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Social Signal Processing: Understanding social interactions through nonverbal behavior analysis

机译:社会信号处理:通过非语言行为分析了解社会互动

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This paper introduces social signal processing (SSP), the domain aimed at automatic understanding of social interactions through analysis of nonverbal behavior. The core idea of SSP is that nonverbal behavior is machine detectable evidence of social signals, the relational attitudes exchanged between interacting individuals. Social signals include (dis-)agreement, empathy, hostility, and any other attitude towards others that is expressed not only by words but by nonverbal behaviors such as facial expression and body posture as well. Thus, nonverbal behavior analysis is used as a key to automatic understanding of social interactions. This paper presents not only a survey of the related literature and the main concepts underlying SSP, but also an illustrative example of how such concepts are applied to the analysis of conflicts in competitive discussions.
机译:本文介绍了社会信号处理(SSP),域通过分析非语言行为来自动理解社会交互。 SSP的核心思想是非语言行为是机器可检测的社会信号证据,互动个人之间交换的关系态度。社会信号包括(DIS-)协议,同理心,敌意以及其他不仅由单词表示的其他态度,而是由面部表情和身体姿势等非语言行为表示。因此,非语言行为分析被用作自动理解社交互动的关键。本文不仅提出了对相关文献的调查和SSP的主要概念,也是这种概念如何应用于竞争性讨论中冲突的分析的说明性示例。

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