NMT

492 papers with code • 0 benchmarks • 1 datasets

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.

Libraries

Use these libraries to find NMT models and implementations
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Most implemented papers

code2seq: Generating Sequences from Structured Representations of Code

tech-srl/code2seq ICLR 2019

The ability to generate natural language sequences from source code snippets has a variety of applications such as code summarization, documentation, and retrieval.

Neural Speech Synthesis with Transformer Network

PaddlePaddle/PaddleSpeech 19 Sep 2018

Although end-to-end neural text-to-speech (TTS) methods (such as Tacotron2) are proposed and achieve state-of-the-art performance, they still suffer from two problems: 1) low efficiency during training and inference; 2) hard to model long dependency using current recurrent neural networks (RNNs).

Masked Language Model Scoring

awslabs/mlm-scoring ACL 2020

Instead, we evaluate MLMs out of the box via their pseudo-log-likelihood scores (PLLs), which are computed by masking tokens one by one.

Language-agnostic BERT Sentence Embedding

FreddeFrallan/Multilingual-CLIP ACL 2022

While BERT is an effective method for learning monolingual sentence embeddings for semantic similarity and embedding based transfer learning (Reimers and Gurevych, 2019), BERT based cross-lingual sentence embeddings have yet to be explored.

Addressing the Rare Word Problem in Neural Machine Translation

atpaino/deep-text-corrector IJCNLP 2015

Our experiments on the WMT14 English to French translation task show that this method provides a substantial improvement of up to 2. 8 BLEU points over an equivalent NMT system that does not use this technique.

OpenNMT: Open-Source Toolkit for Neural Machine Translation

OpenNMT/OpenNMT ACL 2017

We describe an open-source toolkit for neural machine translation (NMT).

Towards Neural Phrase-based Machine Translation

posenhuang/NPMT ICLR 2018

In this paper, we present Neural Phrase-based Machine Translation (NPMT).

Very Deep Transformers for Neural Machine Translation

namisan/exdeep-nmt 18 Aug 2020

We explore the application of very deep Transformer models for Neural Machine Translation (NMT).

Modeling Coverage for Neural Machine Translation

tuzhaopeng/NMT-Coverage ACL 2016

Attention mechanism has enhanced state-of-the-art Neural Machine Translation (NMT) by jointly learning to align and translate.

Achieving Open Vocabulary Neural Machine Translation with Hybrid Word-Character Models

yurayli/stanford-cs224n-sol ACL 2016

We build hybrid systems that translate mostly at the word level and consult the character components for rare words.