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Music generation with variational recurrent autoencoder supported by history

15 May 2017
Ivan P. Yamshchikov
Alexey Tikhonov
    GAN
    MGen
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Abstract

A new architecture of an artificial neural network that helps to generate longer melodic patterns is introduced alongside with methods for post-generation filtering. The proposed approach called variational autoencoder supported by history is based on a recurrent highway gated network combined with a variational autoencoder. Combination of this architecture with filtering heuristics allows generating pseudo-live acoustically pleasing and melodically diverse music.

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