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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
1HW-TSCINDIC20en-hi2020/09/19 11:37:184033------24.48---NMTNotransformer deep,en2XX,PMI data and filtered PBI data
2ODIANLPINDIC20en-hi2020/09/17 02:08:003786------21.05---NMTNoTransformer Base with Relative position representations + en-xx model + PMI Data
3cvitINDIC20en-hi2020/10/20 22:40:264165------16.67---NMTYesMNMT fine-tuned on cyclic backtranslated data + IITB corpus + PIB corpus after de-duplication
4cvitINDIC20en-hi2020/09/18 00:47:533854------16.23---NMTYes
5NICT-5INDIC20en-hi2020/09/18 20:54:523985------15.65---NMTNoXX to XX transformer model trained on officially provided PMI and PKB data. Corpora were size unbalanced.
6cvitINDIC20en-hi2020/10/20 22:18:394164------14.11---NMTYesMultilingual NMT
7ORGANIZERINDIC20en-hi2020/09/02 16:40:153625------13.96---NMTNoBaseline MLNMT En to XX model using PIB and Filtered PMI data. Transformer big model. Default settings.
8NICT-5INDIC20en-hi2020/09/18 20:53:513984------12.68---NMTNoXX to XX transformer model trained on officially provided PMI and PKB data. Corpora were size balanced.
9Deterministic Algorithms LabINDIC20en-hi2020/09/18 16:50:203906------ 8.36---NMTNoXLM Model with DAE Loss, MT Loss, MLM Loss, TLM loss and Back-Translation Loss.

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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
1HW-TSCINDIC20en-hi2020/09/19 11:37:184033------0.731919---NMTNotransformer deep,en2XX,PMI data and filtered PBI data
2cvitINDIC20en-hi2020/10/20 22:40:264165------0.730547---NMTYesMNMT fine-tuned on cyclic backtranslated data + IITB corpus + PIB corpus after de-duplication
3cvitINDIC20en-hi2020/09/18 00:47:533854------0.727411---NMTYes
4NICT-5INDIC20en-hi2020/09/18 20:54:523985------0.718850---NMTNoXX to XX transformer model trained on officially provided PMI and PKB data. Corpora were size unbalanced.
5cvitINDIC20en-hi2020/10/20 22:18:394164------0.709665---NMTYesMultilingual NMT
6ODIANLPINDIC20en-hi2020/09/17 02:08:003786------0.703507---NMTNoTransformer Base with Relative position representations + en-xx model + PMI Data
7ORGANIZERINDIC20en-hi2020/09/02 16:40:153625------0.700555---NMTNoBaseline MLNMT En to XX model using PIB and Filtered PMI data. Transformer big model. Default settings.
8NICT-5INDIC20en-hi2020/09/18 20:53:513984------0.683377---NMTNoXX to XX transformer model trained on officially provided PMI and PKB data. Corpora were size balanced.
9Deterministic Algorithms LabINDIC20en-hi2020/09/18 16:50:203906------0.620825---NMTNoXLM Model with DAE Loss, MT Loss, MLM Loss, TLM loss and Back-Translation Loss.

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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
1ORGANIZERINDIC20en-hi2020/09/02 16:40:153625------0.000000---NMTNoBaseline MLNMT En to XX model using PIB and Filtered PMI data. Transformer big model. Default settings.
2ODIANLPINDIC20en-hi2020/09/17 02:08:003786------0.000000---NMTNoTransformer Base with Relative position representations + en-xx model + PMI Data
3cvitINDIC20en-hi2020/09/18 00:47:533854------0.000000---NMTYes
4Deterministic Algorithms LabINDIC20en-hi2020/09/18 16:50:203906------0.000000---NMTNoXLM Model with DAE Loss, MT Loss, MLM Loss, TLM loss and Back-Translation Loss.
5NICT-5INDIC20en-hi2020/09/18 20:53:513984------0.000000---NMTNoXX to XX transformer model trained on officially provided PMI and PKB data. Corpora were size balanced.
6NICT-5INDIC20en-hi2020/09/18 20:54:523985------0.000000---NMTNoXX to XX transformer model trained on officially provided PMI and PKB data. Corpora were size unbalanced.
7HW-TSCINDIC20en-hi2020/09/19 11:37:184033------0.000000---NMTNotransformer deep,en2XX,PMI data and filtered PBI data
8cvitINDIC20en-hi2020/10/20 22:18:394164------0.000000---NMTYesMultilingual NMT
9cvitINDIC20en-hi2020/10/20 22:40:264165------0.000000---NMTYesMNMT fine-tuned on cyclic backtranslated data + IITB corpus + PIB corpus after de-duplication

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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
1cvitINDIC20en-hi2020/09/18 00:47:5338543.810NMTYes
2HW-TSCINDIC20en-hi2020/09/19 11:37:1840332.890NMTNotransformer deep,en2XX,PMI data and filtered PBI data
3ODIANLPINDIC20en-hi2020/09/17 02:08:0037862.700NMTNoTransformer Base with Relative position representations + en-xx model + PMI Data

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HUMAN (WAT2019)


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

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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