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Learning teaching strategies in an adaptive and intelligent educational system through reinforcement learning

机译:通过强化学习在适应性和智能化的教育系统中学习教学策略

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摘要

One of the most important issues in Adaptive and Intelligent Educational Systems (AIES) is to define effective pedagogical policies for tutoring students according to their needs. This paper proposes to use Reinforcement Learning (RL) in the pedagogical module of an educational system so that the system learns automatically which is the best pedagogical policy for teaching students. One of the main characteristics of this approach is its ability to improve the pedagogical policy based only on acquired experience with other students with similar learning characteristics. In this paper we study the learning performance of the educational system through three important issues. Firstly, the learning convergence towards accurate pedagogical policies. Secondly, the role of exploration/exploitation strategies in the application of RL to AIES. Finally, a method for reducing the training phase of the AIES.
机译:自适应和智能教育系统(AIES)中最重要的问题之一是定义有效的教学策略,以根据学生的需求进行辅导。本文建议在教育系统的教学模块中使用强化学习(RL),以便系统自动学习,这是教学学生的最佳教学策略。这种方法的主要特征之一是它仅根据与具有类似学习特征的其他学生的学习经验来改进教学策略的能力。在本文中,我们通过三个重要问题来研究教育系统的学习绩效。首先,学习趋向于正确的教学政策。其次,探索/开发策略在将RL应用于AIES中的作用。最后,一种减少AIES训练阶段的方法。

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