School of Automation, Hangzhou Dianzi University, Hangzhou 310018, China.
School of Automation, Hangzhou Dianzi University, Hangzhou 310018, China.
J Neurosci Methods. 2024 May;405:110098. doi: 10.1016/j.jneumeth.2024.110098. Epub 2024 Feb 28.
Cortico-muscular coherence (CMC) between the cerebral cortex and muscle activity is an effective tool for studying neural communication in the motor control system. To accurately evaluate the coherence between electroencephalogram (EEG) and electromyogram (EMG) signals, it is necessary to accurately calculate the time delay between physiological signals to ensure signal synchronization.
We proposed a new delay estimation method, named wavelet coherence time lag (WCTL) and the significant increase areas (SIA) index as a measure of the specific region enhancement effect of the magnitude squared coherence (MSC) image.
The grip strength level had a small effect on the information transmission time from the cortex to the muscles, while the transmission time from the cortex to different muscle channels was different for the same task. A positive correlation was found between the grip strength level and the SIA index on the β band of C3-B and the α and β bands of C3-FDS.
The WCTL method was found to accurately calculate the delay time even when the number of repeated segments was low in a simple motor control model, and the results were more accurate than the rate of voxels change (RVC) and CMC with time lag (CMCTL) methods.
The WCTL is an effective method for detecting the transmission time of information between the cortex and muscles, laying the foundation for future rehabilitation treatment for stroke patients.
大脑皮层与肌肉活动之间的皮质-肌肉相干性(CMC)是研究运动控制系统中神经通讯的有效工具。为了准确评估脑电图(EEG)和肌电图(EMG)信号之间的相干性,有必要准确计算生理信号之间的时滞,以确保信号同步。
我们提出了一种新的时滞估计方法,称为小波相干时滞(WCTL)和显著增加区域(SIA)指数,作为衡量幅度平方相干(MSC)图像特定区域增强效果的指标。
握力水平对大脑皮层到肌肉的信息传输时间影响较小,而对于相同任务,大脑皮层到不同肌肉通道的传输时间不同。在β波段的 C3-B 和α和β波段的 C3-FDS 上,握力水平与 SIA 指数呈正相关。
即使在简单的运动控制模型中重复段数较低的情况下,WCTL 方法也能准确计算时滞,结果比变化率(RVC)和带时滞的皮质-肌肉相干性(CMCTL)方法更准确。
WCTL 是检测大脑皮层和肌肉之间信息传输时间的有效方法,为未来脑卒中患者的康复治疗奠定了基础。