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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 781790 of 1773 papers

TitleStatusHype
Inference-only sub-character decomposition improves translation of unseen logographic characters0
Information-Propogation-Enhanced Neural Machine Translation by Relation Model0
INMIGRA3: building a case for NGOs and NMT0
Insights from Gathering MT Productivity Metrics at Scale0
Data Weighted Training Strategies for Grammatical Error Correction0
Integrating Multi-Head Convolutional Encoders with Cross-Attention for Improved SPARQL Query Translation0
Evaluation of NMT-Assisted Grammar Transfer for a Multi-Language Configurable Data-to-Text System0
Integrating Pre-trained Language Model into Neural Machine Translation0
Integrating Unsupervised Data Generation into Self-Supervised Neural Machine Translation for Low-Resource Languages0
Evaluating the usefulness of neural machine translation for the Polish translators in the European Commission0
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