Conformer-based Ultrasound-to-Speech Conversion

June 04, 2025 ยท Declared Dead ยท ๐Ÿ› Interspeech

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Authors Ibrahim Ibrahimov, Zainkรณ Csaba, Gรกbor Gosztolya arXiv ID 2506.03831 Category cs.SD: Sound Cross-listed cs.MM, eess.AS Citations 0 Venue Interspeech Last Checked 4 months ago
Abstract
Deep neural networks have shown promising potential for ultrasound-to-speech conversion task towards Silent Speech Interfaces. In this work, we applied two Conformer-based DNN architectures (Base and one with bi-LSTM) for this task. Speaker-specific models were trained on the data of four speakers from the Ultrasuite-Tal80 dataset, while the generated mel spectrograms were synthesized to audio waveform using a HiFi-GAN vocoder. Compared to a standard 2D-CNN baseline, objective measurements (MSE and mel cepstral distortion) showed no statistically significant improvement for either model. However, a MUSHRA listening test revealed that Conformer with bi-LSTM provided better perceptual quality, while Conformer Base matched the performance of the baseline along with a 3x faster training time due to its simpler architecture. These findings suggest that Conformer-based models, especially the Conformer with bi-LSTM, offer a promising alternative to CNNs for ultrasound-to-speech conversion.
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