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MMT-BERT: Chord-aware Symbolic Music Generation Based on Multitrack Music Transformer and MusicBERT

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arxiv 2409.00919 v1 pith:4IMMF7KR submitted 2024-09-02 cs.SD cs.AIeess.AS

classification cs.SDcs.AIeess.AS
keywords musicsymbolicgenerationrepresentationmodelmultitrackmusicbertapproach
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We propose a novel symbolic music representation and Generative Adversarial Network (GAN) framework specially designed for symbolic multitrack music generation. The main theme of symbolic music generation primarily encompasses the preprocessing of music data and the implementation of a deep learning framework. Current techniques dedicated to symbolic music generation generally encounter two significant challenges: training data's lack of information about chords and scales and the requirement of specially designed model architecture adapted to the unique format of symbolic music representation. In this paper, we solve the above problems by introducing new symbolic music representation with MusicLang chord analysis model. We propose our MMT-BERT architecture adapting to the representation. To build a robust multitrack music generator, we fine-tune a pre-trained MusicBERT model to serve as the discriminator, and incorporate relativistic standard loss. This approach, supported by the in-depth understanding of symbolic music encoded within MusicBERT, fortifies the consonance and humanity of music generated by our method. Experimental results demonstrate the effectiveness of our approach which strictly follows the state-of-the-art methods.

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Cited by 1 Pith paper

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  1. Explicit Note-Event Tokenization and Pitch-Validity Constrained Decoding for MIDI-to-Tablature Transcription

    cs.SD 2026-07 conditional novelty 6.0 of 10

    Adding explicit note-event tokens to the decoder and masking pitch-invalid TAB positions during decoding improves guitar tablature accuracy over the Fretting Transformer on DadaGP and especially on the small François ...

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