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Transfer Learning with Jukebox for Music Source Separation

28 November 2021
W. Z. E. Amri
Oliver Tautz
Helge J. Ritter
Andrew Melnik
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Abstract

In this work, we demonstrate how a publicly available, pre-trained Jukebox model can be adapted for the problem of audio source separation from a single mixed audio channel. Our neural network architecture, which is using transfer learning, is quick to train and the results demonstrate performance comparable to other state-of-the-art approaches that require a lot more compute resources, training data, and time. We provide an open-source code implementation of our architecture (https://github.com/wzaielamri/unmix)

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