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Off the Beaten Track: Using Deep Learning to Interpolate Between Music Genres

Published 25 Apr 2018 in cs.SD, cs.LG, cs.MM, and eess.AS | (1804.09808v2)

Abstract: We describe a system based on deep learning that generates drum patterns in the electronic dance music domain. Experimental results reveal that generated patterns can be employed to produce musically sound and creative transitions between different genres, and that the process of generation is of interest to practitioners in the field.

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