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Coherence-based correntropy spectral density: A novel coherence measure for functional connectivity of EEG signals

机译:基于一致性的控制谱密度:EEG信号功能连通性的新颖相干度量

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摘要

Finding the interrelationship between EEG time series at both sensory and source levels during a mental task is helpful in understanding the corresponding neural functionality. Based on such connectivity measures, a functional brain connectivity network can be formed, which shows the relationship and the extent of dependency among the aforementioned time series. In order to evaluate the interdependency of EEG signals acquired from different electrodes, we proposed a new nonlinear connectivity index based on correntropy spectral density. Here, the correntropy function was defined as a sum of weighted positive definite kernels. Optimal weights were found by solving a quadratic optimization problem. In order to evaluate the proposed approach for determining the interrelationships, Henon map, two synthetically related simulated signals, and EEG signals (BCI competition IV data) were employed. The suggested coherence measure shows robustness to noise and high sensitivity to sudden changes in coupling strength. This measure is able to detect nonlinear as well as linear coupling of EEG signals. In general, the proposed method is more efficient than other methods like coherence and partial coherence method, is capable of showing the similarity between the two signals, and preserves the frequency characteristics of the system. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在心理任务期间发现eEG时间序列之间的相互关系是有助于了解相应的神经功能。基于这种连接措施,可以形成功能性脑连接网络,其示出了上述时间序列之间的关系和依赖程度。为了评估从不同电极获取的EEG信号的相互依存性,我们提出了一种基于控制谱密度的新的非线性连接指数。这里,正轮内函数被定义为加权正确定内核的总和。通过解决二次优化问题,发现了最佳权重。为了评估确定相互关系的方法,采用了Henon地图,两个合成相关的模拟信号和EEG信号(BCI竞争IV数据)。建议的相干措施表明对噪声和耦合强度突然变化的高灵敏度的鲁棒性。该措施能够检测IEG信号的非线性以及线性耦合。通常,所提出的方法比相干性和部分相干方法等其他方法更有效,能够示出两个信号之间的相似性,并保留系统的频率特性。 (c)2019年elestvier有限公司保留所有权利。

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