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Language Surgery in Multilingual Large Language Models

14 June 2025
Joanito Agili Lopo
Muhammad Ravi Shulthan Habibi
Tack Hwa Wong
Muhammad Ilham Ghozali
Fajri Koto
Genta Indra Winata
Peerat Limkonchotiwat
Alham Fikri Aji
Samuel Cahyawijaya
ArXiv (abs)PDFHTML
Main:8 Pages
8 Figures
Bibliography:5 Pages
28 Tables
Appendix:14 Pages
Abstract

Large Language Models (LLMs) have demonstrated remarkable generalization capabilities across tasks and languages, revolutionizing natural language processing. This paper investigates the naturally emerging representation alignment in LLMs, particularly in the middle layers, and its implications for disentangling language-specific and language-agnostic information. We empirically confirm the existence of this alignment, analyze its behavior in comparison to explicitly designed alignment models, and demonstrate its potential for language-specific manipulation without semantic degradation. Building on these findings, we propose Inference-Time Language Control (ITLC), a novel method that leverages latent injection to enable precise cross-lingual language control and mitigate language confusion in LLMs. Our experiments highlight ITLC's strong cross-lingual control capabilities while preserving semantic integrity in target languages. Furthermore, we demonstrate its effectiveness in alleviating the cross-lingual language confusion problem, which persists even in current large-scale LLMs, leading to inconsistent language generation. This work advances our understanding of representation alignment in LLMs and introduces a practical solution for enhancing their cross-lingual performance.

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@article{lopo2025_2506.12450,
  title={ Language Surgery in Multilingual Large Language Models },
  author={ Joanito Agili Lopo and Muhammad Ravi Shulthan Habibi and Tack Hwa Wong and Muhammad Ilham Ghozali and Fajri Koto and Genta Indra Winata and Peerat Limkonchotiwat and Alham Fikri Aji and Samuel Cahyawijaya },
  journal={arXiv preprint arXiv:2506.12450},
  year={ 2025 }
}
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