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WAT

The Workshop on Asian Translation
Evaluation Results

[EVALUATION RESULTS TOP] | [BLEU] | [RIBES] | [AMFM] | [HUMAN (WAT2022)] | [HUMAN (WAT2021)] | [HUMAN (WAT2020)] | [HUMAN (WAT2019)] | [HUMAN (WAT2018)] | [HUMAN (WAT2017)] | [HUMAN (WAT2016)] | [HUMAN (WAT2015)] | [HUMAN (WAT2014)] | [EVALUATION RESULTS USAGE POLICY]

BLEU


# Team Task Date/Time DataID BLEU
Method
Other
Resources
System
Description
juman kytea mecab moses-
tokenizer
stanford-
segmenter-
ctb
stanford-
segmenter-
pku
indic-
tokenizer
unuse myseg kmseg
1Bering LabJPCNja-ko2021/04/25 03:13:525517--76.68-------NMTYesTransformer Ensemble with additional crawled parallel corpus
2Bering LabJPCNja-ko2021/04/26 18:57:365663--74.60-------NMTNoTransformer Ensemble
3ryanJPCNja-ko2019/07/23 12:48:572850--73.81-------NMTNoBase Transformer
4TMUJPCNja-ko2021/04/14 08:17:595074--72.70-------NMTNoJapanese BART, ensemble of 3 models
5ORGANIZERJPCNja-ko2018/08/20 18:08:542026--71.62----- 0.00 0.00NMTNoNMT with Attention
6goku20JPCNja-ko2020/09/18 17:19:593921--71.30-------NMTNoTransformer, ensemble of 3 models
7sarahJPCNja-ko2019/07/25 13:00:352925--70.94-------NMTNoTransformer, ensemble of 4 models
8goku20JPCNja-ko2020/09/18 17:30:263928--70.48-------NMTNomBART pre-training, ensemble of 3 models
9sarahJPCNja-ko2019/07/22 12:47:432795--69.81-------NMTNoTransformer, single model
10tpt_watJPCNja-ko2021/04/27 02:13:285702--65.50-------NMTNoBase Transformer model with separate vocab, size 8k

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RIBES


# Team Task Date/Time DataID RIBES
Method
Other
Resources
System
Description
juman kytea mecab moses-
tokenizer
stanford-
segmenter-
ctb
stanford-
segmenter-
pku
indic-
tokenizer
unuse myseg kmseg
1Bering LabJPCNja-ko2021/04/25 03:13:525517--0.952684-------NMTYesTransformer Ensemble with additional crawled parallel corpus
2Bering LabJPCNja-ko2021/04/26 18:57:365663--0.949386-------NMTNoTransformer Ensemble
3ryanJPCNja-ko2019/07/23 12:48:572850--0.948718-------NMTNoBase Transformer
4TMUJPCNja-ko2021/04/14 08:17:595074--0.946851-------NMTNoJapanese BART, ensemble of 3 models
5ORGANIZERJPCNja-ko2018/08/20 18:08:542026--0.944406-----0.0000000.000000NMTNoNMT with Attention
6goku20JPCNja-ko2020/09/18 17:19:593921--0.942527-------NMTNoTransformer, ensemble of 3 models
7goku20JPCNja-ko2020/09/18 17:30:263928--0.942321-------NMTNomBART pre-training, ensemble of 3 models
8sarahJPCNja-ko2019/07/25 13:00:352925--0.941736-------NMTNoTransformer, ensemble of 4 models
9tpt_watJPCNja-ko2021/04/27 02:13:285702--0.939491-------NMTNoBase Transformer model with separate vocab, size 8k
10sarahJPCNja-ko2019/07/22 12:47:432795--0.939372-------NMTNoTransformer, single model

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AMFM


# Team Task Date/Time DataID AMFM
Method
Other
Resources
System
Description
unuse unuse unuse unuse unuse unuse unuse unuse unuse unuse
1Bering LabJPCNja-ko2021/04/26 18:57:365663--0.982878-------NMTNoTransformer Ensemble
2tpt_watJPCNja-ko2021/04/27 02:13:285702--0.982676-------NMTNoBase Transformer model with separate vocab, size 8k
3Bering LabJPCNja-ko2021/04/25 03:13:525517--0.944787-------NMTYesTransformer Ensemble with additional crawled parallel corpus
4TMUJPCNja-ko2021/04/14 08:17:595074--0.940442-------NMTNoJapanese BART, ensemble of 3 models
5ORGANIZERJPCNja-ko2018/08/20 18:08:542026--0.000000-----0.0000000.000000NMTNoNMT with Attention
6sarahJPCNja-ko2019/07/22 12:47:432795--0.000000-------NMTNoTransformer, single model
7ryanJPCNja-ko2019/07/23 12:48:572850--0.000000-------NMTNoBase Transformer
8sarahJPCNja-ko2019/07/25 13:00:352925--0.000000-------NMTNoTransformer, ensemble of 4 models
9goku20JPCNja-ko2020/09/18 17:19:593921--0.000000-------NMTNoTransformer, ensemble of 3 models
10goku20JPCNja-ko2020/09/18 17:30:263928--0.000000-------NMTNomBART pre-training, ensemble of 3 models

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HUMAN (WAT2022)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description

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HUMAN (WAT2021)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description

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HUMAN (WAT2020)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description
1goku20JPCNja-ko2020/09/18 17:30:2639284.730NMTNomBART pre-training, ensemble of 3 models

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HUMAN (WAT2019)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description
1sarahJPCNja-ko2019/07/22 12:47:432795UnderwayNMTNoTransformer, single model
2sarahJPCNja-ko2019/07/25 13:00:352925UnderwayNMTNoTransformer, ensemble of 4 models

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HUMAN (WAT2018)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description

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HUMAN (WAT2017)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description

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HUMAN (WAT2016)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description

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HUMAN (WAT2015)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description

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HUMAN (WAT2014)


# Team Task Date/Time DataID HUMAN
Method
Other
Resources
System
Description

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EVALUATION RESULTS USAGE POLICY

When you use the WAT evaluation results for any purpose such as:
- writing technical papers,
- making presentations about your system,
- advertising your MT system to the customers,
you can use the information about translation directions, scores (including both automatic and human evaluations) and ranks of your system among others. You can also use the scores of the other systems, but you MUST anonymize the other system's names. In addition, you can show the links (URLs) to the WAT evaluation result pages.

NICT (National Institute of Information and Communications Technology)
Kyoto University
Last Modified: 2018-08-02