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全球范围内,有 16 种面部表情出现在相似的情境中。

Sixteen facial expressions occur in similar contexts worldwide.

机构信息

Department of Psychology, University of California Berkeley, Berkeley, CA, USA.

Google Research, Mountain View, CA, USA.

出版信息

Nature. 2021 Jan;589(7841):251-257. doi: 10.1038/s41586-020-3037-7. Epub 2020 Dec 16.

Abstract

Understanding the degree to which human facial expressions co-vary with specific social contexts across cultures is central to the theory that emotions enable adaptive responses to important challenges and opportunities. Concrete evidence linking social context to specific facial expressions is sparse and is largely based on survey-based approaches, which are often constrained by language and small sample sizes. Here, by applying machine-learning methods to real-world, dynamic behaviour, we ascertain whether naturalistic social contexts (for example, weddings or sporting competitions) are associated with specific facial expressions across different cultures. In two experiments using deep neural networks, we examined the extent to which 16 types of facial expression occurred systematically in thousands of contexts in 6 million videos from 144 countries. We found that each kind of facial expression had distinct associations with a set of contexts that were 70% preserved across 12 world regions. Consistent with these associations, regions varied in how frequently different facial expressions were produced as a function of which contexts were most salient. Our results reveal fine-grained patterns in human facial expressions that are preserved across the modern world.

摘要

理解人类面部表情在跨文化背景下与特定社会情境的相关程度,是情绪能够对重要挑战和机遇做出适应性反应这一理论的核心。将社会情境与特定面部表情联系起来的具体证据很少,并且主要基于基于调查的方法,这些方法往往受到语言和小样本量的限制。在这里,我们通过应用机器学习方法来研究真实的、动态的行为,以确定自然的社会情境(例如婚礼或体育竞赛)是否与不同文化中的特定面部表情有关。在两个使用深度神经网络的实验中,我们研究了在来自 144 个国家的 600 万段视频中的数千个情境中,16 种面部表情出现的系统程度。我们发现,每种面部表情都与一组情境有独特的关联,而这些关联在 12 个世界区域中有 70%是被保留下来的。与这些关联一致的是,不同的地区在特定情境最突出时,会以不同的频率产生不同的面部表情。我们的结果揭示了人类面部表情在现代世界中保存下来的细微模式。

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