JOURNAL ARTICLE

Unsupervised speech enhancement with deep dynamical generative speech and noise models

Abstract

This work builds on a previous work on unsupervised speech enhancement using a dynamical variational autoencoder (DVAE) as the clean speech model and non-negative matrix factorization (NMF) as the noise model. We propose to replace the NMF noise model with a deep dynamical generative model (DDGM) depending either on the DVAE latent variables, or on the noisy observations, or on both. This DDGM can be trained in three configurations: noise-agnostic, noise-dependent and noise adaptation after noise-dependent training. Experimental results show that the proposed method achieves competitive performance compared to state-of-the-art unsupervised speech enhancement methods, while the noise-dependent training configuration yields a much more time-efficient inference process.

Keywords:
Non-negative matrix factorization Autoencoder Speech enhancement Computer science Noise (video) Speech recognition Artificial intelligence Noise measurement Generative model Inference Unsupervised learning Pattern recognition (psychology) Matrix decomposition Deep learning Generative grammar Noise reduction Image (mathematics)

Metrics

5
Cited By
1.34
FWCI (Field Weighted Citation Impact)
38
Refs
0.76
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Speech and Audio Processing
Physical Sciences →  Computer Science →  Signal Processing
Speech Recognition and Synthesis
Physical Sciences →  Computer Science →  Artificial Intelligence
Infant Health and Development
Health Sciences →  Health Professions →  Pharmacy

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