Using brain connectivity measure of EEG synchrostates for discriminating typical and Autism Spectrum Disorder

Wasifa Jamal, Saptarshi Das, K. Maharatna, Doga Kuyucu, F. Sicca, L. Billeci, F. Apicella, F. Muratori
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引用次数: 10

Abstract

In this paper we utilized the concept of stable phase synchronization topography - synchrostates - over the scalp derived from EEG recording for formulating brain connectivity network in Autism Spectrum Disorder (ASD) and typically-growing children. A synchronization index is adapted for forming the edges of the connectivity graph capturing the stability of each of the synchrostates. Such network is formed for 11 ASD and 12 control group children. Comparative analyses of these networks using graph theoretic measures show that children with autism have a different modularity of such networks from typical children. This result could pave the way to a new modality for possible identification of ASD from non-invasively recorded EEG data.
用脑连通性测量脑电图同步状态鉴别典型和自闭症谱系障碍
在本文中,我们利用脑电图记录的稳定相位同步地形-同步状态-在头皮上的概念来制定自闭症谱系障碍(ASD)和典型成长儿童的大脑连接网络。同步索引适用于形成捕获每个同步状态稳定性的连接图的边缘。在11名ASD儿童和12名对照组儿童中形成了这样的网络。用图论方法对这些网络进行比较分析,结果表明自闭症儿童的网络模块性与正常儿童不同。这一结果可能为从无创记录的脑电图数据中可能识别ASD的新模式铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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