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Guiding Neural Machine Translation with Retrieved Translation Pieces
- Source :
- NAACL-HLT
- Publication Year :
- 2018
-
Abstract
- One of the difficulties of neural machine translation (NMT) is the recall and appropriate translation of low-frequency words or phrases. In this paper, we propose a simple, fast, and effective method for recalling previously seen translation examples and incorporating them into the NMT decoding process. Specifically, for an input sentence, we use a search engine to retrieve sentence pairs whose source sides are similar with the input sentence, and then collect $n$-grams that are both in the retrieved target sentences and aligned with words that match in the source sentences, which we call "translation pieces". We compute pseudo-probabilities for each retrieved sentence based on similarities between the input sentence and the retrieved source sentences, and use these to weight the retrieved translation pieces. Finally, an existing NMT model is used to translate the input sentence, with an additional bonus given to outputs that contain the collected translation pieces. We show our method improves NMT translation results up to 6 BLEU points on three narrow domain translation tasks where repetitiveness of the target sentences is particularly salient. It also causes little increase in the translation time, and compares favorably to another alternative retrieval-based method with respect to accuracy, speed, and simplicity of implementation.<br />NAACL 2018
- Subjects :
- FOS: Computer and information sciences
Computer Science - Computation and Language
Machine translation
Computer science
business.industry
InformationSystems_INFORMATIONSTORAGEANDRETRIEVAL
Process (computing)
020207 software engineering
02 engineering and technology
Translation (geometry)
computer.software_genre
Domain (software engineering)
0202 electrical engineering, electronic engineering, information engineering
020201 artificial intelligence & image processing
Artificial intelligence
business
Computation and Language (cs.CL)
computer
Sentence
Natural language processing
BLEU
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- NAACL-HLT
- Accession number :
- edsair.doi.dedup.....6e8c104f1de8794f2fdbc2ad0cc5680e