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Automatic Understanding of Affective and Social Signals by Multimodal Mimicry Recognition

机译:多式化模拟识别自动理解情感和社会信号

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Human mimicry is one of the important behavioral cues displayed during social interaction that inform us about the interlocutors' interpersonal states and attitudes. For example, the absence of mimicry is usually associated with negative attitudes. A system capable of analyzing and understanding mimicry behavior could enhance social interaction, both in human-human and human-machine interaction, by informing the interlocutors about each other's interpersonal attitudes and feelings of affiliation. Hence, our research focus is the investigation of mimicry in social human-human and human-machine interactions with the aim to help improve the quality of these interactions. In particular, we aim to develop automatic multimodal mimicry analyzers, to enhance affect recognition and social signal understanding systems through mimicry analysis, and to implement mimicry behavior in Embodied Conversational Agents. This paper surveys and discusses the recent work we have carried out regarding these aims. It is meant to serve as an ultimate goal and a guide for determining recommendations for the development of automatic mimicry analyzers to facilitate affective computing and social signal processing.
机译:人体模仿是社交互动期间显示的重要行为线索之一,以告知我们对讲者的人际关系和态度。例如,没有模拟通常与负态度相关。能够分析和理解Mimicry行为的系统可以通过通知对话者对彼此的人际态度和隶属感的信息来提高人类和人机互动的社会互动。因此,我们的研究重点是对社会人类和人机互动中的模仿的调查,旨在帮助提高这些相互作用的质量。特别是,我们的目标是开发自动多媒体模拟分析仪,通过模拟分析来增强影响识别和社会信号理解系统,并在体现的会话代理中实施模仿行为。本文调查并讨论了我们对这些目标进行的最近的工作。它旨在作为最终目标,并确定用于开发自动模拟分析仪的建议,以便于促进情感计算和社会信号处理。

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