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Automatic Interpretation of Affective Facial Expressions in the Context of Interpersonal Interaction

机译:人际交往中情感面部表情的自动解释

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This paper proposes a method for interpretation of the emotions detected in facial expressions in the context of the events that cause them. The method was developed to analyze the video recordings of facial expressions depicted during a collaborative game played as a part of the Mars-500 experiment. In this experiment, six astronauts were isolated for 520 days in a space station to simulate a flight to Mars. Seven time-dependent components of facial expressions were extracted from the video recordings of the experiment. To interpret these dynamic components, we proposed a mathematical model of emotional events. Genetic programming was used to find the locations, types, and intensities of the emotional events as well as the way the recorded facial expressions represented reactions to them. By classification of different statistical properties of the data, we found that there are significant relations between the facial expressions of different crew members and a memory effect between the collective emotional states of the crew members. The model of emotional events was validated on previously unseen video recordings of the astronauts. We demonstrated that both genetic search and optimization of the parameters improve the accuracy of the proposed model. This method is a step toward automating the analysis of affective expressions in terms of the cognitive appraisal theory of emotion, which relies on the dependence of the expressed emotion on the causing event.
机译:本文提出了一种方法来解释在面部表情中引起情绪的事件中检测到的情绪。开发该方法的目的是分析在Mars-500实验的一部分进行的协作游戏中描绘的面部表情的视频记录。在该实验中,六名宇航员在一个空间站中被隔离了520天,以模拟飞往火星的飞行。从实验的录像中提取了面部表情的七个随时间变化的分量。为了解释这些动态成分,我们提出了情感事件的数学模型。遗传程序被用来发现情绪事件的位置,类型和强度,以及所记录的面部表情表示对它们的反应的方式。通过对数据的不同统计属性进行分类,我们发现不同机组成员的面部表情与机组成员集体情感状态之间的记忆效应之间存在显着关系。情感事件的模型在以前看不见的宇航员视频记录中得到了验证。我们证明了遗传搜索和参数优化均可提高所提出模型的准确性。该方法是根据情感的认知评估理论自动进行情感表达分析的步骤,情感评估理论依赖于所表达的情感对引起事件的依赖。

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