Bing-Jhih Huang
Also published as: Bing Jhih Huang
2025
Whisper Finetuning For Hakka Recognition in Low Resource
Min Han Teng
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Ci Dao Chen
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You Ting Lin
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Bing Jhih Huang
Proceedings of the 37th Conference on Computational Linguistics and Speech Processing (ROCLING 2025)
We study automatic speech recognition (ASR) for Hakka, a low-resource language with substantial dialectal variation. Focusing on Zhaoan and Dapu, we fine-tune Whisper using Low-Rank Adaptation (LoRA) and apply data augmentation to mitigate data scarcity. Experiments show that LoRA combined with augmentation substantially improves cross-dialect recognition while maintaining parameter efficiency. Our results demonstrate the potential of lightweight adaptation to extend large-scale ASR systems to underrepresented languages, supporting the preservation of Hakka speech and orthography.
2023
Enhancing Automatic Speech Recognition Performance Through Multi-Speaker Text-to-Speech
Po-Kai Chen
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Bing-Jhih Huang
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Chi-Tao Chen
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Hsin-Min Wang
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Jia-Ching Wang
Proceedings of the 35th Conference on Computational Linguistics and Speech Processing (ROCLING 2023)
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- Po-Kai Chen 1
- Chi-Tao Chen 1
- Ci Dao Chen 1
- You Ting Lin 1
- Min Han Teng 1
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