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手紧握力执行和想象运动变化的微观状态相关计算与分析。

Calculation and Analysis of Microstate Related to Variation in Executed and Imagined Movement of Force of Hand Clenching.

机构信息

School of Information Engineering and Automation, Kunming University of Science and Technology, Kunming 650500, China.

出版信息

Comput Intell Neurosci. 2018 Aug 27;2018:9270685. doi: 10.1155/2018/9270685. eCollection 2018.

Abstract

OBJECTIVE

In order to investigate electroencephalogram (EEG) instantaneous activity states related to executed and imagined movement of force of hand clenching (grip force: 4 kg, 10 kg, and 16 kg), we utilized a microstate analysis in which the spatial topographic map of EEG behaves in a certain number of discrete and stable global brain states.

APPROACH

Twenty subjects participated in EEG collection; the global field power of EEG and its local maximum were calculated and then clustered using cross validation and statistics; the 4 parameters of each microstate (duration, occurrence, time coverage, and amplitude) were calculated from the clustering results and statistically analyzed by analysis of variance (ANOVA); finally, the relationship between the microstate and frequency band was analyzed.

MAIN RESULTS

The experimental results showed that all microstates related to executed and imagined grip force tasks were clustered into 3 microstate classes (A, B, and C); these microstates generally transitioned from A to B and then from B to C. With the increase of the target value of executed and imagined grip force, the duration and time coverage of microstate B gradually decreased, while these parameters of microstate C gradually increased. The occurrence times of microstate B and C related to executed grip force were significantly more than those related to imagined grip force; furthermore, the amplitudes of these 3 microstates related to executed grip force were significantly greater than those related to imagined grip force. The correlation coefficients between the microstates and the frequency bands indicated that the microstates were correlated to mu rhythm and beta frequency bands, which are consistent with event-related desynchronization/synchronization (ERD/ERS) phenomena of sensorimotor rhythm.

SIGNIFICANCE

It is expected that this microstate analysis may be used as a new method for observing EEG instantaneous activity patterns related to variation in executed and imagined grip force and also for extracting EEG features related to these tasks. This study may lay a foundation for the application of executed and imagined grip force training for rehabilitation of hand movement disorders in patients with stroke in the future.

摘要

目的

为了研究与执行和想象手紧握(握力:4kg、10kg 和 16kg)力相关的脑电图(EEG)瞬时活动状态,我们利用微状态分析,其中 EEG 的空间拓扑图表现为一定数量的离散和稳定的全脑状态。

方法

20 名受试者参与 EEG 采集;计算 EEG 的总电场功率及其局部最大值,然后使用交叉验证和统计学进行聚类;从聚类结果中计算每个微状态的 4 个参数(持续时间、出现次数、时间覆盖和幅度),并通过方差分析(ANOVA)进行统计分析;最后,分析微状态与频带的关系。

主要结果

实验结果表明,所有与执行和想象握力任务相关的微状态都被聚类为 3 个微状态类(A、B 和 C);这些微状态通常从 A 到 B 再从 B 到 C 过渡。随着执行和想象握力目标值的增加,微状态 B 的持续时间和时间覆盖逐渐减小,而微状态 C 的这些参数逐渐增加。与执行握力相关的微状态 B 和 C 的出现次数明显多于与想象握力相关的微状态;此外,与执行握力相关的这 3 个微状态的幅度明显大于与想象握力相关的微状态。微状态与频带之间的相关系数表明,微状态与 mu 节律和 beta 频带相关,与感觉运动节律的事件相关去同步/同步(ERD/ERS)现象一致。

意义

预计这种微状态分析可以作为一种新方法,用于观察与执行和想象握力变化相关的 EEG 瞬时活动模式,也可以提取与这些任务相关的 EEG 特征。本研究为未来脑卒中患者手部运动障碍的执行和想象握力训练的康复应用奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e3c/6129787/935a0aabd9ec/CIN2018-9270685.001.jpg

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