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EBEN: Extreme bandwidth extension network applied to speech signals captured with noise-resilient microphones

2022-10-25 15:19:20
Julien Hauret, Thomas Joubaud, Véronique Zimpfer, Éric Bavu

Abstract

In this paper, we present Extreme Bandwidth Extension Network (EBEN), a generative adversarial network (GAN) that enhances audio measured with noise-resilient microphones. This type of capture equipment suppresses ambient noise at the expense of speech bandwidth, thereby requiring signal enhancement techniques to recover the wideband speech signal. EBEN leverages a multiband decomposition of the raw captured speech to decrease the data time-domain dimensions, and give better control over the full-band signal. This multiband representation is fed to a U-Net-like model, which adopts a combination of feature and adversarial losses to recover an enhanced audio signal. We also benefit from this original representation in the proposed discriminator architecture. Our approach can achieve state-of-the-art results with a lightweight generator and real-time compatible operation.

Abstract (translated)

URL

https://arxiv.org/abs/2210.14090

PDF

https://arxiv.org/pdf/2210.14090.pdf


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