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Context-Aware Automated Analysis and Annotation of Social Human-Agent Interactions

机译:社会人与人之间互动的情境感知自动分析和注释

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The outcome of interpersonal interactions depends not only on the contents that we communicate verbally, but also on nonverbal social signals. Because a lack of social skills is a common problem for a significant number of people, serious games and other training environments have recently become the focus of research. In this work, we present NovA (Nonverbal behavior Analyzer), a system that analyzes and facilitates the interpretation of social signals automatically in a bidirectional interaction with a conversational agent. It records data of interactions, detects relevant social cues, and creates descriptive statistics for the recorded data with respect to the agent's behavior and the context of the situation. This enhances the possibilities for researchers to automatically label corpora of human-agent interactions and to give users feedback on strengths and weaknesses of their social behavior.
机译:人际互动的结果不仅取决于我们口头交流的内容,还取决于非语言的社会信号。由于缺乏社交技能是许多人的普遍问题,因此严肃的游戏和其他培训环境最近已成为研究的重点。在这项工作中,我们介绍了NovA(非语言行为分析器),该系统可以在与对话代理进行双向交互时自动分析和促进社交信号的解释。它记录交互的数据,检测相关的社交线索,并为记录的数据创建有关代理人的行为和情况的描述性统计数据。这为研究人员提供了自动标记人与人之间互动的语料库并向用户提供有关其社会行为的优缺点的反馈的可能性。

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