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用于评估微笑真实性的面部动作动力学。

Dynamics of facial actions for assessing smile genuineness.

机构信息

Faculty of Automatic Control, Electronics and Computer Science, Silesian University of Technology, Gliwice, Poland.

出版信息

PLoS One. 2021 Jan 5;16(1):e0244647. doi: 10.1371/journal.pone.0244647. eCollection 2021.

Abstract

Applying computer vision techniques to distinguish between spontaneous and posed smiles is an active research topic of affective computing. Although there have been many works published addressing this problem and a couple of excellent benchmark databases created, the existing state-of-the-art approaches do not exploit the action units defined within the Facial Action Coding System that has become a standard in facial expression analysis. In this work, we explore the possibilities of extracting discriminative features directly from the dynamics of facial action units to differentiate between genuine and posed smiles. We report the results of our experimental study which shows that the proposed features offer competitive performance to those based on facial landmark analysis and on textural descriptors extracted from spatial-temporal blocks. We make these features publicly available for the UvA-NEMO and BBC databases, which will allow other researchers to further improve the classification scores, while preserving the interpretation capabilities attributed to the use of facial action units. Moreover, we have developed a new technique for identifying the smile phases, which is robust against the noise and allows for continuous analysis of facial videos.

摘要

将计算机视觉技术应用于区分自然微笑和刻意微笑是情感计算的一个活跃研究课题。尽管已经有许多针对该问题的相关工作发表,并创建了一些优秀的基准数据库,但现有的最先进方法并没有利用在面部表情分析中已成为标准的面部动作编码系统所定义的动作单元。在这项工作中,我们探索了直接从面部动作单元的动力学中提取判别特征的可能性,以区分真实微笑和刻意微笑。我们报告了我们的实验研究结果,表明所提出的特征在性能上可与基于面部地标分析和从时空块中提取的纹理描述符的特征相媲美。我们为 UvA-NEMO 和 BBC 数据库提供了这些特征,这将允许其他研究人员进一步提高分类分数,同时保留归因于使用面部动作单元的解释能力。此外,我们还开发了一种新的识别微笑阶段的技术,该技术对噪声具有鲁棒性,并允许对面部视频进行连续分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e25a/7785114/7b13f67d71d0/pone.0244647.g001.jpg

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