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Measuring the Coupling Direction between Neural Oscillations with Weighted Symbolic Transfer Entropy

机译:用加权符号转移熵测量神经振荡之间的耦合方向

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摘要

Neural oscillations reflect rhythmic fluctuations in the synchronization of neuronal populations and play a significant role in neural processing. To further understand the dynamic interactions between different regions in the brain, it is necessary to estimate the coupling direction between neural oscillations. Here, we developed a novel method, termed weighted symbolic transfer entropy (WSTE), that combines symbolic transfer entropy (STE) and weighted probability distribution to measure the directionality between two neuronal populations. The traditional STE ignores the degree of difference between the amplitude values of a time series. In our proposed WSTE method, this information is picked up by utilizing a weighted probability distribution. The simulation analysis shows that the WSTE method can effectively estimate the coupling direction between two neural oscillations. In comparison with STE, the new method is more sensitive to the coupling strength and is more robust against noise. When applied to epileptic electrocorticography data, a significant coupling direction from the anterior nucleus of thalamus (ANT) to the seizure onset zone (SOZ) was detected during seizures. Considering the superiorities of the WSTE method, it is greatly advantageous to measure the coupling direction between neural oscillations and consequently characterize the information flow between different brain regions.
机译:神经振荡反映了神经元种群同步中的节奏波动,并在神经处理中发挥重要作用。为了进一步了解大脑中不同区域之间的动态相互作用,有必要估计神经振荡之间的耦合方向。这里,我们开发了一种新的方法,称为加权符号转移熵(WSTE),其结合了符号传输熵(STE)和加权概率分布,以测量两个神经元群之间的方向性。传统的Ste忽略了时间序列的幅度值之间的差异程度。在我们提出的WSTE方法中,通过利用加权概率分布来拾取该信息。仿真分析表明,WSTE方法可以有效地估计两个神经振荡之间的耦合方向。与STE相比,新方法对耦合强度更敏感,并且对噪声更加稳健。当施加到癫痫电灼数据时,在癫痫发作期间检测到从丘脑(蚂蚁)到癫痫发作区(SOZ)的显着偶联方向。考虑到WSTE方法的优势,大大有利的是测量神经振荡之间的耦合方向,从而表征不同脑区之间的信息流。

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