Session-aware Linear Item-Item Models for Session-based Recommendation
Minjin Choi, Jinhong Kim, Joonseok Lee, Hyunjung Shim, Jongwuk Lee
摘要
Session-based recommendation aims at predicting the next item given a sequence of previous items consumed in the session, e.g., on e-commerce or multimedia streaming services. Specifically, session data exhibits some unique characteristics, i.e., session consistency and sequential dependency over items within the session, repeated item consumption, and session timeliness. In this paper, we propose simple-yet-effective linear models for considering the holistic aspects of the sessions. The comprehensive nature of our models helps improve the quality of session-based recommendation. More importantly, it provides a generalized framework for reflecting different perspectives of session data. Furthermore, since our models can be solved by closed-form solutions, they are highly scalable. Experimental results demonstrate that the proposed linear models show competitive or state-of-the-art performance in various metrics on several real-world datasets.
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引用它的顶会 Paper5
- Price DOES Matter!: Modeling Price and Interest Preferences in Session-based RecommendationXiaokun Zhang, Bo Xu, Liang Yang, Chenliang Li 等SIGIR 2022 · 被引用 76 次
- Linear Item-Item Models with Neural Knowledge for Session-based RecommendationMinjin Choi, Sunkyung Lee, Seongmin Park, Jongwuk LeeSIGIR 2025 · 被引用 3 次
- Representation Learning of Tangled Key-Value Sequence Data for Early ClassificationTao Duan, Junzhou Zhao, Shuo Zhang, Jing Tao 等ICDE 2024 · 被引用 1 次
- Why is Normalization Necessary for Linear Recommenders?Seongmin Park, Mincheol Yoon, Hye-young Kim, Jongwuk LeeSIGIR 2025 · 被引用 1 次
- Tail-Aware Data Augmentation for Long-Tail Sequential RecommendationYizhou Dang, Zhifu Wei, Minhan Huang, Lianbo Ma 等WWW 2026
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