结合知识图谱和兴趣扩散机制的学习资源个性化推荐技术研究

Lei Min
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引用次数: 0

摘要

在互联网技术逐渐成熟的背景下,学习资源的获取变得越来越方便。然而,随之而来的“信息爆炸”使学习者很容易迷失在学习资料的海洋中,也很难找到自己真正需要的资源。面对这一现实,探索个性化推荐技术的实施与优化迫在眉睫。为了使个性化推荐技术在教育领域发挥更大的作用,本文研究了一种结合知识图和兴趣扩散机制的学习资源推荐算法,并对推荐系统进行了结构分析。由于所提出的技术考虑了推荐对象的领域特征,体现了技术与教育的结合,对学习资源个性化推荐和个性化学习的进一步研究具有一定的参考意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on Personalized Recommendation Technology for Learning Resources Combining Knowledge Graph and Interest Diffusion Mechanism
Under the background of Internet technology maturing gradually, the acquisition of learning resources has become increasingly convenient. However, the accompanying “Information Explosion” makes it easy for learners to get lost in the ocean of learning materials and also make it difficult to find the resources they really need. In the face of this reality, it is urgent to explore the implementation and optimization of personalized recommendation technology. In order to make the personalized recommendation technology play a greater role in the field of education, this paper studies a learning resource recommendation algorithm which combines knowledge graph and interest diffusion mechanism, and makes a structure analysis of the recommendation system. Because the proposed technology considers the domain features of the recommended object, it reflects the combination of technology and education, and is of certain reference significance for further research on personalized recommendation of learning resources and personalized learning.
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