Accurate Online Posterior Alignments for Principled Lexically-Constrained Decoding
Soumya Chatterjee, Sunita Sarawagi, Preethi Jyothi
摘要
Online alignment in machine translation refers to the task of aligning a target word to a source word when the target sequence has only been partially decoded. Good online alignments facilitate important applications such as lexically constrained translation where user-defined dictionaries are used to inject lexical constraints into the translation model. We propose a novel posterior alignment technique that is truly online in its execution and superior in terms of alignment error rates compared to existing methods. Our proposed inference technique jointly considers alignment and token probabilities in a principled manner and can be seamlessly integrated within existing constrained beam-search decoding algorithms. On five language pairs, including two distant language pairs, we achieve consistent drop in alignment error rates. When deployed on seven lexically constrained translation tasks, we achieve significant improvements in BLEU specifically around the constrained positions.
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- Accurate Word Alignment Induction from Neural Machine TranslationYun Chen, Yang Liu, Guanhua Chen, Xin Jiang 等EMNLP 2020 · 被引用 56 次
- Alignment-Enhanced Transformer for Constraining NMT with Pre-Specified TranslationsKai Song, Kun Wang, Heng Yu, Yue Zhang 等AAAI 2020 · 被引用 49 次
- A Supervised Word Alignment Method based on Cross-Language Span Prediction using Multilingual BERTMasaaki Nagata, Katsuki Chousa, Masaaki NishinoEMNLP 2020 · 被引用 38 次
- Lexically Constrained Neural Machine Translation with Explicit Alignment GuidanceGuanhua Chen, Yun Chen, Victor O. K. LiAAAI 2021 · 被引用 29 次
- End-to-End Neural Word Alignment Outperforms GIZA++Thomas Zenkel, Joern Wuebker, John DeNeroACL 2020 · 被引用 2 次
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