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20242026
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cs.CL2026

Replay What Matters: Off-Policy Replay for Efficient LLM Reinforcement Unlearning

Zirui Pang, Chenlong Zhang, Haosheng Tan +3

LLM unlearning has emerged as a cost-effective alternative to full retraining for removing hazardous knowledge from pretrained models while preserving general utility. Recent RL-ba…

cs.CL2026

SemEval-2026 Task 12: Abductive Event Reasoning: Towards Real-World Event Causal Inference for Large Language Models

Pengfei Cao, Mingxuan Yang, Yubo Chen +4

Understanding why real-world events occur is important for both natural language processing and practical decision-making, yet direct-cause inference remains underexplored in evide…

cs.CL2026

MMR-Life: Piecing Together Real-life Scenes for Multimodal Multi-image Reasoning

Jiachun Li, Shaoping Huang, Zhuoran Jin +5

Recent progress in the reasoning capabilities of multimodal large language models (MLLMs) has empowered them to address more complex tasks such as scientific analysis and mathemati…

cs.CL2025

RULE: Reinforcement UnLEarning Achieves Forget-Retain Pareto Optimality

Chenlong Zhang, Zhuoran Jin, Hongbang Yuan +5

The widespread deployment of Large Language Models (LLMs) trained on massive, uncurated corpora has raised growing concerns about the inclusion of sensitive, copyrighted, or illega…

cs.CL2024

DTELS: Towards Dynamic Granularity of Timeline Summarization

Chenlong Zhang, Tong Zhou, Pengfei Cao +4

The rapid proliferation of online news has posed significant challenges in tracking the continuous development of news topics. Traditional timeline summarization constructs a chron…

cs.CL2024

Continual Few-shot Event Detection via Hierarchical Augmentation Networks

Chenlong Zhang, Pengfei Cao, Yubo Chen +4

Traditional continual event detection relies on abundant labeled data for training, which is often impractical to obtain in real-world applications. In this paper, we introduce con…