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SMART:面向长篇幅字幕翻译的自进化多智能体系统
AI 导读
研究者提出 SMART,一个面向长篇幅字幕翻译的自进化多智能体系统,通过测试时训练构建剧集级持久记忆,并用动态路由与 Mixture-of-Agents 层完成翻译。
正文
Abstract:Long-form subtitle translation requires reasoning over discourse and cultural context spanning episodes or entire series, while maintaining consistent terminology and style. Existing single-LLM methods are largely sentence-level, and multi-agent systems often use static workflows that do not adapt to scene complexity or production context. We propose SMART, a Self-evolving Multi-Agent system for long-foRm subtitle Translation. During test-time training, SMART builds persistent series-level memory and translates a subset of sentences through a dynamic router and Mixture-of-Agents layer with tools for terminology verification, subtitle constraint validation, and contextual retrieval. A judge-refiner loop scores candidates and uses textual critiques to update agent prompts and routing policies without retraining the underlying LLMs. During test-time inference, the evolved configuration translates the remaining series. We also introduce Subtitle Arena, covering 14 genres, 2--198 episodes per series, production years 1959--2023, and 15 target locales, together with SubMQM, a subtitle-adapted MQM framework with seven dimensions and 19 error categories. SMART achieves the best overall MQM score in all 15 Subtitle Arena directions, reducing average penalty by 6.9% over the strongest competing agent system. On a public benchmark, MuSC, SMART obtains the best model result across all 4 language pairs. SMART also achieves the best result in human evaluation with an overall score of 4.50/5.
| Comments: | 49 pages |
| Subjects: | Computation and Language (cs.CL); Artificial Intelligence (cs.AI); Computer Vision and Pattern Recognition (cs.CV); Multiagent Systems (cs.MA) |
| Cite as: | arXiv:2609.38660 [cs.CL] |
| (or arXiv:2609.38660v2 [cs.CL] for this version) | |
| https://doi.org/10.48550/arXiv.2609.38660 arXiv-issued DOI via DataCite |
Submission history
From: Haibo Jin [view email]
[v1]
Tue, 29 Sep 2026 23:36:17 UTC (4,468 KB)
[v2]
Thu, 1 Oct 2026 05:12:06 UTC (4,468 KB)
来源:HuggingFace Daily Papers(社区热门论文) · arxiv.org