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CORE: Simple and Effective Session-based Recommendation within Consistent Representation Space

Yupeng Hou, Binbin Hu, Zhiqiang Zhang, Wayne Xin Zhao

2022Proceedings of the 45th International ACM SIGIR Conference on Research and Development in Information Retrieval106 citationsDOI

Abstract

Session-based Recommendation (SBR) refers to the task of predicting the next item based on short-term user behaviors within an anonymous session. However, session embedding learned by a non-linear encoder is usually not in the same representation space as item embeddings, resulting in the inconsistent prediction issue while recommending items. To address this issue, we propose a simple and effective framework named CORE, which can unify the representation space for both the encoding and decoding processes. Firstly, we design a representation-consistent encoder that takes the linear combination of input item embeddings as session embedding, guaranteeing that sessions and items are in the same representation space. Besides, we propose a robust distance measuring method to prevent overfitting of embeddings in the consistent representation space. Extensive experiments conducted on five public real-world datasets demonstrate the effectiveness and efficiency of the proposed method. The code is available at: https://github.com/RUCAIBox/CORE.

Topics & Concepts

Session (web analytics)Computer scienceRepresentation (politics)OverfittingEmbeddingEncoderDecoding methodsEncoding (memory)Core (optical fiber)Theoretical computer scienceCode (set theory)Simple (philosophy)Space (punctuation)Task (project management)Machine learningInformation retrievalArtificial intelligenceAlgorithmProgramming languagePhilosophyPoliticsEpistemologyLawEconomicsTelecommunicationsOperating systemPolitical scienceSet (abstract data type)ManagementArtificial neural networkWorld Wide WebRecommender Systems and TechniquesMachine Learning in HealthcareTopic Modeling
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