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Beier Luo

3 papers

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papers

Publications (3)

cs.LG2025

Your Pre-trained LLM is Secretly an Unsupervised Confidence Calibrator

Beier Luo, Shuoyuan Wang, Sharon Li +1

Post-training of large language models is essential for adapting pre-trained language models (PLMs) to align with human preferences and downstream tasks. While PLMs typically exhib…

cs.AI2026

CaveAgent: Transforming LLMs into Stateful Runtime Operators

Maohao Ran, Zhenglin Wan, Cooper Lin +21

LLM-based agents are increasingly capable of complex task execution, yet current agentic systems remain constrained by text-centric paradigms that struggle with long-horizon tasks…

cs.LG2026

Unlocking the Pre-Trained Model as a Dual-Alignment Calibrator for Post-Trained LLMs

Beier Luo, Cheng Wang, Hongxin Wei +2

Post-training improves large language models (LLMs) but often worsens confidence calibration, leading to systematic overconfidence. Recent unsupervised post-hoc methods for post-tr…

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