基于稳态视觉诱发电位的辅助机械臂控制脑机接口设计

R. L. Kæseler, Kasper Leerskov, L. Struijk, K. Dremstrup, M. Jochumsen
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引用次数: 7

摘要

辅助机械臂(ARM)可以为四肢瘫痪患者提供独立性,提高生活质量。然而,要在没有任何运动功能的情况下将这种装置控制到令人满意的水平,需要一个非常高性能的脑机接口(BCI)。基于稳态视觉诱发电位(SSVEP)的脑机接口是表现最好的。因此,本研究探讨了7自由度ARM的全工作空间控制系统的设计。SSVEP信号是通过观察以特定频率和相位闪烁的视觉刺激而产生的。本研究通过对三种不同系统的离线测试,探讨了独特频率和相位的最佳组合,以提供16个目标的BCI。此外,开发了第四个系统来研究刺激监视器刷新率的影响。在两个实验对象上进行的实验表明,由四个独特的频率和16个独特的相位创建的16个目标BCI具有最佳性能。受试者1的最大估计ITR为235 bits/min,而受试者2达到140 bits/min。研究结果表明,产生16个目标的最佳SSVEP刺激是低频率和高独特相位。此外,研究结果表明,如果使用以刷新率采样的正弦信号调制刺激,则不需要考虑监视器的刷新率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing a brain computer interface for control of an assistive robotic manipulator using steady state visually evoked potentials
An assistive robotic manipulator (ARM) can provide independence and improve the quality of life for patients suffering from tetraplegia. However, to properly control such device to a satisfactory level without any motor functions requires a very high performing brain-computer interface (BCI). Steady-state visual evoked potentials (SSVEP) based BCI are among the best performing. Thus, this study investigates the design of a system for a full workspace control of a 7 degrees of freedom ARM. A SSVEP signal is elicited by observing a visual stimulus flickering at a specific frequency and phase. This study investigates the best combination of unique frequencies and phases to provide a 16-target BCI by testing three different systems off line. Furthermore, a fourth system is developed to investigate the impact of the stimulating monitor refresh rate. Experiments conducted on two subjects suggest that a 16-target BCI created by four unique frequencies and 16-unique phases provide the best performance. Subject 1 reaches a maximum estimated ITR of 235 bits/min while subject 2 reaches 140 bits/min. The findings suggest that the optimal SSVEP stimuli to generate 16 targets are a low number of frequencies and a high number of unique phases. Moreover, the findings do not suggest any need for considering the monitor refresh rate if stimuli are modulated using a sinusoidal signal sampled at the refresh rate.
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