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Rhythm, Chord and Melody Generation for Lead Sheets using Recurrent Neural Networks (2002.10266v1)

Published 21 Feb 2020 in cs.SD, cs.CL, cs.LG, and stat.ML

Abstract: Music that is generated by recurrent neural networks often lacks a sense of direction and coherence. We therefore propose a two-stage LSTM-based model for lead sheet generation, in which the harmonic and rhythmic templates of the song are produced first, after which, in a second stage, a sequence of melody notes is generated conditioned on these templates. A subjective listening test shows that our approach outperforms the baselines and increases perceived musical coherence.

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Authors (4)
  1. Cedric De Boom (15 papers)
  2. Stephanie Van Laere (1 paper)
  3. Tim Verbelen (55 papers)
  4. Bart Dhoedt (47 papers)
Citations (11)

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