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@@ -12,13 +12,28 @@ license: apache-2.0
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  ## Citation
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  ```
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- @misc{seo2024manwavmanchuasrmodel,
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- title={ManWav: The First Manchu ASR Model},
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- author={Jean Seo and Minha Kang and Sungjoo Byun and Sangah Lee},
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- year={2024},
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- eprint={2406.13502},
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- archivePrefix={arXiv},
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- primaryClass={cs.CL},
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- url={https://arxiv.org/abs/2406.13502},
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  }
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  ```
 
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  ## Citation
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  ```
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+ @inproceedings{seo-etal-2024-manwav,
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+ title = "{M}an{W}av: The First {M}anchu {ASR} Model",
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+ author = "Seo, Jean and
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+ Kang, Minha and
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+ Byun, SungJoo and
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+ Lee, Sangah",
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+ editor = "Serikov, Oleg and
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+ Voloshina, Ekaterina and
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+ Postnikova, Anna and
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+ Muradoglu, Saliha and
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+ Le Ferrand, Eric and
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+ Klyachko, Elena and
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+ Vylomova, Ekaterina and
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+ Shavrina, Tatiana and
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+ Tyers, Francis",
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+ booktitle = "Proceedings of the 3rd Workshop on NLP Applications to Field Linguistics (Field Matters 2024)",
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+ month = aug,
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+ year = "2024",
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+ address = "Bangkok, Thailand",
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+ publisher = "Association for Computational Linguistics",
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+ url = "https://aclanthology.org/2024.fieldmatters-1.2",
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+ pages = "6--11",
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+ abstract = "This study addresses the widening gap in Automatic Speech Recognition (ASR) research between high resource and extremely low resource languages, with a particular focus on Manchu, a severely endangered language. Manchu exemplifies the challenges faced by marginalized linguistic communities in accessing state-of-the-art technologies. In a pioneering effort, we introduce the first-ever Manchu ASR model ManWav, leveraging Wav2Vec2-XLSR-53. The results of the first Manchu ASR is promising, especially when trained with our augmented data. Wav2Vec2-XLSR-53 fine-tuned with augmented data demonstrates a 0.02 drop in CER and 0.13 drop in WER compared to the same base model fine-tuned with original data.",
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  }
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  ```