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20242026
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cs.CL2026

Evolution Fine-Tuning: Learning to Discover Across 371 Optimization Tasks

Young-Jun Lee, Seungone Kim, Minki Kang +5

Would experience designing faster GPU kernels also help close in on a long-standing open mathematical conjecture? Large Language Models (LLMs) integrated into evolutionary search h…

cs.CL2025

RefineBench: Evaluating Refinement Capability of Language Models via Checklists

Young-Jun Lee, Seungone Kim, Byung-Kwan Lee +6

Can language models (LMs) self-refine their own responses? This question is increasingly relevant as a wide range of real-world user interactions involve refinement requests. Howev…

cs.CL2025

LANGALIGN: Enhancing Non-English Language Models via Cross-Lingual Embedding Alignment

Jong Myoung Kim, Young-Jun Lee, Ho-Jin Choi +1

While Large Language Models have gained attention, many service developers still rely on embedding-based models due to practical constraints. In such cases, the quality of fine-tun…

cs.CL2025

PAD: Towards Efficient Data Generation for Transfer Learning Using Phrase Alignment

Jong Myoung Kim, Young-Jun_Lee, Ho-Jin Choi +1

Transfer learning leverages the abundance of English data to address the scarcity of resources in modeling non-English languages, such as Korean. In this study, we explore the pote…

cs.CL2024

Thanos: Enhancing Conversational Agents with Skill-of-Mind-Infused Large Language Model

Young-Jun Lee, Dokyong Lee, Junyoung Youn +2

To increase social bonding with interlocutors, humans naturally acquire the ability to respond appropriately in a given situation by considering which conversational skill is most…

cs.CL2024

Does Incomplete Syntax Influence Korean Language Model? Focusing on Word Order and Case Markers

Jong Myoung Kim, Young-Jun Lee, Yong-jin Han +2

Syntactic elements, such as word order and case markers, are fundamental in natural language processing. Recent studies show that syntactic information boosts language model perfor…