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Enhong Chen

4 papers here

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • last author4

Across the 4 of 4 papers where every author was matched, so the position is known.

fields
  • cs.IR3
  • cs.CL1
same name
  • Enhong Chen — 58 papers, h 83
  • Enhong Chen — 51 papers
  • Enhong Chen — 3 papers
  • Enhong Chen — 3 papers
  • Enhong Chen — 2 papers
  • Enhong Chen — 1 paper, h 3

Either other researchers who publish under this name, or the same person where the external sources have not merged their records.

identity via Semantic Scholar / OpenAlex

most citedChemEval: A Comprehensive Multi-Level Chemical Evaluation for Large Language Models

4 citations · 4 across the 4 of their papers we have counts for

collaborators

4 papers

cs.IR2024

Pre-trained Language Model and Knowledge Distillation for Lightweight Sequential Recommendation

Li Li, Mingyue Cheng, Zhiding Liu +3

Sequential recommendation models user interests based on historical behaviors to provide personalized recommendation. Previous sequential recommendation algorithms primarily employ…

cs.CL2024★ 4 cited

ChemEval: A Comprehensive Multi-Level Chemical Evaluation for Large Language Models

Yuqing Huang, Rongyang Zhang, Xuesong He +15

There is a growing interest in the role that LLMs play in chemistry which lead to an increased focus on the development of LLMs benchmarks tailored to chemical domains to assess th…

cs.IR2024

Revisiting the Solution of Meta KDD Cup 2024: CRAG

Jie Ouyang, Yucong Luo, Mingyue Cheng +4

This paper presents the solution of our team APEX in the Meta KDD CUP 2024: CRAG Comprehensive RAG Benchmark Challenge. The CRAG benchmark addresses the limitations of existing QA…

cs.IR2024

Bridging User Dynamics: Transforming Sequential Recommendations with Schrödinger Bridge and Diffusion Models

Wenjia Xie, Rui Zhou, Hao Wang +2

Sequential recommendation has attracted increasing attention due to its ability to accurately capture the dynamic changes in user interests. We have noticed that generative models,…

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