2023
DOI: 10.1108/dta-07-2022-0290
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Multi-relation global context learning for session-based recommendation

Abstract: PurposeSession-based recommendation aims to predict the user's next preference based on the user's recent activities. Although most existing studies consider the global characteristics of items, they only learn the global characteristics of items based on a single connection relationship, which cannot fully capture the complex transformation relationship between items. We believe that multiple relationships between items in learning sessions can improve the performance of session recommendation tasks and the s… Show more

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