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 language | English |
|---|---|
| Article number | 101118 |
| Journal | Patterns |
| Volume | 6 |
| Issue number | 1 |
| DOIs | |
| State | Published - 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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