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Topic-aware Intention Network for Explainable Recommendation with Knowledge Enhancement

delete2023-04-08
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PRE
AI
李启明 封面图
李启明 (Qiming Li)
张昭 (Zhao Zhang)
F
Fuzhen Zhuang
Y
Yongjun Xu
C
Chao Li *
DOI:10.1145/3579993delete
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摘要

摘要

En 中文
Recently, recommender systems based on knowledge graphs (KGs) have become a popular research direction. Graph neural network (GNN) is the key technology of KG-based recommendation systems. However, existing GNNs have a significant flaw: They cannot explicitly model users' intent in recommendations. Intent plays an essential role in users' behaviors. For example, users may first generate an intent to purchase a certain group of items and then select a specific item from the group based on their preferences. Therefore, explicitly modeling intent has a positive significance for improving recommendation performance and providing explanations for recommendations. In this article, we propose a new model called Topic-aware Intention Network (TIN) for explainable recommendations with KGs. TIN models user representations from both preference and intent views. Specifically, we design a relational attention graph neural network to selectively aggregate information in KG to learn user preferences, and we propose a knowledge-enhanced topic model to learn user intent, which is viewed as topics hidden in user behavior sequences. Finally, we obtain the user representation by fusing user preference and intent through an attention network. The experimental results show that our proposed model outperforms the state-of-the-art methods and can generate reasonable explanations for the recommendation results.
Keyword:
Knowledge graph
recommender system
topic model

期刊

ACM Transactions on Information Systems 封面图
ACM Transactions on Information Systems
IF:
9.1
论文数:
1.2K
被引数:
4.7K

机构

U
university of chinese academy of sciences, cas
学者数:
4.1W
论文数: 3.8W
被引数: 75
C
chinese academy of sciences
学者数:
56.7W
论文数: 45.0W
被引数: 704
引用论文

引用论文

DBpedia - A large-scale, multilingual knowledge base extracted from WikipediaDBpedia-从维基百科中提取的大规模多语言知识库
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errLehmann, Jens; Isele, Robert; Jakob, Max; Jentzsch, Anja; Kontokostas, Dimitris; Mendes, Pablo N.; Hellmann, Sebastian; Morsey, Mohamed; van Kleef, Patrick; Auer, Soeren; Bizer, Christian
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