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20212024
most citedCheck Your Facts and Try Again: Improving Large Language Models with External Knowledge and Automated Feedback

150 citations · 201 across the 17 of their papers we have counts for

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7 papers · 1 filter

cs.CL2023

Evaluating the Efficacy of Length-Controllable Machine Translation

Hao Cheng, Meng Zhang, Weixuan Wang +3

Length-controllable machine translation is a type of constrained translation. It aims to contain the original meaning as much as possible while controlling the length of the transl…

cs.CL2023

End-to-end Training and Decoding for Pivot-based Cascaded Translation Model

Hao Cheng, Meng Zhang, Liangyou Li +2

Utilizing pivot language effectively can significantly improve low-resource machine translation. Usually, the two translation models, source-pivot and pivot-target, are trained ind…

cs.CL20232 cited

Pre-training Transformers for Knowledge Graph Completion

Sanxing Chen, Hao Cheng, Xiaodong Liu +3

Learning transferable representation of knowledge graphs (KGs) is challenging due to the heterogeneous, multi-relational nature of graph structures. Inspired by Transformer-based p…

cs.CL2023150 cited

Check Your Facts and Try Again: Improving Large Language Models with External Knowledge and Automated Feedback

Baolin Peng, Michel Galley, Pengcheng He +8

Large language models (LLMs), such as ChatGPT, are able to generate human-like, fluent responses for many downstream tasks, e.g., task-oriented dialog and question answering. Howev…

cs.CL202117 cited

Fine-Tuning Large Neural Language Models for Biomedical Natural Language Processing

Robert Tinn, Hao Cheng, Yu Gu +5

Motivation: A perennial challenge for biomedical researchers and clinical practitioners is to stay abreast with the rapid growth of publications and medical notes. Natural language…

cs.CL20212 cited

Knowledge-Rich Self-Supervision for Biomedical Entity Linking

Sheng Zhang, Hao Cheng, Shikhar Vashishth +6

Entity linking faces significant challenges such as prolific variations and prevalent ambiguities, especially in high-value domains with myriad entities. Standard classification ap…