首页> 外文会议>2018 13th IEEE International Conference on Automatic Face amp; Gesture Recognition >Say CHEESE: Common Human Emotional Expression Set Encoder and Its Application to Analyze Deceptive Communication
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Say CHEESE: Common Human Emotional Expression Set Encoder and Its Application to Analyze Deceptive Communication

机译:说奶酪:普通人类情感表达集编码器及其在分析欺骗性交流中的应用

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In this paper we introduce the Common Human Emotional Expression Set Encoder (CHEESE) framework for objectively determining which, if any, subsets of the facial action units associated with smiling are well represented by a small finite set of clusters according to an information theoretic metric. Smile-related AUs (6,7,10,12,14) in over 1.3M frames of facial expressions from 151 pairs of individuals playing a communication game involving deception were analyzed with CHEESE. The combination of AU6 (cheek raiser) and AU12 (lip corner puller) are shown to cluster well into five different types of expression. Liars showed high intensity AU6 and AU12 more often compared to honest speakers. Additionally, interrogators were found to express a higher frequency of low intensity AU6 with high intensity AU12 (i.e. polite smiles) when they were being lied to, suggesting that deception analysis should be done in consideration of both the message sender's and the receiver's facial expressions.
机译:在本文中,我们介绍了一种通用的人类情感表达集编码器(CHEESE)框架,用于根据信息理论度量客观地确定与微笑相关的面部动作单元的子集(如果有的话)由一小组有限的群集很好地表示。使用CHEESE分析了来自151对玩欺骗性沟通游戏的个人的超过130万个面部表情中与微笑相关的aus(6、7、10、12、14)。显示AU6(颊部提升器)和AU12(唇角拔出器)的组合可以很好地聚类为五种不同类型的表达。与诚实的说话人相比,说谎者更经常表现出高强度的AU6和AU12。此外,发现讯问者在被撒谎时会表现出较高频率的低强度AU6和高强度AU12(即礼貌的笑容),这表明欺骗分析应同时考虑消息发送者和接收者的面部表情。

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