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Automated artifact rejection algorithms harm P3 Speller brain-computer interface performance

机译:自动伪影抑制算法危害P3拼写脑 - 计算机接口性能

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摘要

Brain-Computer Interfaces (BCIs) have been used to restore communication and control to people with severe paralysis. However, noninvasive BCIs based on electroencephalogram (EEG) are particularly vulnerable to noise artifacts. These artifacts, including electro-oculogram (EOG), can be orders of magnitude larger than the signal to be detected. Many automated methods have been proposed to remove EOG and other artifacts from EEG recordings, most based on blind source separation. This work presents a performance comparison of ten different automated artifact removal methods. Unfortunately, all tested methods substantially and significantly reduced P3 Speller BCI performance, and all methods were more likely to reduce performance than increase it. The least harmful methods were titled SOBI, JADER, and EFICA, but even these methods caused an average of approximately ten percentage points drop in BCI accuracy. Possible mechanistic causes for this empirical performance reduction are proposed.
机译:脑电脑界面(BCI)已被用于恢复对严重瘫痪的人的沟通和控制。然而,基于脑电图(EEG)的非侵入性BCIS特别容易受到噪声伪影。这些伪像包括电力图(Eog),可以是大于要检测的信号的级别的级。已经提出了许多自动化方法来从EEG录像中删除EOG和其他工件,最基于盲源分离。这项工作提出了十种不同自动化工件拆卸方法的性能比较。不幸的是,所有测试方法都大大而显着降低了P3拼写BCI性能,并且所有方法都更有可能降低性能而不是增加它。最不有害的方法标题为Sobi,Jader和Efica,但即使这些方法也导致BCI精度平均下降约10个百分点。提出了这种经验性能降低的可能机械原因。

著录项

  • 来源
    《Brain-Computer Interfaces》 |2019年第4期|141-148|共8页
  • 作者单位

    Brain and Body Sensing (BBS) Lab Mike Wiegers Department of Electrical and Computer Engineering Kansas State University Manhattan KS USA;

    Brain and Body Sensing (BBS) Lab Mike Wiegers Department of Electrical and Computer Engineering Kansas State University Manhattan KS USA;

    Brain and Body Sensing (BBS) Lab Mike Wiegers Department of Electrical and Computer Engineering Kansas State University Manhattan KS USA;

    Brain and Body Sensing (BBS) Lab Mike Wiegers Department of Electrical and Computer Engineering Kansas State University Manhattan KS USA;

    Direct Brain Interface Lab Department of Physical Medicine and Rehabilitation and Department of Biomedical Engineering University of Michigan Ann Arbor Ml USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Brain-computer interfaces; P300 Speller; artifacts rejection; physiological signals; signal processing;

    机译:大脑 - 计算机接口;P300拼写;文物拒绝;生理信号;信号处理;
  • 入库时间 2022-08-18 21:58:16

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