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LATE POSITIVE EVENT-RELATED POTENTIALS ENHANCEMENT THROUGH INDEPENDENT COMPONENT ANALYSIS CLUSTERING

机译:通过独立分量分析聚类增强了迟到的积极事件相关的潜力

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This paper presents a method to evaluate residual dependencies between sources estimated by ICA to be used in a hierarchical clustering procedure. As a proximity measure a mutual information-based metric is employed. The properties of each group of components are evaluated at each level of the hierarchical tree by two indices that aim at assessing both cluster tightness and physiological reliability through a template matching process. These two indices are used in three different approaches to find the most suitable combination to explore the hierarchical structure of the clustering. This method is aimed at enhancing late positive event-related brain potentials elicited by emotional picture stimuli. Such critical brain events are produced by presenting a subject with emotionally arousing images with respect to neutral ones. Exploiting the modularity of the spatial distribution of late EEG components, ICA can be employed to separate out their contribution, that is then investigated in an automatic ad objective manner by the clustering procedure.
机译:本文介绍了一种评估ICA估计的源之间的残差依赖性,以便在分层聚类过程中使用。作为接近度量,采用了相互信息的度量。通过两个指标在分层树的每个级别评估每组组件的属性,其目的是通过模板匹配过程评估群集密封性和生理可靠性。这两个指数用于三种不同的方法,以找到最合适的组合来探索聚类的分层结构。这种方法旨在加强由情感图像刺激引发的晚期积极事件相关的脑潜力。通过呈现具有情绪上的图像的主体来产生这种关键的脑事件。利用后期EEG组件的空间分布的模块化,ICA可以用于分离它们的贡献,然后通过聚类程序以自动广告客观方式调查。

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