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Large Scale Evaluation of Learning Flow

机译:学习流的大规模评估

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摘要

Personalized and adaptive learning is the fastest growing field in e-learning. Adaptive e-learning systems are typically well suited for real-world heterogeneous users, which exhibit different levels of motivation and knowledge. Furthermore, students learn best when they are in flow, i.e. when the level of difficulty is perfectly adjusted to their individual abilities. A personalized, adaptive, and intelligent learning environment can provide each student with this learning experience. In this paper, we present a large-scale evaluation of learning in flow within an adaptive and personalized system, the Adaptemy system. The paper presents the results of two studies: an objective study with 7,614 Irish secondary school students in math classes assessing their learning flow, and a subjective study with 80 students assessing their perceived learning experience. The results from the objective study show that 88% of the students worked within the flow channel. In the subjective study, 70% of students reported a perceived improvement in their math skills after the exercise studying with the adaptive and intelligent learning system.
机译:个性化和自适应学习是电子学习中增长最快的领域。自适应电子学习系统通常非常适合现实世界中的异构用户,这些用户表现出不同程度的动机和知识。此外,学生在学习过程中,即在难度水平完全根据自己的能力进行调整时,将学得最好。个性化,自适应和智能的学习环境可以为每个学生提供这种学习体验。在本文中,我们提出了对适应性和个性化系统Adaptemy系统中的流学习的大规模评估。本文介绍了两项研究的结果:一项针对7,614名爱尔兰中学生在数学课上进行客观评估以评估其学习流程的客观研究,以及针对80名学生进行其所感知的学习经历进行的一项主观研究。客观研究的结果表明,有88%的学生在流动渠道内工作。在主观研究中,70%的学生报告说在使用自适应和智能学习系统进行运动学习后,他们的数学技能有了明显的提高。

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