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Proposal of a cloud-based agent for social human-robot interaction that learns from the human experimenters

机译:向人类实验者学习的基于云的社交人机交互代理的提案

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The field of human-robot interaction usually uses an experimental technique called Wizard of Oz where a human operator (the experimenter or a confederate) remotely controls the behavior of the system. Per contra, if robots are autonomous during the interaction, they have a limited pre-programmed set of behaviors. We propose to use reinforcement learning for adaptation of autonomous robotic behavior during the interaction and to benefit from the advantages that brings the field of cloud computing. The overall goal is to design robotic behaviors less boring and more effective and thus, to prepare robots for a long-term human-robot interaction.
机译:人机交互领域通常使用一种称为“绿野仙踪”的实验技术,其中,操作员(实验者或同盟者)可以远程控制系统的行为。与此相反,如果机器人在交互过程中是自主的,则它们具有有限的预编程行为集。我们建议在交互过程中使用强化学习来适应自主机器人行为,并从带来云计算领域的优势中受益。总体目标是设计一种无聊且更有效的机器人行为,从而为长期的人机交互做好准备。

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