Fotheidil: an Automatic Transcription System for the Irish Language
December 31, 2024 ยท Declared Dead ยท ๐ COLING Workshops
"No code URL or promise found in abstract"
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Authors
Liam Lonergan, Ibon Saratxaga, John Sloan, Oscar Maharog, Mengjie Qian, Neasa Nรญ Chiarรกin, Christer Gobl, Ailbhe Nรญ Chasaide
arXiv ID
2501.00509
Category
cs.CL: Computation & Language
Cross-listed
cs.SD,
eess.AS
Citations
2
Venue
COLING Workshops
Last Checked
4 months ago
Abstract
This paper sets out the first web-based transcription system for the Irish language - Fotheidil, a system that utilises speech-related AI technologies as part of the ABAIR initiative. The system includes both off-the-shelf pre-trained voice activity detection and speaker diarisation models and models trained specifically for Irish automatic speech recognition and capitalisation and punctuation restoration. Semi-supervised learning is explored to improve the acoustic model of a modular TDNN-HMM ASR system, yielding substantial improvements for out-of-domain test sets and dialects that are underrepresented in the supervised training set. A novel approach to capitalisation and punctuation restoration involving sequence-to-sequence models is compared with the conventional approach using a classification model. Experimental results show here also substantial improvements in performance. The system will be made freely available for public use, and represents an important resource to researchers and others who transcribe Irish language materials. Human-corrected transcriptions will be collected and included in the training dataset as the system is used, which should lead to incremental improvements to the ASR model in a cyclical, community-driven fashion.
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