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+ ---
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+ language:
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+ - en
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+ - fr
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+
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+ tags:
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+ - translation
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+
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+ license: cc-by-4.0
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+ model-index:
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+ - name: opus-mt-tc-big-en-fr
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+ results:
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: flores101-devtest
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+ type: flores_101
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+ args: eng fra devtest
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 52.2
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: multi30k_test_2016_flickr
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+ type: multi30k-2016_flickr
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 52.4
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: multi30k_test_2017_flickr
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+ type: multi30k-2017_flickr
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 52.8
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: multi30k_test_2017_mscoco
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+ type: multi30k-2017_mscoco
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 54.7
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: multi30k_test_2018_flickr
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+ type: multi30k-2018_flickr
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 43.7
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: news-test2008
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+ type: news-test2008
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 27.6
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newsdiscussdev2015
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+ type: newsdiscussdev2015
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 33.4
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newsdiscusstest2015
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+ type: newsdiscusstest2015
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 40.3
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: tatoeba-test-v2021-08-07
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+ type: tatoeba_mt
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 53.2
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: tico19-test
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+ type: tico19-test
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 40.6
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newstest2009
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+ type: wmt-2009-news
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 30.0
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newstest2010
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+ type: wmt-2010-news
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 33.5
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newstest2011
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+ type: wmt-2011-news
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 35.0
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newstest2012
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+ type: wmt-2012-news
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 32.8
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newstest2013
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+ type: wmt-2013-news
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 34.6
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+ - task:
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+ name: Translation eng-fra
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+ type: translation
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+ args: eng-fra
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+ dataset:
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+ name: newstest2014
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+ type: wmt-2014-news
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+ args: eng-fra
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+ metrics:
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+ - name: BLEU
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+ type: bleu
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+ value: 41.9
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+ ---
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+ # opus-mt-tc-big-en-fr
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+
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+ Neural machine translation model for translating from English (en) to French (fr).
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+
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+ This model is part of the [OPUS-MT project](https://github.com/Helsinki-NLP/Opus-MT), an effort to make neural machine translation models widely available and accessible for many languages in the world. All models are originally trained using the amazing framework of [Marian NMT](https://marian-nmt.github.io/), an efficient NMT implementation written in pure C++. The models have been converted to pyTorch using the transformers library by huggingface. Training data is taken from [OPUS](https://opus.nlpl.eu/) and training pipelines use the procedures of [OPUS-MT-train](https://github.com/Helsinki-NLP/Opus-MT-train).
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+
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+ * Publications: [OPUS-MT – Building open translation services for the World](https://aclanthology.org/2020.eamt-1.61/) and [The Tatoeba Translation Challenge – Realistic Data Sets for Low Resource and Multilingual MT](https://aclanthology.org/2020.wmt-1.139/) (Please, cite if you use this model.)
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+
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+ ```
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+ @inproceedings{tiedemann-thottingal-2020-opus,
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+ title = "{OPUS}-{MT} {--} Building open translation services for the World",
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+ author = {Tiedemann, J{\"o}rg and Thottingal, Santhosh},
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+ booktitle = "Proceedings of the 22nd Annual Conference of the European Association for Machine Translation",
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+ month = nov,
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+ year = "2020",
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+ address = "Lisboa, Portugal",
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+ publisher = "European Association for Machine Translation",
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+ url = "https://aclanthology.org/2020.eamt-1.61",
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+ pages = "479--480",
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+ }
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+
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+ @inproceedings{tiedemann-2020-tatoeba,
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+ title = "The Tatoeba Translation Challenge {--} Realistic Data Sets for Low Resource and Multilingual {MT}",
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+ author = {Tiedemann, J{\"o}rg},
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+ booktitle = "Proceedings of the Fifth Conference on Machine Translation",
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+ month = nov,
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+ year = "2020",
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+ address = "Online",
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+ publisher = "Association for Computational Linguistics",
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+ url = "https://aclanthology.org/2020.wmt-1.139",
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+ pages = "1174--1182",
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+ }
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+ ```
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+
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+ ## Model info
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+
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+ * Release: 2022-03-09
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+ * source language(s): eng
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+ * target language(s): fra
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+ * model: transformer-big
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+ * data: opusTCv20210807+bt ([source](https://github.com/Helsinki-NLP/Tatoeba-Challenge))
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+ * tokenization: SentencePiece (spm32k,spm32k)
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+ * original model: [opusTCv20210807+bt_transformer-big_2022-03-09.zip](https://object.pouta.csc.fi/Tatoeba-MT-models/eng-fra/opusTCv20210807+bt_transformer-big_2022-03-09.zip)
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+ * more information released models: [OPUS-MT eng-fra README](https://github.com/Helsinki-NLP/Tatoeba-Challenge/tree/master/models/eng-fra/README.md)
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+
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+ ## Usage
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+
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+ A short example code:
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+
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+ ```python
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+ from transformers import MarianMTModel, MarianTokenizer
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+
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+ src_text = [
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+ "The Portuguese teacher is very demanding.",
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+ "When was your last hearing test?"
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+ ]
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+
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+ model_name = "pytorch-models/opus-mt-tc-big-en-fr"
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+ tokenizer = MarianTokenizer.from_pretrained(model_name)
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+ model = MarianMTModel.from_pretrained(model_name)
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+ translated = model.generate(**tokenizer(src_text, return_tensors="pt", padding=True))
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+
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+ for t in translated:
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+ print( tokenizer.decode(t, skip_special_tokens=True) )
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+
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+ # expected output:
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+ # Le professeur de portugais est très exigeant.
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+ # Quand a eu lieu votre dernier test auditif ?
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+ ```
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+
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+ You can also use OPUS-MT models with the transformers pipelines, for example:
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+
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+ ```python
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+ from transformers import pipeline
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+ pipe = pipeline("translation", model="Helsinki-NLP/opus-mt-tc-big-en-fr")
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+ print(pipe("The Portuguese teacher is very demanding."))
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+
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+ # expected output: Le professeur de portugais est très exigeant.
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+ ```
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+
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+ ## Benchmarks
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+
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+ * test set translations: [opusTCv20210807+bt_transformer-big_2022-03-09.test.txt](https://object.pouta.csc.fi/Tatoeba-MT-models/eng-fra/opusTCv20210807+bt_transformer-big_2022-03-09.test.txt)
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+ * test set scores: [opusTCv20210807+bt_transformer-big_2022-03-09.eval.txt](https://object.pouta.csc.fi/Tatoeba-MT-models/eng-fra/opusTCv20210807+bt_transformer-big_2022-03-09.eval.txt)
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+ * benchmark results: [benchmark_results.txt](benchmark_results.txt)
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+ * benchmark output: [benchmark_translations.zip](benchmark_translations.zip)
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+
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+ | langpair | testset | chr-F | BLEU | #sent | #words |
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+ |----------|---------|-------|-------|-------|--------|
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+ | eng-fra | tatoeba-test-v2021-08-07 | 0.69621 | 53.2 | 12681 | 106378 |
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+ | eng-fra | flores101-devtest | 0.72494 | 52.2 | 1012 | 28343 |
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+ | eng-fra | multi30k_test_2016_flickr | 0.72361 | 52.4 | 1000 | 13505 |
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+ | eng-fra | multi30k_test_2017_flickr | 0.72826 | 52.8 | 1000 | 12118 |
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+ | eng-fra | multi30k_test_2017_mscoco | 0.73547 | 54.7 | 461 | 5484 |
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+ | eng-fra | multi30k_test_2018_flickr | 0.66723 | 43.7 | 1071 | 15867 |
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+ | eng-fra | newsdiscussdev2015 | 0.60471 | 33.4 | 1500 | 27940 |
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+ | eng-fra | newsdiscusstest2015 | 0.64915 | 40.3 | 1500 | 27975 |
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+ | eng-fra | newssyscomb2009 | 0.58903 | 30.7 | 502 | 12331 |
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+ | eng-fra | news-test2008 | 0.55516 | 27.6 | 2051 | 52685 |
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+ | eng-fra | newstest2009 | 0.57907 | 30.0 | 2525 | 69263 |
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+ | eng-fra | newstest2010 | 0.60156 | 33.5 | 2489 | 66022 |
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+ | eng-fra | newstest2011 | 0.61632 | 35.0 | 3003 | 80626 |
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+ | eng-fra | newstest2012 | 0.59736 | 32.8 | 3003 | 78011 |
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+ | eng-fra | newstest2013 | 0.59700 | 34.6 | 3000 | 70037 |
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+ | eng-fra | newstest2014 | 0.66686 | 41.9 | 3003 | 77306 |
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+ | eng-fra | tico19-test | 0.63022 | 40.6 | 2100 | 64661 |
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+
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+ ## Acknowledgements
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+
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+ The work is supported by the [European Language Grid](https://www.european-language-grid.eu/) as [pilot project 2866](https://live.european-language-grid.eu/catalogue/#/resource/projects/2866), by the [FoTran project](https://www.helsinki.fi/en/researchgroups/natural-language-understanding-with-cross-lingual-grounding), funded by the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation programme (grant agreement No 771113), and the [MeMAD project](https://memad.eu/), funded by the European Union’s Horizon 2020 Research and Innovation Programme under grant agreement No 780069. We are also grateful for the generous computational resources and IT infrastructure provided by [CSC -- IT Center for Science](https://www.csc.fi/), Finland.
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+
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+ ## Model conversion info
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+
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+ * transformers version: 4.16.2
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+ * OPUS-MT git hash: 3405783
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+ * port time: Wed Apr 13 17:07:05 EEST 2022
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+ * port machine: LM0-400-22516.local
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+ eng-fra multi30k_test_2018_flickr 0.66723 43.7 1071 15867
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+ eng-fra newsdiscussdev2015 0.60471 33.4 1500 27940
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+ eng-fra newsdiscusstest2015 0.64915 40.3 1500 27975
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+ eng-fra newstest2013 0.59700 34.6 3000 70037
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+ eng-fra newstest2014 0.66686 41.9 3003 77306
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+ eng-fra tatoeba-test-v2020-07-28 0.68090 51.7 10000 80769
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+ eng-fra tatoeba-test-v2021-03-30 0.68816 52.5 10892 89269
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+ eng-fra tatoeba-test-v2021-08-07 0.69621 53.2 12681 106378
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