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cs.CL2026

Foresight Optimization for Strategic Reasoning in Large Language Models

Jiashuo Wang, Jiawen Duan, Jian Wang +6

Reasoning capabilities in large language models (LLMs) have generally advanced significantly. However, it is still challenging for existing reasoning-based LLMs to perform effectiv…

cs.CL2025

SCALE: Selective Resource Allocation for Overcoming Performance Bottlenecks in Mathematical Test-time Scaling

Yang Xiao, Chunpu Xu, Ruifeng Yuan +3

Test-time compute scaling has emerged as a powerful paradigm for enhancing mathematical reasoning in large language models (LLMs) by allocating additional computational resources d…

cs.CL2025

Enhancing User Engagement in Socially-Driven Dialogue through Interactive LLM Alignments

Jiashuo Wang, Kaitao Song, Chunpu Xu +5

Enhancing user engagement through interactions plays an essential role in socially-driven dialogues. While prior works have optimized models to reason over relevant knowledge or pl…

cs.CL2025

Towards Dynamic Theory of Mind: Evaluating LLM Adaptation to Temporal Evolution of Human States

Yang Xiao, Jiashuo Wang, Qiancheng Xu +5

As Large Language Models (LLMs) increasingly participate in human-AI interactions, evaluating their Theory of Mind (ToM) capabilities - particularly their ability to track dynamic…

cs.CL2025

SPA-RL: Reinforcing LLM Agents via Stepwise Progress Attribution

Hanlin Wang, Chak Tou Leong, Jiashuo Wang +2

Reinforcement learning (RL) holds significant promise for training LLM agents to handle complex, goal-oriented tasks that require multi-step interactions with external environments…

cs.CL2025

LIMOPro: Reasoning Refinement for Efficient and Effective Test-time Scaling

Yang Xiao, Jiashuo Wang, Ruifeng Yuan +4

Large language models (LLMs) have demonstrated remarkable reasoning capabilities through test-time scaling approaches, particularly when fine-tuned with chain-of-thought (CoT) data…