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Inducing Effective Pedagogical Strategies Using Learning Context Features

机译:利用学习情境特征诱导有效的教学策略

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Effective pedagogical strategies are important for e-learning environments. While it is assumed that an effective learning environment should craft and adapt its actions to the user's needs, it is often not clear how to do so. In this paper, we used a Natural Language Tutoring System named Cordillera and applied Reinforcement Learning (RL) to induce pedagogical strategies directly from pre-existing human user interaction corpora. 50 features were explored to model the learning context. Of these features, domain-oriented and system performance features were the most influential while user performance and background features were rarely selected. The induced pedagogical strategies were then evaluated on real users and results were compared with pre-existing human user interaction corpora. Overall, our results show that RL is a feasible approach to induce effective, adaptive pedagogical strategies by using a relatively small training corpus. Moreover, we believe that our approach can be used to develop other adaptive and personalized learning environments.
机译:有效的教学策略对于电子学习环境非常重要。尽管人们认为有效的学习环境应根据用户的需求制定和调整其行为,但通常不清楚如何做到这一点。在本文中,我们使用了名为Cordillera的自然语言辅导系统,并应用了强化学习(RL)来直接从现有的人类用户交互语料库中引入教学策略。探索了50种功能来对学习环境进行建模。在这些功能中,面向领域和系统性能功能最具影响力,而很少选择用户性能和背景功能。然后,在实际用户上评估诱导的教学策略,并将结果与​​现有的人类用户交互语料库进行比较。总体而言,我们的结果表明,RL是通过使用相对较小的训练语料库来诱导有效的自适应教学策略的可行方法。此外,我们相信我们的方法可用于开发其他自适应和个性化的学习环境。

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