Gong Anmin, Liu Jianping, Chen Si, Fu Yunfa
a School of Science , Engineering University of Chinese People's Armed Police Force , Xi'an , China.
b School of Automation and Information Engineering , Kunming University of Science and Technology , China.
J Mot Behav. 2018 May-Jun;50(3):254-267. doi: 10.1080/00222895.2017.1327417. Epub 2017 Aug 16.
To study the physiologic mechanism of the brain during different motor imagery (MI) tasks, the authors employed a method of brain-network modeling based on time-frequency cross mutual information obtained from 4-class (left hand, right hand, feet, and tongue) MI tasks recorded as brain-computer interface (BCI) electroencephalography data. The authors explored the brain network revealed by these MI tasks using statistical analysis and the analysis of topologic characteristics, and observed significant differences in the reaction level, reaction time, and activated target during 4-class MI tasks. There was a great difference in the reaction level between the execution and resting states during different tasks: the reaction level of the left-hand MI task was the greatest, followed by that of the right-hand, feet, and tongue MI tasks. The reaction time required to perform the tasks also differed: during the left-hand and right-hand MI tasks, the brain networks of subjects reacted promptly and strongly, but there was a delay during the feet and tongue MI task. Statistical analysis and the analysis of network topology revealed the target regions of the brain network during different MI processes. In conclusion, our findings suggest a new way to explain the neural mechanism behind MI.
为研究大脑在不同运动想象(MI)任务期间的生理机制,作者采用了一种基于时频交叉互信息的脑网络建模方法,该时频交叉互信息取自作为脑机接口(BCI)脑电图数据记录的4类(左手、右手、脚和舌头)MI任务。作者运用统计分析和拓扑特征分析,探究了这些MI任务所揭示的脑网络,并观察到4类MI任务在反应水平、反应时间和激活靶点方面存在显著差异。不同任务期间,执行状态和静息状态之间的反应水平存在很大差异:左手MI任务的反应水平最大,其次是右手、脚和舌头MI任务。执行任务所需的反应时间也有所不同:在左手和右手MI任务期间,受试者的脑网络反应迅速且强烈,但在脚和舌头MI任务期间存在延迟。统计分析和网络拓扑分析揭示了不同MI过程中脑网络的目标区域。总之,我们的研究结果为解释MI背后的神经机制提供了一种新方法。