SOTAVerified

Machine Translation

Machine translation is the task of translating a sentence in a source language to a different target language.

Approaches for machine translation can range from rule-based to statistical to neural-based. More recently, encoder-decoder attention-based architectures like BERT have attained major improvements in machine translation.

One of the most popular datasets used to benchmark machine translation systems is the WMT family of datasets. Some of the most commonly used evaluation metrics for machine translation systems include BLEU, METEOR, NIST, and others.

( Image credit: Google seq2seq )

Papers

Showing 91769200 of 10752 papers

TitleStatusHype
Postech's System Description for Medical Text Translation Task0
Edinburgh's Syntax-Based Systems at WMT 20140
Machine Translation of Medical Texts in the Khresmoi Project0
Dive deeper: Deep Semantics for Sentiment Analysis0
Efforts on Machine Learning over Human-mediated Translation Edit Rate0
DCU-Lingo24 Participation in WMT 2014 Hindi-English Translation task0
LIG System for Word Level QE task at WMT140
An Empirical Comparison of Features and Tuning for Phrase-based Machine Translation0
Stanford University's Submissions to the WMT 2014 Translation Task0
IPA and STOUT: Leveraging Linguistic and Source-based Features for Machine Translation Evaluation0
Challenges in Creating a Multilingual Sentiment Analysis Application for Social Media Mining0
LIMSI Submission for WMT'14 QE Task0
LIMSI @ WMT'14 Medical Translation Task0
EU-BRIDGE MT: Combined Machine Translation0
A Systematic Comparison of Smoothing Techniques for Sentence-Level BLEU0
Application of Prize based on Sentence Length in Chunk-based Automatic Evaluation of Machine Translation0
Bayesian Reordering Model with Feature Selection0
Estimating Word Alignment Quality for SMT Reordering Tasks0
Manawi: Using Multi-Word Expressions and Named Entities to Improve Machine Translation0
Domain Adaptation for Medical Text Translation using Web Resources0
Edinburgh's Phrase-based Machine Translation Systems for WMT-140
BEER: BEtter Evaluation as Ranking0
Large-scale Exact Decoding: The IMS-TTT submission to WMT140
Findings of the 2014 Workshop on Statistical Machine Translation0
Linear Mixture Models for Robust Machine Translation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Transformer Cycle (Rev)BLEU score35.14Unverified
2Noisy back-translationBLEU score35Unverified
3Transformer+Rep(Uni)BLEU score33.89Unverified
4T5-11BBLEU score32.1Unverified
5BiBERTBLEU score31.26Unverified
6Transformer + R-DropBLEU score30.91Unverified
7Bi-SimCutBLEU score30.78Unverified
8BERT-fused NMTBLEU score30.75Unverified
9Data Diversification - TransformerBLEU score30.7Unverified
10SimCutBLEU score30.56Unverified
#ModelMetricClaimedVerifiedStatus
1Transformer+BT (ADMIN init)BLEU score46.4Unverified
2Noisy back-translationBLEU score45.6Unverified
3mRASP+Fine-TuneBLEU score44.3Unverified
4Transformer + R-DropBLEU score43.95Unverified
5AdminBLEU score43.8Unverified
6Transformer (ADMIN init)BLEU score43.8Unverified
7BERT-fused NMTBLEU score43.78Unverified
8MUSE(Paralllel Multi-scale Attention)BLEU score43.5Unverified
9T5BLEU score43.4Unverified
10Local Joint Self-attentionBLEU score43.3Unverified
#ModelMetricClaimedVerifiedStatus
1PiNMTBLEU score40.43Unverified
2BiBERTBLEU score38.61Unverified
3Bi-SimCutBLEU score38.37Unverified
4Cutoff + Relaxed Attention + LMBLEU score37.96Unverified
5DRDABLEU score37.95Unverified
6Transformer + R-Drop + CutoffBLEU score37.9Unverified
7SimCutBLEU score37.81Unverified
8Cutoff+KneeBLEU score37.78Unverified
9CutoffBLEU score37.6Unverified
10CipherDAugBLEU score37.53Unverified
#ModelMetricClaimedVerifiedStatus
1HWTSC-Teacher-SimScore19.97Unverified
2MS-COMET-22Score19.89Unverified
3MS-COMET-QE-22Score19.76Unverified
4KG-BERTScoreScore17.28Unverified
5metricx_xl_DA_2019Score17.17Unverified
6COMET-QEScore16.8Unverified
7COMET-22Score16.31Unverified
8UniTE-srcScore15.68Unverified
9UniTE-refScore15.38Unverified
10metricx_xxl_DA_2019Score15.24Unverified