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Comparing ICA-based and Single-Trial Topographic ERP Analyses

机译:比较基于ICA和单次试用的地形ERP分析

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Single-trial analysis of human electroencephalography (EEG) has been recently proposed for better understanding the contribution of individual subjects to a group-analyis effect as well as for investigating single-subject mechanisms. Independent Component Analysis (ICA) has been repeatedly applied to concatenated single-trial responses and at a single-subject level in order to extract those components that resemble activities of interest. More recently we have proposed a single-trial method based on topographic maps that determines which voltage configurations are reliably observed at the event-related potential (ERP) level taking advantage of repetitions across trials. Here, we investigated the correspondence between the maps obtained by ICA versus the topographies that we obtained by the single-trial clustering algorithm that best explained the variance of the ERP. To do this, we used exemplar data provided from the EEGLAB website that are based on a dataset from a visual target detection task. We show there to be robust correpondence both at the level of the activation time courses and at the level of voltage configurations of a subset of relevant maps. We additionally show the estimated inverse solution (based on low-resolution electromagnetic tomography) of two corresponding maps occurring at approximately 300 ms post-stimulus onset, as estimated by the two aforementioned approaches. The spatial distribution of the estimated sources significantly correlated and had in common a right parietal activation within Brodmann’s Area (BA) 40. Despite their differences in terms of theoretical bases, the consistency between the results of these two approaches shows that their underlying assumptions are indeed compatible.
机译:最近提出了对人类脑电图(EEG)进行单次试验分析,以更好地理解单个受试者对小组分析效果的贡献以及研究单受试者机制的研究。独立成分分析(ICA)已被重复应用到级联的单次试验响应中,并在单个受试者水平上进行提取,以提取类似于感兴趣活动的那些成分。最近,我们已经提出了一种基于地形图的单次试验方法,该方法可以利用多次试验的重复性来确定在事件相关电位(ERP)级别上可靠观察到的电压配置。在这里,我们调查了由ICA获得的地图与通过单次试验聚类算法获得的地形之间的对应关系,该拓扑可以最好地解释ERP的变化。为此,我们使用了EEGLAB网站提供的示例数据,这些数据基于视觉目标检测任务的数据集。我们显示在激活时间过程的水平和相关图的子集的电压配置的水平上都存在鲁棒的对应关系。我们还显示了两个相应图的估计逆解(基于低分辨率电磁层析成像),这两个相对图发生在刺激发生后大约300毫秒,这是由上述两种方法估计的。估计来源的空间分布显着相关,并且在Brodmann区域(BA)40内共有右顶壁激活。尽管它们在理论基础上有所不同,但这两种方法的结果之间的一致性表明,它们的基本假设确实是兼容。

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