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Combining the extremities on the basis of separation: a new approach to EEG/ERP source localization

机译:基于分离的基础上的极端:EEG / ERP源定位的新方法

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Current methods for the localization of EEG and event-related potentials (ERP) sources assume that sources are either discrete (dipole-like) or distributed. While both types of sources are likely to contribute significantly to EEG and ERP signals, each method adopts only one of these models and thus may localize the sources of other type incorrectly or not find them at all. Recently introduced Independent Component Analysis (ICA) and more general approach, Blind Source Separation (BSS), make possible the separation of signals from various brain and extra-brain (related to artifacts) sources and can be used as preprocessing technique before applying the localizing algorithms. We suggest using this preprocessing step for combining different localization methods. A brain source, if extracted correctly, can be analyzed separately from the other sources, and thus, the most appropriate localization technique can be chosen for each source. Distributed sources are likely to be localized more precisely without detailed separation but after BSS "cleaning" data from strong localized sources.
机译:eEG和事件相关潜力(ERP)源的本地化的当前方法假定该源是离散(偶极类似)或分布的。虽然这两种类型的来源都可能对脑电图和EG和ERP信号有显着贡献,但是每个方法只采用这些模型中的一个,因此可以不正确地定位其他类型的来源或根本不找到它们。最近引入的独立分量分析(ICA)和更一般的方法,盲源分离(BSS),可以从各种大脑和胃部(与伪影相关)的源分离,并可以用作预处理技术,然后才能在应用本地化之前算法。我们建议使用该预处理步骤组合不同的本地化方法。如果正确提取的话,脑源可以与其他来源分开分析,因此,可以为每个源选择最合适的定位技术。分布式源可能更精确地在没有详细分离的情况下更精确地定位,但在BSS“清洁”来自强大局部来源的数据之后。

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