Explicitly Exploiting Implicit User and Item Relations in Graph Convolutional Network (GCN) for Recommendation
Bowen Xiao,
Deng Chen
Abstract:Most existing collaborative filtering-based recommender systems rely solely on available user–item interactions for user and item representation learning. Their performance often suffers significantly when interactions are sparse, as limited user and item interactions are insufficient for learning robust representations. To address this issue, recent research has explored additional information between users and items by leveraging the user–item bipartite graph. However, these methods have not fully exploited … Show more
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