition environments, this paper presents an automatic online artifact removal method based on a priori artifact information. The combination of discrete wavelet transform and independent component analysis (ICA), wavelet-ICA, was utilized to separate artifact components. The artifact components were then automatically identified using a priori artifact information, which was acquired in advance. Subsequently, signal reconstruction without artifact components was performed to obtain artifact-free signals. The results showed that, using this automatic online artifact removal method, there were statistical significant improvements of the classification accuracies in both two experiments, namely, motor imagery and emotion recognition.
机译:脑电图(EEG)易于各种非造成的生理伪影。从EEG数据中删除自动伪影仍然是从大脑活动中提取相关信息的关键挑战。为了适应可变主题和脑电图采集环境,本文介绍了基于先验工件信息的自动在线工件删除方法。离散小波变换和独立分量分析(ICA),小波ICA的组合用于分离伪影组分。然后使用预先获得的先验工具信息自动识别工件组分。随后,执行没有伪影分子的信号重建以获得无伪像信号。结果表明,使用这种自动在线工件去除方法,两项实验中的分类精度统计显着改进,即电动机图像和情感识别。

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