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NMT

Neural machine translation is an approach to machine translation that uses an artificial neural network to predict the likelihood of a sequence of words, typically modeling entire sentences in a single integrated model.

Papers

Showing 11261150 of 1773 papers

TitleStatusHype
Kyoto University MT System Description for IWSLT 20170
Language-aware Interlingua for Multilingual Neural Machine Translation0
Language-Independent Representor for Neural Machine Translation0
Language Model-Driven Unsupervised Neural Machine Translation0
Language Modeling, Lexical Translation, Reordering: The Training Process of NMT through the Lens of Classical SMT0
Language Modelling with NMT Query Translation for Amharic-Arabic Cross-Language Information Retrieval0
Language Models are Good Translators0
Language Portability Strategies for Open-domain Dialogue with Pre-trained Language Models from High to Low Resource Languages0
Language Relatedness and Lexical Closeness can help Improve Multilingual NMT: IITBombay@MultiIndicNMT WAT20210
Large Language Models "Ad Referendum": How Good Are They at Machine Translation in the Legal Domain?0
Large-scale Pretraining for Neural Machine Translation with Tens of Billions of Sentence Pairs0
Latent Part-of-Speech Sequences for Neural Machine Translation0
Latest Development in the FoTran Project – Scaling Up Language Coverage in Neural Machine Translation Using Distributed Training with Language-Specific Components0
Lattice-Based Recurrent Neural Network Encoders for Neural Machine Translation0
Lattice-Based Transformer Encoder for Neural Machine Translation0
Layer-Wise Coordination between Encoder and Decoder for Neural Machine Translation0
Learning Contextualized Sentence Representations for Document-Level Neural Machine Translation0
Learning Distributional Token Representations from Visual Features0
Learning Domain Specific Language Models for Automatic Speech Recognition through Machine Translation0
Learning Efficient Lexically-Constrained Neural Machine Translation with External Memory0
Learning Feature Weights using Reward Modeling for Denoising Parallel Corpora0
Learning from Chunk-based Feedback in Neural Machine Translation0
Learning Homographic Disambiguation Representation for Neural Machine Translation0
Learning How to Translate North Korean through South Korean0
Learning Source Phrase Representations for Neural Machine Translation0
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