Verbal conversation system for a socially embedded robot partner using emotional model

Jinseok Woo, János Botzheim, N. Kubota
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引用次数: 27

Abstract

This paper proposes a verbal conversation system for a robot partner using emotional model. The robot partner calculates its emotional state based on the utterance sentence of the human. Then, the robot partner can control its utterance sentence based on the emotional parameters. As a results, the robot partner can interact with human emotionally naturally. In this paper, we explain the three parts of the conversation system's structure. The first part is time dependent selection based on the database contents. In this mode, the robot tells timely important contents, for example schedules. The mood parameter is used to change the sentence in this mode. The second component is utterance flow learning to select the utterance contents. The robot selects utterance sentence based on the utterance flow information and using its mood value as well. The third component is sentence building based on predefined rules. The rules include personality model of the robot partner. In this paper, we use emotional parameters based on the human sentences to make a natural communication system. Finally, we show experimental results of the proposed method, and conclude the paper. The future research for improving the robot partner system is discussed as well.
基于情感模型的嵌入式机器人伴侣语言会话系统
本文提出了一种基于情感模型的机器人伴侣语言对话系统。机器人伙伴根据人类的话语句子计算自己的情绪状态。然后,机器人伙伴可以根据情感参数控制自己的话语句子。因此,机器人伴侣可以自然地与人类进行情感互动。在本文中,我们解释了会话系统的结构的三个部分。第一部分是基于数据库内容的时变选择。在这种模式下,机器人会及时告知重要的内容,例如日程安排。在这种模式下,mood参数用于改变句子。第二部分是话语流学习,选择话语内容。机器人根据话语流信息并利用其情绪值来选择话语句子。第三部分是基于预定义规则的造句。规则包括机器人搭档的性格模型。在本文中,我们使用基于人类句子的情感参数来构建一个自然的交流系统。最后给出了该方法的实验结果,并对本文进行了总结。最后,对今后改进机器人伙伴系统的研究进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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