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Single-Trial Decoding of Motion Direction During Visual Attention From Local Field Potential Signals

机译:来自局部场势信号的视觉关注期间运动方向的单反试验解码

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摘要

Brain-Computer Interface (BCI) based on Local Field Potential (LFP) has recently been developed to restore communication or behavioral functions. LFP provides comprehensive information, due to its stability, robustness, and reach frequency content within the cognitive process. It has been demonstrated that spatial attention can be decoded from brain activity in the visual cortical areas. However, whether motion direction can be decoded from the LFP signal in the primate visual cortex remains uninvestigated, as well as how decoding performance may be influenced by spatial attention. In this paper, these issues were examined by recording LFP from the middle temporal area (MT) of macaque, employing machine learning algorithms. The animal was trained to report a brief direction change in a target stimulus which moved in various directions during a visual attention task. It was found that the LFP-gamma power was able to provide significant information to reliably decode motion direction, compared with other frequency bands, on a single-trial basis. Moreover, the results show that spatial attention leads to enhancements in motion direction discrimination performance. The highest decoding performance was achieved in the high-gamma frequencies (60–120Hz) when targets were presented inside the receptive field in opposite directions. Using a feature selection approach, performance was improved by optimally selecting features where the highest level of participation was observed in the gamma-band. Generally, the results suggest that in the MT area, LFP signals exhibit appreciable information about visual features like motion direction, which could thus be utilized as a control signal for cognitive BCI systems.
机译:最近开发了基于本地现场潜力(LFP)的脑电脑接口(BCI)以恢复通信或行为功能。 LFP由于其稳定性,鲁棒性和认知过程中的频率内容提供了全面的信息。已经证明,可以从视觉皮质区域中的大脑活动解码空间注意。然而,是否可以从灵长类动物的LFP信号中解码运动方向,在灵长类的视觉皮层中仍然未取消,以及如何对空间注意影响解码性能。在本文中,通过从短尾猿中间时间区域(MT)的LFP,采用机器学习算法来检查这些问题。培训动物以报告在视觉注意事项期间在各个方向上移动的目标刺激中的简短方向变化。结果发现,与其他频带相比,LFP-Gamma功率能够提供可靠地解码运动方向,与其他频带相比单一试验。此外,结果表明,空间注意力导致运动方向辨别性能的增强。当在相反方向上的接收场内呈现目标时,在高伽马频率(60-120Hz)中实现了最高的解码性能。使用特征选择方法,通过最佳选择在伽马带中观察到最高水平的参与度的特征来提高性能。通常,结果表明,在MT区域中,LFP信号表现出关于运动方向等视觉特征的可观信息,从而可以用作认知BCI系统的控制信号。

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