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首页> 外文期刊>Journal of Advanced Computatioanl Intelligence and Intelligent Informatics >Adapting Multi-Robot Behavior to Communication Atmosphere in Humans-Robots Interaction Using Fuzzy Production Rule Based Friend-Q Learning
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Adapting Multi-Robot Behavior to Communication Atmosphere in Humans-Robots Interaction Using Fuzzy Production Rule Based Friend-Q Learning

机译:使用基于模糊生产规则的Friend-Q学习使多机器人行为适应人机交互中的交流气氛

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摘要

A behavior adaptation mechanism in humans-robots interaction is proposed to adjust robots' behavior to communication atmosphere, where fuzzy production rule based friend-Q learning (FPRFQ) is introduced. It aims to shorten the response time of robots and decrease the social distance between humans and robots to realize the smooth communication of robots and humans. Experiments on robots/humans interaction are performed in a virtual communication atmosphere environment. Results show that robots adapt well by saving 44 and 482 learning steps compared to that by friend-Q learning (FQ) and independent learning (IL), respectively; additionally, the distance between human-generated atmosphere and robot-generated atmosphere is 3 times and 10 times shorter than the FQ and the IL, respectively. The proposed behavior adaptation mechanism is also applied to robots' eye movement in the developing humans-robots interaction system, called mascot robot system, and basic experimental results are shown in home party scenario with five eye robots and four humans.
机译:提出了一种人机交互中的行为适应机制,以调整机器人的行为以适应交流环境,并引入了基于模糊生产规则的FriendQ学习方法。它旨在缩短机器人的响应时间,缩短人与机器人之间的社交距离,以实现机器人与人之间的流畅交流。在虚拟通信环境下执行机器人/人机交互实验。结果表明,与之相比,机器人可以节省44和482个学习步骤,而与之相比,FQ和独立学习的机器人都具有更好的适应性。此外,人类产生的气氛和机器人产生的气氛之间的距离分别比FQ和IL短3倍和10倍。所提出的行为适应机制也被应用于正在发展的人机交互系统(称为吉祥物机器人系统)中的机器人眼动,并在五人机器人和四人机器人的家庭聚会场景中展示了基本的实验结果。

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