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Three-Dimensional Brain–Computer Interface Control Through Simultaneous Overt Spatial Attentional and Motor Imagery Tasks

机译:通过同时公开的空间注意和运动图像任务进行三维脑机接口控制

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Objective: While noninvasive electroenceph-alography (EEG) based brain-computer interfacing (BCI) has been successfully demonstrated in two-dimensional (2-D) control tasks, little work has been published regarding its extension to practical three-dimensional (3-D) control. Methods: In this study, we developed a new BCI approach for 3-D control by combining a novel form of endogenous visuospatial attentional modulation, defined as overt spatial attention (OSA), and motor imagery (MI). Results: OSA modulation was shown to provide comparable control to conventional MI modulation in both 1-D and 2-D tasks. Furthermore, this paper provides evidence for the functional independence of traditional MI and OSA, as well as an investigation into the simultaneous use of both. Using this newly proposed BCI paradigm, 16 participants successfully completed a 3-D eight-target control task. Nine of these subjects further demonstrated robust 3-D control in a 12-target task, significantly outperforming the information transfer rate achieved in the 1-D and 2-D control tasks (29.7 ± 1.6 b/min). Conclusion: These results strongly support the hypothesis that noninvasive EEG-based BCI can provide robust 3-D control through endogenous neural modulation in broader populations with limited training. Significance: Through the combination of the two strategies (MI and OSA), a substantial portion of the recruited subjects were capable of robustly controlling a virtual cursor in 3-D space. The proposed novel approach could broaden the dimensionality of BCI control and shorten the training time.
机译:目标:虽然已成功地在二维(2-D)控制任务中证明了基于非侵入式脑电图(EEG)的脑机接口(BCI),但有关将其扩展到实际的三维(3- D)控制。方法:在这项研究中,我们通过结合一种新型形式的内源性视觉空间注意力调制(定义为明显的空间注意力(OSA)和运动图像(MI)),开发了一种用于3-D控制的BCI新方法。结果:在1D和2D任务中,显示出OSA调制可提供与常规MI调制相当的控制。此外,本文提供了传统MI和OSA在功能上的独立性的证据,以及对同时使用两者的研究。使用此新提出的BCI范例,16名参与者成功完成了3-D八目标控制任务。这些对象中的9个进一步证明了在12个目标任务中的强大的3-D控制,大大优于在1-D和2-D控制任务中实现的信息传输速率(29.7±1.6 b / min)。结论:这些结果强有力地支持了以下假设,即基于无创EEG的BCI可以通过训练受限的更广泛人群通过内源性神经调节来提供强大的3-D控制。启示:通过两种策略(MI和OSA)的结合,大部分被招募者能够在3-D空间中稳健地控制虚拟光标。所提出的新方法可以拓宽BCI控制的范围,并缩短训练时间。

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