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理解身份之间和内部的面部印象。

Understanding facial impressions between and within identities.

机构信息

Department of Psychology, University of York, UK.

Department of Psychology, University of York, UK.

出版信息

Cognition. 2019 Sep;190:184-198. doi: 10.1016/j.cognition.2019.04.027. Epub 2019 May 16.

Abstract

A paradoxical finding from recent studies of face perception is that observers are error-prone and inconsistent when judging the identity of unfamiliar faces, but nevertheless reasonably consistent when judging traits. Our aim is to understand this difference. Using everyday ambient images of faces, we show that visual image statistics can predict observers' consensual impressions of trustworthiness, attractiveness and dominance, which represent key dimensions of evaluation in leading theoretical accounts of trait judgement. In Study 1, image statistics derived from ambient images of multiple face identities were able to account for 51% of the variance in consensual impressions of entirely novel ambient images. Shape properties were more effective predictors than surface properties, but a combination of both achieved the best results. In Study 2 and Study 3, statistics derived from multiple images of a particular face achieved the best generalisation to new images of that face, but there was nonetheless significant generalisation between images of the faces of different individuals. Hence, whereas idiosyncratic variability across different images of the same face is sufficient to cause substantial problems in judging the identities of unfamiliar faces, there are consistencies between faces which are sufficient to support (to some extent) consensual trait judgements. Furthermore, much of this consistency can be captured in simple operational models based on image statistics.

摘要

最近对面部感知的研究中出现了一个矛盾的发现,即观察者在判断不熟悉的面孔的身份时容易出错且不一致,但在判断特征时却相当一致。我们的目的是理解这种差异。使用日常环境中的面部图像,我们表明视觉图像统计信息可以预测观察者对可信赖性、吸引力和支配力的一致印象,这些印象代表了特质判断的主要理论解释中的关键评估维度。在研究 1 中,从多个面孔身份的环境图像中得出的图像统计信息能够解释完全新颖的环境图像的一致印象中 51%的方差。形状特征比表面特征更有效,但两者的结合效果最佳。在研究 2 和研究 3 中,从特定面孔的多张图像中得出的统计信息可以很好地推广到该面孔的新图像,但不同个体面孔的图像之间仍然存在显著的推广。因此,虽然同一面孔的不同图像之间的特质变化足以导致判断不熟悉面孔的身份时出现严重问题,但不同面孔之间存在足够的一致性,可以支持(在某种程度上)一致的特质判断。此外,这种一致性的很大一部分可以通过基于图像统计信息的简单操作模型来捕捉。

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