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---
tags:
- translation
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license: cc-by-4.0
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---
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### opus-mt-en-de
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## Table of Contents
- [Model Details ](#model-details )
- [Uses ](#uses )
- [Risks, Limitations and Biases ](#risks-limitations-and-biases )
- [Training ](#training )
- [Evaluation ](#evaluation )
- [Citation Information ](#citation-information )
- [How to Get Started With the Model ](#how-to-get-started-with-the-model )
## Model Details
**Model Description:**
- **Developed by:** Language Technology Research Group at the University of Helsinki
- **Model Type:** Translation
- **Language(s):**
- Source Language: English
- Target Language: German
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- **License:** CC-BY-4.0
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- **Resources for more information:**
- [GitHub Repo ](https://github.com/Helsinki-NLP/OPUS-MT-train )
## Uses
#### Direct Use
This model can be used for translation and text-to-text generation.
## Risks, Limitations and Biases
**CONTENT WARNING: Readers should be aware this section contains content that is disturbing, offensive, and can propagate historical and current stereotypes.**
Significant research has explored bias and fairness issues with language models (see, e.g., [Sheng et al. (2021) ](https://aclanthology.org/2021.acl-long.330.pdf ) and [Bender et al. (2021) ](https://dl.acm.org/doi/pdf/10.1145/3442188.3445922 )).
Further details about the dataset for this model can be found in the OPUS readme: [en-de ](https://github.com/Helsinki-NLP/OPUS-MT-train/blob/master/models/en-de/README.md )
#### Training Data
##### Preprocessing
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* pre-processing: normalization + SentencePiece
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* dataset: [opus ](https://github.com/Helsinki-NLP/Opus-MT )
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* download original weights: [opus-2020-02-26.zip ](https://object.pouta.csc.fi/OPUS-MT-models/en-de/opus-2020-02-26.zip )
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* test set translations: [opus-2020-02-26.test.txt ](https://object.pouta.csc.fi/OPUS-MT-models/en-de/opus-2020-02-26.test.txt )
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## Evaluation
#### Results
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* test set scores: [opus-2020-02-26.eval.txt ](https://object.pouta.csc.fi/OPUS-MT-models/en-de/opus-2020-02-26.eval.txt )
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#### Benchmarks
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| testset | BLEU | chr-F |
|-----------------------|-------|-------|
| newssyscomb2009.en.de | 23.5 | 0.540 |
| news-test2008.en.de | 23.5 | 0.529 |
| newstest2009.en.de | 22.3 | 0.530 |
| newstest2010.en.de | 24.9 | 0.544 |
| newstest2011.en.de | 22.5 | 0.524 |
| newstest2012.en.de | 23.0 | 0.525 |
| newstest2013.en.de | 26.9 | 0.553 |
| newstest2015-ende.en.de | 31.1 | 0.594 |
| newstest2016-ende.en.de | 37.0 | 0.636 |
| newstest2017-ende.en.de | 29.9 | 0.586 |
| newstest2018-ende.en.de | 45.2 | 0.690 |
| newstest2019-ende.en.de | 40.9 | 0.654 |
| Tatoeba.en.de | 47.3 | 0.664 |
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## Citation Information
```bibtex
@InProceedings {TiedemannThottingal:EAMT2020,
author = {J{\"o}rg Tiedemann and Santhosh Thottingal},
title = {{OPUS-MT} — {B}uilding open translation services for the {W}orld},
booktitle = {Proceedings of the 22nd Annual Conferenec of the European Association for Machine Translation (EAMT)},
year = {2020},
address = {Lisbon, Portugal}
}
```
## How to Get Started With the Model
```python
from transformers import AutoTokenizer, AutoModelForSeq2SeqLM
tokenizer = AutoTokenizer.from_pretrained("Helsinki-NLP/opus-mt-en-de")
model = AutoModelForSeq2SeqLM.from_pretrained("Helsinki-NLP/opus-mt-en-de")
```