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面孔知觉的时空动态。

Spatio-temporal dynamics of face perception.

机构信息

Department of Psychology and Logopedics, University of Helsinki, Finland.

Department of Psychology and Logopedics, University of Helsinki, Finland.

出版信息

Neuroimage. 2020 Apr 1;209:116531. doi: 10.1016/j.neuroimage.2020.116531. Epub 2020 Jan 10.

Abstract

The temporal and spatial neural processing of faces has been investigated rigorously, but few studies have unified these dimensions to reveal the spatio-temporal dynamics postulated by the models of face processing. We used support vector machine decoding and representational similarity analysis to combine information from different locations (fMRI), time windows (EEG), and theoretical models. By correlating representational dissimilarity matrices (RDMs) derived from multiple pairwise classifications of neural responses to different facial expressions (neutral, happy, fearful, angry), we found early EEG time windows (starting around 130 ​ms) to match fMRI data from primary visual cortex (V1), and later time windows (starting around 190 ​ms) to match data from lateral occipital, fusiform face complex, and temporal-parietal-occipital junction (TPOJ). According to model comparisons, the EEG classification results were based more on low-level visual features than expression intensities or categories. In fMRI, the model comparisons revealed change along the processing hierarchy, from low-level visual feature coding in V1 to coding of intensity of expressions in the right TPOJ. The results highlight the importance of a multimodal approach for understanding the functional roles of different brain regions in face processing.

摘要

我们使用支持向量机解码和表示相似性分析,将来自不同位置(fMRI)、时间窗口(EEG)和理论模型的信息结合起来。通过关联源自对不同面部表情(中性、快乐、恐惧、愤怒)的神经反应的多个两两分类的表示差异矩阵(RDM),我们发现早期 EEG 时间窗口(大约从 130 毫秒开始)与初级视觉皮层(V1)的 fMRI 数据匹配,而较晚的时间窗口(大约从 190 毫秒开始)与外侧枕叶、梭状回面孔区和颞顶枕联合区(TPOJ)的数据匹配。根据模型比较,EEG 分类结果更多地基于低水平视觉特征,而不是表情强度或类别。在 fMRI 中,模型比较揭示了沿着处理层次结构的变化,从 V1 中的低水平视觉特征编码到右侧 TPOJ 中表情强度的编码。研究结果强调了采用多模态方法来理解不同大脑区域在面孔处理中的功能作用的重要性。

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