Recommendation Algorithm Based on Heterogeneous Information Network and Attention Mechanism
Li Li,
Xiangquan Gui,
Rui Lv
Abstract:Heterogeneous information networks (HINs) contain a rich network structure and semantic information, which makes them commonly used in recommendation systems. However, most of the existing HIN-based recommendation systems rely on meta-paths for information extraction, lack meta-path information supplements, and rarely learn complex structure information in heterogeneous graphs. To address these issues, we develop a novel recommendation algorithm that integrates the attention mechanism, meta-paths, and neighbor… Show more
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