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首页> 外文期刊>International Journal of Innovation and Learning >Modelling second language learners for learning task recommendation
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Modelling second language learners for learning task recommendation

机译:为第二语言学习者建模以学习任务推荐

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摘要

How to recommend appropriate and effective learning tasks based on the characteristics of a second language learner is a vital question in the field of second language acquisition. In this research, we investigate the issue by dividing it into two sub-questions: how to model the characteristics of language learners as different learners may have varied expertise on and subjective preferences of many topics: and how to select learning tasks according to the constructed learner model. Research on the second sub-question has been widely conducted in domains such as recommender systems, and we focus on the first sub-question in this study from the perspective of how to model the preferred learning contexts of a learner in a non-intrusive manner. We conducted an experiment among eighty-two students, and the results showed that our proposed framework outperformed other systems as it provides significantly more effective and enjoyable word learning experience.
机译:在第二语言习得领域中,如何根据第二语言学习者的特征来推荐适当有效的学习任务是一个至关重要的问题。在这项研究中,我们将问题分为两个子问题:如何对语言学习者的特征进行建模,因为不同的学习者可能对许多主题具有不同的专业知识和主观偏好;以及如何根据构建的主题选择学习任务学习者模型。关于第二子问题的研究已在推荐系统等领域中广泛进行,我们从如何以非侵入性的方式对学习者的优选学习情境建模的角度,集中于本研究中的第一子问题。 。我们在82名学生中进行了一次实验,结果表明我们提出的框架优于其他系统,因为该框架可提供更为有效和令人愉悦的单词学习体验。

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