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Exploring Teachable Humans and Teachable Agents: Human Strategies Versus Agent Policies and the Basis of Expertise

机译:探索教育人和可教代理:人类战略与代理商政策和专业知识为基础

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In this research, we explore how expertise is shown in both humans and AI agents. Human experts follow sets of strategies to complete domain specific tasks while AI agents follow a policy. We compare machine generated policies to human strategies in two game domains, using these examples we show how human strategies can be seen in agents. We believe this work can help lead to a better understanding of human strategies and expertise, while also leading to improved human-centered machine learning approaches. Finally, we hypothesize how a continuous improvement system of humans teaching agents who then teach humans could be created in future intelligent tutoring systems.
机译:在这项研究中,我们探讨了人类和AI代理商的专业知识。人类专家遵循策略的策略,以完成域特定任务,而AI代理遵循策略。我们将机器生成的策略与人类战略进行了两种游戏域,使用这些示例我们展示了如何在代理商中看到人类的策略。我们相信这项工作有助于导致更好地了解人类战略和专业知识,同时也导致改善人以人为本的机器学习方法。最后,我们假设人类教学代理商的持续改进系统如何在未来的智能辅导系统中创造教导人类的教学代理商。

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