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Understanding and Predicting Bonding in Conversations Using Thin Slices of Facial Expressions and Body Language

机译:使用面部表情和肢体语言薄片了解并预测对话中的联系

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This paper investigates how an intelligent agent could be designed to both predict whether it is bonding with its user, and convey appropriate facial expression and body language responses to foster bonding. Video and Kinect recordings are collected from a series of naturalistic conversations, and a reliable measure of bonding is adapted and verified. A qualitative and quantitative analysis is conducted to determine the non-verbal cues that characterize both high and low bonding conversations. We then train a deep neural network classifier using one minute segments of facial expression and body language data, and show that it is able to accurately predict bonding in novel conversations.
机译:本文研究了如何设计智能代理,以预测智能代理是否与用户建立了联系,并传达适当的面部表情和肢体语言反应以促进联系。从一系列自然对话中收集了视频和Kinect录音,并采用并验证了一种可靠的结合方式。进行定性和定量分析,以确定表征高和低键对话的非语言线索。然后,我们使用一分钟的面部表情和肢体语言数据训练深度神经网络分类器,并证明它能够准确预测新对话中的联系。

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