Frontal-occipital network alterations while viewing 2D & 3D movies: a source-level EEG and graph theory approach

IF 1.3 4区 医学 Q4 ENGINEERING, BIOMEDICAL Biomedical Engineering / Biomedizinische Technik Pub Date : 2022-05-16 DOI:10.1515/bmt-2021-0300
Minchang Yu, Shasha Xiao, Feng Tian, Yingjie Li
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引用次数: 2

Abstract

Abstract Many researchers have measured the differences in electroencephalography (EEG) while viewing 2D and 3D movies to uncover the neuromechanism underlying distinct viewing experiences. Using whole-brain network analyses of scalp EEG, our previous study reported that beta and gamma bands presented higher global efficiencies while viewing 3D movies. However, scalp EEG is influenced by volume conduction, not allowing inference from a neuroanatomy perspective; thus, source reconstruction techniques are recommended. This paper is the first to measure the differences in the frontal-occipital networks in EEG source space during 2D and 3D movie viewing. EEG recordings from 40 subjects were performed during 2D and 3D movie viewing. We constructed frontal-occipital networks of alpha, beta, and gamma bands in EEG source space and analyzed network efficiencies. We found that the beta band exhibited higher global efficiency in 3D movie viewing than in 2D movie viewing; however, the alpha global efficiency was not statistically significant. In addition, a support vector machine (SVM) classifier, taking functional connectivities as classification features, was built to identify whether the frontal-occipital networks contain patterns that could distinguish 2D and 3D movie viewing. Using the 6 most important functional connectivity features of the beta band, we obtained the best accuracy of 0.933. Our findings shed light on uncovering the neuromechanism underlying distinct experiences while viewing 2D and 3D movies.
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观看2D和3D电影时额枕网络的变化:一个源级脑电图和图论方法
许多研究者测量了观看2D和3D电影时脑电图(EEG)的差异,以揭示不同观看体验背后的神经机制。通过对头皮脑电图的全脑网络分析,我们之前的研究报告称,在观看3D电影时,β和γ波段表现出更高的整体效率。然而,头皮脑电图受体积传导的影响,不能从神经解剖学的角度进行推断;因此,建议使用源重构技术。本文首次测量了2D和3D电影观看过程中脑电源空间额枕网络的差异。40名受试者在观看2D和3D电影时进行脑电图记录。我们在脑电图源空间中构建了α、β和γ波段的额枕网络,并分析了网络效率。我们发现β带在3D电影观看中比在2D电影观看中表现出更高的全局效率;然而,α整体效率无统计学意义。此外,构建了以功能连通性为分类特征的支持向量机(SVM)分类器,用于识别额枕叶网络是否包含能够区分2D和3D电影观看的模式。利用beta波段的6个最重要的功能连通性特征,我们获得了0.933的最佳精度。我们的研究结果揭示了观看2D和3D电影时不同体验背后的神经机制。
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来源期刊
CiteScore
3.50
自引率
5.90%
发文量
58
审稿时长
2-3 weeks
期刊介绍: Biomedical Engineering / Biomedizinische Technik (BMT) is a high-quality forum for the exchange of knowledge in the fields of biomedical engineering, medical information technology and biotechnology/bioengineering. As an established journal with a tradition of more than 60 years, BMT addresses engineers, natural scientists, and clinicians working in research, industry, or clinical practice.
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