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Automatic classification of ICA components from infant EEG using MARA

机译:使用MARA自动分类来自婴儿EEG的ICA组件

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Automated systems for identifying and removing non-neural ICA components are growing in popularity among EEG researchers of adult populations. Infant EEG data differs in many ways from adult EEG data, but there exists almost no specific system for automated classification of source components from paediatric populations. Here, we adapt one of the most popular systems for adult ICA component classification for use with infant EEG data. Our adapted classifier significantly outperformed the original adult classifier on samples of naturalistic free play EEG data recorded from 10 to 12-month-old infants, achieving agreement rates with the manual classification of over 75% across two validation studies (n?=?44, n?=?25). Additionally, we examined both classifiers’ ability to remove stereotyped ocular artifact from a basic visual processing ERP dataset compared to manual ICA data cleaning. Here, the new classifier performed on level with expert manual cleaning and was again significantly better than the adult classifier at removing artifact whilst retaining a greater amount of genuine neural signal operationalised through comparing ERP activations in time and space. Our new system (iMARA) offers developmental EEG researchers a flexible tool for automatic identification and removal of artifactual ICA components.
机译:用于识别和消除非神经ICA组件的自动化系统在成人群体的脑电图研究人员中越来越受欢迎。婴儿EEG数据与成人EEG数据的许多方式不同,但是几乎没有用于自动分类来自儿科人群的自动分类。在这里,我们适应成人ICA组件分类最受欢迎的系统之一,以便与婴儿EEG数据一起使用。我们的调整分类器在从10至12个月大婴儿记录的自然主义自由播放EEG数据样本上显着优于原始成人分类器,在两个验证研究中实现了手动分类超过75%的协议率(n?= 44, n?=?25)。此外,我们检查了分类器的能力,与手动ICA数据清洁相比,他们的分类器可以从基本的视觉处理ERP数据集中取出刻板型眼伪影。这里,新的分类器对专家手动清洁进行电平进行,并且再次比成人分类器更好地消除伪像,同时通过比较时间和空间中的ERP激活来保留更多的真正神经信号。我们的新系统(IMARA)提供了发展EEG研究人员,可自动识别和拆除艺术ICA组件的灵活工具。

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