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Meta-optimized Joint Generative and Contrastive Learning for Sequential Recommendation

By Yongjing Hao and others
Sequential Recommendation (SR) has received increasing attention due to its ability to capture user dynamic preferences. Recently, Contrastive Learning (CL) provides an effective approach for sequential recommendation by learning invariance from different views of an input. However, most existing data or model augmentation methods may destroy semantic sequential interaction characteristics... Show more
October 21, 2023
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Meta-optimized Joint Generative and Contrastive Learning for Sequential Recommendation
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