Déréverbération non-supervisée de la parole par modèle hybride
By: Louis Bahrman, Mathieu Fontaine, Gaël Richard
Potential Business Impact:
Cleans up echoey voices without needing perfect recordings.
This paper introduces a new training strategy to improve speech dereverberation systems in an unsupervised manner using only reverberant speech. Most existing algorithms rely on paired dry/reverberant data, which is difficult to obtain. Our approach uses limited acoustic information, like the reverberation time (RT60), to train a dereverberation system. Experimental results demonstrate that our method achieves more consistent performance across various objective metrics than the state-of-the-art.
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