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Time domain measures of inter-channel EEG correlations: a comparison of linear nonparametric and nonlinear measures

机译:通道间脑电图相关性的时域测度:线性非参数和非线性测度的比较

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摘要

Correlations between ten-channel EEGs obtained from thirteen healthy adult participants were investigated. Signals were obtained in two behavioral states: eyes open no task and eyes closed no task. Four time domain measures were compared: Pearson product moment correlation, Spearman rank order correlation, Kendall rank order correlation and mutual information. The psychophysiological utility of each measure was assessed by determining its ability to discriminate between conditions. The sensitivity to epoch length was assessed by repeating calculations with 1, 2, 3, …, 8 s epochs. The robustness to noise was assessed by performing calculations with noise corrupted versions of the original signals (SNRs of 0, 5 and 10 dB). Three results were obtained in these calculations. First, mutual information effectively discriminated between states with less data. Pearson, Spearman and Kendall failed to discriminate between states with a 1 s epoch, while a statistically significant separation was obtained with mutual information. Second, at all epoch durations tested, the measure of between-state discrimination was greater for mutual information. Third, discrimination based on mutual information was more robust to noise. The limitations of this study are discussed. Further comparisons should be made with frequency domain measures, with measures constructed with embedded data and with the maximal information coefficient.
机译:调查了从十三个健康成人参与者获得的十通道脑电图之间的相关性。在两种行为状态下获得了信号:睁开眼睛没有任务,闭眼没有任务。比较了四个时域测度:Pearson乘积矩相关性,Spearman秩相关性,Kendall秩相关性和互信息。通过确定其区分状况的能力来评估每种措施的心理生理效用。通过重复计算1、2、3,…,8个历元来评估对历元长度的敏感性。通过对原始信号的噪声破坏版本(SNR为0、5和10 dB)进行计算来评估对噪声的鲁棒性。在这些计算中获得了三个结果。首先,相互信息有效地区分了数据较少的状态。皮尔逊(Pearson),斯皮尔曼(Spearman)和肯德尔(Kendall)未能以一个纪元来区分各州,而使用相互信息获得了具有统计学意义的分离。其次,在所测试的所有时期,对于相互信息而言,国家间歧视的度量都更大。第三,基于共同信息的辨别对噪声更有效。讨论了这项研究的局限性。应该使用频域度量,嵌入数据和最大信息系数构建的度量进行进一步比较。

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