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个性化课程推荐系统融合知识图谱与协同过滤技术。

Personalized Course Recommendation System Fusing with Knowledge Graph and Collaborative Filtering.

机构信息

School of Business, Shandong Jianzhu University, Jinan 250101, China.

School of Computer Science and Technology, Shandong Jianzhu University, Jinan 250101, China.

出版信息

Comput Intell Neurosci. 2021 Sep 25;2021:9590502. doi: 10.1155/2021/9590502. eCollection 2021.

Abstract

Personalized courses recommendation technology is one of the hotspots in online education field. A good recommendation algorithm can stimulate learners' enthusiasm and give full play to different learners' learning personality. At present, the popular collaborative filtering algorithm ignores the semantic relationship between recommendation items, resulting in unsatisfactory recommendation results. In this paper, an algorithm combining knowledge graph and collaborative filtering is proposed. Firstly, the knowledge graph representation learning method is used to embed the semantic information of the items into a low-dimensional semantic space; then, the semantic similarity between the recommended items is calculated, and then, this item semantic information is fused into the collaborative filtering recommendation algorithm. This algorithm increases the performance of recommendation at the semantic level. The results show that the proposed algorithm can effectively recommend courses for learners and has higher values on precision, recall, and F1 than the traditional recommendation algorithm.

摘要

个性化课程推荐技术是在线教育领域的热点之一。一个好的推荐算法可以激发学习者的积极性,充分发挥不同学习者的学习个性。目前,流行的协同过滤算法忽略了推荐项之间的语义关系,导致推荐效果不理想。本文提出了一种结合知识图和协同过滤的算法。首先,使用知识图表示学习方法将项目的语义信息嵌入到低维语义空间中;然后,计算推荐项目之间的语义相似度,然后将该项目的语义信息融合到协同过滤推荐算法中。该算法在语义层面上提高了推荐的性能。结果表明,所提出的算法可以有效地为学习者推荐课程,并且在精度、召回率和 F1 值方面均高于传统推荐算法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b57/8487836/2a9babdfb4c2/CIN2021-9590502.001.jpg

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