Music recommendation algorithms based on knowledge graph and multi-task feature learning
Xinqiao Liu,
Zhisheng Yang,
Jinyong Cheng
Abstract:During music recommendation scenarios, sparsity and cold start problems are inevitable. Auxiliary information has been utilized in music recommendation algorithms to provide users with more accurate music recommendation results. This study proposes an end-to-end framework, MMSS_MKR, that uses a knowledge graph as a source of auxiliary information to serve the information obtained from it to the recommendation module. The framework exploits Cross & Compression Units to bridge the knowledge graph embedding t… Show more
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