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Yongqiang Tang

2 accepted papers

2024

Addressing Hidden Confounding with Heterogeneous Observational Datasets for Recommendation

NeurIPS 2024poster

The collected data in recommender systems generally suffers selection bias. Considerable works are proposed to address selection bias induced by observed user and item features, but they fail when hidden features (e.g., user age or salary) that affect both user selection mechanism and feedback exist…

Cited by 4SourcePDFScholar
2024

LoRAP: Transformer Sub-Layers Deserve Differentiated Structured Compression for Large Language Models

ICML 2024poster

Large language models (LLMs) show excellent performance in difficult tasks, but they often require massive memories and computational resources. How to reduce the parameter scale of LLMs has become research hotspots. In this study, we get an important observation that the multi-head self-attention (…

Cited by 6SourcePDFScholar