الباحثون

Wenjie Wang

المنشورات 9

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Recurrent Self-Improvement: Dynamic Cross-Loop On-Policy Distillation for Looped Language Models

Yi Wang, Rui Qian, Yu Li وآخرون · 2026

Looped Language Models (LoopLMs) offer a parameter efficient approach to scaling reasoning by reusing shared parameters across recurrent computation steps. Despite their promise, effective post-training of LoopLMs remains challenging. Existing approaches either provide reward based supervision that is sparse or costly …

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Safe at One Loop, Risky at Another: Aligning Safety Across Recurrent Depths in Looped Language Models

Yi Wang, Xiuyuan Qi, Dongqi Han وآخرون · 2026

Looped Language Models (LoopLMs) provide a parameter efficient approach to scaling model capabilities through repeated use of shared parameters across recurrent steps. Since each recurrent depth can be read out independently, a single LoopLM exposes a broader output space across inference depths, raising an important q …

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On Parameters of Nonlinear Scalar Dynamics from Video: Invariants, Calibration, and Identifiability

Wenjie Wang, Yuanyuan Wang, Zixiang Jiang وآخرون · 2026

Physical parameter estimation from video aims to recover the parameters of a known family of governing dynamical equations from pixel observations. Existing identifiability theory for this setting has focused on linear time-invariant (LTI) second-order systems, leaving open what can be identified for nonlinear scalar d …

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When Upstream Messages Override Correct Answers: A Controlled Study of Multi-Agent LLM Collaboration

Yaxin Gong, Gangyi Zhang, Chongming Gao وآخرون · 2026

Multi-agent LLM systems rely on message passing among specialized agents to accomplish complex tasks. However, an upstream agent may provide useful information or an incorrect answer that causes a downstream agent to override a correct answer supported by its own evidence. Prior work has not clearly separated the benef …

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Reward Hacking Challenges Oversight of Autonomous Research Agents

Yue Huang, Zhangchen Xu, Yuchen Ma وآخرون · 2026

Autonomous research agents can design experiments, evaluate results, and write reports, giving them control over both a scientific result and the evidence used to support it. This creates a risk of reward hacking: meeting the reward criteria without achieving the intended goal. We study (1) how often models reward-hack …

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