标题: 禅坐和休息脑电波的小波变异性之主成分分析
Principal component analysis of wavelet variances of Chan-meditation and resting EEG
作者: 邱伟勋
Ciou, Wei-Syun
罗佩祯
Lo, Pei-Chen
电控工程研究所
关键字: 脑电波;主成分分析;禅坐;EEG;PCA;Chan-meditation
公开日期: 2012
摘要: 本论文以小波系数变异数的估算和针对变异数矩阵的主成分分析,试图探讨脑电波中各个部位的高频成分。脑电波讯号分别从两组的自愿者录制。实验组与控制组分别是八位有禅作经验的修行者和八位健康的受测者。首先我们先将总长两分钟的脑电波分段,每段长一秒,在同一段时间区间里,使用最大重复离散小波转换(Maximal Overlap Discrete Wavelet Transform)来求出30个电极的脑电波的小波系数,之后再个别估算小波系数的变异数。对于每个电极,可以从七段对应于不同的脑电波频段的区间求出七个变异数。于是每段一秒的脑电波可以用这七组变异数组成的特征向量来表示。利用这七组变异数去代表原本的一秒长度讯号,我们会建构出三十乘以七的矩阵,针对这个矩阵去执行主成分分析求出每个电极讯号针对第一个主成分的映射值。利用不同的变异数以及第一主成分的大脑映射可以提供我们辨认脑电波不同频段的空间聚焦性。
在这篇论文中,会将预分析的脑波讯号,以每段一秒执行上述分析,之后再针对每一个电极,将取完绝对值的第一主成分映射值作平均并比较。
实验/控制组受测者被要求在心智压力测试以及禅坐/休息的实验流程。本论文中,根据邻近的电极将人的脑区分为前脑(Frontal)、后脑(Posterior)、右脑(Right temporal)、左脑(Left temporal)、中脑(Central)。我们主要会针对前心算雨后心算的脑波作分析比较。研究结果发现,对于控制组受测者,中间经过一段长时间的放松休息,对于脑中高频成分的变化并没有显着的影响。对实验组而言,做完禅坐之后,脑中的高频成分的变化会比控制组还要明显。
This thesis is aimed to investigate the high-frequency components in EEG signals by estimating the variance of wavelet coefficients and analyzing the principle components of variance matrix. EEG’s were recorded from two groups of volunteers. Experimental and control group involved respectively eight experienced Chan-Meditation practitioners and eight healthy control subjects within the same age range. First we decomposed the 2-minute EEG signals into one-second epochs. For each epoch, Maximal Overlap Discrete Wavelet Transform(MODWT)was employed to evaluate the wavelet coefficients and then estimate the variance of wavelet coefficients for all 30 channels. For each channel, seven variances were computed for seven wavelet scales corresponding to different EEG rhythms. Accordingly, each one-second epoch can be represented by a feature vector composed of 7 variances. Then, for the 30-channel EEGs, we constructed a 30-by-7 matrix and applied PCA (Principle Component Analysis) to obtain the mapping of the first principle component(PC1). Brain mappings of different variances and PC1 allow us to identify the spatial focalization of particular EEG rhythms.
In this study, we analyzed one-second epochs of EEG. After analyzing the whole signal, average mapping of PC1 was compared.
Brain spatio-spectral characteristics of experimental/control volunteers under mental stress and meditation/rest were explored by dividing the brain cortex into five regions of local neural networks, frontal (F), parietal (P), right-temporal (R), left-temporal (L) and central (C) regions, defined by five clusters of nearby EEG channels. We focused on analyzing EEG of pre-mental-stress-test session and post-mental-stress-test session and compared the results. For control group, difference of the high-frequency components between these two sessions is not significant. For experimental group, after Chan-meditation practice, variation of the high-frequency components is more significant than control group.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079812613
http://hdl.handle.net/11536/46967
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