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面部身份处理的神经动力学:基于 EEG 的模式分析和图像重建的见解。

The Neural Dynamics of Facial Identity Processing: Insights from EEG-Based Pattern Analysis and Image Reconstruction.

机构信息

Department of Psychology, University of Toronto Scarborough, 1265 Military Trail, Toronto, Ontario M1C1A4, Canada.

出版信息

eNeuro. 2018 Feb 26;5(1). doi: 10.1523/ENEURO.0358-17.2018. eCollection 2018 Jan-Feb.

Abstract

Uncovering the neural dynamics of facial identity processing along with its representational basis outlines a major endeavor in the study of visual processing. To this end, here, we record human electroencephalography (EEG) data associated with viewing face stimuli; then, we exploit spatiotemporal EEG information to determine the neural correlates of facial identity representations and to reconstruct the appearance of the corresponding stimuli. Our findings indicate that multiple temporal intervals support: facial identity classification, face space estimation, visual feature extraction and image reconstruction. In particular, we note that both classification and reconstruction accuracy peak in the proximity of the N170 component. Further, aggregate data from a larger interval (50-650 ms after stimulus onset) support robust reconstruction results, consistent with the availability of distinct visual information over time. Thus, theoretically, our findings shed light on the time course of face processing while, methodologically, they demonstrate the feasibility of EEG-based image reconstruction.

摘要

揭示面部身份处理的神经动力学及其表示基础,是视觉处理研究中的主要任务。为此,我们在这里记录与观看面部刺激相关的人类脑电图 (EEG) 数据;然后,我们利用时空 EEG 信息来确定面部身份表示的神经相关性,并重建相应刺激的外观。我们的研究结果表明,多个时间间隔支持:面部身份分类、面部空间估计、视觉特征提取和图像重建。特别是,我们注意到分类和重建准确性都在 N170 成分附近达到峰值。此外,较大间隔(刺激后 50-650 毫秒)的聚合数据支持强大的重建结果,与随着时间的推移提供不同的视觉信息一致。因此,从理论上讲,我们的发现揭示了面部处理的时间过程,而从方法学上讲,它们证明了基于脑电图的图像重建的可行性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62c0/5829556/36b6ecd892c8/enu0011825310001.jpg

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