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Enhanced performance by a hybrid NIRS-EEG brain computer interface

机译:通过混合NIRS-EEG脑计算机接口增强性能

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摘要

Noninvasive Brain Computer Interfaces (BCI) have been promoted to be used for neuroprosthetics. However, reports on applications with electroencephalography (EEG) show a demand for a better accuracy and stability. Here we investigate whether near-infrared spectroscopy (NIRS) can be used to enhance the EEG approach. In our study both methods were applied simultaneously in a real-time Sensory Motor Rhythm (SMR)-based BCI paradigm, involving executed movements as well as motor imagery. We tested how the classification of NIRS data can complement ongoing real-time EEG classification. Our results show that simultaneous measurements of NIRS and EEG can significantly improve the classification accuracy of motor imagery in over 90% of considered subjects and increases performance by 5% on average (p < 0:01). However, the long time delay of the hemodynamic response may hinder an overall increase of bit-rates. Furthermore we find that EEG and NIRS complement each other in terms of information content and are thus a viable multimodal imaging technique, suitable for BCI.
机译:非侵入性脑计算机接口(BCI)已被推广用于神经假体。但是,有关脑电图(EEG)的应用的报告表明,需要更好的准确性和稳定性。在这里,我们调查是否可以使用近红外光谱(NIRS)来增强EEG方法。在我们的研究中,两种方法同时应用于基于实时感觉运动节律(SMR)的BCI范例,涉及执行的动作以及运动图像。我们测试了NIRS数据的分类如何补充正在进行的实时EEG分类。我们的结果表明,同时测量NIRS和EEG可以显着提高90%以上的被测对象的运动图像分类准确性,并且平均可以提高5%的表现(p <0:01)。但是,血液动力学反应的长时间延迟可能会阻碍比特率的整体提高。此外,我们发现脑电图和近红外光谱在信息内容上是互补的,因此是一种可行的多峰成像技术,适用于BCI。

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