Challenges in Context-Aware Neural Machine Translation
Linghao Jin, Jacqueline He, Jonathan May, Xuezhe Ma
摘要
Context-aware neural machine translation, a paradigm that involves leveraging information beyond sentence-level context to resolve intersentential discourse dependencies and improve document-level translation quality, has given rise to a number of recent techniques. However, despite well-reasoned intuitions, most context-aware translation models yield only modest improvements over sentence-level systems. In this work, we investigate and present several core challenges, relating to discourse phenomena, context usage, model architectures, and document-level evaluation, that impede progress within the field. To address these problems, we propose a more realistic setting for document-level translation, called paragraphto-paragraph (PARA2PARA) translation, and collect a new dataset of Chinese-English novels to promote future research. 1
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- Quantifying the Plausibility of Context Reliance in Neural Machine TranslationGabriele Sarti, Grzegorz Chrupala, Malvina Nissim, Arianna BisazzaICLR 2024 · 被引用 8 次
- Improving Long-Context Translation via Self-Supervised Dual LearningShanbo Cheng, Shuaijie She, Yu Bao, Jianbing Zhang 等ACL 2026
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- Document-Level Machine Translation with Large Language ModelsLongyue Wang, Chenyang Lyu, Tianbo Ji, Zhirui Zhang 等EMNLP 2023 · 被引用 129 次
- Mega: Moving Average Equipped Gated AttentionXuezhe Ma, Chunting Zhou, Xiang Kong, Junxian He 等ICLR 2023 · 被引用 36 次
- Exploring Document-Level Literary Machine Translation with Parallel Paragraphs from World LiteratureKatherine Thai, Marzena Karpinska, Kalpesh Krishna, Bill Ray 等EMNLP 2022 · 被引用 23 次
- Discourse-Centric Evaluation of Document-level Machine Translation with a New Densely Annotated Parallel Corpus of NovelsYuchen Eleanor Jiang, Tianyu Liu, Shuming Ma, Dongdong Zhang 等ACL 2023 · 被引用 7 次
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