Search Results for author: Shenzheng Zhang

Found 4 papers, 2 papers with code

Deep Mutual Learning across Task Towers for Effective Multi-Task Recommender Learning

no code implementations19 Sep 2023 Yi Ren, Ying Du, Bin Wang, Shenzheng Zhang

Recommender systems usually leverage multi-task learning methods to simultaneously optimize several objectives because of the multi-faceted user behavior data.

Multi-Task Learning Recommendation Systems

Item Cold Start Recommendation via Adversarial Variational Auto-encoder Warm-up

no code implementations28 Feb 2023 Shenzheng Zhang, Qi Tan, Xinzhi Zheng, Yi Ren, Xu Zhao

The gap between the randomly initialized item ID embedding and the well-trained warm item ID embedding makes the cold items hard to suit the recommendation system, which is trained on the data of historical warm items.

News Recommendation

Slate-Aware Ranking for Recommendation

1 code implementation24 Feb 2023 Yi Ren, Xiao Han, Xu Zhao, Shenzheng Zhang, Yan Zhang

Therefore, the ranking stage is still essential for most applications to provide high-quality candidate set for the re-ranking stage.

Recommendation Systems Re-Ranking

Improving Item Cold-start Recommendation via Model-agnostic Conditional Variational Autoencoder

1 code implementation27 May 2022 Xu Zhao, Yi Ren, Ying Du, Shenzheng Zhang, Nian Wang

This paper attempts to tackle the item cold-start problem by generating enhanced warmed-up ID embeddings for cold items with historical data and limited interaction records.

News Recommendation Recommendation Systems

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