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Computational Analysis of Smile Weight Distribution across the Face for Accurate Distinction between Genuine and Posed Smiles

机译:面部笑容权重分布的计算分析,可准确区分真实笑容和真实笑容

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In this paper, we report the results of our recent research into the understanding of the exact distribution of a smile across the face, especially the distinction in the weight distribution of a smile between a genuine and a posed smile. To do this, we have developed a computational framework for the analysis of the dynamic motion of various parts of the face during a facial expression, in particular, for the smile expression. The heart of our dynamic smile analysis framework is the use of optical flow intensity variation across the face during a smile. This can be utilised to efficiently map the dynamic motion of individual regions of the face such as the mouth, cheeks and areas around the eyes. Thus, through our computational framework, we infer the exact distribution of weights of the smile across the face. Further, through the utilisation of two publicly available datasets, namely the CK+ dataset with 83 subjects expressing posed smiles and the MUG dataset with 35 subjects expressing genuine smiles, we show there is a far greater activity or weight distribution around the regions of the eyes in the case of a genuine smile.
机译:在本文中,我们报告了我们最近对了解笑容在脸上的确切分布的理解的研究结果,尤其是对真实笑容和摆姿势笑容在体重分布方面的区别。为此,我们开发了一种计算框架,用于分析面部表情(尤其是笑脸表情)期间脸部各个部位的动态运动。我们动态微笑分析框架的核心是在微笑过程中使用整个脸部的光流强度变化。这可用于有效地绘制脸部各个区域(例如嘴巴,脸颊和眼睛周围区域)的动态运动。因此,通过我们的计算框架,我们可以推断出笑容在脸上的权重的确切分布。此外,通过利用两个可公开获得的数据集,即CK +数据集(含83个对象构成的笑容)和MUG数据集(含35个对象的表达真实的笑容),我们发现在眼睛周围区域存在更大的活动或体重分布。真正微笑的情况下。

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