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Classification of prefrontal activity due to mental arithmetic and music imagery using hidden Markov models and frequency domain near-infrared spectroscopy

机译:使用隐马尔可夫模型和频域近红外光谱对心算和音乐图像引起的前额活动分类

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Near-infrared spectroscopy (NIRS) has recently been investigated as a non-invasive brain-computer interface (BCI). In particular, previous research has shown that NIRS signals recorded from the motor cortex during left- and right-hand imagery can be distinguished, providing a basis for a two-choice NIRS-BCI. In this study, we investigated the feasibility of an alternative two-choice NIRS-BCI paradigm based on the classification of prefrontal activity due to two cognitive tasks, specifically mental arithmetic and music imagery. Deploying a dual-wavelength frequency domain near-infrared spectrometer, we interrogated nine sites around the frontopolar locations (International 10-20 System) while ten able-bodied adults performed mental arithmetic and music imagery within a synchronous shape-matching paradigm. With the 18 filtered AC signals, we created task- and subject-specific maximum likelihood classifiers using hidden Markov models. Mental arithmetic and music imagery were classified with an average accuracy of 77.2% ± 7.0 across participants, with all participants significantly exceeding chance accuracies. The results suggest the potential of a two-choice NIRS-BCI based on cognitive rather than motor tasks.
机译:近红外光谱(NIRS)最近已被研究为一种非侵入性的脑机接口(BCI)。特别是,先前的研究表明,可以区分在左手和右手图像期间从运动皮层记录的NIRS信号,从而为二选NIRS-BCI提供了基础。在这项研究中,我们基于由于两个认知任务(特别是心理算术和音乐意象)引起的前额活动的分类,研究了另一种选择二项NIRS-BCI范式的可行性。部署双波长频域近红外光谱仪,我们询问了正极位置周围的九个位置(国际10-20系统),而十个身体健全的成年人则在同步形状匹配范例中进行了心理算术和音乐成像。利用18个滤波后的交流信号,我们使用隐藏的马尔可夫模型创建了针对任务和主题的最大似然分类器。所有参与者的心理算术和音乐图像分类的平均准确性为77.2%±7.0,所有参与者的准确率均大大超过了机会准确性。结果表明,基于认知而非运动任务的两选择式NIRS-BCI的潜力。

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  • 来源
    《Journal of neural engineering 》 |2010年第2期| p.026002.1-026002.9| 共9页
  • 作者单位

    Bloorview Research Institute, Bloorview Kids Rehab, Toronto, Ontario, Canada Institute of Biomaterials and Biomedical Engineering, University of Toronto, Toronto, Ontario, Canada;

    Bloorview Research Institute, Bloorview Kids Rehab, Toronto, Ontario, Canada Institute of Biomaterials and Biomedical Engineering, University of Toronto, Toronto, Ontario, Canada;

    Bloorview Research Institute, Bloorview Kids Rehab, Toronto, Ontario, Canada Institute of Biomaterials and Biomedical Engineering, University of Toronto, Toronto, Ontario, Canada;

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