Modeling Dynamic Missingness of Implicit Feedback for Recommendation

Menghan Wang, Mingming Gong, Xiaolin Zheng, Kun Zhang

Neural Information Processing Systems 

Collaborative filtering methods based on implicit feedback (e.g., purchase records and browsing history) are widely used in recommender systems. Compared to explicit feedback (e.g., 1-5 star ratings), implicit feedback is more abundant and accessible in real-world applications. However, the missing data of implicit feedback also brings two challenges.

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