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A survey of multilingual large language models

  • Libo Qin*
  • , Qiguang Chen
  • , Yuhang Zhou
  • , Zhi Chen
  • , Yinghui Li
  • , Lizi Liao
  • , Min Li
  • , Wanxiang Che
  • , Philip S. Yu
  • *Corresponding author for this work
  • School of Computer Science and Engineering
  • Harbin Institute of Technology
  • ByteDance Ltd.
  • Tsinghua University
  • Singapore Management University
  • University of Illinois at Chicago

Research output: Contribution to journalReview articlepeer-review

Abstract

Multilingual large language models (MLLMs) leverage advanced large language models to process and respond to queries across multiple languages, achieving significant success in polyglot tasks. Despite these breakthroughs, a comprehensive survey summarizing existing approaches and recent developments remains absent. To this end, this paper presents a unified and thorough review of the field, highlighting recent progress and emerging trends in MLLM research. The contributions of this paper are as follows. (1) Extensive survey: to our knowledge, this is the pioneering thorough review of multilingual alignment in MLLMs. (2) Unified taxonomy: we provide a unified framework to summarize the current progress in MLLMs. (3) Emerging frontiers: key emerging frontiers are identified, alongside a discussion of associated challenges. (4) Abundant resources: we collect abundant open-source resources, including relevant papers, data corpora, and leaderboards. We hope our work can provide the community quick access and spur breakthrough research in MLLMs.

Original languageEnglish
Article number101118
JournalPatterns
Volume6
Issue number1
DOIs
StatePublished - 10 Jan 2025

Keywords

  • cross-lingual transfer
  • large language model
  • multilingual alignment
  • multilingual large language model
  • parameter-frozen alignment
  • parameter-tuning alignment

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