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Direct articulatory observation reveals phoneme recognition performance characteristics of a self-supervised speech
Xuan Shi1, Tiantian Feng1, Kevin Huang1
1Ming Hsieh Department of Electrical and Computer Engineering, University of Southern California, Los Angeles, California 90089 USA.
Abstract:
Variability in speech pronunciation is widely observed across different linguistic backgrounds, which impacts modern automatic speech recognition performance. Here, we evaluate the performance of a self-supervised speech model in phoneme recognition using direct articulatory evidence. Findings indicate significant differences in phoneme recognition, especially in front vowels, between American English and Indian English speakers. To gain a deeper understanding of these differences, we conduct real-time MRI-based articulatory analysis, revealing distinct velar region patterns during the production of specific front vowels. This underscores the need to deepen the scientific understanding of self-supervised speech model variances to advance robust and inclusive speech technology.
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