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cs.CL2025

Curse of Knowledge: When Complex Evaluation Context Benefits yet Biases LLM Judges

Weiyuan Li, Xintao Wang, Siyu Yuan +5

As large language models (LLMs) grow more capable, they face increasingly diverse and complex tasks, making reliable evaluation challenging. The paradigm of LLMs as judges has emer…

cs.CL2025

Enigmata: Scaling Logical Reasoning in Large Language Models with Synthetic Verifiable Puzzles

Jiangjie Chen, Qianyu He, Siyu Yuan +9

Large Language Models (LLMs), such as OpenAI's o1 and DeepSeek's R1, excel at advanced reasoning tasks like math and coding via Reinforcement Learning with Verifiable Rewards (RLVR…

cs.CL2025

ARIA: Training Language Agents with Intention-Driven Reward Aggregation

Ruihan Yang, Yikai Zhang, Aili Chen +5

Large language models (LLMs) have enabled agents to perform complex reasoning and decision-making through free-form language interactions. However, in open-ended language action en…

cs.CL2025

Can LLMs Learn to Map the World from Local Descriptions?

Sirui Xia, Aili Chen, Xintao Wang +4

Recent advances in Large Language Models (LLMs) have demonstrated strong capabilities in tasks such as code and mathematics. However, their potential to internalize structured spat…

cs.CL2025

PowerAttention: Exponentially Scaling of Receptive Fields for Effective Sparse Attention

Lida Chen, Dong Xu, Chenxin An +8

Large Language Models (LLMs) face efficiency bottlenecks due to the quadratic complexity of the attention mechanism when processing long contexts. Sparse attention methods offer a…

cs.CL2025

DEEPER Insight into Your User: Directed Persona Refinement for Dynamic Persona Modeling

Aili Chen, Chengyu Du, Jiangjie Chen +6

To advance personalized applications such as recommendation systems and user behavior prediction, recent research increasingly adopts large language models (LLMs) for human -readab…