Beyond WER: Probing Whisper's Sub-token Decoder Across Diverse Language Resource Levels
Siyu Liang, Nicolas Ballier, Gina-Anne Levow, Richard A. Wright
摘要
While large multilingual automatic speech recognition (ASR) models achieve remarkable performance, the internal mechanisms of the end-to-end pipeline, particularly concerning fairness and efficacy across languages, remain underexplored. This paper introduces a finegrained analysis of Whisper's multilingual decoder, examining its sub-token hypotheses during transcription across languages with various resource levels. Our method traces the beam search path, capturing sub-token guesses and their associated probabilities. Results reveal that higher resource languages benefit from higher likelihood of the correct token being topranked, greater confidence, lower predictive entropy, and more diverse alternative candidates. Lower resource languages fare worse on these metrics, but also exhibit distinct clustering patterns in sub-token usage sometimes influenced by typology in our PCA and t-SNE analysis. This sub-token probing uncovers systematic decoding disparities masked by aggregate error rates and points towards targeted interventions to ameliorate the imbalanced development of speech technology.
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- Robust Speech Recognition via Large-Scale Weak SupervisionAlec Radford, Jong Wook Kim, Tao Xu, Greg Brockman 等ICML 2023 · 被引用 6,966 次
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- Language Model Tokenizers Introduce Unfairness Between LanguagesAleksandar Petrov, Emanuele La Malfa, Philip H. S. Torr, Adel BibiNeurIPS 2023 · 被引用 301 次
- Towards Building ASR Systems for the Next Billion UsersTahir Javed, Sumanth Doddapaneni, Abhigyan Raman, Kaushal Santosh Bhogale 等AAAI 2022 · 被引用 86 次
- MAGNET: Improving the Multilingual Fairness of Language Models with Adaptive Gradient-Based TokenizationOrevaoghene Ahia, Sachin Kumar, Hila Gonen, Valentin Hofmann 等NeurIPS 2024 · 被引用 37 次
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