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Learning path combination recommendation based on the learning networks

机译:基于学习网络的学习路径组合推荐

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摘要

Discovering useful hidden learning behavior pattern from learning data for online learning platform is valuable in education technology. Studies on learning path recommendation to recommend an appropriate resource for different users are particularly important for the development of advanced online education. However, it may suffer from low recommendation quality for beginners or learner with low participation. In order to improve the recommendation quality, a learning path combination recommendation method based on the learning network (LPCRLN) is proposed. In LPCRLN, it introduces complex network technology. Based on the characteristics of courses and learners, the course network and learner network, respectively, are constructed, and then learners are divided into three types. Finally, the recommendation is made in different scenarios according to the learner's learning records. In this study, a series of experiments have been carried out. By comparisons, experimental results indicate that our proposed method is able to make sound recommendations on appropriate courses for different types of learners with significant improvement in terms of accuracy and efficiency.
机译:从在线学习平台的学习数据中发现有用的隐藏学习行为模式在教育技术中是有价值的。学习路径推荐为不同用户推荐适当资源的研究对于开发高级在线教育尤为重要。然而,它可能会遭受低于参与的初学者或学习者的低推荐质量。为了提高推荐质量,提出了一种基于学习网络(LPCRLN)的学习路径组合推荐方法。在LPCRLN中,它引入了复杂的网络技术。基于课程和学习者的特征,分别构建了课程网络和学习者网络,然后学习者分为三种类型。最后,根据学习者的学习记录,在不同的场景中提出了推荐。在这项研究中,已经进行了一系列实验。通过比较,实验结果表明,我们的建议方法能够对不同类型学习者的适当课程进行合理的建议,在准确性和效率方面具有显着改善。

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