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Transfer Learning for Underrepresented Music Generation (2306.00281v1)
Published 1 Jun 2023 in cs.LG, cs.SD, and eess.AS
Abstract: This paper investigates a combinational creativity approach to transfer learning to improve the performance of deep neural network-based models for music generation on out-of-distribution (OOD) genres. We identify Iranian folk music as an example of such an OOD genre for MusicVAE, a large generative music model. We find that a combinational creativity transfer learning approach can efficiently adapt MusicVAE to an Iranian folk music dataset, indicating potential for generating underrepresented music genres in the future.